Investigation of local load effect on damping characteristics of synchronous generator using transfer-function block-diagram model
The transfer-function block-diagram model of single-machine infinite-bus power system has been a popular analytical tool amongst power engineers for explaining and assessing synchronous generator dynamic behaviors. In previous studies, the effects of local load together with damper circuit on genera...
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Prince of Songkla University
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Online Access: | http://www.sjst.psu.ac.th/journal/27-4-pdf/14-local-load.pdf |
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doaj-cad6516be5744ca99cbebc71b6efa8ac2020-11-24T22:31:31ZengPrince of Songkla UniversitySongklanakarin Journal of Science and Technology (SJST)0125-33952005-07-01274827838Investigation of local load effect on damping characteristics of synchronous generator using transfer-function block-diagram modelPichai AreeThe transfer-function block-diagram model of single-machine infinite-bus power system has been a popular analytical tool amongst power engineers for explaining and assessing synchronous generator dynamic behaviors. In previous studies, the effects of local load together with damper circuit on generator damping have not yet been addressed because neither of them was integrated into this model. Since the model only accounts for the generator main field circuit, it may not always yield a realistic damping assessment due to lack of damper circuit representation. This paper presents an extended transfer-function block-diagram model, which includes one of the q-axis damper circuits as well as local load. This allows a more realistic investigation of the local load effect on the generator damping. The extended model is applied to assess thegenerator dynamic performance. The results show that the damping power components mostly derived from the q-axis damper and the field circuits can be improved according to the local load. The frequency response method is employed to carry out the fundamental analysis.http://www.sjst.psu.ac.th/journal/27-4-pdf/14-local-load.pdfpower system stabilitydampinglocal load |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Pichai Aree |
spellingShingle |
Pichai Aree Investigation of local load effect on damping characteristics of synchronous generator using transfer-function block-diagram model Songklanakarin Journal of Science and Technology (SJST) power system stability damping local load |
author_facet |
Pichai Aree |
author_sort |
Pichai Aree |
title |
Investigation of local load effect on damping characteristics of synchronous generator using transfer-function block-diagram model |
title_short |
Investigation of local load effect on damping characteristics of synchronous generator using transfer-function block-diagram model |
title_full |
Investigation of local load effect on damping characteristics of synchronous generator using transfer-function block-diagram model |
title_fullStr |
Investigation of local load effect on damping characteristics of synchronous generator using transfer-function block-diagram model |
title_full_unstemmed |
Investigation of local load effect on damping characteristics of synchronous generator using transfer-function block-diagram model |
title_sort |
investigation of local load effect on damping characteristics of synchronous generator using transfer-function block-diagram model |
publisher |
Prince of Songkla University |
series |
Songklanakarin Journal of Science and Technology (SJST) |
issn |
0125-3395 |
publishDate |
2005-07-01 |
description |
The transfer-function block-diagram model of single-machine infinite-bus power system has been a popular analytical tool amongst power engineers for explaining and assessing synchronous generator dynamic behaviors. In previous studies, the effects of local load together with damper circuit on generator damping have not yet been addressed because neither of them was integrated into this model. Since the model only accounts for the generator main field circuit, it may not always yield a realistic damping assessment due to lack of damper circuit representation. This paper presents an extended transfer-function block-diagram model, which includes one of the q-axis damper circuits as well as local load. This allows a more realistic investigation of the local load effect on the generator damping. The extended model is applied to assess thegenerator dynamic performance. The results show that the damping power components mostly derived from the q-axis damper and the field circuits can be improved according to the local load. The frequency response method is employed to carry out the fundamental analysis. |
topic |
power system stability damping local load |
url |
http://www.sjst.psu.ac.th/journal/27-4-pdf/14-local-load.pdf |
work_keys_str_mv |
AT pichaiaree investigationoflocalloadeffectondampingcharacteristicsofsynchronousgeneratorusingtransferfunctionblockdiagrammodel |
_version_ |
1725736729353125888 |