This paper presents two metamaterial-inspired solutions to mitigate the scan blindness effects in a phased array antenna. In the first solution, portions of a bed of nails are introduced in the radome to prevent the excitation of surface waves. In the second solution, a superstrate metasurface is designed to synthesize a permittivity tensor optimized to achieve a wide angle impedance matching. In both approaches, the numerical simulations are successfully compared with measurements of a phased array antenna prototype with 100 elements. The wire medium-based solution reveals an effective way for reducing the blind-spot in a wide bandwidth, while the metaradome has been found less suitable for the same purpose.

Rodríguez Ulibarri, P., Crépin, T., Martel, C., Boust, F., Falcone, F., Loecker, C., et al. (2016). Experimental demonstration of metamaterials application for mitigating scan blindness in phased array antennas. EPJ. APPLIED METAMATERIALS, 3, 9-17 [10.1051/epjam/2016010].

Experimental demonstration of metamaterials application for mitigating scan blindness in phased array antennas

MACI, STEFANO;
2016-01-01

Abstract

This paper presents two metamaterial-inspired solutions to mitigate the scan blindness effects in a phased array antenna. In the first solution, portions of a bed of nails are introduced in the radome to prevent the excitation of surface waves. In the second solution, a superstrate metasurface is designed to synthesize a permittivity tensor optimized to achieve a wide angle impedance matching. In both approaches, the numerical simulations are successfully compared with measurements of a phased array antenna prototype with 100 elements. The wire medium-based solution reveals an effective way for reducing the blind-spot in a wide bandwidth, while the metaradome has been found less suitable for the same purpose.
2016
Rodríguez Ulibarri, P., Crépin, T., Martel, C., Boust, F., Falcone, F., Loecker, C., et al. (2016). Experimental demonstration of metamaterials application for mitigating scan blindness in phased array antennas. EPJ. APPLIED METAMATERIALS, 3, 9-17 [10.1051/epjam/2016010].
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/11365/1003527