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首页> 外文期刊>Journal of Fluid Mechanics >Subgrid-scale backscatter in reacting and inert supersonic hydrogen-air turbulent mixing layers
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Subgrid-scale backscatter in reacting and inert supersonic hydrogen-air turbulent mixing layers

机译:反应和惰性超音速氢气-空气湍流混合层中的亚网格级反向散射

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摘要

This study addresses the dynamics of backscatter of kinetic energy in the context of large-eddy simulations (LES) of high-speed turbulent reacting flows. A priori analyses of direct numerical simulations (DNS) of reacting and inert supersonic, time-developing, hydrogen-air turbulent mixing layers with complex chemistry and multicomponent diffusion are conducted here in order to examine the effects of compressibility and combustion on subgrid-scale (SGS) backscatter of kinetic energy. The main characteristics of the aerothermochemical field in the mixing layer are outlined. A selfsimilar period is identified in which some of the turbulent quantities grow in a quasi-linear manner. A differential filter is applied to the DNS flow field to extract filtered quantities of relevance for the large-scale kinetic-energy budget. Spatiotemporal analyses of the flow-field statistics in the selfsimilar regime are performed, which reveal the presence of considerable amounts of SGS backscatter. The dilatation field becomes spatially intermittent as a result of the high-speed compressibility effect. In addition, the large-scale pressure-dilatation work is observed to be an essential mechanism for the local conversion of thermal and kinetic energies. A joint probability density function (PDF) of SGS dissipation and large-scale pressure-dilatation work is provided, which shows that backscatter occurs primarily in regions undergoing volumetric expansion; this implies the existence of an underlying physical mechanism that enhances the reverse energy cascade. Furthermore, effects of SGS backscatter on the Boussinesq eddy viscosity are studied, and a regime diagram demonstrating the relationship between the different energy-conversion modes and the sign of the eddy viscosity is provided along with a detailed budget of the volume fraction in each mode. A joint PDF of SGS dissipation and SGS dynamic-pressure dilatation work is calculated, which shows that high-speed compressibility effects lead to a decorrelation between SGS backscatter and negative eddy viscosities, which increases for increasingly large values of the SGS Mach number and filter width. Finally, it is found that the combustion dynamics have a marginal impact on the backscatter and flow-dilatation distributions, which are mainly dominated by the high-Mach-number effects.
机译:这项研究在高速湍流反应流的大涡模拟(LES)的背景下解决了动能反向散射的动力学问题。为了验证可压缩性和燃烧对亚网格规模的影响,在这里进行了反应性和惰性超音速,时间发展,氢-空气湍流混合层的化学反应和多组分扩散的直接数值模拟(DNS)的先验分析。 SGS)的动能反向散射。概述了混合层中的热化学场的主要特征。确定了一个自相似周期,其中一些湍流以准线性方式增长。将差分过滤器应用于DNS流场,以提取与大规模动能预算相关的已过滤量。在自相似状态下进行流场统计的时空分析,发现存在大量的SGS反向散射。由于高速压缩效应,膨胀场在空间上是断续的。另外,观察到大规模的压力膨胀功是热能和动能的局部转换的重要机制。提供了SGS耗散和大规模压力膨胀工作的联合概率密度函数(PDF),该函数表明反向散射主要发生在体积膨胀的区域。这意味着存在增强反向能量级联的潜在物理机制。此外,研究了SGS反向散射对Boussinesq涡流粘度的影响,并提供了一个示意图来说明不同的能量转换模式与涡流粘度的符号之间的关系,并提供了每种模式下体积分数的详细预算。计算了SGS耗散和SGS动态压力膨胀功的联合PDF,该结果表明,高速压缩效应导致SGS反向散射与负涡流粘度之间具有去相关性,随着SGS马赫数和过滤器宽度的值越来越大,该相关性会增加。最后,发现燃烧动力学对反向散射和流膨胀分布有边际影响,这主要受高马赫数效应支配。

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