论文标题
碰撞模型对物理特性的影响和晶格Boltzmann方法的稳定性
Impact of collision models on the physical properties and the stability of lattice Boltzmann methods
论文作者
论文摘要
已知晶格Boltzmann方法(LBM)在碰撞模型取决于BGK近似时,尤其是在零粘度限制和非拼接的MACH数时,会遭受稳定问题。为了解决这个问题,文献中提出了两种解决方案。它们包括更改离散速度Boltzmann方程(DVBE)或碰撞模型的数值离散化(有限数量,有限差,光谱元素等)。在这项工作中,详细研究了后一种解决方案。更确切地说,我们提出了(基于静态放松时间)碰撞模型的全面比较,在稳定性方面以及其准确性的初步结果,以模拟(弱)可压缩性策略中等温高的高元素数流。首先,它研究了碰撞模型对基于流和胶体基于流的D2Q9-LBM的宏观行为的可能影响,从而阐明了碰撞模型在LBMS上的确切物理特性。随后进行了广泛的线性和数值稳定性分析,并基于长距离涡流结构的运输而进行了精确研究。为了尽可能多地得出结论,考虑到比较研究,考虑了最常见的力矩空间(原始,中央,埃尔米特,中央遗产和累积的)以及正则方法。还简要讨论了基于动态碰撞机制(熵碰撞,亚网格尺度模型,显式过滤等)的LBMS。
The lattice Boltzmann method (LBM) is known to suffer from stability issues when the collision model relies on the BGK approximation, especially in the zero viscosity limit and for non-vanishing Mach numbers. To tackle this problem, two kinds of solutions were proposed in the literature. They consist in changing either the numerical discretization (finite-volume, finite-difference, spectral-element, etc) of the discrete velocity Boltzmann equation (DVBE), or the collision model. In this work, the latter solution is investigated in details. More precisely, we propose a comprehensive comparison of (static relaxation time based) collision models, in terms of stability, and with preliminary results on their accuracy, for the simulation of isothermal high-Reynolds number flows in the (weakly) compressible regime. It starts by investigating the possible impact of collision models on the macroscopic behavior of stream-and-collide based D2Q9-LBMs, which clarifies the exact physical properties of collision models on LBMs. It is followed by extensive linear and numerical stability analyses, supplemented with an accuracy study based on the transport of vortical structures over long distances. In order to draw conclusions as general as possible, the most common moment spaces (raw, central, Hermite, central Hermite and cumulant), as well as regularized approaches, are considered for the comparative studies. LBMs based on dynamic collision mechanisms (entropic collision, subgrid scale models, explicit filtering, etc) are also briefly discussed.