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An entropy-variable-based VMS/GLS method for the simulation of compressible flows on unstructured grids

机译:基于熵变量的VMS / GLS方法在非结构化网格上模拟可压缩流

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The variational multiscale approach for large-eddy simulation is investigated within a finite element framework. A filtering analog of this method, providing a model, which shares basic structures with hyperviscosity models, is used and evaluated on a freely decaying isotropic turbulence in the limit of infinite Reynolds numbers. The method used is based on a symmetric form of the Navier-Stokes equations stabilized with a Galerkin/least-squares approach. The proposed procedure provides appealing results. It is as satisfactory as the use of Germano and Lilly's dynamic algorithm, without stabilization flaws, and at a lower cost. Comparisons between numerical dissipation and the proper subgrid closure show that the variational multiscale models tend to compute a turbulent viscosity that accounts for the numerical sources of dissipation, which reveals an important feature for an intensive and robust use of VMS-large-eddy simulation.
机译:在有限元框架内研究了用于大涡模拟的变分多尺度方法。使用此方法的过滤类似物,并提供一个模型,该模型与高粘度模型共享基本结构,并在无限雷诺数的范围内对自由衰减的各向同性湍流进行评估。所使用的方法基于以Galerkin /最小二乘法稳定的Navier-Stokes方程的对称形式。拟议的程序提供了有吸引力的结果。它与使用Germano和Lilly的动态算法一样令人满意,并且没有稳定性缺陷,而且成本较低。数值耗散与适当的子网格闭合之间的比较表明,变分多尺度模型趋向于计算造成耗散数值来源的湍流粘度,这揭示了密集和鲁棒地使用VMS-大涡模拟的重要特征。

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