DocumentCode :
1159266
Title :
Human exposure assessment in the near field of GSM base-station antennas using a hybrid finite element/method of moments technique
Author :
Meyer, Frans J C ; Davidson, David B. ; Jakobus, Ulrich ; Stuchly, Maria A.
Author_Institution :
EM Software & Syst. SA, Stellenbosch, South Africa
Volume :
50
Issue :
2
fYear :
2003
Firstpage :
224
Lastpage :
233
Abstract :
A hybrid finite-element method (FEM)/method of moments (MoM) technique is employed for specific absorption rate (SAR) calculations in a human phantom in the near field of a typical group special mobile (GSM) base-station antenna. The MoM is used to model the metallic surfaces and wires of the base-station antenna, and the FEM is used to model the heterogeneous human phantom. The advantages of each of these frequency domain techniques are, thus, exploited, leading to a highly efficient and robust numerical method for addressing this type of bioelectromagnetic problem. The basic mathematical formulation of the hybrid technique is presented. This is followed by a discussion of important implementation details-in particular, the linear algebra routines for sparse, complex FEM matrices combined with dense MoM matrices. The implementation is validated by comparing results to MoM (surface equivalence principle implementation) and finite-difference time-domain (FDTD) solutions of human exposure problems. A comparison of the computational efficiency of the different techniques is presented. The FEM/MoM implementation is then used for whole-body and critical-organ SAR calculations in a phantom at different positions in the near field of a base-station antenna. This problem cannot, in general, be solved using the MoM or FDTD due to computational limitations. This paper shows that the specific hybrid FEM/MoM implementation is an efficient numerical tool for accurate assessment of human exposure in the near field of base-station antennas.
Keywords :
UHF antennas; cellular radio; dosimetry; finite element analysis; frequency-domain analysis; health hazards; method of moments; phantoms; radiation monitoring; GSM base-station antennas; bioelectromagnetic problem; critical-organ SAR calculations; dense MoM matrices; finite-difference time-domain solutions; frequency domain techniques; group special mobile base-station antenna; heterogeneous human phantom; human exposure assessment; human exposure problems; human phantom; hybrid finite element/method of moments technique; linear algebra routines; mathematical formulation; metallic surfaces; mobile phone base-station antennas; near field; robust numerical method; sparse complex FEM matrices; specific absorption rate; surface equivalence principle implementation; whole-body calculations; wires; Finite difference methods; Finite element methods; GSM; Humans; Imaging phantoms; Mobile antennas; Moment methods; Sparse matrices; Specific absorption rate; Time domain analysis; Cellular Phone; Computer Simulation; Finite Element Analysis; Humans; Models, Biological; Organ Specificity; Radiation Dosage; Radiation Effects; Radiation Monitoring; Radio Waves; Radiometry; Sensitivity and Specificity; Whole-Body Irradiation;
fLanguage :
English
Journal_Title :
Biomedical Engineering, IEEE Transactions on
Publisher :
ieee
ISSN :
0018-9294
Type :
jour
DOI :
10.1109/TBME.2002.807639
Filename :
1185146
Link To Document :
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