Whirligig beetles as corralled active Brownian particles

We study the collective dynamics of groups of whirligig beetles swimming freely on the surface of water. We extract individual trajectories for each beetle, including positions and orientations, and use this to discover (i) a density-dependent speed scaling like ∼ with ≈ 0.4 over two orders of magni...

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Veröffentlicht in:Journal of the Royal Society interface 2021-04, Vol.18 (177), p.20210114-20210114, Article 20210114
Hauptverfasser: Devereux, Harvey L, Twomey, Colin R, Turner, Matthew S, Thutupalli, Shashi
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container_end_page 20210114
container_issue 177
container_start_page 20210114
container_title Journal of the Royal Society interface
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creator Devereux, Harvey L
Twomey, Colin R
Turner, Matthew S
Thutupalli, Shashi
description We study the collective dynamics of groups of whirligig beetles swimming freely on the surface of water. We extract individual trajectories for each beetle, including positions and orientations, and use this to discover (i) a density-dependent speed scaling like ∼ with ≈ 0.4 over two orders of magnitude in density (ii) an inertial delay for velocity alignment of approximately 13 ms and (iii) coexisting high and low-density phases, consistent with motility-induced phase separation (MIPS). We modify a standard active Brownian particle (ABP) model to a corralled ABP (CABP) model that functions in open space by incorporating a density-dependent reorientation of the beetles, towards the cluster. We use our new model to test our hypothesis that an motility-induced phase separation (MIPS) (or a MIPS like effect) can explain the co-occurrence of high- and low-density phases we see in our data. The fitted model then successfully recovers a MIPS-like condensed phase for = 200 and the absence of such a phase for smaller group sizes = 50, 100.
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subjects Animals
Coleoptera
Life Sciences–Physics interface
Swimming
title Whirligig beetles as corralled active Brownian particles
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