English

A deformable microswimmer in a swirl: capturing and scattering dynamics

Soft Condensed Matter 2014-09-11 v2 Pattern Formation and Solitons

Abstract

Inspired by the classical Kepler and Rutherford problem, we investigate an analogous set-up in the context of active microswimmers: the behavior of a deformable microswimmer in a swirl flow. First we identify new steady bound states in the swirl flow and analyze their stability. Second we study the dynamics of a self-propelled swimmer heading towards the vortex center, and we observe the subsequent capturing and scattering dynamics. We distinguish between two major types of swimmers, those that tend to elongate perpendicularly to the propulsion direction and those that pursue a parallel elongation. While the first ones can get caught by the swirl, the second ones were always observed to be scattered, which proposes a promising escape strategy. This offers a route to design artificial microswimmers that show the desired behavior in complicated flow fields. It should be straightforward to verify our results in a corresponding quasi-two-dimensional experiment using self-propelled droplets on water surfaces.

Keywords

Cite

@article{arxiv.1401.3606,
  title  = {A deformable microswimmer in a swirl: capturing and scattering dynamics},
  author = {Mitsusuke Tarama and Andreas M. Menzel and Hartmut Löwen},
  journal= {arXiv preprint arXiv:1401.3606},
  year   = {2014}
}

Comments

13 pages, 8 figures

R2 v1 2026-06-22T02:46:11.190Z