On the energetics and stability of a minimal fish school.

The physical basis for fish schooling is examined using three-dimensional numerical simulations of a pair of swimming fish, with kinematics and geometry obtained from experimental data. Energy expenditure and efficiency are evaluated using a cost of transport function, while the effect of schooling...

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Main Authors: Gen Li, Dmitry Kolomenskiy, Hao Liu, Benjamin Thiria, Ramiro Godoy-Diana
Format: Article
Language:English
Published: Public Library of Science (PLoS) 2019-01-01
Series:PLoS ONE
Online Access:https://doi.org/10.1371/journal.pone.0215265
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spelling doaj-d61e92a8846d479ea6ae268fa74707032021-03-03T19:49:57ZengPublic Library of Science (PLoS)PLoS ONE1932-62032019-01-01148e021526510.1371/journal.pone.0215265On the energetics and stability of a minimal fish school.Gen LiDmitry KolomenskiyHao LiuBenjamin ThiriaRamiro Godoy-DianaThe physical basis for fish schooling is examined using three-dimensional numerical simulations of a pair of swimming fish, with kinematics and geometry obtained from experimental data. Energy expenditure and efficiency are evaluated using a cost of transport function, while the effect of schooling on the stability of each swimmer is examined by probing the lateral force and the lateral and longitudinal force fluctuations. We construct full maps of the aforementioned quantities as functions of the spatial pattern of the swimming fish pair and show that both energy expenditure and stability can be invoked as possible reasons for the swimming patterns and tail-beat synchronization observed in real fish. Our results suggest that high cost of transport zones should be avoided by the fish. Wake capture may be energetically unfavorable in the absence of kinematic adjustment. We hereby hypothesize that fish may restrain from wake capturing and, instead, adopt side-to-side configuration as a conservative strategy, when the conditions of wake energy harvesting are not satisfied. To maintain a stable school configuration, compromise between propulsive efficiency and stability, as well as between school members, ought to be considered.https://doi.org/10.1371/journal.pone.0215265
collection DOAJ
language English
format Article
sources DOAJ
author Gen Li
Dmitry Kolomenskiy
Hao Liu
Benjamin Thiria
Ramiro Godoy-Diana
spellingShingle Gen Li
Dmitry Kolomenskiy
Hao Liu
Benjamin Thiria
Ramiro Godoy-Diana
On the energetics and stability of a minimal fish school.
PLoS ONE
author_facet Gen Li
Dmitry Kolomenskiy
Hao Liu
Benjamin Thiria
Ramiro Godoy-Diana
author_sort Gen Li
title On the energetics and stability of a minimal fish school.
title_short On the energetics and stability of a minimal fish school.
title_full On the energetics and stability of a minimal fish school.
title_fullStr On the energetics and stability of a minimal fish school.
title_full_unstemmed On the energetics and stability of a minimal fish school.
title_sort on the energetics and stability of a minimal fish school.
publisher Public Library of Science (PLoS)
series PLoS ONE
issn 1932-6203
publishDate 2019-01-01
description The physical basis for fish schooling is examined using three-dimensional numerical simulations of a pair of swimming fish, with kinematics and geometry obtained from experimental data. Energy expenditure and efficiency are evaluated using a cost of transport function, while the effect of schooling on the stability of each swimmer is examined by probing the lateral force and the lateral and longitudinal force fluctuations. We construct full maps of the aforementioned quantities as functions of the spatial pattern of the swimming fish pair and show that both energy expenditure and stability can be invoked as possible reasons for the swimming patterns and tail-beat synchronization observed in real fish. Our results suggest that high cost of transport zones should be avoided by the fish. Wake capture may be energetically unfavorable in the absence of kinematic adjustment. We hereby hypothesize that fish may restrain from wake capturing and, instead, adopt side-to-side configuration as a conservative strategy, when the conditions of wake energy harvesting are not satisfied. To maintain a stable school configuration, compromise between propulsive efficiency and stability, as well as between school members, ought to be considered.
url https://doi.org/10.1371/journal.pone.0215265
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