Title :
Dynamic Modeling and Improved Control of DFIG Under Distorted Grid Voltage Conditions
Author :
Hu, Jiabing ; Nian, Heng ; Xu, Hailiang ; He, Yikang
Author_Institution :
Coll. of Electr. Eng., Zhejiang Univ., Hangzhou, China
fDate :
3/1/2011 12:00:00 AM
Abstract :
This paper presents a mathematical model of a doubly fed induction generator (DFIG) in the positive synchronous reference frame under distorted grid voltage conditions. The oscillations of the DFIG´s electromagnetic torque and the instantaneous stator active and reactive powers are fully described when the grid voltage is harmonically distorted. Four alternative control targets are proposed to improve the system responses during grid harmonic distortions. A new rotor current control scheme implemented in the positive synchronous reference frame is developed. The control scheme consists of a proportional-integral (PI) regulator and a harmonic resonant (R) compensator tuned at six times the grid frequency. Consequently, the fundamental and the fifth- and seventh-order components of rotor currents are directly regulated by the PI-R controller without sequential-component decompositions. The feasibility of the proposed control strategy is validated by simulation studies on a 2.0-MW wind-turbine-driven DFIG system. Compared with the conventional vector control scheme based on standard PI current controllers, the proposed control scheme leads to significant elimination of either DFIG power or torque oscillations under distorted grid voltage conditions.
Keywords :
PI control; asynchronous generators; electric current control; harmonic distortion; machine control; machine theory; power grids; reactive power; wind turbines; DFIG dynamic modeling; DFIG electromagnetic torque oscillation; PI current controllers; PI regulator; PI-R controller; distorted grid voltage conditions; doubly fed induction generator; grid frequency; grid harmonic distortions; harmonic resonant compensator; instantaneous stator active power; mathematical model; positive synchronous reference frame; power 2.0 MW; proportional-integral regulator; reactive powers; rotor current control scheme; sequential-component decompositions; vector control scheme; wind-turbine-driven DFIG system; Current control; distorted voltage; doubly fed induction generator (DFIG); harmonics; modeling;
Journal_Title :
Energy Conversion, IEEE Transactions on
DOI :
10.1109/TEC.2010.2071875