Title :
Circuit-Model Analysis of Frequency Selective Surfaces With Scatterers of Arbitrary Geometry
Author :
Mesa, Francisco ; Garcia-Vigueras, Maria ; Medina, Francisco ; Rodriguez-Berral, Raul ; Mosig, Juan R.
Author_Institution :
Dept. of Appl. Phys. 1, Univ. de Sevilla, Seville, Spain
Abstract :
An equivalent-network model is here proposed to characterize two-dimensional planar periodic arrays of arbitrary scatterers/apertures embedded in a layered environment. The model is an extension of the approach previously developed by some of the authors, which only considered simple rectangular scatterers. A key underlying assumption in the present approach is that the current/field distribution in the scatterer can be factorized so that the spatial profile is independent of the frequency in the considered range of interest. This approximation is proven to work properly for a great variety of useful planar scatterer/aperture patterns, even at frequencies within the diffraction regime. The spatial current/field profile is determined from a full-wave simulation at a single and low frequency value. Our numerical results are validated through comparison to commercial simulators for very wide frequency ranges as well as with previously proposed circuit-model approaches.
Keywords :
antenna radiation patterns; electromagnetic wave scattering; equivalent circuits; frequency selective surfaces; periodic structures; planar antenna arrays; arbitrary geometry scatterers; circuit-model analysis; current-field distribution; diffraction regime; equivalent-network model; frequency selective surfaces; full-wave simulation; layered environment; planar scatterer-aperture patterns; rectangular scatterers; spatial current-field profile; two-dimensional planar periodic arrays; Analytical models; Apertures; Dielectrics; Frequency selective surfaces; Geometry; Integrated circuit modeling; Resonant frequency; Complex geometries; equivalent circuits; frequency selective surfaces;
Journal_Title :
Antennas and Wireless Propagation Letters, IEEE
DOI :
10.1109/LAWP.2014.2356012