Lumped Impedance Transformers for Compact and Robust Coupled Magnetic Resonance Systems

被引:31
作者
Choi, Bo H. [1 ]
Lee, Eun S. [1 ]
Huh, Jin [2 ]
Rim, Chun T. [1 ]
机构
[1] Korea Adv Inst Sci & Technol, Dept Nucl & Quantum Engn, Taejon 305755, South Korea
[2] MKS Plasmart Inc, Taejon 305500, South Korea
关键词
Class-E inverter; coupled magnetic resonance system (CMRS); impedance transformer; inductive power transfer system (IPTS); wireless power transfer; WIRELESS POWER TRANSFER; ENERGY-TRANSFER; EFFICIENCY; IMPROVEMENT; RESONATORS; DESIGN; PICKUP;
D O I
10.1109/TPEL.2015.2394242
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
An innovative coupled magnetic resonance system (CMRS), introducing two lumped impedance transformers, is proposed. There are three major magnetic couplings between coils in CMRS: source-transmitter (Tx), Tx-receiver (Rx), and Rx-load couplings. Except for Tx-Rx coupling, other couplings do not directly contribute to wireless power transfer. Hence, in this paper, this miscellaneous coupling is replaced with a lumped transformer with ferrite core. Because there is only aTx-Rx coupling, the CMRS becomes compact in size and robust to ambient changes. Moreover, the design of CMRS is drastically simplified without complicated multiresonance tunings due to little magnetic flux linkage from the source coil or load coil. Coreless coils are used for Tx and Rx coils to examine the characteristics of CMRS with lumped transformers. A detailed static analysis on the explicit circuit model of the proposed CMRS and design procedures are fully established. Experiments for 1- and 10-W prototype CMRSs with a class-E inverter at the switching frequency of 500 kHz, where the quality factors are less than 100, verified the usefulness of the proposed model, achieving 80% of the maximum Tx coil-to-load efficiency. It is concluded in this paper that the conventional CMRS, in general, is just a special form of an inductive power transfer system where the quality factor is extremely high.
引用
收藏
页码:6046 / 6056
页数:11
相关论文
共 41 条
[1]  
Arunkumar P., 2010, 2010 International Conference on Computer and Communication Technology (ICCCT 2010), P699, DOI 10.1109/ICCCT.2010.5640443
[2]  
Beh T. C., 2010, IEEE INT S IND EL IS, P2100
[3]   Poynting Vector Flow Analysis for Contactless Energy Transfer in Magnetic Systems [J].
Brandao Faria, J. A. .
IEEE TRANSACTIONS ON POWER ELECTRONICS, 2012, 27 (10) :4292-4300
[4]   Design and Optimization of Circular Magnetic Structures for Lumped Inductive Power Transfer Systems [J].
Budhia, Mickel ;
Covic, Grant A. ;
Boys, John T. .
IEEE TRANSACTIONS ON POWER ELECTRONICS, 2011, 26 (11) :3096-3108
[5]   Magnetic Resonant Coupling As a Potential Means for Wireless Power Transfer to Multiple Small Receivers [J].
Cannon, Benjamin L. ;
Hoburg, James F. ;
Stancil, Daniel D. ;
Goldstein, Seth Copen .
IEEE TRANSACTIONS ON POWER ELECTRONICS, 2009, 24 (07) :1819-1825
[6]   Circuit-Model-Based Analysis of a Wireless Energy-Transfer System via Coupled Magnetic Resonances [J].
Cheon, Sanghoon ;
Kim, Yong-Hae ;
Kang, Seung-Youl ;
Lee, Myung Lae ;
Lee, Jong-Moo ;
Zyung, Taehyoung .
IEEE TRANSACTIONS ON INDUSTRIAL ELECTRONICS, 2011, 58 (07) :2906-2914
[7]  
Choi B., 2014, 2014 VTC C WORKSH EM, P6
[8]  
Choi BH, 2014, IEEE ENER CONV, P858, DOI 10.1109/ECCE.2014.6953487
[9]   Bidirectional Communication Techniques for Wireless Battery Charging Systems & Portable Consumer Electronics [J].
Choi, W. P. ;
Ho, W. C. ;
Liu, X. ;
Hui, S. Y. R. .
2010 TWENTY-FIFTH ANNUAL IEEE APPLIED POWER ELECTRONICS CONFERENCE AND EXPOSITION (APEC), 2010, :2251-2257
[10]  
Dukju A, 2013, IEEE T IND ELECTRON, V60, P360