一种适用于物联网应用的新型小型化、多频带、AMC集成CPW馈电天线,工作频率为毫米波

Khader Zelani Shaik, P. Siddaiah, K. Satya Prasad
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引用次数: 0

摘要

目的平面周期性金属阵列放置在接地的电介质衬底上时,表现为人工磁导体(AMC)表面,并且它们对入射波引入零度反射相移。天线设计者在设计AMC结构时面临着新的挑战。设计结构的步骤如下:1)设计天线,旨在以毫米波频率工作,(2)以所需频率设计AMC,(3)集成天线设计和AMC,以在毫米波频率下谐振,以及(4)验证天线的输出参数是否适合物联网(IoT)应用。设计/方法/方法天线与被称为高阻抗表面(HIS)的人造材料集成,以提高性能。提出了一种小型化、多频带、增强增益的AMC集成CPW馈电天线,旨在以毫米波频率工作,这最适合物联网应用。所开发的天线工作在极高的范围(30–300 GHz),即从40到60 GHz,回波损耗值小于−20 dB,增益大于10。利用HFSS软件对天线进行了开发和仿真。为了开发一种低剖面、高增益和优化的天线,人们进行了广泛的研究。前两个步骤是在所需频率下分别设计天线和AMC单元。第三步是通过分析表面电流分布来找到负责每个谐振频率的天线或AMC辐射部分。CPW与AMC集成使天线能够实现极高频率(EHF)范围,即40–60 GHz,这在物联网应用中高度可采用。独创性/价值结果表明,与以前的模型相比,所开发的天线在EHF级谐振,具有高增益和良好的阻抗匹配,并且仅馈送CPW而不集成AMC结构。很明显,只有CPW馈电的天线在比EHF范围更低的频率下谐振,并且具有合理的输出特性。但当它嵌入AMC结构时,它在EHF范围内产生谐振,这使得天线非常适合物联网应用,具有更高的精度和高数据速率的可能性。
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A novel miniaturized, multiband, AMC-integrated CPW-fed antenna operating at millimetric wave frequencies suitable for IoT applications
PurposePlanar periodic metallic arrays behave as artificial magnetic conductor (AMC) surfaces when placed on a grounded dielectric substrate, and they introduce a zero-degree reflection phase shift to incident waves. The antenna designers have new challenges while designing the AMC structure. The steps followed in designing the structure are as follows: 1) Designing the antenna, aimed to operate at millimetric wave frequencies, (2) Designing the AMC at desired frequencies, (3) Integrating the antenna design and AMC to resonate at millimetric wave frequencies and (4) Validate the output parameters of the antenna to be suitable for Internet of Things (IoT) applications.Design/methodology/approachThe antenna is integrated with artificial material known as high impedance surface (HIS) for performance enhancement. A miniaturized, multiband, enhanced gain, AMC-integrated CPW-fed antenna is proposed and aimed to operate at millimetric wave frequencies, which is most suitable for IoT applications. The developed antenna operates at an extremely high range (30–300 GHz), i.e. from 40 to 60 GHz with the return loss values at lesser than −20 dB, and gain is greater than 10. The antenna is developed and simulated by using HFSS software.FindingsAn extensive research study has been carried out to develop a low profile, high gain and optimized antenna. The first two steps are separately designing the antenna and the AMC unit cell at the desired frequencies. The third step is finding the antenna or AMC radiating parts responsible for each resonant frequency by analysing the surface current distribution. CPW fed along with AMC integration has made the antenna feasible to achieve the extremely high frequency (EHF) range, i.e. 40–60 GHz, which is highly adoptable in IoT applications.Originality/valueThe result represented that the developed antenna is resonating at EHF rank with high gain and good imped matching when it is being compared with the previous models and has only CPW fed without having AMC structure integration. It is evident that the antenna which has only CPW fed has resonated at lower frequency than EHF range and justified output characteristics. But when it is embedded with the AMC structure, it resonates at the EHF range, which makes the antenna highly suitable for IoT applications, with more accuracy and high data rate possibility.
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