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<span id="openzim-page-title" class="mw-page-title-main"><span class="mw-page-title-main">Rocket engine</span></span>
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<p>A <b>rocket engine</b> is a <a href="Reaction_engine" title="Reaction engine">reaction engine</a>, producing <a href="Thrust" title="Thrust">thrust</a> in accordance with <a href="Newton's_third_law" class="mw-redirect" title="Newton's third law">Newton's third law</a> by ejecting <a href="Reaction_mass" class="mw-redirect" title="Reaction mass">reaction mass</a> rearward, usually a high-speed <a href="Jet_(fluid)" title="Jet (fluid)">jet</a> of high-temperature gas produced by the <a href="Combustion" title="Combustion">combustion</a> of <a href="Rocket_propellant" title="Rocket propellant">rocket propellants</a> stored inside the <a href="Rocket" title="Rocket">rocket</a>. However, non-combusting forms such as <a href="Cold_gas_thruster" title="Cold gas thruster">cold gas thrusters</a> and <a href="Nuclear_thermal_rocket" title="Nuclear thermal rocket">nuclear thermal rockets</a> also exist. Rocket vehicles carry their own <a href="Oxidiser" class="mw-redirect" title="Oxidiser">oxidiser</a>, unlike most combustion engines, so rocket engines can be used in a <a href="Vacuum" title="Vacuum">vacuum</a>, and they can achieve great speed, beyond <a href="Escape_velocity" title="Escape velocity">escape velocity</a>. Vehicles commonly propelled by rocket engines include <a href="Missile" title="Missile">missiles</a>, <a href="Rocket-assisted_projectile" title="Rocket-assisted projectile">artillery shells</a>, <a href="Ballistic_missiles" class="mw-redirect" title="Ballistic missiles">ballistic missiles</a> and <a href="Rocket" title="Rocket">rockets</a> of any size, from tiny <a href="Rocket_(firework)" title="Rocket (firework)">fireworks</a> to <a href="Rocket_(weapon)" title="Rocket (weapon)">man-sized weapons</a> to huge <a href="Space_vehicle" title="Space vehicle">spaceships</a>.
</p><p>Compared to other types of jet engine, rocket engines are the lightest and have the highest thrust, but are the least propellant-efficient (they have the lowest <a href="Specific_impulse" title="Specific impulse">specific impulse</a>). For thermal rockets, pure <a href="Hydrogen" title="Hydrogen">hydrogen</a>, the lightest of all elements, gives the highest exhaust velocity, but practical chemical rockets produce a mix of heavier species, reducing the exhaust velocity.
</p>
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<div class="mw-heading mw-heading2"><h2 id="Terminology">Terminology</h2></div>
<p>Here, "rocket" is used as an abbreviation for "rocket engine".
</p><p><b><a href="Thermal_rocket" title="Thermal rocket">Thermal rockets</a></b> use an inert propellant, heated by electricity (<a href="Electrothermal_propulsion" class="mw-redirect" title="Electrothermal propulsion">electrothermal propulsion</a>) or a nuclear reactor (<a href="Nuclear_thermal_rocket" title="Nuclear thermal rocket">nuclear thermal rocket</a>).
</p><p><b>Chemical rockets</b> are powered by <a href="Exothermic" class="mw-redirect" title="Exothermic">exothermic</a> <a href="Redox_chemistry" class="mw-redirect" title="Redox chemistry">reduction-oxidation</a> chemical reactions of the propellant:
</p>
<ul><li><b><a href="Solid-fuel_rocket" class="mw-redirect" title="Solid-fuel rocket">Solid-fuel rockets</a></b> (or <b>solid-propellant rockets</b> or <b>motors</b>) are chemical rockets which use propellant in a <a href="Solid" title="Solid">solid state</a>.</li>
<li><b><a href="Liquid-propellant_rocket" title="Liquid-propellant rocket">Liquid-propellant rockets</a></b> use one or more propellants in a <a href="Liquid_state" class="mw-redirect" title="Liquid state">liquid state</a> fed from tanks.</li>
<li><b><a href="Hybrid_rocket" class="mw-redirect" title="Hybrid rocket">Hybrid rockets</a></b> use a solid propellant in the combustion chamber, to which a second liquid or gas <a href="Oxidizing_agent" title="Oxidizing agent">oxidiser</a> or propellant is added to permit combustion.</li>
<li><b><a href="Monopropellant_rocket" title="Monopropellant rocket">Monopropellant rockets</a></b> use a single propellant decomposed by a <a href="Catalyst" class="mw-redirect" title="Catalyst">catalyst</a>. The most common monopropellants are <a href="Hydrazine" title="Hydrazine">hydrazine</a> and <a href="Hydrogen_peroxide" title="Hydrogen peroxide">hydrogen peroxide</a>.</li></ul>
<div class="mw-heading mw-heading2"><h2 id="Principle_of_operation">Principle of operation</h2></div>


<p>Rocket engines produce thrust by the expulsion of an exhaust <a href="Fluid" title="Fluid">fluid</a> that has been accelerated to high speed through a <a href="Propelling_nozzle" title="Propelling nozzle">propelling nozzle</a>. The fluid is usually a gas created by high pressure (150-to-4,350-pound-per-square-inch (10 to 300&nbsp;bar)) combustion of solid or liquid <a href="Rocket_propellant" title="Rocket propellant">propellants</a>, consisting of <a href="Fuel" title="Fuel">fuel</a> and <a href="Oxidizing_agent" title="Oxidizing agent">oxidiser</a> components, within a <a href="Combustion_chamber" title="Combustion chamber">combustion chamber</a>. As the gases expand through the nozzle, they are accelerated to very high (<a href="Supersonic" class="mw-redirect" title="Supersonic">supersonic</a>) speed, and the reaction to this pushes the vehicle (<a href="Rocket" title="Rocket">rocket</a>) in the opposite direction. Combustion is most frequently used for practical rockets, as the laws of <a href="Thermodynamics" title="Thermodynamics">thermodynamics</a> (more specifically <a href="Carnot's_theorem_(thermodynamics)" title="Carnot's theorem (thermodynamics)">Carnot's theorem</a>) dictate that high temperatures and pressures are desirable for the best <a href="Thermal_efficiency" title="Thermal efficiency">thermal efficiency</a>. <a href="Nuclear_thermal_rocket" title="Nuclear thermal rocket">Nuclear thermal rockets</a> are capable of higher efficiencies, but have low thrust, thanks to the low mass of the propellants used, and also have <a href="Nuclear_thermal_rocket#Risks" title="Nuclear thermal rocket">environmental problems</a> which preclude their routine use in the <a href="Atmosphere_of_Earth" title="Atmosphere of Earth">Earth's atmosphere</a> and <a href="Cislunar_space" class="mw-redirect" title="Cislunar space">cislunar space</a>.
</p><p>For <a href="Model_rocket" title="Model rocket">model rocketry</a>, an available alternative to combustion is a <a href="Water_rocket" title="Water rocket">water rocket</a> pressurized by <a href="Compressed_air" title="Compressed air">compressed air</a>, <a href="Carbon_dioxide" title="Carbon dioxide">carbon dioxide</a>, <a href="Nitrogen" title="Nitrogen">nitrogen</a>, or any other readily available, inert gas.
</p>
<div class="mw-heading mw-heading3"><h3 id="Propellant">Propellant</h3></div>
<p>Rocket propellant is mass that is stored, usually in some form of tank, or within the combustion chamber itself, prior to being ejected from a rocket engine in the form of a fluid jet to produce thrust.
</p><p>Chemical rocket propellants are the most commonly used. These undergo exothermic chemical reactions producing a hot jet of gas for propulsion. Alternatively, a chemically inert <a href="Reaction_mass" class="mw-redirect" title="Reaction mass">reaction mass</a> can be heated by a high-energy power source through a heat exchanger in lieu of a combustion chamber.
</p><p><a href="Solid_rocket" class="mw-redirect" title="Solid rocket">Solid rocket</a> propellants are prepared in a mixture of fuel and oxidising components called <i>grain</i>, and the propellant storage casing effectively becomes the combustion chamber.
</p>
<div class="mw-heading mw-heading3"><h3 id="Injection">Injection</h3></div>
<p><a href="Liquid-propellant_rocket" title="Liquid-propellant rocket">Liquid-fueled rockets</a> force separate fuel and oxidizer components into the combustion chamber, where they mix and burn. <a href="Hybrid_rocket" class="mw-redirect" title="Hybrid rocket">Hybrid rocket</a> engines use a combination of solid and liquid or gaseous propellants. Both liquid and hybrid rockets use <i><a href="Liquid-fuel_rocket" class="mw-redirect" title="Liquid-fuel rocket">injectors</a></i> to introduce the propellant into the chamber. These are often an array of simple <a href="Jet_(nozzle)" class="mw-redirect" title="Jet (nozzle)">jets</a> – holes through which the propellant escapes under pressure; but sometimes may be more complex spray nozzles. When two or more propellants are injected, the jets usually deliberately cause the propellants to collide as this breaks up the flow into smaller droplets that burn more easily.
</p>
<div class="mw-heading mw-heading3"><h3 id="Combustion_chamber">Combustion chamber</h3></div>
<p>For chemical rockets the combustion chamber is typically cylindrical, and <a href="Flame_holder" title="Flame holder">flame holders</a>, used to hold a part of the combustion in a slower-flowing portion of the combustion chamber, are not needed. The dimensions of the cylinder are such that the propellant is able to combust thoroughly; different <a href="Rocket_propellant" title="Rocket propellant">rocket propellants</a> require different combustion chamber sizes for this to occur.
</p><p>This leads to a number called <span class="mwe-math-element mwe-math-element-inline"><span class="mwe-math-mathml-inline mwe-math-mathml-a11y" style="display: none;"><math xmlns="http://www.w3.org/1998/Math/MathML" alttext="{\displaystyle L^{*}}">
<semantics>
<mrow class="MJX-TeXAtom-ORD">
<mstyle displaystyle="true" scriptlevel="0">
<msup>
<mi>L</mi>
<mrow class="MJX-TeXAtom-ORD">
<mo>∗<!-- ∗ --></mo>
</mrow>
</msup>
</mstyle>
</mrow>
<annotation encoding="application/x-tex">{\displaystyle L^{*}}</annotation>
</semantics>
</math></span><img src="./d9a3547ba2f3cc5cb4463473815f227092b4766a.svg" class="mwe-math-fallback-image-inline mw-invert skin-invert" aria-hidden="true" style="vertical-align: -0.338ex; width:2.637ex; height:2.343ex;" alt="{\displaystyle L^{*}}" loading="lazy"></span>, the <a href="Characteristic_length" title="Characteristic length">characteristic length</a>:
</p>
<dl><dd><span class="mwe-math-element mwe-math-element-inline"><span class="mwe-math-mathml-inline mwe-math-mathml-a11y" style="display: none;"><math xmlns="http://www.w3.org/1998/Math/MathML" alttext="{\displaystyle L^{*}={\frac {V_{c}}{A_{t}}}}">
<semantics>
<mrow class="MJX-TeXAtom-ORD">
<mstyle displaystyle="true" scriptlevel="0">
<msup>
<mi>L</mi>
<mrow class="MJX-TeXAtom-ORD">
<mo>∗<!-- ∗ --></mo>
</mrow>
</msup>
<mo>=</mo>
<mrow class="MJX-TeXAtom-ORD">
<mfrac>
<msub>
<mi>V</mi>
<mrow class="MJX-TeXAtom-ORD">
<mi>c</mi>
</mrow>
</msub>
<msub>
<mi>A</mi>
<mrow class="MJX-TeXAtom-ORD">
<mi>t</mi>
</mrow>
</msub>
</mfrac>
</mrow>
</mstyle>
</mrow>
<annotation encoding="application/x-tex">{\displaystyle L^{*}={\frac {V_{c}}{A_{t}}}}</annotation>
</semantics>
</math></span><img src="./ebda5f41ab782518ce17a3572a47fc8cee879cc7.svg" class="mwe-math-fallback-image-inline mw-invert skin-invert" aria-hidden="true" style="vertical-align: -2.338ex; width:9.141ex; height:5.676ex;" alt="{\displaystyle L^{*}={\frac {V_{c}}{A_{t}}}}" loading="lazy"></span></dd></dl>
<p>where:
</p>
<ul><li><span class="mwe-math-element mwe-math-element-inline"><span class="mwe-math-mathml-inline mwe-math-mathml-a11y" style="display: none;"><math xmlns="http://www.w3.org/1998/Math/MathML" alttext="{\displaystyle V_{c}}">
<semantics>
<mrow class="MJX-TeXAtom-ORD">
<mstyle displaystyle="true" scriptlevel="0">
<msub>
<mi>V</mi>
<mrow class="MJX-TeXAtom-ORD">
<mi>c</mi>
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</msub>
</mstyle>
</mrow>
<annotation encoding="application/x-tex">{\displaystyle V_{c}}</annotation>
</semantics>
</math></span><img src="./338b595db7a169754c5e088d9881010c2225f597.svg" class="mwe-math-fallback-image-inline mw-invert skin-invert" aria-hidden="true" style="vertical-align: -0.671ex; width:2.299ex; height:2.509ex;" alt="{\displaystyle V_{c}}" loading="lazy"></span> is the volume of the chamber</li>
<li><span class="mwe-math-element mwe-math-element-inline"><span class="mwe-math-mathml-inline mwe-math-mathml-a11y" style="display: none;"><math xmlns="http://www.w3.org/1998/Math/MathML" alttext="{\displaystyle A_{t}}">
<semantics>
<mrow class="MJX-TeXAtom-ORD">
<mstyle displaystyle="true" scriptlevel="0">
<msub>
<mi>A</mi>
<mrow class="MJX-TeXAtom-ORD">
<mi>t</mi>
</mrow>
</msub>
</mstyle>
</mrow>
<annotation encoding="application/x-tex">{\displaystyle A_{t}}</annotation>
</semantics>
</math></span><img src="./265483c517cb98cde609f03a31964d86cdcb05c9.svg" class="mwe-math-fallback-image-inline mw-invert skin-invert" aria-hidden="true" style="vertical-align: -0.671ex; width:2.569ex; height:2.509ex;" alt="{\displaystyle A_{t}}" loading="lazy"></span> is the area of the throat of the nozzle.</li></ul>
<p>L* is typically in the range of 64–152 centimetres (25–60&nbsp;in).
</p><p>The temperatures and pressures typically reached in a rocket combustion chamber in order to achieve practical <a href="Thermal_efficiency" title="Thermal efficiency">thermal efficiency</a> are extreme compared to a <a href="Afterburner" title="Afterburner">non-afterburning</a> <a href="Airbreathing_jet_engine" title="Airbreathing jet engine">airbreathing jet engine</a>. No atmospheric nitrogen is present to dilute and cool the combustion, so the propellant mixture can reach true <a href="Stoichiometric" class="mw-redirect" title="Stoichiometric">stoichiometric</a> ratios. This, in combination with the high pressures, means that the rate of heat conduction through the walls is very high.
</p><p>In order for fuel and oxidiser to flow into the chamber, the pressure of the propellants entering the combustion chamber must exceed the pressure inside the combustion chamber itself. This may be accomplished by a variety of design approaches including <a href="Turbopump" title="Turbopump">turbopumps</a> or, in simpler engines, via <a href="Pressure-fed_cycle_(rocket)" class="mw-redirect" title="Pressure-fed cycle (rocket)">sufficient tank pressure</a> to advance fluid flow. Tank pressure may be maintained by several means, including a high-pressure <a href="Helium" title="Helium">helium</a> pressurization system common to many large rocket engines or, in some newer rocket systems, by a bleed-off of high-pressure gas from the engine cycle to <a href="Autogenous_pressurization" title="Autogenous pressurization">autogenously pressurize</a> the propellant tanks<sup id="cite_ref-nsf20160927_1-0" class="reference"><a href="#cite_note-nsf20160927-1"><span class="cite-bracket">[</span>1<span class="cite-bracket">]</span></a></sup><sup id="cite_ref-sfi20160927_2-0" class="reference"><a href="#cite_note-sfi20160927-2"><span class="cite-bracket">[</span>2<span class="cite-bracket">]</span></a></sup> For example, the self-pressurization gas system of the <a href="SpaceX_Starship" title="SpaceX Starship">SpaceX Starship</a> is a critical part of SpaceX strategy to reduce launch vehicle fluids from five in their legacy Falcon 9 vehicle family to just two in Starship, eliminating not only the helium tank pressurant but all <a href="Hypergolic_propellant" title="Hypergolic propellant">hypergolic propellants</a> as well as <a href="Nitrogen" title="Nitrogen">nitrogen</a> for cold-gas <a href="Reaction_control_system" title="Reaction control system">reaction-control thrusters</a>.<sup id="cite_ref-nsf20161003_3-0" class="reference"><a href="#cite_note-nsf20161003-3"><span class="cite-bracket">[</span>3<span class="cite-bracket">]</span></a></sup>
</p>
<div class="mw-heading mw-heading3"><h3 id="Nozzle">Nozzle</h3></div>
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</style><div role="note" class="hatnote navigation-not-searchable">Main article: <a href="Rocket_engine_nozzle" title="Rocket engine nozzle">Rocket engine nozzle</a></div>

<p>The hot gas produced in the combustion chamber is permitted to escape through a narrow space, called as the throat, to increase the velocity until it reaches Mach 1, and then through a diverging expansion section. When sufficient pressure is provided to the nozzle (about 2.5–3 times ambient pressure), the nozzle <i><a href="Choked_flow" title="Choked flow">chokes</a></i> and a supersonic jet is formed, dramatically accelerating the gas, converting most of the thermal energy into kinetic energy. Exhaust speeds vary, depending on the <a href="Expansion_ratio" title="Expansion ratio">expansion ratio</a> the nozzle is designed for, but exhaust speeds as high as ten times the <a href="Speed_of_sound" title="Speed of sound">speed of sound</a> in air at sea level are not uncommon. About half of the rocket engine's thrust comes from the unbalanced pressures inside the combustion chamber, and the rest comes from the pressures acting against the inside of the nozzle (see diagram). As the gas expands (<a href="Adiabatic_process" title="Adiabatic process">adiabatically</a>) the pressure against the nozzle's walls forces the rocket engine in one direction while accelerating the gas in the other.
</p><p>
</p>

<p>The most commonly used nozzle is the <a href="De_Laval_nozzle" title="De Laval nozzle">de Laval nozzle</a>, a fixed geometry nozzle with a high expansion-ratio. The large bell- or cone-shaped nozzle extension beyond the throat gives the rocket engine its characteristic shape.
</p><p>The exit <a href="Static_pressure#Static_pressure_in_fluid_dynamics" title="Static pressure">static pressure</a> of the exhaust jet depends on the chamber pressure and the ratio of exit to throat area of the nozzle. As exit pressure varies from the ambient (atmospheric) pressure, a choked nozzle is said to be
</p>
<ul><li><b>under-expanded</b> (exit pressure greater than ambient),</li>
<li><b>perfectly expanded</b> (exit pressure equals ambient),</li>
<li><b>over-expanded</b> (exit pressure less than ambient; <a href="Shock_diamond" title="Shock diamond">shock diamonds</a> form outside the nozzle), or</li>
<li><b>grossly over-expanded</b> (a <a href="Shock_wave" title="Shock wave">shock wave</a> forms inside the nozzle extension).</li></ul>
<p>In practice, perfect expansion is only achievable with a variable–exit-area nozzle (since ambient pressure decreases as altitude increases), and is not possible above a certain altitude as ambient pressure approaches zero. If the nozzle is not perfectly expanded, then loss of efficiency occurs. Grossly over-expanded nozzles lose less efficiency, but can cause mechanical problems with the nozzle. Fixed-area nozzles become progressively more under-expanded as they gain altitude. Almost all de Laval nozzles will be momentarily grossly over-expanded during startup in an atmosphere.<sup id="cite_ref-HuzelAndHuang_4-0" class="reference"><a href="#cite_note-HuzelAndHuang-4"><span class="cite-bracket">[</span>4<span class="cite-bracket">]</span></a></sup>
</p><p>Nozzle efficiency is affected by operation in the atmosphere because atmospheric pressure changes with altitude; but due to the supersonic speeds of the gas exiting from a rocket engine, the pressure of the jet may be either below or above ambient, and equilibrium between the two is not reached at all altitudes (see diagram).
</p>
<div class="mw-heading mw-heading4"><h4 id="Back_pressure_and_optimal_expansion">Back pressure and optimal expansion</h4></div>
<p>For optimal performance, the pressure of the gas at the end of the nozzle should just equal the ambient pressure: if the exhaust's pressure is lower than the ambient pressure, then the vehicle will be slowed by the difference in pressure between the top of the engine and the exit; on the other hand, if the exhaust's pressure is higher, then exhaust pressure that could have been converted into thrust is not converted, and energy is wasted.
</p><p>To maintain this ideal of equality between the exhaust's exit pressure and the ambient pressure, the diameter of the nozzle would need to increase with altitude, giving the pressure a longer nozzle to act on (and reducing the exit pressure and temperature). This increase is difficult to arrange in a lightweight fashion, although is routinely done with other forms of jet engines. In rocketry a lightweight compromise nozzle is generally used and some reduction in atmospheric performance occurs when used at other than the 'design altitude' or when throttled. To improve on this, various exotic nozzle designs such as the <a href="Plug_nozzle" title="Plug nozzle">plug nozzle</a>, <a href="Stepped_nozzles" class="mw-redirect" title="Stepped nozzles">stepped nozzles</a>, the <a href="Expanding_nozzle" title="Expanding nozzle">expanding nozzle</a> and the <a href="Aerospike_engine" title="Aerospike engine">aerospike</a> have been proposed, each providing some way to adapt to changing ambient air pressure and each allowing the gas to expand further against the nozzle, giving extra thrust at higher altitudes.
</p><p>When exhausting into a sufficiently low ambient pressure (vacuum) several issues arise. One is the sheer weight of the nozzle—beyond a certain point, for a particular vehicle, the extra weight of the nozzle outweighs any performance gained. Secondly, as the exhaust gases adiabatically expand within the nozzle they cool, and eventually some of the chemicals can freeze, producing 'snow' within the jet. This causes instabilities in the jet and must be avoided.
</p><p>On a <a href="De_Laval_nozzle" title="De Laval nozzle">De Laval nozzle</a>, exhaust gas flow detachment will occur in a grossly over-expanded nozzle. As the detachment point will not be uniform around the axis of the engine, a side force may be imparted to the engine. This side force may change over time and result in control problems with the launch vehicle.
</p><p>Advanced <a href="Altitude_compensating_nozzle" title="Altitude compensating nozzle">altitude-compensating</a> designs, such as the <a href="Aerospike_engine" title="Aerospike engine">aerospike</a> or <a href="Plug_nozzle" title="Plug nozzle">plug nozzle</a>, attempt to minimize performance losses by adjusting to varying expansion ratio caused by changing altitude.
</p>
<div class="mw-heading mw-heading3"><h3 id="Propellant_efficiency">Propellant efficiency</h3></div>
<div role="note" class="hatnote navigation-not-searchable">See also: <a href="Specific_impulse" title="Specific impulse">Specific impulse</a></div>

