DocumentCode
51240
Title
A Hybrid Optimal Design Strategy of Wireless Magnetic-Resonant Charger for Deep Brain Stimulation Devices
Author
Xiu Zhang ; Ho, S.L. ; Fu, W.N.
Author_Institution
Dept. of Electr. Eng., Hong Kong Polytech. Univ., Hong Kong, China
Volume
49
Issue
5
fYear
2013
fDate
May-13
Firstpage
2145
Lastpage
2148
Abstract
A hybrid optimal design strategy for wireless magnetic-resonant charger of deep brain stimulation devices is presented. It is proposed that a differential evolution algorithm with discrete variables (turn numbers of coils) and constrains (induced current and voltage in the load loop) is used to design the wireless power transfer system. The variables which normally include the sizes of the load coil, receiver coil, transmitter coil, source coil and capacitances are analyzed in the optimization study. Analytical formulas are embedded in the numerical optimization to speed up the convergence of the searching process. The designed receiver can receive enough power to recharge a 3.7 V circular button-type nickel-metal hydride rechargeable battery which can be implanted into the patients´ skull. The performance of the designed system has been verified experimentally.
Keywords
battery chargers; biomedical equipment; brain; capacitance; coils; optimisation; prosthetic power supplies; secondary cells; transcranial magnetic stimulation; capacitances; circular button-type nickel-metal hydride rechargeable battery; deep brain stimulation devices; differential evolution algorithm; hybrid optimal design strategy; implant; numerical optimization; receiver coil; source coil; transmitter coil; voltage 3.7 V; wireless magnetic-resonant charger; wireless power transfer system; Biomedical implantable; deep brain simulation; optimal design; wireless power transfer;
fLanguage
English
Journal_Title
Magnetics, IEEE Transactions on
Publisher
ieee
ISSN
0018-9464
Type
jour
DOI
10.1109/TMAG.2013.2244585
Filename
6514610
Link To Document