Impact of Quadrature Booster on Power-System State Estimation in Polar Coordinates

The paper concerns the estimation of the state of a power system in which there is a phase shifter called a quadrature booster. The aim of the paper is a comparative analysis of two different cases including the quadrature booster in the state estimation. In the first case, the quadrature booster is...

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Main Authors: Tomasz Okon, Kazimierz Wilkosz
Format: Article
Language:English
Published: MDPI AG 2021-09-01
Series:Energies
Subjects:
Online Access:https://www.mdpi.com/1996-1073/14/18/5992
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spelling doaj-6758a593efe34cdfa467db192a93ecd92021-09-26T00:06:18ZengMDPI AGEnergies1996-10732021-09-01145992599210.3390/en14185992Impact of Quadrature Booster on Power-System State Estimation in Polar CoordinatesTomasz Okon0Kazimierz Wilkosz1Department of Electrical Power Engineering (K36), Wroclaw University of Science and Technology, Wybrzeze Wyspianskiego 27, 50-370 Wroclaw, PolandDepartment of Electrical Power Engineering (K36), Wroclaw University of Science and Technology, Wybrzeze Wyspianskiego 27, 50-370 Wroclaw, PolandThe paper concerns the estimation of the state of a power system in which there is a phase shifter called a quadrature booster. The aim of the paper is a comparative analysis of two different cases including the quadrature booster in the state estimation. In the first case, the quadrature booster is represented by a model consisting of two real voltage sources, one in series with a power line and the other in a shunt branch. In the second case, in the power system model, the real branch with the quadrature booster is represented as off at the end where the considered quadrature booster is actually installed. The state estimation is assumed to be carried out in the polar coordinate system. The properties of the state estimation are characterized by: the number of iterations in the calculation process, the index of conditioning of the matrix of coefficients in the equations to be solved (cond(<b>G</b>)), and ratio <i>Je</i>/<i>Jm</i>, which is a measure of the accuracy of the estimation. Using IEEE 14-bus test system, investigations are carried out in such a way as to cover the entire state space of the power system as possible. In the investigations, Monte Carlo experiments are carried out for each of the considered cases of the state estimation. Each of these cases is also analyzed from the point of view of the assumed definition of the state estimation. Investigations show that in the first of the previously described cases, the state estimation is more accurate, but there are more iterations in the calculations and worse conditioning of the estimation process. The comparative analysis also shows that, the accuracy of the results obtained in each of the considered cases is practically independent of the coordinate system in which the estimation calculations are performed. Taking into account the number of iterations in the estimation process and index cond(<b>G</b>), it can be concluded that the implementation of each of the above-mentioned estimation cases in the rectangular coordinate system is more reasonable.https://www.mdpi.com/1996-1073/14/18/5992phase shifterquadrature boosterstate estimationpower system
collection DOAJ
language English
format Article
sources DOAJ
author Tomasz Okon
Kazimierz Wilkosz
spellingShingle Tomasz Okon
Kazimierz Wilkosz
Impact of Quadrature Booster on Power-System State Estimation in Polar Coordinates
Energies
phase shifter
quadrature booster
state estimation
power system
author_facet Tomasz Okon
Kazimierz Wilkosz
author_sort Tomasz Okon
title Impact of Quadrature Booster on Power-System State Estimation in Polar Coordinates
title_short Impact of Quadrature Booster on Power-System State Estimation in Polar Coordinates
title_full Impact of Quadrature Booster on Power-System State Estimation in Polar Coordinates
title_fullStr Impact of Quadrature Booster on Power-System State Estimation in Polar Coordinates
title_full_unstemmed Impact of Quadrature Booster on Power-System State Estimation in Polar Coordinates
title_sort impact of quadrature booster on power-system state estimation in polar coordinates
publisher MDPI AG
series Energies
issn 1996-1073
publishDate 2021-09-01
description The paper concerns the estimation of the state of a power system in which there is a phase shifter called a quadrature booster. The aim of the paper is a comparative analysis of two different cases including the quadrature booster in the state estimation. In the first case, the quadrature booster is represented by a model consisting of two real voltage sources, one in series with a power line and the other in a shunt branch. In the second case, in the power system model, the real branch with the quadrature booster is represented as off at the end where the considered quadrature booster is actually installed. The state estimation is assumed to be carried out in the polar coordinate system. The properties of the state estimation are characterized by: the number of iterations in the calculation process, the index of conditioning of the matrix of coefficients in the equations to be solved (cond(<b>G</b>)), and ratio <i>Je</i>/<i>Jm</i>, which is a measure of the accuracy of the estimation. Using IEEE 14-bus test system, investigations are carried out in such a way as to cover the entire state space of the power system as possible. In the investigations, Monte Carlo experiments are carried out for each of the considered cases of the state estimation. Each of these cases is also analyzed from the point of view of the assumed definition of the state estimation. Investigations show that in the first of the previously described cases, the state estimation is more accurate, but there are more iterations in the calculations and worse conditioning of the estimation process. The comparative analysis also shows that, the accuracy of the results obtained in each of the considered cases is practically independent of the coordinate system in which the estimation calculations are performed. Taking into account the number of iterations in the estimation process and index cond(<b>G</b>), it can be concluded that the implementation of each of the above-mentioned estimation cases in the rectangular coordinate system is more reasonable.
topic phase shifter
quadrature booster
state estimation
power system
url https://www.mdpi.com/1996-1073/14/18/5992
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