Increasing Electric Vehicle Penetration Using Smart Switching and Emergency Uprating

One of the key challenges facing distribution network operators today is the expected increase in electric vehicles. The increased load from EV charging will result in distribution assets becoming “thermally overloaded” due to higher operating temperatures. In addition to the issue of increased load...

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Main Authors: Shuran Liu, Meng Cheng, Qinhao Xing, Yizhe Jiang, Qianliang Xiang, Hailian Xie
Format: Article
Language:English
Published: Frontiers Media S.A. 2021-07-01
Series:Frontiers in Energy Research
Subjects:
Online Access:https://www.frontiersin.org/articles/10.3389/fenrg.2021.672721/full
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spelling doaj-4e7cc65fcd7948ff8b805db6a658d6942021-07-02T05:34:14ZengFrontiers Media S.A.Frontiers in Energy Research2296-598X2021-07-01910.3389/fenrg.2021.672721672721Increasing Electric Vehicle Penetration Using Smart Switching and Emergency UpratingShuran LiuMeng ChengQinhao XingYizhe JiangQianliang XiangHailian XieOne of the key challenges facing distribution network operators today is the expected increase in electric vehicles. The increased load from EV charging will result in distribution assets becoming “thermally overloaded” due to higher operating temperatures. In addition to the issue of increased load, we have a limited understanding of the behavior and performance of the distribution assets and their potential to accept the increased load. It has been well acknowledged that EVs increase the network loading level, leading to a reduced system reliability performance. These results have not been quantified in a realistic case study, including actual cable rating and design properties. To address this gap, this paper proposes a novel methodology in the existing power network reliability evaluation framework, which quantifies the impact of different EV penetration levels on distribution network reliability, and the thermal performance of distribution cables. Novel approaches using smart switching technology and emergency uprating are proposed to reduce the peak power demand caused by EVs, in order to reinforce the reliability of the grid and to boost the maximum allowable EV penetration in the distribution networks. The methodology was applied using a case study on the modified EV-integrated RBTS (Roy Billinton Test System) bus four distribution network. The results showed that the negative impact of EVs on network performance can be mitigated by the implementation of smart switching technology. The peak demand under contingencies can also be accepted by the cables though emergency uprating. The frequency and duration of EV demand interruption was also significantly reduced. Thus, a higher EV penetration can be accommodated.https://www.frontiersin.org/articles/10.3389/fenrg.2021.672721/fullelectric vehiclesdistribution networksreliability evaluationemergency upratingsmart switching
collection DOAJ
language English
format Article
sources DOAJ
author Shuran Liu
Meng Cheng
Qinhao Xing
Yizhe Jiang
Qianliang Xiang
Hailian Xie
spellingShingle Shuran Liu
Meng Cheng
Qinhao Xing
Yizhe Jiang
Qianliang Xiang
Hailian Xie
Increasing Electric Vehicle Penetration Using Smart Switching and Emergency Uprating
Frontiers in Energy Research
electric vehicles
distribution networks
reliability evaluation
emergency uprating
smart switching
author_facet Shuran Liu
Meng Cheng
Qinhao Xing
Yizhe Jiang
Qianliang Xiang
Hailian Xie
author_sort Shuran Liu
title Increasing Electric Vehicle Penetration Using Smart Switching and Emergency Uprating
title_short Increasing Electric Vehicle Penetration Using Smart Switching and Emergency Uprating
title_full Increasing Electric Vehicle Penetration Using Smart Switching and Emergency Uprating
title_fullStr Increasing Electric Vehicle Penetration Using Smart Switching and Emergency Uprating
title_full_unstemmed Increasing Electric Vehicle Penetration Using Smart Switching and Emergency Uprating
title_sort increasing electric vehicle penetration using smart switching and emergency uprating
publisher Frontiers Media S.A.
series Frontiers in Energy Research
issn 2296-598X
publishDate 2021-07-01
description One of the key challenges facing distribution network operators today is the expected increase in electric vehicles. The increased load from EV charging will result in distribution assets becoming “thermally overloaded” due to higher operating temperatures. In addition to the issue of increased load, we have a limited understanding of the behavior and performance of the distribution assets and their potential to accept the increased load. It has been well acknowledged that EVs increase the network loading level, leading to a reduced system reliability performance. These results have not been quantified in a realistic case study, including actual cable rating and design properties. To address this gap, this paper proposes a novel methodology in the existing power network reliability evaluation framework, which quantifies the impact of different EV penetration levels on distribution network reliability, and the thermal performance of distribution cables. Novel approaches using smart switching technology and emergency uprating are proposed to reduce the peak power demand caused by EVs, in order to reinforce the reliability of the grid and to boost the maximum allowable EV penetration in the distribution networks. The methodology was applied using a case study on the modified EV-integrated RBTS (Roy Billinton Test System) bus four distribution network. The results showed that the negative impact of EVs on network performance can be mitigated by the implementation of smart switching technology. The peak demand under contingencies can also be accepted by the cables though emergency uprating. The frequency and duration of EV demand interruption was also significantly reduced. Thus, a higher EV penetration can be accommodated.
topic electric vehicles
distribution networks
reliability evaluation
emergency uprating
smart switching
url https://www.frontiersin.org/articles/10.3389/fenrg.2021.672721/full
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