DocumentCode
1135505
Title
Design of solid broadband human tissue simulant materials
Author
Youngs, I.J. ; Treen, A.S. ; Fixter, G. ; Holden, S.
Author_Institution
Future Syst. Technol. Div., QinetiQ Ltd., Farnborough, UK
Volume
149
Issue
6
fYear
2002
Firstpage
323
Lastpage
328
Abstract
The basis of a quantitative design process for solid broadband human tissue simulant materials is described. It is shown that the complex permittivity spectra of human tissue is not well represented by simple effective media theory (equivalent to using a single Debye-type dielectric relaxation), but that it can be represented by a percolative response. A solid two-layer spherical phantom with material properties representative of human head tissue over the frequency range 1 MHz to 10 GHz has been designed and tested. Such a simple phantom geometry was selected to assist, through validation, the development of related electromagnetic computer models. The dielectric properties of the simulant materials were tailored using appropriate quantities of a conducting filler dispersed in an insulating thermosetting plastic matrix. The two materials exhibit both a dielectric constant and an AC conductivity comparable (to first approximation) to that of human grey matter and fat. The phantom was constructed by injection moulding. The uniformity of the electromagnetic properties throughout the phantom and their temperature dependence were both assessed using broadband dielectric spectroscopy.
Keywords
bioelectric phenomena; biological effects of microwaves; biological tissues; biomedical materials; dielectric relaxation; filled polymers; health hazards; microwave materials; moulding; percolation; permittivity; phantoms; 1 MHz to 10 GHz; AC conductivity; broadband dielectric spectroscopy; complex permittivity spectra; dielectric constant; dispersed conducting filler; electromagnetic computer models; electromagnetic properties uniformity; electromagnetic safety; fat; frequency range; human grey matter; human head tissue; injection moulding; insulating thermosetting plastic matrix; material properties; mobile telecommunications equipment; percolative conductor-insulator composites; percolative response; quantitative design process; simple effective media theory; simple phantom geometry; simulant materials; single Debye-type dielectric relaxation; solid broadband human tissue simulant materials; solid two-layer spherical phantom; temperature dependence;
fLanguage
English
Journal_Title
Science, Measurement and Technology, IEE Proceedings -
Publisher
iet
ISSN
1350-2344
Type
jour
DOI
10.1049/ip-smt:20020647
Filename
1176539
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