Exploring wintertime regional haze in northeast China: role of coal and biomass burning
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Published:2020-05-07
Issue:9
Volume:20
Page:5355-5372
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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:
Zhang Jian, Liu LeiORCID, Xu Liang, Lin Qiuhan, Zhao Hujia, Wang Zhibin, Guo Song, Hu Min, Liu DantongORCID, Shi Zongbo, Huang Dao, Li WeijunORCID
Abstract
Abstract. As one of the intense anthropogenic emission regions across the relatively
high-latitude (>40∘ N) areas on Earth, northeast
China faces the serious problem of regional haze during the heating period of
the year. Aerosols in polluted haze in northeast China are poorly
understood compared with the haze in other regions of China such as the North
China Plain. Here, we integrated bulk chemical measurements with single-particle analysis from transmission electron microscopy (TEM), nanoscale
secondary ion mass spectrometry (NanoSIMS), and atomic force microscopy
(AFM) to obtain morphology, size, composition, aging process, and sources of
aerosol particles collected during two contrasting regional haze events
(Haze-I and Haze-II) at an urban site and a mountain site in northeast
China and further investigated the causes of regional haze formation.
Haze-I evolved from moderate (average PM2.5: 76–108 µg m−3) to
heavy pollution (151–154 µg m−3), with the dominant PM2.5
component changing from organic matter (OM) (39–45 µg m−3) to
secondary inorganic ions (94–101 µg m−3). Similarly, TEM
observations showed that S-rich particles internally mixed with OM (named S-OM)
increased from 29 % to 60 % by number at an urban site and 64 %
to 74 % at a mountain site from the moderate Haze-I to heavy Haze-I events,
and 75 %–96 % of Haze-I particles included primary OM. We found that change
of wind direction caused Haze-I to rapidly turn into Haze-II (185–223 µg m−3) with predominantly OM (98–133 µg m−3) and
unexpectedly high K+ (3.8 µg m−3). TEM also showed that K-rich particles
internally mixed with OM (named K-OM) increased from 4 %–5 % by
number to 50 %–52 %. The results indicate that there were different sources
of aerosol particles causing the Haze-I and Haze-II formation: Haze-I was
mainly induced by accumulation of primary OM emitted from residential coal
burning and further deteriorated by secondary aerosol formation via
heterogeneous reactions; Haze-II was caused by long-range transport of
agricultural biomass burning emissions. Moreover, abundant primary OM
particles emitted from coal and biomass burning were considered to be one
typical brown carbon, i.e., tar balls. Our study highlights that large
numbers of light-absorbing tar balls significantly contribute to winter haze
formation in northeast China and they should be further considered in
climate models.
Funder
National Natural Science Foundation of China
Publisher
Copernicus GmbH
Subject
Atmospheric Science
Reference103 articles.
1. Adachi, K. and Buseck, P. R.: Internally mixed soot, sulfates, and organic matter in aerosol particles from Mexico City, Atmos. Chem. Phys., 8, 6469–6481, https://doi.org/10.5194/acp-8-6469-2008, 2008. 2. Adachi, K., Sedlacek, A. J., Kleinman, L., Springston, S. R., Wang, J.,
Chand, D., Hubbe, J. M., Shilling, J. E., Onasch, T. B., Kinase, T., Sakata,
K., Takahashi, Y., and Buseck, P. R.: Spherical tarball particles form
through rapid chemical and physical changes of organic matter in
biomass-burning smoke, P. Natl. Acad. Sci. USA, 116, 19336–19341, https://doi.org/10.1073/pnas.1900129116, 2019. 3. Alexander, D. T. L., Crozier, P. A., and Anderson, J. R.: Brown carbon
spheres in East Asian outflow and their optical properties, Science, 321,
833–836, https://doi.org/10.1126/science.1155296, 2008. 4. Bennartz, R., Fan, J., Rausch, J., Leung, L. R., and Heidinger, A. K.:
Pollution from China increases cloud droplet number, suppresses rain over
the East China Sea, Geophys. Res. Lett., 38, L09704, https://doi.org/10.1029/2011GL047235, 2011. 5. Bi, X., Zhang, G., Li, L., Wang, X., Li, M., Sheng, G., Fu, J., and Zhou,
Z.: Mixing state of biomass burning particles by single particle aerosol
mass spectrometer in the urban area of PRD, China, Atmos. Environ., 45,
3447–3453, https://doi.org/10.1016/j.atmosenv.2011.03.034,
2011.
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