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February 13, 2026Langmuir0 citations

Contact Time of Double Unequal-Sized Droplets Simultaneously Impacting Superhydrophobic Surfaces

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SGShu-Rong GaoLSLian-Kai ShiXHXinyue Huang

Key Points

  • The study investigates how the size ratio and spacing of droplets influence their contact time on superhydrophobic surfaces.
  • Conducted lattice Boltzmann method simulations
  • Examined the impact of radius ratio and droplet spacing
  • Analyzed how these factors influence contact time dynamics
  • Contact time increases with radius ratio between 1.2 and 2.1 due to enhanced asymmetry and collisions
  • Contact time remains constant when the radius ratio is between 2.1 and 3.0
  • Contact time decreases with droplet spacing in the range of 1.2 to 1.6
  • Contact time increases with droplet spacing between 1.6 and 2.0

Abstract

The impact dynamics of double unequal-sized droplets impacting superhydrophobic surfaces are investigated via lattice Boltzmann method (LBM) simulations. The simulations capture the spreading and receding dynamics of unequal-sized droplets on superhydrophobic surfaces, and reveal the influences of the radius ratio of the droplets (K), the droplet spacing (L*), and the Weber number. The radius ratio and the droplet spacing significantly affect the contact time. The contact time increases with the radius ratio when 1.2 K K ≤ 3.0, since the larger droplet dominates the morphological evolution and the contact time is equivalent to that of a single droplet. Besides, the contact time decreases with the droplet spacing when 1.2 ≤ L* ≤ 1.6, as the coalescence strength decreases with the increase of droplet spacing, leading to less viscous dissipation; while the contact time increases when 1.6 L* ≤ 2.0, since the increasing droplet spacing causes the increase of the degree of separation of droplets during rebound, which reduces the kinetic energy for rebound provided by the smaller droplet. Our work demonstrates the key physics governing the impact dynamics of unequal-sized droplets impacting superhydrophobic surfaces, key for enhanced antifrosting/icing, self-cleaning, and water/energy harvesting.

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Cite This Study

Gao et al. (2026) studied this question.

synapsesocial.com/papers/698ebedd85a1ff6a930162c1https://doi.org/10.1021/acs.langmuir.5c06659
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