Sun Xiaosong, Sakai Mikio
Resilience Engineering Research Center, School of Engineering, The University of Tokyo 7-3-1 Hongo, Bunkyo-ku, Tokyo 113-8656, Japan.
Phys Rev E. 2016 Dec;94(6-1):063301. doi: 10.1103/PhysRevE.94.063301. Epub 2016 Dec 1.
In this study, a numerical method is developed to perform the direct numerical simulation (DNS) of gas-solid-liquid flows involving capillary effects. The volume-of-fluid method employed to track the free surface and the immersed boundary method is adopted for the fluid-particle coupling in three-phase flows. This numerical method is able to fully resolve the hydrodynamic force and capillary force as well as the particle motions arising from complicated gas-solid-liquid interactions. We present its application to liquid bridges among spherical particles in this paper. By using the DNS method, we obtain the static bridge force as a function of the liquid volume, contact angle, and separation distance. The results from the DNS are compared with theoretical equations and other solutions to examine its validity and suitability for modeling capillary bridges. Particularly, the nontrivial liquid bridges formed in triangular and tetrahedral particle clusters are calculated and some preliminary results are reported. We also perform dynamic simulations of liquid bridge ruptures subject to axial stretching and particle motions driven by liquid bridge action, for which accurate predictions are obtained with respect to the critical rupture distance and the equilibrium particle position, respectively. As shown through the simulations, the strength of the present method is the ability to predict the liquid bridge problem under general conditions, from which models of liquid bridge actions may be constructed without limitations. Therefore, it is believed that this DNS method can be a useful tool to improve the understanding and modeling of liquid bridges formed in complex gas-solid-liquid flows.
在本研究中,开发了一种数值方法来对涉及毛细效应的气-固-液流动进行直接数值模拟(DNS)。采用流体体积法追踪自由表面,并采用浸入边界法处理三相流中的流体-颗粒耦合。这种数值方法能够充分解析由复杂的气-固-液相互作用产生的流体动力、毛细力以及颗粒运动。本文展示了该方法在球形颗粒间液桥问题中的应用。通过使用DNS方法,我们得到了作为液体体积、接触角和分离距离函数的静态桥力。将DNS结果与理论方程和其他解进行比较,以检验其对毛细桥建模的有效性和适用性。特别地,计算了三角形和四面体颗粒簇中形成的非平凡液桥,并报告了一些初步结果。我们还对液桥在轴向拉伸作用下的破裂以及由液桥作用驱动的颗粒运动进行了动态模拟,分别针对临界破裂距离和平衡颗粒位置获得了准确的预测结果。模拟结果表明,该方法的优势在于能够在一般条件下预测液桥问题,据此可以构建不受限制的液桥作用模型。因此,相信这种DNS方法可以成为一种有用的工具,有助于加深对复杂气-固-液流动中形成的液桥的理解并进行建模。