The effects of surge motion on floating horizontal axis tidal turbines
Wave induced motions due to actual sea state conditions will impact the performance of floating horizontal axis tidal turbine systems. This paper presents the results from numerical simulations of a 3-bladed horizontal axis tidal turbine oscillating in surge motion in a moving reference frame. The...
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European Wave and Tidal Energy Conference
2020-09-01
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doaj-91b7cc9f235642e79e47af7ede3347d72021-05-26T06:08:03ZengEuropean Wave and Tidal Energy ConferenceInternational Marine Energy Journal2631-55482020-09-013210.36688/imej.3.45-54The effects of surge motion on floating horizontal axis tidal turbinesMohamad OsmanRichard H. J. Willden0Christopher R. VogelUniversity of Oxford Wave induced motions due to actual sea state conditions will impact the performance of floating horizontal axis tidal turbine systems. This paper presents the results from numerical simulations of a 3-bladed horizontal axis tidal turbine oscillating in surge motion in a moving reference frame. The optimum tip-speed ratio, λ = 4.4 and k-ω SST turbulence model were used in the present study. The Navier-Stokes equation was modified by adding an inertial term to the equation and the Dirichlet boundary condition was also modified in order to simulate in the moving reference frame. The surge oscillations were parameterised in terms of the ratio of surge amplitude to rotor radius, A*, and the ratio of oscillation frequency to the rotational frequency of the rotor, ω*. A series of tests were conducted to study the effect of each parameter on the hydrodynamic performance of the tidal turbine. The results show that stall can occur on the blade when the velocity relative to the rotor is sufficiently high. In certain cases, negative thrust and power coefficients were observed when the velocity relative to the rotor is low. The fluctuation in blade loading increases together with the amplitude and frequency of oscillation, which will contribute to the fatigue of the rotor. http://marineenergyjournal.org/imej/article/view/52Floating tidal turbineOpenFOAMComputational Fluid DynamicsNon-inertial reference frame |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Mohamad Osman Richard H. J. Willden Christopher R. Vogel |
spellingShingle |
Mohamad Osman Richard H. J. Willden Christopher R. Vogel The effects of surge motion on floating horizontal axis tidal turbines International Marine Energy Journal Floating tidal turbine OpenFOAM Computational Fluid Dynamics Non-inertial reference frame |
author_facet |
Mohamad Osman Richard H. J. Willden Christopher R. Vogel |
author_sort |
Mohamad Osman |
title |
The effects of surge motion on floating horizontal axis tidal turbines |
title_short |
The effects of surge motion on floating horizontal axis tidal turbines |
title_full |
The effects of surge motion on floating horizontal axis tidal turbines |
title_fullStr |
The effects of surge motion on floating horizontal axis tidal turbines |
title_full_unstemmed |
The effects of surge motion on floating horizontal axis tidal turbines |
title_sort |
effects of surge motion on floating horizontal axis tidal turbines |
publisher |
European Wave and Tidal Energy Conference |
series |
International Marine Energy Journal |
issn |
2631-5548 |
publishDate |
2020-09-01 |
description |
Wave induced motions due to actual sea state conditions will impact the performance of floating horizontal axis tidal turbine systems. This paper presents the results from numerical simulations of a 3-bladed horizontal axis tidal turbine oscillating in surge motion in a moving reference frame. The optimum tip-speed ratio, λ = 4.4 and k-ω SST turbulence model were used in the present study. The Navier-Stokes equation was modified by adding an inertial term to the equation and the Dirichlet boundary condition was also modified in order to simulate in the moving reference frame. The surge oscillations were parameterised in terms of the ratio of surge amplitude to rotor radius, A*, and the ratio of oscillation frequency to the rotational frequency of the rotor, ω*. A series of tests were conducted to study the effect of each parameter on the hydrodynamic performance of the tidal turbine. The results show that stall can occur on the blade when the velocity relative to the rotor is sufficiently high. In certain cases, negative thrust and power coefficients were observed when the velocity relative to the rotor is low. The fluctuation in blade loading increases together with the amplitude and frequency of oscillation, which will contribute to the fatigue of the rotor.
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topic |
Floating tidal turbine OpenFOAM Computational Fluid Dynamics Non-inertial reference frame |
url |
http://marineenergyjournal.org/imej/article/view/52 |
work_keys_str_mv |
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