Radiative and chemical response to interactive stratospheric sulfate aerosols in fully coupled CESM1(WACCM)

We present new insights into the evolution and interactions of stratospheric aerosol using an updated version of the Whole Atmosphere Community Climate Model (WACCM). Improved horizontal resolution, dynamics, and chemistry now produce an internally generated quasi-biennial oscillation and significant improvements to stratospheric temperatures and ozone compared to observations. We present a validation of WACCM column ozone and climate calculations against observations. The prognostic treatment of stratospheric sulfate aerosols accurately represents the evolution of stratospheric aerosol optical depth and perturbations to solar and longwave radiation following the June 1991 eruption of Mount Pinatubo. We confirm the inclusion of interactive OH chemistry as an important factor in the formation and initial distribution of aerosol following large inputs of sulfur dioxide (SO2) to the stratosphere. We calculate that depletion of OH levels within the dense SO2 cloud in the first weeks following the Pinatubo eruption significantly prolonged the average initial e-folding decay time for SO2 oxidation to 47days. Previous observational and model studies showing a 30day decay time have not accounted for the large (30-55%) losses of SO2 on ash and ice within 7-9days posteruption and have not correctly accounted for OH depletion. We examine the variability of aerosol evolution in free-running climate simulations due to meteorology, with comparison to simulations nudged with specified dynamics. We assess calculated impacts of volcanic aerosols on ozone loss with comparisons to observations. The completeness of the chemistry, dynamics, and aerosol microphysics in WACCM qualify it for studies of stratospheric sulfate aerosol geoengineering.

To Access Resource:

Questions? Email Resource Support Contact:

  • opensky@ucar.edu
    UCAR/NCAR - Library

Resource Type publication
Temporal Range Begin N/A
Temporal Range End N/A
Temporal Resolution N/A
Bounding Box North Lat N/A
Bounding Box South Lat N/A
Bounding Box West Long N/A
Bounding Box East Long N/A
Spatial Representation N/A
Spatial Resolution N/A
Related Links

Related Dataset #1 : Control and feedback SO2 simulations

Related Dataset #2 : VolcanEESM: Global volcanic sulphur dioxide (SO2) emissions database from 1850 to present - Version 1.0

Additional Information N/A
Resource Format PDF
Standardized Resource Format PDF
Asset Size N/A
Legal Constraints

Copyright 2017 American Geophysical Union.


Access Constraints None
Software Implementation Language N/A

Resource Support Name N/A
Resource Support Email opensky@ucar.edu
Resource Support Organization UCAR/NCAR - Library
Distributor N/A
Metadata Contact Name N/A
Metadata Contact Email opensky@ucar.edu
Metadata Contact Organization UCAR/NCAR - Library

Author Mills, Michael J.
Richter, Jadwiga H.
Tilmes, Simone
Kravitz, Ben
MacMartin, Douglas G.
Glanville, Anne S.
Tribbia, Joseph J.
Lamarque, Jean-François
Vitt, Francis
Schmidt, Anja
Gettelman, Andrew
Hannay, Cecile
Bacmeister, Julio T.
Kinnison, Douglas E.
Publisher UCAR/NCAR - Library
Publication Date 2017-12-16T00:00:00
Digital Object Identifier (DOI) Not Assigned
Alternate Identifier N/A
Resource Version N/A
Topic Category geoscientificInformation
Progress N/A
Metadata Date 2023-08-18T19:16:46.515595
Metadata Record Identifier edu.ucar.opensky::articles:21230
Metadata Language eng; USA
Suggested Citation Mills, Michael J., Richter, Jadwiga H., Tilmes, Simone, Kravitz, Ben, MacMartin, Douglas G., Glanville, Anne S., Tribbia, Joseph J., Lamarque, Jean-François, Vitt, Francis, Schmidt, Anja, Gettelman, Andrew, Hannay, Cecile, Bacmeister, Julio T., Kinnison, Douglas E.. (2017). Radiative and chemical response to interactive stratospheric sulfate aerosols in fully coupled CESM1(WACCM). UCAR/NCAR - Library. http://n2t.net/ark:/85065/d7g73hc5. Accessed 30 January 2025.

Harvest Source