Title :
Individual pitch control design of wind turbines for load reduction using
Author :
Shuai Xiao ; Geng Yang ; Hua Geng
Author_Institution :
Dept. of Autom., Tsinghua Univ., Beijing, China
Abstract :
The modern large wind turbines (WTs) are subject to large asymmetric loads, as a result of rotational wind field sampling, wind shear, tower shadow and yaw misalignment. Such asymmetric loads will produce large fatigue damage to blades, hub, shaft and yaw bearing. To mitigate such problem, sliding mode control (SMC) is applied to design individual pitch control (IPC) strategy of WTs in this paper. First, an extended linear model of WT accounting for dynamics of actuators and integral of output errors is derived for control design. Afterwards, a SMC-based IPC strategy is proposed for asymmetric load reduction. Poles assignment method is used to design the SMC switching function, and terminal sliding mode method is utilized to obtain the control law. Finally, the control performance of proposed method is compared to traditional collective pitch control (CPC) and proportional-integral (PI)-based IPC through simulations using FAST software. The simulation results show that the proposed SMC-based IPC can further reduce asymmetric loads compared to CPC and PI-based IPC in both steady and turbulent wind conditions.
Keywords :
PI control; blades; control system synthesis; pole assignment; power generation control; shafts; variable structure systems; wind turbines; CPC method; FAST software; PI-based IPC; SMC switching function; SMC-based IPC strategy; actuator dynamics; asymmetric load reduction; blades; collective pitch control method; extended linear model; fatigue damage; hub; load reduction; pitch control design; pole assignment method; proportional-integral-based IPC; rotational wind field sampling; shaft; sliding mode control method; steady wind condition; terminal sliding mode method; tower shadow; turbulent wind condition; wind shear; wind turbines; yaw bearing; yaw misalignment; Load modeling; Software packages; Switches; individual pitch control (IPC); load reduction; sliding mode control (SMC); wind turbines;
Conference_Titel :
ECCE Asia Downunder (ECCE Asia), 2013 IEEE
Conference_Location :
Melbourne, VIC
Print_ISBN :
978-1-4799-0483-9
DOI :
10.1109/ECCE-Asia.2013.6579101