Shear-induced Casimir forces in liquid layers
Abstract
In stationary nonequilibrium states a coupling between hydrodynamic modes causes thermal fluctuations to become long ranged inducing nonequilibrium Casimir forces or pressures. Here we consider nonequilibrium Casimir pressures induced in liquids by a velocity gradient. Specifically, we have obtained explicit expressions for the magnitude of the shear-induced pressure enhancement in a liquid layer between two horizontal plates that complete and correct results previously presented in the literature. In contrast to nonequiibrium Casimir pressures induced by a temperature gradient, kinetic theory shows that nonequilibrium contributions from short-range fluctuations are no longer negligible. In addition, it is noted that computer simulations of model fluids in shear observe effects from molecular correlations at nanoscales that have a different physical origin. The idea that such computer simulations probe shear-induced pressures resulting from coupling of long-wavelength hydrodynamic modes is erroneous.
Cite
@article{arxiv.1804.06125,
title = {Shear-induced Casimir forces in liquid layers},
author = {J. M. Ortiz de Zárate and T. R. Kirkpatrick and J. V. Sengers},
journal= {arXiv preprint arXiv:1804.06125},
year = {2019}
}
Comments
8 pages. Two tables. No figures