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Evaluating Long-Term Changes in Atmospheric Ozone Ozonesondes have made inexpensive, accurate measurements of ozone from the ground to 30km for more than 50 years. The data are used extensively for trend analyses and for evaluation of satellite and model data products, and are also part of climatologies that are used as a priori data for satellite retrievals. They are essential as a transfer standard when merging shorter satellite-derived time series, and are the most important source of trend-quality long-term records below about 18 km. The importance of long-term ozonesonde records as a stable reference has led to increased attention to quantifying uncertainties and changes in ozonesonde data. Based on past intercomparison data, ECC sondes show a modest (~1-5%) high bias with respect to UV-absorption measurements (including MOZAIC-IAGOS) in the troposphere, with an uncertainty of 5%, but no evidence of a change with time. Other sonde types show an increase of 5-20% in sensitivity to tropospheric ozone from 1970-1995. Agreement in the stratosphere is much better. In the past 20 years ozonesonde precision has improved by a factor of 2, primarily through the adoption of strict standard operating procedures. In addition, many of the most important ozonesonde records have been re-evaluated and corrected, and detailed estimates made of their biases and uncertainties. Corrections to historical data for known issues may reduce biases but simultaneously introduce additional uncertainties. The uncertainty budget for the ozone partial pressure reading has contributions from stoichiometry, cell background current, pump efficiency and temperature, sensing solution type and volume. The much-discussed “background current” has recently been shown to be primarily related to reaction stoichiometry. Several quality assurance issues remain, but are tractable problems that can be addressed with further research. This will be required if the present goal of better than 5% overall uncertainty throughout the global ozonesonde network is to be achieved. Finally, the importance of regular sonde intercomparisons, employing UV photometers traceable to the modern UV-absorption standard, and of regular comparison of operational station records with multiple satellite sensors, is emphasized.
Document ID
20210026827
Acquisition Source
Goddard Space Flight Center
Document Type
Conference Paper
Authors
David W. Tarasick
(Environment and Climate Change Canada Canada)
Herman G. J. Smit
(Institute for Energy and Climate Research)
Anne M. Thompson
(Goddard Space Flight Center Greenbelt, Maryland, United States)
Gary A. Morris
(St. Edward's University Austin, Texas, United States)
Jacquelyn C. Witte
(National Center for Atmospheric Research Boulder, Colorado, United States)
Jonathan Davies
(Environment and Climate Change Canada Canada)
Tatsumi Nakano
(Japan Meteorological Agency Tokyo, Japan)
Roeland Van Malderen
(Royal Meteorological Institute of Belgium Brussels, Belgium)
Ryan M. Stauffer
(Goddard Space Flight Center Greenbelt, Maryland, United States)
Bryan J. Johnson
(Earth System Research Laboratory Boulder, Colorado, United States)
Rene Stübi
(MeteoSwiss Aerological Station Payerne, Switzerland)
Samuel J. Oltmans
(Earth System Research Laboratory Boulder, Colorado, United States)
Holger Vömel
(National Center for Atmospheric Research Boulder, Colorado, United States)
Date Acquired
January 12, 2022
Subject Category
Meteorology And Climatology
Meeting Information
Meeting: Quadrennial Ozone Symposium 2021
Location: Online
Country: KR
Start Date: October 3, 2021
End Date: October 9, 2021
Sponsors: National Institute of Environmental Research, National Institute of Meteorological Sciences, National Aeronautics and Space Administration
Funding Number(s)
WBS: 281945.02.80.01.06
Distribution Limits
Public
Copyright
Portions of document may include copyright protected material.
Technical Review
NASA Peer Committee
Keywords
Ozonesondes
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