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首页> 外文期刊>Journal of Colloid and Interface Science >Computation of constant mean curvature surfaces: Application to the gas-liquid interface of a pressurized fluid on a superhydrophobic surface
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Computation of constant mean curvature surfaces: Application to the gas-liquid interface of a pressurized fluid on a superhydrophobic surface

机译:恒定平均曲率表面的计算:应用于超疏水表面上的加压流体的气-液界面

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摘要

The interface shape separating a gas layer within a superhydrophobic surface consisting of a square lattice of posts from a pressurized liquid above the surface is computed numerically. The interface shape is described by a constant mean curvature surface that satisfies the Young-Laplace equation with the three-phase gas-liquid-solid contact line assumed pinned at the post outer edge. The numerical method predicts the existence of constant mean curvature solutions from the planar, zero curvature solution up to a maximum curvature that is dependent on the post shape, size and pitch. An overall force balance between surface tension and pressure forces acting on the interface yields predictions for the maximum curvature that agree with the numerical simulations to within one percent for convex shapes such as circular and square posts, but significantly over predicts the maximum curvature for non-convex shapes such as a circular post with a sinusoidal surface perturbation. Changing the post shape to increase the contact line length, while maintaining constant post area, results in increases of 2 to 12% in the maximum computable curvature for contact line length increases of 11 to 77%. Comparisons are made to several experimental studies for interface shape and pressure stability. (c) 2007 Elsevier Inc. All rights reserved.
机译:通过数值计算将超疏水性表面内的气体层与表面上方的加压液体隔开,该界面层由柱的方格组成,该气体层由柱的方格组成。界面形状由恒定的平均曲率表面描述,该表面满足Young-Laplace方程,且假设气固固相三相接触线固定在柱的外边缘。数值方法可预测从平面零曲率解到最大曲率的常数平均曲率解的存在,该最大曲率解取决于桩的形状,大小和间距。表面张力和作用在界面上的压力之间的总体力平衡可得出最大曲率的预测值,该预测值与数值模拟的凸形形状(例如圆形和方形柱)的误差在1%以内,但大大超过了非弯曲形状的最大曲率的预测值。凸形状,例如带有正弦表面扰动的圆形柱。更改桩形状以增加接触线长度,同时保持恒定的桩面积,导致接触线长度增加11%至77%时最大可计算曲率增加2%至12%。对界面形状和压力稳定性的一些实验研究进行了比较。 (c)2007 Elsevier Inc.保留所有权利。

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