Implications of Stably Stratified Atmospheric Boundary Layer Turbulence on the Near-Wake Structure of Wind Turbines

被引:30
作者
Bhaganagar, Kiran [1 ]
Debnath, Mithu [1 ]
机构
[1] Univ Texas San Antonio, Dept Mech Engn, San Antonio, TX 78249 USA
基金
美国国家科学基金会;
关键词
wind turbine; atmospheric boundary layer (ABL); wake effects; turbulence; mixing layer; tip and root vortices; LARGE-EDDY-SIMULATION; TIP VORTICES; MODEL; AERODYNAMICS; STABILITY; VORTEX; FLOW;
D O I
10.3390/en7095740
中图分类号
TE [石油、天然气工业]; TK [能源与动力工程];
学科分类号
0807 ; 0820 ;
摘要
Turbulence structure in the wake behind a full-scale horizontal-axis wind turbine under the influence of real-time atmospheric inflow conditions has been investigated using actuator-line-model based large-eddy-simulations. Precursor atmospheric boundary layer (ABL) simulations have been performed to obtain mean and turbulence states of the atmosphere under stable stratification subjected to two different cooling rates. Wind turbine simulations have revealed that, in addition to wind shear and ABL turbulence, height-varying wind angle and low-level jets are ABL metrics that influence the structure of the turbine wake. Increasing stability results in shallower boundary layers with stronger wind shear, steeper vertical wind angle gradients, lower turbulence, and suppressed vertical motions. A turbulent mixing layer forms downstream of the wind turbines, the strength and size of which decreases with increasing stability. Height dependent wind angle and turbulence are the ABL metrics influencing the lateral wake expansion. Further, ABL metrics strongly impact the evolution of tip and root vortices formed behind the rotor. Two factors play an important role in wake meandering: tip vortex merging due to the mutual inductance form of instability and the corresponding instability of the turbulent mixing layer.
引用
收藏
页码:5740 / 5763
页数:24
相关论文
共 43 条
[1]   Stable-boundary-layer regimes from the perspective of the low-level jet [J].
Banta, Robert M. .
ACTA GEOPHYSICA, 2008, 56 (01) :58-87
[2]   Large-eddy simulation of stably stratified atmospheric boundary layer turbulence:: A scale-dependent dynamic modeling approach [J].
Basu, Sukanta ;
Porte-Agel, Fernando .
JOURNAL OF THE ATMOSPHERIC SCIENCES, 2006, 63 (08) :2074-2091
[3]  
Bhaganagar K., 2014, J RENEW SUSTAIN ENER
[4]  
Blackadar AK., 1957, Bulletin of the American Meteorological Society, V38, P283, DOI [10.1175/1520-0477-38.5.283, DOI 10.1175/1520-0477-38.5.283]
[5]   A Wind-Tunnel Investigation of Wind-Turbine Wakes: Boundary-Layer Turbulence Effects [J].
Chamorro, Leonardo P. ;
Porte-Agel, Fernando .
BOUNDARY-LAYER METEOROLOGY, 2009, 132 (01) :129-149
[6]  
Churchfield M.J., 2013, P 1 S OPENFOAM WIND
[7]  
Churchfield M.J., 2011, P 9 EUR WAV TID EN C
[8]   Mechanisms of evolution of the propeller wake in the transition and far fields [J].
Felli, M. ;
Camussi, R. ;
Di Felice, F. .
JOURNAL OF FLUID MECHANICS, 2011, 682 :5-53
[9]   Dynamic wind loads and wake characteristics of a wind turbine model in an atmospheric boundary layer wind [J].
Hu, Hui ;
Yang, Zifeng ;
Sarkar, Partha .
EXPERIMENTS IN FLUIDS, 2012, 52 (05) :1277-1294
[10]   Stability analysis of the tip vortices of a wind turbine [J].
Ivanell, Stefan ;
Mikkelsen, Robert ;
Sorensen, Jens N. ;
Henningson, Dan .
WIND ENERGY, 2010, 13 (08) :705-715