DocumentCode :
1287042
Title :
Towards a Smart Experimental Arena for Long-Term Electrophysiology Experiments
Author :
Uei-Ming Jow ; Kiani, Mehdi ; Xueliang Huo ; Ghovanloo, Maysam
Author_Institution :
GT-Bionics Lab., Georgia Inst. of Technol., Atlanta, GA, USA
Volume :
6
Issue :
5
fYear :
2012
Firstpage :
414
Lastpage :
423
Abstract :
Wireless power and data transmission have created promising prospects in biomedical research by enabling perpetual data acquisition and stimulation systems. We present a work in progress towards such a system, called the EnerCage, equipped with scalable arrays of overlapping planar spiral coils (PSC) and 3-axis magnetic sensors for focused wireless power transmission to randomly moving targets, such as small freely behaving animal subjects. The EnerCage system includes a stationary unit for 3D non-line-of-sight localization and inductive power transmission through a geometrically optimized PSC array. The localization algorithm compares the magnetic sensor outputs with a threshold to activate a PSC. All PSCs are optimized based on the worst-case misalignment, considering parasitics from the overlapping and adjacent PSCs. EnerCage also has a mobile unit attached to or implanted in the subject´s body, which includes a permanent magnetic tracer for localization and back telemetry circuit for efficient closed-loop inductive power regulation. The EnerCage system is designed to enable long-term electrophysiology experiments on freely behaving small animal subjects in large experimental arenas without requiring them to carry bulky batteries. A prototype of the EnerCage system with five PSCs and five magnetic sensors achieved power transfer efficiency (PTE) of 19.6% at the worst-case horizontal misalignment of 49.1 mm (√1/3 of the PSC radius) and coupling distance of 78 mm with a mobile unit coil, 20 mm in radius. The closed-loop power management mechanism maintains the mobile unit received power at 20 mW despite misalignments, tilting, and distance variations up to a maximum operating height of 120 mm (PTE=5%).
Keywords :
bioelectric phenomena; biomedical electronics; biomedical equipment; biomedical telemetry; coils; data acquisition; data communication; inductive power transmission; magnetic sensors; medical computing; optimisation; patient monitoring; permanent magnets; 3-axis magnetic sensors; 3D non-line-of-sight localization; EnerCage system; back telemetry circuit; biomedical research; closed-loop inductive power regulation; data transmission; distance 78 mm; focused wireless power transmission; geometrically optimized PSC array; inductive power transmission; localization algorithm; long-term electrophysiology experiments; magnetic sensor outputs; mobile unit; overlapping planar spiral coils; permanent magnetic tracer; perpetual data acquisition; power 20 mW; power transfer efficiency; randomly moving targets; scalable arrays; size 20 mm; small freely behaving animal subjects; smart experimental arena; stationary unit; stimulation systems; subject body implantation; Electrophysiology; Magnetic sensors; Mobile communication; Sensor arrays; Biomedical electronics; biomedical monitoring; inductive power transmission; planar arrays; Algorithms; Animals; Biomedical Engineering; Electrophysiological Phenomena; Equipment Design; Magnetic Phenomena; Monitoring, Physiologic; Remote Sensing Technology; Telemetry; Wireless Technology;
fLanguage :
English
Journal_Title :
Biomedical Circuits and Systems, IEEE Transactions on
Publisher :
ieee
ISSN :
1932-4545
Type :
jour
DOI :
10.1109/TBCAS.2012.2211872
Filename :
6305491
Link To Document :
بازگشت