Maximizing Air Gap and Efficiency of Magnetic Resonant Coupling for Wireless Power Transfer Using Equivalent Circuit and Neumann Formula

被引:430
|
作者
Imura, Takehiro [1 ]
Hori, Yoichi [1 ]
机构
[1] Univ Tokyo, Grad Sch Frontier Sci, Dept Adv Energy, Kashiwa, Chiba 2778561, Japan
关键词
Maximum efficiency; resonance frequency; wireless power transfer; ENERGY TRANSMISSION; DESIGN; LOADS;
D O I
10.1109/TIE.2011.2112317
中图分类号
TP [自动化技术、计算机技术];
学科分类号
0812 ;
摘要
The progress in the field of wireless power transfer in the last few years is remarkable. With recent research, transferring power across large air gaps has been achieved. Both small and large electric equipment have been proposed, e. g., wireless power transfer for small equipment (mobile phones and laptops) and for large equipment (electric vehicles). Furthermore, replacing every cord with wireless power transfer is proposed. The coupled mode theory was proposed in 2006 and proven in 2007. Magnetic and electric resonant couplings allow power to traverse large air gaps with high efficiency. This technology is closely related to electromagnetic induction and has been applied to antennas and resonators used for filters in communication technology. We have studied these phenomena and technologies using equivalent circuits, which is a more familiar format for electrical engineers than the coupled mode theory. In this paper, we analyzed the relationship between maximum efficiency air gap using equivalent circuits and the Neumann formula and proposed equations for the conditions required to achieve maximum efficiency for a given air gap. The results of these equations match well with the results of electromagnetic field analysis and experiments.
引用
收藏
页码:4746 / 4752
页数:7
相关论文
共 50 条
  • [31] Electromagnetic Radiated Emissions from a Wireless Power Transfer System using a Resonant Magnetic Field Coupling
    Kong, Sunkyu
    Kim, Jonghoon
    Bae, Bumhee
    Kim, Jonghoon J.
    Kim, Sukjin
    Kim, Joungho
    2014 INTERNATIONAL SYMPOSIUM ON ELECTROMAGNETIC COMPATIBILITY, TOKYO (EMC'14/TOKYO), 2014, : 406 - 409
  • [32] Operating characteristics of four-coil magnetic resonant coupling wireless power transfer under different resonant states
    Wang, Meng
    Wang, Haoran
    Zhang, Yiming
    Shi, Yanyan
    Yang, Lan
    INTERNATIONAL JOURNAL OF CIRCUIT THEORY AND APPLICATIONS, 2021, 49 (02) : 415 - 429
  • [33] A methodology to achieve the maximum transfer efficiency for magnetic coupling wireless power transfer systems
    Liao, Zhi-Juan
    Sun, Yue
    Xia, Chenyang
    Wu, Xiaojie
    ELECTRICAL ENGINEERING, 2019, 101 (04) : 1177 - 1188
  • [34] A methodology to achieve the maximum transfer efficiency for magnetic coupling wireless power transfer systems
    Zhi-Juan Liao
    Yue Sun
    Chenyang Xia
    Xiaojie Wu
    Electrical Engineering, 2019, 101 : 1177 - 1188
  • [35] Transfer efficiency maximum frequency of wireless power transfer via magnetic resonance coupling
    Tang, Zhi-De
    Xu, Yang-Yang
    Zhao, Mao
    Peng, Yi-Ling
    Dianji yu Kongzhi Xuebao/Electric Machines and Control, 2015, 19 (03): : 8 - 13
  • [36] Representation of an equivalent circuit for capacitive wireless power transfer using a distributed-constant circuit
    Naka, Yasumasa
    Tamura, Masaya
    IEICE COMMUNICATIONS EXPRESS, 2020, 9 (10): : 457 - 463
  • [37] Power Efficiency Improvement of Wireless Power Transfer Using Magnetic Material
    Morita, Shigefumi
    Hirata, Takuya
    Setiawan, Eko
    Hodaka, Ichijo
    2017 2ND INTERNATIONAL CONFERENCE ON FRONTIERS OF SENSORS TECHNOLOGIES (ICFST), 2017, : 304 - 307
  • [38] Maximizing Received Energy in Magnetic Resonance Wireless Power Transfer Using Feedback
    Salari, Ayoob
    Choi, Wan
    IEEE TRANSACTIONS ON GREEN COMMUNICATIONS AND NETWORKING, 2019, 3 (03): : 565 - 574
  • [40] Multiuser Wireless Power Transfer via Magnetic Resonant Coupling: Performance Analysis, Charging Control, and Power Region Characterization
    Moghadam, Mohammad R. Vedady
    Zhang, Rui
    IEEE TRANSACTIONS ON SIGNAL AND INFORMATION PROCESSING OVER NETWORKS, 2016, 2 (01): : 72 - 83