Finite-time self-similar rupture in a generalized elastohydrodynamic lubrication model
Abstract
Thin film rupture is a type of nonlinear instability that causes the solution to touch down to zero at finite time. We investigate the finite-time rupture behavior of a generalized elastohydrodynamic lubrication model. This model features the interplay between destabilizing disjoining pressure and stabilizing elastic bending pressure and surface tension. The governing equation is a sixth-order nonlinear degenerate parabolic partial differential equation parameterized by exponents in the mobility function and the disjoining pressure, respectively. Asymptotic self-similar finite-time rupture solutions governed by a sixth-order leading-order equation are analyzed. In the weak elasticity limit, transient self-similar dynamics governed by a fourth-order similarity equation are also identified.
Cite
@article{arxiv.2210.04405,
title = {Finite-time self-similar rupture in a generalized elastohydrodynamic lubrication model},
author = {William Chang and Hanjie Ji},
journal= {arXiv preprint arXiv:2210.04405},
year = {2022}
}