Adaptive Algorithm of a Tap-Changer Controller of the Power Transformer Supplying the Radial Network Reducing the Risk of Voltage Collapse

The development of renewable energy, including wind farms, photovoltaic farms as well as prosumer installations, and the development of electromobility pose new challenges for network operators. The results of these changes are, among others, the change of network load profiles and load flows determ...

Full description

Bibliographic Details
Main Authors: Robert Małkowski, Michał Izdebski, Piotr Miller
Format: Article
Language:English
Published: MDPI AG 2020-10-01
Series:Energies
Subjects:
Online Access:https://www.mdpi.com/1996-1073/13/20/5403
_version_ 1797550806908534784
author Robert Małkowski
Michał Izdebski
Piotr Miller
author_facet Robert Małkowski
Michał Izdebski
Piotr Miller
author_sort Robert Małkowski
collection DOAJ
description The development of renewable energy, including wind farms, photovoltaic farms as well as prosumer installations, and the development of electromobility pose new challenges for network operators. The results of these changes are, among others, the change of network load profiles and load flows determining greater volatility of voltages. Most of the proposed solutions do not assume a change of the transformer regulator algorithm. The possibilities of improving the quality of regulation, which can be found in the literature, most often include various methods of coordination of the operation of the transformer regulator with various devices operating in the Medium-Voltage (MV) network. This coordination can be decentralized or centralized. Unfortunately, the proposed solutions often require costly technical resources and/or large amounts of real-time data monitoring. The goal of the authors was to create an algorithm that extends the functionality of typical transformer control algorithms. The proposed solution allows for reducing the risk of voltage collapse. The performance of the proposed algorithm was validated using multivariate computer simulations and tests with the use of a physical model of the distribution network. The DIgSILENT PowerFactory environment was used to develop the simulation model of the proposed algorithm. Then, tests were conducted on real devices installed in the LINTEˆ2 Laboratory at the Gdańsk University of Technology, Poland. Selected test results are included in this paper. All results have shown that the proposed algorithm makes it possible to increase the reserve of the voltage stability of the node, in which it is applied, thus mitigating the risk of a voltage collapse occurring. The proposed algorithm does not require complex and costly technical solutions. Owing to its simplicity, it has a high potential for practical application, as confirmed by the real-time control experiment in the laboratory.
first_indexed 2024-03-10T15:34:41Z
format Article
id doaj.art-9328318d1a6c4d0dace4b456650e398f
institution Directory Open Access Journal
issn 1996-1073
language English
last_indexed 2024-03-10T15:34:41Z
publishDate 2020-10-01
publisher MDPI AG
record_format Article
series Energies
spelling doaj.art-9328318d1a6c4d0dace4b456650e398f2023-11-20T17:20:37ZengMDPI AGEnergies1996-10732020-10-011320540310.3390/en13205403Adaptive Algorithm of a Tap-Changer Controller of the Power Transformer Supplying the Radial Network Reducing the Risk of Voltage CollapseRobert Małkowski0Michał Izdebski1Piotr Miller2Department of Electrical Power Engineering, Faculty of Electrical and Control Engineering, Gdańsk University of Technology, 80-233 Gdańsk, PolandGdansk Division, Institute of Power Engineering, 80-870 Gdańsk, PolandDepartment of Power Engineering, Faculty of Electrical Engineering and Computer Science, Lublin University of Technology, 20-618 Lublin, PolandThe development of renewable energy, including wind farms, photovoltaic farms as well as prosumer installations, and the development of electromobility pose new challenges for network operators. The results of these changes are, among others, the change of network load profiles and load flows determining greater volatility of voltages. Most of the proposed solutions do not assume a change of the transformer regulator algorithm. The possibilities of improving the quality of regulation, which can be found in the literature, most often include various methods of coordination of the operation of the transformer regulator with various devices operating in the Medium-Voltage (MV) network. This coordination can be decentralized or centralized. Unfortunately, the proposed solutions often require costly technical resources and/or large amounts of real-time data monitoring. The goal of the authors was to create an algorithm that extends the functionality of typical transformer control algorithms. The proposed solution allows for reducing the risk of voltage collapse. The performance of the proposed algorithm was validated using multivariate computer simulations and tests with the use of a physical model of the distribution network. The DIgSILENT PowerFactory environment was used to develop the simulation model of the proposed algorithm. Then, tests were conducted on real devices installed in the LINTEˆ2 Laboratory at the Gdańsk University of Technology, Poland. Selected test results are included in this paper. All results have shown that the proposed algorithm makes it possible to increase the reserve of the voltage stability of the node, in which it is applied, thus mitigating the risk of a voltage collapse occurring. The proposed algorithm does not require complex and costly technical solutions. Owing to its simplicity, it has a high potential for practical application, as confirmed by the real-time control experiment in the laboratory.https://www.mdpi.com/1996-1073/13/20/5403voltage collapsevoltage controltransformer controlleradaptive algorithmvoltage regulationdistribution system
spellingShingle Robert Małkowski
Michał Izdebski
Piotr Miller
Adaptive Algorithm of a Tap-Changer Controller of the Power Transformer Supplying the Radial Network Reducing the Risk of Voltage Collapse
Energies
voltage collapse
voltage control
transformer controller
adaptive algorithm
voltage regulation
distribution system
title Adaptive Algorithm of a Tap-Changer Controller of the Power Transformer Supplying the Radial Network Reducing the Risk of Voltage Collapse
title_full Adaptive Algorithm of a Tap-Changer Controller of the Power Transformer Supplying the Radial Network Reducing the Risk of Voltage Collapse
title_fullStr Adaptive Algorithm of a Tap-Changer Controller of the Power Transformer Supplying the Radial Network Reducing the Risk of Voltage Collapse
title_full_unstemmed Adaptive Algorithm of a Tap-Changer Controller of the Power Transformer Supplying the Radial Network Reducing the Risk of Voltage Collapse
title_short Adaptive Algorithm of a Tap-Changer Controller of the Power Transformer Supplying the Radial Network Reducing the Risk of Voltage Collapse
title_sort adaptive algorithm of a tap changer controller of the power transformer supplying the radial network reducing the risk of voltage collapse
topic voltage collapse
voltage control
transformer controller
adaptive algorithm
voltage regulation
distribution system
url https://www.mdpi.com/1996-1073/13/20/5403
work_keys_str_mv AT robertmałkowski adaptivealgorithmofatapchangercontrollerofthepowertransformersupplyingtheradialnetworkreducingtheriskofvoltagecollapse
AT michałizdebski adaptivealgorithmofatapchangercontrollerofthepowertransformersupplyingtheradialnetworkreducingtheriskofvoltagecollapse
AT piotrmiller adaptivealgorithmofatapchangercontrollerofthepowertransformersupplyingtheradialnetworkreducingtheriskofvoltagecollapse