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Optimized Umkehr Profile Algorithm for Ozone Trend Analyses The long-term record of Umkehr measurements from four NOAA Dobson spectrophotometers was reprocessed after updates to the instrument calibration procedures. In addition, a new data quality-control tool was developed for the Dobson automation software (WinDobson). This paper presents a comparison of Dobson Umkehr ozone profiles from NOAA ozone network stations (Boulder, OHP, MLO, Lauder) against several satellite records, including Aura Microwave Limb Sounder (MLS; ver. 4.2), and combined SBUV and OMPS records (NASA AGG and NOAA COH). A subset of satellite data is selected to match Dobson Umkehr observations at each station spatially (distance less than 200 km) and temporally (within 24 hours). Umkehr Averaging Kernels (AKs) are applied to vertically smooth all overpass satellite profiles prior to comparisons. The station Umkehr record consists of several instrumental records, which have different optical characterizations, and thus instrument-specific stray light contributes to the data processing errors and creates step changes in the record. This work evaluates the overall quality of Umkehr long-term measurements at NOAA ground-based stations and assesses the impact of the instrumental changes on the stability of the Umkehr ozone profile record. This paper describes a method designed to correct biases and discontinuities in the retrieved Umkehr profile that originate from the Dobson calibration process, repair, or optical realignment of the instrument. The M2GMI and GMI CTM ozone profile model output matched to station location and date of observation is used to evaluate instrumental step changes in the Umkehr record. Homogenization of the Umkehr record and discussion of the apparent stray light error in retrieved ozone profiles are the focus of this paper. Homogenization of ground-based records is of great importance for studies of long-term ozone trends and climate change.
Document ID
20220000580
Acquisition Source
Goddard Space Flight Center
Document Type
Accepted Manuscript (Version with final changes)
Authors
Irina Petropavlovskikh
(Cooperative Institute for Research in Environmental Sciences Boulder, Colorado, United States)
Koji Miyagawa
(National Oceanic and Atmospheric Administration Washington D.C., District of Columbia, United States)
Audra McClure-Beegle
(Cooperative Institute for Research in Environmental Sciences Boulder, Colorado, United States)
Bryan Johnson
(National Oceanic and Atmospheric Administration Washington D.C., District of Columbia, United States)
Jeannette Wild
(University of Maryland, College Park College Park, Maryland, United States)
Susan Strahan
(Universities Space Research Association Columbia, Maryland, United States)
Krzysztof Wargan
(Science Systems and Applications (United States) Lanham, Maryland, United States)
Richard Querel
(National Institute of Water and Atmospheric Research Hamilton, New Zealand)
Lawrence Flynn
(National Oceanic and Atmospheric Administration Washington D.C., District of Columbia, United States)
Eric Beach
(IM Systems (United States) Rockville, Maryland, United States)
Gerard Ancellet
(French National Centre for Scientific Research Paris, France)
Sophie Godin-Beekmann ORCID
(Sorbonne University Paris, France)
Date Acquired
January 26, 2022
Publication Date
March 28, 2022
Publication Information
Publication: Atmospheric Measurement Techniques
Publisher: European Geosciences Union
Volume: 15
Issue: 6
Issue Publication Date: March 1, 2022
ISSN: 1867-1381
e-ISSN: 1867-8548
Subject Category
Environment Pollution
Funding Number(s)
CONTRACT_GRANT: NOAA-JPSS
CONTRACT_GRANT: NNG17HP01C
CONTRACT_GRANT: 80NSSC22M0001
CONTRACT_GRANT: NA19OAR4310169
CONTRACT_GRANT: NA19OAR4310171
Distribution Limits
Public
Copyright
Portions of document may include copyright protected material.
Technical Review
External Peer Committee
Keywords
Umkehr
Ozone
NOAA
GMI CTM
M2GMI
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