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Experimental Study of a Reference Model Vertical-Axis Cross-Flow Turbine

The mechanical power, total rotor drag, and near-wake velocity of a 1:6 scale model (1.075 m diameter) of the US Department of Energy’s Reference Model vertical-axis cross-flow turbine were measured experimentally in a towing tank, to provide a comprehensive open dataset for validating numerical mod...

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Autores principales: Bachant, Peter, Wosnik, Martin, Gunawan, Budi, Neary, Vincent S.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2016
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5042560/
https://www.ncbi.nlm.nih.gov/pubmed/27684076
http://dx.doi.org/10.1371/journal.pone.0163799
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author Bachant, Peter
Wosnik, Martin
Gunawan, Budi
Neary, Vincent S.
author_facet Bachant, Peter
Wosnik, Martin
Gunawan, Budi
Neary, Vincent S.
author_sort Bachant, Peter
collection PubMed
description The mechanical power, total rotor drag, and near-wake velocity of a 1:6 scale model (1.075 m diameter) of the US Department of Energy’s Reference Model vertical-axis cross-flow turbine were measured experimentally in a towing tank, to provide a comprehensive open dataset for validating numerical models. Performance was measured for a range of tip speed ratios and at multiple Reynolds numbers by varying the rotor’s angular velocity and tow carriage speed, respectively. A peak power coefficient C(P) = 0.37 and rotor drag coefficient C(D) = 0.84 were observed at a tip speed ratio λ(0) = 3.1. A regime of weak linear Re-dependence of the power coefficient was observed above a turbine diameter Reynolds number Re(D) ≈ 10(6). The effects of support strut drag on turbine performance were investigated by covering the rotor’s NACA 0021 struts with cylinders. As expected, this modification drastically reduced the rotor power coefficient. Strut drag losses were also measured for the NACA 0021 and cylindrical configurations with the rotor blades removed. For λ = λ(0), wake velocity was measured at 1 m (x/D = 0.93) downstream. Mean velocity, turbulence kinetic energy, and mean kinetic energy transport were compared with results from a high solidity turbine acquired with the same test apparatus. Like the high solidity case, mean vertical advection was calculated to be the largest contributor to near-wake recovery. However, overall, lower levels of streamwise wake recovery were calculated for the RM2 case—a consequence of both the relatively low solidity and tapered blades reducing blade tip vortex shedding—responsible for mean vertical advection—and lower levels of turbulence caused by higher operating tip speed ratio and therefore reduced dynamic stall. Datasets, code for processing and visualization, and a CAD model of the turbine have been made publicly available.
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spelling pubmed-50425602016-10-27 Experimental Study of a Reference Model Vertical-Axis Cross-Flow Turbine Bachant, Peter Wosnik, Martin Gunawan, Budi Neary, Vincent S. PLoS One Research Article The mechanical power, total rotor drag, and near-wake velocity of a 1:6 scale model (1.075 m diameter) of the US Department of Energy’s Reference Model vertical-axis cross-flow turbine were measured experimentally in a towing tank, to provide a comprehensive open dataset for validating numerical models. Performance was measured for a range of tip speed ratios and at multiple Reynolds numbers by varying the rotor’s angular velocity and tow carriage speed, respectively. A peak power coefficient C(P) = 0.37 and rotor drag coefficient C(D) = 0.84 were observed at a tip speed ratio λ(0) = 3.1. A regime of weak linear Re-dependence of the power coefficient was observed above a turbine diameter Reynolds number Re(D) ≈ 10(6). The effects of support strut drag on turbine performance were investigated by covering the rotor’s NACA 0021 struts with cylinders. As expected, this modification drastically reduced the rotor power coefficient. Strut drag losses were also measured for the NACA 0021 and cylindrical configurations with the rotor blades removed. For λ = λ(0), wake velocity was measured at 1 m (x/D = 0.93) downstream. Mean velocity, turbulence kinetic energy, and mean kinetic energy transport were compared with results from a high solidity turbine acquired with the same test apparatus. Like the high solidity case, mean vertical advection was calculated to be the largest contributor to near-wake recovery. However, overall, lower levels of streamwise wake recovery were calculated for the RM2 case—a consequence of both the relatively low solidity and tapered blades reducing blade tip vortex shedding—responsible for mean vertical advection—and lower levels of turbulence caused by higher operating tip speed ratio and therefore reduced dynamic stall. Datasets, code for processing and visualization, and a CAD model of the turbine have been made publicly available. Public Library of Science 2016-09-29 /pmc/articles/PMC5042560/ /pubmed/27684076 http://dx.doi.org/10.1371/journal.pone.0163799 Text en https://creativecommons.org/publicdomain/zero/1.0/ This is an open access article, free of all copyright, and may be freely reproduced, distributed, transmitted, modified, built upon, or otherwise used by anyone for any lawful purpose. The work is made available under the Creative Commons CC0 (https://creativecommons.org/publicdomain/zero/1.0/) public domain dedication.
spellingShingle Research Article
Bachant, Peter
Wosnik, Martin
Gunawan, Budi
Neary, Vincent S.
Experimental Study of a Reference Model Vertical-Axis Cross-Flow Turbine
title Experimental Study of a Reference Model Vertical-Axis Cross-Flow Turbine
title_full Experimental Study of a Reference Model Vertical-Axis Cross-Flow Turbine
title_fullStr Experimental Study of a Reference Model Vertical-Axis Cross-Flow Turbine
title_full_unstemmed Experimental Study of a Reference Model Vertical-Axis Cross-Flow Turbine
title_short Experimental Study of a Reference Model Vertical-Axis Cross-Flow Turbine
title_sort experimental study of a reference model vertical-axis cross-flow turbine
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5042560/
https://www.ncbi.nlm.nih.gov/pubmed/27684076
http://dx.doi.org/10.1371/journal.pone.0163799
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