一种支持超表面的镜头天线,展示了5G应用的机电波束倾斜

Soumya Chakravarty, Aman Kumar, T. Chakravarty, Arpan Pal, R. Ghatak
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摘要

本文提出了一种用于第五代(5G)应用的sub- 6ghz频率范围的基于探头的透射超表面透镜天线系统。该设计有利于增益增强和无相移的波束倾斜结构。该结构由探针馈送的紧凑型贴片天线组成,印刷在FR4衬底上。天线谐振频率为5.8 GHz,−10 dB阻抗带宽为210 MHz,从5.68 GHz扩展到5.89 GHz。谐振时实现的最大增益为2.6 dBi。印在Rogers RT-Duroid 5880基板上的双面超表面放置在天线顶部,气隙为24.5毫米。这种结构在谐振时的最大传输增益为7.98 dBi,增益增强5.38 dB,阻抗带宽为150 MHz,范围为5.72 - 5.87 GHz。超表面与极化无关。通过将超表面绕天线旋转10°和20°,模拟了不同入射角下的天线结构,得到的发射波束也相应旋转,从而证明了系统的波束倾斜能力。这种光束倾斜是通过机械旋转超表面来实现的。该设计已完成制作和测量,实验结果与仿真数据吻合,增益值变化小于1 dB,谐振频率偏移50 MHz。这是由于精确调整气隙的变化造成的。该设计是可扩展的,并且正在进行频率范围(FR2)频段(24.25 - 52.6 GHz)验证设计的过程。提出的天线-超表面系统是5G sub- 6ghz频段应用的轻量级和低成本替代方案。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
A Metasurface-Enabled Lens Antenna Demonstrating Electromechanical Beam-Tilting for 5G Applications
In this paper, a probe-fed, transmissive metasurface lens-based antenna system in the sub-6 GHz frequency range for possible fifth-generation (5G) applications is proposed. The design facilitates for gain enhancement and phase shifter less beam tilting architecture. The structure consists of a probe-fed compact patch antenna, printed on FR4 substrate. The antenna resonates at 5.8 GHz with the −10 dB impedance bandwidth of 210 MHz extending from 5.68 till 5.89 GHz. The maximum realized gain at resonance is 2.6 dBi. The double-sided metasurface, printed on Rogers RT-Duroid 5880 substrate, is placed on top of the antenna with an air gap of 24.5 mm. This arrangement exhibits a maximum transmission gain of 7.98 dBi at resonance, with a gain enhancement of 5.38 dB in conjunction to a impedance bandwidth of 150 MHz from 5.72 - 5.87 GHz. The metasurface is polarization independent. The proposed antenna structure has been simulated for different incidence angles by rotating the metasurface around the antenna by 10° and 20°, with the resulting transmitted beam also rotating by the respective angles, thus demonstrating the beam-tilting capability of the system. This beam-tilting is achieved by only mechanically rotating the metasurface. The design has been fabricated and measured, with the experimental results matching with simulated data, with only a variation of less than 1 dB in the gain values and a shift of 50 MHz in the resonance frequency. This is attributed to variation in precise adjustment of the air-gap. The design is scalable and the process of validating the design in Frequency Range (FR2) band (24.25 - 52.6 GHz) is in progress. The proposed antenna-metasurface system is lightweight and low-cost alternative to 5G sub-6 GHz frequency band applications.
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