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Computational error-analysis of a discontinuous Galerkin discretization applied to large-eddy simulation of homogeneous turbulence

机译:不连续Galerkin离散化的计算误差分析在均质湍流大涡模拟中的应用

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摘要

A computational error-assessment of large-eddy simulation (LES) in combination with a discontinuous Galerkin finite element method is presented for homogeneous, isotropic, decaying turbulence. The error-landscape database approach is used to quantify the total simulation error that arises from the use of the Smagorinsky eddy-viscosity model in combination with the Galerkin discretization. We adopt a modified HLLC flux, allowing an explicit control over the dissipative component of the numerical flux. The optimal dependence of the Smagorinsky parameter on the spatial resolution is determined for second and third order accurate Galerkin methods. In particular, the role of the numerical dissipation relative to the contribution from the Smagorinsky dissipation is investigated. We observed an 'exchange of dissipation' principle in the sense that an increased numerical dissipation implied a reduction in the optimal Smagorinsky parameter. The predictions based on Galerkin discretization with fully stabilized HLLC flux were found to be less accurate than when a central discretization with (mainly) Smagorinsky dissipation was used. This was observed for both the second and third order Galerkin discretization, suggesting to emphasize central discretization of the convective nonlinearity and stabilization that mimics eddy-viscosity as sub-filter dissipation.
机译:针对均匀,各向同性的衰减湍流,结合不连续的Galerkin有限元方法,提出了大涡模拟(LES)的计算误差评估。误差-横向数据库方法用于量化由于使用Smagorinsky涡流-粘度模型和Galerkin离散化而产生的总模拟误差。我们采用改进的HLLC通量,从而可以明确控制数值通量的耗散分量。对于二阶和三阶准确的Galerkin方法,确定Smagorinsky参数对空间分辨率的最佳依赖关系。特别是,研究了数值耗散相对于Smagorinsky耗散的贡献的作用。我们观察到“耗散交换”原理,即增加的数值耗散意味着最佳Smagorinsky参数的减小。发现基于具有完全稳定的HLLC通量的Galerkin离散化的预测要比使用(主要是)Smagorinsky耗散的中心离散化的准确性低。对于二阶和三阶Galerkin离散化都可以观察到这一点,建议强调对流非线性和稳定性的中心离散化,该模拟类似于涡流粘度作为子滤波器耗散。

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  • 作者单位

    Emmy-Noether Research Group for 'Computational Multiscale Methods for Turbulent Combustion', Department of Mechanical Engineering, Technical University of Munich, Boltzmannstrasse 15, 85748 Garching, Germany Computational Engineering, Department of Mechanical Engineering, Technical University of Munich, Boltzmannstrasse 15, 85748 Garching, Germany;

    Multiscale Modeling and Simulation, Department of Applied Mathematics, University of Twente, P.O. Box 217, 7500 AE, Enschede, The Netherlands Fluid Dynamics Laboratory, Faculty of Applied Physics, Technical University of Eindhoven, P.O. Box 513, 5600 MB Eindhoven, The Netherlands International Collaboration for Turbulence Research, Germany;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    large-eddy simulation; computational error-assessment; discontinuous Galerkin finite element method; eddy-viscosity modeling; turbulence;

    机译:大涡模拟计算错误评估;不连续Galerkin有限元方法;涡流粘度模型;湍流;

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