用于卫星合成孔径雷达的小型高增益椭圆贴片天线

Ebenezer Tawiah Ashong, Baidenger Agyekum Twumasi, P. Kagbetor
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引用次数: 0

摘要

合成孔径雷达(SAR)具有全天候、不受天气影响的作战能力,适用于卫星、导弹、飞机、无人机等多种平台,在各种应用领域具有光学成像的优势。天线是决定SAR系统整体性能的关键部件。SAR系统对天线的性能提出了很高的要求,这些要求必须考虑到为该应用选择合适的候选天线。一般来说,适合SAR应用的天线必须具有高增益、低旁瓣电平和窄波束宽度等特征。此外,为许多国家高度寻求的机载和星载SAR应用选择的天线必须具有宽带宽和高效率。本文提出了一种满足带宽和增益要求的天线。所提出的天线是一种利用沙漏状孔径实现最大耦合的孔径耦合椭圆贴片天线。它还利用了堆叠贴片结构和SIW腔背衬来实现高效率和宽带宽。模拟阻抗带宽达到640 MHz (6.58% FBW),范围为9.40 GHz至10.04 GHz,低于10 db点。天线增益在9.5 GHz ~ 9.8 GHz范围内超过8.88 dBi。在9.6 GHz时实现9.32 dBi的最大增益。整个工作波段的辐射模式几乎是对称的和稳定的。该天线具有高增益和高效率的特点,是卫星合成孔径雷达(SAR)等高效应用阵列的理想选择。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Compact High Gain Elliptical Patch Antenna for Satellite Synthetic Aperture Radar
Synthetic aperture radar (SAR) due to its capabilities such as all-day and weather-independent operations and suitability to diverse platforms such as satellite, missile, airplane, and unmanned aerial vehicle among others, has an edge over optical imaging for various applications. The antenna is a key component, which determines the overall performance of a SAR system. SAR systems place great demands on the performance of the antenna and these demands must be factored into the selection of a suitable antenna candidate for this application. Generally, antennas suitable for SAR applications must possess features such as high gain, low sidelobe levels, and narrow beamwidth. Additionally, antennas selected for airborne and spaceborne SAR applications, which are highly sought by many countries, must have broad bandwidth and high efficiency. In this paper, an antenna which satisfies the bandwidth and gain requirements is proposed. The proposed antenna is an aperture-coupled elliptical patch antenna which utilizes an hourglass-like aperture to achieve maximum coupling. It also takes advantage of the stacked-patch configuration and SIW cavity backing to realize a high efficiency and broad bandwidth. The simulated impedance bandwidth reaches 640 MHz (6.58% FBW) ranging from 9.40 GHz to 10.04 GHz below the 10-dB point. The antenna gain exceeds 8.88 dBi from 9.5 GHz to 9.8 GHz. The maximum gain of 9.32 dBi is realized at 9.6 GHz. The radiation patterns are nearly symmetrical and stable across the operating band. The proposed antenna demonstrates high gain and high efficiency which makes it an attractive candidate for constructing arrays for high-efficiency applications such as satellite synthetic aperture radar (SAR).
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