Multi-scale/fractal processes in the wake of a wind turbine array boundary layer

被引:14
|
作者
Ali, Naseem [1 ]
Fuchs, Andre [2 ]
Neunaber, Ingrid [2 ]
Peinke, Joachim [2 ]
Cal, Raul Bayoan [1 ]
机构
[1] Portland State Univ, Dept Mech & Mat Engn, Portland, OR 97207 USA
[2] Carl von Ossietzky Univ Oldenburg, Inst Phys, ForWind, Oldenburg, Germany
来源
JOURNAL OF TURBULENCE | 2019年 / 20卷 / 02期
关键词
Atmospheric turbulence; chaos and fractals; small scale intermittency; VELOCITY-INTERMITTENCY STRUCTURE; TIME-DOMAIN CHARACTERIZATION; REYNOLDS STRESS; MULTIFRACTAL FORMALISM; TURBULENT CASCADE; STATISTICS; MODEL; POWER; INFORMATION; HYPOTHESIS;
D O I
10.1080/14685248.2019.1590584
中图分类号
O3 [力学];
学科分类号
08 ; 0801 ;
摘要
Multi-scale statistics are used to analyse the flow structure of wake flow in the boundary layer of a wind turbine array. Experimentally, a wind turbine array is tested with X-type hot-wire anemometry, providing a velocity signal at discrete locations downstream of the array along the centreline of the centre turbine. Based on the Markov property, the turbulent cascade can be taken as a stochastic process in scale, for which an underlying Fokker-Planck equation and its Kramers-Moyal coefficients are assigned. The first two terms of the Kramers-Moyal expansion (drift and diffusion coefficients) are estimated directly from the measured data by an optimisation procedure, which includes reconstruction of the joint probability density functions via short-time propagator. To quantify the accuracy of estimated the Fokker-Planck equation for describing the turbulent cascade process, the validity of a fundamental law of nonequilibrium thermodynamics named integral fluctuation theorem is verified. The results highlight that multi-scale analysis separates the stochastic cascade into universal and non-universal portions with respect to physical location downstream of the rotor. In addition, the Kramer-Moyal coefficients reveal the impact of a specific generation mechanism of turbulence and its large and small scale motions. Velocity-intermittency quadrant method is used to characterise the flow structure of the wake flow. Multifractal framework presents the intermittency as a pointwise Holder exponent. The relationship between large and small scales in wake flow is considered by quantifying the impact of the small scales on the large scales in terms of the pointwise Holder condition. A negative correlation between the velocity and the intermittency is shown at the hub height and bottom tip, whereas the top tip regions show a positive correlation. The second and fourth quadrants are dominant downstream from the rotor. The pointwise results reflect large-scale organisation of the flow and velocity-intermittency events corresponding to a foreshortened recirculation region near the hub height and the bottom tip. A linear regression approach based on the Gram-Charlier series expansion of the joint probability density function is used to model the contribution of the second and fourth quadrants arriving at an excellent agreement between the model and the experiment. The model shows the best fit with the correlation of 0.9864.
引用
收藏
页码:93 / 120
页数:28
相关论文
共 50 条
  • [1] Multi-scale modeling of a wind turbine wake in complex terrain
    Kale, Baris
    Buckingham, Sophia
    van Beeck, Jeroen
    Cuerva-Tejero, Alvaro
    WAKE CONFERENCE 2023, 2023, 2505
  • [2] UNCERTAINTY ANALYSIS IN A SCALE MODEL WIND TURBINE ARRAY BOUNDARY LAYER
    Turner, John J., V
    Wosnik, Martin
    PROCEEDINGS OF THE ASME FLUIDS ENGINEERING DIVISION SUMMER MEETING, 2017, VOL 1B, 2017,
  • [3] Multi-scale Fractal Characteristics of Atmospheric Boundary-Layer Turbulence
    Li Xin
    Hu Fei
    Liu Gang
    Hong Zhongxiang
    Advances in Atmospheric Sciences, 2001, 18 (5) : 787 - 792
  • [4] Multi-scale fractal characteristics of atmospheric boundary-layer turbulence
    Liu, G
    Hong, ZX
    ADVANCES IN ATMOSPHERIC SCIENCES, 2001, 18 (05) : 787 - 792
  • [5] Wake meandering in a model wind turbine array in a high Reynolds number turbulent boundary layer
    Turner, John J., V
    Wosnik, Martin
    NAWEA WINDTECH 2019, 2020, 1452
  • [6] The effect of the boundary layer on the wake of a horizontal axis wind turbine
    Sedaghatizadeh, Nima
    Arjomandi, Maziar
    Kelso, Richard
    Cazzolato, Benjamin
    Ghayesh, Mergen H.
    ENERGY, 2019, 182 : 1202 - 1221
  • [7] MULTI-SCALE FRICTION MODELING FOR MANUFACTURING PROCESSES: THE BOUNDARY LAYER REGIME
    Hol, J.
    Karupannasamy, D. K.
    Meinders, T.
    PROCEEDINGS OF THE ASME INTERNATIONAL MANUFACTURING SCIENCE AND ENGINEERING CONFERENCE, 2012, 2012, : 1077 - 1086
  • [8] Streamwise development of the wind turbine boundary layer over a model wind turbine array
    Newman, Jensen
    Lebron, Jose
    Meneveau, Charles
    Castillo, Luciano
    PHYSICS OF FLUIDS, 2013, 25 (08)
  • [9] On the interaction of a wind turbine wake with a conventionally neutral atmospheric boundary layer
    Hodgkin, Amy
    Deskos, Georgios
    Laizet, Sylvain
    INTERNATIONAL JOURNAL OF HEAT AND FLUID FLOW, 2023, 102
  • [10] POD Analysis of a Wind Turbine Wake in a Turbulent Atmospheric Boundary Layer
    Bastine, D.
    Witha, B.
    Waechter, M.
    Peinke, J.
    SCIENCE OF MAKING TORQUE FROM WIND 2014 (TORQUE 2014), 2014, 524