徐州市大气PM2.5与O3作用关系的季节变化

张宇静, 赵天良, 殷翀之, 王自发, 葛宝珠, 刘端阳, 杜欣欣

中国环境科学 ›› 2019, Vol. 39 ›› Issue (6) : 2267-2272.

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中国环境科学 ›› 2019, Vol. 39 ›› Issue (6) : 2267-2272.
大气污染与控制

徐州市大气PM2.5与O3作用关系的季节变化

  • 张宇静1,2, 赵天良1, 殷翀之1, 王自发2, 葛宝珠2, 刘端阳3, 杜欣欣1
作者信息 +

Seasonal variation of the relationship between surface PM2.5 and O3 concentrations in Xuzhou

  • ZHANG Yu-jing1,2, ZHAO Tian-liang1, YING Chong-zhi1, WANG Zi-fa2, Ge Bao-zhu2, LIU Duan-yang3, Du Xin-xin1
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摘要

通过2013~2017年徐州市环境监测资料分析季风影响下主要大气复合污染物PM2.5和O3的相关性,并基于气象观测资料进一步探究PM2.5和O3相互作用机制的季节变化特征.结果表明:夏季风季节,PM2.5和O3呈正相关,相关系数高达0.56;冬季风季节,PM2.5和O3呈负相关,相关系数为-0.34,均通过了99%的置信检验,表明徐州市PM2.5和O3相互作用呈现相反的季节变化.夏季风季节,太阳辐射强,气温较高,大气氧化性较强,O3主导大气氧化性,大气氧化性通过促进二次颗粒物生成使得PM2.5浓度升高,夏季风季节以O3对PM2.5的促进作用主导城市大气复合污染变化;冬季风季节,太阳辐射弱,气温较低,大气氧化性较弱,高浓度的PM2.5削弱太阳辐射抑制大气光化学,导致O3生成率降低,冬季风季节以PM2.5对O3的抑制作用主导城市大气复合污染变化.

Abstract

The correlation between major atmospheric pollutants PM2.5 and O3 under the effect of East Asian monsoons was analyzed by using the environmental monitoring observations from 2013 to 2017 in Xuzhou. Based on meteorological observations, this paper further investigated the seasonal variation of interaction mechanism between PM2.5 and O3. The results showed that:PM2.5 and O3 were positively related with the correlation coefficient of 0.56 in summer monsoon (SM), while PM2.5 and O3 were negatively related with the correlation coefficient of -0.30 in winter monsoon (WM), both passing the confidence test of 99%. This indicated that the interaction of air compound pollutants PM2.5 and O3 in Xuzhou presented opposite the seasonal changes. In SM featured by strong solar radiation, high air temperature and strong oxidation, O3 dominated the atmospheric oxidation, and oxidation effectively promoted secondary particle formation. The promotion of O3 on PM2.5 dominated the changes of air compound pollution in SM. In WM, the air temperature was low and the atmospheric oxidation was weak, then the enhanced PM2.5 levels could suppress atmospheric photochemistry by reducing solar radiation, with the ozone change rate decreasing and peaking time postponing. The inhibitory effect of PM2.5 on O3 dominated the changes of air compound pollution in WM in Xuzhou.

关键词

O3 / PM2.5 / 大气复合污染 / 大气氧化性 / 东亚季风

Key words

air compound pollution / atmospheric oxidation / East Asian monsoons / O3 / PM2.5

引用本文

导出引用
张宇静, 赵天良, 殷翀之, 王自发, 葛宝珠, 刘端阳, 杜欣欣. 徐州市大气PM2.5与O3作用关系的季节变化[J]. 中国环境科学. 2019, 39(6): 2267-2272
ZHANG Yu-jing, ZHAO Tian-liang, YING Chong-zhi, WANG Zi-fa, Ge Bao-zhu, LIU Duan-yang, Du Xin-xin. Seasonal variation of the relationship between surface PM2.5 and O3 concentrations in Xuzhou[J]. China Environmental Science. 2019, 39(6): 2267-2272
中图分类号: X513   

