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Compressibility and heat release effects in high-speed reactive mixing layers I.: Growth rates and turbulence characteristics

机译:高速反应混合层中的压缩性和放热效果I .:增长率和湍流特性

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A new set of three-dimensional direct numerical simulations (DNS) of spatially-developing high-speed H-2/air mixing layers is presented and analysed. It corresponds to three distinct values of the convective Mach number M-c for both inert and reactive conditions. The results obtained from this new set of DNS data confirms that the mixing layer growth rate decreases according to pressure-dilatation Pi(11). However, an interesting point is that, in contrast to previous analyses, the decay of pressure fluctuations may not be the sole reason for this reduced growth rate, since strain-rate fluctuations decrease in a similar amount. For reactive mixing layers, depending on the value of Mc, the thermal runaway occurs in either the mixing layer development zone (small value of Mc) or the fully developed turbulence region (larger value of Mc). The examination of the mixture fraction probability density functions shows that the influence of engulfment processes, which play an important role at small Mc, tends to disappear in the presence of heat release as well as for increasing values of Mc. The present database of spatially developing mixing layers featuring both detailed chemistry and detailed transport (i.e., Soret, Dufour and bulk viscosity effects) thus confirms some of the conclusions that were previously drawn from results issued from temporal mixing layer DNS studies conducted with single-step chemistry. (C) 2016 The Combustion Institute. Published by Elsevier Inc. All rights reserved.
机译:提出并分析了空间发展的高速H-2 /空气混合层的一组新的三维直接数值模拟(DNS)。对于惰性和反应条件,它对应于对流马赫数M-c的三个不同值。从这组新的DNS数据获得的结果证实,混合层的生长速率根据压力膨胀Pi(11)而降低。但是,有趣的一点是,与以前的分析相反,压力波动的衰减可能不是这种增长率降低的唯一原因,因为应变率波动的下降幅度相似。对于反应性混合层,取决于Mc的值,热失控发生在混合层显影区(Mc的值较小)或完全展开的湍流区域(Mc的值较大)。对混合分数概率密度函数的检查表明,吞噬过程的影响在小Mc上起着重要作用,在放热和增加Mc值的情况下趋于消失。因此,当前具有详细化学特征和详细传输特征(即Soret,Dufour和体积粘度效应)的空间发育混合层的数据库可以确认某些结论,这些结论先前是根据单步进行的时间混合层DNS研究得出的结果得出的化学。 (C)2016年燃烧研究所。由Elsevier Inc.出版。保留所有权利。

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