The Circuit Theory Behind Coupled-Mode Magnetic Resonance-Based Wireless Power Transmission

被引:298
作者
Kiani, Mehdi [1 ]
Ghovanloo, Maysam [1 ]
机构
[1] Georgia Inst Technol, Sch Elect & Comp Engn, GT Bion Lab, Atlanta, GA 30308 USA
基金
美国国家科学基金会; 美国国家卫生研究院;
关键词
Coupled-mode theory (CMT); near field; quality factor; power transfer efficiency (PTE); reflected load theory; resonance circuits; wireless power transmission; PRINTED SPIRAL COILS; DESIGN; OPTIMIZATION; LINKS;
D O I
10.1109/TCSI.2011.2180446
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
Inductive coupling is a viable scheme to wirelessly energize devices with a wide range of power requirements from nanowatts in radio frequency identification tags to milliwatts in implantable microelectronic devices, watts in mobile electronics, and kilowatts in electric cars. Several analytical methods for estimating the power transfer efficiency (PTE) across inductive power transmission links have been devised based on circuit and electromagnetic theories by electrical engineers and physicists, respectively. However, a direct side-by-side comparison between these two approaches is lacking. Here, we have analyzed the PTE of a pair of capacitively loaded inductors via reflected load theory (RLT) and compared it with a method known as coupled-mode theory (CMT). We have also derived PTE equations for multiple capacitively loaded inductors based on both RLT and CMT. We have proven that both methods basically result in the same set of equations in steady state and either method can be applied for short- or midrange coupling conditions. We have verified the accuracy of both methods through measurements, and also analyzed the transient response of a pair of capacitively loaded inductors. Our analysis shows that the CMT is only applicable to coils with high quality factor (Q) and large coupling distance. It simplifies the analysis by reducing the order of the differential equations by half compared to the circuit theory.
引用
收藏
页码:2065 / 2074
页数:10
相关论文
共 39 条
[1]  
[Anonymous], 1999, C951 IEEE
[2]  
[Anonymous], MICROWAVE ENG
[3]  
[Anonymous], 2003, RFID HDB FUNDAMENTAL
[4]   Feedback Analysis and Design of RF Power Links for Low-Power Bionic Systems [J].
Baker, Michael W. ;
Sarpeshkar, Rahul .
IEEE TRANSACTIONS ON BIOMEDICAL CIRCUITS AND SYSTEMS, 2007, 1 (01) :28-38
[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]   An Integrated 256-Channel Epiretinal Prosthesis [J].
Chen, Kuanfu ;
Yang, Zhi ;
Hoang, Linh ;
Weiland, James ;
Humayun, Mark ;
Liu, Wentai .
IEEE JOURNAL OF SOLID-STATE CIRCUITS, 2010, 45 (09) :1946-1956
[7]   Optimization of inductive RFID technology [J].
Chen, SCQ ;
Thomas, V .
PROCEEDINGS OF THE 2001 IEEE INTERNATIONAL SYMPOSIUM ON ELECTRONICS AND THE ENVIRONMENT, CONFERENCE RECORD, 2001, :82-87
[8]   HIGH-EFFICIENCY WIRELESS ENERGY TRANSMISSION USING MAGNETIC RESONANCE BASED ON METAMATERIAL WITH RELATIVE PERMEABILITY EQUAL TO -1 [J].
Choi, J. ;
Seo, C. .
PROGRESS IN ELECTROMAGNETICS RESEARCH-PIER, 2010, 106 :33-47
[9]  
Clark G., 2003, Cochlear Implants. Fundamentals and Applications, DOI 10.1007/b97263
[10]   ANALYSIS OF RESONANT COUPLED COILS IN THE DESIGN OF RADIO-FREQUENCY TRANS-CUTANEOUS LINKS [J].
DONALDSON, ND ;
PERKINS, TA .
MEDICAL & BIOLOGICAL ENGINEERING & COMPUTING, 1983, 21 (05) :612-627