Title :
Control of DFIG-Based Wind Generation to Improve Interarea Oscillation Damping
Author :
Miao, Zhixin ; Fan, Lingling ; Osborn, Dale ; Yuvarajan, Subbaraya
Author_Institution :
Transm. Asset Manage. Dept., Midwest ISO, Inc., St. Paul, MN
fDate :
6/1/2009 12:00:00 AM
Abstract :
Power systems with high penetration of wind power usually require long-distance transmission to export wind power to the market. Interarea oscillation is an issue faced in long-distance transmission. Can wind generation based on doubly fed induction generator (DFIG) help to damp oscillations and how? In this paper, a control scheme is developed for the DFIG with rotor-side converter to damp interarea oscillations. The DFIG is modeled in MATLABreg/Simulink utilizing its vector control scheme feature, and inner current control and outer active/reactive power control loops are modeled and designed. A two-area system that suffers from poor interarea oscillation damping along with a wind farm in the area that exports power is investigated. A damping controller is designed and time-domain simulations are used to demonstrate the effectiveness of the controller. The major contributions of the paper are as follows: 1) built a wind farm interarea oscillation study system based on the classical two-area four-machine system, 2) established that in vector control scheme, active power modulation can best help to damp oscillations, 3) successfully designed a feedback controller using remote signals with good interarea oscillation observability.
Keywords :
asynchronous generators; control system synthesis; damping; electric current control; feedback; machine vector control; oscillations; power convertors; power generation control; reactive power control; time-domain analysis; wind power plants; DFIG control; MATLAB-Simulink; active power control loop; active power modulation; current control; damping controller design; doubly fed induction generator; feedback controller; interarea oscillation damping; reactive power control loop; rotor-side converter; time-domain simulation; vector control scheme; wind generation; Damping; Induction generators; MATLAB; Mathematical model; Power system modeling; Power systems; Rotors; Wind energy; Wind energy generation; Wind farms; Doubly fed induction generator (DFIG); interarea oscillation; wind generation;
Journal_Title :
Energy Conversion, IEEE Transactions on
DOI :
10.1109/TEC.2009.2015980