Space-vector state-equation analysis of three-phase transients

This paper investigates the analysis of transients in three-phase systems by means of the Clarke transformation. Under the commonly accepted assumption of phase symmetry (i.e., three-phase basic elements with symmetrical parameters), the alpha and beta dynamic circuits are independent and characteri...

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Main Authors: Diego Bellan, Gabrio Superti-Furga
Format: Article
Language:English
Published: ESRGroups 2018-03-01
Series:Journal of Electrical Systems
Subjects:
Online Access:https://journal.esrgroups.org/jes/papers/14_1_15.pdf
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spelling doaj-2bfbca7d7df541f3ac41eddd16cff3962020-11-25T02:05:49ZengESRGroupsJournal of Electrical Systems1112-52091112-52092018-03-01141188198Space-vector state-equation analysis of three-phase transientsDiego BellanGabrio Superti-FurgaThis paper investigates the analysis of transients in three-phase systems by means of the Clarke transformation. Under the commonly accepted assumption of phase symmetry (i.e., three-phase basic elements with symmetrical parameters), the alpha and beta dynamic circuits are independent and characterized by the same circuit parameters. Thus, since the space vector is defined as the combination of alpha and beta variables, the state equation approach based on space vector variables results in an effective tool for three-phase transient analysis. In fact, the space vector approach presented in this work exploits the system symmetry providing state equations with reduced dynamic order. Moreover, it is shown that the space vector shape on the complex plane provides a concise and rich representation of the transients of the three phase variables. Indeed, despite the assumption of system symmetry, it is shown that the transient behavior of the three phase variables is not symmetrical. In particular, maximum over voltages and over currents can be easily detected from the space vector shape. Numerical examples are presented in order to show the effectiveness and adequacy of the general methodology presented in this work for the analysis of three-phase dynamic circuits https://journal.esrgroups.org/jes/papers/14_1_15.pdfthree-phase transient analysisspace vectorclarke transformationstate equation
collection DOAJ
language English
format Article
sources DOAJ
author Diego Bellan
Gabrio Superti-Furga
spellingShingle Diego Bellan
Gabrio Superti-Furga
Space-vector state-equation analysis of three-phase transients
Journal of Electrical Systems
three-phase transient analysis
space vector
clarke transformation
state equation
author_facet Diego Bellan
Gabrio Superti-Furga
author_sort Diego Bellan
title Space-vector state-equation analysis of three-phase transients
title_short Space-vector state-equation analysis of three-phase transients
title_full Space-vector state-equation analysis of three-phase transients
title_fullStr Space-vector state-equation analysis of three-phase transients
title_full_unstemmed Space-vector state-equation analysis of three-phase transients
title_sort space-vector state-equation analysis of three-phase transients
publisher ESRGroups
series Journal of Electrical Systems
issn 1112-5209
1112-5209
publishDate 2018-03-01
description This paper investigates the analysis of transients in three-phase systems by means of the Clarke transformation. Under the commonly accepted assumption of phase symmetry (i.e., three-phase basic elements with symmetrical parameters), the alpha and beta dynamic circuits are independent and characterized by the same circuit parameters. Thus, since the space vector is defined as the combination of alpha and beta variables, the state equation approach based on space vector variables results in an effective tool for three-phase transient analysis. In fact, the space vector approach presented in this work exploits the system symmetry providing state equations with reduced dynamic order. Moreover, it is shown that the space vector shape on the complex plane provides a concise and rich representation of the transients of the three phase variables. Indeed, despite the assumption of system symmetry, it is shown that the transient behavior of the three phase variables is not symmetrical. In particular, maximum over voltages and over currents can be easily detected from the space vector shape. Numerical examples are presented in order to show the effectiveness and adequacy of the general methodology presented in this work for the analysis of three-phase dynamic circuits
topic three-phase transient analysis
space vector
clarke transformation
state equation
url https://journal.esrgroups.org/jes/papers/14_1_15.pdf
work_keys_str_mv AT diegobellan spacevectorstateequationanalysisofthreephasetransients
AT gabriosupertifurga spacevectorstateequationanalysisofthreephasetransients
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