Title :
Leaky-wave analysis of transient fields due to sources in planarly layered media
Author :
Hanson, George W. ; Yakovlev, Alexander B. ; Hao, Jin
Author_Institution :
Dept. of Electr. Eng., Univ. of Wisconsin, Milwaukee, WI, USA
fDate :
2/1/2003 12:00:00 AM
Abstract :
The transient field due to canonical sources in planarly layered media is obtained using a leaky-wave analysis. By proper choice of integration paths in both the complex frequency and complex wavenumber planes, transient fields are obtained exactly as a temporal inversion integral over a discrete sum of residues. The residues include both proper and improper surface-wave modes, analytically continued into the complex frequency plane. The method is applicable for all times of interest, although for certain source-receiver locations an "early-time" period is identified which encompasses the specular reflection from the nearest interface, and during which time the residue series requires special treatment. The presented analysis leads to a computationally simple and efficient method for obtaining transient fields due to sources in layered media. Results are shown for the transient potential due to line and point sources over a grounded dielectric slab, although the technique is applicable to multiple planar layers.
Keywords :
antenna arrays; antenna theory; inhomogeneous media; integral equations; inverse problems; leaky wave antennas; surface electromagnetic waves; transient analysis; canonical sources; complex frequency planes; complex wavenumber planes; discrete sum of residues; early-time period; electromagnetic transient analysis; electromagnetic transient propagation; grounded dielectric slab; improper surface-wave modes; integration paths; leaky-wave analysis; line sources; nonhomogeneous media; planarly layered media; point sources; proper surface-wave modes; residue series; source-receiver locations; specular reflection; temporal inversion integral; transient fields; transient potential; Dielectric losses; Dispersion; Electromagnetic radiation; Electromagnetic transients; Frequency domain analysis; Integral equations; Maxwell equations; Nonhomogeneous media; Time domain analysis; Transient analysis;
Journal_Title :
Antennas and Propagation, IEEE Transactions on
DOI :
10.1109/TAP.2003.809100