具有高前后比印刷脊隙波导的宽带毫米波超表面天线阵列

Hao Yi, Yajie Mu, Jiaqi Han, Long Li
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引用次数: 2

摘要

提出了一种适用于28GHz毫米波应用的具有高前后比(FBR)的新型宽带超表面(MTS)天线阵列。在贴片单元上加载缝隙对的情况下,设计了一种孔径耦合的缝隙蘑菇MTS天线,以获得紧凑尺寸的宽带辐射特性。为了抑制这种天线的反向辐射,采用了印刷脊隙波导(PRGW)技术,在微带馈线下采用蘑菇形单元制成的完美磁导体(PMC)屏蔽。在此基础上,研制了一种采用PRGW馈电网络的4×4MTS天线阵列。仿真结果表明,在整个带宽范围内,FBR可以大大提高16dB以上。为了验证设计,制作了所提出的天线的原型。测量结果表明,在反射系数小于−10 dB的情况下,在24%的阻抗带宽(从24.9 GHz到31.7 GHz)上可以获得大于28 dB的FBR。测量的天线增益范围为17dBi至19.2dBi,相应的孔径效率分别为35%和45.6%。测量结果还表明,所提出的MTS天线具有−35dB的交叉极化水平和稳定的辐射方向图。此外,所提出的天线保持1.7毫米的非常低的轮廓(在28千兆赫时为0.17λ0)。所有实现的特征表明,所提出的MTS天线是B5G和6G无线通信的重要候选天线。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Broadband millimeter-wave metasurface antenna array with printed ridge gap waveguide for high front-to-back ratio

A novel broadband metasurface (MTS) antenna array with high front-to-back ratio (FBR) is proposed for 28 GHz millimeter-wave applications. With slot pairs loaded on patch cells, an aperture-coupled slotted-mushroom MTS antenna is designed to obtain broadband radiation characteristics with a compact size. To suppress the backward radiation of this antenna, the printed ridge gap waveguide (PRGW) technology with a perfect magnetic conductor (PMC) shielding made of mushroom unit-cells underneath the microstrip feeding line is applied. On this basis, a 4 × 4 MTS antenna array with the PRGW feed network is developed. Simulated results show that the FBR can be highly improved by over 16 dB within the entire bandwidth. To validate the design, a prototype of the proposed antenna is fabricated. Measured results show that an FBR greater than 28 dB can be obtained over a 24% impedance bandwidth (from 24.9 GHz to 31.7 GHz) with the reflection coefficient less than −10 dB. The measured antenna gain ranges from 17 dBi to 19.2 dBi and the corresponding measured aperture efficiencies are 35% and 45.6%. The measured results also suggest that the proposed MTS antenna possesses −35 dB cross-polarization level and stable radiation patterns. In addition, the proposed antenna remains a very low profile of 1.7 mm (0.17λ0 at 28 GHz). All the achieved features indicate that the proposed MTS antenna is an important candidate for B5G and 6G wireless communication.

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