EBG结构角稳定性对低轮廓偶极子天线性能的影响

L. Akhoondzadeh-Asl, P. Hall, J. Nourinia, C. Ghobadi
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引用次数: 12

摘要

本文研究了由方形金属贴片阵列和无通孔耶路撒冷十字组成的电磁带隙(EBG)结构上的宽带金刚石偶极子天线在PEC衬底上的性能,并对其进行了比较。结果表明,EBG结构的角稳定性对天线的性能影响不大。EBG结构用于在有限的频率范围内模拟磁性导体,用作低轮廓天线配置的地平面以及其他微波应用。先前的研究表明,EBG表面可以通过使用带或不带通孔的周期性补丁来充当AMC地平面[1,2]。两种方法都能够创建AMC条件,表明反射系数的幅度为1(在理想的无损情况下),相位为0°。但研究表明,对于带有方形贴片的EBG结构(带或不带过孔),表面阻抗强烈依赖于入射角和极化类型(TM或TE)。因此,这些人造表面往往只代表天线辐射角谱中相对较小的一部分的磁壁[3,4]。因此,研究EBG结构的角稳定性对低轮廓天线性能的影响具有重要意义。在本文中,一个宽带偶极子天线被放置在两种不同的EBG结构的顶部,没有任何通孔。其中一种形状是方形的,其角稳定性较差,另一种形状是基于耶路撒冷十字的,据报道其更稳定[4]。在上述EBG结构上详细研究了S11等宽带偶极天线的特性、辐射方向图和增益。天线设计采用偶极子天线作为宽带线极化天线单元。图1显示了在0.5 mm厚FR4衬底(4)上制作的偶极子天线的几何形状。4 = r ε),在介电常数为2.2的3毫米PEC衬底上的元件阵列组成的EBG结构上方2毫米。因此,偶极子天线与EBG结构底部接平面的总高度为5.5 mm (0.09 GHz 5 λ)。形成偶极子的正方形的每边是17mm。用于连接同轴电缆和偶极子的平衡器是一种宽带微带锥形平衡器。为了获得相同的方形和耶路撒冷十字共振频率,假设衬底的厚度和介电常数相同。但由于元件形状对共振频率的影响,它们的单元尺寸略有不同。图2给出了用HFSS模拟得到的方形EBG和耶路撒冷交叉EBG的单位胞格及其尺寸和相关反射相位。253 0-7803-9444-5/06/$20.00©2006 ieee。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Influence of Angular Stability of EBG Structures on Low Profile Dipole Antenna Performance
In this paper the broadband diamond dipole antenna performance above an Electromagnetic Bandgap (EBG) structure composed of an array of square metallic patches and Jerusalem crosses without any vias over a PEC backed dielectric substrate is investigated and compared to each other. The result shows that angular stability of the EBG structures does not significantly affect on the performance of the antenna. INTRODUCTION EBG structures are used to mimic magnetic conductors over a limited frequency range for use as a ground plane in low-profile antenna configurations in addition other microwave applications. Previous research shows that EBG surfaces can act as AMC ground planes by utilizing a periodic patch with or without vias [1,2]. Both methods are capable of creating the AMC condition indicative of a reflection coefficient with magnitude of 1 (in the ideal lossless case) and phase of 0°. But it has been demonstrated that for the EBG structure (with or without vias) with square patches, the surface impedance strongly depends on the incidence angle and polarization type (TM or TE). As a consequence, these artificial surfaces tend to represent a magnetic wall only for a relatively small part of the angular spectrum of the antenna radiation [3,4]. So it is of interest to investigate the influence of the angular stability of the EBG structure on low profile antenna performance. In this paper, a wideband dipole antenna has been placed on top of the two different EBG structures without any vias. One of the shapes is square, which has poor angular stability and another one is based on Jerusalem cross which has been reported as more stable [4]. Characteristics of the wide band dipole antenna such as S11, radiation pattern and gain are investigated in details on the mentioned EBG structures. ANTENNA DESIGN A dipole antenna was used as a broadband linearly polarized antenna element. Fig. 1 shows the geometry of the dipole antenna made on 0.5 mm thick FR4 substrate ( 4 . 4 = r ε ), 2 mm above the EBG structures which consist of the element array on top of a 3 mm PEC backed substrate with dielectric constant of 2.2. Thus, the overall height of the dipole antenna from the bottom ground plane of the EBG structure is 5.5 mm. (0.09 GHz 5 λ ). Each side of the square forming the dipole is 17 mm. The balun, which is used to connect the coax to the dipole, is a wideband microstrip tapered balun . To achieve the same resonance frequency for the square and Jerusalem cross, the thickness and permittivity of the substrate has been assumed to be the same. But due to the effect of element shape on the resonance frequency, their cell sizes are slightly different. In Fig. 2 the unit cell of the square EBG and Jerusalem cross EBG with dimensions and the related reflection phases, which have been obtained by HFSS simulations, are shown. 253 0-7803-9444-5/06/$20.00 © 2006 IEEE.
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