Enhanced motility of a microswimmer in rigid and elastic confinement
arXiv:1303.7325 · doi:10.1103/PhysRevLett.111.138101
Abstract
We analyse the effect of confining rigid and elastic boundaries on the motility of a model dipolar microswimmer. Flexible boundaries are deformed by the velocity field of the swimmer in such a way that the motility of both extensile and contractile swimmers is enhanced. The magnitude of the increase in swimming velocity is controlled by the ratio of the swimmer-advection and elastic timescales, and the dipole moment of the swimmer. We explain our results by considering swimming between inclined rigid boundaries.
5 pages, 3 figures. Physical Review Letters - accepted
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