Large-eddy simulation of a very large wind farm in a stable atmospheric boundary layer

被引:247
|
作者
Lu, Hao [1 ]
Porte-Agel, Fernando [1 ,2 ]
机构
[1] Univ Minnesota Twin Cities, St Anthony Falls Lab, Minneapolis, MN 55414 USA
[2] Ecole Polytech Fed Lausanne, Sch Architecture Civil & Environm Engn ENAC, CH-1015 Lausanne, Switzerland
基金
瑞士国家科学基金会; 美国国家科学基金会;
关键词
atmospheric boundary layer; blades; boundary layer turbulence; Coriolis force; flow instability; flow simulation; jets; rotational flow; rotors; stratified flow; wakes; wind turbines; DEPENDENT DYNAMIC-MODEL; SUBGRID-SCALE MODELS; TURBINE WAKE; TURBULENCE; FLUXES; AERODYNAMICS; COEFFICIENTS; ROUGHNESS; TRANSPORT; PHYSICS;
D O I
10.1063/1.3589857
中图分类号
O3 [力学];
学科分类号
08 ; 0801 ;
摘要
When deployed as large arrays, wind turbines significantly interact among themselves and with the atmospheric boundary layer. In this study, we integrate a three-dimensional large-eddy simulation with an actuator line technique to examine the characteristics of wind-turbine wakes in an idealized wind farm inside a stable boundary layer (SBL). The wind turbines, with a rotor diameter of 112 m and a tower height of 119 m, were "immersed" in a well-known SBL case that bears a boundary layer height of approximately 175 m. Two typical spacing setups were adopted in this investigation. The super-geostrophic low-level jet near the top of the boundary layer was eliminated owing to the energy extraction and the enhanced mixing of momentum. Non-axisymmetric wind-turbine wakes were observed in response to the non-uniform incoming turbulence, the Coriolis effect, and the rotational effects induced by blade motion. The Coriolis force caused a skewed spatial structure and drove a part of the turbulence energy away from the center of the wake. The SBL height was increased, while the magnitude of the surface momentum flux was reduced by more than 30%, and the magnitude of the surface buoyancy flux was reduced by more than 15%. The wind farm was also found to have a strong effect on vertical turbulent fluxes of momentum and heat, an outcome that highlights the potential impact of wind farms on local meteorology. (C) 2011 American Institute of Physics. [doi: 10.1063/1.3589857]
引用
收藏
页数:19
相关论文
共 50 条
  • [31] Large Eddy Simulation of the Stable Boundary Layer
    Fuka, Vladimir
    Brechler, Josef
    FINITE VOLUMES FOR COMPLEX APPLICATIONS VI: PROBLEMS & PERSPECTIVES, VOLS 1 AND 2, 2011, 4 : 485 - 493
  • [32] Large-eddy simulation of a turbulent boundary layer with blowing
    Guillaume Brillant
    Françoise Bataille
    Frédéric Ducros
    Theoretical and Computational Fluid Dynamics, 2004, 17 : 433 - 443
  • [33] Large-eddy simulation of a turbulent boundary layer with blowing
    Brillant, G
    Bataille, FO
    Ducros, F
    THEORETICAL AND COMPUTATIONAL FLUID DYNAMICS, 2004, 17 (5-6) : 433 - 443
  • [34] Turbulent Winds and Temperature Fronts in Large-Eddy Simulations of the Stable Atmospheric Boundary Layer
    Sullivan, Peter P.
    Weil, Jeffrey C.
    Patton, Edward G.
    Jonker, Harmen J. J.
    Mironov, Dmitrii V.
    JOURNAL OF THE ATMOSPHERIC SCIENCES, 2016, 73 (04) : 1815 - 1840
  • [35] Large-eddy simulation of a concave wall boundary layer
    Center for Turbulence Research, Stanford University, Stanford, CA, United States
    不详
    Int J Heat Fluid Flow, 3 (290-295):
  • [36] Large-eddy simulation of a concave wall boundary layer
    Lund, TS
    Moin, P
    INTERNATIONAL JOURNAL OF HEAT AND FLUID FLOW, 1996, 17 (03) : 290 - 295
  • [37] Large-eddy simulation of a diurnal cycle of the atmospheric boundary layer: Atmospheric stability and scaling issues
    Kumar, Vijayant
    Kleissl, Jan
    Meneveau, Charles
    Parlange, Marc B.
    WATER RESOURCES RESEARCH, 2006, 42 (06)
  • [38] Turbulence and Vertical Fluxes in the Stable Atmospheric Boundary Layer. Part I: A Large-Eddy Simulation Study
    Huang, Jing
    Bou-Zeid, Elie
    JOURNAL OF THE ATMOSPHERIC SCIENCES, 2013, 70 (06) : 1513 - 1527
  • [39] Large-Eddy Simulation and Parameterization of Decaying Turbulence in the Evening Transition of the Atmospheric Boundary Layer
    E. V. Tkachenko
    A. V. Debolskiy
    E. V. Mortikov
    A. V. Glazunov
    Izvestiya, Atmospheric and Oceanic Physics, 2022, 58 : 219 - 236
  • [40] Large-Eddy Simulation of the Atmospheric Boundary Layer with Near-Wall Resolved Turbulence
    Freire, Livia S.
    BOUNDARY-LAYER METEOROLOGY, 2022, 184 (01) : 25 - 43