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Introducing a modified exact difference method for incorporating unsteady and non-uniform force terms in lattice kinetic models

机译:引入一种改进的精确差分法,将非稳态和非均匀力项合并到晶格动力学模型中

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The exact difference method (EDM) of Kupershtokh (2004), in this work, is modified to accurately incorporate unsteady non-uniform force terms into lattice kinetic models. We use the characteristic scheme for integrating the Boltzmann equation along with the trapezoidal rule to estimate the integration results. The method is based on discretizing the total derivative of the equilibrium distribution function (EDF) in the EDM, using a central second-order scheme, instead of a first order method. It is shown that the assumption of constant density in calculating the total derivative of the EDF is not necessary in the limit of incompressible fluid flows. Using the Chapman-Enskog analysis, it is shown that the present method can be applied to both the standard lattice Boltzmann method and the recently introduced constant speed kinetic model (CSKM) of Zadehgol and Ashrafizaadeh (2014). The following benchmark flows are simulated: (i) Womersley flow, (ii) Hartmann flow, (iii) unsteady Taylor-Green vortex flow, and (iv) the circular interface, using the CSKM, and the results are in excellent agreement with the analytical solutions. (C) 2019 Elsevier Ltd. All rights reserved.
机译:Kupershtokh(2004)的精确差分法(EDM)被修改为将不稳定的非均匀力项准确地合并到晶格动力学模型中。我们使用特征方案对Boltzmann方程进行积分,并采用梯形法则来估计积分结果。该方法基于使用中心二阶方案而不是一阶方法离散化EDM中平衡分布函数(EDF)的总导数的方法。结果表明,在不可压缩流体流量的限制中,在计算EDF的总导数时不必假设密度恒定。使用Chapman-Enskog分析,表明本方法可以应用于标准格子Boltzmann方法和Zadehgol和Ashrafizaadeh(2014)最近引入的恒速动力学模型(CSKM)。模拟了以下基准流:(i)Womersley流,(ii)Hartmann流,(iii)使用CSKM的不稳定Taylor-Green涡流和(iv)圆形界面,其结果与分析解决方案。 (C)2019 Elsevier Ltd.保留所有权利。

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