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Age of Stratospheric Air: Progress on Processes, Observations, and Long-Term Trends

  • H. Garny
  • , F. Ploeger
  • , M. Abalos
  • , H. Bönisch
  • , A. E. Castillo
  • , T. von Clarmann
  • , M. Diallo
  • , A. Engel
  • , J. C. Laube
  • , M. Linz
  • , J. L. Neu
  • , A. Podglajen
  • , E. Ray
  • , L. Rivoire
  • , L. N. Saunders
  • , G. Stiller
  • , F. Voet
  • , T. Wagenhäuser
  • , K. A. Walker
  • DLR
  • Institute for Energy and Climate Research: Stratosphere (IEK-7)
  • Research Centre Julich
  • Institute for Atmospheric and Environmental Research
  • Bergische Universität Gesamthochschule Wuppertal
  • Earth Physics and Astrophysics Department
  • Complutense University
  • Institute of Meteorology and Climate Research
  • School of Engineering and Applied Science
  • Harvard University
  • Goethe University Frankfurt am Main
  • California Institute of Technology
  • University of Colorado Boulder
  • Chemical Sciences Division
  • National Oceanic and Atmospheric Administration
  • Department of Earth
  • Massachusetts Institute of Technology
  • University of Toronto

Research output: Contribution to journalReview articlepeer-review

21 Citations (Scopus)

Abstract

Age of stratospheric air is a well established metric for the stratospheric transport circulation. Rooted in a robust theoretical framework, this approach offers the benefit of being deducible from observations of trace gases. Given potential climate-induced changes, observational constraints on stratospheric circulation are crucial. In the past two decades, scientific progress has been made in three main areas: (a) Enhanced process understanding and the development of process diagnostics led to better quantification of individual transport processes from observations and to a better understanding of model deficits. (b) The global age of air climatology is now well constrained by observations thanks to improved quality and quantity of data, including global satellite data, and through improved and consistent age calculation methods. (c) It is well established and understood that global models predict a decrease in age, that is, an accelerating stratospheric circulation, in response to forcing by greenhouse gases and ozone depleting substances. Observational records now confirm long-term forced trends in mean age in the lower stratosphere. However, in the mid-stratosphere, uncertainties in observational records are too large to confirm or disprove the model predictions. Continuous monitoring of stratospheric trace gases and further improved methods to derive age from those tracers will be crucial to better constrain variability and long-term trends from observations. Future work on mean age as a metric for stratospheric transport will be important due to its potential to enhance the understanding of stratospheric composition changes, address climate model biases, and assess the impacts of proposed climate geoengineering methods.

Original languageEnglish
Article numbere2023RG000832
JournalReviews of Geophysics
Volume62
Issue number4
DOIs
Publication statusPublished - 1 Dec 2024

UN SDGs

This output contributes to the following UN Sustainable Development Goals (SDGs)

  1. SDG 13 - Climate Action
    SDG 13 Climate Action

Keywords

  • age of air
  • circulation
  • models
  • observations
  • stratosphere
  • trends

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