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An Alternative Scheme to Calculate the Strain Rate Tensor for the LES Applications in the LBM

机译:用于LBM中LES应用的应变率张量计算的替代方案

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摘要

Large eddy simulations (LES) based on the Smagorinsky model can be conveniently used in the lattice Boltzmann method (LBM) because the strain rate tensor, S_(ij), used to determine the eddy kinematic viscosity can be calculated from the second-order moment of the nonequilibrium distribution function, and the current total nondimensional relaxation time can be determined explicitly. A new method is developed where the distribution function after the relaxation subroutine differs from that after the motion subroutine leading to a similar method to determine S_(ij), but its application is inconvenient due to the implicit feature. However, the derivation also leads to an alternative explicit scheme for calculating S_(ij) based on physical analysis of the momentum transport process, where the stress tensor, T_(ij), is calculated first, and then S_(ij) is determined from T_(ij) using the constitutive relationship for Newtonian fluid. The current total nondimensional relaxation time is also given explicitly so that this LES model can be easily used in the LBM.
机译:基于Smagorinsky模型的大型涡模拟(LES)可以方便地用于晶格Boltzmann方法(LBM),因为用于确定涡运动粘度的应变率张量S_(ij)可以从二阶矩计算得出非平衡分布函数的函数,可以明确确定当前的总无量纲弛豫时间。开发了一种新方法,其中松弛子例程之后的分布函数与运动子例程之后的分布函数不同,从而导致采用类似的方法来确定S_(ij),但是由于隐式特征,其应用不便。但是,推导还导致了基于动量传输过程的物理分析来计算S_(ij)的另一种显式方案,其中首先计算应力张量T_(ij),然后根据以下公式确定S_(ij): T_(ij)使用牛顿流体的本构关系。还明确给出了当前的总无量纲弛豫时间,以便可以在LBM中轻松使用此LES模型。

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  • 来源
    《Mathematical Problems in Engineering》 |2010年第3期|p.613-625|共13页
  • 作者

    Jun Li; Zhengwei Wang;

  • 作者单位

    State Key Laboratory of Hydroscience and Engineering, Department of Thermal Engineering,Tsinghua University, Beijing 100084, China;

    State Key Laboratory of Hydroscience and Engineering, Department of Thermal Engineering,Tsinghua University, Beijing 100084, China;

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