Title :
Wireless Power Transfer to Multiple Loads Over Various Distances Using Relay Resonators
Author :
Yiming Zhang ; Ting Lu ; Zhengming Zhao ; Kainan Chen ; Fanbo He ; Liqiang Yuan
Author_Institution :
Dept. of Electr. Eng., Tsinghua Univ., Beijing, China
fDate :
5/1/2015 12:00:00 AM
Abstract :
Resonant wireless power transfer has attracted much attention in recent decades. In some practical applications such as wireless sensor networks, multiple-load transfer over various distances is required. In this letter, the intermediate-coil structure is utilized to transfer the same power to multiple loads over various distances, which indicates that the intermediate coils work both as relay resonators and as power receivers. The mathematical model is built and in-depth analysis is conducted. Four important factors, namely the source matching factor, the load matching factor, the transfer quality factor, and the reflected impedance factor, are employed to build the mathematical model of n-load transfer. The conditions to transmit the same power to all the loads attached in each relay resonator are investigated. The optimal load resistance and the highest efficiency with the same load resistance are derived. The theoretical calculations and the experimental results of double-load and three-load transfer confirm the analysis.
Keywords :
inductive power transmission; resonators; intermediate-coil structure; load matching factor; load transfer quality factor; multiple loads; optimal load resistance; power receivers; reflected impedance factor; relay resonators; resonant wireless power transfer; source matching factor; Coils; Impedance; Magnetic resonance; Receivers; Relays; Wireless communication; Wireless sensor networks; Intermediate coils; magnetic resonance; multiple loads; relay resonators; wireless power transfer (WPT);
Journal_Title :
Microwave and Wireless Components Letters, IEEE
DOI :
10.1109/LMWC.2015.2409776