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混合液/液界面的相场建模。

On the phase-field modelling of a miscible liquid/liquid boundary.

机构信息

Energy Technology Research Group, Faculty of Engineering and the Environment, University of Southampton, Southampton SO17 1BJ, UK.

出版信息

J Colloid Interface Sci. 2016 Feb 15;464:48-58. doi: 10.1016/j.jcis.2015.11.026. Epub 2015 Nov 12.

Abstract

Mixing of miscible liquids is essential for numerous processes in industry and nature. Mixing, i.e. interpenetration of molecules through the liquid/liquid boundary, occurs via interfacial diffusion. Mixing can also involve externally or internally driven hydrodynamic flows, and can lead to deformation or disintegration of the liquid/liquid boundary. At the moment, the mixing dynamics remains poorly understood. The classical Fick's law, generally accepted for description of the diffusion process, does not explain the experimental observations, in particular, the recent experiments with dissolution of a liquid solute by a liquid solvent within a horizontal capillary (Stevar and Vorobev, 2012). We present the results of the numerical study aimed at development of an advanced model for the dissolution dynamics of liquid/liquid binary mixtures. The model is based on the phase-field (Cahn-Hilliard) approach that is used as a physics-based model for the thermo- and hydrodynamic evolution of binary mixtures. Within this approach, the diffusion flux is defined through the gradient of chemical potential, and, in particular, includes the effect of barodiffusion. The dynamic interfacial stresses at the miscible interface are also taken into account. The simulations showed that such an approach can accurately reproduce the shape of the solute/solvent boundary, and some aspects of the diffusion dynamics. Nevertheless, all experimentally-observed features of the diffusion motion of the solute/solvent boundary, were not reproduced.

摘要

混合可混溶的液体在工业和自然界中是许多过程所必需的。混合,即分子通过液/液边界的渗透,是通过界面扩散发生的。混合还可能涉及外部或内部驱动的流体力学流动,并可能导致液/液边界的变形或破裂。目前,混合动力学的理解还很差。经典的菲克定律通常被用来描述扩散过程,但它并不能解释实验观察结果,特别是最近在水平毛细管内溶解液体溶质和液体溶剂的实验(Stevar 和 Vorobev,2012)。我们提出了数值研究的结果,旨在开发用于液体/液体二元混合物溶解动力学的先进模型。该模型基于相场(Cahn-Hilliard)方法,该方法被用作二元混合物的热和流体力学演化的物理模型。在这种方法中,扩散通量是通过化学势的梯度来定义的,特别是包括了压力扩散的影响。可混溶界面上的动态界面应力也被考虑在内。模拟结果表明,这种方法可以准确地再现溶质/溶剂边界的形状和扩散动力学的某些方面。然而,所有实验观察到的溶质/溶剂边界扩散运动的特征都没有被重现。

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