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基于离散统一气体动力学格式的相场法用于大密度比两相流

Phase-field method based on discrete unified gas-kinetic scheme for large-density-ratio two-phase flows.

作者信息

Yang Zeren, Zhong Chengwen, Zhuo Congshan

机构信息

National Key Laboratory of Science and Technology on Aerodynamic Design and Research, Northwestern Polytechnical University, Xi'an, Shaanxi 710072, China.

出版信息

Phys Rev E. 2019 Apr;99(4-1):043302. doi: 10.1103/PhysRevE.99.043302.

Abstract

In this paper, a phase-field method under the framework of discrete unified gas-kinetic scheme (DUGKS) for incompressible multiphase fluid flows is proposed. Two kinetic models are constructed to solve the conservative Allen-Cahn equation that accounts for the interface behavior and the incompressible hydrodynamic equations that govern the flow field, respectively. With a truncated equilibrium distribution function as well as a temporal derivative added to the source term, the macroscopic governing equations can be exactly recovered from the kinetic models through the Chapman-Enskog analysis. Calculation of source terms involving high-order derivatives existed in the quasi-incompressible model is simplified. A series of benchmark cases including four interface-capturing tests and four binary flow tests are carried out. Results compared to that of the lattice Boltzmann method (LBM) have been obtained. A convergence rate of second order can be guaranteed in the test of interface diagonal translation. The capability of the present method to track the interface that undergoes a severe deformation has been verified. Stationary bubble and spinodal decomposition problems, both with a density ratio as high as 1000, are conducted and reliable solutions have been provided. The layered Poiseuille flow with a large viscosity ratio is simulated and numerical results agree well with the analytical solutions. Variation of positions of the bubble front and spike tip during the evolution of Rayleigh-Taylor instability has been predicted precisely. However, the detailed depiction of complicated interface patterns appearing during the evolution process is failed, which is mainly caused by the relatively large numerical dissipation of DUGKS compared to that of LBM. A high-order DUGKS is needed to overcome this problem.

摘要

本文提出了一种基于离散统一气体动力学格式(DUGKS)框架的相场方法,用于模拟不可压缩多相流体流动。构建了两个动力学模型,分别用于求解描述界面行为的保守型Allen-Cahn方程和控制流场的不可压缩流体动力学方程。通过在源项中加入截断平衡分布函数和时间导数,利用Chapman-Enskog分析可从动力学模型精确恢复宏观控制方程。简化了拟不可压缩模型中涉及高阶导数的源项计算。进行了一系列基准测试,包括四个界面捕捉测试和四个二元流测试。得到了与格子玻尔兹曼方法(LBM)对比的结果。在界面对角线平移测试中可保证二阶收敛率。验证了本方法追踪经历剧烈变形界面的能力。开展了密度比高达1000的稳态气泡和旋节线分解问题,并提供了可靠的解。模拟了具有大粘度比的分层泊肃叶流,数值结果与解析解吻合良好。精确预测了瑞利-泰勒不稳定性演化过程中气泡前沿和尖钉尖端位置的变化。然而,未能详细描述演化过程中出现的复杂界面图案,这主要是由于与LBM相比,DUGKS的数值耗散相对较大。需要一种高阶DUGKS来克服这个问题。

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