DocumentCode :
2048447
Title :
Fault-tolerant wide-area control for power oscillation damping
Author :
Sevilla, F.R.S. ; Jaimoukha, I. ; Chaudhuri, B. ; Korba, P.
Author_Institution :
Imperial Coll. London, London, UK
fYear :
2012
fDate :
22-26 July 2012
Firstpage :
1
Lastpage :
8
Abstract :
In this paper, the effectiveness of using both local and remote (wide-area) feedback signals for power oscillation damping (POD) controllers is shown. However, the challenge is to guarantee a minimum level of dynamic performance with only the local signal following sudden loss of remote signals. A case study on the Nordic equivalent system is presented to show that the closed-loop response could deteriorate once the remote signals are lost. A fault-tolerant control (FTC) design methodology is presented to solve this problem and ensure an acceptable performance level even in case of loss of remote signals. The FTC design methodology is based on simultaneous pole-placement for normal and loss of (remote) signals conditions along with minimisation of control effort. The problem is solved non-iteratively using Linear Matrix Inequalities (LMIs). Under the normal condition (when both local and remote signals are present) the fault-tolerant controller (FTC) requires more control effort as compared to a conventional controller (CC) in order to achieve the same performance. However, case studies on the Nordic equivalent system confirm that the proposed FTC is able to produce acceptable performance in case of loss of the remote signals while the response with a CC is unacceptable.
Keywords :
closed loop systems; fault tolerance; linear matrix inequalities; power control; power system control; power system faults; power system reliability; power system stability; FTC design methodology; LMI; Nordic equivalent system; POD controllers; closed-loop response; fault-tolerant wide-area control; linear matrix inequality; local signal following; power oscillation damping; remote feedback signals; remote signal loss; simultaneous pole-placement; Damping; Design methodology; Fault tolerance; Fault tolerant systems; Linear matrix inequalities; Oscillators; Phasor measurement units; Power oscillation damping; fault-tolerant control; local and remote feedback; pole-placement;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Power and Energy Society General Meeting, 2012 IEEE
Conference_Location :
San Diego, CA
ISSN :
1944-9925
Print_ISBN :
978-1-4673-2727-5
Electronic_ISBN :
1944-9925
Type :
conf
DOI :
10.1109/PESGM.2012.6344917
Filename :
6344917
Link To Document :
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