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IEEE Transactions on Antennas and Propagation
Volume 47 Number 9, September 1999

Table of Contents for this issue

Complete paper in PDF format

Experimental Characterization of the Effective Propagation Constant of Dense Random Media

Adib Nashashibi, Member, IEEE, and Kamal Sarabandi, Senior Member, IEEE

Page 1454.

Abstract:

In this paper, a new technique for measuring the effective propagation constant of dense random media is presented. This technique involves two major steps: 1) measurement of the mean bistatic scattered field of a cluster of the random medium confined in a spherical boundary and 2) characterization of the complex permittivity for a homogeneous dielectric sphere having identical radius and bistatic scattered field as those of the spherical cluster of the random medium. Using this measurement technique, not only the effective propagation constant of complex dense random media for which analytical solution does not exist can be characterized, but it can also be used to establish the validity region of the existing models. The sensitivity analyses of the proposed algorithm show that the imaginary part of the effective propagation constant can be measured very accurately. It is also shown that the effective complex permittivity of media with very low dielectric contrast or volume fractions can be characterized accurately. Measurements of the effective propagation constant of different dense random media comprised of homogeneous spherical particles of different packing densities are reported and compared with the existing analytical models.

References

  1. F. T. Ulaby, R. K. Moore, and A. K. Fung, Microwave Remote Sensing: Active and Passive.Norwood, MA: Artech House, 1986, vol. 3.
  2. L. Tsang, J. A. Kong, and R. T. Shin, Theory of Microwave Remote Sensing.New York: Wiley, 1985.
  3. J. R. Kendra, F. T. Ulaby, and K. Sarabandi, "Snow probe for in situ determination of wetness and density," IEEE Trans. Geosci. Remote Sensing, vol. 32, pp. 1152-1159, Nov. 1994.
  4. K. Sarabandi and E. S. Li, "A microstrip ring resonator for soil moisture measurements," IEEE Trans. Geosci. Remote Sensing, vol. 35, pp. 1223-1231, Sept. 1997.
  5. E. Nyfors and P. Vainikainen, Industrial Microwave Sensors.Norwood, MA: Artech House, 1989.
  6. C. E. Mandt, Y. Kuga, L. Tsang, and A. Ishimaru, "Microwave propagation and scattering in a dense distribution of nontenuous spheres: Experiment and theory," Waves in Random Media, vol. 2, pp. 225-234, 1992.
  7. M. T. Hallikainen, F. T. Ulaby, and M. Abdelrazik, "Dielectric properties of snow in the 3-37 GHz range," IEEE Trans. Antennas Propagat., vol. AP-34, pp. 1329-1340, Nov. 1986.
  8. J. L. Zhou and A. L. Tits, "User's guide for FSQP Version 3.3b: A FORTRAN code for solving constrained nonlinear (minimax) optimization problems, generating iterates satisfying all inequality and linear contraints," Elect. Eng. Dept., Inst. Syst. Res., Univ. Maryland, College Park, MD, 1993.
  9. K. Sarabandi and A. Nashashibi, "A novel bistatic scattering matrix measurement technique using a monostatic radar," IEEE Trans. Antennas Propagat., vol. 44, pp. 41-50, Jan. 1996.
  10. G. T. Ruck, D. E. Barrick, W. D. Stuart, and C. K. Krichbaum, Radar Cross Section Handbook.New York: Plenum, 1970.
  11. C. F. Bohren and D. R. Huffman, Absorption and Scattering of Light by Small Particles.New York: Wiley, 1983.
  12. K. Sarabandi and P. Siqueira, "Numerical scattering analysis for two dimensional dense random media: Characterization of effective permittivity," IEEE Trans. Antennas Propagat., vol. 45, pp. 858-867, May 1997.
  13. K. Sarabandi, "Derivation of phase statistics from the Mueller matrix," Radio Sci., vol. 27, no. 5, pp. 553-560, Sept./Oct. 1992.