DocumentCode
1549670
Title
Stator Flux Active Damping Methods for Field-Oriented Doubly Fed Induction Generator
Author
Marques, G.D. ; Sousa, Duarte M.
Author_Institution
Dept. of Electr. & Comput. Eng., Tech. Univ. of Lisbon, Lisbon, Portugal
Volume
27
Issue
3
fYear
2012
Firstpage
799
Lastpage
806
Abstract
The doubly fed induction generator is characterized by natural stator flux oscillations with small damping. It has an unstable region when it is controlled with stator flux orientation with impressed rotor currents. Several techniques can be used for the stabilization and damping of this system. This paper describes, analyses, and compares three methods. The first method consists in lowering the bandwidth of the rotor current controllers. It has the disadvantage of allowing high rotor-disturbance currents during stator flux disturbances. The second method, the back-ims method, uses higher bandwidth control loops and corrects the direct rotor current reference proportionally to the derivative of the flux. It has good performances in steady state but uses considerable additional rotor currents to damp the system when transients occur. The third method, the two-axes damping system, is based on the correction of the dq rotor current references proportionally to the variations of the system variables, i.e., the stator flux and the so-called angle. When compared with the back-ims method, the two-axes damping method uses smaller additional damping currents. Experimental verification based on a small laboratory prototype is presented.
Keywords
asynchronous generators; damping; electric current control; machine vector control; rotors; stators; back-ims method; bandwidth control loops; direct rotor current reference; dq rotor current reference; field oriented doubly fed induction generator; natural stator flux oscillations; rotor current controllers; rotor disturbance currents; stator flux active damping methods; stator flux disturbances; two-axes damping system; unstable region; Bandwidth; Damping; Induction generators; Mathematical model; Rotors; Stability analysis; Stators; Doubly fed induction generator (DFIG); flux stabilization; induction generator;
fLanguage
English
Journal_Title
Energy Conversion, IEEE Transactions on
Publisher
ieee
ISSN
0885-8969
Type
jour
DOI
10.1109/TEC.2012.2204887
Filename
6227338
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