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编队飞行的小卫星对气溶胶的遥感探测。

Remote sensing of aerosols with small satellites in formation flight.

作者信息

Knobelspiesse Kirk, Nag Sreeja

机构信息

NASA Goddard Space Flight Center, Greenbelt, MD, USA.

Bay Area Environmental Research Institute, Petaluma, CA, USA.

出版信息

Atmos Meas Tech. 2018 Jul;11(7):3935-3954. doi: 10.5194/amt-11-3935-2018. Epub 2018 Jul 6.

Abstract

Determination of aerosol optical properties with orbital passive remote sensing is a difficult task, as observations often have limited information. Multi-angle instruments, such as the Multi-angle Imaging SpectroRadiometer (MISR) and the POlarization and Directionality of the Earth's Reflectances (POLDER), seek to address this by making information rich multi-angle observations, which can be used to better retrieve aerosol optical properties. The paradigm for such instruments is that each angle view is made from one platform, with, for example, a gimbaled sensor or multiple fixed view angle sensors. This restricts the observing geometry to a plane within the scene Bidirectional Reflectance Distribution Function ( ) observed at the top of the atmosphere (TOA). New technological developments, however, support sensors on small satellites flying in formation, which could be a beneficial alternative. Such sensors may have only one viewing direction each, but the agility of small satellites allows one to control this direction and change it over time. When such agile satellites are flown in formation and their sensors pointed to the same location at approximately the same time, they could sample a distributed set of geometries within the scene . In other words, observations from multiple satellites can take a variety of view zenith and azimuth angles, and are not restricted to one azimuth plane as is the case with a single multi-angle instrument. It is not known, however, if this is as potentially capable as a multi-angle platform for the purposes of aerosol remote sensing. Using a systems engineering tool coupled with an information content analysis technique, we investigate the feasibility of such an approach for the remote sensing of aerosols. These tools test the mean results of all geometries encountered in an orbit. We find that small satellites in formation are equally capable as multi-angle platforms for aerosol remote sensing, as long as their calibration accuracies and measurement uncertainties are equivalent. As long as the viewing geometries are dispersed throughout the , it appears the quantity of view angles determines the information content of the observations, not the specific observation geometry. Given the smoothly varying nature of 's observed at the TOA, this is reasonable, and supports the viability of aerosol remote sensing with small satellites flying in formation. The incremental improvement in information content that we found with number of view angles also supports the concept of a resilient mission comprised of multiple satellites that are continuously replaced as they age or fail.

摘要

利用轨道被动遥感确定气溶胶光学特性是一项艰巨的任务,因为观测往往信息有限。多角度仪器,如多角度成像光谱辐射仪(MISR)和地球反射率的偏振与方向性(POLDER),试图通过进行信息丰富的多角度观测来解决这一问题,这些观测可用于更好地反演气溶胶光学特性。此类仪器的模式是,每个角度视图由一个平台获取,例如通过万向节传感器或多个固定视角传感器。这将观测几何结构限制在大气层顶(TOA)观测到的场景双向反射分布函数( )内的一个平面内。然而,新技术的发展支持在编队飞行的小卫星上搭载传感器,这可能是一种有益的替代方案。此类传感器每个可能只有一个观测方向,但小卫星的灵活性使人们能够控制这个方向并随时间改变它。当此类敏捷卫星编队飞行且其传感器在大致相同的时间指向同一位置时,它们可以对场景 内的一组分布式几何结构进行采样。换句话说,来自多颗卫星的观测可以获取各种观测天顶角和方位角,而不像单个多角度仪器那样局限于一个方位平面。然而,就气溶胶遥感而言,尚不清楚这是否具有与多角度平台同样的潜力。通过使用系统工程工具并结合信息含量分析技术,我们研究了这种方法用于气溶胶遥感的可行性。这些工具测试轨道中遇到的所有几何结构的平均结果。我们发现,只要编队飞行的小卫星的校准精度和测量不确定性相当,它们在气溶胶遥感方面与多角度平台具有同等能力。只要观测几何结构分散在整个 范围内,似乎视角数量决定了观测的信息含量,而不是特定的观测几何结构。鉴于在TOA观测到的 的性质是平滑变化的,这是合理的,并支持了利用编队飞行的小卫星进行气溶胶遥感的可行性。我们发现随着视角数量增加信息含量的增量改进也支持了由多颗卫星组成的弹性任务概念,这些卫星随着老化或出现故障而不断被替换。

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