DocumentCode :
582698
Title :
An adaptive LVRT control for DFIG wind power system
Author :
Jian, Zhang ; Ancheng, Xue ; Jinmei, Chen ; Tianshu, Bi ; Ningbo, Wang ; Yanhong, Ma
Author_Institution :
State Key Lab. for Alternate Electr. Power Syst. with Renewable Energy Sources, North China Electr. Power Univ., Beijing, China
fYear :
2012
fDate :
25-27 July 2012
Firstpage :
6747
Lastpage :
6751
Abstract :
For the doubly fed induction generator (DFIG), the rotor side Crowbar with constant resistance is a popular approach to protect the wind turbine and improve lower voltage ride through (LVRT). However, the responses of the DFIG are different according to the different degree of voltage dip. In addition, in certain condition, the constant Crowbar resistance may be over-estimated or down-estimated and result in damage to the DFIG. By recognizing this, this paper proposes an adaptive LVRT controller which using the voltage dip degree to determine the resistance of the Crowbar resistor (CR). In detail, it first gets the resistance of worst fault with a simplified calculation for the worst fault, and then, obtains voltage dip degree by detection, and then, through PWM control generating the control signal to control the resistance of the Crowbar resistor. It builds the simulation model based on Real-time digital simulator (RTDS). The simulation results show that the proposed adaptive controller could improve the ability of LVRT for the DFIG.
Keywords :
adaptive control; asynchronous generators; power generation control; pulse width modulation; rotors; wind power plants; wind turbines; Crowbar resistor resistance control; DFIG responses; DFIG wind power system; PWM control; RTDS; adaptive LVRT control; constant Crowbar resistance; control signal; doubly fed induction generator; lower voltage ride through; real-time digital simulator; rotor side Crowbar; voltage dip; voltage dip degree; wind turbine; Resistance; Resistors; Rotors; Stator windings; Voltage control; Voltage fluctuations; Adaptive Control; DFIG; Fault Degree; LVRT; Rotor Crowbar;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Control Conference (CCC), 2012 31st Chinese
Conference_Location :
Hefei
ISSN :
1934-1768
Print_ISBN :
978-1-4673-2581-3
Type :
conf
Filename :
6391126
Link To Document :
بازگشت