DocumentCode :
105799
Title :
A Low-Frequency Versatile Wireless Power Transfer Technology for Biomedical Implants
Author :
Hao Jiang ; Junmin Zhang ; Di Lan ; Chao, K.K. ; Shyshenq Liou ; Shahnasser, H. ; Fechter, Richard ; Hirose, S. ; Harrison, Michael ; Roy, Sandip
Author_Institution :
Sch. of Eng., San Francisco State Univ., San Francisco, CA, USA
Volume :
7
Issue :
4
fYear :
2013
fDate :
Aug. 2013
Firstpage :
526
Lastpage :
535
Abstract :
Implantable biomedical sensors and actuators are highly desired in modern medicine. In many cases, the implant´s electrical power source profoundly determines its overall size and performance. The inductively coupled coil pair operating at the radio-frequency (RF) has been the primary method for wirelessly delivering electrical power to implants for the last three decades. Recent designs significantly improve the power delivery efficiency by optimizing the operating frequency, coil size and coil distance. However, RF radiation hazard and tissue absorption are the concerns in the RF wireless power transfer technology (RF-WPTT) [4], [5]. Also, it requires an accurate impedance matching network that is sensitive to operating environments between the receiving coil and the load for efficient power delivery. In this paper, a novel low-frequency wireless power transfer technology (LF-WPTT) using rotating rare-earth permanent magnets is demonstrated. The LF-WPTT is able to deliver 2.967 W power at ~ 180 Hz to an 117.1 Ω resistor over 1 cm distance with 50% overall efficiency. Because of the low operating frequency, RF radiation hazard and tissue absorption are largely avoided, and the power delivery efficiency from the receiving coil to the load is independent of the operating environment. Also, there is little power loss observed in the LF-WPTT when the receiving coil is enclosed by non-magnetic implant-grade stainless steel.
Keywords :
biological tissues; biomedical electronics; body sensor networks; permanent magnets; power distribution; prosthetic power supplies; rare earth metals; LF-WPTT; RF radiation hazard; RF wireless power transfer technology concern; RF-WPTT concern; accurate impedance matching network; biomedical implant; coil distance; coil size; distance 1 cm; efficient power delivery; implant electrical power source; implant performance; implant size; implant wireless electrical power delivery; implantable biomedical actuator; implantable biomedical sensor; inductively coupled coil pair; low frequency versatile wireless power transfer technology; low operating frequency; nonmagnetic implant-grade stainless steel; operating environment sensitivity; operating frequency optimization; power 2.967 W; power delivery efficiency; power loss; radiofrequency; receiving coil; resistance 117.1 ohm; rotating rare-earth permanent magnet; tissue absorption; Coils; DC motors; Implants; Magnetic flux; Resistors; Rotors; Voltage measurement; Biomedical implants; inductive coupling; wireless power transfer; Biomedical Technology; Electric Power Supplies; Electricity; Humans; Prostheses and Implants; Radio Waves; Wireless Technology;
fLanguage :
English
Journal_Title :
Biomedical Circuits and Systems, IEEE Transactions on
Publisher :
ieee
ISSN :
1932-4545
Type :
jour
DOI :
10.1109/TBCAS.2012.2220763
Filename :
6395222
Link To Document :
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