Eliminating Dead Zone in Wireless Power Transfer with Repeater Coil by Power Factor Control

被引:1
|
作者
Shikauchi, Yutaka [1 ]
Matsumoto, Ryo [1 ]
Nagai, Sakahisa [1 ]
Fujita, Toshiyuki [1 ]
Shimizu, Osamu [1 ]
Fujimoto, Hiroshi [1 ]
机构
[1] Univ Tokyo, Grad Sch Frontier Sci, Kashiwa, Chiba, Japan
关键词
Dynamic Wireless Power Transfer; Electric Vehicle; Repeater Coil; Dead Zone; Power Factor Control;
D O I
10.1109/WPTCE56855.2023.10216172
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
Dynamic wireless power transfer (D-WPT) is attracting attention as a way to compensate for the shortcomings of electric vehicles. However, the cost of inverters for D-WPT is high due to the cost of the semiconductor devices and controllers, making it difficult to implement in society. Therefore, a method that can energize multiple repeater coils with a power transmitter coil is known as an effort to reduce costs. However, the repeater coil creates a dead zone in which the power cannot be transferred to the receiver coil. The main cause of the dead zone is the high input impedance of the circuit. This paper proposes a method to eliminate the dead zone by implementing power factor control on the transmitter side. In the proposed method, the frequency of the inverter is controlled to maintain the power factor to one when the receiver coil moves over the transmitter and repeater coil. The frequency of the inverter is determined by the hill climbing algorithm.
引用
收藏
页数:6
相关论文
共 50 条
  • [31] Asymmetry in Wireless Power Transfer Between a Superconducting Coil and a Copper Coil
    Yu, Hui
    Zhang, Guomin
    Liu, Guole
    Jing, Liwei
    Liu, Qi
    IEEE TRANSACTIONS ON APPLIED SUPERCONDUCTIVITY, 2018, 28 (03)
  • [32] Optimization of a Wireless Power Transfer System With a Repeater Against Load Variations
    Jayathurathnage, Prasad Kumara Sampath
    Alphones, Arokiaswami
    Vilathgamuwa, D. Mahinda
    IEEE TRANSACTIONS ON INDUSTRIAL ELECTRONICS, 2017, 64 (10) : 7800 - 7809
  • [33] Transmitter Coil Design for Resonant Wireless Power Transfer
    Elkhouly, Essam
    Yang, Songnan
    IEEE PELS WORKSHOP ON EMERGING TECHNOLOGIES: WIRELESS POWER (2016 WOW), 2016, : 1 - 5
  • [34] A Study on Effects of Coil Locations in Wireless Power Transfer
    Shi, Xinzhi
    Qi, Chang
    Qu, Meiling
    Ye, Shuangli
    Wang, Gaofeng
    2015 IEEE MTT-S INTERNATIONAL CONFERENCE ON NUMERICAL ELECTROMAGNETIC AND MULTIPHYSICS MODELING AND OPTIMIZATION (NEMO), 2015,
  • [35] An optimized wearable coil for Wireless Power Transfer Applications
    Ben Fadhel, Yosra
    Bouattour, Ghada
    Bouchaala, Dhouha
    Rahmani, Salem
    Kanoun, Olfa
    Derbel, Nabil
    PROCEEDINGS OF THE 2020 17TH INTERNATIONAL MULTI-CONFERENCE ON SYSTEMS, SIGNALS & DEVICES (SSD 2020), 2020, : 151 - 155
  • [36] Conical Coil Design for Domino Wireless Power Transfer
    Wang, Heshou
    Cheng, Ka Wai Eric
    TWENTIETH BIENNIAL IEEE CONFERENCE ON ELECTROMAGNETIC FIELD COMPUTATION (IEEE CEFC 2022), 2022,
  • [37] STRETCHABLE WIRELESS POWER TRANSFER WITH A LIQUID ALLOY COIL
    Jeong, Seung Hee
    Wu, Zhigang
    2015 28TH IEEE INTERNATIONAL CONFERENCE ON MICRO ELECTRO MECHANICAL SYSTEMS (MEMS 2015), 2015, : 1137 - 1140
  • [38] Minimum Weight Wireless Power Transfer Coil Design
    Moradi, Adel
    Tahami, Farzad
    Poorfakhraei, Amirreza
    2016 7TH POWER ELECTRONICS AND DRIVE SYSTEMS & TECHNOLOGIES CONFERENCE (PEDSTC), 2016, : 571 - 576
  • [39] Operation performance of repeating coil for wireless power transfer
    Mao, Shitong
    Zhu, Chunbo
    Li, Yang
    Li, Zhenjie
    Diangong Jishu Xuebao/Transactions of China Electrotechnical Society, 2014, 29 (09): : 27 - 32
  • [40] Coil Optimization against Misalignment for Wireless Power Transfer
    Sampath, J. P. K.
    Alphones, A.
    Vilathgamuwa, D. M.
    2016 IEEE 2ND ANNUAL SOUTHERN POWER ELECTRONICS CONFERENCE (SPEC), 2016,