Coherency Identification of Generators Using a PAM Algorithm for Dynamic Reduction of Power Systems

This paper presents a new coherency identification method for dynamic reduction of a power system. To achieve dynamic reduction, coherency-based equivalence techniques divide generators into groups according to coherency, and then aggregate them. In order to minimize the changes in the dynamic respo...

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Main Authors: Seung-Il Moon, Jin-Woo Park, Gi-Chan Pyo
Format: Article
Language:English
Published: MDPI AG 2012-11-01
Series:Energies
Subjects:
Online Access:http://www.mdpi.com/1996-1073/5/11/4417
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spelling doaj-ac911e02c5774ce58f6f939aa90df41f2020-11-25T00:39:01ZengMDPI AGEnergies1996-10732012-11-015114417442910.3390/en5114417Coherency Identification of Generators Using a PAM Algorithm for Dynamic Reduction of Power SystemsSeung-Il MoonJin-Woo ParkGi-Chan PyoThis paper presents a new coherency identification method for dynamic reduction of a power system. To achieve dynamic reduction, coherency-based equivalence techniques divide generators into groups according to coherency, and then aggregate them. In order to minimize the changes in the dynamic response of the reduced equivalent system, coherency identification of the generators should be clearly defined. The objective of the proposed coherency identification method is to determine the optimal coherent groups of generators with respect to the dynamic response, using the Partitioning Around Medoids (PAM) algorithm. For this purpose, the coherency between generators is first evaluated from the dynamic simulation time response, and in the proposed method this result is then used to define a dissimilarity index. Based on the PAM algorithm, the coherent generator groups are then determined so that the sum of the index in each group is minimized. This approach ensures that the dynamic characteristics of the original system are preserved, by providing the optimized coherency identification. To validate the effectiveness of the technique, simulated cases with an IEEE 39-bus test system are evaluated using PSS/E. The proposed method is compared with an existing coherency identification method, which uses the K-means algorithm, and is found to provide a better estimate of the original system. http://www.mdpi.com/1996-1073/5/11/4417dynamic reductionequivalent circuitspower system modeling&#160
collection DOAJ
language English
format Article
sources DOAJ
author Seung-Il Moon
Jin-Woo Park
Gi-Chan Pyo
spellingShingle Seung-Il Moon
Jin-Woo Park
Gi-Chan Pyo
Coherency Identification of Generators Using a PAM Algorithm for Dynamic Reduction of Power Systems
Energies
dynamic reduction
equivalent circuits
power system modeling&#160
author_facet Seung-Il Moon
Jin-Woo Park
Gi-Chan Pyo
author_sort Seung-Il Moon
title Coherency Identification of Generators Using a PAM Algorithm for Dynamic Reduction of Power Systems
title_short Coherency Identification of Generators Using a PAM Algorithm for Dynamic Reduction of Power Systems
title_full Coherency Identification of Generators Using a PAM Algorithm for Dynamic Reduction of Power Systems
title_fullStr Coherency Identification of Generators Using a PAM Algorithm for Dynamic Reduction of Power Systems
title_full_unstemmed Coherency Identification of Generators Using a PAM Algorithm for Dynamic Reduction of Power Systems
title_sort coherency identification of generators using a pam algorithm for dynamic reduction of power systems
publisher MDPI AG
series Energies
issn 1996-1073
publishDate 2012-11-01
description This paper presents a new coherency identification method for dynamic reduction of a power system. To achieve dynamic reduction, coherency-based equivalence techniques divide generators into groups according to coherency, and then aggregate them. In order to minimize the changes in the dynamic response of the reduced equivalent system, coherency identification of the generators should be clearly defined. The objective of the proposed coherency identification method is to determine the optimal coherent groups of generators with respect to the dynamic response, using the Partitioning Around Medoids (PAM) algorithm. For this purpose, the coherency between generators is first evaluated from the dynamic simulation time response, and in the proposed method this result is then used to define a dissimilarity index. Based on the PAM algorithm, the coherent generator groups are then determined so that the sum of the index in each group is minimized. This approach ensures that the dynamic characteristics of the original system are preserved, by providing the optimized coherency identification. To validate the effectiveness of the technique, simulated cases with an IEEE 39-bus test system are evaluated using PSS/E. The proposed method is compared with an existing coherency identification method, which uses the K-means algorithm, and is found to provide a better estimate of the original system. 
topic dynamic reduction
equivalent circuits
power system modeling&#160
url http://www.mdpi.com/1996-1073/5/11/4417
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AT jinwoopark coherencyidentificationofgeneratorsusingapamalgorithmfordynamicreductionofpowersystems
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