Short Circuit Effects on HV Feeders of Optimally Located Electric Vehicle Fast Charging Stations

被引:1
作者
Kaya, Fikret [1 ]
Akar, Onur [2 ]
机构
[1] Marmara Univ, Inst Pure & Appl Sci, TR-34722 Istanbul, Turkiye
[2] Marmara Univ, Dept Elect & Automat, TR-34722 Istanbul, Turkiye
关键词
Distribution network; optimal positioning; EV; EVFCS; short circuit; SYSTEMS; STANDARDS; IMPACTS;
D O I
10.1109/ACCESS.2024.3383433
中图分类号
TP [自动化技术、计算机技术];
学科分类号
0812 ;
摘要
Today, there is a need to expand the network of fast charging stations to encourage the use of Electric Vehicles (EV). Fast charging stations are considered mobile loads, unlike conventional electric loads. This situation brings problems in electrical distribution systems. In addition, there will be problems caused by short circuits that occur for any reason in the networks to which EVs are connected. Considering the concerns about what these problems may be and how they may be reflected in the network, it is inevitable to examine the optimal positioning of the EV on the distribution network and its possible short-circuit effects. In this study, in the Istanbul/Vanikoy pilot region, HV/LV distribution feeders and substations in the region were selected using the distribution company infrastructure. An algorithm was created using multiple location data to determine the optimal locations of one-phase and three-phase Electric Vehicle Fast Charging Stations (EVFCS) on the distribution network. Simulation of short circuit types of the system was carried out using real-time technical data such as location data of distribution transformers, power data, load density, number and length of feeders, system protection, and control element data, based on optimal locations. The effects of short circuit types on the electricity distribution network, depending on the load density of residences, other structures, and optimally located urban EVFCS, connected to the distribution transformer feeders, were analyzed.
引用
收藏
页码:47842 / 47853
页数:12
相关论文
共 25 条
[1]   Location of transformers during the extension of an electricity distribution network* [J].
Akar, Onur ;
Terzi, Umit Kemalettin ;
Ozgonenel, Okan .
ELECTRIC POWER SYSTEMS RESEARCH, 2022, 211
[2]  
Andrade J. J., 2012, IEEE PES INNOV SMART, P1, DOI [10.1109/ISGT.2012.6175684, DOI 10.1109/ISGT.2012.6175684]
[3]   High-Voltage Stations for Electric Vehicle Fast-Charging: Trends, Standards, Charging Modes and Comparison of Unity Power-Factor Rectifiers [J].
Aretxabaleta, Iker ;
De Alegria, Inigo Martinez ;
Andreu, Jon ;
Kortabarria, Inigo ;
Robles, Endika .
IEEE ACCESS, 2021, 9 (09) :102177-102194
[4]   Modeling the Impact of Electric Vehicle Charging Systems on Electric Power Quality [J].
Baraniak, Joanna ;
Starzynski, Jacek .
ENERGIES, 2020, 13 (15)
[5]   DC-DC Converter Topologies for Electric Vehicles, Plug-in Hybrid Electric Vehicles and Fast Charging Stations: State of the Art and Future Trends [J].
Chakraborty, Sajib ;
Hai-Nam Vu ;
Hasan, Mohammed Mahedi ;
Dai-Duong Tran ;
El Baghdadi, Mohamed ;
Hegazy, Omar .
ENERGIES, 2019, 12 (08)
[6]   Partial Power DC -DC Converter with DC Shortcircuit Fault Current I imiting Function for DC Fast Charging Station [J].
Du, Zhaoxin ;
Ma, Jianjun ;
Wang, Kehuan ;
Gao, Ning ;
Zhu, Miao .
2022 IEEE 17TH CONFERENCE ON INDUSTRIAL ELECTRONICS AND APPLICATIONS (ICIEA), 2022, :1031-1036
[7]   Electric Vehicle Charging on Residential Distribution Systems: Impacts and Mitigations [J].
Dubey, Anamika ;
Santoso, Surya .
IEEE ACCESS, 2015, 3 :1871-1893
[8]   The Impact of Transport Electrification on Electrical Networks [J].
Dyke, Kevin J. ;
Schofield, Nigel ;
Barnes, Mike .
IEEE TRANSACTIONS ON INDUSTRIAL ELECTRONICS, 2010, 57 (12) :3917-3926
[9]  
Emhemed G., 2013, 22 INT C EXHIB ELECT, P1, DOI [10.1049/CP.2013.1186.[12]S., DOI 10.1049/CP.2013.1186.[12]S]
[10]  
Eroshenko SA, 2017, 2017 15TH INTERNATIONAL CONFERENCE ON ELECTRICAL MACHINES, DRIVES AND POWER SYSTEMS (ELMA), P144, DOI 10.1109/ELMA.2017.7955419