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Tropospheric carbon monoxide variability from AIRS under clear and cloudy conditions

机译:在清晰和多云条件下的空气中的流散碳一氧化碳可变性

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We study the carbon monoxide (CO) variability in the last decade measured by NASA's Atmospheric InfraRed Sounder (AIRS) on the Earth Observing System (EOS)/Aqua satellite. The focus of this study is to analyze CO variability and short-term trends separately for background CO and fresh CO emissions based on a new statistical approach. The AIRS Level 2 (L2) retrieval algorithm utilizes cloud clearing to treat cloud contaminations in the signals, and this increases the data coverage significantly to a yield of more than 50% of the total measurements. We first study if the cloud clearing affects CO retrievals and the subsequent trend studies by using the collocated Moderate Resolution Imaging Spectroradiometer (MODIS) cloud mask to identify AIRS clear sky scenes. We then carry out a science analysis using AIRS CO data individually for the clear and cloud-cleared scenes to identify any potential effects due to cloud clearing. We also introduce a new technique to separate background and recently emitted CO observations, which aims to constrain emissions using only satellite CO data. We validate the CO variability of the recent emissions estimated from AIRS against other emission inventory databases (i.e., Global Fire Emissions Database – GFED3 and the MACC/CityZEN UE – MACCity) and calculate that the correlation coefficients between the AIRS CO recently emitted and the emission inventory databases are 0.726 for the Northern Hemisphere (NH) and 0.915 for the Southern Hemisphere (SH). The high degree of agreement between emissions identified using only AIRS CO and independent inventory sources demonstrates the validity of this approach to separate recent emissions from the background CO using one satellite data set.
机译:在地球观测系统(EOS)/ Aqua卫星上,我们研究了NASA的大气红外发声器(AIRS)测量的最后十年的一氧化碳(共同)变异性。本研究的重点是分析基于新统计方法的背景CO和新型CO排放的共同可变性和短期趋势。 Airs级别2(L2)检索算法利用云清算来处理信号中的云污染,这使得数据覆盖率显着增加到总测量总量的50%以上的产量。我们首先研究云清除是否会影响CO检索和随后的趋势研究,使用并置中分辨率成像光谱辐射器(MODIS)云掩模来识别Airs Clear Sky Scenes。然后,我们对清晰云清除场景单独使用AIRS CO数据进行科学分析,以识别由于云清除而导致的任何潜在效果。我们还介绍了一种新的技术来分离背景和最近发出的共同观察,旨在仅使用卫星CO数据来限制排放。我们验证了从空中估计的最近排放的共同可变性(即全球消防排放数据库 - GFED3和MACC / CityZen UE - Maccity),并计算出最近发出的Airs Co之间的相关系数和发射库存数据库为0.726,适用于北半球(NH)和0.915为南半球(SH)。仅使用Airs Co和独立库存来源确定的排放之间的高度协议展示了使用一个卫星数据集来分离背景CO的最近排放方法的有效性。

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