School of Mechanics and Engineering, Southwest Jiaotong University, Chengdu 610031, China.
College of Mechanical and Electrical Engineering, Beijing University of Chemical Technology, Beijing 100029, China.
J Colloid Interface Sci. 2018 Apr 15;516:86-97. doi: 10.1016/j.jcis.2017.12.086. Epub 2017 Dec 30.
In this paper, we experimentally investigated the impact dynamics of different viscous droplets on solid surfaces with diverse wettabilities. We show that the outcome of an impinging droplet is dependent on the physical property of the droplet and the wettability of the surface. Whereas only deposition was observed on lyophilic surfaces, more impact phenomena were identified on lyophobic and superlyophobic surfaces. It was found that none of the existing theoretical models can well describe the maximum spreading factor, revealing the complexity of the droplet impact dynamics and suggesting that more factors need to be considered in the theory. By using the modified capillary-inertial time, which considers the effects of liquid viscosity and surface wettability on droplet spreading, a universal scaling law describing the spreading time was obtained. Finally, we analyzed the post-impact droplet oscillation with the theory for damped harmonic oscillators and interpreted the effects of liquid viscosity and surface wettability on the oscillation by simple scaling analyses.
在本文中,我们通过实验研究了具有不同润湿性的固体表面上不同粘性液滴的冲击动力学。结果表明,撞击液滴的结果取决于液滴的物理性质和表面的润湿性。在亲液性表面上仅观察到沉积,而在疏液性和超疏液性表面上则识别出更多的冲击现象。研究发现,现有的任何理论模型都不能很好地描述最大扩展因子,这揭示了液滴冲击动力学的复杂性,并表明在理论中需要考虑更多的因素。通过使用考虑液体粘度和表面润湿性对液滴扩展影响的修正的毛细惯性时间,可以获得描述扩展时间的通用标度律。最后,我们使用受迫阻尼谐振子理论分析了撞击后液滴的振荡,并通过简单的标度分析解释了液体粘度和表面润湿性对振荡的影响。