Maximal deformation of an impacting drop
Institut de Recherche sur les Phénomènes Hors Équilibre · Centre National de la Recherche Scientifique · +3 more institutions
Abstract
We first study the impact of a liquid drop of low viscosity on a super-hydrophobic surface. Denoting the drop size and speed as $D_{0}$ and $U_{0}$ , we find that the maximal spreading $D_{\hbox{\scriptsize\it max}}$ scales as $D_{0}\hbox{\it We}^{1/4}$ where We is the Weber number associated with the shock ( $\hbox{\it We}\,{\equiv}\,\rho U_{0}^2 D_{0}/\sigma$ , where $\rho$ and $\sigma$ are the liquid density and surface tension). This law is also observed to hold on partially wettable surfaces, provided that liquids of low viscosity (such as water) are used. The law is interpreted as resulting from the effective acceleration experienced by the drop during its impact. Viscous drops are also analysed,…
Citation impact
- FWCI
- 4.55
- Percentile
- 100%
- References
- 0
Authors
4- CCChristophe ClanetCorresponding
Institut de Recherche sur les Phénomènes Hors Équilibre
- CBCédric Béguin
Institut de Recherche sur les Phénomènes Hors Équilibre
- DRDenis Richard
Centre National de la Recherche Scientifique, Collège de France, Laboratoire de Physique Théorique de la Matière Condensée, Laboratoire de physique de la matière condensée
- DQDavid Quéré
Centre National de la Recherche Scientifique, Collège de France, Laboratoire de Physique Théorique de la Matière Condensée
Topics & keywords
- Drop (telecommunication)
- Surface tension
- Drop impact
- Materials science
- Viscosity
- Mechanics
- Spinning drop method
- Liquid drop
- Clean water and sanitation