DocumentCode :
2392167
Title :
Power System Stabilizer Using a New Recurrent Neural Network for Multi-Machine
Author :
Chen, Chun-Jung ; Chen, Tien-Chi ; Ou, Jin-Chyz
Author_Institution :
Fac. of Electr. Eng., Kun Shan Univ., Tainan
fYear :
2006
fDate :
28-29 Nov. 2006
Firstpage :
68
Lastpage :
72
Abstract :
This paper presents a power system stabilizer (PSS) for multi-machines using a new two-layer recurrent neural network (RNN), which is called the recurrent neural network power system stabilizer (RNNPSS) in order to damp the oscillations of the multi-machines power system. The RNNPSS consists of a recurrent neural network identifier (RNNI) and a recurrent neural network controller (RNNC). The RNNI tracks the dynamics characteristics of the plant, and the RNNC to damp the system´s low frequency oscillations. The RNN consists of an input layer and an output layer. Each neuron in the input layer is a recurrent one which is connected to oneself and other neurons, and then connected to the output layer. The proposed RNNPSS were simulated for three machines generator, the results demonstrate that the effectiveness of the proposed RNNPSS and reduce its sensitivity to system disturbances. The operating range was demonstrated better than the traditional PSS does.
Keywords :
electric generators; neurocontrollers; nonlinear control systems; power generation control; power system analysis computing; power system dynamic stability; recurrent neural nets; dynamics characteristics; machine generator; multimachine power system; nonlinear system; power system stabilizer; recurrent neural network controller; recurrent neural network identifier; system disturbances; two-layer recurrent neural network; Neural networks; Neurons; Nonlinear control systems; Power system analysis computing; Power system dynamics; Power system modeling; Power system reliability; Power system simulation; Power systems; Recurrent neural networks; RNNPSS; Recurrent neural network; identifier and controller; power system stabilizer;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Power and Energy Conference, 2006. PECon '06. IEEE International
Conference_Location :
Putra Jaya
Print_ISBN :
1-4244-0273-5
Electronic_ISBN :
1-4244-0274-3
Type :
conf
DOI :
10.1109/PECON.2006.346621
Filename :
4154465
Link To Document :
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