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  Radiative forcing of the direct aerosol effect from AeroCom Phase II simulations

Myhre, G., Samset, B., Schulz, M., Balkanski, Y., Bauer, S., Berntsen, T., et al. (2013). Radiative forcing of the direct aerosol effect from AeroCom Phase II simulations. Atmospheric Chemistry and Physics, 13, 1853-1877. doi:10.5194/acp-13-1853-2013.

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Myhre, G., Author
Samset, B.H., Author
Schulz, M., Author
Balkanski, Y., Author
Bauer, S., Author
Berntsen, T.K., Author
Bian, H., Author
Bellouin, N., Author
Chin, M., Author
Diehl, T., Author
Easter, R.C., Author
Feichter, Johann1, Author           
Ghan, S.J., Author
Hauglustaine, D., Author
Iversen, T., Author
Kinne, Stefan1, Author           
Kirkeväg, A., Author
Lamarque, J.-F., Author
Lin, G., Author
Liu, X., Author
Lund, M.T., AuthorLuo, G., AuthorMa, X., AuthorVan Noije, T., AuthorPenner, J.E., AuthorRasch, P.J., AuthorRuiz, A., AuthorSeland, Ø., AuthorSkeie, R.B., AuthorStier, P., AuthorTakemura, T., AuthorTsigaridis, K., AuthorWang, P., AuthorWang, Z., AuthorXu, L., AuthorYu, H., AuthorYu, F., AuthorYoon, J.-H., AuthorZhang, K., AuthorZhang, H., AuthorZhou, C., Author more..
Affiliations:
1Observations and Process Studies, The Atmosphere in the Earth System, MPI for Meteorology, Max Planck Society, ou_913575              

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 Abstract: We report on the AeroCom Phase II direct aerosol effect (DAE) experiment where 16 detailed global aerosol models have been used to simulate the changes in the aerosol distribution over the industrial era. All 16 models have estimated the radiative forcing (RF) of the anthropogenic DAE, and have taken into account anthropogenic sulphate, black carbon (BC) and organic aerosols (OA) from fossil fuel, biofuel, and biomass burning emissions. In addition several models have simulated the DAE of anthropogenic nitrate and anthropogenic influenced secondary organic aerosols (SOA). The model simulated all-sky RF of the DAE from total anthropogenic aerosols has a range from −0.58 to −0.02 Wm−2, with a mean of −0.27 Wm−2 for the 16 models. Several models did not include nitrate or SOA and modifying the estimate by accounting for this with information from the other AeroCom models reduces the range and slightly strengthens the mean. Modifying the model estimates for missing aerosol components and for the time period 1750 to 2010 results in a mean RF for the DAE of −0.35 Wm−2. Compared to AeroCom Phase I (Schulz et al., 2006) we find very similar spreads in both total DAE and aerosol component RF. However, the RF of the total DAE is stronger negative and RF from BC from fossil fuel and biofuel emissions are stronger positive in the present study than in the previous AeroCom study. We find a tendency for models having a strong (positive) BC RF to also have strong (negative) sulphate or OA RF. This relationship leads to smaller uncertainty in the total RF of the DAE compared to the RF of the sum of the individual aerosol components. The spread in results for the individual aerosol components is substantial, and can be divided into diversities in burden, mass extinction coefficient (MEC), and normalized RF with respect to AOD. We find that these three factors give similar contributions to the spread in results.

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Language(s): eng - English
 Dates: 2013-022013-02
 Publication Status: Issued
 Pages: -
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 Table of Contents: -
 Rev. Type: Peer
 Identifiers: DOI: 10.5194/acp-13-1853-2013
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Title: Atmospheric Chemistry and Physics
Source Genre: Journal
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Publ. Info: Katlenburg-Lindau, Germany : European Geosciences Union
Pages: - Volume / Issue: 13 Sequence Number: - Start / End Page: 1853 - 1877 Identifier: ISSN: 1680-7316
CoNE: https://pure.mpg.de/cone/journals/resource/111030403014016