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Biomimetic and Live Medusae Reveal the Mechanistic Advantages of a Flexible Bell Margin

Flexible bell margins are characteristic components of rowing medusan morphologies and are expected to contribute towards their high propulsive efficiency. However, the mechanistic basis of thrust augmentation by flexible propulsors remained unresolved, so the impact of bell margin flexibility on me...

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Autores principales: Colin, Sean P., Costello, John H., Dabiri, John O., Villanueva, Alex, Blottman, John B., Gemmell, Brad J., Priya, Shashank
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2012
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3492145/
https://www.ncbi.nlm.nih.gov/pubmed/23145016
http://dx.doi.org/10.1371/journal.pone.0048909
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author Colin, Sean P.
Costello, John H.
Dabiri, John O.
Villanueva, Alex
Blottman, John B.
Gemmell, Brad J.
Priya, Shashank
author_facet Colin, Sean P.
Costello, John H.
Dabiri, John O.
Villanueva, Alex
Blottman, John B.
Gemmell, Brad J.
Priya, Shashank
author_sort Colin, Sean P.
collection PubMed
description Flexible bell margins are characteristic components of rowing medusan morphologies and are expected to contribute towards their high propulsive efficiency. However, the mechanistic basis of thrust augmentation by flexible propulsors remained unresolved, so the impact of bell margin flexibility on medusan swimming has also remained unresolved. We used biomimetic robotic jellyfish vehicles to elucidate that propulsive thrust enhancement by flexible medusan bell margins relies upon fluid dynamic interactions between entrained flows at the inflexion point of the exumbrella and flows expelled from under the bell. Coalescence of flows from these two regions resulted in enhanced fluid circulation and, therefore, thrust augmentation for flexible margins of both medusan vehicles and living medusae. Using particle image velocimetry (PIV) data we estimated pressure fields to demonstrate a mechanistic basis of enhanced flows associated with the flexible bell margin. Performance of vehicles with flexible margins was further enhanced by vortex interactions that occur during bell expansion. Hydrodynamic and performance similarities between robotic vehicles and live animals demonstrated that the propulsive advantages of flexible margins found in nature can be emulated by human-engineered propulsors. Although medusae are simple animal models for description of this process, these results may contribute towards understanding the performance of flexible margins among other animal lineages.
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spelling pubmed-34921452012-11-09 Biomimetic and Live Medusae Reveal the Mechanistic Advantages of a Flexible Bell Margin Colin, Sean P. Costello, John H. Dabiri, John O. Villanueva, Alex Blottman, John B. Gemmell, Brad J. Priya, Shashank PLoS One Research Article Flexible bell margins are characteristic components of rowing medusan morphologies and are expected to contribute towards their high propulsive efficiency. However, the mechanistic basis of thrust augmentation by flexible propulsors remained unresolved, so the impact of bell margin flexibility on medusan swimming has also remained unresolved. We used biomimetic robotic jellyfish vehicles to elucidate that propulsive thrust enhancement by flexible medusan bell margins relies upon fluid dynamic interactions between entrained flows at the inflexion point of the exumbrella and flows expelled from under the bell. Coalescence of flows from these two regions resulted in enhanced fluid circulation and, therefore, thrust augmentation for flexible margins of both medusan vehicles and living medusae. Using particle image velocimetry (PIV) data we estimated pressure fields to demonstrate a mechanistic basis of enhanced flows associated with the flexible bell margin. Performance of vehicles with flexible margins was further enhanced by vortex interactions that occur during bell expansion. Hydrodynamic and performance similarities between robotic vehicles and live animals demonstrated that the propulsive advantages of flexible margins found in nature can be emulated by human-engineered propulsors. Although medusae are simple animal models for description of this process, these results may contribute towards understanding the performance of flexible margins among other animal lineages. Public Library of Science 2012-11-07 /pmc/articles/PMC3492145/ /pubmed/23145016 http://dx.doi.org/10.1371/journal.pone.0048909 Text en © 2012 Colin et al http://creativecommons.org/licenses/by/4.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution License, which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are properly credited.
spellingShingle Research Article
Colin, Sean P.
Costello, John H.
Dabiri, John O.
Villanueva, Alex
Blottman, John B.
Gemmell, Brad J.
Priya, Shashank
Biomimetic and Live Medusae Reveal the Mechanistic Advantages of a Flexible Bell Margin
title Biomimetic and Live Medusae Reveal the Mechanistic Advantages of a Flexible Bell Margin
title_full Biomimetic and Live Medusae Reveal the Mechanistic Advantages of a Flexible Bell Margin
title_fullStr Biomimetic and Live Medusae Reveal the Mechanistic Advantages of a Flexible Bell Margin
title_full_unstemmed Biomimetic and Live Medusae Reveal the Mechanistic Advantages of a Flexible Bell Margin
title_short Biomimetic and Live Medusae Reveal the Mechanistic Advantages of a Flexible Bell Margin
title_sort biomimetic and live medusae reveal the mechanistic advantages of a flexible bell margin
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3492145/
https://www.ncbi.nlm.nih.gov/pubmed/23145016
http://dx.doi.org/10.1371/journal.pone.0048909
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