Title :
On the Design of Efficient Multi-Coil Telemetry System for Biomedical Implants
Author :
RamRakhyani, Anil Kumar ; Lazzi, Gianluca
Author_Institution :
Dept. of Electr. & Comput. Eng., Univ. of Utah, Salt Lake City, UT, USA
Abstract :
Two-coil based inductive coupling is a commonly used technique for wireless power and data transfer for biomedical implants. Because the source and load resistances are finite, two-coil systems generally achieve a relatively low power transfer efficiency. A novel multi-coil technique (using more than two coils) for wireless power and data transfer is considered to help overcoming this limitation. The proposed multi-coil system is formulated using both network theory and a two-port model. Using three or four coils for the wireless link allows for the source and load resistances to be decoupled from the Q-factor of the coils, resulting in a higher Q -factor and a corresponding improved power transfer efficiency (PTE). Moreover, due to the strong coupling between the driver and the transmitter coil (and/or between the receiver and the load coil), the multi-coil system achieves higher tunable frequency bandwidth as compared to its same sized two-coil equivalent. Because of the wider range of reflected impedance in the multi-coil system case, it is easier to tune the output power to the load and achieve the maximum power transfer condition for given source voltage than in a configuration with two coils. Experimental results showing a three-coil system achieving twice the efficiency and higher gain-bandwidth product compared to its two-coil counterpart are presented. In addition, a figure of merit for telemetry systems is defined to quantify the overall telemetry system performance.
Keywords :
Q-factor; biomedical telemetry; coils; prosthetic power supplies; radio links; radio receivers; radio transmitters; PTE; Q-factor; biomedical implants; data transfer; driver coil; gain-bandwidth; load coil; load resistance; low power transfer efficiency; multicoil telemetry system; network theory; receiver coil; source resistance; source voltage; telemetry system performance; three-coil system; transmitter coil; tunable frequency bandwidth; two-coil based inductive coupling; two-port model; wireless link; wireless power transfer; Bandwidth; Coils; Couplings; Inductance; Receivers; Telemetry; Transmitters; Biomedical implant; efficient; energy efficient; inductive wireless power link; multi-coil; power transmission efficiency; resonance based power delivery; resonant coils; telemetry; wireless power transfer; Humans; Models, Theoretical; Prostheses and Implants; Telemetry;
Journal_Title :
Biomedical Circuits and Systems, IEEE Transactions on
DOI :
10.1109/TBCAS.2012.2192115