Long-range interactions and phase defects in chains of fluid-coupled oscillators
Abstract
Eukaryotic cilia and flagella are chemo-mechanical oscillators capable of generating long-range coordinated motions known as metachronal waves. Pair synchronization is a fundamental requirement for these collective dynamics, but it is generally not sufficient for collective phase-locking, chiefly due to the effect of long-range interactions. Here we explore experimentally and numerically a minimal model for a ciliated surface; hydrodynamically coupled oscillators rotating above a no-slip plane. Increasing their distance from the wall profoundly effects the global dynamics, due to variations in hydrodynamic interaction range. The array undergoes a transition from a traveling wave to either a steady chevron pattern or one punctuated by periodic phase defects. Within the transition between these regimes the system displays behavior reminiscent of chimera states.
Cite
@article{arxiv.1606.00683,
title = {Long-range interactions and phase defects in chains of fluid-coupled oscillators},
author = {Douglas R. Brumley and Nicolas Bruot and Jurij Kotar and Raymond E. Goldstein and Pietro Cicuta and Marco Polin},
journal= {arXiv preprint arXiv:1606.00683},
year = {2016}
}
Comments
8 pages, 7 figures