Title :
Equation Environment Coupling and Interference on the Electric-Field Intrabody Communication Channel
Author :
Xu, Ruoyu ; Ng, Wai Chiu ; Zhu, Hongjie ; Shan, Hengying ; Yuan, Jie
Author_Institution :
Dept. of Electron. & Comput. Eng., Hong Kong Univ. of Sci. & Technol., Kowloon, China
fDate :
7/1/2012 12:00:00 AM
Abstract :
Wearableand implantable medical sensors have been investigated continuously in recent years to provide better diagnostics and monitoring for personal health care. Much attention has been drawn to the establishment of the ubiquitous body area network (BAN) to reliably connect the body sensors and collect the sensor data in real time. Electric-held intrabody communication (EF-IBC) is a promising physical link technology for the body area network. Compared to existing wireless technologies, EF-IBC hts the body characteristics better and is able to achieve higher data rate with less transmission power. EF-IBC relies on the parasitic capacitive coupling between the transmitter and the receiver to close the signal circuit loop. With this parasitic coupling, EF-IBC links can be influenced by the environment. However until now, there is lack of systematic research on various environment coupling effects to the EF-IBC channel. In this paper, environment effects on the EF-IBC channel are comprehensively studied. The interference from the nearby EF-IBC channel is investigated for the first time to gain useful insights into the establishment of the BAN with EF-IBC. The FEM model is also established to explain the mechanism of the capacitive return path.
Keywords :
bioelectric phenomena; body area networks; body sensor networks; capacitive sensors; finite element analysis; health care; BAN; EF-IBC; FEM model; body sensors; capacitive return path; electric-field intrabody communication channel; equation environment coupling; implantable medical sensors; interference; parasitic capacitive coupling; parasitic coupling; personal health care; sensor data; ubiquitous body area network; wearable medical sensors; wireless technologies; Capacitance; Capacitors; Copper; Couplings; Electrodes; Finite element methods; Interference; Body area network (BAN); capacitive return path; electric-field intrabody communication (EF-IBC); finite-element method (FEM); parasitic capacitive coupling; Biomedical Engineering; Electric Capacitance; Electromagnetic Fields; Finite Element Analysis; Humans; Models, Theoretical; Monitoring, Ambulatory; Telemetry; Wireless Technology;
Journal_Title :
Biomedical Engineering, IEEE Transactions on
DOI :
10.1109/TBME.2012.2197212