利用多级顺序旋转为立方体卫星设计单馈电圆极化 X 波段天线阵列的方法学

Daylon Hester;Seokhee Han;Mark Adams
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摘要

本文介绍了用于立方体卫星的单馈电圆极化天线阵列的简化设计方法。所介绍的方法以学生团队为主导,采用几何简单的方法,选择圆形贴片和环形馈电网络,而不是复杂的几何结构。设计了高阻抗和低阻抗辐射元件,并引入了设计限制,从而可以通过一组简单的级联方程解决所有其他几何问题。这些刻意的选择最大限度地减少了设计参数的数量,简化了设计过程。圆极化是通过多层次实现的,即通过恒定阻抗的环形馈电线以串并联方式馈电依次排列的线性极化圆形贴片。本文还展示了一个$4\times 4$ 右旋圆极化(RHCP)立方体卫星下行链路阵列天线,该天线设计用于在 8025-8400-MHz 地球探测卫星频段内运行,是利用所提出的方法开发的。该天线由四个依次旋转的 RHCP 子阵列组成,每个子阵列由四个依次旋转的线性极化圆形贴片组成。在 8.389 GHz 频率下,该天线的孔径 RHCP 增益超过 16.19 dBic,模拟 3-dB 轴向比带宽为 27.9%,半功率波束宽度为 20°,孔径效率为 53%。该天线的 VSWR 带宽为 26.6%,在目标频段的辐射效率为 60% 至 82%。该天线体积小巧,仅为 9 厘米,可安装在 10 厘米立方体卫星的一个面上。
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Design Methodology for Single-Feed Circularly Polarized X-Band Antenna Arrays for CubeSats Using Multilevel Sequential Rotation
This article presents a streamlined design methodology for single-feed circularly polarized antenna arrays for CubeSats. The presented method was created with student-led teams in mind and employs a geometrically simple approach, opting for circular patches and ring-shaped feed networks instead of complex geometries. High- and low-impedance radiating elements are designed, and design restrictions are introduced such that all other geometries may be solved through a set of simple cascading equations. These deliberate choices minimize the number of design parameters and simplify the design process. Circular polarization is achieved through a multilevel implementation of sequentially arranged linearly polarized circular patches fed in a series-parallel fashion by ring-shaped feed lines of constant impedance. This article also demonstrates a $4\times 4$ right-hand circularly polarized (RHCP) CubeSat downlink array antenna designed for operation in the 8025–8400-MHz Earth exploration satellite band which was developed using the proposed methodology. The antenna comprises four sequentially rotated RHCP subarrays, each consisting of four sequentially rotated linearly polarized circular patches. The antenna’s boresight RHCP gain exceeds 16.19 dBic at 8.389 GHz with a simulated 27.9% 3-dB axial ratio bandwidth, a 20° half-power beamwidth, and an aperture efficiency of 53%. The antenna has a sub-2 VSWR bandwidth of 26.6%, and its radiation efficiency ranges from 60% to 82% across the target band. Its compact size of 9 cm $\times $ 9 cm enables it to fit on one face of a 10 cm $\times $ 10 cm CubeSat unit.
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2024 Index IEEE Journal on Miniaturization for Air and Space Systems Vol. 5 Table of Contents Front Cover The Journal of Miniaturized Air and Space Systems Broadband Miniaturized Antenna Based on Enhanced Magnetic Field Convergence in UAV
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