Issue 39, 2019

Particle-resolved lattice Boltzmann simulations of 3-dimensional active turbulence

Abstract

Collective behaviour in suspensions of microswimmers is often dominated by the impact of long-ranged hydrodynamic interactions. These phenomena include active turbulence, where suspensions of pusher bacteria at sufficient densities exhibit large-scale, chaotic flows. To study this collective phenomenon, we use large-scale (up to N = 3 × 106) particle-resolved lattice Boltzmann simulations of model microswimmers described by extended stresslets. Such system sizes enable us to obtain quantitative information about both the transition to active turbulence and characteristic features of the turbulent state itself. In the dilute limit, we test analytical predictions for a number of static and dynamic properties against our simulation results. For higher swimmer densities, where swimmer-swimmer interactions become significant, we numerically show that the length- and timescales of the turbulent flows increase steeply near the predicted finite-system transition density.

Graphical abstract: Particle-resolved lattice Boltzmann simulations of 3-dimensional active turbulence

Supplementary files

Article information

Article type
Paper
Submitted
16 Apr 2019
Accepted
31 Jul 2019
First published
02 Aug 2019
This article is Open Access
Creative Commons BY license

Soft Matter, 2019,15, 7747-7756

Particle-resolved lattice Boltzmann simulations of 3-dimensional active turbulence

D. Bárdfalvy, H. Nordanger, C. Nardini, A. Morozov and J. Stenhammar, Soft Matter, 2019, 15, 7747 DOI: 10.1039/C9SM00774A

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