Exploring the uncertainties in the aviation soot–cirrus effect
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Published:2021-11-30
Issue:23
Volume:21
Page:17267-17289
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ISSN:1680-7324
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Container-title:Atmospheric Chemistry and Physics
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language:en
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Short-container-title:Atmos. Chem. Phys.
Author:
Righi MattiaORCID, Hendricks Johannes, Beer Christof GerhardORCID
Abstract
Abstract. A global aerosol–climate model, including a two-moment cloud microphysical
scheme and a parametrization for aerosol-induced ice formation in cirrus
clouds, is applied in order to quantify the impact of aviation soot on natural
cirrus clouds. Several sensitivity experiments are performed to assess the
uncertainties in this effect related to (i) the assumptions on the ice
nucleation abilities of aviation soot, (ii) the representation of vertical
updrafts in the model, and (iii) the use of reanalysis data to relax the model
dynamics (the so-called nudging technique). Based on the results of the model
simulations, a radiative forcing from the aviation soot–cirrus effect in the
range of −35 to 13 mW m−2 is quantified, depending on
the assumed critical saturation ratio for ice nucleation and active fraction of
aviation soot but with a confidence level below 95 % in several cases. Simple
idealized experiments with prescribed vertical velocities further show that the
uncertainties on this aspect of the model dynamics are critical for the
investigated effect and could potentially add a factor of about 2 of further
uncertainty to the model estimates of the resulting radiative forcing. The use
of the nudging technique to relax model dynamics is proved essential in order
to identify a statistically significant signal from the model internal
variability, while simulations performed in free-running mode and with
prescribed sea-surface temperatures and sea-ice concentrations are shown to be
unable to provide robust estimates of the investigated effect. A comparison
with analogous model studies on the aviation soot–cirrus effect show a very
large model diversity, with a conspicuous lack of consensus across the various
estimates, which points to the need for more in-depth analyses on the roots of
such discrepancies.
Funder
Deutsches Zentrum für Luft- und Raumfahrt
Publisher
Copernicus GmbH
Subject
Atmospheric Science
Reference96 articles.
1. Barahona, D. and Nenes, A.: Parameterizing the competition between homogeneous and heterogeneous freezing in ice cloud formation – polydisperse ice nuclei, Atmos. Chem. Phys., 9, 5933–5948, https://doi.org/10.5194/acp-9-5933-2009, 2009. a 2. Barahona, D., Molod, A., and Kalesse, H.: Direct estimation of the global
distribution of vertical velocity within cirrus clouds, Sci. Rep., 7, 1,
https://doi.org/10.1038/s41598-017-07038-6, 2017. a 3. Beer, C. G., Hendricks, J., Righi, M., Heinold, B., Tegen, I., Groß, S., Sauer, D., Walser, A., and Weinzierl, B.: Modelling mineral dust emissions and atmospheric dispersion with MADE3 in EMAC v2.54, Geosci. Model Dev., 13, 4287–4303, https://doi.org/10.5194/gmd-13-4287-2020, 2020. a 4. Bellouin, N., Quaas, J., Gryspeerdt, E., Kinne, S., Stier, P., Watson-Parris,
D., Boucher, O., Carslaw, K. S., Christensen, M., Daniau, A.-L., Dufresne,
J.-L., Feingold, G., Fiedler, S., Forster, P., Gettelman, A., Haywood, J. M.,
Lohmann, U., Malavelle, F., Mauritsen, T., McCoy, D. T., Myhre, G.,
Mülmenstädt, J., Neubauer, D., Possner, A., Rugenstein, M., Sato, Y.,
Schulz, M., Schwartz, S. E., Sourdeval, O., Storelvmo, T., Toll, V., Winker,
D., and Stevens, B.: Bounding Global Aerosol Radiative Forcing of Climate
Change, Rev. Geophys., 58, 1, https://doi.org/10.1029/2019rg000660, 2020. a 5. Bennartz, R. and Rausch, J.: Global and regional estimates of warm cloud droplet number concentration based on 13 years of AQUA-MODIS observations, Atmos. Chem. Phys., 17, 9815–9836, https://doi.org/10.5194/acp-17-9815-2017, 2017. a
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