<p>For a rocket engine to be propellant efficient, it is important that the maximum pressures possible be created on the walls of the chamber and nozzle by a specific amount of propellant; as this is the source of the thrust. This can be achieved by all of:
</p>
<ul><li>heating the propellant to as high a temperature as possible (using a high energy fuel, containing hydrogen and carbon and sometimes metals such as <a href="Aluminium" title="Aluminium">aluminium</a>, or even using nuclear energy)</li>
<li>using a low specific density gas (as hydrogen rich as possible)</li>
<li>using propellants which are, or decompose to, simple molecules with few degrees of freedom to maximise translational velocity</li></ul>
<p>Since all of these things minimise the mass of the propellant used, and since pressure is proportional to the mass of propellant present to be accelerated as it pushes on the engine, and since from <a href="Newton's_third_law" class="mw-redirect" title="Newton's third law">Newton's third law</a> the pressure that acts on the engine also reciprocally acts on the propellant, it turns out that for any given engine, the speed that the propellant leaves the chamber is unaffected by the chamber pressure (although the thrust is proportional). However, speed is significantly affected by all three of the above factors and the exhaust speed is an excellent measure of the engine propellant efficiency. This is termed <i>exhaust velocity</i>, and after allowance is made for factors that can reduce it, the <b><a href="Effective_exhaust_velocity" class="mw-redirect" title="Effective exhaust velocity">effective exhaust velocity</a></b> is one of the most important parameters of a rocket engine (although weight, cost, ease of manufacture etc. are usually also very important).
</p><p>For aerodynamic reasons the flow goes sonic ("<a href="Choked_flow" title="Choked flow">chokes</a>") at the narrowest part of the nozzle, the 'throat'. Since the <a href="Speed_of_sound" title="Speed of sound">speed of sound</a> in gases increases with the square root of temperature, the use of hot exhaust gas greatly improves performance. By comparison, at room temperature the speed of sound in air is about 340&nbsp;m/s while the speed of sound in the hot gas of a rocket engine can be over 1700&nbsp;m/s; much of this performance is due to the higher temperature, but additionally rocket propellants are chosen to be of low molecular mass, and this also gives a higher velocity compared to air.
</p><p>Expansion in the rocket nozzle then further multiplies the speed, typically between 1.5 and 2 times, giving a highly <a href="Collimated" class="mw-redirect" title="Collimated">collimated</a> hypersonic exhaust jet. The speed increase of a rocket nozzle is mostly determined by its area expansion ratio—the ratio of the area of the exit to the area of the throat, but detailed properties of the gas are also important. Larger ratio nozzles are more massive but are able to extract more heat from the combustion gases, increasing the exhaust velocity.
</p>
<div class="mw-heading mw-heading3"><h3 id="Thrust_vectoring">Thrust vectoring</h3></div>
<div role="note" class="hatnote navigation-not-searchable">Main article: <a href="Thrust_vectoring" title="Thrust vectoring">Thrust vectoring</a></div>
<p>Vehicles typically require the overall thrust to change direction over the length of the burn. A number of different ways to achieve this have been flown:
</p>
<ul><li>The entire engine is mounted on a <a href="Hinge" title="Hinge">hinge</a> or <a href="Gimbal" title="Gimbal">gimbal</a> and any propellant feeds reach the engine via low pressure flexible pipes or rotary couplings.</li>
<li>Just the combustion chamber and nozzle is gimballed, the pumps are fixed, and high pressure feeds attach to the engine.</li>
<li>Multiple engines (often canted at slight angles) are deployed but throttled to give the overall vector that is required, giving only a very small penalty.</li>
<li>High-temperature vanes protrude into the exhaust and can be tilted to deflect the jet.</li></ul>
<div class="mw-heading mw-heading2"><h2 id="Overall_performance">Overall performance</h2></div>
<p>Rocket technology can combine very high thrust (<a href="Meganewton" class="mw-redirect" title="Meganewton">meganewtons</a>), very high exhaust speeds (around 10 times the speed of sound in air at sea level) and very high thrust/weight ratios (&gt;100) <i>simultaneously</i> as well as being able to operate outside the atmosphere, and while permitting the use of low pressure and hence lightweight tanks and structure.
</p><p>Rockets can be further optimised to even more extreme performance along one or more of these axes at the expense of the others.
</p>
<div class="mw-heading mw-heading3"><h3 id="Specific_impulse">Specific impulse</h3></div>
<table class="wikitable" style="text-align:center; float:right; clear:right; margin-left:1em">
<caption><a href="Specific_impulse" title="Specific impulse"><i>I</i><sub>sp</sub></a> in vacuum of various rockets
</caption>
<tbody><tr>
<th>Rocket
</th>
<th>Propellants
</th>
<th><i>I</i><sub>sp</sub>, vacuum (s)
</th></tr>
<tr>
<th><a href="Space_Shuttle_main_engine" class="mw-redirect" title="Space Shuttle main engine">Space Shuttle<br>liquid engines</a>
</th>
<td><a href="Liquid_oxygen" title="Liquid oxygen">LOX</a>/<a href="Liquid_hydrogen" title="Liquid hydrogen">LH<sub>2</sub></a>
</td>
<td>453<sup id="cite_ref-spec_impulse_5-0" class="reference"><a href="#cite_note-spec_impulse-5"><span class="cite-bracket">[</span>5<span class="cite-bracket">]</span></a></sup>
</td></tr>
<tr>
<th><a href="Space_Shuttle_Solid_Rocket_Booster" title="Space Shuttle Solid Rocket Booster">Space Shuttle<br>solid motors</a>
</th>
<td><a href="Ammonium_perchlorate_composite_propellant" title="Ammonium perchlorate composite propellant">APCP</a>
</td>
<td>268<sup id="cite_ref-spec_impulse_5-1" class="reference"><a href="#cite_note-spec_impulse-5"><span class="cite-bracket">[</span>5<span class="cite-bracket">]</span></a></sup>
</td></tr>
<tr>
<th><a href="Space_Shuttle_Orbital_Maneuvering_System" class="mw-redirect" title="Space Shuttle Orbital Maneuvering System">Space Shuttle<br>OMS</a>
</th>
<td><a href="Nitrogen_tetroxide" class="mw-redirect" title="Nitrogen tetroxide">NTO</a>/<a href="Monomethylhydrazine" title="Monomethylhydrazine">MMH</a>
</td>
<td>313<sup id="cite_ref-spec_impulse_5-2" class="reference"><a href="#cite_note-spec_impulse-5"><span class="cite-bracket">[</span>5<span class="cite-bracket">]</span></a></sup>
</td></tr>
<tr>
<th><a href="S-IC" title="S-IC">Saturn V<br>stage 1</a>
</th>
<td><a href="Liquid_oxygen" title="Liquid oxygen">LOX</a>/<a href="Rocket_propellant-1" class="mw-redirect" title="Rocket propellant-1">RP-1</a>
</td>
<td>304<sup id="cite_ref-spec_impulse_5-3" class="reference"><a href="#cite_note-spec_impulse-5"><span class="cite-bracket">[</span>5<span class="cite-bracket">]</span></a></sup>
</td></tr></tbody></table>
<div role="note" class="hatnote navigation-not-searchable">Main article: <a href="Specific_impulse" title="Specific impulse">Specific impulse</a></div>
<p>The most important metric for the efficiency of a rocket engine is <a href="Impulse_(physics)" title="Impulse (physics)">impulse</a> per unit of <a href="Propellant" title="Propellant">propellant</a>, this is called <a href="Specific_impulse" title="Specific impulse">specific impulse</a> (usually written <span class="mwe-math-element mwe-math-element-inline"><span class="mwe-math-mathml-inline mwe-math-mathml-a11y" style="display: none;"><math xmlns="http://www.w3.org/1998/Math/MathML" alttext="{\displaystyle I_{sp}}">
<semantics>
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<annotation encoding="application/x-tex">{\displaystyle I_{sp}}</annotation>
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</math></span><img src="./1a1690436c8acf9d7a116f907128ad186af65815.svg" class="mwe-math-fallback-image-inline mw-invert skin-invert" aria-hidden="true" style="vertical-align: -1.005ex; width:2.853ex; height:2.843ex;" alt="{\displaystyle I_{sp}}" loading="lazy"></span>). This is either measured as a speed (the <i>effective exhaust velocity</i> <span class="mwe-math-element mwe-math-element-inline"><span class="mwe-math-mathml-inline mwe-math-mathml-a11y" style="display: none;"><math xmlns="http://www.w3.org/1998/Math/MathML" alttext="{\displaystyle v_{e}}">
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<annotation encoding="application/x-tex">{\displaystyle v_{e}}</annotation>
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</math></span><img src="./3271a14c35fc1b6cb549d4d462e8d3255185cc9d.svg" class="mwe-math-fallback-image-inline mw-invert skin-invert" aria-hidden="true" style="vertical-align: -0.671ex; width:2.126ex; height:2.009ex;" alt="{\displaystyle v_{e}}" loading="lazy"></span> in metres/second or ft/s) or as a time (seconds). For example, if an engine producing 100 pounds of thrust runs for 320 seconds and burns 100 pounds of propellant, then the specific impulse is 320 seconds. The higher the specific impulse, the less propellant is required to provide the desired impulse.
</p><p>The specific impulse that can be achieved is primarily a function of the propellant mix (and ultimately would limit the specific impulse), but practical limits on chamber pressures and the nozzle expansion ratios reduce the performance that can be achieved.
</p>
<div class="mw-heading mw-heading3"><h3 id="Net_thrust">Net thrust</h3></div>
<div role="note" class="hatnote navigation-not-searchable">Main article: <a href="Thrust" title="Thrust">Thrust</a></div>
<p>Below is an approximate equation for calculating the net thrust of a rocket engine:<sup id="cite_ref-6" class="reference"><a href="#cite_note-6"><span class="cite-bracket">[</span>6<span class="cite-bracket">]</span></a></sup>
</p>
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</style><div class="block-indent"><span class="mwe-math-element mwe-math-element-inline"><span class="mwe-math-mathml-inline mwe-math-mathml-a11y" style="display: none;"><math xmlns="http://www.w3.org/1998/Math/MathML" alttext="{\displaystyle F_{n}={\dot {m}}\;v_{e}={\dot {m}}\;v_{e-opt}+A_{e}(p_{e}-p_{amb})}">
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<annotation encoding="application/x-tex">{\displaystyle F_{n}={\dot {m}}\;v_{e}={\dot {m}}\;v_{e-opt}+A_{e}(p_{e}-p_{amb})}</annotation>
</semantics>
</math></span><img src="./41cf4e13036a75451e49def566b7f554e535093a.svg" class="mwe-math-fallback-image-inline mw-invert skin-invert" aria-hidden="true" style="vertical-align: -1.005ex; width:38.848ex; height:3.009ex;" alt="{\displaystyle F_{n}={\dot {m}}\;v_{e}={\dot {m}}\;v_{e-opt}+A_{e}(p_{e}-p_{amb})}" loading="lazy"></span></div>
<table border="0" cellpadding="2" style="margin-left:1em">

<tbody><tr>
<td align="right">where:
</td>
<td>&nbsp;
</td></tr>
<tr>
<th align="right"><span class="mwe-math-element mwe-math-element-inline"><span class="mwe-math-mathml-inline mwe-math-mathml-a11y" style="display: none;"><math xmlns="http://www.w3.org/1998/Math/MathML" alttext="{\displaystyle {\dot {m}}}">
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<annotation encoding="application/x-tex">{\displaystyle {\dot {m}}}</annotation>
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</math></span><img src="./ad59b9876301e8fb75b9ddbf08de594b87251d3b.svg" class="mwe-math-fallback-image-inline mw-invert skin-invert" aria-hidden="true" style="vertical-align: -0.338ex; width:2.04ex; height:2.176ex;" alt="{\displaystyle {\dot {m}}}" loading="lazy"></span>
</th>
<td align="left">=&nbsp; exhaust gas mass flow
</td></tr>
<tr>
<th align="right"><span class="mwe-math-element mwe-math-element-inline"><span class="mwe-math-mathml-inline mwe-math-mathml-a11y" style="display: none;"><math xmlns="http://www.w3.org/1998/Math/MathML" alttext="{\displaystyle v_{e}}">
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<annotation encoding="application/x-tex">{\displaystyle v_{e}}</annotation>
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</math></span><img src="./3271a14c35fc1b6cb549d4d462e8d3255185cc9d.svg" class="mwe-math-fallback-image-inline mw-invert skin-invert" aria-hidden="true" style="vertical-align: -0.671ex; width:2.126ex; height:2.009ex;" alt="{\displaystyle v_{e}}" loading="lazy"></span>
</th>
<td align="left">=&nbsp; effective exhaust velocity (sometimes otherwise denoted as <i>c</i> in publications)
</td></tr>
<tr>
<th align="right"><span class="mwe-math-element mwe-math-element-inline"><span class="mwe-math-mathml-inline mwe-math-mathml-a11y" style="display: none;"><math xmlns="http://www.w3.org/1998/Math/MathML" alttext="{\displaystyle v_{e-opt}}">
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<annotation encoding="application/x-tex">{\displaystyle v_{e-opt}}</annotation>
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</math></span><img src="./a98d98485116a6d6587ae72f782f95d5b4ef0fb7.svg" class="mwe-math-fallback-image-inline mw-invert skin-invert" aria-hidden="true" style="vertical-align: -1.005ex; width:5.623ex; height:2.343ex;" alt="{\displaystyle v_{e-opt}}" loading="lazy"></span>
</th>
<td align="left">=&nbsp; effective jet velocity when Pamb = Pe
</td></tr>
<tr>
<th align="right"><span class="mwe-math-element mwe-math-element-inline"><span class="mwe-math-mathml-inline mwe-math-mathml-a11y" style="display: none;"><math xmlns="http://www.w3.org/1998/Math/MathML" alttext="{\displaystyle A_{e}}">
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<annotation encoding="application/x-tex">{\displaystyle A_{e}}</annotation>
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</math></span><img src="./abcfbb3d2f9f962e32527c7037cdfa6e7da0e887.svg" class="mwe-math-fallback-image-inline mw-invert skin-invert" aria-hidden="true" style="vertical-align: -0.671ex; width:2.742ex; height:2.509ex;" alt="{\displaystyle A_{e}}" loading="lazy"></span>
</th>
<td align="left">=&nbsp; flow area at nozzle exit plane (or the plane where the jet leaves the nozzle if separated flow)
</td></tr>
<tr>
<th align="right"><span class="mwe-math-element mwe-math-element-inline"><span class="mwe-math-mathml-inline mwe-math-mathml-a11y" style="display: none;"><math xmlns="http://www.w3.org/1998/Math/MathML" alttext="{\displaystyle p_{e}}">
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</math></span><img src="./ea9d1daea5e2e2bca1b08d45ef8f2b10a55184ea.svg" class="mwe-math-fallback-image-inline mw-invert skin-invert" aria-hidden="true" style="vertical-align: -0.671ex; margin-left: -0.089ex; width:2.257ex; height:2.009ex;" alt="{\displaystyle p_{e}}" loading="lazy"></span>
</th>
<td align="left">=&nbsp; static pressure at nozzle exit plane
</td></tr>
<tr>
<th align="right"><span class="mwe-math-element mwe-math-element-inline"><span class="mwe-math-mathml-inline mwe-math-mathml-a11y" style="display: none;"><math xmlns="http://www.w3.org/1998/Math/MathML" alttext="{\displaystyle p_{amb}}">
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</math></span><img src="./1637884c3ee70295587e32b9f1d9780ef7a1e512.svg" class="mwe-math-fallback-image-inline mw-invert skin-invert" aria-hidden="true" style="vertical-align: -0.671ex; margin-left: -0.089ex; width:4.509ex; height:2.009ex;" alt="{\displaystyle p_{amb}}" loading="lazy"></span>
</th>
<td align="left">=&nbsp; ambient (or atmospheric) pressure
</td></tr></tbody></table>
<p>Since, unlike a jet engine, a conventional rocket motor lacks an air intake, there is no 'ram drag' to deduct from the gross thrust. Consequently, the net thrust of a rocket motor is equal to the gross thrust (apart from static back pressure).
</p><p>The <span class="mwe-math-element mwe-math-element-inline"><span class="mwe-math-mathml-inline mwe-math-mathml-a11y" style="display: none;"><math xmlns="http://www.w3.org/1998/Math/MathML" alttext="{\displaystyle {\dot {m}}\;v_{e-opt}\,}">
<semantics>
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<annotation encoding="application/x-tex">{\displaystyle {\dot {m}}\;v_{e-opt}\,}</annotation>
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</math></span><img src="./cc526befbf419fbcdba5f7d258309b02b78286c0.svg" class="mwe-math-fallback-image-inline mw-invert skin-invert" aria-hidden="true" style="vertical-align: -1.005ex; width:8.695ex; height:2.843ex;" alt="{\displaystyle {\dot {m}}\;v_{e-opt}\,}" loading="lazy"></span> term represents the momentum thrust, which remains constant at a given throttle setting, whereas the <span class="mwe-math-element mwe-math-element-inline"><span class="mwe-math-mathml-inline mwe-math-mathml-a11y" style="display: none;"><math xmlns="http://www.w3.org/1998/Math/MathML" alttext="{\displaystyle A_{e}(p_{e}-p_{amb})\,}">
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<annotation encoding="application/x-tex">{\displaystyle A_{e}(p_{e}-p_{amb})\,}</annotation>
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</math></span><img src="./799a8f33c1257be36d3251c64e859b3e17738aa0.svg" class="mwe-math-fallback-image-inline mw-invert skin-invert" aria-hidden="true" style="vertical-align: -0.838ex; width:14.366ex; height:2.843ex;" alt="{\displaystyle A_{e}(p_{e}-p_{amb})\,}" loading="lazy"></span> term represents the pressure thrust term. At full throttle, the net thrust of a rocket motor improves slightly with increasing altitude, because as atmospheric pressure decreases with altitude, the pressure thrust term increases. At the surface of the Earth the pressure thrust may be reduced by up to 30%, depending on the engine design. This reduction drops roughly exponentially to zero with increasing altitude.
</p><p>Maximum efficiency for a rocket engine is achieved by maximising the momentum contribution of the equation without incurring penalties from over expanding the exhaust. This occurs when <span class="mwe-math-element mwe-math-element-inline"><span class="mwe-math-mathml-inline mwe-math-mathml-a11y" style="display: none;"><math xmlns="http://www.w3.org/1998/Math/MathML" alttext="{\displaystyle p_{e}=p_{amb}}">
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</math></span><img src="./191895155d9304c105bc21222789f50354dd53ba.svg" class="mwe-math-fallback-image-inline mw-invert skin-invert" aria-hidden="true" style="vertical-align: -0.671ex; margin-left: -0.089ex; width:9.775ex; height:2.009ex;" alt="{\displaystyle p_{e}=p_{amb}}" loading="lazy"></span>. Since ambient pressure changes with altitude, most rocket engines spend very little time operating at peak efficiency.
</p><p>Since specific impulse is force divided by the rate of mass flow, this equation means that the specific impulse varies with altitude.
</p>
<div class="mw-heading mw-heading3"><h3 id="Vacuum_specific_impulse,_Isp">Vacuum specific impulse, I<sub>sp</sub></h3></div>
<p>Due to the specific impulse varying with pressure, a quantity that is easy to compare and calculate with is useful. Because rockets <a href="Choked_flow" title="Choked flow">choke</a> at the throat, and because the supersonic exhaust prevents external pressure influences travelling upstream, it turns out that the pressure at the exit is ideally exactly proportional to the propellant flow <span class="mwe-math-element mwe-math-element-inline"><span class="mwe-math-mathml-inline mwe-math-mathml-a11y" style="display: none;"><math xmlns="http://www.w3.org/1998/Math/MathML" alttext="{\displaystyle {\dot {m}}}">
<semantics>
<mrow class="MJX-TeXAtom-ORD">
<mstyle displaystyle="true" scriptlevel="0">
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<annotation encoding="application/x-tex">{\displaystyle {\dot {m}}}</annotation>
</semantics>
</math></span><img src="./ad59b9876301e8fb75b9ddbf08de594b87251d3b.svg" class="mwe-math-fallback-image-inline mw-invert skin-invert" aria-hidden="true" style="vertical-align: -0.338ex; width:2.04ex; height:2.176ex;" alt="{\displaystyle {\dot {m}}}" loading="lazy"></span>, provided the mixture ratios and combustion efficiencies are maintained. It is thus quite usual to rearrange the above equation slightly:<sup id="cite_ref-7" class="reference"><a href="#cite_note-7"><span class="cite-bracket">[</span>7<span class="cite-bracket">]</span></a></sup>
</p>
<div class="block-indent"><span class="mwe-math-element mwe-math-element-inline"><span class="mwe-math-mathml-inline mwe-math-mathml-a11y" style="display: none;"><math xmlns="http://www.w3.org/1998/Math/MathML" alttext="{\displaystyle F_{vac}=C_{f}\,{\dot {m}}\,c^{*}}">
<semantics>
<mrow class="MJX-TeXAtom-ORD">
<mstyle displaystyle="true" scriptlevel="0">
<msub>
<mi>F</mi>
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<annotation encoding="application/x-tex">{\displaystyle F_{vac}=C_{f}\,{\dot {m}}\,c^{*}}</annotation>
</semantics>
</math></span><img src="./4bfae6385463afe7bc9b450f76a61b41ddaf924d.svg" class="mwe-math-fallback-image-inline mw-invert skin-invert" aria-hidden="true" style="vertical-align: -1.005ex; width:14.878ex; height:3.009ex;" alt="{\displaystyle F_{vac}=C_{f}\,{\dot {m}}\,c^{*}}" loading="lazy"></span></div>
<p>and so define the <i>vacuum Isp</i> to be:
</p>
<div class="block-indent"><span class="mwe-math-element mwe-math-element-inline"><span class="mwe-math-mathml-inline mwe-math-mathml-a11y" style="display: none;"><math xmlns="http://www.w3.org/1998/Math/MathML" alttext="{\displaystyle v_{evac}=C_{f}\,c^{*}\,}">
<semantics>
<mrow class="MJX-TeXAtom-ORD">
<mstyle displaystyle="true" scriptlevel="0">
<msub>
<mi>v</mi>
<mrow class="MJX-TeXAtom-ORD">
<mi>e</mi>
<mi>v</mi>
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<mi>c</mi>
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</msub>
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<mrow class="MJX-TeXAtom-ORD">
<mi>f</mi>
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<annotation encoding="application/x-tex">{\displaystyle v_{evac}=C_{f}\,c^{*}\,}</annotation>
</semantics>
</math></span><img src="./ca1f5f68c6728a0184c21c24494b25b551989705.svg" class="mwe-math-fallback-image-inline mw-invert skin-invert" aria-hidden="true" style="vertical-align: -1.005ex; width:13.237ex; height:3.009ex;" alt="{\displaystyle v_{evac}=C_{f}\,c^{*}\,}" loading="lazy"></span></div>
<p>where:
</p>
<div class="block-indent"><span class="mwe-math-element mwe-math-element-inline"><span class="mwe-math-mathml-inline mwe-math-mathml-a11y" style="display: none;"><math xmlns="http://www.w3.org/1998/Math/MathML" alttext="{\displaystyle c^{*}}">
<semantics>
<mrow class="MJX-TeXAtom-ORD">
<mstyle displaystyle="true" scriptlevel="0">
<msup>
<mi>c</mi>
<mrow class="MJX-TeXAtom-ORD">
<mo>∗<!-- ∗ --></mo>
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</mstyle>
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<annotation encoding="application/x-tex">{\displaystyle c^{*}}</annotation>
</semantics>
</math></span><img src="./e0e1c40aab3bd8af2d5fc091d658f8e0034a635f.svg" class="mwe-math-fallback-image-inline mw-invert skin-invert" aria-hidden="true" style="vertical-align: -0.338ex; width:2.061ex; height:2.343ex;" alt="{\displaystyle c^{*}}" loading="lazy"></span>  =  the <a href="Characteristic_velocity" title="Characteristic velocity">characteristic velocity</a> of the combustion chamber (dependent on propellants and combustion efficiency)</div>
<div class="block-indent"><span class="mwe-math-element mwe-math-element-inline"><span class="mwe-math-mathml-inline mwe-math-mathml-a11y" style="display: none;"><math xmlns="http://www.w3.org/1998/Math/MathML" alttext="{\displaystyle C_{f}}">
<semantics>
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<annotation encoding="application/x-tex">{\displaystyle C_{f}}</annotation>
</semantics>
</math></span><img src="./7765fc9102a19771111a01cd0b18c79e231029cf.svg" class="mwe-math-fallback-image-inline mw-invert skin-invert" aria-hidden="true" style="vertical-align: -1.005ex; width:2.798ex; height:2.843ex;" alt="{\displaystyle C_{f}}" loading="lazy"></span>  =  the <a href="Thrust_Coefficient" class="mw-redirect" title="Thrust Coefficient">thrust coefficient</a> of the nozzle (dependent on nozzle geometry, typically about 2)</div>
<p>And hence:
</p>
<div class="block-indent"><span class="mwe-math-element mwe-math-element-inline"><span class="mwe-math-mathml-inline mwe-math-mathml-a11y" style="display: none;"><math xmlns="http://www.w3.org/1998/Math/MathML" alttext="{\displaystyle F_{n}={\dot {m}}\,v_{evac}-A_{e}\,p_{amb}}">
<semantics>
<mrow class="MJX-TeXAtom-ORD">
<mstyle displaystyle="true" scriptlevel="0">
<msub>
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<mi>n</mi>
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<mo>=</mo>
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<annotation encoding="application/x-tex">{\displaystyle F_{n}={\dot {m}}\,v_{evac}-A_{e}\,p_{amb}}</annotation>
</semantics>
</math></span><img src="./0d3dbd0a97dbea647ed4909700f2741f42442c88.svg" class="mwe-math-fallback-image-inline mw-invert skin-invert" aria-hidden="true" style="vertical-align: -0.671ex; width:23.132ex; height:2.509ex;" alt="{\displaystyle F_{n}={\dot {m}}\,v_{evac}-A_{e}\,p_{amb}}" loading="lazy"></span></div>
<div class="mw-heading mw-heading3"><h3 id="Throttling">Throttling</h3></div>
<p>Rockets can be throttled by controlling the propellant combustion rate <span class="mwe-math-element mwe-math-element-inline"><span class="mwe-math-mathml-inline mwe-math-mathml-a11y" style="display: none;"><math xmlns="http://www.w3.org/1998/Math/MathML" alttext="{\displaystyle {\dot {m}}}">
<semantics>
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<annotation encoding="application/x-tex">{\displaystyle {\dot {m}}}</annotation>
</semantics>
</math></span><img src="./ad59b9876301e8fb75b9ddbf08de594b87251d3b.svg" class="mwe-math-fallback-image-inline mw-invert skin-invert" aria-hidden="true" style="vertical-align: -0.338ex; width:2.04ex; height:2.176ex;" alt="{\displaystyle {\dot {m}}}" loading="lazy"></span> (usually measured in kg/s or lb/s). In liquid and hybrid rockets, the propellant flow entering the chamber is controlled using valves, in <a href="Solid_rocket" class="mw-redirect" title="Solid rocket">solid rockets</a> it is controlled by changing the area of propellant that is burning and this can be designed into the propellant grain (and hence cannot be controlled in real-time).
</p><p>Rockets can usually be throttled down to an exit pressure of about one-third of ambient pressure<sup id="cite_ref-Sutton_8-0" class="reference"><a href="#cite_note-Sutton-8"><span class="cite-bracket">[</span>8<span class="cite-bracket">]</span></a></sup> (often limited by flow separation in nozzles) and up to a maximum limit determined only by the mechanical strength of the engine.
</p><p>In practice, the degree to which rockets can be throttled varies greatly, but most rockets can be throttled by a factor of 2 without great difficulty;<sup id="cite_ref-Sutton_8-1" class="reference"><a href="#cite_note-Sutton-8"><span class="cite-bracket">[</span>8<span class="cite-bracket">]</span></a></sup> the typical limitation is combustion stability, as for example, injectors need a minimum pressure to avoid triggering damaging oscillations (chugging or combustion instabilities); but injectors can be optimised and tested for wider ranges.
</p><p>For example, some more recent liquid-propellant engine designs that have been optimised for greater throttling capability (<a href="BE-3" title="BE-3">BE-3</a>, <a href="Raptor_(rocket_engine)" class="mw-redirect" title="Raptor (rocket engine)">Raptor</a>) can be throttled to as low as 18–20 per cent of rated thrust.<sup id="cite_ref-sn20150407_9-0" class="reference"><a href="#cite_note-sn20150407-9"><span class="cite-bracket">[</span>9<span class="cite-bracket">]</span></a></sup><sup id="cite_ref-sfi20160927_2-1" class="reference"><a href="#cite_note-sfi20160927-2"><span class="cite-bracket">[</span>2<span class="cite-bracket">]</span></a></sup>
</p><p>Solid rockets can be throttled by using shaped grains that will vary their surface area over the course of the burn.<sup id="cite_ref-Sutton_8-2" class="reference"><a href="#cite_note-Sutton-8"><span class="cite-bracket">[</span>8<span class="cite-bracket">]</span></a></sup>
</p>
<div class="mw-heading mw-heading3"><h3 id="Energy_efficiency">Energy efficiency</h3></div>
<div role="note" class="hatnote navigation-not-searchable">Further information: <a href="Rocket#Energy_efficiency" title="Rocket">Rocket §&nbsp;Energy efficiency</a></div>

