Hydrodynamic oscillations and variable swimming speed in squirmers close to repulsive walls
Abstract
We present a lattice Boltzmann study of the hydrodynamics of a fully resolved squirmer, radius R, confined in a slab of fluid between two no-slip walls. We show that the coupling between hydrodynamics and short-range repulsive interactions between the swimmer and the surface can lead to hydrodynamic trapping of both pushers and pullers at the wall, and to hydrodynamic oscillations in the case of a pusher. We further show that a pusher moves significantly faster when close to a surface than in the bulk, whereas a puller undergoes a transition between fast motion and a dynamical standstill according to the range of the repulsive interaction. Our results critically require near-field hydrodynamics; they further suggest that it should be possible to control density and speed of squirmers at a surface by tuning the range of steric and electrostatic swimmer-wall interactions.
Keywords
Cite
@article{arxiv.1508.04255,
title = {Hydrodynamic oscillations and variable swimming speed in squirmers close to repulsive walls},
author = {Juho S. Lintuvuori and Aidan T. Brown and Kevin Stratford and Davide Marenduzzo},
journal= {arXiv preprint arXiv:1508.04255},
year = {2016}
}
Comments
5 + 8 pages, 4 + 4 Figures