Reducing radar cross section of flat metallic targets using checkerboard metasurface: Design, analysis, and realization

Author:

Wang Chao1ORCID,Wang Ru-Zhi1ORCID,Zhang Sheng-Jun2ORCID,Wang Han1,Wang Wen-Song3ORCID

Affiliation:

1. Faculty of Materials and Manufacturing, Beijing University of Technology 1 , Beijing 100124, China

2. Key Laboratory of Experimental Physics and Computational Mathematics, Beijing Aerospace Long March Aircraft Research Institute 2 , Beijing 100076, China

3. School of Electrical and Electronic Engineering, Nanyang Technological University 3 , Singapore 639798, Singapore

Abstract

Aiming at the large-scale application of metasurface in the field of radar stealth, we present a hybrid resonance-based and dispersion substrate integrated checkerboard metasurface (CMS) for reducing the radar cross section (RCS) of flat metallic targets. Considering the frequency-dependent characteristics of such a dispersion material, a pair of single and dual resonant artificial magnetic conductor meta-atoms with the modified “crusades-like” cell topologies is employed to maximize the operating bandwidth; besides, a comprehensive and thorough investigation on the resonance mechanism is conducted in this paper to provide an intuitive physical insight of meta-atoms’ reflection responses. By comparing the predicted results with simulations, the quasi-periodic effect is introduced to explain the frequency shift of 10 dB RCS reduction bandwidth. In the implementation procedure, a prototype of the designed RCS reducer with a total dimension of 180 × 180 mm2 is fabricated and measured, the 10 dB RCS reduction bandwidth of theoretical simulation and experimental measurement are basically consistent, and the performance improvement of 8 dB RCS reduction in the experimental results can be attributed to the dispersion effects of the dielectric substrate. With a better figure of merit, our efforts may serve as a useful exemplar for the economical CMS architecture in radar evasive applications.

Funder

National Key Research and Development Program of China

Publisher

AIP Publishing

Subject

General Physics and Astronomy

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