<p>Rocket engine nozzles are surprisingly efficient <a href="Heat_engines" class="mw-redirect" title="Heat engines">heat engines</a> for generating a high speed jet, as a consequence of the high combustion temperature and high <a href="Compression_ratio" title="Compression ratio">compression ratio</a>. Rocket nozzles give an excellent approximation to <a href="Adiabatic_expansion" class="mw-redirect" title="Adiabatic expansion">adiabatic expansion</a> which is a reversible process, and hence they give efficiencies which are very close to that of the <a href="Carnot_cycle" title="Carnot cycle">Carnot cycle</a>. Given the temperatures reached, over 60% efficiency can be achieved with chemical rockets.
</p><p>For a <i>vehicle</i> employing a rocket engine the energetic efficiency is very good if the vehicle speed approaches or somewhat exceeds the exhaust velocity (relative to launch); but at low speeds the <a href="Propulsive_efficiency" title="Propulsive efficiency">energy efficiency</a> goes to 0% at zero speed (as with all <a href="Jet_propulsion" title="Jet propulsion">jet propulsion</a>). See <a href="Rocket#Energy_efficiency" title="Rocket">Rocket energy efficiency</a> for more details.
</p>
<div style="clear:both;" class=""></div>
<div class="mw-heading mw-heading3"><h3 id="Thrust-to-weight_ratio">Thrust-to-weight ratio</h3></div>
<div role="note" class="hatnote navigation-not-searchable">Main article: <a href="Thrust-to-weight_ratio" title="Thrust-to-weight ratio">thrust-to-weight ratio</a></div>
<p>Rockets, of all the jet engines, indeed of essentially all engines, have the highest thrust-to-weight ratio. This is especially true for liquid-fueled rocket engines.
</p><p>This high performance is due to the small volume of <a href="Pressure_vessel" title="Pressure vessel">pressure vessels</a> that make up the engine—the pumps, pipes and combustion chambers involved. The lack of inlet duct and the use of dense liquid propellant allows the pressurisation system to be small and lightweight, whereas duct engines have to deal with air which has around three orders of magnitude lower density.
</p>
<table class="wikitable sortable">

