论文标题

伪电量晶格玻尔兹曼法的力量方法

Force approach for the pseudopotential lattice Boltzmann method

论文作者

Czelusniak, L. E., Mapelli, V. P., Guzella, M. S., Cabezas-Gómez, L., Wagner, Alexander J.

论文摘要

伪能力方法是用于相变和多相流仿真的晶格Boltzmann方法(LBM)的最流行的扩展之一。原始提出的方法的一个吸引人的特征是它的简单性是添加取决于最近邻元电位函数的力,该功能被称为Shan-chen相互作用力。这种方法暗示的一些众所周知的缺点涉及缺乏热力学一致性和独立控制表面张力的不可能。为了纠正这些缺陷,在文献中开发了不同的方法,例如多矩相互作用的潜力,这些潜力涉及比最近的邻居方法更大的模板,并修改了强迫方案。在这项工作中,开发了一种策略来通过仅使用最近的邻里相互作用的适当相互作用力场来控制液态气体密度比和表面张力。提出的过程是从所需的压力张量开始的,该过程允许控制平衡多相特性,例如液体 - 气体共存曲线和表面张力。然后,显示了如何得出能够在宏观保护方程中复制该压力张量的效果的外力场。我们程序的最后一步是使用经典的GUO强迫方案在LBE中实施了这一外力。进行了有关静态和动态流条件的数值测试。从模拟获得的结果表明,与预期的分析值有很好的一致性。观察到的大多数发散溶液是在某些流动条件下的液滴振荡周期,这与预期的分析结果偏离了9%。观察到的结果证实了所提出的方法能够复制所需的宏观多相行为。

The pseudopotential method is one of the most popular extensions of the lattice Boltzmann method (LBM) for phase change and multiphase flow simulation. One attractive feature of the original proposed method consists on its simplicity of adding a force dependent on a nearest-neighbor potential function, which became known as the Shan-Chen interaction force. Some of the well known drawbacks implied by this method involves lack of thermodynamic consistency and impossibility to control the surface tension independently. In order to correct these deficiencies, different approaches were developed in the literature, such as multirange interactions potential, which involves larger stencils than nearest-neighbor approach, and modified forcing schemes. In this work, a strategy is developed to control the liquid-gas density ratio and the surface tension by means of an appropriate interaction force field using only nearest-neighbor interactions. The proposed procedure is devised starting from the desired pressure tensor, which allow for the control of the equilibrium multiphase properties such as liquid-gas coexistence curve and surface tension. Then, it is shown how to derive an external force field able to replicate the effects of this pressure tensor in the macroscopic conservation equations. The final step of our procedure is implementing this external force in the LBE by using the classical Guo forcing scheme. Numerical tests regarding static and dynamic flow conditions were performed. Results obtained from simulations showed good agreement with expected analytical values. Most divergent solution observed was the droplet oscillation period under certain flow conditions, which deviated 9% from expected analytical result. The observed results corroborate that the proposed method is able to replicate the desired macroscopic multiphase behaviour.

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