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可混相之间扩散界面的 Kelvin-Helmholtz 和 Holmboe 不稳定性。

Kelvin-Helmholtz and Holmboe instabilities of a diffusive interface between miscible phases.

机构信息

Institute of Continuous Media Mechanics UB RAS, Computational Fluid Dynamics Laboratory, Perm 614013, Russia.

University of Southampton, Faculty of Engineering and Physical Sciences, Southampton SO17 1BJ, United Kingdom.

出版信息

Phys Rev E. 2019 Aug;100(2-1):023103. doi: 10.1103/PhysRevE.100.023103.

Abstract

The stability of a shear flow imposed along a diffusive interface that separates two miscible liquids (a heavier liquid lies underneath) is studied using direct numerical simulations. The phase-field approach is employed for description of a thermo- and hydrodynamic evolution of a heterogeneous binary mixture. The approach takes into account the dynamic interfacial stresses at a miscible interface and uses the extended Fick's law for setting the diffusion transport (the diffusion flux is proportional to the gradient of chemical potential). The shear flow is unstable to two kinds of instabilities: (1) the Kelvin-Helmholtz instability, with an immovable vortex formed in the middle of an interface (in the vertical direction) and (2) the Holmboe instability, with traveling waves along the interfacial boundary. The development of the Holmboe instability results in a stronger enhancement of molecular mixing between the mixture components. Earlier, the boundaries of these instabilities were determined using the linear stability analysis and employing the concept of a "frozen interface." In the current work, through the solution of full equations, we obtain the stability boundaries for several sets of governing parameters, showing a greater variety of the possible shapes of the stability diagrams. The Kelvin-Helmholtz instability always occurs at lower gravity effects (lower density contrasts), while the Holmboe instability occurs when gravity is stronger. We show that for some parameters these two instabilities are separated by a zone where the shear flow is stable, and this zone disappears for the other sets of parameters.

摘要

利用直接数值模拟研究了在扩散界面处施加的剪切流的稳定性,该界面将两种可混溶的液体(较重的液体位于下方)分隔开。采用相场方法描述非均匀二元混合物的热和流体动力学演化。该方法考虑了可混溶界面处的动态界面应力,并使用扩展的菲克定律来设置扩散输运(扩散通量与化学势梯度成正比)。剪切流不稳定于两种不稳定性:(1)Kelvin-Helmholtz 不稳定性,在界面(垂直方向)中间形成不可移动的涡;(2)Holmboe 不稳定性,沿界面边界传播的行波。Holmboe 不稳定性的发展导致混合物成分之间的分子混合增强。早些时候,这些不稳定性的边界是通过线性稳定性分析确定的,并采用“冻结界面”的概念。在当前的工作中,通过求解全方程,我们获得了几组控制参数的稳定性边界,显示了稳定性图的可能形状的更多变化。Kelvin-Helmholtz 不稳定性总是在较低的重力效应(较低的密度对比)下发生,而 Holmboe 不稳定性则在重力较强时发生。我们表明,对于某些参数,这两种不稳定性由剪切流稳定的区域隔开,而对于其他参数集,该区域消失。

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