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Evaluation of Observed and Modelled Aerosol Lifetimes Using Radioactive Tracers of Opportunity and an Ensemble of 19 Global ModelsAerosols have important impacts on air quality and climate, but the processes affecting their removal from the atmosphere are not fully understood and are poorly constrained by observations. This makes modelled aerosol lifetimes uncertain. In this study, we make use of an observational constraint on aerosol lifetimes provided by radionuclide measurements and investigate the causes of differences within a set of global models. During the Fukushima Dai-Ichi nuclear power plant accident of March 2011, the radioactive isotopes cesium-137 (Cs-137) and xenon-133 (Xe-133) were released in large quantities. Cesium attached to particles in the ambient air, approximately according to their available aerosol surface area. Cs-137 size distribution measurements taken close to the power plant suggested that accumulation mode (AM) sulfate aerosols were the main carriers of cesium. Hence, Cs-137 can be used as a proxy tracer for the AM sulfate aerosol's fate in the atmosphere. In contrast, the noble gas Xe-133 behaves almost like a passive transport tracer. Global surface measurements of the two radioactive isotopes taken over several months after the release allow the derivation of a lifetime of the carrier aerosol. We compare this to the lifetimes simulated by 19 different atmospheric transport models initialized with identical emissions of Cs-137that were assigned to an aerosol tracer with each model's default properties of AM sulfate, and Xe-133 emissions that were assigned to a passive tracer. We investigate to what extent the modelled sulfate tracer can reproduce the measurements, especially with respect to the observed loss of aerosol mass with time. Modelled Cs-137and Xe-133 concentrations sampled at the same location and times as station measurements allow a direct comparison between measured and modelled aerosol lifetime. The e-folding lifetime e, calculated from station measurement data taken between 2 and 9 weeks after the start of the emissions, is 14.3 days (95% confidence interval 13.1-15.7 days). The equivalent modelled e lifetimes have a large spread, varying between 4.8 and 26.7 days with a model median of 9.42.3 days, indicating too fast a removal in most models. Because sufficient measurement data were only available from about 2 weeks after the release, the estimated lifetimes apply to aerosols that have undergone long-range transport, i.e. not for freshly emitted aerosol. However, modelled instantaneous lifetimes show that the initial removal in the first 2 weeks was quicker (lifetimes between 1 and 5 days) due to the emissions occurring at low altitudes and co-location of the fresh plume with strong precipitation. Deviations between measured and modelled aerosol lifetimes are largest for the northernmost stations and at later time periods, suggesting that models do not transport enough of the aerosol towards the Arctic. The models underestimate passive tracer (Xe-133) concentrations in the Arctic as well but to a smaller extent than for the aerosol (Cs-137) tracer. This indicates that in addition to too fast an aerosol removal in the models, errors in simulated atmospheric transport towards the Arctic in most models also contribute to the underestimation of the Arctic aerosol concentrations.
Document ID
20160004097
Acquisition Source
Goddard Space Flight Center
Document Type
Reprint (Version printed in journal)
Authors
Kristiansen, N. I.
(Norwegian Inst. for Air Research Kjeller, Norway)
Stohl, A.
(Norwegian Inst. for Air Research Kjeller, Norway)
Olivie, D. J. L.
(Norwegian Meteorological Inst. Oslo, Norway)
Croft, B.
(Dalhousie Univ. Halifax, Nova Scotia, Canada)
Sovde, O. A.
(Center for International Climate and Environmental Research Oslo, Norway)
Klein, H.
(Norwegian Meteorological Inst. Oslo, Norway)
Christoudias, T.
(Cyprus Inst. Nicosia, Cyprus)
Kunkel, D.
(Mainz Univ. Germany)
Leadbetter, S. J.
(MET Office (Meteorological Office) Exeter, United Kingdom)
Lee, Y. H.
(Duke Univ. Durham, NC, United States)
Zhang, K.
(Pacific Northwest National Lab. Richland, WA, United States)
Tsigaridis, K.
(Columbia Univ. New York, NY, United States)
Bauer, S. E.
(Columbia Univ. New York, NY, United States)
Faluvegi, G. S.
(Columbia Univ. New York, NY, United States)
Shindell, D.
(Duke Univ. Durham, NC, United States)
Date Acquired
March 30, 2016
Publication Date
March 17, 2016
Publication Information
Publication: Atmospheric Chemistry and Physics
Publisher: Copernicus Publications
Volume: 16
Issue: 5
Subject Category
Meteorology And Climatology
Report/Patent Number
GSFC-E-DAA-TN30865
Funding Number(s)
OTHER: 272041
CONTRACT_GRANT: NNX15AE36G
CONTRACT_GRANT: NNX14AB99A
Distribution Limits
Public
Copyright
Other
Keywords
Radioactive isotopes
Sulfates
Arctic regions
Aerosols

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