<tbody><tr>
<th rowspan="2"><a href="Jet_engine" title="Jet engine">Jet</a> or
</th>
<th colspan="2">Mass
</th>
<th colspan="2">Thrust
</th>
<th rowspan="2"><a href="Thrust-to-weight_ratio" title="Thrust-to-weight ratio">Thrust-to-<br>weight ratio</a>
</th></tr>
<tr>
<th>(kg)
</th>
<th>(lb)
</th>
<th>(kN)
</th>
<th>(lbf)
</th></tr>
<tr>
<td><a href="RD-0410" title="RD-0410">RD-0410</a> nuclear rocket engine<sup id="cite_ref-astronautix1_10-0" class="reference"><a href="#cite_note-astronautix1-10"><span class="cite-bracket">[</span>10<span class="cite-bracket">]</span></a></sup><sup id="cite_ref-KBKhA-RD0410_11-0" class="reference"><a href="#cite_note-KBKhA-RD0410-11"><span class="cite-bracket">[</span>11<span class="cite-bracket">]</span></a></sup>
</td>
<td align="right">2,000
</td>
<td align="right">4,400
</td>
<td align="right">35.2
</td>
<td align="right">7,900
</td>
<td align="right">1.8
</td></tr>
<tr>
<td><a href="Pratt_%26_Whitney_J58" title="Pratt &amp; Whitney J58">J58</a> jet engine (<a href="Lockheed_SR-71_Blackbird" title="Lockheed SR-71 Blackbird">SR-71 Blackbird</a>)<sup id="cite_ref-12" class="reference"><a href="#cite_note-12"><span class="cite-bracket">[</span>12<span class="cite-bracket">]</span></a></sup><sup id="cite_ref-13" class="reference"><a href="#cite_note-13"><span class="cite-bracket">[</span>13<span class="cite-bracket">]</span></a></sup>
</td>
<td align="right">2,722
</td>
<td align="right">6,001
</td>
<td align="right">150
</td>
<td align="right">34,000
</td>
<td align="right">5.2
</td></tr>
<tr>
<td><a href="Rolls-Royce/Snecma_Olympus_593" title="Rolls-Royce/Snecma Olympus 593">Rolls-Royce/Snecma Olympus 593</a><br><a href="Turbojet" title="Turbojet">turbojet</a> with reheat (<a href="Concorde" title="Concorde">Concorde</a>)<sup id="cite_ref-14" class="reference"><a href="#cite_note-14"><span class="cite-bracket">[</span>14<span class="cite-bracket">]</span></a></sup>
</td>
<td align="right">3,175
</td>
<td align="right">7,000
</td>
<td align="right">169.2
</td>
<td align="right">38,000
</td>
<td align="right">5.4
</td></tr>
<tr>
<td><a href="Pratt_%26_Whitney_F119" title="Pratt &amp; Whitney F119">Pratt &amp; Whitney F119</a><sup id="cite_ref-15" class="reference"><a href="#cite_note-15"><span class="cite-bracket">[</span>15<span class="cite-bracket">]</span></a></sup>
</td>
<td align="right">1,800
</td>
<td align="right">3,900
</td>
<td align="right">91
</td>
<td align="right">20,500
</td>
<td align="right">7.95
</td></tr>
<tr>
<td>RD-0750 rocket engine, three-propellant mode<sup id="cite_ref-KBKhA-RD0750_16-0" class="reference"><a href="#cite_note-KBKhA-RD0750-16"><span class="cite-bracket">[</span>16<span class="cite-bracket">]</span></a></sup>
</td>
<td align="right">4,621
</td>
<td align="right">10,188
</td>
<td align="right">1,413
</td>
<td align="right">318,000
</td>
<td align="right">31.2
</td></tr>
<tr>
<td><a href="RD-0146" title="RD-0146">RD-0146</a> rocket engine<sup id="cite_ref-astronautix2_17-0" class="reference"><a href="#cite_note-astronautix2-17"><span class="cite-bracket">[</span>17<span class="cite-bracket">]</span></a></sup>
</td>
<td align="right">260
</td>
<td align="right">570
</td>
<td align="right">98
</td>
<td align="right">22,000
</td>
<td align="right">38.4
</td></tr>
<tr>
<td><a href="Aerojet_Rocketdyne" title="Aerojet Rocketdyne">Rocketdyne</a> <a href="RS-25" title="RS-25">RS-25</a> rocket engine<sup id="cite_ref-18" class="reference"><a href="#cite_note-18"><span class="cite-bracket">[</span>18<span class="cite-bracket">]</span></a></sup>
</td>
<td align="right">3,177
</td>
<td align="right">7,004
</td>
<td align="right">2,278
</td>
<td align="right">512,000
</td>
<td align="right">73.1
</td></tr>
<tr>
<td><a href="RD-180" title="RD-180">RD-180</a> rocket engine<sup id="cite_ref-19" class="reference"><a href="#cite_note-19"><span class="cite-bracket">[</span>19<span class="cite-bracket">]</span></a></sup>
</td>
<td align="right">5,393
</td>
<td align="right">11,890
</td>
<td align="right">4,152
</td>
<td align="right">933,000
</td>
<td align="right">78.5
</td></tr>
<tr>
<td><a href="RD-170" title="RD-170">RD-170</a> rocket engine
</td>
<td align="right">9,750
</td>
<td align="right">21,500
</td>
<td align="right">7,887
</td>
<td align="right">1,773,000
</td>
<td align="right">82.5
</td></tr>
<tr>
<td><a href="F-1_(rocket_engine)" class="mw-redirect" title="F-1 (rocket engine)">F-1</a> (<a href="Saturn_V" title="Saturn V">Saturn V</a> first stage)<sup id="cite_ref-20" class="reference"><a href="#cite_note-20"><span class="cite-bracket">[</span>20<span class="cite-bracket">]</span></a></sup>
</td>
<td align="right">8,391
</td>
<td align="right">18,499
</td>
<td align="right">7,740.5
</td>
<td align="right">1,740,100
</td>
<td align="right">94.1
</td></tr>
<tr>
<td><a href="NK-33" title="NK-33">NK-33</a> rocket engine<sup id="cite_ref-NK33_21-0" class="reference"><a href="#cite_note-NK33-21"><span class="cite-bracket">[</span>21<span class="cite-bracket">]</span></a></sup>
</td>
<td align="right">1,222
</td>
<td align="right">2,694
</td>
<td align="right">1,638
</td>
<td align="right">368,000
</td>
<td align="right">136.7
</td></tr>
<tr>
<td><a href="Merlin_1D" class="mw-redirect" title="Merlin 1D">Merlin 1D</a> rocket engine, full-thrust version
</td>
<td align="right">467
</td>
<td align="right">1,030
</td>
<td align="right">825
</td>
<td align="right">185,000
</td>
<td align="right">180.1
</td></tr></tbody></table>
<p>Of the liquid fuels used, density is lowest for <a href="Liquid_hydrogen" title="Liquid hydrogen">liquid hydrogen</a>. Although hydrogen/oxygen burning has the highest <a href="Specific_impulse" title="Specific impulse">specific impulse</a> of any in-use chemical rocket, hydrogen's very low density (about one-fourteenth that of water) requires larger and heavier turbopumps and pipework, which decreases the engine's thrust-to-weight ratio (for example the RS-25) compared to those that do not use hydrogen (NK-33).
</p>
<div class="mw-heading mw-heading2"><h2 id="Mechanical_issues">Mechanical issues</h2></div>
<p>Rocket combustion chambers are normally operated at fairly high pressure, typically 10–200<span class="nowrap">&nbsp;</span>bar (1–20<span class="nowrap">&nbsp;</span>MPa, 150–3,000<span class="nowrap">&nbsp;</span>psi). When operated within significant atmospheric pressure, higher combustion chamber pressures give better performance by permitting a larger and more efficient nozzle to be fitted without it being grossly overexpanded.
</p><p>However, these high pressures cause the outermost part of the chamber to be under very large <a href="Hoop_stress" class="mw-redirect" title="Hoop stress">hoop stresses</a> – rocket engines are <a href="Pressure_vessel" title="Pressure vessel">pressure vessels</a>.
</p><p>Worse, due to the high temperatures created in rocket engines the materials used tend to have a significantly lowered working tensile strength.
</p><p>In addition, significant temperature gradients are set up in the walls of the chamber and nozzle, these cause differential expansion of the inner liner that create <a href="Internal_stresses" class="mw-redirect" title="Internal stresses">internal stresses</a>.
</p>
<div class="mw-heading mw-heading3"><h3 id="Hard_starts">Hard starts</h3></div>
<p>A <b>hard start</b> refers to an over-pressure condition during start of a rocket engine at ignition. In the worst cases, this takes the form of an unconfined explosion, resulting in the damage or destruction of the engine.
</p><p>Rocket fuels, <a href="Hypergolic" class="mw-redirect" title="Hypergolic">hypergolic</a> or otherwise, must be introduced into the combustion chamber at the correct rate in order to have a controlled rate of production of hot gas.<sup id="cite_ref-22" class="reference"><a href="#cite_note-22"><span class="cite-bracket">[</span>22<span class="cite-bracket">]</span></a></sup> A "hard start" indicates that the quantity of combustible propellant that entered the combustion chamber prior to ignition was too large. The result is an excessive spike of pressure, possibly leading to structural failure or explosion.
</p><p>Avoiding hard starts involves careful timing of the ignition relative to valve timing or varying the mixture ratio so as to limit the maximum pressure that can occur or simply ensuring an adequate ignition source is present well prior to propellant entering the chamber.
</p><p>Explosions from hard starts usually cannot happen with purely gaseous propellants, since the amount of the gas present in the chamber is limited by the injector area relative to the throat area, and for practical designs, propellant mass escapes too quickly to be an issue.
</p><p>A famous example of a hard start was the explosion of <a href="Wernher_von_Braun" title="Wernher von Braun">Wernher von Braun</a>'s "1W" engine during a demonstration to General <a href="Walter_Dornberger" title="Walter Dornberger">Walter Dornberger</a> on December 21, 1932. Delayed ignition allowed the chamber to fill with alcohol and liquid oxygen, which exploded violently. Shrapnel was embedded in the walls, but nobody was hit.
</p>
<div class="mw-heading mw-heading2"><h2 id="Acoustic_issues">Acoustic issues</h2></div>
<p>The extreme vibration and acoustic environment inside a rocket motor commonly result in peak stresses well above mean values, especially in the presence of <a href="Organ_pipe" title="Organ pipe">organ pipe</a>-like resonances and gas turbulence.<sup id="cite_ref-23" class="reference"><a href="#cite_note-23"><span class="cite-bracket">[</span>23<span class="cite-bracket">]</span></a></sup>
</p>
<div class="mw-heading mw-heading3"><h3 id="Combustion_instabilities">Combustion instabilities</h3></div>
<p>The combustion may display undesired instabilities, of sudden or periodic nature. The pressure in the injection chamber may increase until the propellant flow through the injector plate decreases; a moment later the pressure drops and the flow increases, injecting more propellant in the combustion chamber which burns a moment later, and again increases the chamber pressure, repeating the cycle. This may lead to high-amplitude pressure oscillations, often in ultrasonic range, which may damage the motor. Oscillations of ±200&nbsp;psi at 25&nbsp;kHz were the cause of failures of early versions of the <a href="LGM-25C_Titan_II" title="LGM-25C Titan II">Titan II</a> missile second stage engines. The other failure mode is a <a href="Deflagration_to_detonation_transition" title="Deflagration to detonation transition">deflagration to detonation transition</a>; the supersonic <a href="Longitudinal_wave" title="Longitudinal wave">pressure wave</a> formed in the combustion chamber may destroy the engine.<sup id="cite_ref-titan2_24-0" class="reference"><a href="#cite_note-titan2-24"><span class="cite-bracket">[</span>24<span class="cite-bracket">]</span></a></sup>
</p><p>Combustion instability was also a problem during <a href="SM-65_Atlas" title="SM-65 Atlas">Atlas</a> development. The Rocketdyne engines used in the Atlas family were found to suffer from this effect in several static firing tests, and three missile launches exploded on the pad due to rough combustion in the booster engines. In most cases, it occurred while attempting to start the engines with a "dry start" method whereby the igniter mechanism would be activated prior to propellant injection. During the process of man-rating Atlas for <a href="Project_Mercury" title="Project Mercury">Project Mercury</a>, solving combustion instability was a high priority, and the final two Mercury flights sported an upgraded propulsion system with baffled injectors and a hypergolic igniter.
</p><p>The problem affecting Atlas vehicles was mainly the so-called "racetrack" phenomenon, where burning propellant would swirl around in a circle at faster and faster speeds, eventually producing vibration strong enough to rupture the engine, leading to complete destruction of the rocket. It was eventually solved by adding several baffles around the injector face to break up swirling propellant.
</p><p>More significantly, combustion instability was a problem with the Saturn <a href="F-1_(rocket_engine)" class="mw-redirect" title="F-1 (rocket engine)">F-1 engines</a>. Some of the early units tested exploded during static firing, which led to the addition of injector baffles.
</p><p>In the Soviet space program, combustion instability also proved a problem on some rocket engines, including the RD-107 engine used in the R-7 family and the RD-216 used in the R-14 family, and several failures of these vehicles occurred before the problem was solved. Soviet engineering and manufacturing processes never satisfactorily resolved combustion instability in larger RP-1/LOX engines, so the RD-171 engine used to power the Zenit family still used four smaller thrust chambers fed by a common engine mechanism.
</p><p>The combustion instabilities can be provoked by remains of cleaning solvents in the engine (e.g. the first attempted launch of a Titan II in 1962), reflected shock wave, initial instability after ignition, explosion near the nozzle that reflects into the combustion chamber, and many more factors. In stable engine designs the oscillations are quickly suppressed; in unstable designs they persist for prolonged periods. Oscillation suppressors are commonly used.
</p><p>Three different types of combustion instabilities occur:
</p>
<div class="mw-heading mw-heading4"><h4 id="Chugging">Chugging</h4></div>
<p>A low frequency oscillation in chamber pressure below 200 <a href="Hertz" title="Hertz">Hertz</a>. Usually it is caused by pressure variations in feed lines due to variations in acceleration of the vehicle, when rocket engines are building up thrust, are shut down or are being throttled.<sup id="cite_ref-sutton1975_25-0" class="reference"><a href="#cite_note-sutton1975-25"><span class="cite-bracket">[</span>25<span class="cite-bracket">]</span></a></sup><sup class="reference nowrap"><span title="Page / location: 261">: 261 </span></sup><sup id="cite_ref-HuzelAndHuang_4-1" class="reference"><a href="#cite_note-HuzelAndHuang-4"><span class="cite-bracket">[</span>4<span class="cite-bracket">]</span></a></sup><sup class="reference nowrap"><span title="Page / location: 146">: 146 </span></sup>
</p><p>Chugging can cause a worsening feedback loop, as cyclic variation in thrust causes longitudinal vibrations to travel up the rocket, causing the fuel lines to vibrate, which in turn do not deliver propellant smoothly into the engines. This phenomenon is known as "<a href="Pogo_oscillation" title="Pogo oscillation">pogo oscillations</a>" or "pogo", named after the <a href="Pogo_stick" title="Pogo stick">pogo stick</a>.<sup id="cite_ref-sutton1975_25-1" class="reference"><a href="#cite_note-sutton1975-25"><span class="cite-bracket">[</span>25<span class="cite-bracket">]</span></a></sup><sup class="reference nowrap"><span title="Page / location: 258">: 258 </span></sup>
</p><p>In the worst case, this may result in damage to the payload or vehicle. Chugging can be minimised by using several methods, such as installing energy-absorbing devices on feed lines.<sup id="cite_ref-sutton1975_25-2" class="reference"><a href="#cite_note-sutton1975-25"><span class="cite-bracket">[</span>25<span class="cite-bracket">]</span></a></sup><sup class="reference nowrap"><span title="Page / location: 259">: 259 </span></sup> Chugging may cause Screeching.<sup id="cite_ref-HuzelAndHuang_4-2" class="reference"><a href="#cite_note-HuzelAndHuang-4"><span class="cite-bracket">[</span>4<span class="cite-bracket">]</span></a></sup><sup class="reference nowrap"><span title="Page / location: 146">: 146 </span></sup>
</p>
<div class="mw-heading mw-heading4"><h4 id="Buzzing">Buzzing</h4></div>
<p>An intermediate frequency oscillation in chamber pressure between 200 and 1000 <a href="Hertz" title="Hertz">Hertz</a>. Usually caused due to insufficient pressure drop across the injectors.<sup id="cite_ref-sutton1975_25-3" class="reference"><a href="#cite_note-sutton1975-25"><span class="cite-bracket">[</span>25<span class="cite-bracket">]</span></a></sup><sup class="reference nowrap"><span title="Page / location: 261">: 261 </span></sup> It generally is mostly annoying, rather than being damaging.
</p><p>Buzzing is known to have adverse effects on engine performance and reliability, primarily as it causes <a href="Material_fatigue" class="mw-redirect" title="Material fatigue">material fatigue</a>.<sup id="cite_ref-HuzelAndHuang_4-3" class="reference"><a href="#cite_note-HuzelAndHuang-4"><span class="cite-bracket">[</span>4<span class="cite-bracket">]</span></a></sup><sup class="reference nowrap"><span title="Page / location: 147">: 147 </span></sup> In extreme cases combustion can end up being forced backwards through the injectors – this can cause explosions with monopropellants. Buzzing may cause Screeching.<sup id="cite_ref-sutton1975_25-4" class="reference"><a href="#cite_note-sutton1975-25"><span class="cite-bracket">[</span>25<span class="cite-bracket">]</span></a></sup><sup class="reference nowrap"><span title="Page / location: 261">: 261 </span></sup>
</p>
<div class="mw-heading mw-heading4"><h4 id="Screeching">Screeching</h4></div>
<p>A high frequency oscillation in chamber pressure above 1000 <a href="Hertz" title="Hertz">Hertz</a>, sometimes called screaming or squealing. The most immediately damaging, and the hardest to control. It is due to acoustics within the combustion chamber that often couples to the chemical combustion processes that are the primary drivers of the energy release, and can lead to unstable resonant "screeching" that commonly leads to catastrophic failure due to thinning of the insulating thermal boundary layer. Acoustic oscillations can be excited by thermal processes, such as the flow of hot air through a pipe or combustion in a chamber. Specifically, standing acoustic waves inside a chamber can be intensified if combustion occurs more intensely in regions where the pressure of the acoustic wave is maximal.<sup id="cite_ref-strutt1896_26-0" class="reference"><a href="#cite_note-strutt1896-26"><span class="cite-bracket">[</span>26<span class="cite-bracket">]</span></a></sup><sup id="cite_ref-27" class="reference"><a href="#cite_note-27"><span class="cite-bracket">[</span>27<span class="cite-bracket">]</span></a></sup><sup id="cite_ref-28" class="reference"><a href="#cite_note-28"><span class="cite-bracket">[</span>28<span class="cite-bracket">]</span></a></sup><sup id="cite_ref-sutton1975_25-5" class="reference"><a href="#cite_note-sutton1975-25"><span class="cite-bracket">[</span>25<span class="cite-bracket">]</span></a></sup>
</p><p>Such effects are very difficult to predict analytically during the design process, and have usually been addressed by expensive, time-consuming and extensive testing, combined with trial and error remedial correction measures.
</p><p>Screeching is often dealt with by detailed changes to injectors, changes in the propellant chemistry, vaporising the propellant before injection or use of <a href="Helmholtz_damper" class="mw-redirect" title="Helmholtz damper">Helmholtz dampers</a> within the combustion chambers to change the resonant modes of the chamber.
</p><p>Testing for the possibility of screeching is sometimes done by exploding small explosive charges outside the combustion chamber with a tube set tangentially to the combustion chamber near the injectors to determine the engine's <a href="Impulse_response" title="Impulse response">impulse response</a> and then evaluating the time response of the chamber pressure- a fast recovery indicates a stable system.
</p>
<div class="mw-heading mw-heading3"><h3 id="Exhaust_noise">Exhaust noise</h3></div>
<div role="note" class="hatnote navigation-not-searchable">Main article: <a href="Acoustic_signature" title="Acoustic signature">acoustic signature</a></div>
<p>For all but the very smallest sizes, rocket exhaust compared to other engines is generally very noisy. As the <a href="Hypersonic" class="mw-redirect" title="Hypersonic">hypersonic</a> exhaust mixes with the ambient air, <a href="Shock_wave" title="Shock wave">shock waves</a> are formed. The <a href="Space_Shuttle" title="Space Shuttle">Space Shuttle</a> generated over 200 <a href="DB(A)" class="mw-redirect" title="DB(A)">dB(A)</a> of noise around its base. To reduce this, and the risk of payload damage or injury to the crew atop the stack, the <a href="Mobile_launcher_platform" title="Mobile launcher platform">mobile launcher platform</a> was fitted with a <a href="Sound_Suppression_System" class="mw-redirect" title="Sound Suppression System">Sound Suppression System</a> that sprayed 1.1&nbsp;million litres (290,000&nbsp;US&nbsp;gal) of water around the base of the rocket in 41 seconds at launch time. Using this system kept sound levels within the payload bay to 142&nbsp;dB.<sup id="cite_ref-29" class="reference"><a href="#cite_note-29"><span class="cite-bracket">[</span>29<span class="cite-bracket">]</span></a></sup>
</p><p>The <a href="Sound_intensity" title="Sound intensity">sound intensity</a> from the shock waves generated depends on the size of the rocket and on the exhaust velocity. Such shock waves seem to account for the characteristic crackling and popping sounds produced by large rocket engines when heard live. These noise peaks typically overload microphones and audio electronics, and so are generally weakened or entirely absent in recorded or broadcast audio reproductions. For large rockets at close range, the acoustic effects could actually kill.<sup id="cite_ref-CR566_30-0" class="reference"><a href="#cite_note-CR566-30"><span class="cite-bracket">[</span>30<span class="cite-bracket">]</span></a></sup>
</p><p>More worryingly for space agencies, such sound levels can also damage the launch structure, or worse, be reflected back at the comparatively delicate rocket above. This is why so much water is typically used at launches. The water spray changes the acoustic qualities of the air and reduces or deflects the sound energy away from the rocket.
</p><p>Generally speaking, noise is most intense when a rocket is close to the ground, since the noise from the engines radiates up away from the jet, as well as reflecting off the ground. Also, when the vehicle is moving slowly, little of the chemical energy input to the engine can go into increasing the kinetic energy of the rocket (since useful power <i>P</i> transmitted to the vehicle is <span class="mwe-math-element mwe-math-element-inline"><span class="mwe-math-mathml-inline mwe-math-mathml-a11y" style="display: none;"><math xmlns="http://www.w3.org/1998/Math/MathML" alttext="{\displaystyle P=F*V}">
<semantics>
<mrow class="MJX-TeXAtom-ORD">
<mstyle displaystyle="true" scriptlevel="0">
<mi>P</mi>
<mo>=</mo>
<mi>F</mi>
<mo>∗<!-- ∗ --></mo>
<mi>V</mi>
</mstyle>
</mrow>
<annotation encoding="application/x-tex">{\displaystyle P=F*V}</annotation>
</semantics>
</math></span><img src="./5a72ed128e15e273b95f5b76e790341c6ee8b803.svg" class="mwe-math-fallback-image-inline mw-invert skin-invert" aria-hidden="true" style="vertical-align: -0.338ex; width:10.567ex; height:2.176ex;" alt="{\displaystyle P=F*V}" loading="lazy"></span> for thrust <i>F</i> and speed <i>V</i>). Then the largest portion of the energy is dissipated in the exhaust's interaction with the ambient air, producing noise. This noise can be reduced somewhat by flame trenches with roofs, by water injection around the jet and by deflecting the jet at an angle.
</p>
<div class="mw-heading mw-heading2"><h2 id="Rocket_engine_development">Rocket engine development</h2></div>
<div class="mw-heading mw-heading3"><h3 id="United_States">United States</h3></div>
<p>The development of the US rocket engine industry has been shaped by a complex web of relationships between government agencies, private companies, research institutions, and other stakeholders.
</p><p>Since the establishment of the first <a href="Liquid-propellant_rocket" title="Liquid-propellant rocket">liquid-propellant rocket</a> engine company (<a href="Reaction_Motors" title="Reaction Motors">Reaction Motors, Inc.</a>) in 1941 and the first government laboratory (<a href="Guggenheim_Aeronautical_Laboratory" title="Guggenheim Aeronautical Laboratory">GALCIT</a>) devoted to the subject, the US liquid-propellant rocket engine (LPRE) industry has undergone significant changes. At least 14 US companies have been involved in the design, development, manufacture, testing, and flight support operations of various types of rocket engines from 1940 to 2000. In contrast to other countries like Russia, China, or India, where only government or pseudogovernment organisations engage in this business, the US government relies heavily on private industry. These commercial companies are essential to the continued viability of the United States and its form of governance, as they compete with one another to provide cutting-edge rocket engines that meet the needs of the government, the military, and the private sector. In the United States the company that develops the LPRE usually is awarded the production contract.
</p><p>Generally, the need or demand for a new rocket engine comes from government agencies such as <a href="NASA" title="NASA">NASA</a> or the <a href="United_States_Department_of_Defense" title="United States Department of Defense">Department of Defense</a>. Once the need is identified, government agencies may issue <a href="Request_for_proposal" title="Request for proposal">requests for proposals</a> (RFPs) to solicit proposals from private companies and research institutions. Private companies and research institutions, in turn, may invest in research and development (R&amp;D) activities to develop new rocket engine technologies that meet the needs and specifications outlined in the RFPs.
</p><p>Alongside private companies, universities, independent research institutes and government laboratories also play a critical role in the research and development of rocket engines.
</p><p>Universities provide graduate and undergraduate education to train qualified technical personnel, and their research programs often contribute to the advancement of rocket engine technologies. More than 25 universities in the US have taught or are currently teaching courses related to Liquid Propellant Rocket Engines (LPREs), and their graduate and undergraduate education programs are considered one of their most important contributions. Universities such as Princeton University, Cornell University, Purdue University, Pennsylvania State University, University of Alabama, the Navy's Post-Graduate School, or the California Institute of Technology have conducted excellent R&amp;D work on topics related to the rocket engine industry.<sup id="cite_ref-:0_31-0" class="reference"><a href="#cite_note-:0-31"><span class="cite-bracket">[</span>31<span class="cite-bracket">]</span></a></sup> One of the earliest examples of the contribution of universities to the rocket engine industry is the work of the GALCIT in 1941. They demonstrated the first jet-assisted takeoff (JATO) rockets to the Army, leading to the establishment of the Jet Propulsion Laboratory.
</p><p>However the transfer of knowledge from research professors and their projects to the rocket engine industry has been a mixed experience. While some notable professors and relevant research projects have positively influenced industry practices and understanding of LPREs, the connection between university research and commercial companies has been inconsistent and weak.<sup id="cite_ref-:0_31-1" class="reference"><a href="#cite_note-:0-31"><span class="cite-bracket">[</span>31<span class="cite-bracket">]</span></a></sup> Universities were not always aware of the industry's specific needs, and engineers and designers in the industry had limited knowledge of university research. As a result, many university research programs remained relatively unknown to industry decision-makers. Furthermore, in the last few decades, certain university research projects, while interesting to professors, were not useful to the industry due to a lack of communication or relevance to industry needs.<sup id="cite_ref-:0_31-2" class="reference"><a href="#cite_note-:0-31"><span class="cite-bracket">[</span>31<span class="cite-bracket">]</span></a></sup>
</p><p>Government laboratories, including the Rocket Propulsion Laboratory (now part of Air Force Research Laboratory), Arnold Engineering Test Center, NASA Marshall Space Flight Center, Jet Propulsion Laboratory, Stennis Space Center, White Sands Proving Grounds, and NASA John H. Glenn Research Center, have played crucial roles in the development of liquid rocket propulsion engines (LPREs).<sup id="cite_ref-:0_31-3" class="reference"><a href="#cite_note-:0-31"><span class="cite-bracket">[</span>31<span class="cite-bracket">]</span></a></sup> They have conducted unbiased testing, guided work at US and some non-US contractors, performed research and development, and provided essential testing facilities including hover test facilities and simulated altitude test facilities and resources. Initially, private companies or foundations financed smaller test facilities, but since the 1950s, the U.S. government has funded larger test facilities at government laboratories. This approach reduced costs for the government by not building similar facilities at contractors' plants but increased complexity and expenses for contractors. Nonetheless, government laboratories have solidified their significance and contributed to LPRE advancements.
</p><p>LPRE programs have been subject to several cancellations in the United States, even after spending millions of dollars on their development. For example, the M-l LOX/LH2 LPRE, Titan I, and the RS-2200 aerospike, as well as several JATO units and large uncooled thrust chambers were cancelled. The cancellations of these programs were not related to the specific LPRE's performance or any issues with it. Instead, they were due to the cancellation of the vehicle programs the engine was intended for or budget cuts imposed by the government.
</p>
<div class="mw-heading mw-heading3"><h3 id="USSR">USSR</h3></div>
<p>Russia and the former Soviet Union was and still is the world's foremost nation in developing and building rocket engines. From 1950 to 1998, their organisations developed, built, and put into operation a larger number and a larger variety of liquid propellant rocket engine (LPRE) designs than any other country. Approximately 500 different LPREs have been developed before 2003. For comparison the United States has developed slightly more than 300 (before 2003). The Soviets also had the most rocket-propelled flight vehicles. They had more liquid propellant <a href="Ballistic_missile" title="Ballistic missile">ballistic missiles</a> and more <a href="Launch_vehicle" title="Launch vehicle">space launch vehicles</a> derived or converted from these decommissioned ballistic missiles than any other nation. As of the end of 1998, the Russians (or earlier the Soviet Union) had successfully launched 2573 <a href="Satellite" title="Satellite">satellites</a> with LPREs or almost 65% of the world total of 3973. All of these vehicle flights were made possible by the timely development of suitable high-performance reliable LPREs.<sup id="cite_ref-:0_31-4" class="reference"><a href="#cite_note-:0-31"><span class="cite-bracket">[</span>31<span class="cite-bracket">]</span></a></sup>
</p>
<div class="mw-heading mw-heading4"><h4 id="Institutions_and_actors">Institutions and actors</h4></div>
<p>Unlike many other countries where the development and production of rocket engines were consolidated within a single organisation, the Soviet Union took a different approach, they established numerous specialised <a href="OKB" title="OKB">design bureaus</a> (DB) which would compete for development contracts. These design bureaus, or "konstruktorskoye buro" (KB) in Russian were state run organisations which were primarily responsible for carrying out <a href="Research_and_development" title="Research and development">research, development</a> and <a href="Prototype" title="Prototype">prototyping</a> of advanced technologies usually related to <a href="Military_technology" title="Military technology">military hardware</a>, such as <a href="Turbojet" title="Turbojet">turbojet</a> <a href="Engine" title="Engine">engines</a>, aircraft components, <a href="Missile" title="Missile">missiles</a>, or <a href="Launch_vehicle" title="Launch vehicle">space launch vehicles</a>.
</p><p><a href="OKB" title="OKB">Design Bureaus</a> which specialised in rocket engines often possessed the necessary personnel, facilities, and equipment to conduct l<a href="Launch_vehicle_system_tests" title="Launch vehicle system tests">aboratory tests, flow tests, and ground testing of experimental rocket engines</a>. Some even had specialised facilities for testing very large engines, conducting <a href="Launch_vehicle_system_tests" title="Launch vehicle system tests">static firings</a> of engines installed in vehicle stages, or simulating altitude conditions during engine tests. In certain cases, engine testing, certification and <a href="Quality_control" title="Quality control">quality control</a> were outsourced to other organisations and locations with more suitable test facilities. Many DBs also had housing complexes, gymnasiums, and medical facilities intended to support the needs of their employees and their families.
</p><p>The Soviet Union's LPRE development effort saw significant growth during the 1960s and reached its peak in the 1970s. This era coincided with the <a href="Cold_War" title="Cold War">Cold War</a> between the Soviet Union and the United States, characterised by intense competition in spaceflight achievements. Between 14 and 17 Design Bureaus and research institutes were actively involved in developing LPREs during this period. These organisations received relatively steady support and funding due to high military and <a href="Soviet_space_program" title="Soviet space program">spaceflight priorities</a>, which facilitated the continuous development of new engine concepts and manufacturing methods.
</p><p>Once a mission with a new vehicle (missile or spacecraft) was established it was passed on to a design bureau whose role was to oversee the development of the entire rocket. If none of the previously developed rocket engines met the needs of the mission, a new rocket engine with specific requirements would be contracted to another DB specialised in LPRE development (oftentimes each DB had expertise in specific types of LPREs with different applications, propellants, or engine sizes). This meant that the development or design study of a rocket engine was always aimed at a specific application which entailed set requirements.
</p><p>When it comes to which DBs were awarded contracts for the development of new rocket engines either a single design bureau would be chosen or several design bureaus would be given the same contract which sometimes led to fierce competition between DBs.
</p><p>When only one DB was picked for the development, it was often the result of the relationship between a vehicle or system's chief designer and the chief designer of a rocket engine specialised DB. If the vehicle's chief designer was happy with previous work done by a certain design bureau it was not unusual to see continued reliance on that LPRE bureau for that class of engines. For example, all but one of the LPREs for submarine-launched missiles were developed by the same design bureau for the same vehicle development prime contractor.
</p><p>However, when two parallel engine development programs were supported in order to select the superior one for a specific application, several qualified rocket engine models were never used. This luxury of choice was not commonly available in other nations. However, the use of design bureaus also led to certain issues, including program cancellations and duplication. Some major programs were cancelled, resulting in the disposal or storage of previously developed engines.
</p><p>One notable example of duplication and cancellation was the development of engines for the R-9A ballistic missile. Two sets of engines were supported, but ultimately only one set was selected, leaving several perfectly functional engines unused. Similarly, for the ambitious heavy N-l space launch vehicle intended for lunar and planetary missions, the Soviet Union developed and put into production at least two engines for each of the six stages. Additionally, they developed alternate engines for a more advanced N-l vehicle. However, the program faced multiple flight failures, and with the United States' successful <a href="Moon_landing" title="Moon landing">Moon landing</a>, the program was ultimately cancelled, leaving the Soviet Union with a surplus of newly qualified engines without a clear purpose.
</p><p>These examples demonstrate the complex dynamics and challenges faced by the Soviet Union in managing the development and production of rocket engines through Design Bureaus.
</p>
<div class="mw-heading mw-heading4"><h4 id="Accidents">Accidents</h4></div>
<p>The development of rocket engines in the Soviet Union was marked by significant achievements, but it also carried ethical considerations due to numerous accidents and fatalities. From a <a href="Science_and_technology_studies" title="Science and technology studies">Science and Technology Studies</a> point of view, the ethical implications of these incidents shed light on the complex relationship between technology, human factors, and the prioritisation of scientific advancement over safety.
</p><p>The Soviet Union encountered a series of tragic accidents and mishaps in the development and operation of rocket engines. Notably, the USSR holds the unfortunate distinction of having experienced more injuries and deaths resulting from liquid propellant rocket engine (LPRE) accidents than any other country. These incidents brought into question the ethical considerations surrounding the development, testing, and operational use of rocket engines.
</p><p>One of the most notable disasters occurred in 1960 when the <a href="R-16_(missile)" title="R-16 (missile)">R-16</a> ballistic missile suffered a catastrophic accident on the launchpad at the <a href="T%C3%B6retam" title="Töretam">Tyuratam</a> launch facility. This incident resulted in the deaths of 124 engineers and military personnel, including Marshal M.I. Nedelin, a former deputy <a href="Minister_of_Defence_(Soviet_Union)" title="Minister of Defence (Soviet Union)">minister of defence</a>. The explosion occurred after the second-stage rocket engine suddenly ignited, causing the fully loaded missile to disintegrate. The explosion resulted from the ignition and explosion of the mixed <a href="Hypergolic_propellant" title="Hypergolic propellant">hypergolic propellants</a>, consisting of <a href="Nitric_acid" title="Nitric acid">nitric acid</a> with additives and <a href="Unsymmetrical_dimethylhydrazine" title="Unsymmetrical dimethylhydrazine">UDMH</a> (unsymmetrical dimethylhydrazine).
</p><p>While the immediate cause of the 1960 accident was attributed to a lack of protective circuits in the missile control unit, the ethical considerations surrounding LPRE accidents in the USSR extend beyond specific technical failures. The secrecy surrounding these accidents, which remained undisclosed for approximately three decades, raises concerns about transparency, accountability, and the protection of human life.
</p><p>The decision to keep fatal LPRE accidents hidden from the public eye reflects a broader ethical dilemma. The Soviet government, driven by the pursuit of scientific and technological superiority during the Cold War, sought to maintain an image of invincibility and conceal the failures that accompanied their advancements. This prioritisation of national prestige over the well-being and safety of workers raises questions about the ethical responsibility of the state and the organisations involved.
</p>
<div class="mw-heading mw-heading2"><h2 id="Testing">Testing</h2></div>
<p>Rocket engines are usually statically tested at a <a href="Rocket_engine_test_facility" title="Rocket engine test facility">test facility</a> before being put into production. For high altitude engines, either a shorter nozzle must be used, or the rocket must be tested in a large vacuum chamber.
</p>
<div class="mw-heading mw-heading2"><h2 id="Safety">Safety</h2></div>
<p><a href="Rocket" title="Rocket">Rocket</a> vehicles have a reputation for unreliability and danger; especially catastrophic failures. Contrary to this reputation, carefully designed rockets can be made arbitrarily reliable. In military use, rockets are not unreliable. However, one of the main non-military uses of rockets is for orbital launch. In this application, the premium has typically been placed on minimum weight, and it is difficult to achieve high reliability and low weight simultaneously. In addition, if the number of flights launched is low, there is a very high chance of a design, operations or manufacturing error causing destruction of the vehicle.
</p>
<div class="mw-heading mw-heading3"><h3 id="Saturn_family_(1961–1975)">Saturn family (1961–1975)</h3></div>
<p>The <a href="Rocketdyne_H-1" title="Rocketdyne H-1">Rocketdyne H-1</a> engine, used in a cluster of eight in the first stage of the <a href="Saturn_I" title="Saturn I">Saturn I</a> and <a href="Saturn_IB" title="Saturn IB">Saturn IB</a> <a href="Launch_vehicle" title="Launch vehicle">launch vehicles</a>, had no catastrophic failures in 152 engine-flights. The <a href="Pratt_and_Whitney" class="mw-redirect" title="Pratt and Whitney">Pratt and Whitney</a> <a href="RL10" title="RL10">RL10</a> engine, used in a cluster of six in the Saturn I second stage, had no catastrophic failures in 36 engine-flights.<sup id="cite_ref-RL10_32-0" class="reference"><a href="#cite_note-RL10-32"><span class="cite-bracket">[</span>notes 1<span class="cite-bracket">]</span></a></sup> The <a href="Rocketdyne_F-1" title="Rocketdyne F-1">Rocketdyne F-1</a> engine, used in a cluster of five in the first stage of the <a href="Saturn_V" title="Saturn V">Saturn V</a>, had no failures in 65 engine-flights. The <a href="Rocketdyne_J-2" title="Rocketdyne J-2">Rocketdyne J-2</a> engine, used in a cluster of five in the Saturn V second stage, and singly in the Saturn IB second stage and Saturn V third stage, had no catastrophic failures in 86 engine-flights.<sup id="cite_ref-J2fail_33-0" class="reference"><a href="#cite_note-J2fail-33"><span class="cite-bracket">[</span>notes 2<span class="cite-bracket">]</span></a></sup>
</p>
<div class="mw-heading mw-heading3"><h3 id="Space_Shuttle_(1981–2011)">Space Shuttle (1981–2011)</h3></div>
<p>The <a href="Space_Shuttle_Solid_Rocket_Booster" title="Space Shuttle Solid Rocket Booster">Space Shuttle Solid Rocket Booster</a>, used in pairs, caused <a href="Space_Shuttle_Challenger_disaster" title="Space Shuttle Challenger disaster">one notable catastrophic failure</a> in 270 engine-flights.
</p><p>The <a href="RS-25" title="RS-25">RS-25</a>, used in a cluster of three, flew in 46 refurbished engine units. These made a total of 405 engine-flights with no catastrophic in-flight failures. A single in-flight <a href="RS-25" title="RS-25">RS-25</a> engine failure occurred during <span class="nowrap"><a href="Space_Shuttle" title="Space Shuttle">Space Shuttle</a></span> <a href="Space_Shuttle_Challenger" title="Space Shuttle Challenger"><i>Challenger</i></a>'s <a href="STS-51-F" title="STS-51-F">STS-51-F</a> mission.<sup id="cite_ref-P&amp;WFS_34-0" class="reference"><a href="#cite_note-P&amp;WFS-34"><span class="cite-bracket">[</span>32<span class="cite-bracket">]</span></a></sup> This failure had no effect on mission objectives or duration.<sup id="cite_ref-Hale_35-0" class="reference"><a href="#cite_note-Hale-35"><span class="cite-bracket">[</span>33<span class="cite-bracket">]</span></a></sup>
</p>
<div class="mw-heading mw-heading2"><h2 id="Cooling">Cooling</h2></div>
<p>For efficiency reasons, higher temperatures are desirable, but materials lose their strength if the temperature becomes too high. Rockets run with combustion temperatures that can reach 6,000&nbsp;°F (3,300&nbsp;°C; 3,600&nbsp;K).<sup id="cite_ref-HuzelAndHuang_4-4" class="reference"><a href="#cite_note-HuzelAndHuang-4"><span class="cite-bracket">[</span>4<span class="cite-bracket">]</span></a></sup><sup class="reference nowrap"><span title="Page / location: 98">: 98 </span></sup>
</p><p>Most other jet engines have gas turbines in the hot exhaust. Due to their larger surface area, they are harder to cool and hence there is a need to run the combustion processes at much lower temperatures, losing efficiency. In addition, <a href="https://en.wiktionary.org/wiki/duct_engine" class="extiw external" title="wiktionary:duct engine">duct engines</a> use air as an oxidant, which contains 78% largely unreactive nitrogen, which dilutes the reaction and lowers the temperatures.<sup id="cite_ref-Sutton_8-3" class="reference"><a href="#cite_note-Sutton-8"><span class="cite-bracket">[</span>8<span class="cite-bracket">]</span></a></sup> Rockets have none of these inherent combustion temperature limiters.
</p><p>The temperatures reached by combustion in rocket engines often substantially exceed the melting points of the nozzle and combustion chamber materials (about 1,200 K for <a href="Copper" title="Copper">copper</a>). Most construction materials will also combust if exposed to high temperature oxidiser, which leads to a number of design challenges. The nozzle and combustion chamber walls must not be allowed to combust, melt, or vaporize (sometimes facetiously termed an "engine-rich exhaust").
</p><p>Rockets that use common construction materials such as aluminium, steel, nickel or copper alloys must employ cooling systems to limit the temperatures that engine structures experience. <a href="Regenerative_cooling_(rocket)" class="mw-redirect" title="Regenerative cooling (rocket)">Regenerative cooling</a>, where the propellant is passed through tubes around the combustion chamber or nozzle, and other techniques, such as film cooling, are employed to give longer nozzle and chamber life. These techniques ensure that a gaseous thermal <a href="Boundary_layer" title="Boundary layer">boundary layer</a> touching the material is kept below the temperature which would cause the material to catastrophically fail.
</p><p>Material exceptions that can sustain rocket combustion temperatures to a certain degree are <a href="Reinforced_carbon%E2%80%93carbon" title="Reinforced carbon–carbon">carbon–carbon materials</a> and <a href="Rhenium" title="Rhenium">rhenium</a>, although both are subject to oxidation under certain conditions. Other <a href="Refractory" title="Refractory">refractory</a> alloys, such as alumina, <a href="Molybdenum" title="Molybdenum">molybdenum</a>, <a href="Tantalum" title="Tantalum">tantalum</a> or <a href="Tungsten" title="Tungsten">tungsten</a> have been tried, but were given up on due to various issues.<sup id="cite_ref-RocketProp8_36-0" class="reference"><a href="#cite_note-RocketProp8-36"><span class="cite-bracket">[</span>34<span class="cite-bracket">]</span></a></sup>
</p><p>Materials technology, combined with the engine design, is a limiting factor in chemical rockets.
</p><p>In rockets, the <a href="Heat_flux" title="Heat flux">heat fluxes</a> that can pass through the wall are among the highest in engineering; fluxes are generally in the range of 0.8–80 MW/m<sup>2</sup> (0.5-50 <a href="BTU" class="mw-redirect" title="BTU">BTU</a>/in<sup>2</sup>-sec).<sup id="cite_ref-HuzelAndHuang_4-5" class="reference"><a href="#cite_note-HuzelAndHuang-4"><span class="cite-bracket">[</span>4<span class="cite-bracket">]</span></a></sup><sup class="reference nowrap"><span title="Page / location: 98">: 98 </span></sup> The strongest heat fluxes are found at the throat, which often sees twice that found in the associated chamber and nozzle. This is due to the combination of high speeds (which gives a very thin boundary layer), and although lower than the chamber, the high temperatures seen there. (See <a href="#Nozzle">§&nbsp;Nozzle</a> above for temperatures in nozzle).
</p><p>In rockets the coolant methods include:<sup id="cite_ref-HuzelAndHuang_4-6" class="reference"><a href="#cite_note-HuzelAndHuang-4"><span class="cite-bracket">[</span>4<span class="cite-bracket">]</span></a></sup><sup class="reference nowrap"><span title="Page / location: 98–99">: 98–99 </span></sup>
</p>
<ol><li><a href="Ablation" title="Ablation">Ablative</a>: The combustion chamber inside walls are lined with a material that traps heat and carries it away with the exhaust as it vaporizes.</li>
<li><a href="Radiative_cooling" title="Radiative cooling">Radiative cooling</a>: The engine is made of one or several <a href="Refractory" title="Refractory">refractory</a> materials, which take heat flux until its outer thrust chamber wall glows red- or white-hot, radiating the heat away.</li>
<li>Dump cooling: A cryogenic propellant, usually <a href="Hydrogen" title="Hydrogen">hydrogen</a>, is passed around the nozzle and dumped. This cooling method has various issues, such as wasting propellant. It is only used rarely.</li>
<li><a href="Regenerative_cooling_(rocket)" class="mw-redirect" title="Regenerative cooling (rocket)">Regenerative cooling</a>: The fuel (and possibly, the oxidiser) of a <a href="Liquid_rocket_engine" class="mw-redirect" title="Liquid rocket engine">liquid rocket engine</a> is routed around the nozzle before being injected into the combustion chamber or preburner. This is the most widely applied method of rocket engine cooling.</li>
<li>Film cooling: The engine is designed with rows of multiple orifices lining the inside wall through which additional propellant is injected, cooling the chamber wall as it evaporates. This method is often used in cases where the heat fluxes are especially high, likely in combination with <a href="Regenerative_cooling_(rocket)" class="mw-redirect" title="Regenerative cooling (rocket)">regenerative cooling</a>. A more efficient subtype of film cooling is <a href="Transpiration_cooling" title="Transpiration cooling">transpiration cooling</a>, in which propellant passes through a <a href="Porous" class="mw-redirect" title="Porous">porous</a> inner combustion chamber wall and transpirates. So far, this method has not seen usage due to various issues with this concept.</li></ol>
<p>Rocket engines may also use several cooling methods. Examples:
</p>
<ul><li>Regeneratively and film cooled combustion chamber and nozzle: <a href="V-2_rocket" title="V-2 rocket">V-2</a> Rocket Engine<sup id="cite_ref-37" class="reference"><a href="#cite_note-37"><span class="cite-bracket">[</span>35<span class="cite-bracket">]</span></a></sup></li>
<li>Regeneratively cooled combustion chamber with a film cooled nozzle extension: <a href="Rocketdyne_F-1" title="Rocketdyne F-1">Rocketdyne F-1 Engine</a><sup id="cite_ref-38" class="reference"><a href="#cite_note-38"><span class="cite-bracket">[</span>36<span class="cite-bracket">]</span></a></sup></li>
<li>Regeneratively cooled combustion chamber with an ablatively cooled nozzle extension: The <a href="LR-91" class="mw-redirect" title="LR-91">LR-91</a> rocket engine<sup id="cite_ref-39" class="reference"><a href="#cite_note-39"><span class="cite-bracket">[</span>37<span class="cite-bracket">]</span></a></sup></li>
<li>Ablatively and film cooled combustion chamber with a radiatively cooled nozzle extension: <a href="Lunar_module_descent_engine" class="mw-redirect" title="Lunar module descent engine">Lunar module descent engine</a> (LMDE), <a href="Apollo_command_and_service_module#Service_propulsion_system" title="Apollo command and service module">Service propulsion system engine</a> (SPS)<sup id="cite_ref-40" class="reference"><a href="#cite_note-40"><span class="cite-bracket">[</span>38<span class="cite-bracket">]</span></a></sup></li>
<li>Radiatively and film cooled combustion chamber with a radiatively cooled nozzle extension: <a href="R-4D" title="R-4D">R-4D</a> storable propellant thrusters<sup id="cite_ref-RocketProp8_36-1" class="reference"><a href="#cite_note-RocketProp8-36"><span class="cite-bracket">[</span>34<span class="cite-bracket">]</span></a></sup></li></ul>
<p>In all cases, another effect that aids in cooling the rocket engine chamber wall is a thin layer of combustion gases (a <a href="Boundary_layer" title="Boundary layer">boundary layer</a>) that is notably cooler than the combustion temperature. Disruption of the boundary layer may occur during cooling failures or combustion instabilities, and wall failure typically occurs soon after.
</p><p>With regenerative cooling a second boundary layer is found in the coolant channels around the chamber. This boundary layer thickness needs to be as small as possible, since the boundary layer acts as an insulator between the wall and the coolant. This may be achieved by making the coolant <a href="Velocity" title="Velocity">velocity</a> in the channels as high as possible.<sup id="cite_ref-HuzelAndHuang_4-7" class="reference"><a href="#cite_note-HuzelAndHuang-4"><span class="cite-bracket">[</span>4<span class="cite-bracket">]</span></a></sup><sup class="reference nowrap"><span title="Page / location: 105–106">: 105–106 </span></sup>
</p><p>Liquid-fuelled engines are often run <a href="Air-fuel_ratio" class="mw-redirect" title="Air-fuel ratio">fuel-rich</a>, which lowers combustion temperatures. This reduces heat loads on the engine and allows lower cost materials and a simplified cooling system. This can also <i>increase</i> performance by lowering the average molecular weight of the exhaust and increasing the efficiency with which combustion heat is converted to kinetic exhaust energy.
</p>
<div class="mw-heading mw-heading2"><h2 id="Chemistry">Chemistry</h2></div>
<p><a href="Rocket_propellant" title="Rocket propellant">Rocket propellants</a> require a high energy per unit mass (<a href="Specific_energy" title="Specific energy">specific energy</a>), which must be balanced against the tendency of highly energetic propellants to spontaneously explode. Assuming that the chemical potential energy of the propellants can be safely stored, the combustion process results in a great deal of heat being released. A significant fraction of this heat is transferred to kinetic energy in the engine nozzle, propelling the rocket forward in combination with the mass of combustion products released.
</p><p>Ideally all the reaction energy appears as kinetic energy of the exhaust gases, as exhaust velocity is the single most important performance parameter of an engine. However, real exhaust species are <a href="Molecule" title="Molecule">molecules</a>, which typically have translation, vibrational, and <a href="Rotational_modes" class="mw-redirect" title="Rotational modes">rotational modes</a> with which to dissipate energy. Of these, only translation can do useful work to the vehicle, and while energy does transfer between modes this process occurs on a timescale far in excess of the time required for the exhaust to leave the nozzle.
</p><p>The more <a href="Chemical_bond" title="Chemical bond">chemical bonds</a> an exhaust molecule has, the more rotational and vibrational modes it will have. Consequently, it is generally desirable for the exhaust species to be as simple as possible, with a diatomic molecule composed of light, abundant atoms such as H<sub>2</sub> being ideal in practical terms. However, in the case of a chemical rocket, hydrogen is a reactant and <a href="Reducing_agent" title="Reducing agent">reducing agent</a>, not a product. An <a href="Oxidizing_agent" title="Oxidizing agent">oxidizing agent</a>, most typically oxygen or an oxygen-rich species, must be introduced into the combustion process, adding mass and chemical bonds to the exhaust species.
</p><p>An additional advantage of light molecules is that they may be accelerated to high velocity at temperatures that can be contained by currently available materials - the high gas temperatures in rocket engines pose serious problems for the engineering of survivable motors.
</p><p>Liquid <a href="Hydrogen" title="Hydrogen">hydrogen</a> (LH2) and <a href="Oxygen" title="Oxygen">oxygen</a> (LOX, or LO2), are the most effective propellants in terms of exhaust velocity that have been widely used to date, though a few exotic combinations involving boron or liquid ozone are potentially somewhat better in theory if various practical problems could be solved.<sup id="cite_ref-41" class="reference"><a href="#cite_note-41"><span class="cite-bracket">[</span>39<span class="cite-bracket">]</span></a></sup>
</p><p>When computing the specific reaction energy of a given propellant combination, the entire mass of the propellants (both fuel and oxidiser) must be included. The exception is in the case of air-breathing engines, which use atmospheric oxygen and consequently have to carry less mass for a given energy output. Fuels for car or <a href="Turbojet_engine" class="mw-redirect" title="Turbojet engine">turbojet engines</a> have a much better effective energy output per unit mass of propellant that must be carried, but are similar per unit mass of fuel.
</p><p>Computer programs that predict the performance of propellants in rocket engines are available.<sup id="cite_ref-42" class="reference"><a href="#cite_note-42"><span class="cite-bracket">[</span>40<span class="cite-bracket">]</span></a></sup><sup id="cite_ref-43" class="reference"><a href="#cite_note-43"><span class="cite-bracket">[</span>41<span class="cite-bracket">]</span></a></sup><sup id="cite_ref-44" class="reference"><a href="#cite_note-44"><span class="cite-bracket">[</span>42<span class="cite-bracket">]</span></a></sup>
</p>
<div class="mw-heading mw-heading2"><h2 id="Ignition">Ignition</h2></div>
<div role="note" class="hatnote navigation-not-searchable">Further information: <a href="Combustion" title="Combustion">Combustion</a></div>
<p>With liquid and hybrid rockets, immediate ignition of the propellants as they first enter the combustion chamber is essential.
</p><p>With liquid propellants (but not gaseous), failure to ignite within milliseconds usually causes too much liquid propellant to be inside the chamber, and if/when ignition occurs the amount of hot gas created can exceed the maximum design pressure of the chamber, causing a catastrophic failure of the pressure vessel. This is sometimes called a <i><a href="Hard_start" class="mw-redirect" title="Hard start">hard start</a></i> or a <i>rapid unscheduled disassembly</i> (RUD).<sup id="cite_ref-aw20121126_45-0" class="reference"><a href="#cite_note-aw20121126-45"><span class="cite-bracket">[</span>43<span class="cite-bracket">]</span></a></sup>
</p><p>Ignition can be achieved by a number of different methods; a pyrotechnic charge can be used, a plasma torch can be used, or electric spark ignition<sup id="cite_ref-nsf20161003_3-1" class="reference"><a href="#cite_note-nsf20161003-3"><span class="cite-bracket">[</span>3<span class="cite-bracket">]</span></a></sup> may be employed. Some fuel/oxidiser combinations ignite on contact (<a href="Hypergolic" class="mw-redirect" title="Hypergolic">hypergolic</a>), and non-hypergolic fuels can be "chemically ignited" by priming the fuel lines with hypergolic propellants (popular in Russian engines).
</p><p>Gaseous propellants generally will not cause <a href="Hard_start" class="mw-redirect" title="Hard start">hard starts</a>, with rockets the total injector area is less than the throat thus the chamber pressure tends to ambient prior to ignition and high pressures cannot form even if the entire chamber is full of flammable gas at ignition.
</p><p>Solid propellants are usually ignited with one-shot pyrotechnic devices and combustion usually proceeds through total consumption of the propellants.<sup id="cite_ref-Sutton_8-4" class="reference"><a href="#cite_note-Sutton-8"><span class="cite-bracket">[</span>8<span class="cite-bracket">]</span></a></sup>
</p><p>Once ignited, rocket chambers are self-sustaining and igniters are not needed and combustion usually proceeds through total consumption of the propellants. Indeed, chambers often spontaneously reignite if they are restarted after being shut down for a few seconds. Unless designed for re-ignition, when cooled, many rockets cannot be restarted without at least minor maintenance, such as replacement of the pyrotechnic igniter or even refueling of the propellants.<sup id="cite_ref-Sutton_8-5" class="reference"><a href="#cite_note-Sutton-8"><span class="cite-bracket">[</span>8<span class="cite-bracket">]</span></a></sup>
</p>
<div class="mw-heading mw-heading2"><h2 id="Jet_physics">Jet physics</h2></div>

