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A 1-Bit $10 \times 10$ Reconfigurable Reflectarray Antenna: Design, Optimization, and Experiment

417

Citations

31

References

2016

Year

TLDR

The paper presents a 10 × 10 electronically reconfigurable reflectarray antenna with a detailed design procedure aimed at improving beam‑scanning performance. The RRA uses a Ku‑band patch element with a single PIN diode and two substrate layers to achieve two 180°‑phase states, is fabricated into a prototype, and its small‑aperture limitations are mitigated through synthetic optimization of feed location and aperture phase distribution. Experimental measurements confirm full‑wave simulations, achieving scan beams from ±50° with a maximum aperture efficiency of 17.9 % at 12.5 GHz, consistent operation across 11.75–13.25 GHz, wide‑beam synthesis, and a 12 µs beam‑switching time.

Abstract

An electronically reconfigurable reflectarray antenna (RRA) with 10 × 10 elements is presented with a detailed design procedure for an improved beam-scanning performance. The element, designed at Ku band using a simple patch structure with one PIN diode and two substrate layers, can be electronically controlled to generate two states with 180° phase difference and low reflection loss. A reflectarray prototype is fabricated and experimentally studied for proof of principle. The limitations of the small aperture size are analyzed in detail, and synthetic optimizations of both feed location and aperture phase distribution are used to improve the beam-scanning performance of the prototype. Experimental results agree well with the full-wave simulations, and scan beams within ±50° range are obtained with a maximum aperture efficiency of 17.9% at 12.5 GHz. Consistent scan beams are obtained from 11.75 to 13.25 GHz. Furthermore, the versatile beam-forming capability of the RRA is also demonstrated by a wide-beam pattern synthesis. A fast beam-switching time (12 μs) is theoretically analyzed and verified by the measurement.

References

YearCitations

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