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L-band aperture synthesis radiometry: hardware requirements and system performance

机译:L波段孔径合成辐射测量:硬件要求和系统性能

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摘要

Aperture synthesis radiometry is becoming a feasible concept for imaging applications, especially at low microwave frequencies where it takes clear advantage of the absence of mechanical antenna motion. A 2D interferometric radiometer consists of a large number of receivers with small antennas distributed along a 2D structure, and the brightness temperature image is formed by inversion of the measured cross-correlation between all pairs of antennas. This is the concept of MIRAS (MIcrowave Radiometer by Aperture Synthesis), the core instrument of the SMOS (Soil Moisture and Ocean Salinity) mission selected by the European Space Agency (ESA) and planned to be launched in 2005. In its preliminary design, MIRAS receivers are uniformly distributed along a Y-shape structure and work at L-band. This approach, however, poses a challenge in the specifications required for the receivers: a) The short integration time due to the platform motion strongly limits the achievable sensitivity, b) the spatial resolution is determined by the structure dimensions which cannot be made arbitrarily large and c) the radiometric accuracy depends on the non ideal behavior of the receivers, although, to some extent can be corrected by internal calibration. This paper contributes to define the main trade-off between hardware requirements and system performance of this complex instrument.
机译:孔径合成辐射测量法正在成为成像应用的可行概念,尤其是在微波频率较低的情况下,由于它明显缺乏机械天线运动,因此尤其适用于微波频率较低的情况。 2D干涉辐射计由大量的接收器和沿2D结构分布的小天线组成,并且亮度温度图像是通过对所有天线对之间测得的互相关求逆而形成的。这是MIRAS(Aperture Synthesis的微波辐射计)的概念,它是由欧洲航天局(ESA)选择并计划于2005年发射的SMOS(土壤水分和海洋盐度)任务的核心仪器。在其初步设计中, MIRAS接收器沿Y形结构均匀分布,并在L波段工作。但是,这种方法在接收机所需的规格方面提出了挑战:a)由于平台运动而导致的短积分时间极大地限制了可达到的灵敏度,b)空间分辨率由无法任意增大的结构尺寸决定c)辐射精确度取决于接收机的非理想行为,尽管在一定程度上可以通过内部校准进行校正。本文有助于定义此复杂仪器的硬件要求和系统性能之间的主要权衡。

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