Modelling turbulence in axisymmetric wakes: an application to wind turbine wakes

被引:0
|
作者
Bastankhah, Majid [1 ]
Zunder, Jenna K. [1 ]
Hydon, Peter E. [2 ]
Deebank, Charles [3 ]
Placidi, Marco [3 ]
机构
[1] Univ Durham, Dept Engn, Durham DH1 3LE, England
[2] Univ Kent, Sch Math Stat & Actuarial Sci, Canterbury CT2 7NF, England
[3] Univ Surrey, EnFlo Res Ctr, Guildford GU2 7XH, England
基金
英国工程与自然科学研究理事会;
关键词
wakes; turbulence modelling; BOUNDARY-LAYER; FLOW STRUCTURE; SIMULATION; MOMENTUM; NUMBER;
D O I
10.1017/jfm.2024.664
中图分类号
O3 [力学];
学科分类号
08 ; 0801 ;
摘要
A novel fast-running model is developed to predict the three-dimensional (3-D) distribution of turbulent kinetic energy (TKE) in axisymmetric wake flows. This is achieved by mathematically solving the partial differential equation of the TKE transport using the Green's function method. The developed solution reduces to a double integral that can be computed numerically for a wake prescribed by any arbitrary velocity profile. It is shown that the solution can be further simplified to a single integral for wakes with Gaussian-like velocity-deficit profiles. Wind tunnel experiments were performed to compare model results against detailed 3-D laser Doppler anemometry data measured within the wake flow of a porous disk subject to a uniform free-stream flow. Furthermore, the new model is used to estimate the TKE distribution at the hub-height level of the rotating non-axisymmetric wake of a model wind turbine immersed in a rough-wall boundary layer. Our results show the important impact of operating conditions on TKE generation in wake flows, an effect not fully captured by existing empirical models. The wind-tunnel data also provide insights into the evolution of important turbulent flow quantities such as turbulent viscosity, mixing length and the TKE dissipation rate in wake flows. Both mixing length and turbulent viscosity are found to increase with the streamwise distance. The turbulent viscosity, however, reaches a plateau in the far-wake region. Consistent with the non-equilibrium theory, it is also observed that the normalised energy dissipation rate is not constant, and it increases with the streamwise distance.
引用
收藏
页数:19
相关论文
共 50 条
  • [1] Anisotropy of turbulence in wind turbine wakes
    Gómez-Elvira, R
    Crespo, A
    Migoya, E
    Manuel, F
    Hernández, J
    JOURNAL OF WIND ENGINEERING AND INDUSTRIAL AERODYNAMICS, 2005, 93 (10) : 797 - 814
  • [2] Turbulence characteristics in wind-turbine wakes
    Crespo, A
    Hernandez, J
    JOURNAL OF WIND ENGINEERING AND INDUSTRIAL AERODYNAMICS, 1996, 61 (01) : 71 - 85
  • [3] APPLICATION OF TURBULENCE MODEL EQUATIONS TO AXISYMMETRIC WAKES
    LEWELLEN, WS
    TESKE, M
    DONALDSON, CD
    AIAA JOURNAL, 1974, 12 (05) : 620 - 625
  • [4] DECAY OF TURBULENCE IN AXISYMMETRIC WAKES
    HWANG, NHC
    BALDWIN, LB
    MECHANICAL ENGINEERING, 1965, 87 (08) : 57 - &
  • [5] Modelling wind turbine wakes with a porosity concept
    Aubrun, Sandrine
    Wind Energy, 2007, : 265 - 269
  • [6] DECAY OF TURBULENCE IN AXISYMMETRIC WAKES
    HWANG, NHC
    BALDWIN, LV
    JOURNAL OF BASIC ENGINEERING, 1966, 88 (01): : 261 - &
  • [7] 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
  • [8] Turbulence-resolving simulations of wind turbine wakes
    Deskos, Georgios
    Laizet, Sylvain
    Piggott, Matthew D.
    RENEWABLE ENERGY, 2019, 134 : 989 - 1002
  • [9] 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,
  • [10] Modelling and measurements of power losses and turbulence intensity in wind turbine wakes at Middelgrunden offshore wind farm
    Barthelmie, R. J.
    Frandsen, S. T.
    Nielsen, M. N.
    Pryor, S. C.
    Rethore, P. -E.
    Jorgensen, H. E.
    WIND ENERGY, 2007, 10 (06) : 517 - 528