DocumentCode :
2815787
Title :
A genetic algorithms approach to design an optimal PI controller for static VAr compensator
Author :
Wang, Y.P. ; Hur, D.R. ; Chung, H.H. ; Watson, N.R. ; Arrillaga, J. ; Matair, S.S.
Author_Institution :
Dept. of Electr. & Electron. Eng., Canterbury Univ., Christchurch, New Zealand
Volume :
3
fYear :
2000
fDate :
2000
Firstpage :
1557
Abstract :
A static VAr compensator (SVC) is one type of flexible AC transmission systems (FACTS) device, used for shunt compensation to maintain voltage magnitude. Additional control functions can be to enhance transient stability and restrain oscillations. The application this paper is concerned with is the damping of oscillations of a synchronous generator as well as to control the system voltage. The proportional integral (PI) controller parameters of the SVC are of fundamental importance in ensuring it preforms adequately. This paper presents a systematic approach for PI controller design of a SVC using genetic algorithm (GA). To verify the robustness of the proposed method, genetic algorithm proportional integral (GA-PI) controller design, the dynamic responses of generator (speed deviation and terminal voltage) due to power fluctuation and three-phase fault under heavy, normal and light loading conditions is considered. The GA-PI controller design results in improved stability of single machine connected to infinite busbar with SVC system over conventional PI controller or without controller
Keywords :
control system synthesis; dynamic response; flexible AC transmission systems; genetic algorithms; optimal control; power system control; power system transient stability; static VAr compensators; two-term control; FACTS device; control functions; dynamic responses; flexible AC transmission systems; genetic algorithm; genetic algorithms; infinite busbar; light loading conditions; optimal PI controller; oscillations restraint; power fluctuation; proportional integral controller parameters; shunt compensation; speed deviation; static VAr compensator; synchronous generator; terminal voltage; three-phase fault; transient stability enhancement; voltage magnitude; Algorithm design and analysis; Control systems; Flexible AC transmission systems; Genetic algorithms; Optimal control; Pi control; Proportional control; Stability; Static VAr compensators; Voltage control;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Power System Technology, 2000. Proceedings. PowerCon 2000. International Conference on
Conference_Location :
Perth, WA
Print_ISBN :
0-7803-6338-8
Type :
conf
DOI :
10.1109/ICPST.2000.898203
Filename :
898203
Link To Document :
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