A family of compensation topologies for capacitive power transfer converters for wireless electric vehicle charger

被引:37
作者
Li, Lantian [1 ,2 ]
Wang, Zhenpo [1 ,2 ]
Gao, Feng [3 ]
Wang, Shuo [1 ,2 ]
Deng, Junjun [1 ,2 ]
机构
[1] Collaborat Innovat Ctr Elect Vehicles Beijing, 5 Zhongguancun St, Beijing 100081, Peoples R China
[2] Beijing Inst Technol, Natl Engn Lab Elect Vehicles, 5 Zhongguancun St, Beijing 100081, Peoples R China
[3] Beijing Inst Space Launch Technol, Bldg 34,1 Nandahongmen Rd, Beijing 100076, Peoples R China
基金
中国国家自然科学基金;
关键词
Electric vehicle; Capacitive power transfer; Compensation topology; Zero-voltage switching; TRANSFER SYSTEM; DESIGN;
D O I
10.1016/j.apenergy.2019.114156
中图分类号
TE [石油、天然气工业]; TK [能源与动力工程];
学科分类号
0807 ; 0820 ;
摘要
A large scale of electric vehicles can ideally maintain the stability of renewable power supply by acting as storage buffers for alleviating the intermittence in the integration of renewable energy sources for constructing a low-carbon energy system. However, the inconvenient conductive charging becomes a barrier in the popularization of electric vehicles. Wireless power transfer technology is in the spotlight because of the flexibility and convenience in powering electric vehicles. Recently, the Capacitive Power Transfer has received extensive attention due to simple coupler structure, rotatable coupler, and negligible heating of the metal foreign object. In the capacitive-based wireless charging system, the higher-order compensation topology is essential to enhance power transfer capability limited by the small coupling capacitance. However, with the increase of the resonant elements, the form of the resonant network becomes diverse. Currently, the researches focus on the characteristics of specific symmetrical compensation topologies. This paper presents a family of compensation topologies for the Capacitive Power Transfer system to achieve constant-voltage or constant-current output. A design procedure is summarized to construct the resonant networks, so as to design the compensation parameters. Considering the coupling capacitor variations caused by parking position deviation, a parameter tuning method is proposed to realize primary zero-voltage switching by adjusting the parameter of the double-sided inductor-capacitor-inductor-capacitor compensation topology. Experiments show that the prototype achieves constant-current output and zero-voltage switching when the coupling capacitance varies. The system efficiency reaches 93.57% at 1.5 kW input power with the input and output voltage around 250 V.
引用
收藏
页数:15
相关论文
共 50 条
  • [41] Performance Evaluation of Wireless Power Transfer Compensation Topologies for Active Implantable Medical Devices
    Cetin, Sevilay
    Demirci, Yunus Emre
    Yenil, Veli
    2021 IEEE 19TH INTERNATIONAL POWER ELECTRONICS AND MOTION CONTROL CONFERENCE (PEMC), 2021, : 798 - 803
  • [42] A Comprehensive Review on Wireless Capacitive Power Transfer Technology: Fundamentals and Applications
    Erel, Mehmet Zahid
    Bayindir, Kamil Cagatay
    Aydemir, Mehmet Timur
    Chaudhary, Sanjay K.
    Guerrero, Josep M.
    IEEE ACCESS, 2022, 10 : 3116 - 3143
  • [43] Wireless Power and Bidirectional Data Transfer Scheme for Battery Charger
    Huang, Chih-Cheng
    Lin, Chun-Liang
    IEEE TRANSACTIONS ON POWER ELECTRONICS, 2018, 33 (06) : 4679 - 4689
  • [44] Nonlinear Compensation in Wireless Power Transfer Topologies with Application to Contactless Connectors for Consumer Electronics
    Benjestorf, Joshua S.
    2023 IEEE INTERNATIONAL CONFERENCE ON CONSUMER ELECTRONICS, ICCE, 2023,
  • [45] A Secondary-Side Controlled Electric Vehicle Wireless Charger
    Corti, Fabio
    Reatti, Alberto
    Nepote, Andrea
    Pugi, Luca
    Pierini, Marco
    Paolucci, Libero
    Grasso, Francesco
    Grasso, Emanuele
    Nienhause, Matthias
    ENERGIES, 2020, 13 (24)
  • [46] A Wireless Power Transfer Charger with Hybrid Compensation Topology for Constant Current/Voltage Onboard Charging
    Li, Guangyao
    Kim, Dong-Hee
    APPLIED SCIENCES-BASEL, 2021, 11 (16):
  • [47] High-Performance Large Air-Gap Capacitive Wireless Power Transfer System for Electric Vehicle Charging
    Regensburger, Brandon
    Kumar, Ashish
    Sinha, Sreyam
    Doubleday, Kate
    Pervaiz, Saad
    Popovic, Zoya
    Afridi, Khurram
    2017 IEEE TRANSPORTATION ELECTRIFICATION CONFERENCE AND EXPO (ITEC), 2017, : 638 - 643
  • [48] High-Performance Capacitive Wireless Power Transfer System for Electric Vehicle Charging with Enhanced Coupling Plate Design
    Regensburger, Brandon
    Estrada, Jose
    Kumar, Ashish
    Sinha, Sreyam
    Popovic, Zoya
    Afridi, Khurram K.
    2018 IEEE ENERGY CONVERSION CONGRESS AND EXPOSITION (ECCE), 2018, : 2472 - 2477
  • [49] A review of recent trends in wireless power transfer technology and its applications in electric vehicle wireless charging
    Sun, Longzhao
    Ma, Dianguang
    Tang, Houjun
    RENEWABLE & SUSTAINABLE ENERGY REVIEWS, 2018, 91 : 490 - 503
  • [50] Misalignment Correction in Wireless Power Transfer of Electric Vehicles by Angular Compensation
    Aznavi, Sima
    Fajri, Poria
    Lotfi, Nima
    2020 IEEE TRANSPORTATION ELECTRIFICATION CONFERENCE & EXPO (ITEC), 2020, : 974 - 978