首页> 外文会议>Sensors, Systems, and Next-Generation Satellites XI; Proceedings of SPIE-The International Society for Optical Engineering; vol.6744 >An approach for retrieval of atmospheric trace gases CO_2, CH_4 and CO from the future Canadian Micro Earth Observation Satellite (MEOS)
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An approach for retrieval of atmospheric trace gases CO_2, CH_4 and CO from the future Canadian Micro Earth Observation Satellite (MEOS)

机译:从未来的加拿大微地球观测卫星(MEOS)检索大气中痕量气体CO_2,CH_4和CO的方法

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Among all trace gases, the carbon dioxide and methane provide the largest contribution to the climate radiative forcing and together with carbon monoxide also to the global atmospheric carbon budget. New Micro Earth Observation Satellite (MEOS) mission is proposed to obtain information about these gases along with some other mission's objectives related to studying cloud and aerosol interactions. The miniature suit of instruments is proposed to make measurements with reduced spectral resolution (1.2nm) over wide NIR. range 0.9μm to 2.45μm and with high spectral resolution (0.03nm) for three selected regions: oxygen A-band, 1.5μm-1.7μm band and 2.2μm-2.4μm band. It is also planned to supplement the spectrometer measurements with high spatial resolution imager for detailed characterization of cloud and surface albedo distribution within spectrometer field of view. The approaches for cloud/clear-sky identification and column retrievals of above trace gases are based on differential absorption technique and employ the combination of coarse and high-resolution spectral data. The combination of high and coarse resolution spectral data is beneficial for better characterization of surface spectral albedo and aerosol effects. An additional capability for retrieval of the vertical distribution amounts is obtained from the combination of nadir and limb measurements. Oxygen A-band path length will be used for normalization of trace gas retrievals.
机译:在所有微量气体中,二氧化碳和甲烷对气候辐射强迫的贡献最大,一氧化碳也对全球大气碳预算的贡献最大。提出了新的微型地球观测卫星(MEOS)任务,以获取有关这些气体的信息以及与研究云和气溶胶相互作用有关的其他一些任务的目标。建议使用微型仪器以在较宽的NIR范围内以降低的光谱分辨率(1.2nm)进行测量。范围在0.9μm至2.45μm之间,并在三个选定区域具有高光谱分辨率(0.03nm):氧气A波段,1.5μm-1.7μm波段和2.2μm-2.4μm波段还计划用高空间分辨率成像仪来补充光谱仪的测量,以详细表征光谱仪视场内的云和表面反照率分布。上面痕量气体的云/晴空识别和柱检索方法基于差分吸收技术,并结合了粗糙和高分辨率光谱数据。高分辨率和粗分辨率光谱数据的结合有利于更好地表征表面光谱反照率和气溶胶效应。从最低点和肢体测量值的组合中可以获得获取垂直分布量的其他功能。氧气A波段的路径长度将用于痕量气体回收的标准化。

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