Numerical simulations of fatigue loads on wind turbines operating in wakes

被引:20
作者
Liu, Zhenqing [1 ]
Li, Qiuming [1 ]
Ishihara, Takeshi [2 ]
Peng, Jie [1 ]
机构
[1] Huazhong Univ Sci & Technol, Sch Civil Engn & Mech, Inst Computat Wind Engn & Wind Energy, Wuhan 410082, Hubei, Peoples R China
[2] Univ Tokyo, Sch Engn, Dept Civil Engn, Tokyo, Japan
关键词
blade element method; dynamic response; fatigue load; LES; wake flow; wake model; ACTUATOR DISC; TURBULENCE; MODEL; BLADES; OPTIMIZATION; PREDICTION; VIBRATIONS;
D O I
10.1002/we.2487
中图分类号
TE [石油、天然气工业]; TK [能源与动力工程];
学科分类号
0807 ; 0820 ;
摘要
Wake effects increase the fatigue loads on wind turbines in operation. However, the wake flow is considerably different from the traditional boundary layer flow, and poses many challenges in determining the fatigue loads on wind turbines operating in a wake. Therefore, in the present study, the actuator-line model was adopted to numerically simulate the wake flow and an in-house code named AOWT, which is based on a generalized coordinate method, was developed for analyzing the dynamics of wind turbines under an arbitrary distribution of the turbulent flow field varying in time and space. Using the numerically modeled instantaneous wake flow fields and AOWT, the dynamic response of a wind turbine, located at specified positions in both tandem and staggered arrangements in a wake, was examined, and the fatigue loads were determined. Furthermore, to determine the major contributions to the fatigue loads, the loads induced by the spatial variation of the mean flow fields were predicted. To the best of the authors' knowledge, no such analysis has been conducted thus far. Importantly, it was found that in the near-wake region, the mean flow field had a significant influence on the fatigue loads, especially in the staggered layout. However, there is no analytical wake model available in the literature capable of predicting the near-wake mean flow fields. Therefore, in this study, a near-wake model was proposed, which yielded satisfactory predictions of the mean velocities in the near-wake region.
引用
收藏
页码:1301 / 1316
页数:16
相关论文
共 54 条
[31]   Wind field simulation and wind-induced responses of large wind turbine tower-blade coupled structure [J].
Ke, S. T. ;
Ge, Y. J. ;
Wang, T. G. ;
Cao, J. F. ;
Tamura, Y. .
STRUCTURAL DESIGN OF TALL AND SPECIAL BUILDINGS, 2015, 24 (08) :571-590
[32]   Wind-induced fatigue of large HAWT coupled tower-blade structures considering aeroelastic and yaw effects [J].
Ke, Shitang ;
Wang, Tongguang ;
Ge, Yaojun ;
Wang, Hao .
STRUCTURAL DESIGN OF TALL AND SPECIAL BUILDINGS, 2018, 27 (09)
[33]   Two improvements to the dynamic wake meandering model: including the effects of atmospheric shear on wake turbulence and incorporating turbulence build-up in a row of wind turbines [J].
Keck, Rolf-Erik ;
de Mare, Martin ;
Churchfield, Matthew J. ;
Lee, Sang ;
Larsen, Gunner ;
Madsen, Helge Aagaard .
WIND ENERGY, 2015, 18 (01) :111-132
[34]   A study of the wake effects on the wind characteristics and fatigue loads for the turbines in a wind farm [J].
Kim, Soo-Hyun ;
Shin, Hyung-Ki ;
Joo, Young-Chul ;
Kim, Keon-Hoon .
RENEWABLE ENERGY, 2015, 74 :536-543
[35]   Wake meandering: A pragmatic approach [J].
Larsen, Gunner C. ;
Madsen, Helge Aa. ;
Thomsen, Kenneth ;
Larsen, Torben J. .
WIND ENERGY, 2008, 11 (04) :377-395
[36]   Validation of the dynamic wake meander model for loads and power production in the Egmond aan Zee wind farm [J].
Larsen, Torben J. ;
Madsen, Helge Aa. ;
Larsen, Gunner C. ;
Hansen, Kurt S. .
WIND ENERGY, 2013, 16 (04) :605-624
[37]   A Numerical Study of Atmospheric and Wake Turbulence Impacts on Wind Turbine Fatigue Loadings [J].
Lee, S. ;
Churchfield, M. J. ;
Moriarty, P. J. ;
Jonkman, J. ;
Michalakes, J. .
JOURNAL OF SOLAR ENERGY ENGINEERING-TRANSACTIONS OF THE ASME, 2013, 135 (03)
[38]   Potential load reductions on megawatt turbines exposed to wakes using individual-pitch wake compensator and trailing-edge flaps [J].
Markou, Helen ;
Andersen, Peter Bjorn ;
Larsen, Gunner Chr .
WIND ENERGY, 2011, 14 (07) :841-857
[39]   Optimal smoothing length scale for actuator line models of wind turbine blades based on Gaussian body force distribution [J].
Martinez-Tossas, L. A. ;
Churchfield, M. J. ;
Meneveau, C. .
WIND ENERGY, 2017, 20 (06) :1083-1096
[40]   Large eddy simulations of the flow past wind turbines: actuator line and disk modeling [J].
Martinez-Tossas, Luis A. ;
Churchfield, Matthew J. ;
Leonardi, Stefano .
WIND ENERGY, 2015, 18 (06) :1047-1060