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首页> 外文期刊>Atmospheric chemistry and physics >Validation of satellite-based noontime UVI with NDACC ground- based instruments: influence of topography, environment and satellite overpass time
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Validation of satellite-based noontime UVI with NDACC ground- based instruments: influence of topography, environment and satellite overpass time

机译:使用NDACC地面仪器验证基于卫星的中午UVI:地形,环境和卫星越区时间的影响

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摘要

Spectral solar UV radiation measurements are performed in France using three spectroradiometers located at very different sites. One is installed in Villeneuve d'Ascq, in the north of France (VDA). It is an urban site in a topographically flat region. Another instrument is installed in Observatoire de Haute-Provence, located in the southern French Alps (OHP). It is a rural mountainous site. The third instrument is installed in Saint-Denis, Reunion Island (SDR). It is a coastal urban site on a small mountainous island in the southern tropics. The three instruments are affiliated with the Network for the Detection of Atmospheric Composition Change (NDACC) and carry out routine measurements to monitor the spectral solar UV radiation and enable derivation of UV index (UVI). The ground-based UVI values observed at solar noon are compared to similar quantities derived from the Ozone Monitoring Instrument (OMI, onboard the Aura satellite) and the second Global Ozone Monitoring Experiment (GOME-2, onboard the Metop-A satellite) measurements for validation of these satellite-based products. The present study concerns the period 2009-September 2012, date of the implementation of a new OMI processing tool. The new version (v1.3) introduces a correction for absorbing aerosols that were not considered in the old version (v1.2). Both versions of the OMI UVI products were available before September 2012 and are used to assess the improvement of the new processing tool. On average, estimates from satellite instruments always overestimate surface UVI at solar noon. Under cloudless conditions, the satellite-derived estimates of UVI compare satisfactorily with ground-based data: the median relative bias is less than 8% at VDA and 4% at SDR for both OMI v1.3 and GOME-2, and about 6% for OMI v1.3 and 2% for GOME-2 at OHP. The correlation between satellite-based and ground-based data is better at VDA and OHP (about 0.99) than at SDR (0.96) for both space-borne instruments. For all sky conditions, the median relative biases are much larger, with large dispersion for both instruments at all sites (VDA: about 12 %; OHP: 9 %; SDR: 11 %). Correlation between satellite-based and ground-based data is still better at VDA and OHP (about 0.95) than at SDR (about 0.73) for both satellite instruments. These results are explained considering the time of overpass of the two satellites, which is far from solar noon, preventing a good estimation of the cloud cover necessary for a good modelling of the UVI. Site topography and environment are shown to have a non-significant influence. At VDA and OHP, OMI v1.3 shows a significant improvement with respect to v1.2, which did not account for absorbing aerosols.
机译:在法国,光谱光谱的紫外线辐射测量是使用位于不同地点的三个光谱仪进行的。其中一台安装在法国北部的Villeneuve d'Ascq(VDA)。它是一个地形平坦的城市地区。另一台仪器安装在法国阿尔卑斯山南部(OHP)的上普罗旺斯天文台上。这是一个乡村山区。第三台仪器安装在留尼汪岛圣丹尼斯(SDR)。它是热带地区南部山区的一个小岛上的沿海城市。这三款仪器均隶属于大气成分变化检测网络(NDACC),并进行常规测量以监测太阳光谱的紫外线辐射并能够推导紫外线指数(UVI)。将在太阳正午观测到的地面UVI值与由臭氧监测仪(AMI卫星上的OMI)和第二次全球臭氧监测实验(Metop-A卫星上的GOME-2)得出的相似量进行比较。这些卫星产品的验证。本研究涉及新的OMI处理工具的实施日期2009年-2012年9月。新版本(v1.3)引入了一种修正,以吸收旧版本(v1.2)中未考虑的气溶胶。这两种版本的OMI UVI产品均于2012年9月之前上市,用于评估新加工工具的改进。平均而言,卫星仪器的估计值总是高估太阳正午的表面UVI。在无云的条件下,由卫星得出的UVI估计值与基于地面的数据可以令人满意地比较:对于OMI v1.3和GOME-2,VDA的中位数相对偏差小于8%,SDR的中值相对偏差小于4%,而6%左右对于OMI v1.3和2%对于GOME-2在OHP。对于两种星载仪器,在VDA和OHP上,基于卫星的数据与基于地面的数据之间的相关性都比在SDR(0.96)时更好。在所有天空条件下,中值相对偏差要大得多,两种仪器在所有地点的色散都很大(VDA:约12%; OHP:9%; SDR:11%)。对于两种卫星仪器而言,VDA和OHP的基于卫星的数据与基于地面的数据之间的相关性仍要好于SDR的相关性(约为0.73),更好。考虑到两颗卫星的过时时间(远离太阳正午),对这些结果进行了解释,从而无法很好地估算出对UVI进行良好建模所需的云量。站点的地形和环境显示不具有重大影响。在VDA和OHP中,OMI v1.3相对于v1.2表现出了显着改进,而v1.2并未考虑吸收气溶胶。

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