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Feasibility study: Highly integrated chipset design for compact synthetic aperture radar payload on micro-satellite

机译:可行性研究:高度集成的芯片组设计,用于微卫星上的紧凑型合成孔径雷达有效载荷

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Micro and nano satellites are attractive due to the low development and launching costs. Carried by micro and nano satellites, synthetic aperture radars (SARs) have great potential for urban, oceanography, land use, agriculture usages. Different than conventional satellites, the payload of Micro and nano satellites is limited. This imposes great challenges on the SAR system design. Traditional SARs adopt thousands of millimeter wave integrated circuit (MMIC) components; they are bulky and power hungry. This paper investigates the feasibility to deploy the emerging technologies to shrink the volume, reduce the cost and improve the power efficiency of the SAR system. Highly integrated radar transceiver integrated circuits (ICs) are reviewed, and a SAR transceiver IC is developed. Design technologies of low-noise amplifiers (LNAs) and high-power amplifiers (HPAs) are compared and Gallium Nitride (GaN) technology is proposed. A novel micro-electromechanical system (MEMS) based delay line is also proposed for satellite SAR to reduce the system size. Existing issues and expected improvements of these technologies are also elaborated. This work shows a clear route map for the future shrinkage of SAR system, and would be a useful guideline to the development of compact SARs for micro-satellites.
机译:由于开发和发射成本低,微型和纳米卫星具有吸引力。合成孔径雷达(SAR)由微型和纳米卫星携带,在城市,海洋学,土地利用,农业用途方面具有巨大潜力。与常规卫星不同,微型和纳米卫星的有效载荷是有限的。这对SAR系统设计提出了很大的挑战。传统SAR采用数千毫米波集成电路(MMIC)组件。它们体积庞大且耗电。本文研究了部署新兴技术以缩小体积,降低成本并提高SAR系统的电源效率的可行性。审查了高度集成的雷达收发器集成电路(IC),并开发了SAR收发器集成电路。比较了低噪声放大器(LNA)和大功率放大器(HPA)的设计技术,并提出了氮化镓(GaN)技术。还提出了一种新颖的基于微机电系统(MEMS)的延迟线用于卫星SAR,以减小系统尺寸。还阐述了这些技术的现有问题和预期的改进。这项工作为SAR系统的未来缩小显示了清晰的路线图,并将为开发用于微卫星的紧凑型SAR提供有用的指导。

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