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Synthetic and jet fuels pyrolysis for cooling and combustion applications

机译:合成和喷气燃料热解,用于冷却和燃烧应用

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Large heat load are encountered in hypersonic flight applications due to the high vehicle speed (over Mach 5, i.e. 5000 km h~(-1)) and to the combustion heat release. If passive and ablative protections are a way to ensure the thermal management, the regenerative cooling is probably the most efficient one to enable the structures withstanding (notably for reusable structures). The present study is a part of COMPARER project (COntrol and Measure of PArameters in a REacting stReam) which aims at investigating the highly coupled phenomenon (heat and mass transfers, pyrolysis, combustion) in a cooling channel surrounding a SCRamjet combustion chamber and at proposing some parameters to enable the control of such a complex technology. In this paper, we present the comparative numerical pyrolysis study of some selected synthetic and jet fuels (heptane, decane, dodecane, kerosene surrogate). The fluid pyrolysis has been studied experimentally and the results of RESPIRE numerical simulation under lab and in-flight conditions are given with validation to provide a deep understanding of phenomenon. The impact of the density, of the critical parameters, of the viscosity and of the chemistry is investigated to analyze their effect on the cooling efficiency of the engine. That also enables to estimate properties which the best cooling fuel should have. Furthermore, a combustion study is conducted because the cooling fuel is the one that ensure the thrust. The RESPIRE code enables to conduct both coupled pyrolysis and combustion studies. A first approach of the dynamic regeneratively cooled SCRamjet is provided to get a large vision of the fuel nature impact on the system.
机译:由于高车速(超过5马赫,即5000 km h〜(-1))和燃烧放热,在高超音速飞行应用中会遇到大的热负荷。如果被动和烧蚀保护是确保热管理的一种方式,则再生冷却可能是使结构能够承受的最有效的方法(特别是对于可重复使用的结构)。本研究是COMPARER项目(反应性反应中的COntrol和参数测量)的一部分,该项目的目的是研究SCRamjet燃烧室周围冷却通道中的高度耦合现象(传热和传质,热解,燃烧)。一些参数可以控制这种复杂的技术。在本文中,我们介绍了一些选定的合成和喷气燃料(庚烷,癸烷,十二烷,煤油替代品)的比较数值热解研究。对流体热解进行了实验研究,并给出了在实验室和飞行条件下进行RESPIRE数值模拟的结果,并进行了验证,以深入理解现象。研究了密度,关键参数,粘度和化学物质的影响,以分析它们对发动机冷却效率的影响。这也使得能够估计最佳冷却燃料应具有的特性。此外,进行燃烧研究是因为冷却燃料是确保推力的燃料。 RESPIRE代码可以进行热解和燃烧耦合研究。提供了动态蓄冷式SCRamjet的第一种方法,以期获得对系统的燃料性质影响的广阔视野。

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