Title :
Design of Engineered Reflectors for Radar Cross Section Modification
Author :
Doumanis, E. ; Goussetis, G. ; Papageorgiou, G. ; Fusco, V. ; Cahill, R. ; Linton, D.
Author_Institution :
Inst. of Electron. Commun. & Inf. Technol., Queens Univ. Belfast, Belfast, UK
Abstract :
A technique is proposed for the design of engineered reflectors consisting of doubly periodic arrays printed on thin grounded dielectric substrates that reflect an incoming wave from a given incoming direction to a predetermined outgoing direction. The proposed technique is based on a combination of Floquet theory for propagation in periodic structures and reflect-array principles. A flat surface designed to reflect a TE polarized wave incident at 45° back in the direction of the impinging signal at 14.7 GHz is employed as an example. By means of full-wave simulations, it is demonstrated that the monostatic RCS of a finite reflector is comparable with the specular RCS of a metallic mirror of the same dimensions. It is further shown that comparably high monostatic RCS values are obtained for angles of incidence in the 30°-60° range, which are frequency dependent and thus open opportunities for target localization. A prototype array is fabricated and experimentally tested for validation. The proposed solution can be used to modify the radar cross section of a target. Other potential applications are also discussed.
Keywords :
antenna arrays; periodic structures; radar antennas; radar cross-sections; wave propagation; Floquet theory; TE polarized wave incident; doubly periodic arrays; engineered reflector design; finite reflector; flat surface design; frequency 14.7 GHz; full-wave simulation; high monostatic RCS value; metallic mirror; periodic structure propagation; predetermined outgoing direction; radar cross section modification; reflect-array principle; thin grounded dielectric substrates; Antenna measurements; Geometry; Gratings; Metals; Prototypes; Reflection; Surface waves; Frequency selective surface (FSS); high impedance surface; radar cross section (RCS); reflect-array;
Journal_Title :
Antennas and Propagation, IEEE Transactions on
DOI :
10.1109/TAP.2012.2220097