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Spread and rebound of liquid droplets upon impact on flat surfaces

AIChE Journal · 1997 · Vol. 43(9) · pp. 2169–2179
Ted MaoD. KuhnHonghi Tran

Abstract

Abstract The spread and rebound of droplets upon impact on flat surfaces at room temperature were studied over a wide range of impact velocities (0.5–6 m/s), viscosities (1–100 mPa.s), static contact angles (30–120°), droplet sizes (1.5–3.5 mm), and surface roughnesses using a fast‐shutter‐speed CCD camera. The maximum spread of a droplet upon impact depended strongly on the liquid viscosity and the impact velocity. The tendency of a droplet to deposit or to rebound is determined primarily by the liquid viscosity and the liquid/substrate static contact angle. A model more broadly applicable than existing models was developed to predict maximum spread as a function of the Reynolds number, the Weber number, and the static contact angle. Based on the conservation of energy, a rebound model is proposed that predicts the tendency to rebound as a function of maximum spread and static contact angle. The maximum‐spread model prediction agrees to within 10% with more than 90% of the experimental data from different sources. In the current study, the rebound model successfully predicts the tendency of a droplet to rebound.

Fluid Dynamics and Heat TransferSurface Modification and SuperhydrophobicityPlant Surface Properties and TreatmentsContact angleMechanicsViscosityRange (aeronautics)Materials scienceWettingReynolds numberOpticsComposite materialPhysics
Citations
667
FWCI
2.27
field-weighted impact
References
20
Percentile
88%
vs. same field & year
Citations per year
References
Capillary effects during droplet impact on a solid surface
Physics of Fluids · 1996 · 1,301 citations
Physical Chemistry of Surfaces
Journal of The Electrochemical Society · 1977 · 2,990 citations
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