Assessment of passive drag in swimming by numerical simulation and analytical procedure
Main Author: | |
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Publication Date: | 2017 |
Other Authors: | , , |
Format: | Article |
Language: | eng |
Source: | Repositórios Científicos de Acesso Aberto de Portugal (RCAAP) |
Download full: | http://hdl.handle.net/10400.6/9254 |
Summary: | The aim was to compare the passive drag-gliding underwater by a numerical simulation and an analytical procedure. An Olympic swimmer was scanned by computer tomography and modelled gliding at a 0.75-m depth in the streamlined position. Steady-state computer fluid dynamics (CFD) analyses were performed on Fluent. A set of analytical procedures was selected concurrently. Friction drag (Df), pressure drag (Dpr), total passive drag force (Df+pr) and drag coefficient (CD) were computed between 1.3 and 2.5 m · s-1 by both techniques. Df+pr ranged from 45.44 to 144.06 N with CFD, from 46.03 to 167.06 N with the analytical procedure (differences: from 1.28% to 13.77%). CD ranged between 0.698 and 0.622 by CFD, 0.657 and 0.644 by analytical procedures (differences: 0.40-6.30%). Linear regression models showed a very high association for Df+pr plotted in absolute values (R2 = 0.98) and after log-log transformation (R2 = 0.99). The CD also obtained a very high adjustment for both absolute (R2 = 0.97) and log-log plots (R2 = 0.97). The bias for the Df+pr was 8.37 N and 0.076 N after logarithmic transformation. Df represented between 15.97% and 18.82% of the Df+pr by the CFD, 14.66% and 16.21% by the analytical procedures. Therefore, despite the bias, analytical procedures offer a feasible way of gathering insight on one's hydrodynamics characteristics. |
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Assessment of passive drag in swimming by numerical simulation and analytical procedureBiomechanical PhenomenaData Interpretation StatisticalFrictionHumansMaleSwimmingComputer SimulationHydrodynamicsLinear ModelsThe aim was to compare the passive drag-gliding underwater by a numerical simulation and an analytical procedure. An Olympic swimmer was scanned by computer tomography and modelled gliding at a 0.75-m depth in the streamlined position. Steady-state computer fluid dynamics (CFD) analyses were performed on Fluent. A set of analytical procedures was selected concurrently. Friction drag (Df), pressure drag (Dpr), total passive drag force (Df+pr) and drag coefficient (CD) were computed between 1.3 and 2.5 m · s-1 by both techniques. Df+pr ranged from 45.44 to 144.06 N with CFD, from 46.03 to 167.06 N with the analytical procedure (differences: from 1.28% to 13.77%). CD ranged between 0.698 and 0.622 by CFD, 0.657 and 0.644 by analytical procedures (differences: 0.40-6.30%). Linear regression models showed a very high association for Df+pr plotted in absolute values (R2 = 0.98) and after log-log transformation (R2 = 0.99). The CD also obtained a very high adjustment for both absolute (R2 = 0.97) and log-log plots (R2 = 0.97). The bias for the Df+pr was 8.37 N and 0.076 N after logarithmic transformation. Df represented between 15.97% and 18.82% of the Df+pr by the CFD, 14.66% and 16.21% by the analytical procedures. Therefore, despite the bias, analytical procedures offer a feasible way of gathering insight on one's hydrodynamics characteristics.uBibliorumBarbosa, Tiago M.Ramos, RuiSilva, AntónioMarinho, Daniel2020-02-12T17:23:33Z20172017-01-01T00:00:00Zinfo:eu-repo/semantics/publishedVersioninfo:eu-repo/semantics/articleapplication/pdfhttp://hdl.handle.net/10400.6/9254eng10.1080/02640414.2017.1321774info:eu-repo/semantics/openAccessreponame:Repositórios Científicos de Acesso Aberto de Portugal (RCAAP)instname:FCCN, serviços digitais da FCT – Fundação para a Ciência e a Tecnologiainstacron:RCAAP2025-03-11T16:00:57Zoai:ubibliorum.ubi.pt:10400.6/9254Portal AgregadorONGhttps://www.rcaap.pt/oai/openaireinfo@rcaap.ptopendoar:https://opendoar.ac.uk/repository/71602025-05-29T01:31:01.004487Repositórios Científicos de Acesso Aberto de Portugal (RCAAP) - FCCN, serviços digitais da FCT – Fundação para a Ciência e a Tecnologiafalse |
