The characteristics of helically deflected wind turbine wakes

被引:15
|
作者
Korb, H. [1 ]
Asmuth, H. [1 ,2 ]
Ivanell, S. [1 ]
机构
[1] Uppsala Univ, Dept Earth Sci, Wind Energy Sect, S-62167 Visby, Sweden
[2] Carl von Ossietzky Univ Oldenburg, Inst Phys, ForWind Ctr Wind Energy Res, D-26129 Oldenburg, Germany
关键词
wakes; mixing enhancement; turbulent mixing; LATTICE BOLTZMANN METHOD; FARM CONTROL; CURLED WAKE; FLOW; TURBULENT; POWER; PARAMETRIZATION; SIMULATIONS; INSTABILITY; MODEL;
D O I
10.1017/jfm.2023.390
中图分类号
O3 [力学];
学科分类号
08 ; 0801 ;
摘要
The helix approach is a new individual pitch control method to mitigate wake effects of wind turbines. Its name is derived from the helical shape of the wake caused by a rotating radial force exerted by the turbine. While its potential to increase power production has been shown in previous studies, the physics of the helical wake are not well understood to date. Open questions include whether the increased momentum in the wake stems from an enhanced wake mixing or from the wake deflection. Furthermore, its application to a row of more than two turbines has not been examined before. We study this approach in depth from both an analytical and numerical perspective. We examine large-eddy simulations (LES) of the wake of a single turbine and find that the helix approach exhibits both higher entrainment and notable deflection. As for the application to a row of turbines, we show that the phase difference between two helical wakes is independent of ambient turbulence. Examination of LES of a row of three turbines shows that power gains greatly depend on the phase difference between the helices. We find a maximum increase in the total power of approximately 10 % at a phase difference of 270?. However, we do not optimise the phase difference any further. In summary, we provide a set of analytical tools for the examination of helical wakes, show why the helix approach is able to increase power production, and provide a method to extend it to a wind farm.
引用
收藏
页数:38
相关论文
共 50 条
  • [31] Field Measurements of Wind Turbine Wakes with Lidars
    Iungo, Giacomo Valerio
    Wu, Yu-Ting
    Porte-Agel, Fernando
    JOURNAL OF ATMOSPHERIC AND OCEANIC TECHNOLOGY, 2013, 30 (02) : 274 - 287
  • [32] A CFD code comparison of wind turbine wakes
    van der Laan, M. P.
    Storey, R. C.
    Sorensen, N. N.
    Norris, S. E.
    Cater, J. E.
    SCIENCE OF MAKING TORQUE FROM WIND 2014 (TORQUE 2014), 2014, 524
  • [33] Effects of yaw on the wakes evolution of a wind turbine in wind tunnel
    Zhang, Lidong
    Tie, Hao
    Zhao, Yuze
    Liu, Huiwen
    Tian, Wenxin
    Zhao, Xiuyong
    Chang, Zihan
    Li, Qinwei
    RENEWABLE ENERGY, 2025, 245
  • [34] Wind turbine wakes on escarpments: A wind-tunnel study
    Dar, Arslan Salim
    Porte-Agel, Fernando
    RENEWABLE ENERGY, 2022, 181 : 1258 - 1275
  • [35] Upward Shift of Wind Turbine Wakes in Large Wind Farms
    Wang, Zewei
    Yang, Xiaolei
    ENERGIES, 2023, 16 (24)
  • [36] UNDERSTANDING THE INFLUENCE OF TURBINE GEOMETRY AND ATMOSPHERIC TURBULENCE ON WIND TURBINE WAKES
    Gu, Ping
    Kuo, Jim Y. J.
    Romero, David A.
    Amon, Cristina H.
    PROCEEDINGS OF THE ASME INTERNATIONAL MECHANICAL ENGINEERING CONGRESS AND EXPOSITION, 2016, VOL. 6B, 2017,
  • [37] An Analytical Model for the Effect of Vertical Wind Veer on Wind Turbine Wakes
    Abkar, Mandi
    Sorensen, Jens Norkaer
    Porte-Agel, Fernando
    ENERGIES, 2018, 11 (07):
  • [38] How realistic are the wakes of scaled wind turbine models?
    Wang, Chengyu
    Campagnolo, Filippo
    Canet, Helena
    Barreiro, Daniel J.
    Bottasso, Carlo L.
    WIND ENERGY SCIENCE, 2021, 6 (03) : 961 - 981
  • [39] A numerical study of rainfall effects on wind turbine wakes
    Yang, Xuefeng
    Yu, Peining
    Sui, Yi
    Chen, Shengli
    Xing, Jiuxing
    Li, Lei
    RENEWABLE ENERGY, 2024, 230
  • [40] On the spread and decay of wind turbine wakes in ambient turbulence
    Johnson, P. B.
    Johnsson, C.
    Achilleos, S.
    Eames, I.
    SCIENCE OF MAKING TORQUE FROM WIND 2012, 2014, 555