论文标题

宏观表面异质性对前进的接触线的影响

Effect of Macroscopic Surface Heterogeneities on an Advancing Contact Line

论文作者

Melides, Solomon S., Vella, Dominic, Ramaioli, Marco

论文摘要

实验研究了在异质表面上前进的液体界面的形状,以及通过将接触线固定到表面缺陷引起的力的力。考虑了不同的表面,并带有引入可可黄油斑块或小圆形孔的圆形缺陷。这些异质表面被浸入水溶液溶液中,同时测量了由于前进的接触线的变形而产生的额外力,并表征了界面形状及其在缺陷上的固定。最初,浸没力是线性的,深度为淹没,表明恒定的缺陷诱导的刚度。当从缺陷中的触点线DE引脚时,该制度结束了。提出了一个简单的缩放,以描述耗电的力和含量。我们发现,随着缺陷分离的增加,界面刚度也会增加,对缺陷半径的依赖性较弱。缺陷之间的这种相互作用不能被简单的缩放捕获,但是可以通过考虑到周期性孔阵列的界面变形的理论来很好地预测。通过包括固体缺陷(可可脂)减少固定力来创建4相接触线。缺陷的半径对默认深度具有非线性效应。 4相接触线导致缺陷完全淹没之前。这些实验结果和相关理论有助于定量理解表面异质性可以减慢润湿的程度。反过来,这为定制异质表面设计的方式铺平了道路,并朝着所需的润湿表演铺平了道路。

The shape of a liquid-air interface advancing on a heterogeneous surface was studied experimentally, together with the force induced by the pinning of the contact line to surface defects. Different surfaces were considered with circular defects introduced as arrays of cocoa butter patches or small circular holes. These heterogeneous surfaces were submerged into aqueous ethanol solutions, while measuring the additional force arising from the deformation of the advancing contact line and characterising the interface shape and its pinning on the defects. Initially, the submersion force is linear with submerged depth, suggesting a constant defect-induced stiffness. This regime ends when the contact line de pins from the defects. A simple scaling is proposed to describe the depinning force and the depinning energy. We find that, as the defect separation increases, the interface stiffness increases too, with a weak dependency on the defect radius. This interaction between defects cannot be captured by the simple scaling, but can be well predicted by a theory considering the interface deformation in presence of periodic arrays of holes. Creating a 4-phase contact line, by including solid defects (cocoa butter) reduced pinning forces. The radius of the defect had a nonlinear effect on the depinning depth. The 4-phase contact line resulted in depinning before the defects are fully submerged. These experimental results and the associated theory help understanding quantitatively the extent to which surface heterogeneities can slow down wetting. This in turn paves the way to tailor the design of heterogeneous surfaces, towards desired wetting performances.

扫码加入交流群

加入微信交流群

微信交流群二维码

扫码加入学术交流群,获取更多资源