Flow structures in wake of a pile-supported horizontal axis tidal stream turbine

Yes === This study presents results from laboratory experiments to investigate the wake structure in the lee side of a scaled three-bladed horizontal axis tidal stream turbine with a mono-pile support structure. Experiments are conducted for a range of approaching flow velocity and installation heig...

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Main Authors: Zhang, J., Lin, X., Wang, R., Guo, Yakun, Zhang, C., Zhang, Y.
Language:en
Published: 2020
Subjects:
Online Access:http://hdl.handle.net/10454/17796
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spelling ndltd-BRADFORD-oai-bradscholars.brad.ac.uk-10454-177962020-10-13T05:01:08Z Flow structures in wake of a pile-supported horizontal axis tidal stream turbine Zhang, J. Lin, X. Wang, R. Guo, Yakun Zhang, C. Zhang, Y. Wake flow Turbulence structures Mono-pile Tidal stream turbine Yes This study presents results from laboratory experiments to investigate the wake structure in the lee side of a scaled three-bladed horizontal axis tidal stream turbine with a mono-pile support structure. Experiments are conducted for a range of approaching flow velocity and installation height of rotor. Analysis of the results shows that bed shear stress increases with the increase of approaching velocity and decrease of installation height within 2D (D is the diameter of the rotor) downstream of the rotor. The flow field within 2D downstream of the rotor is greatly influenced by the presence of nacelle and mono-pile. Low stream-wise flow velocity and large turbulence intensity level is detected along the flume center right behind the nacelle and mono-pile from 1D to 2D downstream of the rotor. Stream-wise velocity at the blade tip height lower than the nacelle increases sharply from 1D to 2D and gradually grows afterwards. Correspondingly, the turbulence intensity decreases quickly from 1D to 2D and slowly afterwards. Large bed shear stress is measured from 1D to 2D, which is closely related to turbulence induced by the mono-pile. It is also found that the presence of the mono-pile might make the flow field more ‘disc-shaped’. National Key Research and Development Program of China (No.2017YFC1404200), the Marine Renewable Energy Research Project of State Oceanic Administration (No.GHME2015GC01), the Fundamental Research Funds for the Central Universities of China (No.2017B696X14) and the Postgraduate Research & Practice Innovation Program of Jiangsu Province, China (No.KYCX17_0448) 2020-05-12T10:24:18Z 2020-05-12T10:36:59Z 2020-05-12T10:24:18Z 2020-05-12T10:36:59Z 2020-03 2019-10-05 2019-10-09 2020-05-12T09:24:18Z Article Accepted Manuscript Zhang J, Lin X, Wang R et al (2020) Flow structures in wake of a pile-supported horizontal axis tidal stream turbine. Renewable Energy. 147(1): 2321-2334. http://hdl.handle.net/10454/17796 en https://doi.org/10.1016/j.renene.2019.10.017 © 2020 Elsevier. Reproduced in accordance with the publisher's self-archiving policy. This manuscript version is made available under the CC-BY-NC-ND 4.0 license.
collection NDLTD
language en
sources NDLTD
topic Wake flow
Turbulence structures
Mono-pile
Tidal stream turbine
spellingShingle Wake flow
Turbulence structures
Mono-pile
Tidal stream turbine
Zhang, J.
Lin, X.
Wang, R.
Guo, Yakun
Zhang, C.
Zhang, Y.
Flow structures in wake of a pile-supported horizontal axis tidal stream turbine
description Yes === This study presents results from laboratory experiments to investigate the wake structure in the lee side of a scaled three-bladed horizontal axis tidal stream turbine with a mono-pile support structure. Experiments are conducted for a range of approaching flow velocity and installation height of rotor. Analysis of the results shows that bed shear stress increases with the increase of approaching velocity and decrease of installation height within 2D (D is the diameter of the rotor) downstream of the rotor. The flow field within 2D downstream of the rotor is greatly influenced by the presence of nacelle and mono-pile. Low stream-wise flow velocity and large turbulence intensity level is detected along the flume center right behind the nacelle and mono-pile from 1D to 2D downstream of the rotor. Stream-wise velocity at the blade tip height lower than the nacelle increases sharply from 1D to 2D and gradually grows afterwards. Correspondingly, the turbulence intensity decreases quickly from 1D to 2D and slowly afterwards. Large bed shear stress is measured from 1D to 2D, which is closely related to turbulence induced by the mono-pile. It is also found that the presence of the mono-pile might make the flow field more ‘disc-shaped’. === National Key Research and Development Program of China (No.2017YFC1404200), the Marine Renewable Energy Research Project of State Oceanic Administration (No.GHME2015GC01), the Fundamental Research Funds for the Central Universities of China (No.2017B696X14) and the Postgraduate Research & Practice Innovation Program of Jiangsu Province, China (No.KYCX17_0448)
author Zhang, J.
Lin, X.
Wang, R.
Guo, Yakun
Zhang, C.
Zhang, Y.
author_facet Zhang, J.
Lin, X.
Wang, R.
Guo, Yakun
Zhang, C.
Zhang, Y.
author_sort Zhang, J.
title Flow structures in wake of a pile-supported horizontal axis tidal stream turbine
title_short Flow structures in wake of a pile-supported horizontal axis tidal stream turbine
title_full Flow structures in wake of a pile-supported horizontal axis tidal stream turbine
title_fullStr Flow structures in wake of a pile-supported horizontal axis tidal stream turbine
title_full_unstemmed Flow structures in wake of a pile-supported horizontal axis tidal stream turbine
title_sort flow structures in wake of a pile-supported horizontal axis tidal stream turbine
publishDate 2020
url http://hdl.handle.net/10454/17796
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