Optimal Placement and Sizing of Fault Current Limiters in Distributed Generation Systems Using a Hybrid Genetic Algorithm

Distributed Generation (DG) connection in a power system tends to increase the short circuit level in the entire system which, in turn, could eliminate the protection coordination between the existing relays. Fault Current Limiters (FCLs) are often used to reduce the short-circuit level of the netwo...

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Main Authors: N. Bayati, S. H. H. Sadeghi, A. Hosseini
Format: Article
Language:English
Published: D. G. Pylarinos 2017-02-01
Series:Engineering, Technology & Applied Science Research
Subjects:
FCL
DG
Online Access:http://etasr.com/index.php/ETASR/article/download/976/439
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spelling doaj-389ae457aa904db1b4da50a4303fe6102020-12-02T10:54:35ZengD. G. PylarinosEngineering, Technology & Applied Science Research2241-44871792-80362017-02-017113291333Optimal Placement and Sizing of Fault Current Limiters in Distributed Generation Systems Using a Hybrid Genetic AlgorithmN. Bayati0S. H. H. Sadeghi1A. Hosseini2Department of Electrical Engineering, Amirkabir University of Technology, IranDepartment of Electrical Engineering, Amirkabir University of Technology, IranDepartment of Electrical Engineering, Amirkabir University of Technology, IranDistributed Generation (DG) connection in a power system tends to increase the short circuit level in the entire system which, in turn, could eliminate the protection coordination between the existing relays. Fault Current Limiters (FCLs) are often used to reduce the short-circuit level of the network to a desirable level, provided that they are dully placed and appropriately sized. In this paper, a method is proposed for optimal placement of FCLs and optimal determination of their impedance values by which the relay operation time, the number and size of the FCL are minimized while maintaining the relay coordination before and after DG connection. The proposed method adopts the removal of low-impact FCLs and uses a hybrid Genetic Algorithm (GA) optimization scheme to determine the optimal placement of FCLs and the values of their impedances. The suitability of the proposed method is demonstrated by examining the results of relay coordination in a typical DG network before and after DG connection.http://etasr.com/index.php/ETASR/article/download/976/439hybrid GAFCLplacementDGrelay
collection DOAJ
language English
format Article
sources DOAJ
author N. Bayati
S. H. H. Sadeghi
A. Hosseini
spellingShingle N. Bayati
S. H. H. Sadeghi
A. Hosseini
Optimal Placement and Sizing of Fault Current Limiters in Distributed Generation Systems Using a Hybrid Genetic Algorithm
Engineering, Technology & Applied Science Research
hybrid GA
FCL
placement
DG
relay
author_facet N. Bayati
S. H. H. Sadeghi
A. Hosseini
author_sort N. Bayati
title Optimal Placement and Sizing of Fault Current Limiters in Distributed Generation Systems Using a Hybrid Genetic Algorithm
title_short Optimal Placement and Sizing of Fault Current Limiters in Distributed Generation Systems Using a Hybrid Genetic Algorithm
title_full Optimal Placement and Sizing of Fault Current Limiters in Distributed Generation Systems Using a Hybrid Genetic Algorithm
title_fullStr Optimal Placement and Sizing of Fault Current Limiters in Distributed Generation Systems Using a Hybrid Genetic Algorithm
title_full_unstemmed Optimal Placement and Sizing of Fault Current Limiters in Distributed Generation Systems Using a Hybrid Genetic Algorithm
title_sort optimal placement and sizing of fault current limiters in distributed generation systems using a hybrid genetic algorithm
publisher D. G. Pylarinos
series Engineering, Technology & Applied Science Research
issn 2241-4487
1792-8036
publishDate 2017-02-01
description Distributed Generation (DG) connection in a power system tends to increase the short circuit level in the entire system which, in turn, could eliminate the protection coordination between the existing relays. Fault Current Limiters (FCLs) are often used to reduce the short-circuit level of the network to a desirable level, provided that they are dully placed and appropriately sized. In this paper, a method is proposed for optimal placement of FCLs and optimal determination of their impedance values by which the relay operation time, the number and size of the FCL are minimized while maintaining the relay coordination before and after DG connection. The proposed method adopts the removal of low-impact FCLs and uses a hybrid Genetic Algorithm (GA) optimization scheme to determine the optimal placement of FCLs and the values of their impedances. The suitability of the proposed method is demonstrated by examining the results of relay coordination in a typical DG network before and after DG connection.
topic hybrid GA
FCL
placement
DG
relay
url http://etasr.com/index.php/ETASR/article/download/976/439
work_keys_str_mv AT nbayati optimalplacementandsizingoffaultcurrentlimitersindistributedgenerationsystemsusingahybridgeneticalgorithm
AT shhsadeghi optimalplacementandsizingoffaultcurrentlimitersindistributedgenerationsystemsusingahybridgeneticalgorithm
AT ahosseini optimalplacementandsizingoffaultcurrentlimitersindistributedgenerationsystemsusingahybridgeneticalgorithm
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