基于三维相场的非正交多重弛豫时间晶格玻尔兹曼界面跟踪方法

Shengyuan Zhang, Jun Tang, Huiying Wu
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引用次数: 0

摘要

基于保守的Allen-Cahn相场法,提出了用于多相流界面跟踪的三维非正交多松弛时间(MRT)晶格Boltzmann (LB)模型。与传统的MRT LB模型不同,该模型中的变换矩阵是基于一组非正交基向量来构造的,简化了离散速度空间与矩空间之间的变换过程。因此,该模型具有较高的计算效率。本模型建立在两个不同的三维晶格集(D3Q19和D3Q27)上,以获得关于非正交矩阵性能的全面视角。结合非正交变换矩阵,给出了两个格集的简化离散源项,进一步提高了模型的效率。数值试验表明,与传统的MRT LB模型相比,该模型在保持相当精度的同时,计算效率显著提高,稳定性更好。与正交模型不同,D3Q19非正交模型没有明显削弱D3Q27非正交模型的精度,D3Q27非正交模型也没有降低D3Q19非正交模型的稳定性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
A Three-Dimensional Phase Field Based Nonorthogonal Multiple-Relaxation-Time Lattice Boltzmann Method for Interface Tracking
Based on a conservative Allen-Cahn phase field method, a three-dimensional nonorthogonal multiple-relaxation-time (MRT) lattice Boltzmann (LB) model for interface tracking in multiphase flow is proposed in this paper. Different from the traditional MRT LB model, the transformation matrix in the present model is constructed based on a set of nonorthogonal basis vectors to simplify the transformation process between the discrete velocity space and the moment space. Therefore, a higher computational efficiency is achieved by the present model. The present model is developed on two different three-dimensional lattice sets (D3Q19 and D3Q27) to obtain a thorough perspective about the performance of the nonorthogonal matrix. Coupled with the nonorthogonal transformation matrix, simplified discrete source terms are also developed for both two lattice sets to further improve the efficiency of the present model. Numerical tests demonstrate that compared with the traditional MRT LB model, the present model shows a significantly higher computational efficiency and better stability while maintaining a comparable accuracy. It is also found that the D3Q19 nonorthogonal model does not obviously weaken the accuracy of D3Q27 nonorthogonal model while D3Q27 nonorthogonal model dose not decrease the stability of the D3Q19 nonorthogonal model, which is different from the orthogonal model.
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