DocumentCode :
1309878
Title :
FX-RLS-Based Feedforward Control for LIDAR-Enabled Wind Turbine Load Mitigation
Author :
Wang, Na ; Johnson, Kathryn E. ; Wright, Alan D.
Author_Institution :
Div. of Eng., Colorado Sch. of Mines, Golden, CO, USA
Volume :
20
Issue :
5
fYear :
2012
Firstpage :
1212
Lastpage :
1222
Abstract :
An adaptive feedforward controller based on a filtered-x recursive least square (FX-RLS) algorithm and a non-adaptive feedforward controller based on a zero-phase-error tracking control (ZPETC) technique have been designed to augment a collective pitch proportional-integral (PI) feedback controller for wind turbine rotor speed regulation and component load reduction when the wind turbine is operating above rated wind speed. The inputs to the adaptive feedforward controller include measurements of the rotor speed error and the incoming wind speed, where wind speed would be provided by a commercial light detection and ranging (LIDAR) system. Simulation results are based on comparison with a PI feedback only controller. Simulations show that augmenting the baseline PI feedback control with ZPETC feedforward control improves the blade loads but worsens the tower loads. The FX-RLS feedforward algorithm gives better performance than both the baseline PI feedback and the ZPETC feedforward in both tower (fore-aft and side-to-side) and blade (flapwise and edgewise) bending moment mitigation. Even with realistic 1 Hz LIDAR data update rate, the FX-RLS feedforward strategy can effectively mitigate the tower and blade bending moment while providing better rotor speed tracking and only a small energy drop.
Keywords :
PI control; adaptive control; feedback; feedforward; least squares approximations; machine control; optical radar; rotors; velocity control; wind turbines; FX-RLS feedforward algorithm; FX-RLS-based feedforward control; LIDAR-enabled wind turbine load mitigation; PI feedback control; ZPETC feedforward control; component load reduction; filtered-x recursive least square algorithm; light detection and ranging system; nonadaptive feedforward controller; pitch proportional-integral feedback controller; rotor speed error; wind speed; wind turbine rotor speed regulation; zero-phase-error tracking control; Blades; Feedforward neural networks; Laser radar; Rotors; Transfer functions; Wind speed; Wind turbines; Adaptive control; feedforward control; filtered-x recursive least squares (FX-RLS); light detection and ranging (LIDAR); wind turbine; zero-phase-error tracking control (ZPETC);
fLanguage :
English
Journal_Title :
Control Systems Technology, IEEE Transactions on
Publisher :
ieee
ISSN :
1063-6536
Type :
jour
DOI :
10.1109/TCST.2011.2163515
Filename :
6004856
Link To Document :
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