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Drop dynamics after impact on a solid wall: Theory and simulations

Physics of Fluids · 2010 · Vol. 22(6)
Jens EggersMarco A. FontelosChristophe JosserandStéphane Zaleski

Abstract

We study the impact of a fluid drop onto a planar solid surface at high speed so that at impact, kinetic energy dominates over surface energy and inertia dominates over viscous effects. As the drop spreads, it deforms into a thin film, whose thickness is limited by the growth of a viscous boundary layer near the solid wall. Owing to surface tension, the edge of the film retracts relative to the flow in the film and fluid collects into a toroidal rim bounding the film. Using mass and momentum conservation, we construct a model for the radius of the deposit as a function of time. At each stage, we perform detailed comparisons between theory and numerical simulations of the Navier–Stokes equation.

Fluid Dynamics and Heat TransferSurface Modification and SuperhydrophobicityFluid Dynamics Simulations and InteractionsPhysicsMechanicsDrop (telecommunication)Surface tensionInertiaToroidClassical mechanicsDrop impactKinetic energyBoundary layer

Funding

  • Agence Nationale de la Recherche
Citations
474
FWCI
12.45
field-weighted impact
References
35
Percentile
99%
vs. same field & year
Citations per year
References
Bouncing water drops
Europhysics Letters (EPL) · 2000 · 491 citations
Capillary effects during droplet impact on a solid surface
Physics of Fluids · 1996 · 1,301 citations
Droplet splashing on a thin liquid film
Physics of Fluids · 2003 · 388 citations
Maximal deformation of an impacting drop
Journal of Fluid Mechanics · 2004 · 1,228 citations
Wetting and spreading
Reviews of Modern Physics · 2009 · 2,736 citations
Wetting: statics and dynamics
Reviews of Modern Physics · 1985 · 7,038 citations
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