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A compact thermal infrared imaging radiometer with high spatial resolution and wide swath for a small satellite using a large format uncooled infrared focal plane array

机译:使用大型非制冷红外焦平面阵列的小型卫星,具有高空间分辨率和宽扫描范围的紧凑型红外热成像辐射计

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In this paper, we present a feasibility study for the potential of a high spatial resolution and wide swath thermal infrared (TIR) imaging radiometer for a small satellite using a large format uncooled infrared focal plane array (ER-FPA). The preliminary TIR imaging radiometer designs were performed. One is a panchromatic (mono-band) imaging radiometer (8-12μm) with a large format 2000 × 1000 pixels uncooled IR-FPA with a pixel pitch of 15 urn. The other is a multiband imaging radiometer (8.8μm, 10.8μm, 11.4μm). This radiometer is employed separate optics and detectors for each wave band. It is based on the use of a 640 × 480 pixels uncooled IR-FPA with a pixel pitch of 25 μm. The thermal time constant of an uncooled IR-FPA is approximately 10-16ms, and introduces a constraint to the satellite operation to achieve better signal-to-noise ratio, MTF and linearity performances. The study addressed both on-ground time-delay-integration binning and staring imaging solutions, although a staring imaging was preferred after trade-off. The staring imaging requires that the line of sight of the TIR imaging radiometer gazes at a target area during the acquisition time of the image, which can be obtained by rotating the satellite or a steering mirror around the pitch axis. The single band radiometer has been designed to yield a 30m ground sample distance over a 30km swath width from a satellite altitude of 500km. The radiometric performance, enhanced with staring imaging, is expected to yield a NETD less than 0.5K for a 300K ground scene. The multi-band radiometer has three spectral bands with spatial resolution of 50m and swath width of 24km. The radiometric performance is expected to yield a NETD less than 0.85K. We also showed some preliminary simulation results on volcano, desert/urban scenes, and wildfire.
机译:在本文中,我们针对使用大型非冷却红外焦平面阵列(ER-FPA)的小型卫星,针对高空间分辨率和宽幅热红外(TIR)成像辐射计的潜力进行了可行性研究。进行了初步的TIR成像辐射计设计。一种是全色(单波段)成像辐射计(8-12μm),具有大幅面2000×1000像素的非冷却IR-FPA,像素间距为15 um。另一个是多波段成像辐射计(8.8μm,10.8μm,11.4μm)。对于每个波段,此辐射计均采用独立的光学器件和检测器。它基于使用像素间距为25μm的640×480像素的非冷却IR-FPA。未冷却的IR-FPA的热时间常数大约为10-16ms,并且对卫星运行产生了限制,以实现更好的信噪比,MTF和线性性能。该研究解决了地面时延积分合并和凝视成像解决方案,尽管在权衡之后优选凝视成像。凝视成像要求TIR成像辐射计的视线在图像采集时间内注视目标区域,这可以通过围绕俯仰轴旋转卫星或转向镜来获得。单波段辐射计的设计目标是,从500 km的卫星高度开始,在30 km的覆盖范围内产生30 m的地面采样距离。对于300K地面场景,通过凝视成像增强的辐射性能有望产生小于0.5K的NETD。多波段辐射计具有三个光谱带,空间分辨率为50m,幅宽为24km。辐射性能有望产生小于0.85K的NETD。我们还显示了一些有关火山,沙漠/城市风貌和野火的初步模拟结果。

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