Modelling wintertime sea-spray aerosols under Arctic haze conditions

被引:5
作者
Ioannidis, Eleftherios [1 ,8 ]
Law, Kathy S. [1 ]
Raut, Jean-Christophe [1 ]
Marelle, Louis [1 ]
Onishi, Tatsuo [1 ]
Kirpes, Rachel M. [2 ]
Upchurch, Lucia M. [3 ]
Tuch, Thomas [4 ]
Wiedensohler, Alfred [4 ]
Massling, Andreas [5 ]
Skov, Henrik [5 ]
Quinn, Patricia K. [6 ]
Pratt, Kerri A. [2 ,7 ]
机构
[1] Sorbonne Univ, UVSQ, CNRS, LATMOS, Paris, France
[2] Univ Michigan, Dept Chem, Ann Arbor, MI USA
[3] Univ Washington, Cooperat Inst Climate Ocean & Ecosyst Studies, Seattle, WA USA
[4] Leibniz Inst Tropospher Res, D-04318 Leipzig, Germany
[5] Aarhus Univ, Dept Environm Sci, iClimate, Aarhus, Denmark
[6] NOAA, Pacific Marine Environm Lab, Seattle, WA 98115 USA
[7] Univ Michigan, Dept Earth & Environm Sci, Ann Arbor, MI USA
[8] Vrije Univ, Dept Earth Sci, Amsterdam, Netherlands
基金
美国国家科学基金会;
关键词
PRIMARY MARINE AEROSOL; SALT AEROSOL; AIR-POLLUTION; STOMATAL CONDUCTANCE; NITROGEN DEPOSITION; GLOBAL DISTRIBUTION; OZONE DEPLETION; ORGANIC-MATTER; BOUNDARY-LAYER; STATION NORD;
D O I
10.5194/acp-23-5641-2023
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
Anthropogenic and natural emissions contribute to enhanced concentrations of aerosols in the Arctic winter and early spring, with most attention being paid to anthropogenic aerosols that contribute to so-called Arctic haze. Less-well-studied wintertime sea-spray aerosols (SSAs) under Arctic haze conditions are the focus of this study, since they can make an important contribution to wintertime Arctic aerosol abundances. Analysis of field campaign data shows evidence for enhanced local sources of SSAs, including marine organics at Utqiagvik (formerly known as Barrow) in northern Alaska, United States, during winter 2014. Models tend to underestimate sub-micron SSAs and overestimate super-micron SSAs in the Arctic during winter, including the base version of the Weather Research Forecast coupled with Chemistry (WRF-Chem) model used here, which includes a widely used SSA source function based on Gong et al. (1997). Quasi-hemispheric simulations for winter 2014 including updated wind speed and sea-surface temperature (SST) SSA emission dependencies and sources of marine sea-salt organics and sea-salt sulfate lead to significantly improved model performance compared to observations at remote Arctic sites, notably for coarse-mode sodium and chloride, which are reduced. The improved model also simulates more realistic contributions of SSAs to inorganic aerosols at different sites, ranging from 20 %-93% in the observations. Two-thirds of the improved model performance is from the inclusion of the dependence on SSTs. The simulation of nitrate aerosols is also improved due to less heterogeneous uptake of nitric acid on SSAs in the coarse mode and related increases in fine-mode nitrate. This highlights the importance of interactions between natural SSAs and inorganic anthropogenic aerosols that contribute to Arctic haze. Simulation of organic aerosols and the fraction of sea-salt sulfate are also improved compared to observations. However, the model underestimates episodes with elevated observed concentrations of SSA components and sub-micron non-sea-salt sulfate at some Arctic sites, notably at Utqiagvik. Possible reasons are explored in higher-resolution runs over northern Alaska for periods corresponding to the Utqia.gvik field campaign in January and February 2014. The addition of a local source of sea-salt marine organics, based on the campaign data, increases modelled organic aerosols over northern Alaska. However, comparison with previous available data suggests that local natural sources from open leads, as well as local anthropogenic sources, are underestimated in the model. Missing local anthropogenic sources may also explain the low modelled (sub-micron) non-sea-salt sulfate at Utqiagvik. The introduction of a higher wind speed dependence for sub-micron SSA emissions, also based on Arctic data, reduces biases in modelled sub-micron SSAs, while sea-ice fractions, including open leads, are shown to be an important factor controlling modelled super-micron, rather than sub-micron, SSAs over the north coast of Alaska. The regional results presented here show that modelled SSAs are more sensitive to wind speed dependence but that realistic modelling of sea-ice distributions is needed for the simulation of local SSAs, including marine organics. This study supports findings from the Utqiagvik field campaign that open leads are the primary source of fresh and aged SSAs, including marine organic aerosols, during wintertime at Utqia.gvik; these findings do not suggest an influence from blowing snow and frost flowers. To improve model simulations of Arctic wintertime aerosols, new field data on processes that influence wintertime SSA production, in particular for fine-mode aerosols, are needed as is improved understanding about possible local anthropogenic sources.
