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Subgrid-scale modeling and implicit numerical dissipation in DG-based Large-Eddy Simulation

机译:基于DG的大涡模拟谱系统建模与隐含数值耗散

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Over the past few years, high-order discontinuous Galerkin (DG) methods for Large-Eddy Simulation (LES) have emerged as a promising approach to solve complex turbulent flows. However, despite the significant research investment, the relation between the discretization scheme, the subgrid-scale (SGS) model and the resulting LES solver remains unclear. This paper aims to shed some light on this matter. To that end, we investigate the role of the Riemann solver, the SGS model, the time resolution, and the accuracy order in the ability to predict a variety of flow regimes, including transition to turbulence, wall-free turbulence, wall-bounded turbulence, and turbulence decay. The transitional flow over the Eppler 387 wing, the Taylor-Green vortex problem and the turbulent channel flow are considered to this end. The focus is placed on post-processing the LES results and providing with a rationale for the performance of the various approaches.
机译:在过去的几年里,大级不连续的Galerkin(DG)用于大涡模拟(LES)的方法,作为解决复杂湍流流动的有希望的方法。然而,尽管研究投资显着,但是离散化方案,底片级(SGS)模型和所得LES求解器之间的关系尚不清楚。本文旨在解决此事。为此,我们调查Riemann求解器,SGS模型,时间分辨率和准确顺序的作用,以预测各种流动制度,包括转变到湍流,无壁湍流,壁限制湍流和湍流衰减。通过EPPLER 387翼的过渡流,泰勒 - 绿色涡流问题和湍流通道流量被认为是该端的。重点放在后处理LES结果并提供了用于各种方法的理由。

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