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首页> 外文期刊>Journal of Colloid and Interface Science >An energy-based equilibrium contact angle boundary condition on jagged surfaces for phase-field methods
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An energy-based equilibrium contact angle boundary condition on jagged surfaces for phase-field methods

机译:相场方法锯齿状表面的基于能量的平衡接触角边界条件

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We consider an energy-based boundary condition to impose an equilibrium wetting angle for the Cahn-Hilliard-Navier-Stokes phase-field model on voxel-set-type computational domains. These domains typically stem from mu CT (micro computed tomography) imaging of porous rock and approximate a (on mu m scale) smooth domain with a certain resolution Planar surfaces that are perpendicular to the main axes are naturally approximated by a layer of voxels However, planar surfaces in any other directions and curved surfaces yield a jagged/topologically rough surface approximation by voxels. For the standard Cahn-Hilliard formulation, where the contact angle between the diffuse interface and the domain boundary (fluid-solid interface/wall) is 90 degrees, jagged surfaces have no impact on the contact angle. However, a prescribed contact angle smaller or larger than 90 degrees on jagged voxel surfaces is amplified. As a remedy, we propose the introduction of surface energy correction factors for each fluid-solid voxel face that counterbalance the difference of the voxel-set surface area with the underlying smooth one. The discretization of the model equations is performed with the discontinuous Galerkin method However, the presented semi-analytical approach of correcting the surface energy is equally applicable to other direct numerical methods such as finite elements, finite volumes, or finite differences, since the correction factors appear in the strong formulation of the model. (C) 2018 Elsevier Inc. All rights reserved.
机译:我们考虑一种基于能量的边界条件,以对体素集合型计算域的Cahn-Hilliard-Navier-Stokes相位场模型施加平衡润湿角。这些域通常源于多孔岩石的MU CT(微计算断层扫描)成像,并且近似A(在MU M刻度)平滑域,其具有垂直于主轴的一定的分辨率平面表面,其自然地由一层体素近似,任何其他方向和弯曲表面的平面表面会产生体素的锯齿状/拓扑粗糙表面近似。对于标准的Cahn-Hilliard配方,其中漫射界面和畴边界(流体 - 固界面/壁)之间的接触角为90度,锯齿状表面对接触角没有影响。然而,放大了在锯齿状体素表面上更小或大于90度的规定的接触角。作为补救措施,我们提出了对每个流体固体体素面的表面能校正因子引入,该抗体抗衡体素集面积与底层光滑的面积差异的差异。使用不连续的Galerkin方法进行模型方程的离散化,然而,校正表面能的所呈现的半分析方法同样适用于其他直接数值方法,例如有限元,有限卷或有限差异,自校正因子出现在模型的强大配方中。 (c)2018 Elsevier Inc.保留所有权利。

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