引用
收藏
页码:5641 / 5678
页数:38
相关论文
共 161 条
  • [1] Aas W., 2021, ANNUAL REPORT 2020
  • [2] Composition and mixing state of Arctic aerosol and cloud residual particles from long-term sinale-particle observations at Zeppelin Observatory, Svalbard
    Adachi, Kouji
    Tobo, Yutaka
    Koike, Makoto
    Freitas, Gabriel
    Zieger, Paul
    Krejci, Radovan
    [J]. ATMOSPHERIC CHEMISTRY AND PHYSICS, 2022, 22 (21) : 14421 - 14439
  • [3] Sulfate formation in sea-salt aerosols: Constraints from oxygen isotopes
    Alexander, B
    Park, RJ
    Jacob, DJ
    Li, QB
    Yantosca, RM
    Savarino, J
    Lee, CCW
    Thiemens, MH
    [J]. JOURNAL OF GEOPHYSICAL RESEARCH-ATMOSPHERES, 2005, 110 (D10) : 1 - 12
  • [4] AMAP, 2015, AMAP Assessment 2015: Black carbon and ozone as Arctic climate forcers, P116
  • [5] Gaseous chemistry and aerosol mechanism developments for version 3.5.1 of the online regional model, WRF-Chem
    Archer-Nicholls, S.
    Lowe, D.
    Utembe, S.
    Allan, J.
    Zaveri, R. A.
    Fast, J. D.
    Hodnebrog, O.
    van der Gon, H. Denier
    McFiggans, G.
    [J]. GEOSCIENTIFIC MODEL DEVELOPMENT, 2014, 7 (06) : 2557 - 2579
  • [6] Ball JT., 1987, PROGR PHOTOSYNTHESIS, P221, DOI DOI 10.1007/978-94-017-0519-6_48
  • [7] Ball L A, 1980, Ann N Y Acad Sci, V350, P486, DOI 10.1111/j.1749-6632.1980.tb20651.x
  • [8] CHEMICAL-COMPONENTS OF LOWER TROPOSPHERIC AEROSOLS IN THE HIGH ARCTIC - 6 YEARS OF OBSERVATIONS
    BARRIE, LA
    BARRIE, MJ
    [J]. JOURNAL OF ATMOSPHERIC CHEMISTRY, 1990, 11 (03) : 211 - 226
  • [9] ARCTIC AIR-POLLUTION - AN OVERVIEW OF CURRENT KNOWLEDGE
    BARRIE, LA
    [J]. ATMOSPHERIC ENVIRONMENT, 1986, 20 (04) : 643 - 663
  • [10] ARCTIC AEROSOL SIZE-SEGREGATED CHEMICAL OBSERVATIONS IN RELATION TO OZONE DEPLETION DURING POLAR SUNRISE EXPERIMENT 1992
    BARRIE, LA
    STAEBLER, R
    TOOM, D
    GEORGI, B
    DENHARTOG, G
    LANDSBERGER, S
    WU, D
    [J]. JOURNAL OF GEOPHYSICAL RESEARCH-ATMOSPHERES, 1994, 99 (D12) : 25439 - 25451