Arctic tropospheric ozone: assessment of current knowledge and model performance
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Published:2023-01-16
Issue:1
Volume:23
Page:637-661
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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:
Whaley Cynthia H., Law Kathy S.ORCID, Hjorth Jens Liengaard, Skov HenrikORCID, Arnold Stephen R., Langner Joakim, Pernov Jakob Boyd, Bergeron Garance, Bourgeois IlannORCID, Christensen Jesper H., Chien Rong-You, Deushi MakotoORCID, Dong XinyiORCID, Effertz Peter, Faluvegi Gregory, Flanner MarkORCID, Fu Joshua S.ORCID, Gauss Michael, Huey GregORCID, Im UlasORCID, Kivi RigelORCID, Marelle Louis, Onishi Tatsuo, Oshima NagaORCID, Petropavlovskikh IrinaORCID, Peischl JeffORCID, Plummer David A., Pozzoli Luca, Raut Jean-ChristopheORCID, Ryerson TomORCID, Skeie RagnhildORCID, Solberg Sverre, Thomas Manu A., Thompson ChelseaORCID, Tsigaridis KostasORCID, Tsyro SvetlanaORCID, Turnock Steven T.ORCID, von Salzen Knut, Tarasick David W.
Abstract
Abstract. As the third most important greenhouse gas (GHG) after carbon dioxide (CO2) and methane (CH4), tropospheric ozone (O3) is also an air pollutant causing damage to human health and ecosystems. This study brings together recent research on observations and modeling of tropospheric O3 in the Arctic, a rapidly warming and sensitive environment. At different locations in the Arctic, the observed surface O3 seasonal cycles are quite different. Coastal Arctic locations, for example, have a minimum in the springtime due to O3 depletion events resulting from surface bromine chemistry. In contrast, other Arctic locations have a maximum in the spring. The 12 state-of-the-art models used in this study lack the surface halogen chemistry needed to simulate coastal Arctic surface O3 depletion in the springtime; however, the multi-model median (MMM) has accurate seasonal cycles at non-coastal Arctic locations. There is a large amount of variability among models, which has been previously reported, and we show that there continues to be no convergence among models or improved accuracy in simulating tropospheric O3 and its precursor species. The MMM underestimates Arctic surface O3 by 5 % to 15 % depending on the location. The vertical distribution of tropospheric O3 is studied from recent ozonesonde measurements and the models. The models are highly variable, simulating free-tropospheric O3 within a range of ±50 % depending on the model and the altitude. The MMM performs best, within ±8 % for most locations and seasons. However, nearly all models overestimate O3 near the tropopause (∼300 hPa or ∼8 km), likely due to ongoing issues with underestimating the altitude of the tropopause and excessive downward transport of stratospheric O3 at high latitudes. For example, the MMM is biased high by about 20 % at Eureka. Observed and simulated O3 precursors (CO, NOx, and reservoir PAN) are evaluated throughout the troposphere. Models underestimate wintertime CO everywhere, likely due to a combination of underestimating CO emissions and possibly overestimating OH. Throughout the vertical profile (compared to aircraft measurements), the MMM underestimates both CO and NOx but overestimates PAN. Perhaps as a result of competing deficiencies, the MMM O3 matches the observed O3 reasonably well. Our findings suggest that despite model updates over the last decade, model results are as highly variable as ever and have not increased in accuracy for representing Arctic tropospheric O3.
Funder
Japan Society for the Promotion of Science Naturvårdsverket Nordisk Ministerråd Miljøstyrelsen Grand Équipement National De Calcul Intensif Energistyrelsen
Publisher
Copernicus GmbH
Subject
Atmospheric Science
Reference152 articles.
1. Aas, W., Eckhardt, S., Fiebig, M., Platt, S. M., Solberg, S., Yttri, K. E., and Zwaaftink, C. G.: Monitoring of long-range transported air pollutants in Norway. Annual Report 2020 (Norwegian Environment Agency, M-2072/2021), (NILU report, 13/2021). Kjeller: NILU, 2021. 2. Abbatt, J. P. D., Thomas, J. L., Abrahamsson, K., Boxe, C., Granfors, A., Jones, A. E., King, M. D., Saiz-Lopez, A., Shepson, P. B., Sodeau, J., Toohey, D. W., Toubin, C., von Glasow, R., Wren, S. N., and Yang, X.: Halogen activation via interactions with environmental ice and snow in the polar lower troposphere and other regions, Atmos. Chem. Phys., 12, 6237–6271, https://doi.org/10.5194/acp-12-6237-2012, 2012. 3. Aliabadi, A. A., Staebler, R. M., and Sharma, S.: Air quality monitoring in communities of the Canadian Arctic during the high shipping season with a focus on local and marine pollution, Atmos. Chem. Phys., 15, 2651–2673, https://doi.org/10.5194/acp-15-2651-2015, 2015. 4. Aliabadi, A. A., Thomas, J. L., Herber, A. B., Staebler, R. M., Leaitch, W. R., Schulz, H., Law, K. S., Marelle, L., Burkart, J., Willis, M. D., Bozem, H., Hoor, P. M., Köllner, F., Schneider, J., Levasseur, M., and Abbatt, J. P. D.: Ship emissions measurement in the Arctic by plume intercepts of the Canadian Coast Guard icebreaker Amundsen from the Polar 6 aircraft platform, Atmos. Chem. Phys., 16, 7899–7916, https://doi.org/10.5194/acp-16-7899-2016, 2016. 5. AMAP: Arctic Monitoring and Assessment Programme, Assessment 2015: Black carbon and ozone as Arctic climate forcers, Technical report, AMAP, Oslo, Norway, vii C 116 pp., 2015.
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