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IEEE Transactions on Antennas and Propagation
Volume 46 Number 6, June 1998

Table of Contents for this issue

Complete paper in PDF format

Computations of SAR Distributions for Two Anatomically Based Models of the Human Head Using CAD Files of Commercial Telephones and the Parallelized FDTD Code

Adam D. Tinniswood, Cynthia M. Furse, and Om P. Gandhi, Fellow, IEEE

Page 829.

Abstract:

A method for importing data from computer-aided design (CAD) files for a mobile telephone into finite-difference time-domain (FDTD) simulation software is described. Although the FDTD method is well suited for the bio-electromagnetic simulations and has become the method of choice for most researchers in this area, there may be some limitations to its use. Limitations include, the description of the source (e.g., the mobile telephone) and the fact that the FDTD method requires large amounts of memory and computational power. The size of the computational space is dependent upon both the physical size of the model and its resolution. Higher frequencies of operation require higher resolutions. This could place the solution of some problems outside the capabilities of the technique. Often the telephone has to be represented by a plastic covered metal box, which approximates the shape of the actual device. The paper addresses these problems. Wires and circuit boards inside the telephone can act as resonant elements if they are not shielded. This potential problem is also considered. The large problem size associated with high-resolution FDTD simulations is accommodated by the use of a parallel implementation of the FDTD method (run on an IBM SP-2). The techniques developed here are used for two anatomically based head models that have been developed from magnetic resonance imaging (MRI) of two human subjects. The usefulness of the techniques developed and comparisons of the specific absorption rates (SAR's) in the two models are discussed.

References

  1. ANSI/IEEE C95.1-1992, American National Standard-Safety Levels with Respect to Exposure to Radio Frequency Electromagnetic Fields: 3 kHz to 300 GHz.New York: IEEE, 1992
  2. Federal Communications Commission, "RE: Guidelines for evaluating the environmental effects of radio frequency radiation," FCC 96-326, Aug. 1, 1996.
  3. A. Taflove, Computational Electrodynamics: The Finite-Difference Time-Domain Method.Dedham, MA: Artech House, 1995.
  4. O. P. Gandhi, "Some numerical methods for dosimetry: Extremely low frequencies to microwave frequencies," Radio Sci., vol. 30, pp. 161-177, 1995.
  5. C. Gabriel, "Compilation of the dielectric properties of body tissues at RF and microwave frequencies," Final Tech. Rep. AL/OE-TR-1996-0037, Occupat. Environmental Health Directorate, RFR Div., Brooks AFB, TX, June 1996.
  6. O. P. Gandhi and J. Y. Chen, "Electromagnetic absorption in the human head from experimental 6-GHz hand-held transceivers," IEEE Trans. Electromagn. Compat., vol. 37, pp. 547-558, Nov. 1995.
  7. P. J. Dimbylow and S. A. Mann, "SAR calculations in an anatomically based realistic model of the head for mobile communication transceivers at 900 and 1800 MHz," Phys. Med. Biol., vol. 39, pp. 1537-1553, 1994.
  8. M. A. Jensen and Y. Rahmat-Samii, "EM interaction of handset antennas and a human in personal communication," Proc. IEEE, vol. 83, pp. 7-17, 1995.
  9. G. Lazzi and O. P. Gandhi, "On modeling and personal dosimetry of normal mode helical antennas with the FDTD code," IEEE Antennas Propagat., vol. 46, pp. 525-530, Apr. 1998.
  10. O. P. Gandhi, J. Y. Chen, and D. Wu, "Electromagnetic absorption in the human head for mobile telephones at 835 and 1900 MHz," in Proc. Int. Symp. Electromagn. Compat., Rome, Italy, Sept. 1994, pp. 1-5.
  11. O. P. Gandhi, G. Lazzi, and C. M. Furse, "Electromagnetic absorption in the human head and neck for mobile telephones at 835 and 1900 MHz," IEEE Trans. Microwave Theory Tech., vol. 44, pp. 1884-1897, Oct. 1996.
  12. G. Lazzi and O. P. Gandhi, "Realistically tilted and truncated anatomically based models of the human head for dosimetry of mobile telephones," IEEE Trans. Electromagn. Compat., vol. 39, pp. 55-61, Feb. 1997.
  13. IRCP Publication 23, Report of the Task Group on Reference Man.New York: Pergamon, 1992.