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Mechanism for the formation of the January 2013 heavy haze pollution episode over central and eastern China 被引量:196

Mechanism for the formation of the January 2013 heavy haze pollution episode over central and eastern China
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摘要 In January 2013,a long-lasting episode of severe haze occurred in central and eastern China,and it attracted attention from all sectors of society.The process and evolution of haze pollution episodes were observed by the"Forming Mechanism and Control Strategies of Haze in China"group using an intensive aerosol and trace gases campaign that simultaneously obtained data at 11 ground-based observing sites in the CARE-China network.The characteristics and formation mechanism of haze pollution episodes were discussed.Five haze pollution episodes were identified in the Beijing-Tianjin-Hebei(Jing-Jin-Ji)area;the two most severe episodes occurred during 9–15 January and 25–31 January.During these two haze pollution episodes,the maximum hourly PM2.5mass concentrations in Beijing were 680 and 530μg m 3,respectively.The process and evolution of haze pollution episodes in other major cities in the Jing-Jin-Ji area,such as Shijiazhuang and Tianjin were almost the same as those observed in Beijing.The external cause of the severe haze episodes was the unusual atmospheric circulation,the depression of strong cold air activities and the very unfavorable dispersion due to geographical and meteorological conditions.However,the internal cause was the quick secondary transformation of primary gaseous pollutants to secondary aerosols,which contributed to the"explosive growth"and"sustained growth"of PM2.5.Particularly,the abnormally high amount of nitric oxide(NOx)in the haze episodes,produced by fossil fuel combustion and vehicle emissions,played a direct or indirect role in the quick secondary transformation of coal-burning sulphur dioxide(SO2)to sulphate aerosols.Furthermore,gaseous pollutants were transformed into secondary aerosols through heterogeneous reactions on the surface of fine particles,which can change the particle’s size and chemical composition.Consequently,the proportion of secondary inorganic ions,such as sulphate and nitrate,gradually increased,which enhances particle hygroscopicity and thereby accelerating formation of the haze pollution. In January 2013, a long-lasting episode of severe haze occurred in central and eastern China, and it attracted attention from all sectors of society. The process and evolution of haze pollution episodes were observed by the "Forming Mechanism and Con- trol Strategies of Haze in China" group using an intensive aerosol and trace gases campaign that simultaneously obtained data at 11 ground-based observing sites in the CARE-China network. The characteristics and formation mechanism of haze pollu- tion episodes were discussed. Five haze pollution episodes were identified in the Beijing-Tianjin-Hebei (Jing-Jin-Ji) area; the two most severe episodes occurred during 9-15 January and 25-31 January. During these two haze pollution episodes, the maximum hourly PMz5 mass concentrations in Beijing were 680 and 530 ~tg m-3, respectively. The process and evolution of haze pollution episodes in other major cities in the Jing-Jin-Ji area, such as Shijiazhuang and Tianjin were almost the same as those observed in Beijing. The external cause of the severe haze episodes was the unusual atmospheric circulation, the depres- sion of strong cold air activities and the very unfavorable dispersion due to geographical and meteorological conditions. How- ever, the internal cause was the quick secondary transformation of primary gaseous pollutants to secondary aerosols, which contributed to the "explosive growth" and "sustained growth" of PM2.5. Particularly, the abnormally high amount of nitric ox- ide (NOx) in the haze episodes, produced by fossil fuel combustion and vehicle emissions, played a direct or indirect role in the quick secondary transformation of coal-burning sulphur dioxide (SO2) to sulphate aerosols. Furthermore, gaseous pollutants were transformed into secondary aerosols through heterogeneous reactions on the surface of fine particles, which can change the particle's size and chemical composition. Consequently, the proportion of secondary inorganic ions, such as sulphate and nitrate, gradually increased, which enhances particle hygroscopicity and thereby accelerating formation of the haze pollution.
出处 《Science China Earth Sciences》 SCIE EI CAS 2014年第1期14-25,共12页 中国科学(地球科学英文版)
基金 supported by the Chinese Academy of Sciences Strategic Priority Research Program(Grant Nos.XDB05020000 and XDA05100100) the National Natural Science Foundation of China(Grant Nos.41230642 and 41021004)
关键词 污染事件 灰霾 中国 机制 气态污染物 汽车尾气排放 冷空气活动 非均相反应 haze pollution episode, meteorology, air pollution complex, cooperative transition, Jing-Jin-Ji
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  • 1白志鹏,董海燕,蔡斌彬,朱坦,姚学祥.灰霾与能见度研究进展[J].过程工程学报,2006,6(z2):36-41. 被引量:65
  • 2闵敏,王普才,宗雪梅,夏俊荣,孟晓艳.灰霾过程中的气溶胶特性观测研究[J].气候与环境研究,2009,14(2):153-160. 被引量:34
  • 3孙扬,王跃思,刘广仁,安俊琳,马志强,石立庆,徐宏辉.北京地区一次大气环境持续严重污染过程中SO_2的垂直分布分析[J].环境科学,2006,27(3):408-414. 被引量:48
  • 4胡敏,刘尚,吴志军,张静,赵云良,Birgit Wehner,Alfred Wiedensohler.北京夏季高温高湿和降水过程对大气颗粒物谱分布的影响[J].环境科学,2006,27(11):2293-2298. 被引量:119
  • 5中央气象局.地面气象观测规范[M].北京:气象出版社,1979.21-27.
  • 6Kang C M, Lee H S, Kang B W, et al. Chemical characteristics of acidic gas pollutants and PM2.5 species during hazy episodes in Seoul, South Korea [ J ]. Atmospheric Environment, 2004, 38 ( 28 ) : 4749-4760.
  • 7Nel A. Air pollution-related illness: effects of particles [ J ]. Science, 2005, 308 (5723) : 804-806.
  • 8Kim K W, Kim Y J, Bang S Y. Summer time haze characteristics of the urban atmosphere of Gwangju and the rural atmosphere of Anmyon, Korea [ J . Environmental Monitoringand Assessment, 2008, 141(1-3) : 189-199.
  • 9He K B, Yang F M, Ma Y L, et al. The characteristics of PM2.5 in Beijing, China [ J ]. Atmospheric Environment, 2001, 35 ( 29 ) : 4959-4970.
  • 10Shi Z B, Shao L Y, Jones T P, et al. Characterization of airborne individual particles collected in an urban area, a satellite city and a clean air area in Beijing, 2001 [ J ]. Atmospheric Environment, 2003, 37(29) : 4097-4108.

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