<p>Rocket jets vary depending on the rocket engine, design altitude, altitude, thrust and other factors.
</p><p>Carbon-rich exhausts from kerosene-based fuels such as <a href="RP-1" title="RP-1">RP-1</a> are often orange in colour due to the <a href="Black-body_radiation" title="Black-body radiation">black-body radiation</a> of the unburnt particles, in addition to the blue <a href="Swan_band" title="Swan band">Swan bands</a>. <a href="High_test_peroxide" class="mw-redirect" title="High test peroxide">Peroxide</a> oxidiser-based rockets and hydrogen rocket jets contain largely <a href="Steam" title="Steam">steam</a> and are nearly invisible to the naked eye but shine brightly in the <a href="Ultraviolet" title="Ultraviolet">ultraviolet</a> and <a href="Infrared" title="Infrared">infrared</a> ranges. Jets from <a href="Solid-propellant_rocket" title="Solid-propellant rocket">solid-propellant rockets</a> can be highly visible, as the propellant frequently contains metals such as elemental aluminium which burns with an orange-white flame and adds energy to the combustion process. Rocket engines which burn liquid hydrogen and oxygen will exhibit a nearly transparent exhaust, due to it being mostly <a href="Superheated_steam" title="Superheated steam">superheated steam</a> (water vapour), plus some unburned hydrogen.
</p><p>The nozzle is usually over-expanded at sea level, and the exhaust can exhibit visible <a href="Shock_diamonds" class="mw-redirect" title="Shock diamonds">shock diamonds</a> through a <a href="Schlieren#Schlieren_flow_visualization" title="Schlieren">schlieren effect</a> caused by the <a href="Incandescence" class="mw-redirect" title="Incandescence">incandescence</a> of the exhaust gas.
</p><p>The shape of the jet varies for a fixed-area nozzle as the expansion ratio varies with altitude: at high altitude all rockets are grossly under-expanded, and a quite small percentage of exhaust gases actually end up expanding forwards.
</p>
<div class="mw-heading mw-heading2"><h2 id="Types_of_rocket_engines">Types of rocket engines</h2></div>
<div class="mw-heading mw-heading3"><h3 id="Physically_powered">Physically powered</h3></div>
<table class="wikitable">

<tbody><tr>
<th>Type
</th>
<th>Description
</th>
<th>Advantages
</th>
<th>Disadvantages
</th></tr>
<tr>
<th><a href="Water_rocket" title="Water rocket">Water rocket</a>
</th>
<td>Partially filled pressurised carbonated drinks container with tail and nose weighting
</td>
<td>Very simple to build
</td>
<td>Altitude typically limited to a few hundred feet or so (world record is 830 meters, or 2,723 feet)
</td></tr>
<tr>
<th><a href="Cold_gas_thruster" title="Cold gas thruster">Cold gas thruster</a>
</th>
<td>A non-combusting form, used for <a href="Vernier_thruster" title="Vernier thruster">vernier thrusters</a>
</td>
<td>Non-contaminating exhaust
</td>
<td>Extremely low performance
</td></tr></tbody></table>
<div class="mw-heading mw-heading3"><h3 id="Chemically_powered">Chemically powered</h3></div>
<div role="note" class="hatnote navigation-not-searchable">See also: <a href="Liquid_rocket_propellant" title="Liquid rocket propellant">Liquid rocket propellant</a></div>
<table class="wikitable">

<tbody><tr>
<th>Type
</th>
<th>Description
</th>
<th>Advantages
</th>
<th>Disadvantages
</th></tr>
<tr>
<th><a href="Solid-propellant_rocket" title="Solid-propellant rocket">Solid-propellant rocket</a>
</th>
<td>Ignitable, self-sustaining solid fuel/oxidiser mixture ("grain") with central hole and nozzle
</td>
<td>Simple, often no <a href="Moving_parts" title="Moving parts">moving parts</a>, reasonably good mass fraction, reasonable <a href="Specific_Impulse" class="mw-redirect" title="Specific Impulse"><i>I</i><sub>sp</sub></a>. A thrust schedule can be designed into the grain.
</td>
<td>Throttling, burn termination, and reignition require special designs. Handling issues from ignitable mixture. Lower performance than liquid rockets. If grain cracks it can block nozzle with disastrous results. Grain cracks burn and widen during burn. Refueling harder than simply filling tanks. Cannot be turned off after ignition; will fire until all solid fuel is depleted.
</td></tr>
<tr>
<th><a href="Hybrid-propellant_rocket" title="Hybrid-propellant rocket">Hybrid-propellant rocket</a>
</th>
<td>Separate oxidiser/fuel; typically the oxidiser is liquid and kept in a tank and the fuel is solid.
</td>
<td>Quite simple, solid fuel is essentially inert without oxidiser, safer; cracks do not escalate, throttleable and easy to switch off.
</td>
<td>Some oxidisers are monopropellants, can explode in own right; mechanical failure of solid propellant can block nozzle (very rare with rubberised propellant), central hole widens over burn and negatively affects mixture ratio.
</td></tr>
<tr>
<th><a href="Monopropellant_rocket" title="Monopropellant rocket">Monopropellant rocket</a>
</th>
<td>Propellant (such as hydrazine, hydrogen peroxide or nitrous oxide) flows over a catalyst and exothermically decomposes; hot gases are emitted through nozzle.
</td>
<td>Simple in concept, throttleable, low temperatures in combustion chamber
</td>
<td>Catalysts can be easily contaminated, monopropellants can detonate if contaminated or provoked, <a href="Specific_Impulse" class="mw-redirect" title="Specific Impulse"><i>I</i><sub>sp</sub></a> is perhaps 1/3 of best liquids
</td></tr>
<tr>
<th><a href="Liquid_bipropellant_rocket_engine" class="mw-redirect" title="Liquid bipropellant rocket engine">Bipropellant rocket</a>
</th>
<td>Two fluid (typically liquid) propellants are introduced through injectors into combustion chamber and burnt.
</td>
<td>Up to ≈99% efficient combustion with excellent mixture control, throttleable, can be used with turbopumps which permits incredibly lightweight tanks, can be safe with extreme care
</td>
<td>Pumps needed for high performance are expensive to design, huge thermal fluxes across combustion chamber wall can impact reuse, failure modes include major explosions, a lot of plumbing is needed.
</td></tr>
<tr>
<th><a href="Methane-oxygen_gaseous_thruster" class="mw-redirect" title="Methane-oxygen gaseous thruster">Gas-gas rocket</a>
</th>
<td>A bipropellant thruster using gas propellant for both the oxidiser and fuel
</td>
<td>Higher-performance than cold gas thrusters
</td>
<td>Lower performance than liquid-based engines
</td></tr>
<tr>
<th><a href="Dual_mode_propulsion_rocket" title="Dual mode propulsion rocket">Dual mode propulsion rocket</a>
</th>
<td>Rocket takes off as a bipropellant rocket, then turns to using just one propellant as a monopropellant.
</td>
<td>Simplicity and ease of control
</td>
<td>Lower performance than bipropellants
</td></tr>
<tr>
<th><a href="Tripropellant_rocket" title="Tripropellant rocket">Tripropellant rocket</a>
</th>
<td>Three different propellants (usually hydrogen, hydrocarbon, and liquid oxygen) are introduced into a combustion chamber in variable mixture ratios, or multiple engines are used with fixed propellant mixture ratios and throttled or shut down
</td>
<td>Reduces take-off weight, since hydrogen is lighter; combines good thrust to weight with high average <a href="Specific_impulse" title="Specific impulse"><i>I</i><sub>sp</sub></a>, improves payload for launching from Earth by a sizeable percentage
</td>
<td>Similar issues to bipropellant, but with more plumbing, more research and development
</td></tr>
<tr>
<th><a href="Air-augmented_rocket" title="Air-augmented rocket">Air-augmented rocket</a>
</th>
<td>Essentially a ramjet where intake air is compressed and burnt with the exhaust from a rocket
</td>
<td>Mach 0 to Mach 4.5+ (can also run exoatmospheric), good efficiency at Mach 2 to 4
</td>
<td>Similar efficiency to rockets at low speed or exoatmospheric, inlet difficulties, a relatively undeveloped and unexplored type, cooling difficulties, very noisy, thrust/weight ratio is similar to ramjets.
</td></tr>
<tr>
<th><a href="Turborocket" class="mw-redirect" title="Turborocket">Turborocket</a>
</th>
<td>A combined cycle turbojet/rocket where an additional oxidiser such as oxygen is added to the airstream to increase maximum altitude
</td>
<td>Very close to existing designs, operates in very high altitude, wide range of altitude and airspeed
</td>
<td>Atmospheric airspeed limited to same range as turbojet engine, carrying oxidiser like <a href="LOX" class="mw-redirect" title="LOX">LOX</a> can be dangerous. Much heavier than simple rockets.
</td></tr>
<tr>
<th><a href="Precooled_jet_engine" title="Precooled jet engine">Precooled jet engine</a> / <a href="Liquid_air_cycle_engine" title="Liquid air cycle engine">LACE</a> (combined cycle with rocket)
</th>
<td>Intake air is chilled to very low temperatures at inlet before passing through a ramjet or turbojet engine. Can be combined with a rocket engine for orbital insertion.
</td>
<td>Easily tested on ground. High thrust/weight ratios are possible (≈14) together with good fuel efficiency over a wide range of airspeeds, mach 0–5.5+; this combination of efficiencies may permit launching to orbit, single stage, or very rapid intercontinental travel.
</td>
<td>Exists only at the lab prototyping stage. Examples include <a href="RB545" class="mw-redirect" title="RB545">RB545</a>, <a href="Reaction_Engines_SABRE" class="mw-redirect" title="Reaction Engines SABRE">SABRE</a>, <a href="ATREX" title="ATREX">ATREX</a>
</td></tr></tbody></table>
<div class="mw-heading mw-heading3"><h3 id="Electrically_powered">Electrically powered</h3></div>
<div role="note" class="hatnote navigation-not-searchable">Main article: <a href="Electrically_powered_spacecraft_propulsion" class="mw-redirect" title="Electrically powered spacecraft propulsion">Electrically powered spacecraft propulsion</a></div>
<table class="wikitable">

<tbody><tr>
<th>Type
</th>
<th>Description
</th>
<th>Advantages
</th>
<th>Disadvantages
</th></tr>
<tr>
<th><a href="Resistojet_rocket" title="Resistojet rocket">Resistojet rocket</a> (electric heating)
</th>
<td>Energy is imparted to a usually inert fluid serving as reaction mass via <a href="Joule_heating" title="Joule heating">Joule heating</a> of a heating element. May also be used to impart extra energy to a monopropellant.
</td>
<td>Efficient where electrical power is at a lower premium than mass. Higher <a href="Specific_impulse" title="Specific impulse"><i>I</i><sub>sp</sub></a> than monopropellant alone, about 40% higher.
</td>
<td>Requires a lot of power, hence typically yields low thrust.
</td></tr>
<tr>
<th><a href="Arcjet_rocket" title="Arcjet rocket">Arcjet rocket</a> (chemical burning aided by electrical discharge)
</th>
<td>Identical to resistojet except the heating element is replaced with an electrical arc, eliminating the physical requirements of the heating element.
</td>
<td>1,600 seconds <a href="Specific_impulse" title="Specific impulse"><i>I</i><sub>sp</sub></a>
</td>
<td>Very low thrust and high power, performance is similar to <a href="Ion_drive" class="mw-redirect" title="Ion drive">ion drive</a>.
</td></tr>
<tr>
<th><a href="Variable_specific_impulse_magnetoplasma_rocket" class="mw-redirect" title="Variable specific impulse magnetoplasma rocket">Variable specific impulse magnetoplasma rocket</a>
</th>
<td>Microwave heated plasma with magnetic throat/nozzle
</td>
<td>Variable <i>I</i><sub>sp</sub> from 1,000 seconds to 10,000 seconds
</td>
<td>Similar thrust/weight ratio with ion drives (worse), thermal issues, as with ion drives very high power requirements for significant thrust, significant need for advanced nuclear reactors, never flown, requires low temperatures for superconductors to work
</td></tr>
<tr>
<th><a href="Pulsed_plasma_thruster" title="Pulsed plasma thruster">Pulsed plasma thruster</a> (electric arc heating; emits plasma)
</th>
<td>Plasma is used to erode a solid propellant
</td>
<td>High <i>I</i><sub>sp</sub>, can be pulsed on and off for attitude control
</td>
<td>Low energetic efficiency
</td></tr>
<tr>
<th><a href="Ion_thruster" title="Ion thruster">Ion propulsion system</a>
</th>
<td>High voltages at ground and plus sides
</td>
<td>Powered by battery
</td>
<td>Low thrust, needs high voltage
</td></tr></tbody></table>
<div class="mw-heading mw-heading3"><h3 id="Thermal">Thermal</h3></div>
<div class="mw-heading mw-heading4"><h4 id="Preheated">Preheated</h4></div>
<table class="wikitable">

<tbody><tr>
<th>Type
</th>
<th>Description
</th>
<th>Advantages
</th>
<th>Disadvantages
</th></tr>
<tr>
<th><a href="Hot_water_rocket" class="mw-redirect" title="Hot water rocket">Hot water rocket</a>
</th>
<td>Hot water is stored in a tank at high temperature / pressure and turns to steam in nozzle
</td>
<td>Simple, fairly safe
</td>
<td>Low overall performance due to heavy tank; <a href="Specific_impulse" title="Specific impulse"><i>I</i><sub>sp</sub></a> under 200 seconds
</td></tr></tbody></table>
<div class="mw-heading mw-heading4"><h4 id="Solar_thermal">Solar thermal</h4></div>
<p>The <a href="Solar_thermal_rocket" title="Solar thermal rocket">solar thermal rocket</a> would make use of solar power to directly heat <a href="Reaction_mass" class="mw-redirect" title="Reaction mass">reaction mass</a>, and therefore does not require an electrical generator as most other forms of solar-powered propulsion do. A solar thermal rocket only has to carry the means of capturing solar energy, such as <a href="Concentrating_solar_power" class="mw-redirect" title="Concentrating solar power">concentrators</a> and <a href="Mirror" title="Mirror">mirrors</a>. The heated propellant is fed through a conventional rocket nozzle to produce thrust. The engine thrust is directly related to the surface area of the solar collector and to the local intensity of the solar radiation and inversely proportional to the <i>I</i><sub>sp</sub>.
</p>
<table class="wikitable">

<tbody><tr>
<th>Type
</th>
<th>Description
</th>
<th>Advantages
</th>
<th>Disadvantages
</th></tr>
<tr>
<th><a href="Solar_thermal_rocket" title="Solar thermal rocket">Solar thermal rocket</a>
</th>
<td>Propellant is heated by solar collector
</td>
<td>Simple design. Using hydrogen propellant, 900 seconds of <a href="Specific_impulse" title="Specific impulse"><i>I</i><sub>sp</sub></a> is comparable to nuclear thermal rocket, without the problems and complexity of controlling a fission reaction. Ability to <a href="Solar_thermal_rocket#Proposed_solar-thermal_space_systems" title="Solar thermal rocket">productively use</a> waste gaseous <a href="Hydrogen" title="Hydrogen">hydrogen</a>—an inevitable byproduct of long-term <a href="Liquid_hydrogen" title="Liquid hydrogen">liquid hydrogen</a> storage in the <a href="Radiative_heat_transfer" class="mw-redirect" title="Radiative heat transfer">radiative heat</a> environment of space—for both <a href="Orbital_stationkeeping" class="mw-redirect" title="Orbital stationkeeping">orbital stationkeeping</a> and <a href="Spacecraft_attitude_control" class="mw-redirect" title="Spacecraft attitude control">attitude control</a>.<sup id="cite_ref-aiaa20100902_46-0" class="reference"><a href="#cite_note-aiaa20100902-46"><span class="cite-bracket">[</span>44<span class="cite-bracket">]</span></a></sup>
</td>
<td>Only useful in space, as thrust is fairly low, but hydrogen has not been traditionally thought to be easily stored in space,<sup id="cite_ref-aiaa20100902_46-1" class="reference"><a href="#cite_note-aiaa20100902-46"><span class="cite-bracket">[</span>44<span class="cite-bracket">]</span></a></sup> otherwise moderate/low <a href="Specific_impulse" title="Specific impulse"><i>I</i><sub>sp</sub></a> if higher–molecular-mass propellants are used.
</td></tr></tbody></table>
<div class="mw-heading mw-heading4"><h4 id="Beamed_thermal">Beamed thermal</h4></div>
<table class="wikitable">

