Engineering Mechanics Unit, Jawaharlal Nehru Centre for Advanced Scientific Research, Bangalore 560064, India.
Langmuir. 2013 Mar 12;29(10):3339-46. doi: 10.1021/la3050658. Epub 2013 Feb 27.
We study the motion of a two-dimensional droplet on an inclined surface, under the action of gravity, using a diffuse interface model which allows for arbitrary equilibrium contact angles. The kinematics of motion is analyzed by decomposing the gradient of the velocity inside the droplet into a shear and a residual flow. This decomposition helps in distinguishing sliding versus rolling motion of the drop. Our detailed study confirms intuition, in that rolling motion dominates as the droplet shape approaches a circle, and the viscosity contrast between the droplet and the ambient fluid becomes large. As a consequence of kinematics, the amount of rotation in a general droplet shape follows a universal curve characterized by geometry, and independent of Bond number, surface inclination and equilibrium contact angle, but determined by the slip length and viscosity contrast. Our results open the way toward a rational design of droplet-surface properties, both when rolling motion is desirable (as in self-cleaning hydrophobic droplets) and when it must be prevented (as in insecticide sprays on leaves).
我们使用一种允许任意平衡接触角的弥散界面模型来研究在重力作用下二维液滴在倾斜表面上的运动。通过将液滴内部速度梯度分解为剪切流和残余流来分析运动的运动学。这种分解有助于区分液滴的滑动和滚动运动。我们的详细研究证实了直觉,即当液滴形状接近圆形并且液滴和环境流体之间的粘度对比度变得很大时,滚动运动占主导地位。由于运动学的原因,一般液滴形状的旋转量遵循由几何形状特征的通用曲线,并且与邦数、表面倾斜和平衡接触角无关,而是由滑移长度和粘度对比度决定。我们的结果为合理设计液滴-表面特性开辟了道路,既可以在需要滚动运动的情况下(如自清洁疏液滴),也可以在必须防止滚动运动的情况下(如叶子上的杀虫剂喷雾)。