DocumentCode :
9830
Title :
Experimental Path Loss Models for In-Body Communications Within 2.36-2.5 GHz
Author :
Chavez-Santiago, Raul ; Garcia-Pardo, Concepcion ; Fornes-Leal, Alejandro ; Valles-Lluch, Ana ; Vermeeren, Gunter ; Joseph, Wout ; Balasingham, Ilangko ; Cardona, Narcis
Author_Institution :
Intervention Centre, Oslo Univ. Hosp., Oslo, Norway
Volume :
19
Issue :
3
fYear :
2015
fDate :
May-15
Firstpage :
930
Lastpage :
937
Abstract :
Biomedical implantable sensors transmitting a variety of physiological signals have been proven very useful in the management of chronic diseases. Currently, the vast majority of these in-body wireless sensors communicate in frequencies below 1 GHz. Although the radio propagation losses through biological tissues may be lower in such frequencies, e.g., the medical implant communication services band of 402 to 405 MHz, the maximal channel bandwidths allowed therein constrain the implantable devices to low data rate transmissions. Novel and more sophisticated wireless in-body sensors and actuators may require higher data rate communication interfaces. Therefore, the radio spectrum above 1 GHz for the use of wearable medical sensing applications should be considered for in-body applications too. Wider channel bandwidths and smaller antenna sizes may be obtained in frequency bands above 1 GHz at the expense of larger propagation losses. Therefore, in this paper, we present a phantom-based radio propagation study for the frequency bands of 2360 to 2400 MHz, which has been set aside for wearable body area network nodes, and the industrial, scientific, medical band of 2400 to 2483.5 MHz. Three different channel scenarios were considered for the propagation measurements: in-body to in-body, in-body to on-body, and in-body to off-body. We provide for the first time path loss formulas for all these cases.
Keywords :
UHF antennas; antenna radiation patterns; biological tissues; biomedical equipment; body area networks; body sensor networks; data communication; diseases; phantoms; prosthetics; radio spectrum management; transmitting antennas; wearable antennas; wireless channels; antenna sizes; biological tissues; biomedical implantable sensors; chronic diseases; data rate communication interfaces; frequency 2.36 GHz to 2.5 GHz; frequency 2360 MHz to 2400 MHz; in-body communications; in-body wireless sensors; low data rate transmissions; medical band; medical implant communication services; path loss models; phantom-based radio propagation; physiological signals; radio spectrum; wearable body area network nodes; wearable medical sensing applications; Antenna measurements; Biomedical measurement; Dipole antennas; Helical antennas; Loss measurement; Phantoms; Propagation losses; Body area network (BAN); body area network; implantable; in-body; path loss; path loss (PL); propagation;
fLanguage :
English
Journal_Title :
Biomedical and Health Informatics, IEEE Journal of
Publisher :
ieee
ISSN :
2168-2194
Type :
jour
DOI :
10.1109/JBHI.2015.2418757
Filename :
7076573
Link To Document :
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