English

How geometry determines the coalescence of low-viscosity drops

Fluid Dynamics 2013-07-30 v1

Abstract

The coalescence of water drops on a substrate is studied experimentally. We focus on the rapid growth of the bridge connecting the two drops, which very quickly after contact ensues from a balance of surface tension and liquid inertia. For drops with contact angles below 9090^\circ, we find that the bridge grows with a self-similar dynamics that is characterized by a height ht2/3h\sim t^{2/3}. By contrast, the geometry of coalescence changes dramatically for contact angles at 9090^\circ, for which we observe ht1/2h\sim t^{1/2}, just as for freely suspended spherical drops in the inertial regime. We present a geometric model that quantitatively captures the transition from 2/3 to 1/2 exponent, and unifies the inertial coalescence of sessile drops and freely suspended drops.

Keywords

Cite

@article{arxiv.1307.7475,
  title  = {How geometry determines the coalescence of low-viscosity drops},
  author = {A. Eddi and K. G. Winkels and J. H. Snoeijer},
  journal= {arXiv preprint arXiv:1307.7475},
  year   = {2013}
}

Comments

5 pages, 3 figures