A nonlinear model for aerodynamic configuration of wake behind horizontal-axis wind turbine

被引:0
|
作者
Deshun LI [1 ,2 ,3 ]
Tao GUO [1 ,2 ,3 ]
Rennian LI [1 ,2 ,3 ]
Congxin YANG [1 ,2 ,3 ]
Zhaoxue CHENG [1 ,2 ,3 ]
Ye LI [4 ,5 ,6 ,7 ]
Wenrui HU [8 ]
机构
[1] College of Energy and Power Engineering,Lanzhou University of Technology
[2] Gansu Provincial Technology Centre for Wind Turbines
[3] Gansu Provincial Key Laboratory of Fluid Machinery and Systems
[4] School of Naval Architecture,Ocean and Civil Engineering,Shanghai Jiao Tong University
[5] State Key Laboratory of Ocean Engineering,School of Naval Architecture,Ocean and Civil Engineering,Shanghai Jiao Tong University
[6] Collaborative Innovation Center for Advanced Ship and Deep-Sea Exploration,Shanghai Jiao Tong University
[7] Key Laboratory of Hydrodynamics (Ministry of Education),Shanghai Jiao Tong University
[8] Institute of Mechanics,Chinese Academy of Sciences
基金
中国国家自然科学基金;
关键词
nonlinear wake aerodynamic model; vortex-induced velocity; integral equation of vortex-induced velocity; horizontal-axis wind turbine;
D O I
暂无
中图分类号
TM315 [风力发电机];
学科分类号
摘要
Determination of the aerodynamic configuration of wake is the key to analysis and evaluation of the rotor aerodynamic characteristics of a horizontal-axis wind turbine.According to the aerodynamic configuration, the real magnitude and direction of the onflow velocity at the rotor blade can be determined, and subsequently, the aerodynamic force on the rotor can be determined. The commonly employed wake aerodynamic models are of the cylindrical form instead of the actual expanding one. This is because the influence of the radial component of the induced velocity on the wake configuration is neglected. Therefore, this model should be called a "linear model". Using this model means that the induced velocities at the rotor blades and aerodynamic loads on them would be inexact. An approximately accurate approach is proposed in this paper to determine the so-called "nonlinear" wake aerodynamic configuration by means of the potential theory,where the influence of all three coordinate components of the induced velocity on wake aerodynamic configuration is taken into account to obtain a kind of expanding wake that approximately looks like an actual one. First, the rotor aerodynamic model composed of axial(central), bound, and trailing vortexes is established with the help of the finite aspect wing theory. Then, the Biot-Savart formula for the potential flow theory is used to derive a set of integral equations to evaluate the three components of the induced velocity at any point within the wake. The numerical solution to the integral equations is found,and the loci of all elementary trailing vortex filaments behind the rotor are determined thereafter. Finally, to formulate an actual wind turbine rotor, using the nonlinear wake model, the induced velocity everywhere in the wake, especially that at the rotor blade,is obtained in the case of various tip speed ratios and compared with the wake boundary in a neutral atmospheric boundary layer. Hereby, some useful and referential conclusions are offered for the aerodynamic computation and design of the rotor of the horizontal-axis wind turbine.
引用
收藏
页码:1313 / 1326
页数:14
相关论文
共 50 条
  • [41] Aerodynamic design and analysis of a 10 kW horizontal-axis wind turbine for Tainan, Taiwan
    Bai, Chi-Jeng
    Chen, Po-Wei
    Wang, Wei-Cheng
    CLEAN TECHNOLOGIES AND ENVIRONMENTAL POLICY, 2016, 18 (04) : 1151 - 1166
  • [42] Experimental investigations and aerodynamic shape optimization of small horizontal-axis wind turbine blades
    Chaudhary, Manoj Kumar
    Prakash, S.
    TRANSACTIONS OF THE CANADIAN SOCIETY FOR MECHANICAL ENGINEERING, 2021, 45 (04) : 594 - 603
  • [43] Modelling the nacelle wake of a horizontal-axis wind turbine under different yaw conditions
    Gao, Zhiteng
    Li, Ye
    Wang, Tongguang
    Shen, Wenzhong
    Zheng, Xiaobo
    Probsting, Stefan
    Li, Deshun
    Li, Rennian
    RENEWABLE ENERGY, 2021, 172 : 263 - 275
  • [44] Wake prediction of horizontal-axis wind turbine using full-rotor modeling
    AbdelSalam, Ali M.
    Ramalingam, Velraj
    JOURNAL OF WIND ENGINEERING AND INDUSTRIAL AERODYNAMICS, 2014, 124 : 7 - 19
  • [45] AERODYNAMIC PERFORMANCE ANALYSIS OF HORIZONTAL-AXIS WIND TURBINES
    MORCOS, VH
    RENEWABLE ENERGY, 1994, 4 (05) : 505 - 518
  • [46] Numerical optimization of horizontal-axis wind turbine blades with surrogate model
    Wang, Haipeng
    Jiang, Xiao
    Chao, Yun
    Li, Qian
    Li, Mingzhou
    Chen, Tao
    Ouyang, Weirui
    PROCEEDINGS OF THE INSTITUTION OF MECHANICAL ENGINEERS PART A-JOURNAL OF POWER AND ENERGY, 2021, 235 (05) : 1173 - 1186
  • [47] WAKE MEASUREMENTS BEHIND A LARGE HORIZONTAL AXIS WIND TURBINE GENERATOR.
    Baker, Robert W.
    Walker, Stel N.
    Solar energy, 1984, 33 (01) : 5 - 12
  • [48] A measurement of the three-dimensional near-wake velocity field of a model horizontal-axis wind turbine
    Hu, Danmei
    Ren, Jianxing
    Du, Zhaohui
    CHALLENGES OF POWER ENGINEERING AND ENVIRONMENT, VOLS 1 AND 2, 2007, : 1078 - +
  • [49] The starting behaviour of a small horizontal-axis wind turbine
    Mayer, C
    Bechly, ME
    Hampsey, M
    Wood, DH
    RENEWABLE ENERGY, 2001, 22 (1-3) : 411 - 417
  • [50] Aerodynamic performance prediction of SG6043 airfoil for a horizontal-axis small wind turbine
    Shin, Pyungho
    Kim, Keonhoon
    NAWEA WINDTECH 2019, 2020, 1452