DocumentCode :
1929571
Title :
Adaptive neural network based power system stabilizer design
Author :
Liu, Wenxin ; Venayagamoorthy, Ganesh K. ; Wunsch, Donald C., II
Author_Institution :
Dept. of Electr. & Comput. Eng., Missouri Univ., Rolla, MO, USA
Volume :
4
fYear :
2003
fDate :
20-24 July 2003
Firstpage :
2970
Abstract :
Power system stabilizers (PSS) are used to generate supplementary control signals for the excitation system in order to damp the low frequency power system oscillations. To overcome the drawbacks of conventional PSS (CPSS), numerous techniques have been proposed in the literature. Based on the analysis of existing techniques, this paper presents an indirect adaptive neural network based power system stabilizer (IDNC) design. The proposed IDNC consists of a neuro-controller, which is used to generate a supplementary control signal to the excitation system, and a neuro-identifier, which is used to model the dynamics of the power system and to adapt the neuro-controller parameters. The proposed method has the features of a simple structure, adaptivity and fast response. The proposed IDNC is evaluated on a single machine infinite bus power system under different operating conditions and disturbances to demonstrate its effectiveness and robustness.
Keywords :
adaptive control; identification; neurocontrollers; power system stability; excitation system; indirect adaptive neural network based power system stabilizer design; low frequency power system oscillation damping; neuro-controller; single machine infinite bus power system; supplementary control signal; Adaptive systems; Control systems; Neural networks; Power generation; Power system analysis computing; Power system control; Power system dynamics; Power system modeling; Power systems; Signal generators;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Neural Networks, 2003. Proceedings of the International Joint Conference on
ISSN :
1098-7576
Print_ISBN :
0-7803-7898-9
Type :
conf
DOI :
10.1109/IJCNN.2003.1224043
Filename :
1224043
Link To Document :
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