School of Engineering, Sun Yat-Sen University, Guangzhou 510006, China and Guangdong Provincial Key Laboratory of Fire Science and Technology, Guangzhou 51006, China.
School of Energy and Power Engineering, Xi'an Jiaotong University, Xi'an 710049, China.
Phys Rev E. 2019 Jan;99(1-1):013308. doi: 10.1103/PhysRevE.99.013308.
A multiphase lattice Boltzmann method is developed to simulate immiscible three-phase flows with contact-line dynamics. In this method, the immiscible three-phase flow is modeled by a multiple-relaxation-time color-gradient model, which not only allows for a full range of interfacial tensions but also can produce viscosity-independent results especially when the fluid-surface interactions are considered. To achieve the desired contact angles, a weighted contact angle model is utilized to obtain a relatively smooth transition of contact angle for each fluid, which is enforced through a geometrical wetting condition. This method is first validated by simulations of a Janus droplet resting on a surface for various contact angles and fluid properties and dynamic capillary filling of ternary fluids with different viscosity ratios. It is then used to simulate a Janus droplet on a substrate subject to Poiseuille flow. Results show that the droplet may undergo three typical modes, namely, two stable deformation modes and breakup mode, which depend not only on the inlet velocity but also on the fluid viscosity. The terminal velocity of moving droplet increases linearly with the inlet velocity in both stable modes only when three fluids do not differ much in their viscosities.
本文提出了一种多相格子玻尔兹曼方法,用于模拟具有接触线动力学的不可混溶三相流。在该方法中,不可混溶三相流通过多松弛时间颜色梯度模型进行建模,该模型不仅允许在全界面张力范围内使用,而且当考虑流体-表面相互作用时,还可以产生与粘度无关的结果。为了实现所需的接触角,使用加权接触角模型来获得各流体接触角的相对平滑过渡,这通过几何润湿条件来强制实现。该方法首先通过对各种接触角和流体特性的静止 Janus 液滴以及不同粘度比的三元流体的动态毛细填充的模拟进行验证。然后,将其用于模拟基底上受泊肃叶流作用的 Janus 液滴。结果表明,液滴可能经历三种典型模式,即两种稳定变形模式和破裂模式,这不仅取决于入口速度,还取决于流体粘度。在两种稳定模式下,当三种流体的粘度差异不大时,移动液滴的终端速度随入口速度线性增加。