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朝向各向异性超疏水平面移动的球体上的曳力。

Drag force on a sphere moving toward an anisotropic superhydrophobic plane.

作者信息

Asmolov Evgeny S, Belyaev Aleksey V, Vinogradova Olga I

机构信息

A.N. Frumkin Institute of Physical Chemistry and Electrochemistry, Russian Academy of Sciences, 31 Leninsky Prospect, 119991 Moscow, Russia.

出版信息

Phys Rev E Stat Nonlin Soft Matter Phys. 2011 Aug;84(2 Pt 2):026330. doi: 10.1103/PhysRevE.84.026330. Epub 2011 Aug 30.

Abstract

We analyze theoretically a high-speed drainage of liquid films squeezed between a hydrophilic sphere and a textured superhydrophobic plane that contains trapped gas bubbles. A superhydrophobic wall is characterized by parameters L (texture characteristic length), b1 and b2 (local slip lengths at solid and gas areas), and φ1 and φ2 (fractions of solid and gas areas). Hydrodynamic properties of the plane are fully expressed in terms of the effective slip-length tensor with eigenvalues that depend on texture parameters and H (local separation). The effect of effective slip is predicted to decrease the force as compared with what is expected for two hydrophilic surfaces and described by the Taylor equation. The presence of additional length scales, L, b1, and b2, implies that a film drainage can be much richer than in the case of a sphere moving toward a hydrophilic plane. For a large (compared to L) gap the reduction of the force is small, and for all textures the force is similar to expected when a sphere is moving toward a smooth hydrophilic plane that is shifted down from the superhydrophobic wall. The value of this shift is equal to the average of the eigenvalues of the slip-length tensor. By analyzing striped superhydrophobic surfaces, we then compute the correction to the Taylor equation for an arbitrary gap. We show that at a thinner gap the force reduction becomes more pronounced, and that it depends strongly on the fraction of the gas area and local slip lengths. For small separations we derive an exact equation, which relates a correction for effective slip to texture parameters. Our analysis provides a framework for interpreting recent force measurements in the presence of a superhydrophobic surface.

摘要

我们从理论上分析了夹在亲水球体和含有捕获气泡的纹理超疏水平面之间的液膜高速排水情况。超疏水壁由参数L(纹理特征长度)、b1和b2(固体和气体区域的局部滑移长度)以及φ1和φ2(固体和气体区域的分数)来表征。平面的流体动力学特性完全由有效滑移长度张量表示,其特征值取决于纹理参数和H(局部间距)。预计有效滑移的影响会使力减小,与两个亲水表面的预期情况相比,并由泰勒方程描述。额外长度尺度L、b1和b2的存在意味着薄膜排水可能比球体向亲水平面移动的情况丰富得多。对于较大(与L相比)的间隙,力的减小很小,并且对于所有纹理,力类似于球体向从超疏水壁向下偏移的光滑亲水平面移动时的预期情况。这种偏移的值等于滑移长度张量特征值的平均值。通过分析条纹状超疏水表面,我们然后计算了任意间隙下对泰勒方程的修正。我们表明,在较薄的间隙下,力的减小变得更加明显,并且它强烈取决于气体区域的分数和局部滑移长度。对于小间距,我们推导出一个精确方程,该方程将有效滑移的修正与纹理参数联系起来。我们的分析提供了一个框架,用于解释最近在存在超疏水表面时的力测量结果。

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