论文标题

大型涡流模拟的结构亚网格应力封闭的最佳剪辑

Optimal Clipping of Structural Subgrid Stress Closures for Large Eddy Simulation

论文作者

Prakash, Aviral, Jansen, Kenneth E., Evans, John A.

论文摘要

大型涡流模拟的结构亚电网应力模型通常可以从未解决到解析的湍流尺度的能量进行反向散射,但是过度的模型反向散射最终会导致数值不稳定。克服此问题的通常采用的策略是将预测的亚网格应力设置为模型反向散射区域中的零。然而,这种剪裁过程以减少预测的亚网格应力与确切的亚网格应力之间的相关性而提高了结构模型的稳定性。在本文中,我们提出了一种替代策略,该策略通过解决约束最小化问题的解决方案从模型预测中删除模型反向散射。我们称之为最佳剪辑的过程导致无参数混合模型,并且与与传统剪裁程序相比,与确切的亚网格应力相比,它与精确的子网格应力相关性较高相关性。我们执行一系列先验和后验测试,以研究将传统和最佳剪辑程序应用于克拉克的梯度亚网格应力模型的影响,并且我们观察到,与传统剪裁程序相比,最佳剪辑会导致模型预测的显着改善。

Structural subgrid stress models for large eddy simulation often allow for backscatter of energy from unresolved to resolved turbulent scales, but excessive model backscatter can eventually result in numerical instability. A commonly employed strategy to overcome this issue is to set predicted subgrid stresses to zero in regions of model backscatter. This clipping procedure improves the stability of structural models, however, at the cost of reduced correlation between the predicted subgrid stresses and the exact subgrid stresses. In this article, we propose an alternative strategy that removes model backscatter from model predictions through the solution of a constrained minimization problem. This procedure, which we refer to as optimal clipping, results in a parameter-free mixed model, and it yields predicted subgrid stresses in higher correlation with the exact subgrid stresses as compared with those attained with the traditional clipping procedure. We perform a series of a priori and a posteriori tests to investigate the impact of applying the traditional and optimal clipping procedures to Clark's gradient subgrid stress model, and we observe that optimal clipping leads to a significant improvement in model predictions as compared to the traditional clipping procedure.

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