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首页> 外文期刊>Journal of Applied Mechanics: Transactions of the ASME >Subgrid Scale Modeling of Turbulence for the Dynamic Procedure Using Finite Difference Method and Its Assessment on the Thermally Stratified Turbulent Channel Flow
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Subgrid Scale Modeling of Turbulence for the Dynamic Procedure Using Finite Difference Method and Its Assessment on the Thermally Stratified Turbulent Channel Flow

机译:动态过程的湍流亚网格尺度建模的有限差分方法及其对热分层湍流通道流动的评估

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摘要

Previously proposed methods for subgrid-scale (SGS) stress modeling were re-investigated and extended to SGS heat-flux modeling, and various anisotropic and isotropic eddy viscosity/diffusivity models were obtained. On the assumption that they are used in a finite-difference (FD) simulation, the models were constructed in such a way that they are insensitive to numerical parameters on which calculated flows are strongly dependent in the conventional Smagorinsky model. The models obtained, as well as those previously proposed, were evaluated a priori in a stably stratified open channel flow, which is considered to be a challenging application of large eddy simulation and suitable for testing both SGS stress and heat-flux models. The most important feature of the models proposed is that they are insensitive to the discretized test filtering parameter required in the dynamic procedure of Germano et al. (1991, Phys. Fluids, 3, pp. 1760-1765) in FD simulation. We also found in SGS heat-flux modeling that the effect of the grid (resolved)-scale (GS) velocity gradient plays an important role in the estimation of the streamwise heat flux, and an isotropic eddy diffusivity model with the effect of the GS velocity is proposed.
机译:重新研究了先前提出的亚网格尺度(SGS)应力建模方法,并将其扩展到SGS热通量建模,并获得了各种各向异性和各向同性的涡流粘度/扩散率模型。假设将它们用于有限差分(FD)仿真中,则以不对数值参数敏感的方式构造模型,而常规Smagorinsky模型中所计算的流量很大程度上取决于数值参数。先后在稳定的分层明渠流中对获得的模型和先前提出的模型进行了先验评估,这被认为是大涡流模拟的一项挑战性应用,适用于测试SGS应力模型和热通量模型。提出的模型的最重要特征是,它们对Germano等人的动态过程中所需的离散化测试滤波参数不敏感。 (1991,Phys.Fluids,3,pp.1760-1765)中的FD模拟。我们还发现,在SGS热通量建模中,网格(分辨)尺度(GS)速度梯度的影响在估算流向热通量中起着重要作用,而各向同性涡流扩散率模型在GS的影响中起着重要作用。建议的速度。

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