DocumentCode :
1211190
Title :
Impedance boundary conditions for finite planar or curved frequency selective surfaces embedded in dielectric Layers
Author :
Stupfel, Bruno
Author_Institution :
CESTA, Commissariat a l´´Energie Atomique, Le Barp, France
Volume :
53
Issue :
11
fYear :
2005
Firstpage :
3654
Lastpage :
3663
Abstract :
We consider the time-harmonic electromagnetic scattering problem from a finite planar or curved structure made up of infinitesimally thin frequency-selective surfaces (FSSs) embedded in dielectric layers, with possibly nearby located objects. In order to avoid the meshing of the unit cells that constitute the FSSs, this problem is solved by employing an integral equation (IE) or finite-element (FE) formulation in conjunction with approximate impedance boundary conditions (IBCs) prescribed on the sheets that model the FSSs. The impedances in the IBCs are derived from the exact reflection and transmission coefficients calculated for the fundamental Floquet mode on the infinite planar structure illuminated by a planewave at a given incidence. When the structure is curved and/or the direction of the incident wave is unknown, higher order IBCs are proposed that are valid in a large angular range and can be implemented in a standard IE or FE formulation. Their numerical efficiencies are evaluated for finite planar or curved two-dimensional structures, or radomes, where the FSSs are strip gratings. As an example, for a curved radome surrounding a conducting plate, it is shown that, when the Floquet modes of the gratings are evanescent, these IBCs allow an accurate calculation of the radar cross section of the whole structure with far smaller computing resources than would have been required by a full-wave formulation.
Keywords :
antenna theory; boundary integral equations; boundary-elements methods; dielectric materials; electromagnetic wave reflection; electromagnetic wave scattering; electromagnetic wave transmission; finite element analysis; frequency selective surfaces; frequency-domain analysis; radar cross-sections; radomes; FSS; IBC; approximation; curved structure; dielectric layer; finite planar structure; finite-element formulation; frequency-domain analysis; frequency-selective surface embedding; full-wave formulation; fundamental Floquet mode; impedance boundary condition; integral equation; numerical analysis; radar cross section; radomes; reflection coefficient; strip grating; time-harmonic electromagnetic scattering problem; transmission coefficient; Boundary conditions; Dielectrics; Electromagnetic scattering; Finite element methods; Frequency selective surfaces; Gratings; Integral equations; Reflection; Strips; Surface impedance; Frequency-domain analysis; frequency-selective surface (FSS); impedance boundary condition (IBC); integral equation; numerical analysis; scattering;
fLanguage :
English
Journal_Title :
Antennas and Propagation, IEEE Transactions on
Publisher :
ieee
ISSN :
0018-926X
Type :
jour
DOI :
10.1109/TAP.2005.858803
Filename :
1528735
Link To Document :
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