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Wetting effects on the spreading of a liquid droplet colliding with a flat surface: Experiment and modeling

Physics of Fluids · 1995 · Vol. 7(2) · pp. 236–247
Jun FukaiY. ShiibaT. YamamotoOsamu MiyatakeDimos PoulikakosConstantine M. MegaridisZhiguo Zhao

Abstract

In this paper an experimental and theoretical study of the deformation of a spherical liquid droplet colliding with a flat surface is presented. The theoretical model accounts for the presence of inertia, viscous, gravitation, surface tension, and wetting effects, including the phenomenon of contact-angle hysteresis. Experiments with impingement surfaces of different wettability were performed. The study showed that the maximum splat radius decreased as the value of the advancing contact angle increased. The effect of impact velocity on droplet spreading was more pronounced when the wetting was limited. The experimental results were compared to the numerical predictions in terms of droplet deformation, splat radius, and splat height. The theoretical model predicted well the deformation of the impacting droplet, not only in the spreading phase, but also during recoiling and oscillation. The wettability of the substrate upon which the droplet impinges was found to affect significantly all phases of the spreading process, including the formation and development of a ring structure around the splat.

Fluid Dynamics and Heat TransferSurface Modification and SuperhydrophobicityFluid Dynamics Simulations and InteractionsWettingSurface tensionRADIUSContact angleMechanicsPhysicsDeformation (meteorology)HysteresisInertiaPhase (matter)
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References
Volume of fluid (VOF) method for the dynamics of free boundaries
Journal of Computational Physics · 1981 · 15,308 citations
Physical chemistry of surfaces
Choice Reviews Online · 1998 · 11,688 citations
A continuum method for modeling surface tension
Journal of Computational Physics · 1992 · 9,865 citations
Wetting: statics and dynamics
Reviews of Modern Physics · 1985 · 7,038 citations
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