dc.title.none.fl_str_mv |
Assessment of passive drag in swimming by numerical simulation and analytical procedure |
title |
Assessment of passive drag in swimming by numerical simulation and analytical procedure |
spellingShingle |
Assessment of passive drag in swimming by numerical simulation and analytical procedure Barbosa, Tiago M. Biomechanical Phenomena Data Interpretation Statistical Friction Humans Male Swimming Computer Simulation Hydrodynamics Linear Models |
title_short |
Assessment of passive drag in swimming by numerical simulation and analytical procedure |
title_full |
Assessment of passive drag in swimming by numerical simulation and analytical procedure |
title_fullStr |
Assessment of passive drag in swimming by numerical simulation and analytical procedure |
title_full_unstemmed |
Assessment of passive drag in swimming by numerical simulation and analytical procedure |
title_sort |
Assessment of passive drag in swimming by numerical simulation and analytical procedure |
author |
Barbosa, Tiago M. |
author_facet |
Barbosa, Tiago M. Ramos, Rui Silva, António Marinho, Daniel |
author_role |
author |
author2 |
Ramos, Rui Silva, António Marinho, Daniel |
author2_role |
author author author |
dc.contributor.none.fl_str_mv |
uBibliorum |
dc.contributor.author.fl_str_mv |
Barbosa, Tiago M. Ramos, Rui Silva, António Marinho, Daniel |
dc.subject.por.fl_str_mv |
Biomechanical Phenomena Data Interpretation Statistical Friction Humans Male Swimming Computer Simulation Hydrodynamics Linear Models |
topic |
Biomechanical Phenomena Data Interpretation Statistical Friction Humans Male Swimming Computer Simulation Hydrodynamics Linear Models |
description |
The aim was to compare the passive drag-gliding underwater by a numerical simulation and an analytical procedure. An Olympic swimmer was scanned by computer tomography and modelled gliding at a 0.75-m depth in the streamlined position. Steady-state computer fluid dynamics (CFD) analyses were performed on Fluent. A set of analytical procedures was selected concurrently. Friction drag (Df), pressure drag (Dpr), total passive drag force (Df+pr) and drag coefficient (CD) were computed between 1.3 and 2.5 m · s-1 by both techniques. Df+pr ranged from 45.44 to 144.06 N with CFD, from 46.03 to 167.06 N with the analytical procedure (differences: from 1.28% to 13.77%). CD ranged between 0.698 and 0.622 by CFD, 0.657 and 0.644 by analytical procedures (differences: 0.40-6.30%). Linear regression models showed a very high association for Df+pr plotted in absolute values (R2 = 0.98) and after log-log transformation (R2 = 0.99). The CD also obtained a very high adjustment for both absolute (R2 = 0.97) and log-log plots (R2 = 0.97). The bias for the Df+pr was 8.37 N and 0.076 N after logarithmic transformation. Df represented between 15.97% and 18.82% of the Df+pr by the CFD, 14.66% and 16.21% by the analytical procedures. Therefore, despite the bias, analytical procedures offer a feasible way of gathering insight on one's hydrodynamics characteristics. |
publishDate |
2017 |
dc.date.none.fl_str_mv |
2017 2017-01-01T00:00:00Z 2020-02-12T17:23:33Z |
dc.type.status.fl_str_mv |
info:eu-repo/semantics/publishedVersion |
dc.type.driver.fl_str_mv |
info:eu-repo/semantics/article |
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article |
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http://hdl.handle.net/10400.6/9254 |
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http://hdl.handle.net/10400.6/9254 |
dc.language.iso.fl_str_mv |
eng |
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eng |
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10.1080/02640414.2017.1321774 |
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info:eu-repo/semantics/openAccess |
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openAccess |
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application/pdf |
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