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伪部分润湿中接触线的热激活脱钉运动。

Thermally activated depinning motion of contact lines in pseudopartial wetting.

作者信息

Du Lingguo, Bodiguel Hugues, Colin Annie

机构信息

Univ. Bordeaux, CNRS, Solvay, LOF UMR 5258, France.

出版信息

Phys Rev E Stat Nonlin Soft Matter Phys. 2014 Jul;90(1):012402. doi: 10.1103/PhysRevE.90.012402. Epub 2014 Jul 9.

Abstract

We investigate pressure-driven motion of liquid-liquid menisci in circular tubes, for systems in pseudopartial wetting conditions. The originality of this type of wetting lies in the coexistence of a macroscopic contact angle with a wetting liquid film covering the solid surface. Focusing on small capillary numbers, we report observations of an apparent contact angle hysteresis at first sight similar to the standard partial wetting case. However, this apparent hysteresis exhibits original features. We observe very long transient regimes before steady state, up to several hundreds of seconds. Furthermore, in steady state, the velocities are nonzero, meaning that the contact line is not strongly pinned to the surface defects, but are very small. The velocity of the contact line tends to vanish near the equilibrium contact angle. These observations are consistent with the thermally activated depinning theory that has been proposed to describe partial wetting systems on disordered substrates and suggest that a single physical mechanism controls both the hysteresis (or the pinning) and the motion of the contact line. The proposed analysis leads to the conclusion that the depinning activated energy is lower with pseudopartial wetting systems than with partial wetting ones, allowing the direct observation of the thermally activated motion of the contact line.

摘要

我们研究了在伪部分润湿条件下,圆管中液 - 液弯月面的压力驱动运动。这种润湿类型的独特之处在于,宏观接触角与覆盖固体表面的润湿液膜共存。聚焦于小毛细管数,我们报告了一种乍一看类似于标准部分润湿情况的表观接触角滞后现象。然而,这种表观滞后表现出独特的特征。我们观察到在达到稳态之前有非常长的瞬态过程,长达数百秒。此外,在稳态下,速度不为零,这意味着接触线并非强烈地固定在表面缺陷上,而是非常小。接触线的速度在接近平衡接触角时趋于消失。这些观察结果与为描述无序基底上的部分润湿系统而提出的热激活脱钉理论一致,并表明单一物理机制控制着滞后(或钉扎)以及接触线的运动。所提出的分析得出结论,伪部分润湿系统的脱钉激活能低于部分润湿系统,从而能够直接观察到接触线的热激活运动。

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