Title :
Controller design for an induction generator driven by a variable-speed wind turbine
Author :
Chen, Woei-Luen ; Hsu, Yuan-Yih
Author_Institution :
Dept. of Electr. Eng., Nat. Taiwan Inst. of Technol., Taipei
Abstract :
This paper presents the modeling, controller design and a steady-state analysis algorithm for a wind-driven induction generator system. An output feedback linear quadratic controller is designed for the static synchronous compensator (STATCOM) and the variable blade pitch in a wind energy conversion system (WECS) in order to reach the voltage and mechanical power control under both grid-connection and islanding conditions. A two-reference-frame model is proposed to decouple the STATCOM real and reactive power control loops for the output feedback controller. To ensure zero steady-state voltage errors for the output feedback controller, the integrals of load bus voltage deviation and dc-capacitor voltage deviation are employed as the additional state variables. Pole-placement technique is used to determine a proper weighting matrix for the linear quadratic controller such that satisfactory damping characteristics can be achieved for the closed-loop system. Effects of various system disturbances on the dynamic performance have been simulated, and the results reveal that the proposed controller is effective in regulating the load voltage and stabilizing the generator rotating speed for the WECS either connected with or disconnected from the power grid. In addition, proper steady-state operating points for an isolated induction generator can be determined by the proposed steady-state analysis algorithm. Constant output frequency control using the derived steady-state characteristics of the isolated induction generator is then demonstrated in this paper
Keywords :
asynchronous generators; blades; closed loop systems; control system synthesis; damping; direct energy conversion; feedback; frequency control; linear quadratic control; machine control; matrix algebra; pole assignment; reactive power control; static VAr compensators; voltage control; wind turbines; STATCOM; WECS; closed-loop system; constant output frequency control; dc-capacitor voltage deviation; generator rotating speed stabilization; induction generator; load bus voltage deviation; load voltage regulation; mechanical power control; output feedback controller; output feedback linear quadratic controller; pole placement technique; power grid; reactive power control; real power control; reference-frame model; static synchronous compensator; steady-state analysis algorithm; system disturbances; variable blade pitch; variable-speed wind turbine; voltage control; wind energy conversion system; Algorithm design and analysis; Automatic voltage control; Control systems; Induction generators; Mechanical variables control; Output feedback; Power system modeling; Steady-state; Voltage control; Wind turbines; Induction generator (IG); static synchronous compensator (STATCOM); voltage regulation; wind energy conversion system (WECS); wind turbine;
Journal_Title :
Energy Conversion, IEEE Transactions on
DOI :
10.1109/TEC.2006.875478