A Hybrid Reactive Power Control Method of Distributed Generation to Mitigate Voltage Rise in Low-Voltage Grid

A high penetration of distributed generators, such as solar and wind power generators in low voltage network systems, impose voltage rise problems. Reactive power control of distributed generators can contribute to mitigating the voltage rise. In the existing reactive power control, reactive power w...

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Main Authors: Soo-Bin Kim, Seung-Ho Song
Format: Article
Language:English
Published: MDPI AG 2020-04-01
Series:Energies
Subjects:
Online Access:https://www.mdpi.com/1996-1073/13/8/2078
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spelling doaj-6a40bdfde207420987bd037da6a88d552020-11-25T02:21:36ZengMDPI AGEnergies1996-10732020-04-01132078207810.3390/en13082078A Hybrid Reactive Power Control Method of Distributed Generation to Mitigate Voltage Rise in Low-Voltage GridSoo-Bin Kim0Seung-Ho Song1Department of Electrical Engineering, Kwangwoon University, Seoul 01897, KoreaDepartment of Electrical Engineering, Kwangwoon University, Seoul 01897, KoreaA high penetration of distributed generators, such as solar and wind power generators in low voltage network systems, impose voltage rise problems. Reactive power control of distributed generators can contribute to mitigating the voltage rise. In the existing reactive power control, reactive power was controlled using only one local variable, such as voltage at point of connection or the active power output of distributed generator. In case of PF(P) method, which provides certain power factors, depending on the active power of distributed generator, the voltage regulation ability is strong, but network losses are large. Q(V) method, which provides a certain amount of reactive power depending on the local voltage, has few network losses, but the voltage regulation ability is weak. In this paper, a reactive power control method that combines the PF(P) method and Q(V) method was proposed. The proposed method determines the reactive power output by using the active power of the distributed generator and local voltage variables together. The proposed method improves the voltage regulation ability of the reactive power control, while reducing the network losses, as compared to the existing method. The low voltage network system was modeled and simulated to evaluate the performance of the proposed method, in terms of voltage regulation ability and network losses, and the performance of the proposed method and the existing method were compared and analyzed.https://www.mdpi.com/1996-1073/13/8/2078reactive power controlvoltage controlvoltage regulationdistributed generationinverter-based generatordistribution network
collection DOAJ
language English
format Article
sources DOAJ
author Soo-Bin Kim
Seung-Ho Song
spellingShingle Soo-Bin Kim
Seung-Ho Song
A Hybrid Reactive Power Control Method of Distributed Generation to Mitigate Voltage Rise in Low-Voltage Grid
Energies
reactive power control
voltage control
voltage regulation
distributed generation
inverter-based generator
distribution network
author_facet Soo-Bin Kim
Seung-Ho Song
author_sort Soo-Bin Kim
title A Hybrid Reactive Power Control Method of Distributed Generation to Mitigate Voltage Rise in Low-Voltage Grid
title_short A Hybrid Reactive Power Control Method of Distributed Generation to Mitigate Voltage Rise in Low-Voltage Grid
title_full A Hybrid Reactive Power Control Method of Distributed Generation to Mitigate Voltage Rise in Low-Voltage Grid
title_fullStr A Hybrid Reactive Power Control Method of Distributed Generation to Mitigate Voltage Rise in Low-Voltage Grid
title_full_unstemmed A Hybrid Reactive Power Control Method of Distributed Generation to Mitigate Voltage Rise in Low-Voltage Grid
title_sort hybrid reactive power control method of distributed generation to mitigate voltage rise in low-voltage grid
publisher MDPI AG
series Energies
issn 1996-1073
publishDate 2020-04-01
description A high penetration of distributed generators, such as solar and wind power generators in low voltage network systems, impose voltage rise problems. Reactive power control of distributed generators can contribute to mitigating the voltage rise. In the existing reactive power control, reactive power was controlled using only one local variable, such as voltage at point of connection or the active power output of distributed generator. In case of PF(P) method, which provides certain power factors, depending on the active power of distributed generator, the voltage regulation ability is strong, but network losses are large. Q(V) method, which provides a certain amount of reactive power depending on the local voltage, has few network losses, but the voltage regulation ability is weak. In this paper, a reactive power control method that combines the PF(P) method and Q(V) method was proposed. The proposed method determines the reactive power output by using the active power of the distributed generator and local voltage variables together. The proposed method improves the voltage regulation ability of the reactive power control, while reducing the network losses, as compared to the existing method. The low voltage network system was modeled and simulated to evaluate the performance of the proposed method, in terms of voltage regulation ability and network losses, and the performance of the proposed method and the existing method were compared and analyzed.
topic reactive power control
voltage control
voltage regulation
distributed generation
inverter-based generator
distribution network
url https://www.mdpi.com/1996-1073/13/8/2078
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