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曲面上具有移动接触线的三相流的格子玻尔兹曼模拟

Lattice Boltzmann simulation of three-phase flows with moving contact lines on curved surfaces.

作者信息

Li Sheng, Lu Yang, Jiang Fei, Liu Haihu

机构信息

School of Energy and Power Engineering, Xi'an Jiaotong University, 28 West Xianning Road, Xi'an 710049, China.

Department of Mechanical Engineering and Blue Energy Center for SGE Technology (BEST), Yamaguchi University, Ube 7558611, Japan and International Institute for Carbon-Neutral Energy Research (WPI-I2CNER), Kyushu University, Fukuoka 8190395, Japan.

出版信息

Phys Rev E. 2021 Jul;104(1-2):015310. doi: 10.1103/PhysRevE.104.015310.

Abstract

A numerical method for simulating three-phase flows with moving contact lines on arbitrarily complex surfaces is developed in the framework of the lattice Boltzmann method. In this method, the immiscible three-phase flow is modeled through a multiple-relaxation-time color-gradient model, which not only allows for a full range of interfacial tensions but also produces stable outcomes for a wide range of viscosity ratios. A characteristic line model is introduced to implement the wetting boundary condition, which is not only easy to implement but is also able to handle arbitrarily complex boundaries with prescribed contact angles. The developed method is first validated by the simulation of a Janus droplet resting on a flat surface, a perfect Janus droplet deposited on a cylinder, and the capillary intrusion of ternary fluids for various viscosity ratios. It is then used to study a compound droplet subject to a uniform incoming flow passing through a multipillar structure, where three different values of surface wettability are considered. The simulated results show that the surface wettability has significant impact on the droplet dynamic behavior and final fluid distribution.

摘要

在格子玻尔兹曼方法的框架下,开发了一种用于模拟任意复杂表面上具有移动接触线的三相流的数值方法。在该方法中,不混溶的三相流通过多松弛时间颜色梯度模型进行建模,该模型不仅允许存在全范围的界面张力,而且对于宽范围的粘度比都能产生稳定的结果。引入了特征线模型来实现润湿边界条件,该模型不仅易于实现,而且能够处理具有规定接触角的任意复杂边界。首先通过模拟静置在平面上的双面液滴、沉积在圆柱上的完美双面液滴以及各种粘度比的三元流体的毛细管侵入来验证所开发的方法。然后将其用于研究复合液滴在通过多柱结构的均匀入流作用下的情况,其中考虑了三种不同的表面润湿性值。模拟结果表明,表面润湿性对液滴动态行为和最终流体分布有显著影响。

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