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    Numerical Modeling of Regenerative Cooling System for Large Expansion Ratio Rocket Engines

    Source: Journal of Thermal Science and Engineering Applications:;2015:;volume( 007 ):;issue: 001::page 11012
    Author:
    Rajagopal, Manikanda
    DOI: 10.1115/1.4028979
    Publisher: The American Society of Mechanical Engineers (ASME)
    Abstract: In this study, the performance of regenerative cooling system for large expansion ratio rocket engines (Ae/At ∼ 100) is investigated numerically. During combustion and gas expansion, the walls of the combustion chamber and the rocket nozzle are exposed to high temperature gas (∼3500 K), which can ultimately lead to structural failure. Therefore, to protect the hardware from thermal failure, a regenerative cooling system for a cryogenic rocket engine that uses fuel (liquid hydrogen (LH)) or oxidizer (liquid oxygen (LOX)) as the cooling medium is considered. Threedimensional simulations have been performed for both constant and variable fluid properties. The influence of the thermal properties of the material and thickness of the nozzle wall on conductive heat transfer has also been investigated. The effect of radiative heat transfer when there is no regenerative cooling system has been analyzed. In addition, heat transfer enhancement for different turbulence models and the influence of coolant used (both the fuel and oxidizer) is also investigated. It is evident from the results that a properly designed regenerative cooling system can maintain the hot side wall at a temperature well below the melting point of the wall material, which ensures the protection of nozzle hardware from thermal failure. Also, the predicted pressure drop is found to be 0.7 bar, which meets the design requirement. Numerical predictions are validated with the data available in literature.
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      Numerical Modeling of Regenerative Cooling System for Large Expansion Ratio Rocket Engines

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    https://yetl.yabesh.ir/yetl1/handle/yetl/159692
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    • Journal of Thermal Science and Engineering Applications

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    contributor authorRajagopal, Manikanda
    date accessioned2017-05-09T01:23:44Z
    date available2017-05-09T01:23:44Z
    date issued2015
    identifier issn1948-5085
    identifier othertsea_007_01_011012.pdf
    identifier urihttp://yetl.yabesh.ir/yetl/handle/yetl/159692
    description abstractIn this study, the performance of regenerative cooling system for large expansion ratio rocket engines (Ae/At ∼ 100) is investigated numerically. During combustion and gas expansion, the walls of the combustion chamber and the rocket nozzle are exposed to high temperature gas (∼3500 K), which can ultimately lead to structural failure. Therefore, to protect the hardware from thermal failure, a regenerative cooling system for a cryogenic rocket engine that uses fuel (liquid hydrogen (LH)) or oxidizer (liquid oxygen (LOX)) as the cooling medium is considered. Threedimensional simulations have been performed for both constant and variable fluid properties. The influence of the thermal properties of the material and thickness of the nozzle wall on conductive heat transfer has also been investigated. The effect of radiative heat transfer when there is no regenerative cooling system has been analyzed. In addition, heat transfer enhancement for different turbulence models and the influence of coolant used (both the fuel and oxidizer) is also investigated. It is evident from the results that a properly designed regenerative cooling system can maintain the hot side wall at a temperature well below the melting point of the wall material, which ensures the protection of nozzle hardware from thermal failure. Also, the predicted pressure drop is found to be 0.7 bar, which meets the design requirement. Numerical predictions are validated with the data available in literature.
    publisherThe American Society of Mechanical Engineers (ASME)
    titleNumerical Modeling of Regenerative Cooling System for Large Expansion Ratio Rocket Engines
    typeJournal Paper
    journal volume7
    journal issue1
    journal titleJournal of Thermal Science and Engineering Applications
    identifier doi10.1115/1.4028979
    journal fristpage11012
    journal lastpage11012
    identifier eissn1948-5093
    treeJournal of Thermal Science and Engineering Applications:;2015:;volume( 007 ):;issue: 001
    contenttypeFulltext
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