<tbody><tr>
<th>Type
</th>
<th>Description
</th>
<th>Advantages
</th>
<th>Disadvantages
</th></tr>
<tr>
<th><a href="Laser_propulsion" title="Laser propulsion">Light-beam-powered rocket</a>
</th>
<td>Propellant is heated by light beam (often laser) aimed at vehicle from a distance, either directly or indirectly via heat exchanger
</td>
<td>Simple in principle, theoretically very high exhaust speeds can be achieved
</td>
<td>≈1 MW of power per kg of payload is needed to achieve orbit, relatively high accelerations, lasers are blocked by clouds, fog, reflected laser light may be dangerous, pretty much needs hydrogen monopropellant for good performance which needs heavy tankage, some designs are limited to ≈600 seconds due to reemission of light since propellant/heat exchanger gets white hot
</td></tr>
<tr>
<th><a href="Beam-powered_propulsion" title="Beam-powered propulsion">Microwave-beam-powered rocket</a>
</th>
<td>Propellant is heated by microwave beam aimed at vehicle from a distance
</td>
<td><a href="Specific_impulse" title="Specific impulse"><i>I</i><sub>sp</sub></a> is comparable to Nuclear Thermal rocket combined with T/W comparable to conventional rocket. While LH<sub>2</sub> propellant offers the highest I<sub>sp</sub> and rocket payload fraction, ammonia or methane are economically superior for earth-to-orbit rockets due to their particular combination of high density and I<sub>sp</sub>. <a href="Single-stage-to-orbit" title="Single-stage-to-orbit">SSTO</a> operation is possible with these propellants even for small rockets, so there are no location, trajectory and shock constraints added by the rocket staging process. Microwaves are 10-100× cheaper in $/watt than lasers and have all-weather operation at frequencies below 10&nbsp;GHz.
</td>
<td>0.3–3<span class="nowrap">&nbsp;</span>MW of power per kg of payload is needed to achieve orbit depending on the propellant,<sup id="cite_ref-47" class="reference"><a href="#cite_note-47"><span class="cite-bracket">[</span>45<span class="cite-bracket">]</span></a></sup> and this incurs infrastructure cost for the beam director plus related R&amp;D costs. Concepts operating in the millimeter-wave region have to contend with weather availability and high altitude beam director sites as well as effective transmitter diameters measuring 30–300 meters to propel a vehicle to LEO. Concepts operating in X-band or below must have effective transmitter diameters measured in kilometers to achieve a fine enough beam to follow a vehicle to LEO. The transmitters are too large to fit on mobile platforms and so microwave-powered rockets are constrained to launch near fixed beam director sites.
</td></tr></tbody></table>
<div class="mw-heading mw-heading4"><h4 id="Nuclear_thermal">Nuclear thermal</h4></div>
<table class="wikitable">

<tbody><tr>
<th>Type
</th>
<th>Description
</th>
<th>Advantages
</th>
<th>Disadvantages
</th></tr>
<tr>
<th><a href="Radioisotope_rocket" title="Radioisotope rocket">Radioisotope rocket/"Poodle thruster"</a> (radioactive decay energy)
</th>
<td>Heat from radioactive decay is used to heat hydrogen
</td>
<td>About 700–800 seconds, almost no moving parts
</td>
<td>Low thrust/weight ratio.
</td></tr>
<tr>
<th><a href="Nuclear_thermal_rocket" title="Nuclear thermal rocket">Nuclear thermal rocket</a> (nuclear fission energy)
</th>
<td>Propellant (typically, hydrogen) is passed through a nuclear reactor to heat to high temperature
</td>
<td><a href="Specific_impulse" title="Specific impulse"><i>I</i><sub>sp</sub></a> can be high, perhaps 900 seconds or more, above unity thrust/weight ratio with some designs
</td>
<td>Maximum temperature is limited by materials technology, some radioactive particles can be present in exhaust in some designs, nuclear reactor shielding is heavy, unlikely to be permitted from surface of the Earth, thrust/weight ratio is not high.
</td></tr></tbody></table>
<div class="mw-heading mw-heading3"><h3 id="Nuclear">Nuclear</h3></div>
<p><a href="Nuclear_propulsion" title="Nuclear propulsion">Nuclear propulsion</a> includes a wide variety of <a href="Spacecraft_propulsion" title="Spacecraft propulsion">propulsion</a> methods that use some form of <a href="Nuclear_reaction" title="Nuclear reaction">nuclear reaction</a> as their primary power source. Various types of nuclear propulsion have been proposed, and some of them tested, for spacecraft applications:
</p>
<table class="wikitable">

<tbody><tr>
<th>Type
</th>
<th>Description
</th>
<th>Advantages
</th>
<th>Disadvantages
</th></tr>
<tr>
<th><a href="Gas_core_reactor_rocket" title="Gas core reactor rocket">Gas core reactor rocket</a> (nuclear fission energy)
</th>
<td>Nuclear reaction using a gaseous state fission reactor in intimate contact with propellant
</td>
<td>Very hot propellant, not limited by keeping reactor solid, <a href="Specific_Impulse" class="mw-redirect" title="Specific Impulse"><i>I</i><sub>sp</sub></a> between 1,500 and 3,000 seconds but with very high thrust
</td>
<td>Difficulties in heating propellant without losing fissionables in exhaust, massive thermal issues particularly for nozzle/throat region, exhaust almost inherently highly radioactive. Nuclear lightbulb variants can contain fissionables, but cut <a href="Specific_Impulse" class="mw-redirect" title="Specific Impulse"><i>I</i><sub>sp</sub></a> in half.
</td></tr>
<tr>
<th><a href="Fission-fragment_rocket" title="Fission-fragment rocket">Fission-fragment rocket</a> (nuclear fission energy)
</th>
<td>Fission products are directly exhausted to give thrust.
</td>
<td>
</td>
<td>Theoretical only at this point.
</td></tr>
<tr>
<th><a href="Fission_sail" title="Fission sail">Fission sail</a> (nuclear fission energy)
</th>
<td>A sail material is coated with fissionable material on one side.
</td>
<td>No moving parts, works in deep space
</td>
<td>Theoretical only at this point.
</td></tr>
<tr>
<th><a href="Nuclear_salt-water_rocket" title="Nuclear salt-water rocket">Nuclear salt-water rocket</a> (nuclear fission energy)
</th>
<td>Nuclear salts are held in solution, caused to react at nozzle
</td>
<td>Very high <a href="Specific_Impulse" class="mw-redirect" title="Specific Impulse"><i>I</i><sub>sp</sub></a>, very high thrust
</td>
<td>Thermal issues in nozzle, propellant could be unstable, highly radioactive exhaust. Theoretical only at this point.
</td></tr>
<tr>
<th><a href="Nuclear_pulse_propulsion" title="Nuclear pulse propulsion">Nuclear pulse propulsion</a> (exploding fission/fusion bombs)
</th>
<td>Shaped nuclear bombs are detonated behind vehicle and blast is caught by a 'pusher plate'
</td>
<td>Very high <a href="Specific_Impulse" class="mw-redirect" title="Specific Impulse"><i>I</i><sub>sp</sub></a>, very high thrust/weight ratio, no show stoppers are known for this technology.
</td>
<td>Never been tested, pusher plate may <a href="Spall" title="Spall">throw off fragments</a> due to shock, minimum size for nuclear bombs is still pretty big, expensive at small scales, nuclear treaty issues, fallout when used below Earth's magnetosphere.
</td></tr>
<tr>
<th><a href="Antimatter_catalyzed_nuclear_pulse_propulsion" class="mw-redirect" title="Antimatter catalyzed nuclear pulse propulsion">Antimatter catalyzed nuclear pulse propulsion</a> (fission and/or fusion energy)
</th>
<td>Nuclear pulse propulsion with antimatter assist for smaller bombs
</td>
<td>Smaller sized vehicle might be possible
</td>
<td>Containment of antimatter, production of antimatter in macroscopic quantities is not currently feasible. Theoretical only at this point.
</td></tr>
<tr>
<th><a href="Fusion_rocket" title="Fusion rocket">Fusion rocket</a> (nuclear fusion energy)
</th>
<td>Fusion is used to heat propellant
</td>
<td>Very high exhaust velocity
</td>
<td>Largely beyond current state of the art.
</td></tr>
<tr>
<th><a href="Antimatter_rocket" title="Antimatter rocket">Antimatter rocket</a> (annihilation energy)
</th>
<td>Antimatter annihilation heats propellant
</td>
<td>Extremely energetic, very high theoretical exhaust velocity
</td>
<td>Problems with antimatter production and handling; energy losses in <a href="Neutrino" title="Neutrino">neutrinos</a>, <a href="Gamma_ray" title="Gamma ray">gamma rays</a>, <a href="Muon" title="Muon">muons</a>; thermal issues. Theoretical only at this point.
</td></tr></tbody></table>
<div class="mw-heading mw-heading2"><h2 id="History_of_rocket_engines">History of rocket engines</h2></div>
<div role="note" class="hatnote navigation-not-searchable">Main article: <a href="History_of_rockets" title="History of rockets">History of rockets</a></div>
<p>According to the writings of the Roman <a href="Aulus_Gellius" title="Aulus Gellius">Aulus Gellius</a>, the earliest known example of <a href="Jet_propulsion" title="Jet propulsion">jet propulsion</a> was in c. 400 BC, when a <a href="Greek_people" class="mw-redirect" title="Greek people">Greek</a> <a href="Pythagoreanism" title="Pythagoreanism">Pythagorean</a> named <a href="Archytas" title="Archytas">Archytas</a> propelled a wooden bird along wires using steam.<sup id="cite_ref-48" class="reference"><a href="#cite_note-48"><span class="cite-bracket">[</span>46<span class="cite-bracket">]</span></a></sup><sup id="cite_ref-49" class="reference"><a href="#cite_note-49"><span class="cite-bracket">[</span>47<span class="cite-bracket">]</span></a></sup> However, it was not powerful enough to take off under its own thrust.
</p><p>The <i><a href="Aeolipile" title="Aeolipile">aeolipile</a></i> described in the first century BC, often known as <i><a href="Hero's_engine" class="mw-redirect" title="Hero's engine">Hero's engine</a></i>, consisted of a pair of <a href="Steam_rocket" title="Steam rocket">steam rocket</a> nozzles mounted on a <a href="Bearing_(mechanical)" title="Bearing (mechanical)">bearing</a>. It was created almost two millennia before the <a href="Industrial_Revolution" title="Industrial Revolution">Industrial Revolution</a> but the principles behind it were not well understood, and it was not developed into a practical power source.
</p><p>The availability of <a href="Black_powder" class="mw-redirect" title="Black powder">black powder</a> to propel projectiles was a precursor to the development of the first solid rocket. Ninth-century <a href="Chinese_people" title="Chinese people">Chinese</a> <a href="Taoist" class="mw-redirect" title="Taoist">Taoist</a> <a href="Alchemy" title="Alchemy">alchemists</a> discovered black powder in a search for the <a href="Elixir_of_life" title="Elixir of life">elixir of life</a>; this accidental discovery led to <a href="Fire_arrow" title="Fire arrow">fire arrows</a> which were the first rocket engines to leave the ground.
</p><p>It is stated that "the reactive forces of incendiaries were probably not applied to the propulsion of projectiles prior to the 13th century". A turning point in rocket technology emerged with a short manuscript entitled <i>Liber Ignium ad Comburendos Hostes</i> (abbreviated as <i>The Book of Fires</i>). The manuscript is composed of recipes for creating incendiary weapons from the mid-eighth to the end of the thirteenth centuries—two of which are rockets. The first recipe calls for one part of colophonium and sulfur added to six parts of saltpeter (potassium nitrate) dissolved in <a href="Lauraceae" title="Lauraceae">laurel</a> oil, then inserted into hollow wood and lit to "fly away suddenly to whatever place you wish and burn up everything". The second recipe combines one pound of sulfur, two pounds of charcoal, and six pounds of saltpeter—all finely powdered on a marble slab. This powder mixture is packed firmly into a long and narrow case. The introduction of saltpeter into pyrotechnic mixtures connected the shift from hurled <a href="Greek_fire" title="Greek fire">Greek fire</a> into self-propelled rocketry.<sup id="cite_ref-50" class="reference"><a href="#cite_note-50"><span class="cite-bracket">[</span>48<span class="cite-bracket">]</span></a></sup>
</p><p>Articles and books on the subject of rocketry appeared increasingly from the fifteenth through seventeenth centuries. In the sixteenth century, German military engineer Conrad Haas (1509–1576) wrote a manuscript which introduced the construction of multi-staged rockets.<sup id="cite_ref-51" class="reference"><a href="#cite_note-51"><span class="cite-bracket">[</span>49<span class="cite-bracket">]</span></a></sup>
</p><p>Rocket engines were also put in use by <a href="Tippu_Sultan" class="mw-redirect" title="Tippu Sultan">Tippu Sultan</a>, the king of <a href="Mysore" title="Mysore">Mysore</a>. These usually consisted of a tube of soft hammered iron about 8&nbsp;in (20&nbsp;cm) long and <style data-mw-deduplicate="TemplateStyles:r1154941027">
/* start https://en.wikipedia.org/ */


