DocumentCode :
1458650
Title :
Preventive Dynamic Security Control of Power Systems Based on Pattern Discovery Technique
Author :
Yan Xu ; Zhao Yang Dong ; Lin Guan ; Rui Zhang ; Kit Po Wong ; FengJi Luo
Author_Institution :
Centre for Intell. Electr. Networks (CIEN), Univ. of Newcastle, Callaghan, NSW, Australia
Volume :
27
Issue :
3
fYear :
2012
Firstpage :
1236
Lastpage :
1244
Abstract :
This paper presents a statistical learning-based method for preventive dynamic security control of power systems. Critical operating variables regarding system dynamic security are first selected via a distance-based feature estimation process. An unsupervised learning procedure called pattern discovery (PD) is then performed in the space of the critical variables to extract the subtle structure knowledge called patterns. The patterns are geometrically non-overlapped hyper-rectangles, representing the system dynamic secure/insecure regions and can be explicitly presented to provide decision support for real-time security monitoring and situational awareness. By formulating the secure patterns into a standard optimal power flow (OPF) model, the preventive control against dynamic insecurities can be efficiently and transparently attained. The proposed method is validated on the New England 39-bus system considering both single- and multi-contingency conditions.
Keywords :
learning systems; load flow; power system control; power system security; statistical analysis; New England 39-bus system; OPF model; PD technique; decision support; distance-based feature estimation process; geometric non-overlapped hyperrectangles; multicontingency conditions; pattern discovery technique; power systems; preventive dynamic security control; real-time security monitoring; single-contingency conditions; situational awareness; standard optimal power flow model; statistical learning-based method; structure knowledge; system dynamic secure-insecure regions; unsupervised learning procedure; Aerospace electronics; Databases; Generators; Mathematical model; Power system dynamics; Power system stability; Security; Dynamic security; feature estimation; knowledge discovery; pattern discovery; preventive control;
fLanguage :
English
Journal_Title :
Power Systems, IEEE Transactions on
Publisher :
ieee
ISSN :
0885-8950
Type :
jour
DOI :
10.1109/TPWRS.2012.2183898
Filename :
6158622
Link To Document :
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