Phase-field-based multiple-relaxation-time lattice Boltzmann model for incompressible multiphase flows

格子Boltzmann方法 压缩性 雷诺数 物理 水电站模型 不可压缩流 机械 统计物理学 分布函数 数学 经典力学 数学分析 热力学 湍流
作者
H. Liang,Timothy M. Swager,Z. J. Guo,Zhenhua Chai
出处
期刊:Physical Review E [American Physical Society]
卷期号:89 (5) 被引量:138
标识
DOI:10.1103/physreve.89.053320
摘要

In this paper, a phase-field-based multiple-relaxation-time lattice Boltzmann (LB) model is proposed for incompressible multiphase flow systems. In this model, one distribution function is used to solve the Chan-Hilliard equation and the other is adopted to solve the Navier-Stokes equations. Unlike previous phase-field-based LB models, a proper source term is incorporated in the interfacial evolution equation such that the Chan-Hilliard equation can be derived exactly and also a pressure distribution is designed to recover the correct hydrodynamic equations. Furthermore, the pressure and velocity fields can be calculated explicitly. A series of numerical tests, including Zalesak's disk rotation, a single vortex, a deformation field, and a static droplet, have been performed to test the accuracy and stability of the present model. The results show that, compared with the previous models, the present model is more stable and achieves an overall improvement in the accuracy of the capturing interface. In addition, compared to the single-relaxation-time LB model, the present model can effectively reduce the spurious velocity and fluctuation of the kinetic energy. Finally, as an application, the Rayleigh-Taylor instability at high Reynolds numbers is investigated.
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