Comptes Rendus
Enhanced integrated multiband HPM radiator, combining a hyperband source with a high-Q frequency selective surface
Comptes Rendus. Physique, Volume 22 (2021) no. S1, pp. 73-82.

This work presents advances on the development of a resonant radiator, obtained as the augmentation of a conventional Impulse Radiating Antenna (IRA) with a Frequency Selective Surface (FSS), in the L-band. An improved passband-type FSS is obtained by exploring the Multiple Split Ring Resonators (MCSRR) unit cells to obtain a higher Q-factor radiator. The effects of a multiband and of a tunable FSS’s are also studied and verified via simulations. A variety of applications are enabled by modifying the UWB waveform from the IRA into a damped sinusoidal from the combined radiator like IEMI testing, hardening of infrastructures, cloaking of wide aperture radiators, among other. The system analysis methodology can also be applied to other FSS geometries, or the combinations of various of them.

Première publication :
Publié le :
DOI : 10.5802/crphys.63
Mots clés : Frequency selective surface, Complementary split ring resonators, Electromagnetic hardening, Hyperband radiators, HPM sources, IEMI
Fernando Albarracin-Vargas 1 ; Felix Vega 2, 3 ; Chaouki Kasmi 2, 4 ; David Martinez 2 ; Lars Ole Fichte 5

1 Directed Energy Research Centre, Technology Innovation Institute, Abu Dhabi, UAE
2 Directed Energy Research Centre, Technology Innovation Institute, Abu Dhabi, United Arab Emirates
3 Universidad Nacional de Colombia, Facultad de Ingenieria, Sede Bogota, Colombia
4 Faculty of Electrical Engineering, Helmut Schmidt University, Germany
5 Faculty of Electrical Engineering, Helmut Schmidt University
Licence : CC-BY 4.0
Droits d'auteur : Les auteurs conservent leurs droits
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     title = {Enhanced integrated multiband {HPM} radiator, combining a hyperband source with a {high-Q} frequency selective surface},
     journal = {Comptes Rendus. Physique},
     pages = {73--82},
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Fernando Albarracin-Vargas; Felix Vega; Chaouki Kasmi; David Martinez; Lars Ole Fichte. Enhanced integrated multiband HPM radiator, combining a hyperband source with a high-Q frequency selective surface. Comptes Rendus. Physique, Volume 22 (2021) no. S1, pp. 73-82. doi : 10.5802/crphys.63. https://comptes-rendus.academie-sciences.fr/physique/articles/10.5802/crphys.63/

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