Title :
Distance Adaptation Method for Magnetic Resonance Coupling Between Variable Capacitor-Loaded Parallel-Wire Coils
Author :
Sasaki, Kazuhiko ; Sugiura, Shinya ; Iizuka, Hideo
Author_Institution :
Toyota Central R&D Labs., Inc., Nagakute, Japan
Abstract :
A distance adaptation method for magnetic resonance coupling between coils is proposed. It is known that transmitting and receiving parallel-wire coils provide longer distance of highly efficient transmission when compared with single-wire coils. Instead of matching the coil impedance to the port impedance at the coil feed point, the ratio of the currents on one wire to the other of the parallel-wire coil is manipulated by a loading scheme of variable capacitors in the proposed system. Such a current manipulation gradually changes the coil operation equivalently from the parallel-wire coil to the single-wire coil. This enables us to obtain highly efficient transmission continuously in a wide variation of the coil distance. Impedance and quality factor of the proposed system are discussed with the equivalent circuit. Current distributions of the parallel-wire coils are exploited by the method-of-moments-based software FEKO. A prototype transmission system exhibits insertion loss less than 0.9 dB in a range from 0.2 to 0.7 m at 11.25 MHz.
Keywords :
coils; current distribution; inductive power transmission; magnetic resonance; method of moments; varactors; coil distance; coil feed point; coil impedance; coil operation; current distributions; distance adaptation method; equivalent circuit; frequency 11.25 MHz; insertion loss; loading scheme; magnetic resonance coupling; method-of-moments-based software FEKO; port impedance; quality factor; receiving parallel-wire coils; single-wire coils; transmitting parallel-wire coils; variable capacitor-loaded parallel-wire coils; variable capacitors; Coils; Couplings; Equivalent circuits; Feeds; Impedance; Magnetic resonance; Wires; Circuit theory; magnetic resonance; method of moments (MoM); power transmission; tunable resonators;
Journal_Title :
Microwave Theory and Techniques, IEEE Transactions on
DOI :
10.1109/TMTT.2013.2280130