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Relaxation and intermediate asymptotics of a rectangular trench in a viscous film

Authors :
Elie Raphaël
Joshua D. McGraw
Paul Fowler
Kari Dalnoki-Veress
Oliver Bäumchen
Michael Benzaquen
Matilda Backholm
Thomas Salez
Gulliver (UMR 7083)
Institut de Chimie du CNRS (INC)-Centre National de la Recherche Scientifique (CNRS)-Ecole Superieure de Physique et de Chimie Industrielles de la Ville de Paris (ESPCI Paris)
Université Paris sciences et lettres (PSL)-Université Paris sciences et lettres (PSL)
Source :
Physical Review E : Statistical, Nonlinear, and Soft Matter Physics, Physical Review E : Statistical, Nonlinear, and Soft Matter Physics, American Physical Society, 2013, 88 (3)
Publication Year :
2013
Publisher :
American Physical Society (APS), 2013.

Abstract

The surface of a thin liquid film with nonconstant curvature flattens as a result of capillary forces. While this leveling is driven by local curvature gradients, the global boundary conditions greatly influence the dynamics. Here, we study the evolution of rectangular trenches in a polystyrene nanofilm. Initially, when the two sides of a trench are well separated, the asymmetric boundary condition given by the step height controls the dynamics. In this case, the evolution results from the leveling of two noninteracting steps. As the steps broaden further and start to interact, the global symmetric boundary condition alters the leveling dynamics. We report on full agreement between theory and experiments for: the capillary-driven flow and resulting time dependent height profiles; a crossover in the power-law dependence of the viscous energy dissipation as a function of time as the trench evolution transitions from two noninteracting to interacting steps; and the convergence of the profiles to a universal self-similar attractor that is given by the Green's function of the linear operator describing the dimensionless linearized thin film equation.<br />Accepted for publication in Physical Review E

Details

ISSN :
15502376 and 15393755
Volume :
88
Database :
OpenAIRE
Journal :
Physical Review E
Accession number :
edsair.doi.dedup.....92646dc6d8e43cd806ebef6ffdf68c72
Full Text :
https://doi.org/10.1103/physreve.88.035001