DocumentCode :
1362562
Title :
Development of Liquid-Type Human-Body Equivalent Antennas for Induced Ankle Current Measurements at VHF Band
Author :
Simba, Ally Y. ; Itou, Akira ; Hamada, Lira ; Watanabe, Soichi ; Arima, Takuji ; Uno, Toru
Author_Institution :
Nat. Inst. of Inf. & Communica- tions Technol., Tokyo, Japan
Volume :
54
Issue :
3
fYear :
2012
fDate :
6/1/2012 12:00:00 AM
Firstpage :
565
Lastpage :
573
Abstract :
This paper discusses the development of liquid-type human-body equivalent antennas using finite-difference time-domain analysis and measurements at the very high frequency band. The antennas are proposed as a human surrogate when measuring induced ankle currents. The developed antennas consist of acrylic rectangular blocks of different heights and widths and a metal plate connected together using metallic pins. The blocks in the antennas are filled with a NaCl solution. By using different combinations of the rectangular blocks, we can construct equivalent antennas for the realistic heterogeneous Japanese adult male, female, seven-, five-, and three-year-old models. The induced ankle currents in the equivalent antennas obtained when exposed to vertically polarized E-field were within 10% of their corresponding human models´ values for the frequency range between 30 and 100 MHz. In order to verify the performance of the proposed antennas and the numerical assumptions used in the analysis, we carried out experimental investigations when the equivalent antennas were exposed to electromagnetic fields from nearby monopole antennas.
Keywords :
VHF antennas; biological effects of fields; electric current measurement; finite difference time-domain analysis; monopole antennas; radiofrequency measurement; VHF band; acrylic rectangular blocks; electromagnetic fields; finite-difference time-domain analysis; frequency 30 MHz to 100 MHz; induced ankle current measurements; liquid-type human-body equivalent antennas; metallic pins; monopole antennas; vertically polarized E-field were; very high frequency band measurement; Antenna measurements; Antennas; Current measurement; Finite difference methods; Humans; Numerical models; Time domain analysis; Ankle currents; finite-difference time-domain (FDTD) technique; human-body equivalent antenna; realistic human models;
fLanguage :
English
Journal_Title :
Electromagnetic Compatibility, IEEE Transactions on
Publisher :
ieee
ISSN :
0018-9375
Type :
jour
DOI :
10.1109/TEMC.2011.2170996
Filename :
6061950
Link To Document :
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