Performance of the battery energy storage systems based on cascaded H-bridge multilevel converter
The battery energy storage system (BESS) based on the cascaded multilevel converter, that consists of cascaded H-bridge converter, is one of the most promising and interesting options, which is taken to compensate the instability of electric power grid when integrated with renewable sources such as...
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Format: | Article |
Language: | English |
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Wiley
2019-04-01
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Series: | The Journal of Engineering |
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Online Access: | https://digital-library.theiet.org/content/journals/10.1049/joe.2018.8397 |
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author | Abuzaid Saeed Gadalla Xiangwu Yan Hashim Hasabelrasul |
author_facet | Abuzaid Saeed Gadalla Xiangwu Yan Hashim Hasabelrasul |
author_sort | Abuzaid Saeed Gadalla |
collection | DOAJ |
description | The battery energy storage system (BESS) based on the cascaded multilevel converter, that consists of cascaded H-bridge converter, is one of the most promising and interesting options, which is taken to compensate the instability of electric power grid when integrated with renewable sources such as photovoltaic (PV) and wind energy. This article describes 14.14 kV, 2 MW, and 1000 Ah BESSs based on a three-phase cascaded H-bridge multilevel converter using lithium–ion batteries. Therefore, the article focuses on the performance of the system integrated with both the electric power grid and the local load power applications. Moreover, the control of the system is based on active power control and state-of-charge balance control of the individual cell and phase, which depends on superimposing the AC voltage and the zero-sequence voltage injection. Finally, using MATLAB/Simulink tools, the simulation results obviously verify the controller's performance and efficiency as well. |
first_indexed | 2024-12-13T18:21:41Z |
format | Article |
id | doaj.art-84d48666538b47abb649aff9949d7cbe |
institution | Directory Open Access Journal |
issn | 2051-3305 |
language | English |
last_indexed | 2024-12-13T18:21:41Z |
publishDate | 2019-04-01 |
publisher | Wiley |
record_format | Article |
series | The Journal of Engineering |
spelling | doaj.art-84d48666538b47abb649aff9949d7cbe2022-12-21T23:35:42ZengWileyThe Journal of Engineering2051-33052019-04-0110.1049/joe.2018.8397JOE.2018.8397Performance of the battery energy storage systems based on cascaded H-bridge multilevel converterAbuzaid Saeed Gadalla0Xiangwu Yan1Hashim Hasabelrasul2Hebei Key Laboratory of Distributed Energy Storage and Micro-grid, School of Electrical & Electronic Engineering, North China Electric Power UniversityHebei Key Laboratory of Distributed Energy Storage and Micro-grid, School of Electrical & Electronic Engineering, North China Electric Power UniversityHebei Key Laboratory of Distributed Energy Storage and Micro-grid, School of Electrical & Electronic Engineering, North China Electric Power UniversityThe battery energy storage system (BESS) based on the cascaded multilevel converter, that consists of cascaded H-bridge converter, is one of the most promising and interesting options, which is taken to compensate the instability of electric power grid when integrated with renewable sources such as photovoltaic (PV) and wind energy. This article describes 14.14 kV, 2 MW, and 1000 Ah BESSs based on a three-phase cascaded H-bridge multilevel converter using lithium–ion batteries. Therefore, the article focuses on the performance of the system integrated with both the electric power grid and the local load power applications. Moreover, the control of the system is based on active power control and state-of-charge balance control of the individual cell and phase, which depends on superimposing the AC voltage and the zero-sequence voltage injection. Finally, using MATLAB/Simulink tools, the simulation results obviously verify the controller's performance and efficiency as well.https://digital-library.theiet.org/content/journals/10.1049/joe.2018.8397power controlsecondary cellspower gridspower convertorsbattery storage plantspower generation controlbridge circuitslithium compoundselectric power gridlocal load power applicationsactive power controlbattery energy storage systemthree-phase cascaded H-bridge multilevel converterlithium–ion batteriesstate-of-charge balance controlMATLAB/Simulink toolsvoltage 14.14 kVpower 2.0 MW |
spellingShingle | Abuzaid Saeed Gadalla Xiangwu Yan Hashim Hasabelrasul Performance of the battery energy storage systems based on cascaded H-bridge multilevel converter The Journal of Engineering power control secondary cells power grids power convertors battery storage plants power generation control bridge circuits lithium compounds electric power grid local load power applications active power control battery energy storage system three-phase cascaded H-bridge multilevel converter lithium–ion batteries state-of-charge balance control MATLAB/Simulink tools voltage 14.14 kV power 2.0 MW |
title | Performance of the battery energy storage systems based on cascaded H-bridge multilevel converter |
title_full | Performance of the battery energy storage systems based on cascaded H-bridge multilevel converter |
title_fullStr | Performance of the battery energy storage systems based on cascaded H-bridge multilevel converter |
title_full_unstemmed | Performance of the battery energy storage systems based on cascaded H-bridge multilevel converter |
title_short | Performance of the battery energy storage systems based on cascaded H-bridge multilevel converter |
title_sort | performance of the battery energy storage systems based on cascaded h bridge multilevel converter |
topic | power control secondary cells power grids power convertors battery storage plants power generation control bridge circuits lithium compounds electric power grid local load power applications active power control battery energy storage system three-phase cascaded H-bridge multilevel converter lithium–ion batteries state-of-charge balance control MATLAB/Simulink tools voltage 14.14 kV power 2.0 MW |
url | https://digital-library.theiet.org/content/journals/10.1049/joe.2018.8397 |
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