首页> 外文期刊>International Journal of Heat and Mass Transfer >Effect of geometry parameters on the hydrocarbon fuel flow rate distribution in pyrolysis zone of SCRamjet cooling channels
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Effect of geometry parameters on the hydrocarbon fuel flow rate distribution in pyrolysis zone of SCRamjet cooling channels

机译:几何参数对SCRamjet冷却通道热解区碳氢燃料流量分布的影响

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摘要

Hypersonic air-breathing propulsion (Mach 5) based on SCRamjet promotes the revolutions of both military and civilian applications. However, the engine thermal protection is seriously challenged due to high Mach number. One of the key problems is mal-distribution of hydrocarbon fuel in regenerative cooling channels under the complex thermal boundaries and channel geometry, which may cause structural failure. To improve the cooling channel design and achieve better fuel flow distribution, the effect of channel geometry parameters on flow distribution in pyrolysis zone is numerically studied. Both geometry induced and heat flux induced flow mal-distribution are concerned. The study indicates that the flow and heat transfer features in pyrolysis zone of parallel channels differs with those in non-pyrolysis zone. The flow distribution deviations in pyrolysis zone are lower. When the channel aspect ratio varies, thermal stratification dominates flow distribution more than the variation of heat flux on heated surface in pyrolysis zone, which is opposite of that in non-pyrolysis zone. Besides, thinner rib and smaller total flow area achieve better cooling performance while consuming less fuel chemical heat sink. The results help to conclude possible references to the design of cooling channels with fuel pyrolysis considered. (C) 2019 Elsevier Ltd. All rights reserved.
机译:基于SCRamjet的高超音速呼吸推进器(> 5马赫)推动了军事和民用应用领域的革命。但是,由于马赫数高,发动机的热保护受到严重挑战。关键问题之一是在复杂的热边界和通道几何形状下,再生冷却通道中碳氢燃料分布不均,这可能导致结构故障。为了改善冷却通道的设计并获得更好的燃料流分布,数值研究了通道几何参数对热解区流分布的影响。几何引起的和热通量引起的流量分布不均都受到关注。研究表明,平行通道热解区的流动和传热特性与非热解区的不同。热解区的流量分布偏差较小。当通道长宽比变化时,热分层比热解区受热表面的热通量变化更重要,这是与非热解区相反的。此外,更薄的肋骨和更小的总流通面积可实现更好的冷却性能,同时消耗更少的燃料化学散热器。结果有助于总结考虑了燃料热解的冷却通道的设计参考。 (C)2019 Elsevier Ltd.保留所有权利。

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