Rebound Behaviors of Multiple Droplets Simultaneously Impacting a Superhydrophobic Surface
Journal
Langmuir
Journal Volume
37
Journal Issue
38
Pages
11233-11241
Date Issued
2021
Author(s)
Abstract
The rebound behaviors of multiple droplets simultaneously impacting a superhydrophobic surface were investigated via lattice Boltzmann method (LBM) simulations. Three rebound regions were identified, i.e., an edge-dominating region, a center-dominating region, and an independent rebound region. The occurrence of the rebound regions strongly depends on the droplet spacing and the associated Weber and Reynolds numbers. Three new rebound morphologies, i.e., a pin-shaped morphology, a downward comb-shaped morphology, and an upward comb-shaped morphology, were presented. Intriguingly, in the edge-dominating region, the central droplets experience a secondary wetting process to significantly prolong the contact time. However, in the center-dominating region, the contact time is dramatically shortened because of the strong interactions generated by the central droplets and the central ridges. These findings provide useful information for practical applications such as self-cleaning, anticorrosion, anti-icing, and so forth. ? 2021 American Chemical Society
Subjects
Computational fluid dynamics
Drops
Hydrophobicity
Reynolds number
Surface properties
Wetting
A-center
Contact time
Droplet spacings
Lattice Boltzmann method
Rebound behavior
Reynold number
Strong interaction
Super-hydrophobic surfaces
Weber numbers
Wetting process
Morphology
article
cleaning
contact time
corrosion
rebound
simulation
Type
journal article