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Algebraic Reynolds stress modeling of turbulence subject to rapid homogeneous and non-homogeneous compression or expansion

机译:湍流的代数雷诺应力模型,受快速均质和非均质压缩或膨胀的影响

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A recently developed explicit algebraic Reynolds stress model (EARSM) by Grigoriev et al.["A realizable explicit algebraic Reynolds stress model for compressible turbulent flow with significant mean dilatation," Phys. Fluids 25(10), 105112 (2013)] and the related differential Reynolds stress model (DRSM) are used to investigate the influence of homogeneous shear and compression on the evolution of turbulence in the limit of rapid distortion theory (RDT). The DRSM predictions of the turbulence kinetic energy evolution are in reasonable agreement with RDT while the evolution of diagonal components of anisotropy correctly captures the essential features, which is not the case for standard compressible extensions of DRSMs. The EARSM is shown to give a realizable anisotropy tensor and a correct trend of the growth of turbulence kinetic energy K, which saturates at a power law growth versus compression ratio, as well as retaining a normalized strain in the RDT regime. In contrast, an eddy-viscosity model results in a rapid exponential growth of K and excludes both realizability and high magnitude of the strain rate. We illustrate the importance of using a proper algebraic treatment of EARSM in systems with high values of dilatation and vorticity but low shear. A homogeneously compressed and rotating gas cloud with cylindrical symmetry, related to astrophysical flows and swirling supercritical flows, was investigated too. We also outline the extension of DRSM and EARSM to include the effect of non-homogeneous density coupled with " local mean acceleration" which can be important for, e.g., stratified flows or flows with heat release. A fixed-point analysis of direct numerical simulation data of combustion in a wall-jet flow demonstrates that our model gives quantitatively correct predictions of both streamwise and cross-stream components of turbulent density flux as well as their influence on the anisotropies. In summary, we believe that our approach, based on a proper formulation of the rapid pressure-strain correlation and accounting for the coupling with turbulent density flux, can be an important element in CFD tools for compressible flows. (C) 2016 AIP Publishing LLC.
机译:Grigoriev等人最近开发的显式代数雷诺应力模型(EARSM)[“具有显着平均膨胀的可压缩湍流的可实现的显式代数雷诺应力模型,” Phys。流体25(10),105112(2013)]和相关的微分雷诺应力模型(DRSM)用于在快速变形理论(RDT)的极限下研究均相剪切和压缩对湍流演化的影响。 DRSM对湍动能演化的预测与RDT合理地吻合,而各向异性对角线成分的演化正确地捕捉了基本特征,而对于DRSM的标准可压缩扩展则不是这种情况。 EARSM已显示出可实现的各向异性张量和湍流动能K增长的正确趋势,湍流动能K在幂律增长与压缩比下达到饱和,并且在RDT方案中保留了标准化应变。相反,涡流粘度模型导致K的指数快速增长,并且排除了可实现性和高应变速率。我们说明了在膨胀和涡度高但剪切力低的系统中使用EARSM的适当代数处理的重要性。还研究了与天体物理流和旋流超临界流有关的,具有圆柱对称性的均匀压缩和旋转的气体云。我们还概述了DRSM和EARSM的扩展,以包括非均匀密度和“局部平均加速度”的影响,这对于例如分层流或带热量释放的流可能很重要。对壁面射流中燃烧的直接数值模拟数据的定点分析表明,我们的模型对湍流密度通量的流向和跨流分量以及它们对各向异性的影响给出了定量正确的预测。总而言之,我们认为,基于快速压力-应变相关性的适当公式化,并考虑与湍流密度通量的耦合,我们的方法可以成为可压缩流CFD工具中的重要元素。 (C)2016 AIP出版有限责任公司。

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