首页> 外文会议>2019 IEEE International Conference on Signals and Systems >Radiation Performance Enhancement of THz Double-Crossed Bow-tie on a Lens Antenna by Adding Optimum Matching Layer
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Radiation Performance Enhancement of THz Double-Crossed Bow-tie on a Lens Antenna by Adding Optimum Matching Layer

机译:通过添加最佳匹配层来增强太赫兹双交叉领结在透镜天线上的辐射性能

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摘要

Terahertz (THz) technology has become an interest research topic in the last decade due to its radiation performance advantages. However, the high atmospheric attenuation of THz wave spectrum remains one of the issues that are necessary to be considered to provide acceptable performance for practical applications. Effective energy transfer from electrical signals into electromagnetic waves and a high gain antenna performance are two conditions that are useful for tackling that issue. Another parameter of sidelobe level (SLL) is also essential to be suppressed to provide the high directive antenna. This paper proposes an optimum matching layer design on an extended hemispherical Silicon lens fed with a THz double crossed bow-tie antenna to enhance radiation performance, i.e., gain, beamwidth, and side lobe level to provide a high radiation performance antenna design for a THz system. From simulation results by using CST Microwave Studio, the obtained gain and radiation efficiency at optimal condition are 34.07 dB and 82.88%, respectively. The SLL and beamwidth respectively show better performances at equally around −12 dB and 2.4° for both E-Plane and H-plane. Those results show that the proposed design antenna can provide high radiation performance for THz applications that need high gain antenna radiation performance.
机译:太赫兹(THz)技术由于其辐射性能的优势而成为近十年来的一个有趣的研究主题。然而,太赫兹频谱的高大气衰减仍然是为实际应用提供可接受性能所必须考虑的问题之一。从电信号到电磁波的有效能量传输和高增益天线性能是解决该问题的两个条件。旁瓣电平的另一个参数(SLL)对于提供高指向性天线也必须加以抑制。本文提出了在加有THz双十字蝴蝶结天线的扩展半球形硅透镜上的最佳匹配层设计,以增强辐射性能,即增益,波束宽度和旁瓣水平,从而为THz提供高辐射性能的天线设计系统。根据使用CST Microwave Studio的仿真结果,在最佳条件下获得的增益和辐射效率分别为34.07 dB和82.88%。对于E平面和H平面,SLL和波束宽度分别在-12 dB和2.4°左右均表现出更好的性能。这些结果表明,所提出的设计天线可以为需要高增益天线辐射性能的太赫兹应用提供高辐射性能。

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