Experimental Study of the Wave Effects on a Ducted Twin Vertical Axis Tidal Turbine Wake Development

被引:0
作者
Linant, Robin [1 ,2 ]
Saouli, Yanis [1 ,2 ]
Germain, Gregory [1 ]
Maurice, Guillaume [2 ]
机构
[1] Ifremer, RDT Res & Technol Dev, F-62200 Boulogne Sur Mer, France
[2] HydroQuest SAS, 16 Chemin Malacher, F-38240 Meylan, France
关键词
tidal energy; vertical axis turbine; tank tests; surface waves; wake; turbulence; MARINE CURRENT TURBINES; TURBULENCE; PERFORMANCE; RESOURCE;
D O I
10.3390/jmse13020375
中图分类号
U6 [水路运输]; P75 [海洋工程];
学科分类号
0814 ; 081505 ; 0824 ; 082401 ;
摘要
Horizontal-axis turbines have been well-studied; however, there is a serious lack of information on the behaviour of vertical-axis turbines under unsteady operating conditions. Among unsteady flows, waves can cause significant mechanical fatigue and modify the flow downstream of the tidal turbines. Consequently, this paper aims to characterize the effects of waves on the hydrodynamic performance and wake development of a 1/20 scale model of a ducted twin vertical axis 1 MW-rated demonstrator. Power measurements were taken from the turbine and the velocity measurements downstream of the machine using a three-component Laser Doppler Velocimeter. The results show that, in the presence of waves, the mean wake characteristics present greater average height and width compared to the current-only condition. Moreover, the wake recovery happens faster downstream due to the sheared wake region homogenization, induced by the presence of higher intensity vortices. Through the Turbulence Kinetic Energy estimation, we also observe some increased fluctuations around the turbine and close to the free surface due to the presence of waves.
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页数:18
相关论文
共 27 条
[1]   Characterising the near-wake of a cross-flow turbine [J].
Bachant, Peter ;
Wosnik, Martin .
JOURNAL OF TURBULENCE, 2015, 16 (04) :392-410
[2]  
Bahaj A., 2007, P 7 EUR WAV TID EN C
[3]  
BREVIK I, 1980, COAST ENG, V3, P149
[4]   The effects of wave-current interaction on the performance of a model horizontal axis tidal turbine [J].
de Jesus Henriques, T. A. ;
Tedds, S. C. ;
Botsari, A. ;
Najafian, G. ;
Hedges, T. S. ;
Sutcliffe, C. J. ;
Owen, I. ;
Poole, R. J. .
INTERNATIONAL JOURNAL OF MARINE ENERGY, 2014, 8 :17-35
[5]   Rotational sampling of waves by tidal turbine blades [J].
Draycott, S. ;
Steynor, J. ;
Nambiar, A. ;
Sellar, B. ;
Venugopal, V. .
RENEWABLE ENERGY, 2020, 162 (162) :2197-2209
[6]   The impact of turbulence and turbine operating condition on the wakes of tidal turbines [J].
Ebdon, Tim ;
Allmark, Matthew J. ;
O'Doherty, Daphne M. ;
Mason-Jones, Allan ;
O'Doherty, Tim ;
Germain, Gregory ;
Gaurier, Benoit .
RENEWABLE ENERGY, 2021, 165 :96-116
[7]   Flume tank characterization of marine current turbine blade behaviour under current and wave loading [J].
Gaurier, Benoit ;
Davies, Peter ;
Deuff, Albert ;
Germain, Gregory .
RENEWABLE ENERGY, 2013, 59 :1-12
[8]   Quantifying the Effects of Wave-Current Interactions on Tidal Energy Resource at Sites in the English Channel Using Coupled Numerical Simulations [J].
Hardwick, Jon ;
Mackay, Ed B. L. ;
Ashton, Ian G. C. ;
Smith, Helen C. M. ;
Thies, Philipp R. .
ENERGIES, 2021, 14 (12)
[9]   On wave-current interaction in deep and finite water depths [J].
Kumar, Arun ;
Hayatdavoodi, Masoud .
JOURNAL OF OCEAN ENGINEERING AND MARINE ENERGY, 2023, 9 (03) :455-475
[10]   Resource assessment for future generations of tidal-stream energy arrays [J].
Lewis, M. ;
Neill, S. P. ;
Robins, P. E. ;
Hashemi, M. R. .
ENERGY, 2015, 83 :403-415