Title :
A network theory for EBG surfaces. Generalization to any direction of propagation in the azimuth plane
Author :
Cucini, A. ; Caiazzo, M. ; Nannetti, M. ; Maci, Stefano
Author_Institution :
Dept. of Inf. Eng., Siena Univ., Italy
Abstract :
The generalization of the method presented in Maci et al. allows an efficient dispersion analysis for printed periodic FSS-type surfaces. The method, which has been tested here for a dipole-FSS backed by a ground plane, consists of a pre-processing performed on the broadband reflection-coefficient data obtained from a full-wave analysis. After that, the FSS is characterized via its resonances for a few values of the incident angles. This determines in a straightforward way poles and zeros of an equivalent impedance, simply synthesized by an L-C dispersive circuit. Due to the weak dispersion features of poles and zeros, the L-C circuit can be identified in a simple analytical form which, after analytical continuation, is applied to formulate the transverse resonance equation. The process is much simpler and faster than a full-wave solution for dispersion, while being sufficiently general.
Keywords :
antenna earths; antenna theory; broadband antennas; dielectric materials; dipole antennas; dispersion (wave); electromagnetic wave propagation; electromagnetic wave reflection; equivalent circuits; frequency selective surfaces; inhomogeneous media; poles and zeros; EBG surfaces; L-C dispersive circuit; azimuth plane; broadband reflection-coefficient data; dipole-FSS; dispersion analysis; equivalent impedance; full-wave analysis; ground plane; network theory; poles and zeros; propagation direction; transverse resonance equation; Azimuth; Circuit synthesis; Dispersion; Frequency selective surfaces; Impedance; Performance analysis; Performance evaluation; Poles and zeros; Resonance; Testing;
Conference_Titel :
Antennas and Propagation Society International Symposium, 2004. IEEE
Print_ISBN :
0-7803-8302-8
DOI :
10.1109/APS.2004.1331897