Analytical wake model of tidal current turbine

被引:54
作者
Lam, Wei-Haur [1 ,2 ]
Chen, Long [2 ]
Hashim, Roslan [2 ,3 ]
机构
[1] Tianjin Univ, State Key Lab Hydraul Engn Simulat & Safety, Tianjin, Peoples R China
[2] Univ Malaya, Fac Engn, Dept Civil Engn, Kuala Lumpur 50603, Malaysia
[3] Univ Malaya, Inst Ocean & Earth Sci, Kuala Lumpur 50603, Malaysia
关键词
Tidal-current turbine; Efflux velocity; Wake; MARINE CURRENT TURBINES; VELOCITY;
D O I
10.1016/j.energy.2014.11.047
中图分类号
O414.1 [热力学];
学科分类号
摘要
Prediction of the wake structure is important to understand the lee flow of a tidal current turbine. The proposed analytical wake model consists of several equations derived from the theoretical works of a ship propeller jet. Axial momentum theory was used to predict the minimum velocity at the immediate plane of the lee wake and followed by the proposed recovery equation to determine the minimum velocity at various lateral sections along the rotation axis. Gaussian probability distribution was used to predict the velocity distribution of lateral sections in a wake. Entire wake is able to be illustrated through the calculation of the efflux equation, recovery equation and lateral distribution equations. Authors' previous works proposed a simplified one-dipped velocity profile and this works were being extended to predict the two-dipped velocity profile with the consideration of hub effects. The wake model is validated by using the well-accepted experimental measurements and the goodness-of-fit test. The results demonstrated that the wake model is able to predict the wake profile under various ambient turbulence conditions of TI (turbulence intensity) = 3%, 5%, 8% and 15%. (C) 2014 Elsevier Ltd. All rights reserved.
引用
收藏
页码:512 / 521
页数:10
相关论文
共 21 条
[11]   Experimental characterisation of flow effects on marine current turbine behaviour and on its wake properties [J].
Maganga, F. ;
Germain, G. ;
King, J. ;
Pinon, G. ;
Rivoalen, E. .
IET RENEWABLE POWER GENERATION, 2010, 4 (06) :498-509
[12]  
Mycek P, 2011, 9 EUR WAV TID EN C S
[13]   Experimental study of the turbulence intensity effects on marine current turbines behaviour. Part I: One single turbine [J].
Mycek, Paul ;
Gaurier, Benoit ;
Germain, Gregory ;
Pinon, Gregory ;
Rivoalen, Elie .
RENEWABLE ENERGY, 2014, 66 :729-746
[14]   An experimental investigation simulating flow effects in first generation marine current energy converter arrays [J].
Myers, L. E. ;
Bahaj, A. S. .
RENEWABLE ENERGY, 2012, 37 (01) :28-36
[15]   Experimental analysis of the flow field around horizontal axis tidal turbines by use of scale mesh disk rotor simulators [J].
Myers, L. E. ;
Bahaj, A. S. .
OCEAN ENGINEERING, 2010, 37 (2-3) :218-227
[16]   Numerical simulation of the wake of marine current turbines with a particle method [J].
Pinon, Gregory ;
Mycek, Paul ;
Germain, Gregory ;
Rivoalen, Elie .
RENEWABLE ENERGY, 2012, 46 :111-126
[17]  
Prosser MJ., 1986, Propeller induced scour
[18]   Marine current energy devices: Current status and possible future applications in Ireland [J].
Rourke, Fergal O. ;
Boyle, Fergal ;
Reynolds, Anthony .
RENEWABLE & SUSTAINABLE ENERGY REVIEWS, 2010, 14 (03) :1026-1036
[19]   Marine renewable energy: The ecological implications of altering the hydrodynamics of the marine environment [J].
Shields, Mark A. ;
Woolf, David K. ;
Grist, Eric P. M. ;
Kerr, Sandy A. ;
Jackson, A. C. ;
Harris, Robert E. ;
Bell, Michael C. ;
Beharie, Robert ;
Want, Andrew ;
Osalusi, Emmanuel ;
Gibb, Stuart W. ;
Side, Jonathan .
OCEAN & COASTAL MANAGEMENT, 2011, 54 (01) :2-9
[20]  
Sun X., 2008, THESIS U EDINBURGH