Design of a dual linear polarization antenna using split ring resonators at X-band

IF 0.9 Q4 ENGINEERING, ELECTRICAL & ELECTRONIC
Sadiq Ahmed, M. Chandra
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引用次数: 2

Abstract

Abstract. Dual linear polarization microstrip antenna configurations are very suitable for high-performance satellites, wireless communication and radar applications. This paper presents a new method to improve the co-cross polarization discrimination (XPD) for dual linear polarized microstrip antennas at 10 GHz. For this, three various configurations of a dual linear polarization antenna utilizing metamaterial unit cells are shown. In the first layout, the microstrip patch antenna is loaded with two pairs of spiral ring resonators, in the second model, a split ring resonator is placed between two microstrip feed lines, and in the third design, a complementary split ring resonators are etched in the ground plane. This work has two primary goals: the first is related to the addition of metamaterial unit cells to the antenna structure which permits compensation for an asymmetric current distribution flow on the microstrip antenna and thus yields a symmetrical current distribution on it. This compensation leads to an important enhancement in the XPD in comparison to a conventional dual linear polarized microstrip patch antenna. The simulation reveals an improvement of 7.9, 8.8, and 4 dB in the E and H planes for the three designs, respectively, in the XPD as compared to the conventional dual linear polarized patch antenna. The second objective of this paper is to present the characteristics and performances of the designs of the spiral ring resonator (S-RR), split ring resonator (SRR), and complementary split ring resonator (CSRR) metamaterial unit cells. The simulations are evaluated using the commercial full-wave simulator, Ansoft High-Frequency Structure Simulator (HFSS).
X波段分环谐振腔双线偏振天线的设计
摘要双线偏振微带天线配置非常适合高性能卫星、无线通信和雷达应用。本文提出了一种新的方法来提高双线偏振微带天线在10 GHz。为此,展示了利用超材料晶胞的双线偏振天线的三种不同配置。在第一种布局中,微带贴片天线负载有两对螺旋环谐振器,在第二种模型中,在两条微带馈线之间放置一个分裂环谐振器,而在第三种设计中,在接地平面中蚀刻一个互补的分裂环谐振器。这项工作有两个主要目标:第一个目标是在天线结构中添加超材料晶胞,从而补偿微带天线上的不对称电流分布,从而产生对称的电流分布。与传统的双线偏振微带贴片天线相比,这种补偿导致XPD的重要增强。模拟显示改进了7.9、8.8和4 与传统的双线偏振贴片天线相比,XPD中的三种设计分别在E和H平面中的dB。本文的第二个目的是介绍螺旋环谐振器(S-RR)、分瓣环谐振器(SRR)和互补分瓣环谐振腔(CSRR)超材料晶胞的设计特点和性能。使用商用全波模拟器Ansoft高频结构模拟器(HFSS)对模拟进行评估。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Advances in Radio Science
Advances in Radio Science ENGINEERING, ELECTRICAL & ELECTRONIC-
CiteScore
0.90
自引率
0.00%
发文量
3
审稿时长
45 weeks
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