DocumentCode :
3269661
Title :
A multilayer cylindrical volume conductor model for galvanic coupling intra-body communication
Author :
Gao, Yue Ming ; Pun, Sio Hang ; Mak, Peng Un ; Du, Min ; Vai, Mang I.
Author_Institution :
Key Lab. of Med. Instrum. & Pharm. Technol., Fuzhou, China
fYear :
2009
fDate :
8-10 Dec. 2009
Firstpage :
1
Lastpage :
4
Abstract :
Intra-body communication (IBC) is a novel transmitting technique suitable for wearable and implantable sensors in home health care systems. Utilizing the conductive property of human body, IBC employs human body as the medium for transmitting electrical signals. As a result, electromagnetic interference can be greatly reduced for devices communicated within human body. These advantages are significant for the instance of long term physiologic parameters monitoring and elder patients. However, most of the researches pay attention to the experiments and simulations of IBC. In order to understand the mechanism of the IBC deeply, a multilayer cylindrical volume conductor model of human forearm is developed analytically in this paper. The simplified model provides the information of transmitting electrical signal through human body and forms a basis for developing IBC applications. As the first step of this research, the quasi-static approximation is assumed because the transmission is operated in a low frequency. Then the potential and current density distribution within the multilayer model is depicted. Also the attenuation of human data channel is discussed. Finally, several optimized conditions for galvanic coupling IBC are proposed.
Keywords :
bioelectric potentials; biomedical communication; biomedical electrodes; geriatrics; health care; optimisation; patient monitoring; physiological models; current density distribution; elder patients; electrical signals; electromagnetic interference; galvanic coupling intrabody communication; home health care systems; human data channel attenuation; human forearm; implantable sensor; multilayer cylindrical volume conductor model; optimized conditions; physiologic parameters monitoring; potential distribution; quasistatic approximation; transmitter electrodes; transmitting technique; wearable sensor; Biological system modeling; Biomedical monitoring; Conductors; Electromagnetic interference; Galvanizing; Humans; Medical services; Nonhomogeneous media; Sensor systems; Wearable sensors;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Information, Communications and Signal Processing, 2009. ICICS 2009. 7th International Conference on
Conference_Location :
Macau
Print_ISBN :
978-1-4244-4656-8
Electronic_ISBN :
978-1-4244-4657-5
Type :
conf
DOI :
10.1109/ICICS.2009.5397560
Filename :
5397560
Link To Document :
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