Inertia drives a flocking phase transition in viscous active fluids
Abstract
How fast must an oriented collection of extensile swimmers swim to escape the instability of viscous active suspensions? We show that the answer lies in the dimensionless combination , where is the suspension mass density, the swim speed and the active stress. Linear stability analysis shows that for small disturbances grow at a rate linear in their wavenumber , and that the dominant instability mode involves twist. The resulting steady state in our numerical studies is isotropic hedgehog-defect turbulence. Past a first threshold of order unity we find a slower growth rate, of ; the numerically observed steady state is {\it phase-turbulent}: noisy but {\it aligned} on average. We present numerical evidence in three and two dimensions that this inertia driven flocking transition is continuous, with a correlation length that grows on approaching the transition. For much larger we find an aligned state linearly stable to perturbations at all . Our predictions should be testable in suspensions of mesoscale swimmers [D Klotsa, Soft Matter \textbf{15}, 8946 (2019)].
Cite
@article{arxiv.1907.03492,
title = {Inertia drives a flocking phase transition in viscous active fluids},
author = {Rayan Chatterjee and Navdeep Rana and R. Aditi Simha and Prasad Perlekar and Sriram Ramaswamy},
journal= {arXiv preprint arXiv:1907.03492},
year = {2021}
}
Comments
Version of the manuscript accepted in PRX