Yu Zhao, Fan Liang-Shih
Department of Chemical and Biomolecular Engineering, The Ohio State University, Columbus, Ohio 43210, USA.
Phys Rev E Stat Nonlin Soft Matter Phys. 2010 Oct;82(4 Pt 2):046708. doi: 10.1103/PhysRevE.82.046708. Epub 2010 Oct 15.
The application of the lattice Boltzmann method in two-phase flows is often restricted by the numerical instability at low viscosities. In this work, a multirelaxation-time (MRT) lattice Boltzmann model (LBM) is developed using the interaction potential approach. With the MRT collision term and a general force term, the new MRT model is able to significantly enhance the numerical stability at low viscosities, without appreciable increase in computation time or memory use. Advanced force formulation using the multirange potential can also be readily incorporated into the current MRT scheme. Numerical tests are first performed in two dimensions under equilibrium conditions. The MRT model is able to reduce the lowest stable viscosity by an order of magnitude compared to the single relaxation time LBM. In addition, the spurious velocity at the gas-liquid interface can also be significantly decreased by tuning the adjustable relaxation parameters. Then two sets of three-dimensional simulations are conducted to investigate the buoyant rise of a gas bubble in a low-viscosity liquid. In particular, millimeter air bubble in water, which is difficult for traditional two-phase LBM due to both low viscosity and high-surface tension, is successfully simulated using the MRT technique developed in this study. The simulated bubble shape and velocity are compared with the experimental results and empirical correlations in the literature, and the satisfactory agreement proves the validity of the MRT-LBM for two-phase flows.
格子玻尔兹曼方法在两相流中的应用常常受到低粘度下数值不稳定性的限制。在这项工作中,采用相互作用势方法开发了一种多松弛时间(MRT)格子玻尔兹曼模型(LBM)。借助MRT碰撞项和一般力项,新的MRT模型能够在不显著增加计算时间或内存使用的情况下,显著提高低粘度下的数值稳定性。使用多范围势的先进力公式也可以很容易地纳入当前的MRT方案中。首先在平衡条件下进行二维数值测试。与单松弛时间LBM相比,MRT模型能够将最低稳定粘度降低一个数量级。此外,通过调整可调节的松弛参数,气液界面处的虚假速度也可以显著降低。然后进行两组三维模拟,以研究低粘度液体中气泡的浮力上升。特别是,本研究中开发的MRT技术成功模拟了水中毫米级气泡,由于低粘度和高表面张力,传统的两相LBM很难模拟这种气泡。将模拟的气泡形状和速度与文献中的实验结果和经验关联进行了比较,令人满意的一致性证明了MRT-LBM用于两相流的有效性。