使用带狭缝的环形和圆形贴片的双波段超材料微波吸收器

IF 0.8 Q4 ENGINEERING, ELECTRICAL & ELECTRONIC
Man Seng Sim, Kok Yeow, You, Raimi Dewan, F. Esa, Mohd Rashidi Salim, Stephanie Yen, Nee Kew, Fandi Hamid
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引用次数: 0

摘要

本文提出了一种工作频率为 2.5 GHz 和 5.8 GHz 的双频超材料微波吸收器。该吸收器由印制在 FR4 介质基板上的环形和带缝隙的圆形贴片谐振器结构组成,基板背面有接地层。该吸收器的主要优势在于其设计灵活性,每个吸收频带都是独立的,可通过改变每个谐振器结构的尺寸进行单独调谐。我们使用计算机仿真技术(CST)软件对吸收器单元进行了仿真和参数优化。通过表面电流分析对吸收机制进行了分析。 吸收器原型尺寸为 200 × 200 × 1.6 mm3,由 7 × 7 单元阵列组成。该吸收器在两个共振频率下的吸收率均超过 97%。此外,该吸收器还被证明适用于介电常数测定的传感应用。由于其设计简单、接收角度宽且对极化不敏感,预计所提出的吸收器将在吸收和传感应用中得到实际应用。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Dual-Band Metamaterial Microwave Absorber using Ring and Circular Patch with Slits
This paper proposes a dual-band metamaterial microwave absorber operating at 2.5 GHz and 5.8 GHz. The absorber consists of a ring and a circular patch with slits resonator structures printed on a FR4 dielectric substrate backed by a ground layer. The main advantage of the absorber lies in its design flexibility in which each absorption band is independent and can be individually tuned by changing the dimensions of each resonator structure. The absorber unit cell is simulated and parametrically optimized using Computer Simulation Technology (CST) software. The absorption mechanism is analyzed through surface current analysis.  The absorber prototype, with dimensions of 200 × 200 × 1.6 mm3 and consisting of an array of 7 × 7 unit cells, is fabricated and experimentally investigated using antennas in free-space measurement. The absorber exhibits over 97% absorption at both resonance frequencies. Furthermore, the absorber is demonstrated to be applicable in sensing applications for dielectric constant determination. With its design simplicity, wide-angle receptive, and polarization insensitive behavior, it is envisaged that the proposed absorber will find practical use in absorbing and sensing applications.
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来源期刊
Advanced Electromagnetics
Advanced Electromagnetics ENGINEERING, ELECTRICAL & ELECTRONIC-
CiteScore
2.40
自引率
12.50%
发文量
33
审稿时长
10 weeks
期刊介绍: Advanced Electromagnetics, is electronic peer-reviewed open access journal that publishes original research articles as well as review articles in all areas of electromagnetic science and engineering. The aim of the journal is to become a premier open access source of high quality research that spans the entire broad field of electromagnetics from classic to quantum electrodynamics.
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