Understanding the thermodynamic properties of insect swarms

Abstract Sinhuber et al. (Sci Rep 11:3773, 2021) formulated an equation of state for laboratory swarms of the non-biting midge Chironomus riparius that holds true when the swarms are driven through thermodynamic cycles by the application external perturbations. The findings are significant because t...

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Autor principal: Andy M. Reynolds
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Publicado: Nature Portfolio 2021
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spelling oai:doaj.org-article:d15ec532d5fc4ff9a24c353dbbe2380a2021-12-02T16:26:23ZUnderstanding the thermodynamic properties of insect swarms10.1038/s41598-021-94582-x2045-2322https://doaj.org/article/d15ec532d5fc4ff9a24c353dbbe2380a2021-07-01T00:00:00Zhttps://doi.org/10.1038/s41598-021-94582-xhttps://doaj.org/toc/2045-2322Abstract Sinhuber et al. (Sci Rep 11:3773, 2021) formulated an equation of state for laboratory swarms of the non-biting midge Chironomus riparius that holds true when the swarms are driven through thermodynamic cycles by the application external perturbations. The findings are significant because they demonstrate the surprising efficacy of classical equilibrium thermodynamics for quantitatively characterizing and predicting collective behaviour in biology. Nonetheless, the equation of state obtained by Sinhuber et al. (2021) is anomalous, lacking a physical analogue, making its’ interpretation problematic. Moreover, the dynamical processes underlying the thermodynamic cycling were not identified. Here I show that insect swarms are equally well represented as van der Waals gases and I attribute the possibility of thermodynamic cycling to insect swarms consisting of several overlapping sublayers. This brings about a profound change in the understanding of laboratory swarms which until now have been regarded as consisting of non-interacting individuals and lacking any internal structure. I show how the effective interactions can be attributed to the swarms’ internal structure, the external perturbations and to the presence of intrinsic noise. I thereby show that intrinsic noise which is known to be crucial for the emergence of the macroscopic mechanical properties of insect swarms is also crucial for the emergence of their thermodynamic properties as encapsulated by their equation of state.Andy M. ReynoldsNature PortfolioarticleMedicineRScienceQENScientific Reports, Vol 11, Iss 1, Pp 1-12 (2021)
institution DOAJ
collection DOAJ
language EN
topic Medicine
R
Science
Q
spellingShingle Medicine
R
Science
Q
Andy M. Reynolds
Understanding the thermodynamic properties of insect swarms
description Abstract Sinhuber et al. (Sci Rep 11:3773, 2021) formulated an equation of state for laboratory swarms of the non-biting midge Chironomus riparius that holds true when the swarms are driven through thermodynamic cycles by the application external perturbations. The findings are significant because they demonstrate the surprising efficacy of classical equilibrium thermodynamics for quantitatively characterizing and predicting collective behaviour in biology. Nonetheless, the equation of state obtained by Sinhuber et al. (2021) is anomalous, lacking a physical analogue, making its’ interpretation problematic. Moreover, the dynamical processes underlying the thermodynamic cycling were not identified. Here I show that insect swarms are equally well represented as van der Waals gases and I attribute the possibility of thermodynamic cycling to insect swarms consisting of several overlapping sublayers. This brings about a profound change in the understanding of laboratory swarms which until now have been regarded as consisting of non-interacting individuals and lacking any internal structure. I show how the effective interactions can be attributed to the swarms’ internal structure, the external perturbations and to the presence of intrinsic noise. I thereby show that intrinsic noise which is known to be crucial for the emergence of the macroscopic mechanical properties of insect swarms is also crucial for the emergence of their thermodynamic properties as encapsulated by their equation of state.
format article
author Andy M. Reynolds
author_facet Andy M. Reynolds
author_sort Andy M. Reynolds
title Understanding the thermodynamic properties of insect swarms
title_short Understanding the thermodynamic properties of insect swarms
title_full Understanding the thermodynamic properties of insect swarms
title_fullStr Understanding the thermodynamic properties of insect swarms
title_full_unstemmed Understanding the thermodynamic properties of insect swarms
title_sort understanding the thermodynamic properties of insect swarms
publisher Nature Portfolio
publishDate 2021
url https://doaj.org/article/d15ec532d5fc4ff9a24c353dbbe2380a
work_keys_str_mv AT andymreynolds understandingthethermodynamicpropertiesofinsectswarms
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