Engulfment of a drop on solids coated by thin and thick fluid films
arXiv:2208.13676 · doi:10.1017/jfm.2023.110
Abstract
When an aqueous drop contacts an immiscible oil film, it displays complex interfacial dynamics. Upon contact the oil spreads onto the drop's liquid-air interface, first forming a curvature that drives an apparent drop spreading motion and later fully engulfing the drop. We study this flow using both 3-phase Lattice-Boltzmann simulations based on the conservative phase field model and experiments. Inertially and viscously limited dynamics are explored using the Ohnesorge number as a function of , the ratio between the initial drop radius and the film height . Both regimes show that the apparent spreading radius is fairly independent of the film height, and scales with time as for and for as . For we show experimentally that this immiscible apparent spreading motion is analogous with the miscible drop-film coalescence case. Contrary to the apparent spreading, however, we find that the late time engulfment dynamics and final interface profiles are significantly affected by the ratio of .
References in corpus (5)
- Oleoplaning droplets on lubricated surfaces
- Coalescence of bubbles and drops in an outer fluid
- Viscous to Inertial Crossover in Liquid Drop Coalescence
- The inexorable resistance of inertia determines the initial regime of drop coalescence
- Interaction between a Rising Bubble and a Stationary Droplet Immersed in a Liquid Pool using Ternary Conservative Phase-Field Lattice Boltzmann Method