Equivalent Circuit-Aided Miniaturized High-Q Frequency-Selective Rasorber

IF 0.9 Q4 ENGINEERING, ELECTRICAL & ELECTRONIC
Mehran Manzoor Zargar;Archana Rajput;Kushmanda Saurav
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Abstract

This letter proposes an equivalent circuit-aided novel design of a highly selective and miniaturized absorption-transmission–absorption (A-T-A) frequency-selective rasorber (FSR). The idea of incorporating low-frequency resonators in the absorptive circuit is utilized for realizing a miniaturized broadband absorber. Further, the LC circuit resonator is studied and incorporated with the equivalent circuit model, leading to a transmission pole through the front resistive network. Correspondingly, a Minkowski fractal (MF)-shaped loop resonator is proposed on the top layer, which is capable of realizing a transmission pole in concurrence with the operating frequency of the bottom bandpass layer. The proposed FSR is a 2-layer design realizing high selectivity ( $Q{=}24.14$ ) at the passband of 9.9 GHz, which makes it the most suitable candidate for shielding/radar cross section (RCS) reduction applications of the narrowband radiating systems. Moreover, the proposed rasorber also exhibits compact size ( $0.015{\lambda }_{L}^{2}$ ), less thickness ( $0.081{\lambda }_{L}$ ), and wider absorption bands (3.7–9.3 GHz and 10.6–15.9 GHz in the lower and upper bands, respectively), in comparison with the existing literature. Furthermore, in the proposed FSR, the passband can be varied from 9.2 to 12.3 GHz by tuning the parameters of resistive and bandpass layers. A $25\times 25$ array prototype is fabricated, and the results are experimentally validated.
等效电路辅助微型化高 Q 值频选阻器
这封信提出了一种等效电路辅助的高选择性、小型化吸收-传输-吸收(A-T-A)频率选择性吸收器(FSR)的新设计。在吸收电路中加入低频谐振器的想法被用于实现小型化宽带吸收器。此外,还对 LC 电路谐振器进行了研究,并将其纳入等效电路模型,从而通过前端电阻网络形成一个传输极。相应地,在顶层提出了闵科夫斯基分形(MF)环路谐振器,它能够实现与底层带通层工作频率一致的传输极。所提出的 FSR 采用双层设计,在 9.9 GHz 的通带上实现了高选择性($Q{=}24.14$),因此最适合用于窄带辐射系统的屏蔽/雷达截面(RCS)降低应用。此外,与现有文献相比,所提出的拉索还具有体积小(0.015{\lambda }_{L}^{2}$)、厚度小(0.081{\lambda }_{L}$)和吸收频带宽(低频段和高频段分别为 3.7-9.3 GHz 和 10.6-15.9 GHz)的特点。此外,在所提出的 FSR 中,通过调整电阻层和带通层的参数,通带可以从 9.2 GHz 变为 12.3 GHz。我们制作了一个 $25\times 25$ 阵列原型,并通过实验验证了结果。
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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