Title :
An improved control scheme for Doubly Fed Induction Generator during grid fault ride-through
Author :
Zhang, Lu ; Jin, Xinmin ; Ma, Tianyi ; Tong, Yibin
Author_Institution :
Inst. of Renewable Energy, Beijing Jiaotong Univ., Beijing, China
Abstract :
The increasing wind power penetration brings new challenge for wind turbine to provide Low Voltage Ride-Through (LVRT) capability. Doubly Fed Induction Generator (DFIG) has been widely used in wind turbines; due to its cost-effective partially power rated of the converter and Variable-Speed Constant-Frequency (VSCF) operation. However, the DFIG system has two poorly damped poles and is sensitive to the grid disturbance. For the stator is directly connected to the grid, the symmetrical voltage dip results in a dc component in the stator-flux which reflects a serious oscillation in the synchronous reference frame. This transient stator-flux induces overvoltage and overcurrent in the rotor circuit. The paper analyzes the characteristic of the transient stator-flux under voltage dip. Based on the eigenvalues of the system matrix, the damping rates of the transient stator-flux are investigated. An improved control scheme of the Rotor Side Converter (RSC) is presented to accelerate the transient stator-flux damping rate. The proposed control improves the rotor current control performance and relieves the fluctuation of electromagnetic torque, dc-link voltage, stator current and rotor current. It is also beneficial to the fast reactive power support to the grid during voltage dip. The simulation results of a 1.5-MW DFIG system and experimental tests on a 90-kW DFIG rig validate the theoretical analysis and the feasibility of the proposed control scheme.
Keywords :
asynchronous generators; electric current control; power generation control; rotors; stators; wind turbines; DFIG rig; DFIG system; RSC; VSCF; control scheme; dc-link voltage; doubly fed induction generator; eigenvalues; electromagnetic torque; grid fault ride-through; low voltage ride-through capability; oscillation; power 1.5 MW; power 90 kW; rotor circuit; rotor current control; rotor side converter; stator; symmetrical voltage dip; synchronous reference frame; transient stator-flux; transient stator-flux damping rate; variable-speed constant-frequency; wind power penetration; wind turbine; Damping; Oscillators; Rotors; Stators; Transient analysis; Voltage control; Voltage fluctuations; Wind power generation; doubly fed induction generator (DFIG); low voltage ride-through (LVRT); rotor side converter (RSC); transient stator-flux damping;
Conference_Titel :
Power Electronics for Distributed Generation Systems (PEDG), 2012 3rd IEEE International Symposium on
Conference_Location :
Aalborg
Print_ISBN :
978-1-4673-2021-4
Electronic_ISBN :
978-1-4673-2022-1
DOI :
10.1109/PEDG.2012.6254018