A Vector-Controlled Distributed Generator Model for a Power Flow Based on a Three-Phase Current Injection Method

This paper proposes a vector-controlled distributed generator (DG) model for a power flow based on a three-phase current injection method (TCIM). In order to represent the DG models in the power flow, steady-state phase current output equations are formulated. Using these equations, the TCIM power f...

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Main Authors: Seon-Ju Ahn, Pyeong-Ik Hwang, Seung-Il Moon
Format: Article
Language:English
Published: MDPI AG 2013-08-01
Series:Energies
Subjects:
Online Access:http://www.mdpi.com/1996-1073/6/8/4269
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spelling doaj-b7332e5b0a7342e68a67f8a6b9c634342020-11-25T00:25:10ZengMDPI AGEnergies1996-10732013-08-01684269428710.3390/en6084269A Vector-Controlled Distributed Generator Model for a Power Flow Based on a Three-Phase Current Injection MethodSeon-Ju AhnPyeong-Ik HwangSeung-Il MoonThis paper proposes a vector-controlled distributed generator (DG) model for a power flow based on a three-phase current injection method (TCIM). In order to represent the DG models in the power flow, steady-state phase current output equations are formulated. Using these equations, the TCIM power flow formulation is modified to include the DG models. In the proposed power flow, a DG-connected bus is modeled as either a load bus (PQ bus) or a voltage-controlled bus (PV bus), depending on the control mode of the reactive power. However, unlike conventional bus models, the values of the DG-connected bus models are represented by three-phase quantities: three-phase active and reactive power output for a PQ bus, and three-phase active power and positive-sequence voltage for a PV bus. In addition, a method is proposed for representing the reactive power limit of a voltage-control-mode DG by using the q-axis current limit. Utilizing a modified IEEE 13-bus test system, the accuracy of the proposed method is verified by comparison to the power systems computer aided design (PSCAD) model. Furthermore, the effect of the number of DGs on the convergence rate is analyzed, using the IEEE 123-bus test system.http://www.mdpi.com/1996-1073/6/8/4269current injection methoddistributed generator modelsteady-state modelthree-phase unbalanced power flowvector-controlled DG
collection DOAJ
language English
format Article
sources DOAJ
author Seon-Ju Ahn
Pyeong-Ik Hwang
Seung-Il Moon
spellingShingle Seon-Ju Ahn
Pyeong-Ik Hwang
Seung-Il Moon
A Vector-Controlled Distributed Generator Model for a Power Flow Based on a Three-Phase Current Injection Method
Energies
current injection method
distributed generator model
steady-state model
three-phase unbalanced power flow
vector-controlled DG
author_facet Seon-Ju Ahn
Pyeong-Ik Hwang
Seung-Il Moon
author_sort Seon-Ju Ahn
title A Vector-Controlled Distributed Generator Model for a Power Flow Based on a Three-Phase Current Injection Method
title_short A Vector-Controlled Distributed Generator Model for a Power Flow Based on a Three-Phase Current Injection Method
title_full A Vector-Controlled Distributed Generator Model for a Power Flow Based on a Three-Phase Current Injection Method
title_fullStr A Vector-Controlled Distributed Generator Model for a Power Flow Based on a Three-Phase Current Injection Method
title_full_unstemmed A Vector-Controlled Distributed Generator Model for a Power Flow Based on a Three-Phase Current Injection Method
title_sort vector-controlled distributed generator model for a power flow based on a three-phase current injection method
publisher MDPI AG
series Energies
issn 1996-1073
publishDate 2013-08-01
description This paper proposes a vector-controlled distributed generator (DG) model for a power flow based on a three-phase current injection method (TCIM). In order to represent the DG models in the power flow, steady-state phase current output equations are formulated. Using these equations, the TCIM power flow formulation is modified to include the DG models. In the proposed power flow, a DG-connected bus is modeled as either a load bus (PQ bus) or a voltage-controlled bus (PV bus), depending on the control mode of the reactive power. However, unlike conventional bus models, the values of the DG-connected bus models are represented by three-phase quantities: three-phase active and reactive power output for a PQ bus, and three-phase active power and positive-sequence voltage for a PV bus. In addition, a method is proposed for representing the reactive power limit of a voltage-control-mode DG by using the q-axis current limit. Utilizing a modified IEEE 13-bus test system, the accuracy of the proposed method is verified by comparison to the power systems computer aided design (PSCAD) model. Furthermore, the effect of the number of DGs on the convergence rate is analyzed, using the IEEE 123-bus test system.
topic current injection method
distributed generator model
steady-state model
three-phase unbalanced power flow
vector-controlled DG
url http://www.mdpi.com/1996-1073/6/8/4269
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