Combined Pitch and Trailing Edge Flap Control for Load Mitigation of Wind Turbines

被引:16
|
作者
He, Keshan [1 ,2 ]
Qi, Liangwen [1 ]
Zheng, Liming [1 ]
Chen, Yan [1 ]
机构
[1] Shantou Univ, Engn Coll, Shantou 515063, Peoples R China
[2] Shantou Polytech, Dept Mechatron Engn, Shantou 515078, Peoples R China
基金
中国国家自然科学基金;
关键词
wind energy; wind turbine; loads mitigation; combined pitch and trailing edge flap control; load frequency division control algorithm; individual pitch control; trailing edge flap control; SMART ROTOR; REDUCTION; RISO-B1-18; AIRFOIL;
D O I
10.3390/en11102519
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
Using active control methods for load mitigation in wind turbines could greatly reduce the cost of per kilowatt hour of wind power. In this work, the combined pitch and trailing edge flap control (CPFC) for load mitigation of wind turbines is investigated. The CPFC includes an individual pitch control (IPC) loop and a trailing edge flap control (TEFC) loop, which are combined by a load frequency division control algorithm. The IPC loop is mainly used to mitigate the low frequency loads, and the TEFC loop is mainly used to mitigate the high frequency loads. The CPFC adopts both an azimuth angle feed-forward and a loads feedback control strategy. The azimuth angle feed-forward control strategy should mitigate the asymmetrical loads caused by observable disturbances. and the loads feedback control strategy should decrease asymmetrical loads by closed loop control. A simulation is carried out on the joint platform of FAST and MATLAB. The simulation results show that the damage equivalent load (DEL) of blade root out-of-plane bending moment is reduced by 53.7% while using CPFC, compared to collective pitch control (CPC); and the standard deviation of blade tip out-of-plane deflection is reduced by 50.2% while using CPFC, compared to CPC. The results demonstrate that the CPFC can mitigate the fatigue loads of wind turbines as anticipated.
引用
收藏
页数:16
相关论文
共 50 条
  • [21] An investigation of variable power collective pitch control for load mitigation of floating offshore wind turbines
    Lackner, Matthew A.
    WIND ENERGY, 2013, 16 (04) : 519 - 528
  • [22] Individual Blade Pitch Control of Floating Offshore Wind Turbines for Load Mitigation and Power Regulation
    Sarkar, Saptarshi
    Fitzgerald, Breiffni
    Basu, Biswajit
    IEEE TRANSACTIONS ON CONTROL SYSTEMS TECHNOLOGY, 2021, 29 (01) : 305 - 315
  • [23] An investigation of variable power collective pitch control for load mitigation of floating offshore wind turbines
    Lackner, Matthew A.
    WIND ENERGY, 2013, 16 (03) : 435 - 444
  • [24] Observer based pitch control for load mitigation and power regulation of floating offshore wind turbines
    Fitzgerald, Breiffni
    Sarkar, Saptarshi
    XII INTERNATIONAL CONFERENCE ON STRUCTURAL DYNAMICS, EURODYN 2023, 2024, 2647
  • [25] Experimental testing on blade load mitigation of wind turbines with individual blade pitch control under wind shear
    Suemoto, Hiroki
    Hara, Naoyuki
    Nihei, Yasunori
    Konishi, Keiji
    2019 IEEE 4TH INTERNATIONAL CONFERENCE ON ADVANCED ROBOTICS AND MECHATRONICS (ICARM 2019), 2019, : 438 - 445
  • [26] H∞ Based Control for Load Mitigation in Wind Turbines
    Diaz de Corcuera, Asier
    Pujana-Arrese, Aron
    Ezquerra, Jose M.
    Segurola, Edurne
    Landaluze, Joseba
    ENERGIES, 2012, 5 (04): : 938 - 967
  • [27] Effect of morphed trailing-edge flap on aerodynamic load control for a wind turbine blade section
    Zhuang, Chen
    Yang, Gang
    Zhu, Yawei
    Hu, Dean
    RENEWABLE ENERGY, 2020, 148 : 964 - 974
  • [29] Nonlinear Pitch Control Design for Load Reduction on Wind Turbines
    Xiao, Shuai
    Yang, Geng
    Geng, Hua
    2014 INTERNATIONAL POWER ELECTRONICS CONFERENCE (IPEC-HIROSHIMA 2014 - ECCE-ASIA), 2014, : 543 - 547
  • [30] Proportional resonant individual pitch control for mitigation of wind turbines loads
    Zhang, Yunqian
    Chen, Zhe
    Cheng, Ming
    IET RENEWABLE POWER GENERATION, 2013, 7 (03) : 191 - 200