Two-Dimensional Fluctuating Vesicles in Linear Shear Flow
Abstract
The stochastic motion of a two-dimensional vesicle in linear shear flow is studied at finite temperature. In the limit of small deformations from a circle, Langevin-type equations of motion are derived, which are highly nonlinear due to the constraint of constant perimeter length. These equations are solved in the low temperature limit and using a mean field approach, in which the length constraint is satisfied only on average. The constraint imposes non-trivial correlations between the lowest deformation modes at low temperature. We also simulate a vesicle in a hydrodynamic solvent by using the multi-particle collision dynamics technique, both in the quasi-circular regime and for larger deformations, and compare the stationary deformation correlation functions and the time autocorrelation functions with theoretical predictions. Good agreement between theory and simulations is obtained.
Cite
@article{arxiv.0709.2669,
title = {Two-Dimensional Fluctuating Vesicles in Linear Shear Flow},
author = {Reimar Finken and Antonio Lamura and Udo Seifert and Gerhard Gompper},
journal= {arXiv preprint arXiv:0709.2669},
year = {2009}
}
Comments
13 pages, 7 figures