Issue 24, 2021

Droplet impact on pillar-arrayed non-wetting surfaces

Abstract

Droplet impact on pillar-arrayed polydimethylsiloxane (PDMS) surfaces with different solid fractions was studied. The lower and upper limits of Weber number, We, for complete rebound of impacting droplets decreased with decreasing solid fractions. Gaps were visible during the spreading and retraction processes of bouncing droplets on the surface with a solid fraction of 0.06 while no gaps were observed during the retraction process when We was greater than its upper limit, indicating that there existed a transition from the Cassie–Baxter wetting state to the Wenzel wetting state. Therefore, a novel model accounting for the penetration of a liquid into the cavities between the pillars was developed to predict the upper limit of the impact velocity of bouncing droplets. At high We, partial rebound was observed for surfaces with solid fractions of 0.50 and 0.20 while a sticky state was observed for the surface with a solid fraction of 0.06. Moreover, surface roughness has a great influence on the contact time of bouncing droplets. Besides, the maximum spreading parameter was found to follow a scaling law of We1/4.

Graphical abstract: Droplet impact on pillar-arrayed non-wetting surfaces

Article information

Article type
Paper
Submitted
07 Mar 2021
Accepted
11 May 2021
First published
11 May 2021

Soft Matter, 2021,17, 5932-5940

Droplet impact on pillar-arrayed non-wetting surfaces

L. Wang, A. Zhou, J. Zhou, L. Chen and Y. Yu, Soft Matter, 2021, 17, 5932 DOI: 10.1039/D1SM00354B

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