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The Effect of Depth on Drag During the Streamlined Glide: A Three-Dimensional CFD Analysis

The aim of this study was to analyze the effects of depth on drag during the streamlined glide in swimming using Computational Fluid Dynamics. The Computation Fluid Dynamic analysis consisted of using a three-dimensional mesh of cells that simulates the flow around the considered domain. We used the...

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Autores principales: Novais, Maria L., Silva, António J., Mantha, Vishveshwar R., Ramos, Rui J., Rouboa, Abel I., Vilas-Boas, J. Paulo, Luís, Sérgio R., Marinho, Daniel A.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Akademia Wychowania Fizycznego w Katowicach 2012
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3588683/
https://www.ncbi.nlm.nih.gov/pubmed/23487502
http://dx.doi.org/10.2478/v10078-012-0044-2
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author Novais, Maria L.
Silva, António J.
Mantha, Vishveshwar R.
Ramos, Rui J.
Rouboa, Abel I.
Vilas-Boas, J. Paulo
Luís, Sérgio R.
Marinho, Daniel A.
author_facet Novais, Maria L.
Silva, António J.
Mantha, Vishveshwar R.
Ramos, Rui J.
Rouboa, Abel I.
Vilas-Boas, J. Paulo
Luís, Sérgio R.
Marinho, Daniel A.
author_sort Novais, Maria L.
collection PubMed
description The aim of this study was to analyze the effects of depth on drag during the streamlined glide in swimming using Computational Fluid Dynamics. The Computation Fluid Dynamic analysis consisted of using a three-dimensional mesh of cells that simulates the flow around the considered domain. We used the K-epsilon turbulent model implemented in the commercial code Fluent(®) and applied it to the flow around a three-dimensional model of an Olympic swimmer. The swimmer was modeled as if he were gliding underwater in a streamlined prone position, with hands overlapping, head between the extended arms, feet together and plantar flexed. Steady-state computational fluid dynamics analyses were performed using the Fluent(®) code and the drag coefficient and the drag force was calculated for velocities ranging from 1.5 to 2.5 m/s, in increments of 0.50m/s, which represents the velocity range used by club to elite level swimmers during the push-off and glide following a turn. The swimmer model middle line was placed at different water depths between 0 and 1.0 m underwater, in 0.25m increments. Hydrodynamic drag decreased with depth, although after 0.75m values remained almost constant. Water depth seems to have a positive effect on reducing hydrodynamic drag during the gliding. Although increasing depth position could contribute to decrease hydrodynamic drag, this reduction seems to be lower with depth, especially after 0.75 m depth, thus suggesting that possibly performing the underwater gliding more than 0.75 m depth could not be to the benefit of the swimmer.
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spelling pubmed-35886832013-03-13 The Effect of Depth on Drag During the Streamlined Glide: A Three-Dimensional CFD Analysis Novais, Maria L. Silva, António J. Mantha, Vishveshwar R. Ramos, Rui J. Rouboa, Abel I. Vilas-Boas, J. Paulo Luís, Sérgio R. Marinho, Daniel A. J Hum Kinet Research Article The aim of this study was to analyze the effects of depth on drag during the streamlined glide in swimming using Computational Fluid Dynamics. The Computation Fluid Dynamic analysis consisted of using a three-dimensional mesh of cells that simulates the flow around the considered domain. We used the K-epsilon turbulent model implemented in the commercial code Fluent(®) and applied it to the flow around a three-dimensional model of an Olympic swimmer. The swimmer was modeled as if he were gliding underwater in a streamlined prone position, with hands overlapping, head between the extended arms, feet together and plantar flexed. Steady-state computational fluid dynamics analyses were performed using the Fluent(®) code and the drag coefficient and the drag force was calculated for velocities ranging from 1.5 to 2.5 m/s, in increments of 0.50m/s, which represents the velocity range used by club to elite level swimmers during the push-off and glide following a turn. The swimmer model middle line was placed at different water depths between 0 and 1.0 m underwater, in 0.25m increments. Hydrodynamic drag decreased with depth, although after 0.75m values remained almost constant. Water depth seems to have a positive effect on reducing hydrodynamic drag during the gliding. Although increasing depth position could contribute to decrease hydrodynamic drag, this reduction seems to be lower with depth, especially after 0.75 m depth, thus suggesting that possibly performing the underwater gliding more than 0.75 m depth could not be to the benefit of the swimmer. Akademia Wychowania Fizycznego w Katowicach 2012-07-04 /pmc/articles/PMC3588683/ /pubmed/23487502 http://dx.doi.org/10.2478/v10078-012-0044-2 Text en © Editorial Committee of Journal of Human Kinetics http://creativecommons.org/licenses/by/3.0 This article is an open-access article distributed under the terms and conditions of the Creative Commons Attribution license (http://creativecommons.org/licenses/by/3.0/).
spellingShingle Research Article
Novais, Maria L.
Silva, António J.
Mantha, Vishveshwar R.
Ramos, Rui J.
Rouboa, Abel I.
Vilas-Boas, J. Paulo
Luís, Sérgio R.
Marinho, Daniel A.
The Effect of Depth on Drag During the Streamlined Glide: A Three-Dimensional CFD Analysis
title The Effect of Depth on Drag During the Streamlined Glide: A Three-Dimensional CFD Analysis
title_full The Effect of Depth on Drag During the Streamlined Glide: A Three-Dimensional CFD Analysis
title_fullStr The Effect of Depth on Drag During the Streamlined Glide: A Three-Dimensional CFD Analysis
title_full_unstemmed The Effect of Depth on Drag During the Streamlined Glide: A Three-Dimensional CFD Analysis
title_short The Effect of Depth on Drag During the Streamlined Glide: A Three-Dimensional CFD Analysis
title_sort effect of depth on drag during the streamlined glide: a three-dimensional cfd analysis
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3588683/
https://www.ncbi.nlm.nih.gov/pubmed/23487502
http://dx.doi.org/10.2478/v10078-012-0044-2
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