TY - JOUR
T1 - Decentralized exciter stabilizing control for multimachine power systems
AU - Niioka, Satoru
AU - Yokoyama, Ryuichi
AU - Fujita, Goro
AU - Shirai, Goro
PY - 2002/4/15
Y1 - 2002/4/15
N2 - In this paper, a systematic approach to design controllers based on H-infinity theory for a multimachine power system is presented. Generally, a centralized control scheme is difficult for a large-scale interconnected power system because of the necessity of obtaining information on the whole system, computation times, and so on. In order to handle these problems, two decentralized control schemes are proposed. One is based on the decomposition of information. The feedback gains for the whole system are obtained, and after decomposing the gains into sub-blocks for each area, the diagonal block is used to design the controller for each generator. The other is based on area decompositions. The procedure is carried out by decomposing the original system into blocks for each area and the local feedback gain is obtained by using information for each decomposed system. Furthermore, to improve the robustness of the system, an effective weighting matrix design, which involves the allocation of eigenvalues, is also proposed. Several simulation tests show the effectiveness of the proposed methods.
AB - In this paper, a systematic approach to design controllers based on H-infinity theory for a multimachine power system is presented. Generally, a centralized control scheme is difficult for a large-scale interconnected power system because of the necessity of obtaining information on the whole system, computation times, and so on. In order to handle these problems, two decentralized control schemes are proposed. One is based on the decomposition of information. The feedback gains for the whole system are obtained, and after decomposing the gains into sub-blocks for each area, the diagonal block is used to design the controller for each generator. The other is based on area decompositions. The procedure is carried out by decomposing the original system into blocks for each area and the local feedback gain is obtained by using information for each decomposed system. Furthermore, to improve the robustness of the system, an effective weighting matrix design, which involves the allocation of eigenvalues, is also proposed. Several simulation tests show the effectiveness of the proposed methods.
KW - Decentralized control
KW - Exciter control
KW - H control
KW - Multimachine power system
KW - Robustness
KW - Weighting matrix
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U2 - 10.1002/eej.1144
DO - 10.1002/eej.1144
M3 - Article
AN - SCOPUS:0037089849
SN - 0424-7760
VL - 139
SP - 35
EP - 43
JO - Electrical Engineering in Japan (English translation of Denki Gakkai Ronbunshi)
JF - Electrical Engineering in Japan (English translation of Denki Gakkai Ronbunshi)
IS - 1
ER -