Institute of Mechanics, Bulgarian Academy of Sciences, Acad. G. Bonchev St. 4, 1113 Sofia, Bulgaria.
ETH Zurich, Computational Physics for Engineering Materials, CH-8093 Zurich, Switzerland.
Phys Rev E. 2018 Apr;97(4-1):042801. doi: 10.1103/PhysRevE.97.042801.
We report here on the contact angle hysteresis, appearing when a liquid meniscus is in contact with doubly sinusoidal wavelike patterned surfaces in Wenzel's wetting regime. Using the full capillary model we obtain numerically the contact angle hysteresis as a function of the surface roughness factor and the equilibrium contact angle for a block case and a kink case contact line depinning mechanism. We find that the dependencies of the contact angle hysteresis on the surface roughness factor are different for the different contact line depinning mechanisms. These dependencies are different also for the two types of rough surfaces we studied. The relations between advancing, receding, and equilibrium contact angles are investigated. A comparison with the existing asymptotical, numerical, and experimental results is carried out.
我们在此报告了在 Wenzel 润湿状态下,当液体弯月面与双正弦波型表面接触时出现的接触角滞后现象。我们使用全毛细模型,数值地得到了作为表面粗糙度因子和平衡接触角函数的接触角滞后,针对的是阻塞情况和纽结情况接触线脱钉机制。我们发现,对于不同的接触线脱钉机制,接触角滞后对表面粗糙度因子的依赖关系是不同的。对于我们研究的两种粗糙表面,这些依赖关系也是不同的。我们研究了前进角、后退角和平衡接触角之间的关系。并与现有的渐近、数值和实验结果进行了比较。