Title :
Propagation constant and the velocity of the coherent wave in a dense strongly scattering medium
Author :
Kuga, Yasuo ; Rice, Daniel ; West, Richard D.
Author_Institution :
Dept. of Electr. Eng., Washington Univ., Seattle, WA, USA
fDate :
3/1/1996 12:00:00 AM
Abstract :
Frequency- and time-domain experiments are conducted to study the effective propagation constant of the coherent wave in a dense strongly scattering medium. A wide-band microwave signal (10-40 GHz) is propagated through randomly distributed glass spheres with a 5.73 mm average diameter and separated into incoherent and coherent fields. The real and imaginary parts of the propagation constant are obtained from the coherent field. The narrow size distribution of the particles enables the authors to study scattering from the Rayleigh region through the Mie resonance scattering region. The results of the experiments are compared to independent scattering, effective-field approximation (Foldy´s), and the higher order quasi-crystalline approximation (QCA) using Mie scattering coefficients and the Percus-Yevick approximation for the pair-distribution function. The phase and group velocities of the coherent wave are obtained from the effective propagation constant and compared with theory. In addition, the velocity of the coherent wave in random media is measured using the time-domain technique. It is shown that the velocity of the coherent wave in random media is neither phase nor group velocity
Keywords :
electromagnetic wave propagation; electromagnetic wave scattering; frequency-domain analysis; microwave propagation; millimetre wave propagation; time-domain analysis; 10 to 40 GHz; 5.73 mm; EHF; Mie resonance scattering; Percus-Yevick approximation; Rayleigh region; SHF; coherent wave; dense strongly scattering medium; effective propagation constant; frequency-domain experiments; group velocities; higher order quasi-crystalline approximation; independent scattering effective-field approximation; pair-distribution function; phase velocities; propagation constant; random media; randomly distributed glass sphere; size distribution; time-domain experiments; velocity; wide-band microwave signal; Frequency; Glass; Microwave propagation; Mie scattering; Particle scattering; Propagation constant; Random media; Rayleigh scattering; Time domain analysis; Wideband;
Journal_Title :
Antennas and Propagation, IEEE Transactions on