DocumentCode :
1530293
Title :
Heating of tissue by near-field exposure to a dipole: a model analysis
Author :
Riu, Pere J. ; Foster, Kenneth R.
Author_Institution :
Univ. Politecnica de Catalunya, Barcelona, Spain
Volume :
46
Issue :
8
fYear :
1999
Firstpage :
911
Lastpage :
917
Abstract :
We report a numerical study of the induced electric fields and specific absorption rate (SAR) produced by microwave radiation from a half-wavelength dipole near tissue models, and the resulting transient and steady-state temperature rises. Several models were explored, including a uniform semi-infinite plane of tissue, uniform sphere, a phantom model of the head filled with tissue-equivalent material, a numerical model of the head with uniform dielectric properties (obtained from a digitized computed tomography image), and a numerical model of the head with different dielectric properties corresponding to various tissues. The electromagnetic calculations were performed for half-wave dipoles radiating at 900 and 1900 MHz at various distances from the model, using the finite-difference-time-domain (FDTD) method. The resulting temperature rises were estimated by finite element solution of the bioheat equation. The calculated SAR values agree well with an empirical correlation due to Kuster. If the limiting hazard of such exposures is associated with excessive temperature increase, present exposure limits are very conservative and guidelines that are easier to implement might provide adequate protection.
Keywords :
biological effects of fields; biological effects of microwaves; biological tissues; biothermics; cellular radio; finite difference time-domain analysis; finite element analysis; microwave heating; physiological models; 1900 MHz; 900 MHz; FDTD method; bioheat equation; digitized computed tomography image; electromagnetic calculations; exposure limits; finite element solution; half-wavelength dipole; hazard threshold; induced electric fields; microwave radiation; near-field exposure; numerical model; phantom model; semi-infinite plane; specific absorption rate; steady-state temperature rises; tissue heating; tissue-equivalent material; transient temperature rises; uniform dielectric properties; uniform sphere; wireless transmitter; Dielectrics; Electromagnetic heating; Finite difference methods; Head; Imaging phantoms; Near-field radiation pattern; Numerical models; Specific absorption rate; Steady-state; Temperature; Absorption; Electromagnetic Fields; Head; Heat; Humans; Magnetic Resonance Imaging; Models, Biological; Models, Chemical; Models, Statistical; Phantoms, Imaging; Regional Blood Flow;
fLanguage :
English
Journal_Title :
Biomedical Engineering, IEEE Transactions on
Publisher :
ieee
ISSN :
0018-9294
Type :
jour
DOI :
10.1109/10.775400
Filename :
775400
Link To Document :
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