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</style><span class="frac">1<span class="sr-only">+</span><span class="num">1</span>⁄<span class="den">2</span></span>–3&nbsp;in (3.8–7.6&nbsp;cm) diameter, closed at one end, packed with black powder propellant and strapped to a shaft of bamboo about 4&nbsp;ft (120&nbsp;cm) long. A rocket carrying about one pound of powder could travel almost 1,000 yards (910&nbsp;m). These 'rockets', fitted with swords, would travel several meters in the air before coming down with sword edges facing the enemy. These were used very effectively against the British empire.
</p>
<div class="mw-heading mw-heading3"><h3 id="Modern_rocketry">Modern rocketry</h3></div>
<p>Slow development of this technology continued up to the later 19th century, when Russian <a href="Konstantin_Tsiolkovsky" title="Konstantin Tsiolkovsky">Konstantin Tsiolkovsky</a> first wrote about <a href="Liquid-propellant_rocket" title="Liquid-propellant rocket">liquid-fuelled rocket engines</a>. He was the first to develop the <a href="Tsiolkovsky_rocket_equation" title="Tsiolkovsky rocket equation">Tsiolkovsky rocket equation</a>, though it was not published widely for some years.
</p><p>The modern solid- and liquid-fuelled engines became realities early in the 20th century, thanks to the American physicist <a href="Robert_Goddard_(scientist)" class="mw-redirect" title="Robert Goddard (scientist)">Robert Goddard</a>. Goddard was the first to use a <a href="De_Laval_nozzle" title="De Laval nozzle">De Laval nozzle</a> on a solid-propellant (gunpowder) rocket engine, doubling the thrust and increasing the efficiency by a factor of about twenty-five. This was the birth of the modern rocket engine. He calculated from his independently derived rocket equation that a reasonably sized rocket, using solid fuel, could place a one-pound payload on the Moon.
</p>
<div class="mw-heading mw-heading3"><h3 id="The_era_of_liquid-fuel_rocket_engines">The era of liquid-fuel rocket engines</h3></div>
<p>Goddard began to use liquid propellants in 1921, and in 1926 became the first to launch a liquid-fuelled rocket. Goddard pioneered the use of the De Laval nozzle, lightweight propellant tanks, small light turbopumps, thrust vectoring, the smoothly-throttled liquid fuel engine, regenerative cooling, and curtain cooling.<sup id="cite_ref-Sutton_8-6" class="reference"><a href="#cite_note-Sutton-8"><span class="cite-bracket">[</span>8<span class="cite-bracket">]</span></a></sup><sup class="reference nowrap"><span title="Page / location: 247–266">: 247–266 </span></sup>
</p><p>During the late 1930s, German scientists, such as <a href="Wernher_von_Braun" title="Wernher von Braun">Wernher von Braun</a> and <a href="Hellmuth_Walter" title="Hellmuth Walter">Hellmuth Walter</a>, investigated installing liquid-fuelled rockets in military aircraft (<a href="Heinkel_He_112" title="Heinkel He 112">Heinkel He 112</a>, <a href="Heinkel_He_111" title="Heinkel He 111">He 111</a>, <a href="Heinkel_He_176" title="Heinkel He 176">He 176</a> and <a href="Messerschmitt_Me_163" class="mw-redirect" title="Messerschmitt Me 163">Messerschmitt Me 163</a>).<sup id="cite_ref-52" class="reference"><a href="#cite_note-52"><span class="cite-bracket">[</span>50<span class="cite-bracket">]</span></a></sup>
</p><p>The turbopump was employed by German scientists in World War II. Until then cooling the nozzle had been problematic, and the <a href="V-2_rocket" title="V-2 rocket">A4</a> ballistic missile used dilute alcohol for the fuel, which reduced the combustion temperature sufficiently.
</p><p><a href="Staged_combustion_cycle_(rocket)" class="mw-redirect" title="Staged combustion cycle (rocket)">Staged combustion</a> (<i>Замкнутая схема</i>) was first proposed by <a href="Aleksei_Mihailovich_Isaev" class="mw-redirect" title="Aleksei Mihailovich Isaev">Alexey Isaev</a> in 1949. The first staged combustion engine was the S1.5400 used in the Soviet planetary rocket, designed by Melnikov, a former assistant to Isaev.<sup id="cite_ref-Sutton_8-7" class="reference"><a href="#cite_note-Sutton-8"><span class="cite-bracket">[</span>8<span class="cite-bracket">]</span></a></sup> About the same time (1959), <a href="Nikolai_Dmitriyevich_Kuznetsov" class="mw-redirect" title="Nikolai Dmitriyevich Kuznetsov">Nikolai Kuznetsov</a> began work on the closed cycle engine NK-9 for Korolev's orbital ICBM, GR-1. Kuznetsov later evolved that design into the <a href="NK-15" title="NK-15">NK-15</a> and <a href="NK-33" title="NK-33">NK-33</a> engines for the unsuccessful Lunar <a href="N1_rocket" class="mw-redirect" title="N1 rocket">N1 rocket</a>.
</p><p>In the West, the first laboratory staged-combustion test engine was built in Germany in 1963, by <a href="Ludwig_Boelkow" class="mw-redirect" title="Ludwig Boelkow">Ludwig Boelkow</a>.
</p><p>Liquid hydrogen engines were first successfully developed in America: the <a href="RL-10" class="mw-redirect" title="RL-10">RL-10</a> engine first flew in 1962. Its successor, the <a href="Rocketdyne_J-2" title="Rocketdyne J-2">Rocketdyne J-2</a>, was used in the <a href="Apollo_program" title="Apollo program">Apollo program</a>'s <a href="Saturn_V" title="Saturn V">Saturn V</a> rocket to send humans to the Moon. The high specific impulse and low density of liquid hydrogen lowered the upper stage mass and the overall size and cost of the vehicle.
</p><p>The record for most engines on one rocket flight is 44, set by NASA in 2016 on a <a href="Black_Brant_(rocket)" title="Black Brant (rocket)">Black Brant</a>.<sup id="cite_ref-53" class="reference"><a href="#cite_note-53"><span class="cite-bracket">[</span>51<span class="cite-bracket">]</span></a></sup>
</p>
<div class="mw-heading mw-heading2"><h2 id="See_also">See also</h2></div>
<ul><li><a href="Comparison_of_orbital_rocket_engines" title="Comparison of orbital rocket engines">Comparison of orbital rocket engines</a></li>
<li><a href="Rotating_detonation_engine" title="Rotating detonation engine">Rotating detonation engine</a></li>
<li><a href="Jet_damping" title="Jet damping">Jet damping</a>, an effect of the exhaust jet of a rocket that tends to slow a vehicle's rotation speed</li>
<li><a href="Model_rocket_motor_classification" title="Model rocket motor classification">Model rocket motor classification</a> lettered engines</li>
<li><a href="NERVA" title="NERVA">NERVA</a> (Nuclear Energy for Rocket Vehicle Applications), a US nuclear thermal rocket programme</li>
<li><a href="Photon_rocket" title="Photon rocket">Photon rocket</a></li>
<li><a href="Project_Prometheus" title="Project Prometheus">Project Prometheus</a>, NASA development of nuclear propulsion for long-duration spaceflight, begun in 2003</li>
<li>Rocket propulsion technologies (disambiguation)</li></ul>
<div class="mw-heading mw-heading2"><h2 id="Notes">Notes</h2></div>
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<li id="cite_note-RL10-32"><span class="mw-cite-backlink"><b><a href="#cite_ref-RL10_32-0">^</a></b></span> <span class="reference-text">The RL10 <i>has</i>, however, experienced occasional failures (some of them catastrophic) in its other use cases, as the engine for the much-flown <a href="Centaur_(rocket_stage)" title="Centaur (rocket stage)">Centaur</a> and <a href="Delta_Cryogenic_Second_Stage" title="Delta Cryogenic Second Stage">DCSS</a> upper stages.</span>
</li>
<li id="cite_note-J2fail-33"><span class="mw-cite-backlink"><b><a href="#cite_ref-J2fail_33-0">^</a></b></span> <span class="reference-text">The J-2 had three premature in-flight shutdowns (two second-stage engine failures on <a href="Apollo_6" title="Apollo 6">Apollo 6</a> and one on <a href="Apollo_13" title="Apollo 13">Apollo 13</a>), and one failure to restart in orbit (the third-stage engine of Apollo 6). But these failures did not result in vehicle loss or mission abort (although the failure of Apollo 6's third-stage engine to restart <i>would</i> have forced a mission abort had it occurred on a crewed lunar mission).</span>
</li>
</ol></div></div>
<div class="mw-heading mw-heading2"><h2 id="References">References</h2></div>
<div class="reflist">
<div class="mw-references-wrap mw-references-columns"><ol class="references">
<li id="cite_note-nsf20160927-1"><span class="mw-cite-backlink"><b><a href="#cite_ref-nsf20160927_1-0">^</a></b></span> <span class="reference-text">
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<li id="cite_note-sutton1975-25"><span class="mw-cite-backlink">^ <a href="#cite_ref-sutton1975_25-0"><sup><i><b>a</b></i></sup></a> <a href="#cite_ref-sutton1975_25-1"><sup><i><b>b</b></i></sup></a> <a href="#cite_ref-sutton1975_25-2"><sup><i><b>c</b></i></sup></a> <a href="#cite_ref-sutton1975_25-3"><sup><i><b>d</b></i></sup></a> <a href="#cite_ref-sutton1975_25-4"><sup><i><b>e</b></i></sup></a> <a href="#cite_ref-sutton1975_25-5"><sup><i><b>f</b></i></sup></a></span> <span class="reference-text">
<cite id="CITEREFG.P._SuttonD.M._Ross1975" class="citation book cs1">G.P. Sutton &amp; D.M. Ross (1975). <a rel="nofollow" class="external text" href="https://archive.org/details/rocketpropulsion0000sutt/page/258/mode/2up"><i>Rocket Propulsion Elements: An Introduction to the Engineering of Rockets</i></a> (4th&nbsp;ed.). Wiley Interscience. <a href="ISBN_(identifier)" class="mw-redirect" title="ISBN (identifier)">ISBN</a>&nbsp;<bdi>0-471-83836-5</bdi>.</cite> See Chapter 8, Section 6 and especially Section 7, re combustion instability.</span>
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<cite id="CITEREFJohn_W._Strutt1896" class="citation book cs1">John W. Strutt (1896). <i>The Theory of Sound – Volume 2</i> (2nd&nbsp;ed.). Macmillan (reprinted by Dover Publications in 1945). p.&nbsp;226.</cite> According to Lord Rayleigh's criterion for thermoacoustic processes, "If heat be given to the air at the moment of greatest condensation, or be taken from it at the moment of greatest rarefaction, the vibration is encouraged. On the other hand, if heat be given at the moment of greatest rarefaction, or abstracted at the moment of greatest condensation, the vibration is discouraged."</span>
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<li id="cite_note-27"><span class="mw-cite-backlink"><b><a href="#cite_ref-27">^</a></b></span> <span class="reference-text">Lord Rayleigh (1878) "The explanation of certain acoustical phenomena" (namely, the <a href="Rijke_tube" title="Rijke tube">Rijke tube</a>) <i>Nature</i>, vol. 18, pages 319–321.</span>
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<li id="cite_note-28"><span class="mw-cite-backlink"><b><a href="#cite_ref-28">^</a></b></span> <span class="reference-text">E. C. Fernandes and M. V. Heitor, "Unsteady flames and the Rayleigh criterion" in <cite id="CITEREFF._CulickM._V._HeitorJ._H._Whitelaw1996" class="citation book cs1">F. Culick; M. V. Heitor; J. H. Whitelaw, eds. (1996). <a rel="nofollow" class="external text" href="https://books.google.com/books?id=Je_hG6UfnogC&amp;pg=PA1"><i>Unsteady Combustion</i></a> (1st&nbsp;ed.). Kluwer Academic Publishers. p.&nbsp;4. <a href="ISBN_(identifier)" class="mw-redirect" title="ISBN (identifier)">ISBN</a>&nbsp;<bdi>0-7923-3888-X</bdi>.</cite></span>
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<li id="cite_note-29"><span class="mw-cite-backlink"><b><a href="#cite_ref-29">^</a></b></span> <span class="reference-text"><cite class="citation web cs1"><a rel="nofollow" class="external text" href="https://web.archive.org/web/20200810203904/https://www.nasa.gov/mission_pages/shuttle/launch/sound-suppression-system.html">"Sound Suppression System"</a>. NASA. Archived from <a rel="nofollow" class="external text" href="https://www.nasa.gov/mission_pages/shuttle/launch/sound-suppression-system.html">the original</a> on 2020-08-10<span class="reference-accessdate">. Retrieved <span class="nowrap">2017-02-09</span></span>.</cite></span>
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<li id="cite_note-CR566-30"><span class="mw-cite-backlink"><b><a href="#cite_ref-CR566_30-0">^</a></b></span> <span class="reference-text">R.C. Potter and M.J. Crocker (1966). <a rel="nofollow" class="external text" href="https://ntrs.nasa.gov/archive/nasa/casi.ntrs.nasa.gov/19660030602_1966030602.pdf">NASA CR-566, Acoustic Prediction Methods For Rocket Engines, Including The Effects Of Clustered Engines And Deflected Flow</a> From website of the National Aeronautics and Space Administration Langley (NASA Langley)</span>
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<li id="cite_note-:0-31"><span class="mw-cite-backlink">^ <a href="#cite_ref-:0_31-0"><sup><i><b>a</b></i></sup></a> <a href="#cite_ref-:0_31-1"><sup><i><b>b</b></i></sup></a> <a href="#cite_ref-:0_31-2"><sup><i><b>c</b></i></sup></a> <a href="#cite_ref-:0_31-3"><sup><i><b>d</b></i></sup></a> <a href="#cite_ref-:0_31-4"><sup><i><b>e</b></i></sup></a></span> <span class="reference-text"><cite id="CITEREFSutton2006" class="citation book cs1">Sutton, George (2006). <i>History of Liquid Propellant Rocket Engines</i>. AIAA. <a href="ISBN_(identifier)" class="mw-redirect" title="ISBN (identifier)">ISBN</a>&nbsp;<bdi>978-1-56347-649-5</bdi>.</cite></span>
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<li id="cite_note-P&amp;WFS-34"><span class="mw-cite-backlink"><b><a href="#cite_ref-P&amp;WFS_34-0">^</a></b></span> <span class="reference-text"><cite class="citation web cs1"><a rel="nofollow" class="external text" href="https://web.archive.org/web/20120208191620/http://www.pw.utc.com/products/pwr/assets/pwr_SSME.pdf">"Space Shuttle Main Engine"</a> <span class="cs1-format">(PDF)</span>. Pratt &amp; Whitney Rocketdyne. 2005. Archived from <a rel="nofollow" class="external text" href="http://www.pw.utc.com/products/pwr/assets/pwr_SSME.pdf">the original</a> <span class="cs1-format">(PDF)</span> on February 8, 2012<span class="reference-accessdate">. Retrieved <span class="nowrap">November 23,</span> 2011</span>.</cite></span>
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<li id="cite_note-Hale-35"><span class="mw-cite-backlink"><b><a href="#cite_ref-Hale_35-0">^</a></b></span> <span class="reference-text"><cite id="CITEREFWayne_Hale_&amp;_various2012" class="citation web cs1"><a href="Wayne_Hale" title="Wayne Hale">Wayne Hale</a> &amp; various (January 17, 2012). <a rel="nofollow" class="external text" href="http://forum.nasaspaceflight.com/index.php?topic=27783">"An SSME-related request"</a>. NASASpaceflight.com<span class="reference-accessdate">. Retrieved <span class="nowrap">January 17,</span> 2012</span>.</cite></span>
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<li id="cite_note-RocketProp8-36"><span class="mw-cite-backlink">^ <a href="#cite_ref-RocketProp8_36-0"><sup><i><b>a</b></i></sup></a> <a href="#cite_ref-RocketProp8_36-1"><sup><i><b>b</b></i></sup></a></span> <span class="reference-text"><cite id="CITEREFGeorge_P._SuttonOscar_Biblarz2010" class="citation book cs1">George P. Sutton &amp; Oscar Biblarz (2010). <a rel="nofollow" class="external text" href="https://archive.org/details/Rocket_Propulsion_Elements_8th_Edition_by_Oscar_Biblarz_George_P._Sutton/page/308/mode/2up"><i>Rocket Propulsion Elements</i></a> (8th&nbsp;ed.). Wiley Interscience. p.&nbsp;308. <a href="ISBN_(identifier)" class="mw-redirect" title="ISBN (identifier)">ISBN</a>&nbsp;<bdi>9780470080245</bdi>.</cite></span>
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<li id="cite_note-37"><span class="mw-cite-backlink"><b><a href="#cite_ref-37">^</a></b></span> <span class="reference-text"><cite class="citation web cs1 cs1-prop-foreign-lang-source"><a rel="nofollow" class="external text" href="https://www.deutsches-museum.de/flugwerft-schleissheim/ausstellung/flugantriebe-und-raketen/raketenmotor-a-4">"Raketenmotor der A4 (V2)-Rakete"</a> (in German)<span class="reference-accessdate">. Retrieved <span class="nowrap">19 September</span> 2022</span>. <q>An additional coolant line takes alcohol to fine holes in the inner chamber wall. The alcohol flows alongside the wall, creating a thin, evaporating film for additional cooling.</q></cite></span>
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<li id="cite_note-38"><span class="mw-cite-backlink"><b><a href="#cite_ref-38">^</a></b></span> <span class="reference-text"><cite id="CITEREFMcCutcheon,_Kimble_D.2022" class="citation web cs1">McCutcheon, Kimble D. (3 August 2022). <a rel="nofollow" class="external text" href="https://www.enginehistory.org/Rockets/RPE08.11/RPE08.12.shtml">"U.S. Manned Rocket Propulsion Evolution Part 8.12: Rocketdyne F-1 Engine Description"</a><span class="reference-accessdate">. Retrieved <span class="nowrap">19 September</span> 2022</span>.</cite></span>
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<li id="cite_note-39"><span class="mw-cite-backlink"><b><a href="#cite_ref-39">^</a></b></span> <span class="reference-text"><cite id="CITEREFMcCutcheon,_Kimble_D.2022" class="citation web cs1">McCutcheon, Kimble D. (3 August 2022). <a rel="nofollow" class="external text" href="https://www.enginehistory.org/Rockets/RPE06/RPE06.shtml">"U.S. Manned Rocket Propulsion Evolution Part 6: The Titan Missile"</a><span class="reference-accessdate">. Retrieved <span class="nowrap">19 September</span> 2022</span>.</cite></span>
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<li id="cite_note-40"><span class="mw-cite-backlink"><b><a href="#cite_ref-40">^</a></b></span> <span class="reference-text"><cite id="CITEREFBartlettKirklandPolifkaSmithson1966" class="citation book cs1">Bartlett, W.; Kirkland, Z. D.; Polifka, R. W.; Smithson, J. C.; Spencer, G. L. (7 February 1966). <a rel="nofollow" class="external text" href="https://web.archive.org/web/20220823092501/https://ntrs.nasa.gov/api/citations/19700026405/downloads/19700026405.pdf"><i>Apollo spacecraft liquid primary propulsion systems</i></a> <span class="cs1-format">(PDF)</span>. Houston, TX: NASA, Lyndon B. Johnson Space Center. p.&nbsp;8. Archived from the original on 23 August 2022<span class="reference-accessdate">. Retrieved <span class="nowrap">10 September</span> 2022</span>.</cite><span class="cs1-maint citation-comment"><code class="cs1-code">{{cite book}}</code>: CS1 maint: bot: original URL status unknown (link)</span></span>
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<li id="cite_note-41"><span class="mw-cite-backlink"><b><a href="#cite_ref-41">^</a></b></span> <span class="reference-text"><a rel="nofollow" class="external text" href="http://yarchive.net/space/rocket/fuels/fuel_ratio.html">Newsgroup correspondence</a>, 1998–99</span>
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<li id="cite_note-42"><span class="mw-cite-backlink"><b><a href="#cite_ref-42">^</a></b></span> <span class="reference-text"><a rel="nofollow" class="external text" href="http://rocketworkbench.sourceforge.net/equil.phtml">Complex chemical equilibrium and rocket performance calculations</a>, Cpropep-Web</span>
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<li id="cite_note-43"><span class="mw-cite-backlink"><b><a href="#cite_ref-43">^</a></b></span> <span class="reference-text"><a rel="nofollow" class="external text" href="http://propulsion-analysis.com/">Tool for Rocket Propulsion Analysis</a>, RPA</span>
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<li id="cite_note-44"><span class="mw-cite-backlink"><b><a href="#cite_ref-44">^</a></b></span> <span class="reference-text"><a rel="nofollow" class="external text" href="https://web.archive.org/web/20000901045039/http://www.grc.nasa.gov/WWW/CEAWeb/">NASA Computer program Chemical Equilibrium with Applications</a>, CEA</span>
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<cite id="CITEREFSvitak2012" class="citation news cs1">Svitak, Amy (2012-11-26). <a rel="nofollow" class="external text" href="https://web.archive.org/web/20140321053215/http://www.aviationweek.com/Blogs.aspx?plckBlogId=Blog:04ce340e-4b63-4d23-9695-d49ab661f385&amp;plckPostId=Blog:04ce340e-4b63-4d23-9695-d49ab661f385Post:c973f72f-55d3-4374-b722-df31a8d333e6">"Falcon 9 RUD?"</a>. <i>Aviation Week</i>. Archived from <a rel="nofollow" class="external text" href="http://www.aviationweek.com/Blogs.aspx?plckBlogId=Blog:04ce340e-4b63-4d23-9695-d49ab661f385&amp;plckPostId=Blog:04ce340e-4b63-4d23-9695-d49ab661f385Post:c973f72f-55d3-4374-b722-df31a8d333e6">the original</a> on 2014-03-21<span class="reference-accessdate">. Retrieved <span class="nowrap">2014-03-21</span></span>.</cite></span>
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<li id="cite_note-aiaa20100902-46"><span class="mw-cite-backlink">^ <a href="#cite_ref-aiaa20100902_46-0"><sup><i><b>a</b></i></sup></a> <a href="#cite_ref-aiaa20100902_46-1"><sup><i><b>b</b></i></sup></a></span> <span class="reference-text"><cite id="CITEREFZeglerBernard_Kutter2010" class="citation web cs1">Zegler, Frank; Bernard Kutter (2010-09-02). <a rel="nofollow" class="external text" href="https://web.archive.org/web/20110717150155/http://www.ulalaunch.com/site/docs/publications/DepotBasedTransportationArchitecture2010.pdf">"Evolving to a Depot-Based Space Transportation Architecture"</a> <span class="cs1-format">(PDF)</span>. <i>AIAA SPACE 2010 Conference &amp; Exposition</i>. AIAA. Archived from <a rel="nofollow" class="external text" href="http://www.ulalaunch.com/site/docs/publications/DepotBasedTransportationArchitecture2010.pdf">the original</a> <span class="cs1-format">(PDF)</span> on 2011-07-17<span class="reference-accessdate">. Retrieved <span class="nowrap">2011-01-25</span></span>.</cite> See page 3.</span>
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<li id="cite_note-47"><span class="mw-cite-backlink"><b><a href="#cite_ref-47">^</a></b></span> <span class="reference-text"><cite id="CITEREFParkin" class="citation web cs1">Parkin, Kevin. <a rel="nofollow" class="external text" href="http://parkinresearch.com/microwave-thermal-rockets/">"Microwave Thermal Rockets"</a><span class="reference-accessdate">. Retrieved <span class="nowrap">8 December</span> 2016</span>.</cite></span>
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<li id="cite_note-48"><span class="mw-cite-backlink"><b><a href="#cite_ref-48">^</a></b></span> <span class="reference-text"><cite id="CITEREFLeofranc_Holford-Strevens2005" class="citation book cs1">Leofranc Holford-Strevens (2005). <i>Aulus Gellius: An Antonine Author and his Achievement</i> (Revised paperback&nbsp;ed.). Oxford University Press. <a href="ISBN_(identifier)" class="mw-redirect" title="ISBN (identifier)">ISBN</a>&nbsp;<bdi>0-19-928980-8</bdi>.</cite></span>
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<li id="cite_note-49"><span class="mw-cite-backlink"><b><a href="#cite_ref-49">^</a></b></span> <span class="reference-text"><cite id="CITEREFChisholm1911" class="citation encyclopaedia cs1"><a href="Hugh_Chisholm" title="Hugh Chisholm">Chisholm, Hugh</a>, ed. (1911). <span class="cs1-ws-icon" title="s:1911 Encyclopædia Britannica/Archytas"><a class="external text external" href="https://en.wikisource.org/wiki/1911_Encyclop%C3%A6dia_Britannica/Archytas">"Archytas"&nbsp;</a></span>. <i><a href="Encyclop%C3%A6dia_Britannica_Eleventh_Edition" title="Encyclopædia Britannica Eleventh Edition">Encyclopædia Britannica</a></i>. Vol.&nbsp;2 (11th&nbsp;ed.). Cambridge University Press. p.&nbsp;446.</cite></span>
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<li id="cite_note-50"><span class="mw-cite-backlink"><b><a href="#cite_ref-50">^</a></b></span> <span class="reference-text"><cite id="CITEREFVon_BraunOrdway_III1976" class="citation book cs1">Von Braun, Wernher; Ordway III, Frederick I. (1976). <span class="id-lock-registration" title="Free registration required"><a rel="nofollow" class="external text" href="https://archive.org/details/rocketsredglare0000vonb"><i>The Rockets' Red Glare</i></a></span>. Garden City, New York: Anchor Press/ Doubleday. p.&nbsp;<a rel="nofollow" class="external text" href="https://archive.org/details/rocketsredglare0000vonb/page/5">5</a>. <a href="ISBN_(identifier)" class="mw-redirect" title="ISBN (identifier)">ISBN</a>&nbsp;<bdi>978-0-385-07847-4</bdi>.</cite></span>
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<li id="cite_note-51"><span class="mw-cite-backlink"><b><a href="#cite_ref-51">^</a></b></span> <span class="reference-text"><cite id="CITEREFVon_BraunOrdway_III1976" class="citation book cs1">Von Braun, Wernher; Ordway III, Frederick I. (1976). <span class="id-lock-registration" title="Free registration required"><a rel="nofollow" class="external text" href="https://archive.org/details/rocketsredglare0000vonb"><i>The Rockets' Red Glare</i></a></span>. Garden City, New York: Anchor Press/ Doubleday. p.&nbsp;<a rel="nofollow" class="external text" href="https://archive.org/details/rocketsredglare0000vonb/page/11">11</a>. <a href="ISBN_(identifier)" class="mw-redirect" title="ISBN (identifier)">ISBN</a>&nbsp;<bdi>978-0-385-07847-4</bdi>.</cite></span>
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<li id="cite_note-52"><span class="mw-cite-backlink"><b><a href="#cite_ref-52">^</a></b></span> <span class="reference-text"><cite id="CITEREFLutz_Warsitz2009" class="citation book cs1">Lutz Warsitz (2009). <i>The First Jet Pilot – The Story of German Test Pilot Erich Warsitz</i>. Pen and Sword Ltd. <a href="ISBN_(identifier)" class="mw-redirect" title="ISBN (identifier)">ISBN</a>&nbsp;<bdi>978-1-84415-818-8</bdi>.</cite> Includes von Braun's and Hellmuth Walter's experiments with rocket aircraft. <a rel="nofollow" class="external text" href="http://www.pen-and-sword.co.uk/?product_id=1762">English edition.</a></span>
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<li id="cite_note-53"><span class="mw-cite-backlink"><b><a href="#cite_ref-53">^</a></b></span> <span class="reference-text"><cite class="citation web cs1"><a rel="nofollow" class="external text" href="https://www.space.com/33810-nasa-world-record-most-rocket-engines.html">"NASA and Navy Set World Record for Most Engines in One Rocket Flight"</a>. <i><a href="Space.com" title="Space.com">Space.com</a></i>. 19 August 2016.</cite></span>
</li>
</ol></div></div>
<div class="mw-heading mw-heading2"><h2 id="External_links">External links</h2></div>
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<ul><li><a rel="nofollow" class="external text" href="https://web.archive.org/web/20071009153749/http://www.pwrengineering.com/articles/longterm.htm">Designing for rocket engine life expectancy</a></li>
<li><a rel="nofollow" class="external text" href="https://web.archive.org/web/20071007070232/http://www.pwrengineering.com/articles/plume.htm">Rocket Engine performance analysis with Plume Spectrometry</a></li>
<li><a rel="nofollow" class="external text" href="https://web.archive.org/web/20071009151907/http://www.pwrengineering.com/articles/heart.htm">Rocket Engine Thrust Chamber technical article</a></li>
<li><a rel="nofollow" class="external text" href="http://www.fxsolver.com/browse/formulas/Net+Thrust+of+a+Rocket+Engine">Net Thrust of a Rocket Engine calculator</a></li>
<li><a rel="nofollow" class="external text" href="http://www.lpre.de/resources/software/RPA_en.htm">Design Tool for Liquid Rocket Engine Thermodynamic Analysis</a></li>
<li><a rel="nofollow" class="external text" href="http://www.braeunig.us/space/propuls.htm">Rocket &amp; Space Technology - Rocket Propulsion</a></li>
<li><a rel="nofollow" class="external text" href="http://www.erichwarsitz.com/">The official website of test pilot Erich Warsitz (world's first jet pilot) which includes videos of the Heinkel He 112 fitted with von Braun's and Hellmuth Walter's rocket engines (as well as the He 111 with ATO Units)</a></li></ul>
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</style><div id="Rocket_engines_and_solid_motors_for_orbital_launch_vehicles400" style="font-size:114%;margin:0 4em"> and <a href="Solid_rocket_booster" title="Solid rocket booster">solid motors</a> for <a href="Orbital_spaceflight" title="Orbital spaceflight">orbital</a> <a href="Launch_vehicle" title="Launch vehicle">launch vehicles</a></div></th></tr><tr><td class="navbox-abovebelow" colspan="3"><div>
<ul><li><a href="Comparison_of_orbital_rocket_engines" title="Comparison of orbital rocket engines">Comparison of orbital rocket engines</a></li></ul>
</div></td></tr><tr><th scope="row" class="navbox-group" style="width:1%"><a href="Liquid-propellant_rocket" title="Liquid-propellant rocket">Liquid <br>fuel</a></th><td class="navbox-list-with-group navbox-list navbox-odd" style="width:100%;padding:0"><div style="padding:0 0.25em"></div><table class="nowraplinks navbox-subgroup" style="border-spacing:0"><tbody><tr><th scope="row" class="navbox-group" style="width:1%"><a href="Cryogenic_fuel" title="Cryogenic fuel">Cryogenic</a></th><td class="navbox-list-with-group navbox-list navbox-odd" style="width:100%;padding:0"><div style="padding:0 0.25em"></div><table class="nowraplinks navbox-subgroup" style="border-spacing:0"><tbody><tr><th scope="row" class="navbox-group" style="width:1%">Hydrolox <br>(<a href="Liquid_hydrogen" title="Liquid hydrogen">LH<sub>2</sub></a> / <a href="Liquid_oxygen" title="Liquid oxygen">LOX</a>)</th><td class="navbox-list-with-group navbox-list navbox-odd" style="width:100%;padding:0"><div style="padding:0 0.25em">
<ul><li>China
<ul><li><a href="YF-73" title="YF-73">YF-73</a></li>
<li><a href="YF-75" title="YF-75">YF-75</a></li>
<li><a href="YF-75D" title="YF-75D">YF-75D</a></li>
<li><a href="YF-77" title="YF-77">YF-77</a></li>
<li><i><a href="YF-79" title="YF-79">YF-79</a></i></li>
<li><i><a href="YF-90" title="YF-90">YF-90</a></i></li></ul></li>
<li>Europe
<ul><li><a href="HM7B" title="HM7B">HM7B</a></li>
<li><a href="Vinci_(rocket_engine)" title="Vinci (rocket engine)">Vinci</a></li>
<li><a href="Vulcain_(rocket_engine)" title="Vulcain (rocket engine)">Vulcain</a></li></ul></li>
<li>India
<ul><li><a href="CE-7.5" title="CE-7.5">CE-7.5</a></li>
<li><a href="CE-20" title="CE-20">CE-20</a></li></ul></li>
<li>Japan
<ul><li><a href="LE-5" title="LE-5">LE-5</a></li>
<li><a href="LE-7" title="LE-7">LE-7</a></li>
<li><a href="LE-9" title="LE-9">LE-9</a></li></ul></li>
<li>Russia
<ul><li><a href="KVD-1" title="KVD-1">KVD-1 (RD-56)</a></li>
<li><a href="RD-0120" title="RD-0120">RD-0120</a></li>
<li><i><a href="RD-0146" title="RD-0146">RD-0146</a></i></li></ul></li>
<li>United States
<ul><li><a href="BE-3U" class="mw-redirect" title="BE-3U">BE-3U</a></li>
<li><i><a href="BE-7" title="BE-7">BE-7</a></i></li>
<li><a href="Rocketdyne_J-2" title="Rocketdyne J-2">J-2</a></li>
<li><a href="RL10" title="RL10">RL10</a></li>
<li><a href="RS-25" title="RS-25">RS-25</a></li>
<li><a href="RS-68" title="RS-68">RS-68</a></li></ul></li></ul>
</div></td></tr><tr><th scope="row" class="navbox-group" style="width:1%">Methalox <br>(<a href="Methane" title="Methane">CH<sub>4</sub></a> / <a href="Liquid_oxygen" title="Liquid oxygen">LOX</a>)</th><td class="navbox-list-with-group navbox-list navbox-even" style="width:100%;padding:0"><div style="padding:0 0.25em">
<ul><li>China
<ul><li><i><a href="BF-20" title="BF-20">BF-20</a></i></li>
<li><i><a href="Lingyun_(rocket_engine)" title="Lingyun (rocket engine)">Lingyun</a></i></li>
<li><i><a href="Longyun_(rocket_engine)" title="Longyun (rocket engine)">Longyun</a></i></li>
<li><a href="TQ-11" title="TQ-11">TQ-11</a></li>
<li><a href="TQ-12" title="TQ-12">TQ-12</a></li>
<li><a href="TQ-15" title="TQ-15">TQ-15A</a></li>
<li><i><a href="YF-209" title="YF-209">YF-209</a></i></li>
<li><i><a href="YF-215" title="YF-215">YF-215</a></i></li></ul></li>
<li>United States
<ul><li><a href="BE-4" title="BE-4">BE-4</a></li>
<li><a href="SpaceX_Raptor" title="SpaceX Raptor">Raptor</a></li>
<li><i><a href="Archimedes_(rocket_engine)" title="Archimedes (rocket engine)">Archimedes</a></i></li>
<li><i><a href="Relativity_Space#Aeon_1" title="Relativity Space">Aeon 1</a></i></li>
<li><i><a href="Relativity_Space#Aeon_R" title="Relativity Space">Aeon R</a></i></li></ul></li>
<li>Russia
<ul><li><i><a href="RD-0169" title="RD-0169">RD-0169</a></i></li></ul></li>
<li>Europe
<ul><li><i><a href="Prometheus_(rocket_engine)" title="Prometheus (rocket engine)">Prometheus</a></i></li>
<li><i><a href="M10_(rocket_engine)" title="M10 (rocket engine)">M-10</a></i></li></ul></li></ul>
</div></td></tr></tbody></table><div></div></td></tr><tr><th scope="row" class="navbox-group" style="width:1%">Semi-<br>cryogenic</th><td class="navbox-list-with-group navbox-list navbox-odd" style="width:100%;padding:0"><div style="padding:0 0.25em"></div><table class="nowraplinks navbox-subgroup" style="border-spacing:0"><tbody><tr><th id="Kerolox_(RP-1_/_LOX)47" scope="row" class="navbox-group" style="width:1%">Kerolox <br>(<a href="RP-1" title="RP-1">RP-1</a> / <a href="Liquid_oxygen" title="Liquid oxygen">LOX</a>)</th><td class="navbox-list-with-group navbox-list navbox-odd" style="width:100%;padding:0"><div style="padding:0 0.25em">
<ul><li>China
<ul><li><a href="TH-11" title="TH-11">TH-11</a></li>
<li><i><a href="TH-12" title="TH-12">TH-12</a></i></li>
<li><a href="YF-100" title="YF-100">YF-100</a></li>
<li><a href="YF-102_(rocket_engine)" title="YF-102 (rocket engine)">YF-102</a></li>
<li><a href="YF-115" title="YF-115">YF-115</a></li>
<li><i><a href="YF-130" title="YF-130">YF-130</a></i></li>
<li><i><a href="Galactic_Energy_Welkin" title="Galactic Energy Welkin">Welkin</a></i></li></ul></li>
<li>India
<ul><li><i><a href="SCE-200" title="SCE-200">SCE-200</a></i></li></ul></li>
<li>Russia
<ul><li><a href="NK-15" title="NK-15">NK-15</a></li>
<li><a href="NK-33" title="NK-33">NK-33, 44</a></li>
<li><a href="RD-58" title="RD-58">RD-58</a></li>
<li><a href="RD-0109" title="RD-0109">RD-0105, 0109</a></li>
<li><a href="RD-0110" title="RD-0110">RD-0107, 0108, 0110</a></li>
<li><a href="RD-0110R" title="RD-0110R">RD-0110R</a></li>
<li><a href="RD-0124" title="RD-0124">RD-0124</a></li>
<li><a href="RD-107" title="RD-107">RD-107, 108, 117, 118</a></li>
<li><a href="RD-120" title="RD-120">RD-120</a></li>
<li><a href="RD-170" title="RD-170">RD-170, 171</a></li>
<li><a href="RD-180" title="RD-180">RD-180</a></li>
<li><a href="RD-191" title="RD-191">RD-191, 151, 181</a></li>
<li><i><a href="RD-193" title="RD-193">RD-193</a></i></li>
<li><a href="S1.5400" title="S1.5400">S1.5400</a></li></ul></li>
<li>Spain
<ul><li><a href="TEPREL" title="TEPREL">TEPREL</a></li></ul></li>
<li>Ukraine
<ul><li><a href="RD-8" title="RD-8">RD-8</a></li>
<li><i><a href="RD-801" title="RD-801">RD-801</a></i></li>
<li><i><a href="RD-810" title="RD-810">RD-810</a></i></li></ul></li>
<li>United States
<ul><li><a href="Rocketdyne_F-1" title="Rocketdyne F-1">F-1</a></li>
<li><a href="Rocketdyne_H-1" title="Rocketdyne H-1">H-1</a></li>
<li><a href="SpaceX_Kestrel" title="SpaceX Kestrel">Kestrel</a></li>
<li><a href="PGM-17_Thor#Specifications_(PGM-17A)" title="PGM-17 Thor">LR-79</a></li>
<li><a href="LR89" title="LR89">LR89</a></li>
<li><a href="LR105" title="LR105">LR105</a></li>
<li><a href="PGM-19_Jupiter" title="PGM-19 Jupiter">LR70-NA , S-3D</a></li>
<li><a href="SpaceX_Merlin" title="SpaceX Merlin">Merlin</a></li>
<li><a href="Firefly_Aerospace_Miranda" class="mw-redirect" title="Firefly Aerospace Miranda"><i>Miranda</i></a></li>
<li><a href="RS-27" title="RS-27">RS-27</a></li>
<li><a href="RS-27A" class="mw-redirect" title="RS-27A">RS-27A</a></li>
<li><a href="RS-56" title="RS-56">RS-56</a></li>
<li><a href="Rocketdyne_S-3D" title="Rocketdyne S-3D">S-3D</a></li>
<li><a href="Rutherford_(rocket_engine)" title="Rutherford (rocket engine)">Rutherford</a></li>
<li><a href="XLR50" title="XLR50">XLR50</a></li></ul></li></ul>
</div></td></tr></tbody></table><div></div></td></tr><tr><th scope="row" class="navbox-group" style="width:1%">Storable</th><td class="navbox-list-with-group navbox-list navbox-odd" style="width:100%;padding:0"><div style="padding:0 0.25em"></div><table class="nowraplinks navbox-subgroup" style="border-spacing:0"><tbody><tr><th id="Hypergolic_(Aerozine,_UH_25,_MMH,_or_UDMH_/_N2O4,_MON,_or_HNO3)282" scope="row" class="navbox-group" style="width:1%"><a href="Hypergolic_propellant" title="Hypergolic propellant">Hypergolic</a> (<a href="Aerozine_50" title="Aerozine 50">Aerozine</a>, <br><a href="UH_25" title="UH 25">UH 25</a>, <a href="Monomethylhydrazine" title="Monomethylhydrazine">MMH</a>, or <a href="Unsymmetrical_dimethylhydrazine" title="Unsymmetrical dimethylhydrazine">UDMH</a> <br>/ <a href="Dinitrogen_tetroxide" title="Dinitrogen tetroxide">N<sub>2</sub>O<sub>4</sub></a>, <a href="Mixed_oxides_of_nitrogen" title="Mixed oxides of nitrogen">MON</a>, or <a href="Nitric_acid" title="Nitric acid">HNO<sub>3</sub></a>)</th><td class="navbox-list-with-group navbox-list navbox-even" style="width:100%;padding:0"><div style="padding:0 0.25em">
<ul><li>China
<ul><li><a href="YF-1" title="YF-1">YF-1, 2, 3</a></li>
<li><a href="YF-20" title="YF-20">YF-20, 21, 22, 24, 25</a></li>
<li><a href="YF-23_(rocket_engine)" title="YF-23 (rocket engine)">YF-23</a></li>
<li><a href="YF-40" title="YF-40">YF-40</a></li>
<li><a href="Yuanzheng" title="Yuanzheng">YF-50D</a></li></ul></li>
<li>Europe
<ul><li><a href="Aestus" title="Aestus">Aestus</a></li>
<li><a href="Astris_(rocket_engine)" title="Astris (rocket engine)">Astris</a></li>
<li><a href="Diamant#Vexin" title="Diamant">Vexin</a></li>
<li><a href="Viking_(rocket_engine)" title="Viking (rocket engine)">Viking</a></li></ul></li>
<li>India
<ul><li><a href="Polar_Satellite_Launch_Vehicle#Vehicle_description" title="Polar Satellite Launch Vehicle">PS4</a></li>
<li><a href="Vikas_(rocket_engine)" title="Vikas (rocket engine)">Vikas</a></li></ul></li>
<li>Israel
<ul><li><a href="Shavit_2" title="Shavit 2">LK-4</a></li></ul></li>
<li>North Korea
<ul><li><a href="RD-250" title="RD-250">Paektusan LRE</a> along other LREs</li></ul></li>
<li>Russia
<ul><li><a href="Ikar_(rocket_stage)" title="Ikar (rocket stage)">17D61</a></li>
<li><a href="RD-0210" title="RD-0210">RD-0202 to 0206, 0208 to 0213</a></li>
<li><a href="RD-0214" title="RD-0214">RD-0207, 0214</a></li>
<li><a href="RD-0216" title="RD-0216">RD-0216, 0217, 0235</a></li>
<li><a href="RD-0233" title="RD-0233">RD-0233, 0234</a></li>
<li><a href="RD-0236" title="RD-0236">RD-0236</a></li>
<li><a href="RD-0237" title="RD-0237">RD-0237</a></li>
<li><a href="RD-0243" title="RD-0243">RD-0243 to 0245</a></li>
<li><a href="RD-0255" title="RD-0255">RD-0255 to 0257</a></li>
<li><a href="RD-215" title="RD-215">RD-215 to 219</a></li>
<li><a href="RD-250" title="RD-250">RD-250 to 252, 261, 262</a></li>
<li><a href="RD-253" title="RD-253">RD-253, 275</a></li>
<li><a href="RD-263" title="RD-263">RD-263, 268, 273</a></li>
<li><i><a href="RD-270" title="RD-270">RD-270</a></i></li>
<li><a href="S5.92" title="S5.92">S5.92</a></li>
<li><a href="S5.98M" title="S5.98M">S5.98M</a></li></ul></li>
<li>Ukraine
<ul><li><a href="RD-843" title="RD-843">RD-843</a></li>
<li><a href="RD-861" title="RD-861">RD-854, 861</a></li>
<li><a href="RD-855" title="RD-855">RD-855</a></li>
<li><a href="RD-856" title="RD-856">RD-856</a></li>
<li><a href="RD-864" title="RD-864">RD-864, 869</a></li></ul></li>
<li>United States
<ul><li><a href="AJ10" title="AJ10">AJ10</a></li>
<li><a href="Aerojet_LR87" title="Aerojet LR87">LR-87</a></li>
<li><a href="LR91" title="LR91">LR-91</a></li>
<li><a href="RS-88" title="RS-88">RS-88</a>*</li>
<li><a href="TR-201" title="TR-201">TR-201</a></li>
<li><a href="XLR81" title="XLR81">XLR81</a>*</li></ul></li></ul>
</div></td></tr></tbody></table><div></div></td></tr><tr><th scope="row" class="navbox-group" style="width:1%">Other</th><td class="navbox-list-with-group navbox-list navbox-odd" style="width:100%;padding:0"><div style="padding:0 0.25em">
<ul><li>Russia
<ul><li><a href="RD-119" title="RD-119">RD-109, 119</a></li>
<li><a href="RD-214" title="RD-214">RD-211 to 214</a></li></ul></li>
<li>UK
<ul><li><a href="Bristol_Siddeley_Gamma" title="Bristol Siddeley Gamma">Gamma</a></li></ul></li>
<li>United States
<ul><li><a href="Curie_(rocket_engine)" title="Curie (rocket engine)">Curie</a></li>
<li><a href="RS-88" title="RS-88">RS-88</a>*</li>
<li><a href="XLR81" title="XLR81">XLR81</a>*</li></ul></li></ul>
</div></td></tr></tbody></table><div></div></td><td class="noviewer navbox-image" rowspan="2" style="width:1px;padding:0 0 0 2px"><div><span typeof="mw:File"><span></span></span></div></td></tr><tr><th scope="row" class="navbox-group" style="width:1%"><a href="Solid-propellant_rocket" title="Solid-propellant rocket">Solid <br>fuel</a></th><td class="navbox-list-with-group navbox-list navbox-even" style="width:100%;padding:0"><div style="padding:0 0.25em">
<ul><li>China
<ul><li><a href="FG-02" title="FG-02">FG-02</a></li>
<li><a href="FG-36" title="FG-36">FG-36</a></li>
<li><a href="FG-46" title="FG-46">FG-46</a></li>
<li><a href="FG-47" title="FG-47">FG-47</a></li>
<li>SpaB-65</li>
<li>SpaB-140C</li></ul></li>
<li>Europe
<ul><li><a href="Ariane_1" title="Ariane 1">Mage 1</a></li>
<li><a href="Diamant#P-4" title="Diamant">P-4</a></li>
<li><a href="Diamant#P-6" title="Diamant">P-6</a></li>
<li><a href="Ariane_4" title="Ariane 4">PAP</a></li>
<li><a href="P80_(rocket_stage)" title="P80 (rocket stage)">P80</a></li>
<li><a href="P120C" title="P120C">P120C</a></li>
<li><a href="Ariane_5" title="Ariane 5">P230</a></li>
<li><a href="Diamant#Topaze" title="Diamant">Topaze</a></li>
<li><a href="Waxwing_(rocket_motor)" title="Waxwing (rocket motor)">Waxwing</a></li>
<li><a href="Zefiro_(rocket_stage)" title="Zefiro (rocket stage)">Zefiro 9</a></li>
<li><a href="Zefiro_(rocket_stage)" title="Zefiro (rocket stage)">Zefiro 23</a></li>
<li><a href="Zefiro_(rocket_stage)" title="Zefiro (rocket stage)">Zefiro 40</a></li></ul></li>
<li>India
<ul><li><a href="Polar_Satellite_Launch_Vehicle#Vehicle_description" title="Polar Satellite Launch Vehicle">S7</a></li>
<li><a href="Polar_Satellite_Launch_Vehicle#Vehicle_description" title="Polar Satellite Launch Vehicle">S9</a></li>
<li><a href="Polar_Satellite_Launch_Vehicle#Vehicle_description" title="Polar Satellite Launch Vehicle">S12</a></li>
<li><a href="Geosynchronous_Satellite_Launch_Vehicle#Vehicle_description" title="Geosynchronous Satellite Launch Vehicle">S139</a></li>
<li><a href="Geosynchronous_Satellite_Launch_Vehicle_Mk_III" class="mw-redirect" title="Geosynchronous Satellite Launch Vehicle Mk III">S200</a></li></ul></li>
<li>Iran
<ul><li><a href="Salman_(rocket_motor)" title="Salman (rocket motor)">Salman</a></li>
<li><a href="Qaem_100_(rocket)" class="mw-redirect" title="Qaem 100 (rocket)">Rafe</a></li></ul></li>
<li>Israel
<ul><li><a href="Shavit_2" title="Shavit 2">LK-1</a></li>
<li><a href="Shavit_2" title="Shavit 2">RSA-3</a></li></ul></li>
<li>Japan
<ul><li><a href="M-V" title="M-V">KM-V1</a></li>
<li><a href="Epsilon_(rocket)" title="Epsilon (rocket)">KM-V2b</a></li>
<li><a href="M-V" title="M-V">M-14</a></li>
<li><a href="M-V" title="M-V">M-24</a></li>
<li><a href="M-V" title="M-V">M-34</a></li>
<li><a href="Epsilon_(rocket)" title="Epsilon (rocket)">M-34c</a></li>
<li><a href="SRB-A" title="SRB-A">SRB-A</a></li></ul></li>
<li>United States
<ul><li><a href="AJ-60A" title="AJ-60A">AJ-60A</a></li>
<li><a href="Algol_(rocket_stage)" title="Algol (rocket stage)">Algol</a></li>
<li><a href="Castor_(rocket_stage)" title="Castor (rocket stage)">Castor 30</a></li>
<li><a href="Graphite-Epoxy_Motor" title="Graphite-Epoxy Motor">GEM</a></li>
<li><a href="Inertial_Upper_Stage" title="Inertial Upper Stage">Orbus-6</a></li>
<li><a href="Inertial_Upper_Stage" title="Inertial Upper Stage">Orbus-21</a></li>
<li><a href="Orion_(rocket_stage)" title="Orion (rocket stage)">Orion</a></li>
<li><a href="Space_Shuttle_Solid_Rocket_Booster" title="Space Shuttle Solid Rocket Booster">Space Shuttle SRB</a></li>
<li><a href="Star_(rocket_stage)" title="Star (rocket stage)">Star 37</a></li>
<li><a href="Star_48" title="Star 48">Star 48</a></li>
<li><a href="UA120" title="UA120">UA120</a></li>
<li><a href="Solid_Rocket_Motor_Upgrade" title="Solid Rocket Motor Upgrade">SRMU</a></li>
<li><a href="X-248" class="mw-redirect" title="X-248">X-248</a></li>
<li><a href="X-254" class="mw-redirect" title="X-254">X-254</a></li></ul></li></ul>
</div></td></tr><tr><td class="navbox-abovebelow" colspan="3"><div>
<ul><li>* Different versions of the engine use different propellant combinations</li>
<li>Engines in <i>italics</i> are under development</li></ul>
</div></td></tr></tbody></table></div>
<div class="navbox-styles"></div><div role="navigation" class="navbox" aria-labelledby="Jet_engines_and_aircraft_gas_turbines283" style="padding:3px"><table class="nowraplinks mw-collapsible mw-collapsed navbox-inner" style="border-spacing:0;background:transparent;color:inherit"><tbody><tr><th scope="col" class="navbox-title" colspan="2"><div id="Jet_engines_and_aircraft_gas_turbines283" style="font-size:114%;margin:0 4em"><a href="Jet_engine" title="Jet engine">Jet engines</a> and <a href="Aircraft_engine" title="Aircraft engine">aircraft</a> <a href="Gas_turbine" title="Gas turbine">gas turbines</a></div></th></tr><tr><th scope="row" class="navbox-group" style="width:1%"><a href="Gas_turbine" title="Gas turbine">Gas turbines</a><br> and <a href="Jet_propulsion" title="Jet propulsion">jet propulsion</a></th><td class="navbox-list-with-group navbox-list navbox-odd hlist" style="width:100%;padding:0"><div style="padding:0 0.25em"></div><table class="nowraplinks navbox-subgroup" style="border-spacing:0"><tbody><tr><th scope="row" class="navbox-group" style="width:1%">Types</th><td class="navbox-list-with-group navbox-list navbox-odd" style="width:100%;padding:0"><div style="padding:0 0.25em">
<ul><li><a href="Air_turborocket" title="Air turborocket">Air turborocket</a></li>
<li><a href="Pulsejet" title="Pulsejet">Pulsejet</a>/<a href="Valveless_pulsejet" title="Valveless pulsejet">Valveless pulsejet</a>/<a href="Gluhareff_Pressure_Jet" title="Gluhareff Pressure Jet">Gluhareff Pressure Jet</a></li>
<li><a href="Pulse_detonation_engine" title="Pulse detonation engine">Pulse detonation engine</a></li>
<li><a href="Propfan" title="Propfan">Propfan</a></li>
<li><a href="Turbofan" title="Turbofan">Turbofan</a></li>
<li><a href="Turbojet" title="Turbojet">Turbojet</a></li>
<li><a href="Turboprop" title="Turboprop">Turboprop</a></li>
<li><a href="Turboshaft" title="Turboshaft">Turboshaft</a></li>
<li><a href="Ramjet" title="Ramjet">Ramjet</a></li>
<li><a href="Scramjet" title="Scramjet">Scramjet</a></li>
<li><a href="Shcramjet" title="Shcramjet">Shcramjet</a></li>

