DocumentCode
32636
Title
Whole-Body Averaged Specific Absorption Rate Estimation Using a Personal, Distributed Exposimeter
Author
Thielens, A. ; Vanveerdeghem, P. ; Agneessens, S. ; Van Torre, P. ; Vermeeren, G. ; Rogier, H. ; Martens, L. ; Joseph, W.
Author_Institution
Dept. of Inf. Technol., Ghent Univ., Ghent, Belgium
Volume
14
fYear
2015
fDate
2015
Firstpage
1534
Lastpage
1537
Abstract
For the first time, a body area network (BAN) is used to construct a personal, distributed exposimeter (PDE), which can measure the whole-body averaged specific absorption rate (SARwb) in real life, together with the incident power density (Sinc). The BAN consists of four textile antennas with integrated radio frequency receiver nodes tuned to the Global System for Mobile Communications (GSM) 900 downlink band. Calibration measurements at 942.5 MHz, using a human subject, are performed in an anechoic chamber. These are combined with numerical simulations to estimate both SARwb and Sinc from the averaged received power on the PDE. The PDE has 50% prediction intervals of 3 dB on Sinc and 3.3 dB on the SARwb, caused by the presence of the human body, whereas the best single textile antenna in our measurements exhibits PI50´s of 7.1 dB on Sinc and 5 dB on SARwb. Measurements using the PDE are carried out in Ghent, Belgium, during which a median Sinc = 47 μW/m2 and SARwb = 0.25 μW/kg are measured.
Keywords
UHF antennas; body area networks; cellular radio; electromagnetic wave absorption; radio receivers; wearable antennas; BAN; GSM 900 downlink band; Global System for Mobile Communications 900 downlink band; SAR; anechoic chamber; body area network; frequency 942.5 MHz; incident power density; integrated radiofrequency receiver node; personal distributed exposimeter; textile antenna; whole-body averaged specific absorption rate estimation; Antenna measurements; Calibration; Measurement uncertainty; Numerical simulation; Radio frequency; Receiving antennas; Electromagnetic fields; exposure assessment; finite-difference time-domain simulations; radio frequency; specific absorption rate;
fLanguage
English
Journal_Title
Antennas and Wireless Propagation Letters, IEEE
Publisher
ieee
ISSN
1536-1225
Type
jour
DOI
10.1109/LAWP.2014.2368597
Filename
6949662
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