Title :
-Optimal Control of Large Wind Turbines
Author :
Schuler, Steffen ; Schlipf, David ; Po Wen Cheng ; Allgower, F.
Author_Institution :
Inst. for Syst. Theor. & Autom. Control, Univ. of Stuttgart, Stuttgart, Germany
Abstract :
We present an ℓ1-control scheme for multivariable pitch control in full load region. Two decoupled linear time-invariant models are derived using Coleman transformation and gain scheduling to design collective and individual pitch controllers independently. Individual pitch control is used to decrease the blade root bending moment. A new ℓ1-control setup for collective pitch control taking into account the collective bending moment in Coleman mode is presented. This further decreases the blade root bending moment while rotor speed is maintained constant above rated wind conditions. Simulations with a full nonlinear aeroelastic model over the whole load region show the applicability of the proposed control strategy and lifetime weighted damage equivalent loads are computed. Compared to classical collective and individual pitch control, a significant load reduction is achieved without losses in energy production.
Keywords :
bending; blades; control system synthesis; elasticity; linear systems; multivariable control systems; optimal control; rotors; velocity control; wind power; wind turbines; ℓ1-optimal control; Coleman mode; Coleman transformation; blade root bending moment; collective pitch controller; control strategy; controller design; decoupled linear time-invariant model; energy production; full load region; full nonlinear aeroelastic model; gain scheduling; individual pitch controller; large wind turbine; lifetime weighted damage equivalent load; load reduction; multivariable pitch control; rotor speed maintenance; wind condition; $ell_{1}$ -control; Control design; linear systems; load reduction; pitch control; wind energy generation;
Journal_Title :
Control Systems Technology, IEEE Transactions on
DOI :
10.1109/TCST.2013.2261068