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表面粗糙度对撞击液滴流体动力学特性的影响

Effect of Surface Roughness on Hydrodynamic Characteristics of an Impinging Droplet.

作者信息

Singh Rajeev Kumar, Hodgson Peter D, Sen Niladri, Das Subrat

机构信息

School of Engineering, Faculty of Science, Engineering, and Built Environment, Deakin University, Geelong Campus Waurn Ponds, Geelong, Victoria 3216, Australia.

Institute of Frontier Materials, Deakin University, Geelong Campus Waurn Ponds, Geelong, Victoria 3216, Australia.

出版信息

Langmuir. 2021 Mar 16;37(10):3038-3048. doi: 10.1021/acs.langmuir.0c03193. Epub 2021 Mar 2.

Abstract

The influence of surface roughness and impact energy on the hydrodynamic behavior of water droplets impinging upon dry and rigid surfaces of known roughness has been investigated experimentally. The influence of these two parameters on the droplet maximum spreading diameter, slip length during droplet recoil, dynamic contact angle, contact angle hysteresis, and apparent contact angle of droplets at rest has been determined. Based on the quantitative assessment, a correlation for the maximum spreading diameter in terms of the nondimensional parameter (/) and surface roughness ratio (/) was derived. We propose to use surface roughness "" rather than using the contact angle for correlation as contact angles cannot be known a priori, whereas surface roughness can be determined beforehand. The wetting state of a droplet depends on the combined influence of droplet impact energy and surface roughness. While increasing impact energy increases the spreading, higher surface roughness resists the droplet from spreading. Low impact energy and a smoother surface tend toward the Cassie-Baxter wetting state, whereas high impact energy and rough surfaces propel the droplet toward the Wenzel state of wetting.

摘要

通过实验研究了表面粗糙度和冲击能量对撞击已知粗糙度的干燥刚性表面的水滴流体动力学行为的影响。确定了这两个参数对液滴最大铺展直径、液滴回弹过程中的滑移长度、动态接触角、接触角滞后以及静止液滴的表观接触角的影响。基于定量评估,得出了关于无量纲参数(/)和表面粗糙度比(/)的最大铺展直径的关联式。我们建议使用表面粗糙度“”而不是接触角进行关联,因为接触角不能事先得知,而表面粗糙度可以预先确定。液滴的润湿状态取决于液滴冲击能量和表面粗糙度的综合影响。虽然增加冲击能量会增加铺展,但较高的表面粗糙度会阻止液滴铺展。低冲击能量和平滑表面倾向于卡西 - 巴克斯特润湿状态,而高冲击能量和粗糙表面则促使液滴趋向于文泽尔润湿状态。

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