Multi-scale modeling of the gas-liquid interface based on mathematical and thermodynamic approaches

Y. Yonemoto, T. Kunugi
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引用次数: 11

Abstract

A gas-liquid interface involves complex physics along with unknown phenomena related to thermodynamics, electromagnetics, hydrodynamics, and heat and mass transfer. Each phenomenon has various characteristic time and space scales, which makes detailed understanding of the interfacial phenomena very complex. Therefore, modeling the gas- liquid interface is a key issue for numerical research on multiphase flow. Currently, the continuum surface force (CSF) model is popular in modeling the gas-liquid interface in multiphase flow. However, the CSF model cannot treat the vari- ous chemical and physical phenomena at the gas-liquid interface because it is derived based only on mechanical energy balance and it assumes that the interface has no thickness. From certain experimental observations, bubble coales- cence/repulsion was found to be related to a contamination at the interface. The present study developed a new gas-liquid interfacial model based on thermodynamics via a mathematical approach, assuming that the interface has a finite thickness like a thin fluid membrane. In particular, free energy, including an elec- trostatic potential due to the contamination at the interface, is derived based on a lattice gas model. Free energy is incorpo- rated into the conventional Navier-Stokes equation as new terms using Chapman-Enskog expansion based on the multi- scale concept. Using the Navier-Stokes equation with the free energy terms, we derived a new governing equation of fluid motion that characterizes mesoscopic scale phenomena. Finally, the new governing equation was qualitatively evaluated by simulating an interaction between two microbubbles in two dimensions while also accounting for electrostatic force.
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基于数学和热力学方法的气液界面多尺度建模
气液界面涉及复杂的物理学以及与热力学、电磁学、流体力学、传热传质有关的未知现象。每种现象都具有不同的特征时间和空间尺度,这使得对界面现象的详细理解非常复杂。因此,气液界面的建模是多相流数值研究的关键问题。目前,连续曲面力(CSF)模型是研究多相流气液界面的常用模型。然而,CSF模型不能处理气液界面上的各种化学和物理现象,因为它只是基于机械能平衡推导出来的,并且假设界面没有厚度。从某些实验观察中,发现气泡凝结/排斥与界面上的污染有关。本研究通过数学方法建立了一种新的基于热力学的气液界面模型,该模型假设气液界面具有像薄流体膜一样的有限厚度。特别是,自由能,包括静电势由于污染的界面,是基于晶格气体模型导出的。利用基于多尺度概念的查普曼-恩斯科格展开,将自由能作为新项纳入传统的纳维-斯托克斯方程中。利用含自由能项的Navier-Stokes方程,导出了表征介观尺度现象的新的流体运动控制方程。最后,通过模拟两个微泡之间的二维相互作用,同时考虑静电力,对新的控制方程进行了定性评价。
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