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Measurement of time-varying kinematics of a dolphin in burst accelerating swimming

Dolphins are well known as excellent swimmers for being capable of efficient cruising and sharp acceleration. While studies of the thrust production and power consumption of dolphin swimming have been the main subject for decades, time-varying acceleration process during successive fluke beats still...

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Autores principales: Tanaka, Hiroto, Li, Gen, Uchida, Yusuke, Nakamura, Masashi, Ikeda, Teruaki, Liu, Hao
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6353170/
https://www.ncbi.nlm.nih.gov/pubmed/30699184
http://dx.doi.org/10.1371/journal.pone.0210860
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author Tanaka, Hiroto
Li, Gen
Uchida, Yusuke
Nakamura, Masashi
Ikeda, Teruaki
Liu, Hao
author_facet Tanaka, Hiroto
Li, Gen
Uchida, Yusuke
Nakamura, Masashi
Ikeda, Teruaki
Liu, Hao
author_sort Tanaka, Hiroto
collection PubMed
description Dolphins are well known as excellent swimmers for being capable of efficient cruising and sharp acceleration. While studies of the thrust production and power consumption of dolphin swimming have been the main subject for decades, time-varying acceleration process during successive fluke beats still remains poorly understood. In this study, we quantified the time-varying kinematics of a dolphin (Lagenorhynchus obliquidens) by directly recording its burst-accelerating swimming before vertical jump in an aquarium with two synchronized high-speed video cameras. We tracked the three-dimensional trajectories of its beak, body sides, and fluke. We found that dolphin could quickly accelerate from 5.0 m s(-1) to 8.7 m s(-1) merely by 5 strokes (i.e. 2.5 fluke beats) in 0.7 seconds. During the strokes, it was further found that the dolphin demonstrated a great acceleration in downstroke but less acceleration or even a slight deceleration in upstroke. Hydrodynamic forces and thrust power for each stroke were further estimated based on the equation of body motion and a static hydrodynamic model. The drag coefficient of the dolphin was estimated through computational fluid dynamics (CFD) modeling of the steady flows around a realistic geometric model based on 3-D scan data. The thrust and thrust power were then calculated by combining the body kinematics and the drag coefficient, resulting in a maximum stroke-averaged thrust and power-to-mass ratio of 1.3 × 10(3) N and 90 W kg(-1) at downstroke, and 3.3 × 10(2) N and 19 W kg(-1) at upstroke, respectively. Our results point out the importance of asymmetric kinematics in burst acceleration of dolphin, which may be a useful mechanism for biomimetic design of high-performance underwater robots.
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spelling pubmed-63531702019-02-15 Measurement of time-varying kinematics of a dolphin in burst accelerating swimming Tanaka, Hiroto Li, Gen Uchida, Yusuke Nakamura, Masashi Ikeda, Teruaki Liu, Hao PLoS One Research Article Dolphins are well known as excellent swimmers for being capable of efficient cruising and sharp acceleration. While studies of the thrust production and power consumption of dolphin swimming have been the main subject for decades, time-varying acceleration process during successive fluke beats still remains poorly understood. In this study, we quantified the time-varying kinematics of a dolphin (Lagenorhynchus obliquidens) by directly recording its burst-accelerating swimming before vertical jump in an aquarium with two synchronized high-speed video cameras. We tracked the three-dimensional trajectories of its beak, body sides, and fluke. We found that dolphin could quickly accelerate from 5.0 m s(-1) to 8.7 m s(-1) merely by 5 strokes (i.e. 2.5 fluke beats) in 0.7 seconds. During the strokes, it was further found that the dolphin demonstrated a great acceleration in downstroke but less acceleration or even a slight deceleration in upstroke. Hydrodynamic forces and thrust power for each stroke were further estimated based on the equation of body motion and a static hydrodynamic model. The drag coefficient of the dolphin was estimated through computational fluid dynamics (CFD) modeling of the steady flows around a realistic geometric model based on 3-D scan data. The thrust and thrust power were then calculated by combining the body kinematics and the drag coefficient, resulting in a maximum stroke-averaged thrust and power-to-mass ratio of 1.3 × 10(3) N and 90 W kg(-1) at downstroke, and 3.3 × 10(2) N and 19 W kg(-1) at upstroke, respectively. Our results point out the importance of asymmetric kinematics in burst acceleration of dolphin, which may be a useful mechanism for biomimetic design of high-performance underwater robots. Public Library of Science 2019-01-30 /pmc/articles/PMC6353170/ /pubmed/30699184 http://dx.doi.org/10.1371/journal.pone.0210860 Text en © 2019 Tanaka 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 (http://creativecommons.org/licenses/by/4.0/) , which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are credited.
spellingShingle Research Article
Tanaka, Hiroto
Li, Gen
Uchida, Yusuke
Nakamura, Masashi
Ikeda, Teruaki
Liu, Hao
Measurement of time-varying kinematics of a dolphin in burst accelerating swimming
title Measurement of time-varying kinematics of a dolphin in burst accelerating swimming
title_full Measurement of time-varying kinematics of a dolphin in burst accelerating swimming
title_fullStr Measurement of time-varying kinematics of a dolphin in burst accelerating swimming
title_full_unstemmed Measurement of time-varying kinematics of a dolphin in burst accelerating swimming
title_short Measurement of time-varying kinematics of a dolphin in burst accelerating swimming
title_sort measurement of time-varying kinematics of a dolphin in burst accelerating swimming
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6353170/
https://www.ncbi.nlm.nih.gov/pubmed/30699184
http://dx.doi.org/10.1371/journal.pone.0210860
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