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首页> 外文期刊>Atmospheric Measurement Techniques >Algorithm update of the GOSAT/TANSO-FTS thermal infrared CO2 product (version 1) and validation of the UTLS CO2 data using CONTRAIL measurements
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Algorithm update of the GOSAT/TANSO-FTS thermal infrared CO2 product (version 1) and validation of the UTLS CO2 data using CONTRAIL measurements

机译:GOSAT / TANSO-FTS热红外二氧化碳产品(版本1)的算法更新以及使用CONTRAIL测量验证UTLS二氧化碳数据

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摘要

The Thermal and Near Infrared Sensor for Carbon Observation (TANSO)-Fourier Transform Spectrometer (FTS) on board the Greenhouse Gases Observing Satellite (GOSAT) has been observing carbon dioxide (CO2) concentrations in several atmospheric layers in the thermal infrared (TIR) band since its launch. This study compared TANSO-FTS TIR version 1 (V1) CO2 data and CO2 data obtained in the Comprehensive Observation Network for TRace gases by AIrLiner (CONTRAIL) project in the upper troposphere and lower stratosphere (UTLS), where the TIR band of TANSO-FTS is most sensitive to CO2 concentrations, to validate the quality of the TIR V1 UTLS CO2 data from 287 to 162 hPa. We first evaluated the impact of considering TIR CO2 averaging kernel functions on CO2 concentrations using CO2 profile data obtained by the CONTRAIL Continuous CO2 Measuring Equipment (CME), and found that the impact at around the CME level flight altitudes (similar to 11 km) was on average less than 0.5 ppm at low latitudes and less than 1 ppm at middle and high latitudes. From a comparison made during flights between Tokyo and Sydney, the averages of the TIR upper-atmospheric CO2 data were within 0.1% of the averages of the CONTRAIL CME CO2 data with and without TIR CO2 averaging kernels for all seasons in the Southern Hemisphere. The results of comparisons for all of the eight airline routes showed that the agreements of TIR and CME CO2 data were worse in spring and summer than in fall and winter in the Northern Hemisphere in the upper troposphere. While the differences between TIR and CME CO2 data were on average within 1 ppm in fall and winter, TIR CO2 data had a negative bias up to 2.4 ppm against CME CO2 data with TIR CO2 averaging kernels at the northern low and middle latitudes in spring and summer. The negative bias at the northern middle latitudes resulted in the maximum of TIR CO2 concentrations being lower than that of CME CO2 concentrations, which led to an underestimate of the amplitude of CO2 seasonal variation.
机译:温室气体观测卫星(GOSAT)上的碳观测热和近红外传感器-傅立叶变换光谱仪(FTS)一直在观测热红外(TIR)波段中几个大气层中的二氧化碳(CO2)浓度自推出以来。这项研究比较了TANSO-FTS TIR版本1(V1)的CO2数据和AIrLiner(CONTRAIL)项目在对流层高空和平流层下层(UTLS)的TRar气体综合观测网络中获得的CO2数据,其中TANSO- FTS对CO2浓度最敏感,以验证287至162 hPa的TIR V1 UTLS CO2数据的质量。我们首先使用CONTRAIL连续CO2测量设备(CME)获得的CO2资料评估了考虑TIR CO2平均核函数对CO2浓度的影响,发现在CME水平飞行高度(约11 km)附近的影响为在低纬度地区平均低于0.5 ppm,在中高纬度地区平均低于1 ppm。通过在东京和悉尼之间的飞行中进行的比较,TIR最高大气CO2数据的平均值在南半球所有季节的有无TIR CO2平均内核的CONTRAIL CME CO2数据平均值的0.1%以内。对所有8条航线的比较结果显示,北半球对流层上部的TIR和CME CO2数据在春季和夏季的一致性比秋季和冬季的差。尽管在秋季和冬季,TIR和CME CO2数据之间的差异平均在1 ppm之内,但TIR CO2数据相对于CME CO2数据具有高达2.4 ppm的负偏差,其中TIR CO2在春季和春季的北低纬和中纬度均值夏季。北部中纬度地区的负偏差导致TIR CO2浓度的最大值低于CME CO2浓度的最大值,这导致了对CO2季节变化幅度的低估。

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