DocumentCode :
2674692
Title :
Convergence improvement and bad data detection for fast-decoupled state estimator using optimal multiplier
Author :
Tatuno, M. ; Ejima, Yoshihiko ; Iwamoto, Shinchi
Author_Institution :
Dept. of Electr. Eng. & Bioscience, Waseda Univ., Tokyo
fYear :
0
fDate :
0-0 0
Abstract :
From power system on-line operation and security control view point, state estimation, a methodology used to obtain reliable estimate of power system state, has become one of the important issues. Among some state estimation methods, the fast-decoupled state estimator is commonly used as a prevailed method and has been implemented by many utilities. However, it has been recognized that its convergence characteristics may become deteriorated when it encounters bad system conditions. Therefore, in this paper, first of all, we present the fast-decoupled state estimator which is used in present power systems. Next, we propose a method to improve the convergence characteristics of fast-decoupled state estimator using the optimal multiplier mu, followed by a reliable technique to detect, identify and eliminate bad data. The proposed method has been tested on two types of load flow test systems and successful results have been obtained
Keywords :
load flow; power system reliability; power system state estimation; bad data detection; fast-decoupled state estimator; load flow test systems; optimal multiplier; power system online operation; power system state estimation reliability; security control; Character recognition; Control systems; Convergence; Data security; Power system control; Power system reliability; Power system security; Power systems; State estimation; System testing; Bad Data; Convergence Characteristics; Fast-Decoupled State Estimator; Optimal Multiplier;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Power Engineering Society General Meeting, 2006. IEEE
Conference_Location :
Montreal, Que.
Print_ISBN :
1-4244-0493-2
Type :
conf
DOI :
10.1109/PES.2006.1709040
Filename :
1709040
Link To Document :
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