DocumentCode
1432554
Title
Design of a salisbury screen absorber using frequency selective surfaces to improve bandwidth and angular stability performance
Author
Che Seman, F. ; Cahill, Ronan ; Fusco, Vincent F. ; Goussetis, George
Author_Institution
Inst. of Electron., Commun. & Inf. Technol., Queen´s Univ. Belfast, Belfast, UK
Volume
5
Issue
2
fYear
2011
Firstpage
149
Lastpage
156
Abstract
A new design method that greatly enhances the reflectivity bandwidth and angular stability beyond what is possible with a simple Salisbury screen is described. The performance improvement is obtained from a frequency selective surface (FSS) which is sandwiched between the outermost 377 Ω/square resistive sheet and the ground plane. This is designed to generate additional reflection nulls at two predetermined frequencies by selecting the size of the two unequal length printed dipoles in each unit cell. A multiband Salisbury screen is realised by adjusting the reflection phase of the FSS to position one null above and the other below the inherent absorption band of the structure. Alternatively by incorporating resistive elements midway on the dipoles, it is shown that the three absorption bands can be merged to create a structure with a -10 dB reflectivity bandwidth which is 52% larger and relatively insensitive to incident angle compared to a classical Salisbury screen having the same thickness. CST Microwave Studio was used to optimise the reflectivity performance and simulate the radar backscatter from the structure. The numerical results are shown to be in close agreement with bistatic measurements for incident angles up to 40° over the frequency range 5.4-18 GHz.
Keywords
radar absorbing materials; reflectivity; CST microwave studio; Salisbury screen absorber design; angular stability performance improvement; bandwidth performance improvement; frequency 5.4 GHz to 18 GHz; frequency selective surfaces; multiband Salisbury screen; reflection nulls; reflectivity bandwidth; square resistive sheet;
fLanguage
English
Journal_Title
Microwaves, Antennas & Propagation, IET
Publisher
iet
ISSN
1751-8725
Type
jour
DOI
10.1049/iet-map.2010.0072
Filename
5697292
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