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Evaluation of the use of five laboratory-determined ozone absorption cross sections in Brewer and Dobson retrieval algorithms

机译:评估使用五个实验室测定的臭氧吸收横截面在Brewer和Dobson检索算法中的使用

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The primary ground-based instruments used to report total column ozone (TOC) are Brewer and Dobson spectrophotometers in separate networks. These instruments make measurements of the UV irradiances, and through a well-defined process, a TOC value is produced. Inherent to the algorithm is the use of a laboratory-determined cross-section data set. We used five ozone cross-section data sets: three data sets that are based on measurements of Bass and Paur; one derived from Daumont, Brion and Malicet (DBM); and a new set determined by Institute of Experimental Physics (IUP), University of Bremen. The three Bass and Paur (1985) sets are as follows: quadratic temperature coefficients from the IGACO (a glossary is provided in Appendix A) web page (IGQ4), the Brewer network operational calibration set (BOp), and the set used by Bernhard et al. (2005) in the reanalysis of the Dobson absorption coefficient values (B05). The ozone absorption coefficients for Brewer and Dobson instruments are then calculated using the normal Brewer operative method, which is essentially the same as that used for Dobson instruments. Considering the standard TOC algorithm for the Brewer instruments and comparing to the Brewer standard operational calibration data set, using the slit functions for the individual instruments, we find the IUP data set changes the calculated TOC by ?0.5%, the DBM data set changes the calculated TOC by ?3.2%, and the IGQ4 data set at ?45 C changes the calculated TOC by +1.3%. Considering the standard algorithm for the Dobson instruments, and comparing to results using the official 1992 ozone absorption coefficients values and the single set of slit functions defined for all Dobson instruments, the calculated TOC changes by +1%, with little variation depending on which data set is used. We applied the changes to the European Dobson and Brewer reference instruments during the Iza?a 2012 Absolute Calibration Campaign. With the application of a common Langley calibration and the IUP cross section, the differences between Brewer and Dobson data sets vanish, whereas using those of Bass and Paur and DBM produces differences of 1.5 and 2%, respectively. A study of the temperature dependence of these cross-section data sets is presented using the Arosa, Switzerland, total ozone record of 2003–2006, obtained from two Brewer-type instruments and one Dobson-type instrument, combined with the stratospheric ozone and temperature profiles from the Payerne soundings in the same period. The seasonal dependence of the differences between the results from the various instruments is greatly reduced with the application of temperature-dependent absorption coefficients, with the greatest reduction obtained using the IUP data set.
机译:用于报告总列臭氧(TOC)的主要地面仪器是单独的网络中的酿酒器和多斯蒙分光光度计。这些仪器对UV IfRadiance进行了测量,并通过明确的过程,产生了TOC值。算法固有是使用实验室确定的横截面数据集。我们使用了五个臭氧横截面数据集:三个数据集,基于低音和PAUR测量;一个来自Daumont,Brion和Malicet(DBM);由不来梅大学实验物理研究所(IUP)研究所确定的新集。三个低音和PAUR(1985)套如下:来自IGACO的二次温度系数(附录A中提供了一文)网页(IGQ4),Brewer网络操作校准集(BOP)以及伯恩哈德使用的集合等等。 (2005)在白板吸收系数(B05)的再分析中。然后使用正常的啤酒工操作方法计算啤酒和Dobson仪器的臭氧吸收系数,其基本上与用于多宇乐器的使用基本相同。考虑到BREWER仪器的标准TOC算法和与BREWER标准操作校准数据集相比,使用单个仪器的狭缝功能,我们发现IUP数据集通过?0.5%更改计算的TOC,DBM数据集改变了计算到3.2%,并且在Δ45c处设置的IGQ4数据将计算的TOC变为+ 1.3%。考虑到Dobson乐器的标准算法,并与使用官方的1992年臭氧吸收系数值进行比较和为所有Dobson乐器定义的单组狭缝函数,计算出的TOC会更改+ 1%,具体变化取决于哪些数据使用集。我们在IZA期间将更改应用于欧洲多人和啤酒厂参考仪器?2012年绝对校准活动。随着普通兰利校准和IUP横截面的应用,啤酒和多斯隆数据组之间的差异消失,而使用低音和PAUR和DBM的差异分别产生1.5%和2%的差异。使用AROSA,Switzerland,2003-2006的总臭氧记录,从两种Brewer型仪器和一个多板多型仪器中获得,施用了这些横截面数据集的温度依赖性的研究,并与平流层臭氧和温度相结合来自同一时期的Payerne探测的档案。通过应用温度依赖性吸收系数,各种仪器的结果之间的差异差异的季节性依赖性大大减少,使用IUP数据集获得的最大减少。

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