DocumentCode :
887589
Title :
Power transfer capability and bifurcation phenomena of loosely coupled inductive power transfer systems
Author :
Wang, Chwei-Sen ; Covic, Grant A. ; Stielau, Oskar H.
Author_Institution :
Dept. of Electr. & Comput. Eng., Auckland Univ., New Zealand
Volume :
51
Issue :
1
fYear :
2004
Firstpage :
148
Lastpage :
157
Abstract :
Loosely coupled inductive power transfer (LCIPT) systems are designed to deliver power efficiently from a stationary primary source to one or more movable secondary loads over relatively large air gaps via magnetic coupling. In this paper, a general approach is presented to identify the power transfer capability and bifurcation phenomena (multiple operating modes) for such systems. This is achieved using a high order mathematical model consisting of both primary and secondary resonant circuits. The primary compensation is deliberately designed to make the primary zero phase angle frequency equal the secondary resonant frequency to achieve maximum power with minimum VA rating of the supply. A contactless electric vehicle battery charger was used to validate the theory by comparing the measured and calculated operational frequency and power transfer. For bifurcation-free operation, the power transfer capability and controllability are assured by following the proposed bifurcation criteria. Where controllable operation within the bifurcation region is achievable, a significant increase in power is possible.
Keywords :
battery chargers; bifurcation; electromagnetic coupling; inductive power transmission; resonant power convertors; bifurcation phenomena; contactless battery charger; controllable operation; electric vehicle battery charger; high order mathematical model; loosely coupled inductive power transfer systems; magnetic coupling; movable secondary loads; multiple operating modes; mutual inductance coupling; power transfer capability; primary resonant circuits; secondary resonant circuits; stationary primary source; variable frequency controllers; zero phase angle frequency; Air gaps; Batteries; Bifurcation; Coupling circuits; Current measurement; Electric vehicles; Magnetic resonance; Mathematical model; RLC circuits; Resonant frequency;
fLanguage :
English
Journal_Title :
Industrial Electronics, IEEE Transactions on
Publisher :
ieee
ISSN :
0278-0046
Type :
jour
DOI :
10.1109/TIE.2003.822038
Filename :
1265794
Link To Document :
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