Finite-time Thin Film Rupture Driven by Generalized Evaporative Loss
Mathematical Physics
2017-01-05 v2 math.MP
Fluid Dynamics
Abstract
Rupture is a nonlinear instability resulting in a finite-time singularity as a fluid layer approaches zero thickness at a point. We study the dynamics of rupture in a generalized mathematical model of thin films of viscous fluids with evaporative effects. The governing lubrication model is a fourth-order nonlinear parabolic partial differential equation with a non-conservative loss term due to evaporation. Several different types of finite-time singularities are observed due to balances between evaporation and surface tension or intermolecular forces. Non-self-similar behavior and two classes of self-similar rupture solutions are analyzed and validated against high resolution PDE simulations.
Cite
@article{arxiv.1601.03625,
title = {Finite-time Thin Film Rupture Driven by Generalized Evaporative Loss},
author = {Hangjie Ji and Thomas Witelski},
journal= {arXiv preprint arXiv:1601.03625},
year = {2017}
}
Comments
25 pages, 17 figures