Title :
A study of uncertainties in modeling antenna performance and power absorption in the head of a cellular phone user
Author :
Nikita, Konstantina S. ; Cavagnaro, Marta ; Bernardi, Paolo ; Uzunoglu, Nikolaos K. ; Pisa, Stefano ; Piuzzi, Emanuele ; Sahalos, John N. ; Krikelas, George I. ; Vaul, John A. ; Excell, Peter S. ; Cerri, Graziano ; Chiarandini, Simona ; De Leo, Roberto ;
Author_Institution :
Dept. of Electr. & Comput. Eng., Nat. Tech. Univ. of Athens, Greece
fDate :
12/1/2000 12:00:00 AM
Abstract :
A set of finite-difference time-domain (FDTD) numerical experiments modeling canonical representations of the human head/cellular phone interaction has been performed in order to investigate the effect of specific simulation details (e.g., antenna numerical representation and absorbing boundary conditions) on computed results. Furthermore, hybrid techniques based on the dyadic Green´s function and the method of auxiliary sources, and on a hybrid method-of-moments-FDTD technique have been used to compute parameters of interest for comparison with the FDTD evaluated parameters. It was found that small, but potentially significant, differences in computed results could occur, even between groups that were nominally using a very similar method. However, these differences could be made to become very small when precise details of the simulation were harmonized, particularly in the regions close to the source point
Keywords :
Green´s function methods; UHF antennas; biological effects of fields; biological effects of microwaves; cellular radio; dosimetry; finite difference time-domain analysis; health hazards; human factors; method of moments; mobile antennas; modelling; safety; 1710 MHz; 900 MHz; FDTD evaluated parameters; FDTD numerical experiments; SAR; absorbing boundary conditions; antenna numerical representation; antenna performance modelling; canonical representations; cellular phone user; dyadic Green function; finite-difference time-domain method; head/cellular phone interaction; human head; hybrid MoM-FDTD technique; hybrid numerical techniques; method of auxiliary sources; method of moments; modeling uncertainties; power absorption modelling; simulation; Absorption; Boundary conditions; Cellular phones; Computational modeling; Dosimetry; Finite difference methods; Scattering; Testing; Time domain analysis; Uncertainty;
Journal_Title :
Microwave Theory and Techniques, IEEE Transactions on