Dobber Marcel, Dirksen Ruud, Voors Robert, Mount George H, Levelt Pieternel
Royal Netherlands Meteorological Institute, P.O. Box 201, 3730 AE De Bilt, The Netherlands.
Appl Opt. 2005 May 10;44(14):2846-56. doi: 10.1364/ao.44.002846.
High-accuracy spectral-slit-function calibration measurements, in situ ambient absorption gas cell measurements for ozone and nitrogen dioxide, and ground-based zenith sky measurements with the Earth Observing System Aura Ozone Monitoring Instrument (OMI) flight instrument are reported and the results discussed. For use of high-spectral-resolution gas absorption cross sections from the literature in trace gas retrieval algorithms, accurate determination of the instrument's spectral slit function is essential. Ground-based measurements of the zenith sky provide a geophysical determination of atmospheric trace gas abundances. When compared with other measurements, they can be used to verify the performance of the OMI flight instrument. We show that the approach of using published high-resolution absolute absorption cross sections convolved with accurately calibrated spectral slit functions for OMI compares well with in situ gas absorption cell measurements made with the flight instrument and that use of these convolved cross sections works well for reduction of zenith sky data taken with the OMI flight instrument for ozone and nitrogen dioxide that are retrieved from measured spectra of the zenith sky with the differential optical absorption spectroscopy technique, the same method to be used for the generation of in-flight data products. Finally, it is demonstrated that the spectral stability and signal-to-noise ratio performance of the OMI flight instrument, as determined from preflight component and full instrument tests, are sufficient to meet OMI mission objectives.
本文报告了高精度光谱狭缝函数校准测量、臭氧和二氧化氮的原位环境吸收气室测量以及使用地球观测系统奥拉臭氧监测仪器(OMI)飞行仪器进行的地基天顶天空测量,并对结果进行了讨论。在痕量气体反演算法中使用文献中的高光谱分辨率气体吸收截面时,准确测定仪器的光谱狭缝函数至关重要。地基天顶天空测量可对大气痕量气体丰度进行地球物理测定。与其他测量结果相比,它们可用于验证OMI飞行仪器的性能。我们表明,将已发表的高分辨率绝对吸收截面与经过精确校准的OMI光谱狭缝函数进行卷积的方法,与使用飞行仪器进行的原位气体吸收气室测量结果相当,并且使用这些卷积截面对于处理用OMI飞行仪器获取的天顶天空数据以反演臭氧和二氧化氮非常有效,反演是通过差分光学吸收光谱技术从测量的天顶天空光谱中进行的,该方法也用于生成飞行中的数据产品。最后,结果表明,根据飞行前组件和整机测试确定的OMI飞行仪器的光谱稳定性和信噪比性能足以满足OMI任务目标。