<li><a href="Rotating_detonation_engine" title="Rotating detonation engine">Rotating detonation engine</a></li></ul>
</div></td></tr><tr><th scope="row" class="navbox-group" style="width:1%">Mechanical<br> components</th><td class="navbox-list-with-group navbox-list navbox-even" style="width:100%;padding:0"><div style="padding:0 0.25em">
<ul><li><a href="Accessory_drive" title="Accessory drive">Accessory drive</a></li>
<li><a href="Components_of_jet_engines#Air_intakes" title="Components of jet engines">Air intake</a></li>
<li><a href="Afterburner" title="Afterburner">Afterburner (reheat)</a></li>
<li><a href="Axial_compressor" title="Axial compressor">Axial compressor</a></li>
<li><a href="Centrifugal_compressor" title="Centrifugal compressor">Centrifugal compressor</a></li>
<li><a href="Combustor" title="Combustor">Combustor</a></li>
<li><a href="Constant_speed_drive" title="Constant speed drive">Constant speed drive</a></li>
<li><a href="Impeller" title="Impeller">Impeller</a></li>
<li><a href="Nose_bullet" class="mw-redirect" title="Nose bullet">Nose bullet</a></li>
<li><a href="Propelling_nozzle" title="Propelling nozzle">Propelling nozzle</a></li>
<li><a href="Turbine_blade" title="Turbine blade">Turbine blade</a></li></ul>
</div></td></tr><tr><th scope="row" class="navbox-group" style="width:1%">Principles</th><td class="navbox-list-with-group navbox-list navbox-odd" style="width:100%;padding:0"><div style="padding:0 0.25em">
<ul><li><a href="Aircraft_engine_starting" title="Aircraft engine starting">Aircraft engine starting</a></li>
<li><a href="Bleed_air" title="Bleed air">Bleed air</a></li>
<li><a href="Brayton_cycle" title="Brayton cycle">Brayton cycle</a></li>
<li><a href="Bypass_ratio" title="Bypass ratio">Bypass ratio</a></li>
<li><a href="Compressor_stall" title="Compressor stall">Compressor stall</a></li>
<li><a href="Engine_pressure_ratio" title="Engine pressure ratio">Engine pressure ratio (EPR)</a></li>
<li><a href="Flameout" title="Flameout">Flameout</a></li>
<li><a href="Jet_engine_performance" title="Jet engine performance">Jet engine performance</a></li>
<li><a href="Overall_pressure_ratio" title="Overall pressure ratio">Overall pressure ratio</a></li>
<li><a href="Propulsive_efficiency" title="Propulsive efficiency">Propulsive efficiency</a></li>
<li><a href="Specific_impulse" title="Specific impulse">Specific impulse</a></li>
<li><a href="Thrust" title="Thrust">Thrust</a></li>
<li><a href="Thrust_lapse" class="mw-redirect" title="Thrust lapse">Thrust lapse</a></li>
<li><a href="Thrust_specific_fuel_consumption" class="mw-redirect" title="Thrust specific fuel consumption">Thrust specific fuel consumption</a></li>
<li><a href="Thrust_to_weight_ratio" class="mw-redirect" title="Thrust to weight ratio">Thrust to weight ratio</a></li>
<li><a href="Variable_cycle_engine" title="Variable cycle engine">Variable cycle engine</a></li>
<li><a href="Windmill_restart" class="mw-redirect" title="Windmill restart">Windmill restart</a></li></ul>
</div></td></tr></tbody></table><div></div></td></tr><tr><th scope="row" class="navbox-group" style="width:1%"><a href="Propeller_(aeronautics)" title="Propeller (aeronautics)">Propellers</a></th><td class="navbox-list-with-group navbox-list navbox-odd hlist" style="width:100%;padding:0"><div style="padding:0 0.25em"></div><table class="nowraplinks navbox-subgroup" style="border-spacing:0"><tbody><tr><th scope="row" class="navbox-group" style="width:1%">Components</th><td class="navbox-list-with-group navbox-list navbox-even" style="width:100%;padding:0"><div style="padding:0 0.25em">
<ul><li><a href="Propeller_governor" class="mw-redirect" title="Propeller governor">Propeller governor</a></li>
<li><a href="Propeller_speed_reduction_unit" title="Propeller speed reduction unit">Propeller speed reduction unit</a></li></ul>
</div></td></tr><tr><th scope="row" class="navbox-group" style="width:1%">Principles</th><td class="navbox-list-with-group navbox-list navbox-odd" style="width:100%;padding:0"><div style="padding:0 0.25em">
<ul><li><a href="Autofeather" title="Autofeather">Autofeather</a></li>
<li><a href="Blade_pitch" title="Blade pitch">Blade pitch</a></li>
<li><a href="Constant-speed_propeller" class="mw-redirect" title="Constant-speed propeller">Constant-speed</a></li>
<li><a href="Contra-rotating_propellers" title="Contra-rotating propellers">Contra-rotating</a></li>
<li><a href="Counter-rotating_propellers" title="Counter-rotating propellers">Counter-rotating</a></li>
<li><a href="Proprotor" title="Proprotor">Proprotor</a></li>
<li><a href="Scimitar_propeller" title="Scimitar propeller">Scimitar</a></li>
<li><a href="Variable-pitch_propeller_(aeronautics)" title="Variable-pitch propeller (aeronautics)">Variable-pitch</a></li></ul>
</div></td></tr></tbody></table><div></div></td></tr><tr><th scope="row" class="navbox-group" style="width:1%">Engine<br> instruments</th><td class="navbox-list-with-group navbox-list navbox-even hlist" style="width:100%;padding:0"><div style="padding:0 0.25em">
<ul><li><a href="Annunciator_panel" title="Annunciator panel">Annunciator panel</a></li>
<li><a href="Electronic_centralised_aircraft_monitor" title="Electronic centralised aircraft monitor">Electronic centralised aircraft monitor (ECAM)</a></li>
<li><a href="Electronic_flight_instrument_system" title="Electronic flight instrument system">Electronic flight instrument system (EFIS)</a></li>
<li><a href="Engine-indicating_and_crew-alerting_system" title="Engine-indicating and crew-alerting system">Engine-indicating and crew-alerting system (EICAS)</a></li>
<li><a href="Flight_data_recorder" class="mw-redirect" title="Flight data recorder">Flight data recorder</a></li>
<li><a href="Glass_cockpit" title="Glass cockpit">Glass cockpit</a></li></ul>
</div></td></tr><tr><th scope="row" class="navbox-group" style="width:1%"><a href="Aircraft_engine_controls" title="Aircraft engine controls">Engine controls</a></th><td class="navbox-list-with-group navbox-list navbox-odd hlist" style="width:100%;padding:0"><div style="padding:0 0.25em">
<ul><li><a href="Autothrottle" title="Autothrottle">Autothrottle</a></li>
<li><a href="FADEC" title="FADEC">Full Authority Digital Engine/Electronics (FADEC)</a></li>
<li><a href="Thrust_lever" title="Thrust lever">Thrust lever</a></li>
<li><a href="Thrust_reversal" title="Thrust reversal">Thrust reversal</a></li></ul>
</div></td></tr><tr><th scope="row" class="navbox-group" style="width:1%"><a href="Aircraft_fuel_system" title="Aircraft fuel system">Fuel</a> and induction<br> systems</th><td class="navbox-list-with-group navbox-list navbox-even hlist" style="width:100%;padding:0"><div style="padding:0 0.25em">
<ul><li><a href="Flame_holder" title="Flame holder">Flame holder</a></li>
<li><a href="Jet_fuel" title="Jet fuel">Jet fuel</a></li></ul>
</div></td></tr><tr><th scope="row" class="navbox-group" style="width:1%">Other systems</th><td class="navbox-list-with-group navbox-list navbox-odd hlist" style="width:100%;padding:0"><div style="padding:0 0.25em">
<ul><li><a href="Air-start_system" title="Air-start system">Air-start system</a></li>
<li><a href="Auxiliary_power_unit" title="Auxiliary power unit">Auxiliary power unit (APU)</a></li>
<li><a href="Bleed_air" title="Bleed air">Bleed air system</a></li>
<li><a href="Hydraulic_fluid#Aircraft_hydraulic_systems" title="Hydraulic fluid">Hydraulic system</a></li>
<li><a href="Ice_protection_system" title="Ice protection system">Ice protection system</a></li></ul>
</div></td></tr></tbody></table></div>
<div class="navbox-styles"></div><div role="navigation" class="navbox" aria-labelledby="Heat_engines39" style="padding:3px"><table class="nowraplinks mw-collapsible uncollapsed navbox-inner" style="border-spacing:0;background:transparent;color:inherit"><tbody><tr><th scope="col" class="navbox-title" colspan="2" style="background:#F0DC82;"><div id="Heat_engines39" style="font-size:114%;margin:0 4em"><a href="Heat_engine" title="Heat engine">Heat engines</a></div></th></tr><tr><td colspan="2" class="navbox-list navbox-odd hlist" style="width:100%;padding:0"><div style="padding:0 0.25em">
<ul><li><a href="Carnot_heat_engine" title="Carnot heat engine">Carnot engine</a></li>
<li><a href="Fluidyne_engine" title="Fluidyne engine">Fluidyne</a></li>
<li><a href="Gas_turbine" title="Gas turbine">Gas turbine</a></li>
<li><a href="Hot_air_engine" title="Hot air engine">Hot air</a></li>
<li><a href="Jet_engine" title="Jet engine">Jet</a></li>
<li><a href="Minto_wheel" title="Minto wheel">Minto wheel</a></li>
<li><a href="Photo-Carnot_engine" title="Photo-Carnot engine">Photo-Carnot engine</a></li>
<li><a href="Reciprocating_engine" title="Reciprocating engine">Piston</a></li>
<li><a href="Pistonless_rotary_engine" title="Pistonless rotary engine">Pistonless (Rotary)</a></li>
<li><a href="Rijke_tube" title="Rijke tube">Rijke tube</a></li>

<li><a href="Split-single_engine" title="Split-single engine">Split-single</a></li>
<li><a href="Steam_engine" title="Steam engine">Steam (reciprocating)</a></li>
<li><a href="Steam_turbine" title="Steam turbine">Steam turbine</a>
<ul><li><a href="Aeolipile" title="Aeolipile">Aeolipile</a></li></ul></li>
<li><a href="Stirling_engine" title="Stirling engine">Stirling</a></li>
<li><a href="Thermoacoustic_heat_engine" title="Thermoacoustic heat engine">Thermoacoustic</a></li>
<li><a href="Manson_engine" title="Manson engine">Manson engine</a></li></ul>
</div></td></tr><tr><td colspan="2" class="navbox-list navbox-even hlist" style="width:100%;padding:0"><div style="padding:0 0.25em">
<ul><li><a href="Beale_number" title="Beale number">Beale number</a></li>
<li><a href="West_number" title="West number">West number</a></li></ul>
</div></td></tr><tr><td colspan="2" class="navbox-list navbox-odd hlist" style="width:100%;padding:0"><div style="padding:0 0.25em">
<ul><li><a href="Timeline_of_heat_engine_technology" title="Timeline of heat engine technology">Timeline of heat engine technology</a></li></ul>
</div></td></tr><tr><td class="navbox-abovebelow" colspan="2" style="background:#F0DC82;"><div><a href="Thermodynamic_cycle" title="Thermodynamic cycle">Thermodynamic cycle</a></div></td></tr></tbody></table></div>
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