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A kinetic Fokker-Planck approach to model hard-sphere gas mixtures

机译:一种动力学Fokker-Planck方法,用于模拟硬球气体混合物

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摘要

Since its first introduction, it has always been a subject of research to find models for a meaningful approximation of the highly accurate but complex Boltzmann equation. In the kinetic Fokker-Planck (FP) approach, a FP operator in velocity space is employed to approximate the collision integral of the Boltzmann equation. Instead of directly solving the resulting FP equation, a Monte Carlo technique is used to model an associated random process. This approach leads to an efficient stochastic solution algorithm. In recent years, the FP ansatz has become increasingly popular. Nevertheless, the modeling of gas mixtures in the context of kinetic FP has so far only been addressed in a very few papers. This article introduces a kinetic FP model that is capable of describing gas mixtures with particles interacting according to the hard-sphere collision model. The model is constructed to reproduce Grad's 13 moment equations on a Navier-Stokes level of accuracy for gas mixtures with an arbitrary number of constituents. A stochastic simulation algorithm is derived that ensures a correct evolution of the species diffusion velocities and the species temperatures for a homogeneous gas, regardless of the applied time step size. It is shown that the proposed model is capable of correctly predicting shear stresses, heat fluxes, and diffusion velocities for different test cases, employing a He-Ar mixture.
机译:自首次介绍以来,它一直是研究的主题,以寻找用于高准确但复杂的Boltzmann方程的有意义近似的模型。在动力学Fokker-Planck(FP)方法中,采用速度空间中的FP运算符来近似Boltzmann等式的碰撞积分。蒙特卡罗技术用于建模相关随机过程,而不是直接解决所得的FP方程。该方法导致有效的随机解决方案算法。近年来,FP Ansatz越来越受欢迎。然而,到目前为止,在动力学FP的背景下的气体混合物的建模迄今为止仅在很少的论文中得到解决。本文介绍了一种动力学FP模型,能够根据硬球碰撞模型描述具有颗粒的气体混合物。该模型被构造成在Navier-Stokes精度上再现毕业的13力矩方程,用于具有任意数量的成分的气体混合物。推导出一种随机仿真算法,其确保物质扩散速度的正确演变和均匀气体的物种温度,无论施加的时间步长。结果表明,所提出的模型能够正确地预测不同测试用例的剪切应力,热量和扩散速度,采用HE-AR混合物。

著录项

  • 来源
    《Physics of fluids 》 |2020年第2期| 共18页
  • 作者

    Hepp C.; Grabe M.; Hannemann K.;

  • 作者单位

    German Aerosp Ctr DLR Bunsenstr 10 D-37073 Gottingen Germany;

    German Aerosp Ctr DLR Bunsenstr 10 D-37073 Gottingen Germany;

    German Aerosp Ctr DLR Bunsenstr 10 D-37073 Gottingen Germany;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 流体力学 ;
  • 关键词

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