Hybrid energy management strategy based on dynamic setting and coordinated control for urban rail train with PMSM

Abstract Due to the short distance between stations, frequent acceleration and braking for urban rail trains cause voltage fluctuation in the traction network and the regenerative braking energy loss. In this study, a hybrid energy storage system (HESS) was proposed to recover braking energy and sta...

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Main Authors: Xin Wang, Yingbing Luo, Yu Zhou, Yuxin Qin, Bin Qin
Format: Article
Language:English
Published: Wiley 2021-09-01
Series:IET Renewable Power Generation
Online Access:https://doi.org/10.1049/rpg2.12199
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spelling doaj-2d3e0d1cebd74687889e7ea266ac26db2021-08-14T15:44:42ZengWileyIET Renewable Power Generation1752-14161752-14242021-09-0115122740275210.1049/rpg2.12199Hybrid energy management strategy based on dynamic setting and coordinated control for urban rail train with PMSMXin Wang0Yingbing Luo1Yu Zhou2Yuxin Qin3Bin Qin4School of Electrical and Informatiom Engineering Hunan University of Technology Zhuzhou Hunan 412007 ChinaSchool of Electrical and Informatiom Engineering Hunan University of Technology Zhuzhou Hunan 412007 ChinaSchool of Electrical and Informatiom Engineering Hunan University of Technology Zhuzhou Hunan 412007 ChinaSchool of Electrical and Informatiom Engineering Hunan University of Technology Zhuzhou Hunan 412007 ChinaSchool of Electrical and Informatiom Engineering Hunan University of Technology Zhuzhou Hunan 412007 ChinaAbstract Due to the short distance between stations, frequent acceleration and braking for urban rail trains cause voltage fluctuation in the traction network and the regenerative braking energy loss. In this study, a hybrid energy storage system (HESS) was proposed to recover braking energy and stabilize the traction network voltage, where the on‐board ultracapacitors were used to accommodate the rapid exchange of acceleration and braking energy of the permanent magnet traction system while the lithium batteries installed in the bilateral stations provided stable and long‐lasting energy exchange, which can stabilize traction network voltage and be charged at off‐peak night time. In order to realize the energy coordinated control between the permanent magnet traction system and HESS, a real‐time energy management strategy was proposed to dynamically allocate the traction power based on the principle of giving priority to on‐board ultracapacitors while lithium batteries as auxiliary power supply. Moreover, the charging and discharging voltage thresholds of the lithium batteries were dynamically set according to train positions and their charge status. Comparing with the traditional strategies, the RT‐LAB semi‐physical real‐time simulation shows that the proposed strategy can provide more effective energy allocation, and stabilize the voltage fluctuation while maximizing the energy saving.https://doi.org/10.1049/rpg2.12199
collection DOAJ
language English
format Article
sources DOAJ
author Xin Wang
Yingbing Luo
Yu Zhou
Yuxin Qin
Bin Qin
spellingShingle Xin Wang
Yingbing Luo
Yu Zhou
Yuxin Qin
Bin Qin
Hybrid energy management strategy based on dynamic setting and coordinated control for urban rail train with PMSM
IET Renewable Power Generation
author_facet Xin Wang
Yingbing Luo
Yu Zhou
Yuxin Qin
Bin Qin
author_sort Xin Wang
title Hybrid energy management strategy based on dynamic setting and coordinated control for urban rail train with PMSM
title_short Hybrid energy management strategy based on dynamic setting and coordinated control for urban rail train with PMSM
title_full Hybrid energy management strategy based on dynamic setting and coordinated control for urban rail train with PMSM
title_fullStr Hybrid energy management strategy based on dynamic setting and coordinated control for urban rail train with PMSM
title_full_unstemmed Hybrid energy management strategy based on dynamic setting and coordinated control for urban rail train with PMSM
title_sort hybrid energy management strategy based on dynamic setting and coordinated control for urban rail train with pmsm
publisher Wiley
series IET Renewable Power Generation
issn 1752-1416
1752-1424
publishDate 2021-09-01
description Abstract Due to the short distance between stations, frequent acceleration and braking for urban rail trains cause voltage fluctuation in the traction network and the regenerative braking energy loss. In this study, a hybrid energy storage system (HESS) was proposed to recover braking energy and stabilize the traction network voltage, where the on‐board ultracapacitors were used to accommodate the rapid exchange of acceleration and braking energy of the permanent magnet traction system while the lithium batteries installed in the bilateral stations provided stable and long‐lasting energy exchange, which can stabilize traction network voltage and be charged at off‐peak night time. In order to realize the energy coordinated control between the permanent magnet traction system and HESS, a real‐time energy management strategy was proposed to dynamically allocate the traction power based on the principle of giving priority to on‐board ultracapacitors while lithium batteries as auxiliary power supply. Moreover, the charging and discharging voltage thresholds of the lithium batteries were dynamically set according to train positions and their charge status. Comparing with the traditional strategies, the RT‐LAB semi‐physical real‐time simulation shows that the proposed strategy can provide more effective energy allocation, and stabilize the voltage fluctuation while maximizing the energy saving.
url https://doi.org/10.1049/rpg2.12199
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AT yingbingluo hybridenergymanagementstrategybasedondynamicsettingandcoordinatedcontrolforurbanrailtrainwithpmsm
AT yuzhou hybridenergymanagementstrategybasedondynamicsettingandcoordinatedcontrolforurbanrailtrainwithpmsm
AT yuxinqin hybridenergymanagementstrategybasedondynamicsettingandcoordinatedcontrolforurbanrailtrainwithpmsm
AT binqin hybridenergymanagementstrategybasedondynamicsettingandcoordinatedcontrolforurbanrailtrainwithpmsm
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