Direction independent broad-band wide angle metamaterial absorber for “K” band applications

IF 0.8 4区 工程技术 Q4 ENGINEERING, ELECTRICAL & ELECTRONIC Frequenz Pub Date : 2023-11-17 DOI:10.1515/freq-2023-0151
Laxmikant Dewangan, Megh Sainadh Patinavalasa, Juin Acharjee, Shrey Anant Sandiman, Saptarshi Ghosh, Nipun Kumar Mishra
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Abstract

In this work, the design of broadband, wide-angle, direction-independent metamaterial (MM) electromagnetic wave (EM) absorber for K-band frequency application is investigated and validated experimentally. The unit cell of the metamaterial absorber consists of four 90° rotated L-shaped metallic patches imprinted on a dielectric substrate backed by a metallic sheet. The structure yield absorption in the broad frequency ranges from 22.5 to 29.3 GHz for both TE and TM polarized waves with more than 90 % absorptivity having a wide fractional bandwidth of (6.8 GHz) 25.8 %. The structure is four-fold symmetric and hence yields polarization insensitivity for different angles of polarization under both TE and TM polarized waves. The structure is also investigated under oblique incidence where the 80 % absorptivity holds up to 45° incident angles for both TE and TM waves. The absorption mechanism is explained with the help of top and bottom surface current distribution, induced electric field, and parametric analysis. To verify the resonance in the structure, characteristic mode, and equivalent circuit analysis have been carried out and presented. A prototype of the absorber has been fabricated and simulated results are validated with measured results. Measured results are showing good agreement with the simulated responses. The novelty of the proposed absorber lies in its unique metallic pattern on a λ 0/8 (concerning the canter frequency of absorption bandwidth) thin FR-4 substrate while showing the wide absorption bandwidth and direction independence to normal and oblique incidence. The compact nature of the absorber and broadband response with good polarization insensitivity at normal and oblique incidence makes it commercially suitable for the reduction of radar cross section (RCS) in stealth applications at the K-band.
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用于“K”波段应用的方向无关的宽带宽角超材料吸收体
本文对k波段宽带、广角、方向无关的超材料(MM)电磁波吸收器的设计进行了研究,并进行了实验验证。超材料吸收体的单元电池由四个90°旋转的l形金属贴片组成,这些金属贴片印在金属片背面的电介质衬底上。该结构对TE和TM极化波在22.5 ~ 29.3 GHz宽频率范围内的吸收率均大于90%,分数带宽为(6.8 GHz) 25.8%。该结构是四重对称的,因此在TE和TM极化波下对不同偏振角度的极化不敏感。该结构还在斜入射下进行了研究,其中80%的吸收率对TE波和TM波都保持高达45°的入射角。通过上下表面电流分布、感应电场和参数分析,对吸附机理进行了解释。为了验证结构中的谐振,进行了特征模式和等效电路分析。制作了吸收体样机,并将仿真结果与实测结果进行了验证。实测结果与模拟结果吻合较好。该吸收器的新颖之处在于其在λ 0/8(关于吸收带宽的中心频率)薄FR-4衬底上的独特金属图案,同时显示出宽的吸收带宽和对正入射和斜入射的方向无关性。吸收体的紧凑性质和在正入射和斜入射下具有良好偏振不灵敏度的宽带响应使其在商业上适用于k波段隐身应用中减小雷达横截面(RCS)。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Frequenz
Frequenz 工程技术-工程:电子与电气
CiteScore
2.40
自引率
18.20%
发文量
81
审稿时长
3 months
期刊介绍: Frequenz is one of the leading scientific and technological journals covering all aspects of RF-, Microwave-, and THz-Engineering. It is a peer-reviewed, bi-monthly published journal. Frequenz was first published in 1947 with a circulation of 7000 copies, focusing on telecommunications. Today, the major objective of Frequenz is to highlight current research activities and development efforts in RF-, Microwave-, and THz-Engineering throughout a wide frequency spectrum ranging from radio via microwave up to THz frequencies. RF-, Microwave-, and THz-Engineering is a very active area of Research & Development as well as of Applications in a wide variety of fields. It has been the key to enabling technologies responsible for phenomenal growth of satellite broadcasting, wireless communications, satellite and terrestrial mobile communications and navigation, high-speed THz communication systems. It will open up new technologies in communications, radar, remote sensing and imaging, in identification and localization as well as in sensors, e.g. for wireless industrial process and environmental monitoring as well as for biomedical sensing.
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