双Ka/ q波段反射天线

S. V. Polenga, A. Erokhin, R. O. Ryazantsev, A. D. Poligina, R. M. Krylov, E. A. Litinskaya, E. Gafarov, A. M. Aleksandrin, Y. Salomatov, I. Danilov
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引用次数: 0

摘要

介绍。双工卫星通信通常使用两个间隔的频带,其中一个频带接收信号,另一个频带向卫星发射信号。通信卫星天线系统的主要任务是在所有涉及的频带上提供相同的覆盖区域,这对于传统的抛物面反射器天线来说通常是一项具有挑战性的任务。反射射线允许在间隔频带中独立控制辐射波相位,这可用于为现代通信卫星创建高效的多频带天线系统。开发Ka/ q频率范围的相位校正元件,并在其基础上创建双波段反射器,用于在显著间隔频率范围内给定角度扇形内具有正交圆偏振和相同增益的操作。材料和方法。采用有限元分析方法进行了数值研究。采用近场扫描法测量了辐射模式。研制了一种具有低损耗、相对位置对相位特性依赖性较弱的单层双带相位校正反射阵元。在此基础上,合成并制造了由24465个双频元组成的反射阵列。所研制的单层双频反射镜具有良好的特性,在Ka-和q -频率范围内的效率分别达到56%和36%,在±0.75°角扇区的最小增益几乎相同。研究结果证实了所开发的反射器的潜力,可以成功取代安装在现代通信卫星上和作为地面卫星终端一部分的毫米波范围内的传统抛物面反射器。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
A Dual Ka/Q-Band Reflectarray
Introduction. Duplex satellite communication is commonly arranged using two spaced frequency bands, with one band receiving and the other band transmitting signals to a satellite. The main task of a communications satellite antenna system consists in providing an identical coverage area across all involved frequency bands, which is often a challenging task for conventional parabolic reflector antennas. Reflectarrays allow an independent control of the reradiated wave phase in spaced frequency bands, which can be used to create efficient multi-band antenna systems for modern communication satellites.Aim. To develop a Ka/Q-frequency range phase-correcting element and to create on its basis a dual-band reflectarray for operation with orthogonal circular polarizations and identical gains in a given sector of angles in significantly spaced frequency ranges.Materials and methods. Numerical studies were carried out using the finite element analysis method. Radiation patterns were measured using the near field scanning method.Results. A single-layer dual-band phase-correcting reflectarray element was developed for operation with orthogonal circular polarizations with low losses and a weak dependence of the relative position of the elements on the phase characteristic. On the basis of the proposed element, a reflectarray consisting of 24 465 two-frequency elements was synthesized and manufactured. The developed prototype of a single-layer dual-band reflectarray demonstrated good characteristics, with the efficiency reaching 56 and 36 % in the Ka- and Q-frequency ranges, respectively, and an almost identical minimum gain in the ±0.75° angle sector.Conclusion. The research results confirm the potential of the developed reflectarray to successfully replace conventional parabolic reflectors installed both on modern communication satellites and as part of ground-based satellite terminals in the millimeter wavelength range.
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