论文标题

多相不可压缩流的一致且保守的相火方法

A consistent and conservative Phase-Field method for multiphase incompressible flows

论文作者

Huang, Ziyang, Lin, Guang, Ardekani, Arezoo M.

论文摘要

一种一致且保守的相位方法(包括模型和方案)是针对具有任意数量不可压缩和不可压缩的流体阶段的多相流的开发的。质量保护的一致性以及质量和动量运输的一致性被实施,以解决定位不同阶段的相位场方程与流体动力学的物理耦合问题。这两个一致性条件提供了``最佳''耦合,因为(i)由它们产生的新动量方程式是加利利不变的,意味着动能的能量保护,无论相位方程的细节如何,以及(ii)仅导致的第二阶段的阶段或乘积模型的一致性而导致的阶段的阶段相同,但倍增模型的阶段仅是相同的阶段。动量方程。首先提供对一致性条件及其配方的物理解释,并总结从一致性条件和独立于解释速度的解释中获得的一般制剂。开发了几种新型技术来继承离散后多相流的物理特性,包括基于梯度的相位选择程序,表面力的动量保守方法和一般定理,以在离散水平上保留一致性条件。配备了这些新技术,开发和分析了当前多相流模型的一致和保守的方案。数值应用表明,当前的模型和方案在研究复杂的多相动态方面是强大且有效的,尤其是对于具有较大密度比率的动力学。

A consistent and conservative Phase-Field method, including both the model and scheme, is developed for multiphase flows with an arbitrary number of immiscible and incompressible fluid phases. The consistency of mass conservation and the consistency of mass and momentum transport are implemented to address the issue of physically coupling the Phase-Field equation, which locates different phases, to the hydrodynamics. These two consistency conditions provide the ``optimal'' coupling because (i) the new momentum equation resulting from them is Galilean invariant and implies the kinetic energy conservation, regardless of the details of the Phase-Field equation, and (ii) failures of satisfying the second law of thermodynamics or the consistency of reduction of the multiphase flow model only result from the same failures of the Phase-Field equation but are not due to the new momentum equation. Physical interpretation of the consistency conditions and their formulations are first provided, and general formulations that are obtained from the consistency conditions and independent of the interpretation of the velocity are summarized. Several novel techniques are developed to inherit the physical properties of the multiphase flows after discretization, including the gradient-based phase selection procedure, the momentum conservative method for the surface force, and the general theorems to preserve the consistency conditions on the discrete level. Equipped with those novel techniques, a consistent and conservative scheme for the present multiphase flow model is developed and analyzed. Numerical applications demonstrate that the present model and scheme are robust and effective in studying complicated multiphase dynamics, especially for those with large-density ratios.

扫码加入交流群

加入微信交流群

微信交流群二维码

扫码加入学术交流群,获取更多资源