The effect of tip speed ratio on a vertical axis wind turbine at high Reynolds numbers

被引:53
作者
Parker, Colin M. [1 ]
Leftwich, Megan C. [1 ]
机构
[1] George Washington Univ, Dept Mech & Aerosp Engn, Washington, DC USA
关键词
WAKE;
D O I
10.1007/s00348-016-2155-3
中图分类号
TH [机械、仪表工业];
学科分类号
0802 ;
摘要
This work visualizes the flow surrounding a scaled model vertical axis wind turbine at realistic operating conditions. The model closely matches geometric and dynamic properties-tip speed ratio and Reynolds number-of a full-size turbine. The flow is visualized using particle imaging velocimetry (PIV) in the midplane upstream, around, and after (up to 4 turbine diameters downstream) the turbine, as well as a vertical plane behind the turbine. Time-averaged results show an asymmetric wake behind the turbine, regardless of tip speed ratio, with a larger velocity deficit for a higher tip speed ratio. For the higher tip speed ratio, an area of averaged flow reversal is present with a maximum reverse flow of -0.04U(infinity). Phase-averaged vorticity fields-achieved by syncing the PIV system with the rotation of the turbine-show distinct structures form from each turbine blade. There were distinct differences in results by tip speed ratios of 0.9, 1.3, and 2.2 of when in the cycle structures are shed into the wake-switching from two pairs to a single pair of vortices being shed-and how they convect into the wake-the middle tip speed ratio vortices convect downstream inside the wake, while the high tip speed ratio pair is shed into the shear layer of the wake. Finally, results show that the wake structure is much more sensitive to changes in tip speed ratio than to changes in Reynolds number.
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页数:11
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共 20 条
[1]   A comparison of wake measurements in motor-driven and flow-driven turbine experiments [J].
Araya, Daniel B. ;
Dabiri, John O. .
EXPERIMENTS IN FLUIDS, 2015, 56 (07)
[2]  
Association AWE, 2012, AWEA US WIND IND 1 Q
[3]  
Barsky D.A., 2014, AVIATION 2014 32 AIA
[4]   Evaluation of wind farm efficiency and wind turbine wakes at the Nysted offshore wind farm [J].
Barthelmie, R. J. ;
Jensen, L. E. .
WIND ENERGY, 2010, 13 (06) :573-586
[5]   Experimental study of the horizontally averaged flow structure in a model wind-turbine array boundary layer [J].
Cal, Raul Bayoan ;
Lebron, Jose ;
Castillo, Luciano ;
Kang, Hyung Suk ;
Meneveau, Charles .
JOURNAL OF RENEWABLE AND SUSTAINABLE ENERGY, 2010, 2 (01)
[6]   Vortex suppression and drag reduction in the wake of counter-rotating cylinders [J].
Chan, Andre S. ;
Dewey, Peter A. ;
Jameson, Antony ;
Liang, Chunlei ;
Smits, Alexander J. .
JOURNAL OF FLUID MECHANICS, 2011, 679 :343-382
[7]   Potential order-of-magnitude enhancement of wind farm power density via counter-rotating vertical-axis wind turbine arrays [J].
Dabiri, John O. .
JOURNAL OF RENEWABLE AND SUSTAINABLE ENERGY, 2011, 3 (04)
[8]   Placement of wind turbines using genetic algorithms [J].
Grady, SA ;
Hussaini, MY ;
Abdullah, MM .
RENEWABLE ENERGY, 2005, 30 (02) :259-270
[9]   Usage of advanced thick airfoils for the outer part of very large offshore turbines [J].
Grasso, F. ;
Ceyhan, O. .
SCIENCE OF MAKING TORQUE FROM WIND 2014 (TORQUE 2014), 2014, 524
[10]   Wind tunnel and numerical study of a small vertical axis wind turbine [J].
Howell, Robert ;
Qin, Ning ;
Edwards, Jonathan ;
Durrani, Naveed .
RENEWABLE ENERGY, 2010, 35 (02) :412-422