Determination of the atmospheric lifetime and global warming potential of sulfur hexafluoride using a three-dimensional model

We have used the Whole Atmosphere Community Climate Model (WACCM), with an updated treatment of loss processes, to determine the atmospheric lifetime of sulfur hexafluoride (SF6). The model includes the following SF6 removal processes: photolysis, electron attachment and reaction with mesospheric metal atoms. The Sodankyla Ion Chemistry (SIC) model is incorporated into the standard version of WACCM to produce a new version with a detailed D region ion chemistry with cluster ions and negative ions. This is used to determine a latitude-and altitude-dependent scaling factor for the electron density in the standard WACCM in order to carry out multi-year SF6 simulations. The model gives a mean SF6 lifetime over an 11-year solar cycle (tau) of 1278 years (with a range from 1120 to 1475 years), which is much shorter than the currently widely used value of 3200 years, due to the larger contribution (97.4 %) of the modelled electron density to the total atmospheric loss. The loss of SF6 by reaction with mesospheric metal atoms (Na and K) is far too slow to affect the lifetime. We investigate how this shorter atmospheric lifetime impacts the use of SF6 to derive stratospheric age of air. The age of air derived from this shorter lifetime SF6 tracer is longer by 9% in polar latitudes at 20 km compared to a passive SF6 tracer. We also present laboratory measurements of the infrared spectrum of SF6 and find good agreement with previous studies. We calculate the resulting radiative forcings and efficiencies to be, on average, very similar to those reported previously. Our values for the 20-, 100-and 500-year global warming potentials are 18 000, 23 800 and 31 300, respectively.

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Author Kovács, Tamás
Feng, Wuhu
Totterdill, Anna
Plane, John M. C.
Dhomse, Sandip
Gómez-Martín, Juan Carlos
Stiller, Gabriele P.
Haenel, Florian J.
Smith, Christopher
Forster, Piers M.
García, Rolando R.
Marsh, Daniel R.
Chipperfield, Martyn P.
Publisher UCAR/NCAR - Library
Publication Date 2017-01-20T00:00:00
Digital Object Identifier (DOI) Not Assigned
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Topic Category geoscientificInformation
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Metadata Date 2023-08-18T19:09:31.021643
Metadata Record Identifier edu.ucar.opensky::articles:19582
Metadata Language eng; USA
Suggested Citation Kovács, Tamás, Feng, Wuhu, Totterdill, Anna, Plane, John M. C., Dhomse, Sandip, Gómez-Martín, Juan Carlos, Stiller, Gabriele P., Haenel, Florian J., Smith, Christopher, Forster, Piers M., García, Rolando R., Marsh, Daniel R., Chipperfield, Martyn P.. (2017). Determination of the atmospheric lifetime and global warming potential of sulfur hexafluoride using a three-dimensional model. UCAR/NCAR - Library. http://n2t.net/ark:/85065/d70z752d. Accessed 17 April 2025.

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