首页> 外文OA文献 >IMPROVING THE PERFORMANCE OF ANTENNAS BY USING METAMATERIAL-INSPIRED CAPACITIVELY-LOADED LOOP (CLL) NEAR-FIELD RESONANT PARASITIC (NFRP) ELEMENTS
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IMPROVING THE PERFORMANCE OF ANTENNAS BY USING METAMATERIAL-INSPIRED CAPACITIVELY-LOADED LOOP (CLL) NEAR-FIELD RESONANT PARASITIC (NFRP) ELEMENTS

机译:通过使用材料激发的电容性负载环(CLL)近场共振寄生(NFRP)元件来改善天线的性能

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摘要

While double negative (DNG) metamaterials (MTMs) were proposed over forty years ago, they have been experimentally demonstrated only in the last decade. The adaptation of a variety of epsilon-negative (ENG), mu-negative (MNG), and double negative (DNG) metamaterials, as well as single ENG, MNG,and DNG MTM unit cells, to achieve antenna systems exhibiting enhanced performance characteristics has received considerable research attention. These include, for example, electrically small antennas, multi-functional antennas, leaky-wave antenna arrays, and higher directivity antennas. Inspired by these metamaterial concepts, several metamaterial-engineered antennas have been investigated in this dissertation to achieve additional enhanced performance characteristics. First, several fabricated and tested variations of the three dimensional (3D) magnetic EZ (easy) antenna at 300 MHz and 100 MHz were examined. The 3D magnetic EZ antenna is composed of an electrically small loop antenna that is coaxially-fed through a finite ground plane and that is integrated with an extruded capacitively loaded loop (CLL) element. This 3D CLL structure is designed to be a near-field resonant parasitic (NFRP) element. With the proper placement of the NFRP element in the very near field of the driven element, it was demonstrated that the overall antenna system achieved complete matching to the source without any external matching network, along with an enhancement of the overall radiation efficiency. Additionally, multi-functional 3D magnetic EZ antennas were designed for wireless communication applications. For instance, by incorporating multiple NFRP elements, several dual-band versions were realized. Second, by properly combining and phasing their effective magnetic dipoles, electrically small multi-band, circular polarized (CP), metamaterial-inspired wire antennas were perfected that are nearly completely matched to a 50 Ω source and have high radiation efficiencies. Again, they were accomplished by incorporating multiple NFRP elements into their designs. Finally, two tri-band-notched UWB antennas were developed and tested successfully. The notched filters were achieved by introducing printed, electrically small CLL resonators into the UWB antenna design. Each CLL element has a high-Q characteristic and a compact size, which made it a very suitable candidate for a band-stop filter function. Like the split ring resonator (SRR) element, the CLL element is self-resonant and has a resonance frequency that is determined primarily by its loop inductance and the capacitances resulting from the cuts which opened the loop. In contrast, the CLL element has a much simpler, more compact design. It was demonstrated that by placing one, two or three CLL elements near the feedline of the UWB antenna and by tuning their sizes, one can control the band-notched frequencies of the radiator, while minimizing their space requirements, to achieve single, dual, and tri-band notched-filter UWB antennas.
机译:尽管40年前就提出了双负(DNG)超材料(MTM),但仅在最近十年中进行了实验证明。适应多种ε负(mu),mu负(MNG)和双负(DNG)超材料以及单个ENG,MNG和DNG MTM单位单元,以实现具有增强性能特征的天线系统受到了相当多的研究关注。这些包括,例如,小型电子天线,多功能天线,漏波天线阵列和更高方向性的天线。受这些超材料概念的启发,本文研究了几种超材料工程天线,以实现额外的增强性能。首先,研究了在300 MHz和100 MHz下三维(3D)磁性EZ(简易)天线的几种制造和测试变体。 3D磁性EZ天线由一个小的环形天线组成,该环形天线通过有限的接地面同轴馈电,并与一个挤压电容负载环形(CLL)元件集成在一起。此3D CLL结构设计为近场共振寄生(NFRP)元件。通过将NFRP元件正确放置在从动元件的非常近的区域中,可以证明整个天线系统无需任何外部匹配网络即可实现与源的完全匹配,并提高了整体辐射效率。此外,还为无线通信应用设计了多功能3D磁性EZ天线。例如,通过合并多个NFRP元件,实现了多个双频段版本。其次,通过适当地组合和定相它们的有效磁偶极子,可以优化电学上小巧的多频带圆极化(CP),启发超材料的线形天线,使其几乎完全匹配50Ω源,并具有很高的辐射效率。同样,它们是通过将多个NFRP元素纳入其设计来实现的。最后,成功开发并测试了两个带三槽口的UWB天线。陷波滤波器是通过在UWB天线设计中引入印刷的电小的CLL谐振器来实现的。每个CLL元件都具有高Q特性和紧凑的尺寸,这使其非常适合带阻滤波器功能。像裂环谐振器(SRR)元件一样,CLL元件是自谐振的,并且谐振频率主要由其环路电感和由断开环路的切口产生的电容决定。相反,CLL元素具有更简单,更紧凑的设计。事实证明,通过在UWB天线的馈线附近放置一个,两个或三个CLL元件并调整其尺寸,可以控制辐射器的带隙频率,同时将其空间需求降至最低,从而实现单,双,和三频段陷波滤波器UWB天线。

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    Lin Chia-Ching;

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  • 年度 2010
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