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首页> 外文期刊>Atmospheric Measurement Techniques >Deriving clear-sky longwave spectral flux from spaceborne hyperspectral radiance measurements: a case study with AIRS observations
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Deriving clear-sky longwave spectral flux from spaceborne hyperspectral radiance measurements: a case study with AIRS observations

机译:从星载高光谱辐射测量值推导出晴空长波光谱通量:以AIRS观测为例

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摘要

Previous studies have shown that longwave (LW) spectral fluxes have unique merit in climate studies. Using Atmospheric Infrared Sounder (AIRS) radiances as a case study, this study presents an algorithm to derive the entire LW clear-sky spectral fluxes from spaceborne hyperspectral observations. No other auxiliary observations are needed in the algorithm. A clear-sky scene is identified using a three-step detection method. The identified clear-sky scenes are then categorized into different sub-scene types using information about precipitable water, lapse rate and surface temperature inferred from the AIRS radiances at six selected channels. A previously established algorithm is then used to invert AIRS radiances to spectral fluxes over the entire LW spectrum at 10?cmsup?1/sup spectral interval. Accuracy of the algorithms is evaluated against collocated Clouds and the Earth's Radiant Energy System (CERES) observations. For nadir-view observations, the mean difference between outgoing longwave radiation (OLR) derived by this algorithm and the collocated CERES OLR is 1.52?Wmsup?2/sup with a standard deviation of 2.46?Wmsup?2/sup. When the algorithm is extended for viewing zenith angle up to 45°, the performance is comparable to that for nadir-view results.
机译:先前的研究表明,长波(LW)光谱通量在气候研究中具有独特的优点。以大气红外测深仪(AIRS)辐射为例,本研究提出了一种算法,可从星载高光谱观测中得出整个LW晴空光谱通量。该算法无需其他辅助观测。使用三步检测方法可以识别出天空晴朗的场景。然后使用从六个选定通道的AIRS辐射推断出的有关可沉淀水,流逝速率和表面温度的信息,将识别出的晴空场景分类为不同的子场景类型。然后使用先前建立的算法将AIRS辐射转换为整个LW光谱中10?cm ?1 光谱间隔的光谱通量。根据并置的云和地球的辐射能系统(CERES)观测值评估算法的准确性。对于天底观测,该算法导出的长波辐射(OLR)与并置的CERES OLR之间的平均差为1.52?Wm ?2 ,标准偏差为2.46?Wm ?。 2 。当将该算法扩展为可查看高达45°的天顶角时,其性能可与天底观测结果媲美。

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