Dynamic Wireless Charging of Electric Vehicles Using PV Units in Highways

被引:0
|
作者
Megahed, Tamer F. [1 ,2 ]
Mansour, Diaa-Eldin A. [1 ,3 ]
Nayebare, Donart [1 ]
Kotb, Mohamed F. [2 ]
Fares, Ahmed [4 ,5 ]
Hameed, Ibrahim A. [6 ]
El-Hussieny, Haitham [7 ]
机构
[1] Egypt Japan Univ Sci & Technol E JUST, Elect Power Engn, Alexandria 21934, Egypt
[2] Mansoura Univ, Fac Engn, Elect Engn Dept, Mansoura 35516, Egypt
[3] Tanta Univ, Fac Engn, Elect Power & Machines Engn Dept, Tanta 31511, Egypt
[4] Egypt Japan Univ Sci & Technol E JUST, Dept Comp Sci & Engn, Alexandria 21934, Egypt
[5] Benha Univ, Fac Engn Shoubra, Dept Elect Engn, Comp Syst Engn, Banha 13511, Egypt
[6] Norwegian Univ Sci & Technol, Dept ICT & Nat Sci, N-7034 Trondheim, Norway
[7] Egypt Japan Univ Sci & Technol E JUST, Dept Mechatron & Robot Engn, Alexandria 21934, Egypt
来源
WORLD ELECTRIC VEHICLE JOURNAL | 2024年 / 15卷 / 10期
关键词
electrical vehicles; dynamic wireless charging; renewable energy; OPTIMIZATION; SYSTEMS; DESIGN;
D O I
10.3390/wevj15100463
中图分类号
TM [电工技术]; TN [电子技术、通信技术];
学科分类号
0808 ; 0809 ;
摘要
Transitioning from petrol or gas vehicles to electric vehicles (EVs) poses significant challenges in reducing emissions, lowering operational costs, and improving energy storage. Wireless charging EVs offer promising solutions to wired charging limitations such as restricted travel range and lengthy charging times. This paper presents a comprehensive approach to address the challenges of wireless power transfer (WPT) for EVs by optimizing coupling frequency and coil design to enhance efficiency while minimizing electromagnetic interference (EMI) and heat generation. A novel coil design and adaptive hardware are proposed to improve power transfer efficiency (PTE) by defining the optimal magnetic resonant coupling WPT and mitigating coil misalignment, which is considered a significant barrier to the widespread adoption of WPT for EVs. A new methodology for designing and arranging roadside lanes and facilities for dynamic wireless charging (DWC) of EVs is introduced. This includes the optimization of transmitter coils (TCs), receiving coils (RCs), compensation circuits, and high-frequency inverters/converters using the partial differential equation toolbox (pdetool). The integration of wireless charging systems with smart grid technology is explored to enhance energy distribution and reduce peak load issues. The paper proposes a DWC system with multiple segmented transmitters integrated with adaptive renewable photovoltaic (PV) units and a battery system using the utility main grid as a backup. The design process includes the determination of the required PV array capacity, station battery sizing, and inverters/converters to ensure maximum power point tracking (MPPT). To validate the proposed system, it was tested in two scenarios: charging a single EV at different speeds and simultaneously charging two EVs over a 1 km stretch with a 50 kW system, achieving a total range of 500 km. Experimental validation was performed through real-time simulation and hardware tests using an OPAL-RT platform, demonstrating a power transfer efficiency of 90.7%, thus confirming the scalability and feasibility of the system for future EV infrastructure.
引用
收藏
页数:27
相关论文
共 50 条
  • [21] New approach for the evaluation of magnetic fields in dynamic wireless charging for electric vehicles
    Guerroudj, Salim
    Boulzazen, Habib
    Riah, Zouheir
    2018 IEEE INTERNATIONAL CONFERENCE ON ELECTRICAL SYSTEMS FOR AIRCRAFT, RAILWAY, SHIP PROPULSION AND ROAD VEHICLES & INTERNATIONAL TRANSPORTATION ELECTRIFICATION CONFERENCE (ESARS-ITEC), 2018,
  • [22] A Novel Magnetic Coupling Mechanism for Dynamic Wireless Charging System for Electric Vehicles
    Wang, Zhiyuan
    Cui, Shumei
    Han, Shouliang
    Song, Kai
    Zhu, Chunbo
    Matveevich, Milyaev Igor
    Yurievich, Ostanin Sergei
    IEEE TRANSACTIONS ON VEHICULAR TECHNOLOGY, 2018, 67 (01) : 124 - 133
  • [23] Engineering Application of Dynamic Wireless Charging Technology for Electric Vehicles
    Liu C.
    Wei B.
    Wu X.
    Wang S.
    Xu J.
    Dianwang Jishu/Power System Technology, 2019, 43 (06): : 2211 - 2218
  • [24] Safety and efficiency of the wireless charging of electric vehicles
    Gao, Yabiao
    Farley, Kathleen Blair
    Ginart, Antonio
    Tse, Zion Tsz Ho
    PROCEEDINGS OF THE INSTITUTION OF MECHANICAL ENGINEERS PART D-JOURNAL OF AUTOMOBILE ENGINEERING, 2016, 230 (09) : 1196 - 1207
  • [25] Coordinated Planning of Fixed and Mobile Charging Facilities for Electric Vehicles on Highways
    He, Kecheng
    Jia, Hongjie
    Mu, Yunfei
    Yu, Xiaodan
    Dong, Xiaohong
    Deng, Youjun
    IEEE TRANSACTIONS ON INTELLIGENT TRANSPORTATION SYSTEMS, 2023, 24 (09) : 10087 - 10098
  • [26] Dynamic Wireless Charging Performance Enhancement for Electric Vehicles: Mutual Inductance, Power Transfer Capability, and Efficiency
    Chowdary, Kantipudi V. V. S. R.
    Kumar, Kundan
    Nayak, Byamakesh
    Kumar, Abhay
    Bertoluzzo, Manuele
    VEHICLES, 2023, 5 (04): : 1313 - 1327
  • [27] Review and Comparative Analysis of Topologies and Control Methods in Dynamic Wireless Charging of Electric Vehicles
    Bagchi, Anindya Chitta
    Kamineni, Abhilash
    Zane, Regan Andrew
    Carlson, Richard
    IEEE JOURNAL OF EMERGING AND SELECTED TOPICS IN POWER ELECTRONICS, 2021, 9 (04) : 4947 - 4962
  • [28] Analysis and design of DD coupler for dynamic wireless charging of electric vehicles
    Dashora, Hemant Kumar
    Buja, Giuseppe
    Bertoluzzo, Manuele
    Pinto, Rosanna
    Lopresto, Vanni
    JOURNAL OF ELECTROMAGNETIC WAVES AND APPLICATIONS, 2018, 32 (02) : 170 - 189
  • [29] Performance Evaluation of Dynamic Wireless Charging System with the Speed of Electric Vehicles
    Kumar, Kundan
    Chowdary, Kantipudi V. V. S. R.
    Nayak, B. K.
    Mali, Vima
    2022 IEEE 19TH INDIA COUNCIL INTERNATIONAL CONFERENCE, INDICON, 2022,
  • [30] Charging Automation for Electric Vehicles: Is a Smaller Battery Good for the Wireless Charging Electric Vehicles?
    Jeong, Seungmin
    Jang, Young Jae
    Kum, Dongsuk
    Lee, Min Seok
    IEEE TRANSACTIONS ON AUTOMATION SCIENCE AND ENGINEERING, 2019, 16 (01) : 486 - 497