DocumentCode :
3483614
Title :
Anti-windup LPV control of pitch actuators in wind turbines
Author :
Meisami-Azad, M. ; Mohammadpour, Javad ; Grigoriadis, Karolos
Author_Institution :
Mech. Eng. Dept., Univ. of Houston, Houston, TX, USA
fYear :
2012
fDate :
27-29 June 2012
Firstpage :
5801
Lastpage :
5806
Abstract :
Operation of wind turbines in the full-load region mandates that the produced power is kept at a rated value to minimize structural loads and thereby reduce fatigue damages. This is usually achieved by pitching the rotor blades in order to limit the aerodynamic torque in high wind speeds. The pitch actuators usually present a hard constraint in terms of the amplitude and rate of saturation. In this paper, we propose a method to address pitch actuator amplitude and rate saturation by designing the anti-windup controllers in the linear parameter varying (LPV) framework. The proposed design method guarantees the closed-loop stability and a prescribed level of performance while it decreases the pitch activity for regulating the generated power to the nominal power during sudden wind gusts. The anti-windup controller designed to minimize the H norm of the closed-loop system is gain-scheduled based on the operating condition of the turbine, as well as the states of amplitude and rate saturation of the pitch actuator. The effectiveness of the proposed control design method is demonstrated using the high-fidelity aeroelastic dynamic simulation tool FAST.
Keywords :
H control; actuators; aerodynamics; closed loop systems; control system synthesis; fatigue; machine control; rotors; stability; wind turbines; FAST; H∞ norm; LPV framework; aerodynamic torque; aeroelastic dynamic simulation tool; antiwindup LPV control; closed-loop stability; closed-loop system; fatigue damage; linear parameter varying; pitch actuator amplitude; rate saturation; rotor blade; structural load; wind speed; wind turbine; Actuators; Aerodynamics; Control design; Generators; Torque; Wind speed; Wind turbines;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
American Control Conference (ACC), 2012
Conference_Location :
Montreal, QC
ISSN :
0743-1619
Print_ISBN :
978-1-4577-1095-7
Electronic_ISBN :
0743-1619
Type :
conf
DOI :
10.1109/ACC.2012.6315468
Filename :
6315468
Link To Document :
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