参考文献

[1] 唐孝炎,张远航,邵敏.大气环境化学[M]. 北京:高等教育出版社, 2006:272-273.Tang X Y, Zhang Y H, Shao M. Atmospheric environmental chemistry[M]. Beijing:Higher Education Press, 2006:272-273.
[2] 朱彤.城市与区域大气复合污染[M]. 北京:化学工业出版社, 2005:1-3.Zhu T. Combined pollution of urban and regional atmospheres[M]. Beijing:Chemical Industry Press, 2005:1-3.
[3] Ding J, Zhu T. Heterogeneous reactions on the surface of fine particles in the atmosphere[J]. Chinese Science Bulletin, 2003,48:2267-2276.
[4] Parrish D D, Zhu T. Clean air for megacities[J]. Science, 2009, 326:674-675.
[5] Zhang Y H, Hu M, Zhong L J, et al. Regional integrated experiments on air quality over Pearl River Delta 2004(PRIDEPRD2004):Overview[J]. Atmospheric Environment, 2008,42:6157-6173.
[6] 贺克斌,杨复沫,段凤魁,等.大气颗粒物与区域复合污染[M]. 北京:科学出版社, 2011:3-4.He K B, Yang F M, Duan F K, et al. Atmospheric particulate matter and regional composite pollution[M]. Beijing:Science Press, 2011:3-4.
[7] Meng Z, Dabdub D, Seinfeld J H. Chemical Coupling between Atmospheric Ozone and Particulate Matter[J]. Science, 1997,277(5322):116-119.
[8] Ravishankara A R. Heterogeneous and Multiphase Chemistry in the Troposphere[J]. Science, 1997,276(5315):1058-1065.
[9] Jacob D J. Heterogeneous chemistry and tropospheric ozone[Review] [J]. Atmospheric Environment, 2000,34(12):2131-2159.
[10] Li G, Zhang R, Fan J, et al. Impacts of black carbon aerosol on photolysis and ozone[J]. Journal of Geophysical Research Atmospheres, 2005,110(D23).
[11] Li J, Wang Z, Wang X, et al. Impacts of aerosols on summertime tropospheric photolysis frequencies and photochemistry over Central Eastern China[J]. Atmospheric Environment, 2011,45(10):1817-1829.
[12] Huang R J, Zhang Y, Bozzetti C, et al. High secondary aerosol contribution to particulate pollution during haze events in China[J]. Nature, 2014,514(7521):218-222.
[13] Ge B, Sun Y, Liu Y, et al. Nitrogen dioxide measurement by cavity attenuated phase shift spectroscopy (CAPS) and implications in ozone production efficiency and nitrate formation in Beijing, China[J]. Journal of Geophysical Research Atmospheres, 2013,118(16):9499-9509.
[14] Li, L.; Chen, Z.M.; Zhang, Y.H.; Zhu, T.; Li, J.L.; Ding, J. Kinetics and mechanism of heterogeneous oxidation of sulfur dioxide by ozone on surface of calcium carbonate[J]. Atmos. Chem. Phys. 2006,6:125-139.
[15] Huang R J, Zhang Y, Bozzetti C, et al. High secondary aerosol contribution to particulate pollution during haze events in China[J]. Nature, 2014,514(7521):218-222.
[16] Feng T, Bei N, Huang R, et al. Summertime ozone formation in Xi'an and surrounding areas, China[J]. Atmospheric Chemistry & Physics Discussions, 2016,15(16):4323-4342.
[17] 朱乾根.天气学原理和方法[M]. 北京:气象出版社, 1981.Zhu G Q. Principles and methods of weather science[M]. Beijing:Meteorological Press, 1981.
[18] 蔡彦枫,王体健,谢旻,等.南京地区大气颗粒物影响近地面臭氧的个例研究[J]. 气候与环境研究, 2013,18(2):251-260.C ai Y F, Wang T J, Li Y T, et al. Impacts of atmospheric particles on surface ozone in Nanjing[J]. Climate and Environment Research, 2013,18(2):251-260.
[19] 王占山,张大伟,李云婷,等.北京市夏季不同O3和PM2.5污染状况研究[J]. 环境科学, 2016,37(3):807-815.Wang Z S, Zhang D W, Li Y T, et al. Different Air Pollution Situations of O3 and PM2.5 During Summer in Beijing[J]. Environment Science, 2016,37(3):807-815.
[20] Jia M, Zhao T, Cheng X, et al. Inverse Relations of PM2.5 and O3 in Air Compound Pollution between Cold and Hot Seasons over an Urban Area of East China[J]. Atmosphere, 2017,8(3):59.
[21] HJ633-2012环境空气质量指数(AQI)技术规定[S].HJ633-2012 Technical regulations for environmental air quality index (AQI)[S].
[22] Xu X, Zhao T, Liu F, et al. Climate modulation of the Tibetan Plateau on haze in China[J]. Atmospheric Chemistry & Physics Discussions, 2016,15(3):28915-28937.
[23] Zhang Y, Mao H, Ding A, et al. Impact of synoptic weather patterns on spatio-temporal variation in surface O3, levels in Hong Kong during 1999~2011[J]. Atmospheric Environment, 2013,73(4):41-50.
[24] 2Nd L H. Normal atmosphere:large radical and formaldehyde concentrations predicted[J]. Science, 1971,173(3992):141-143.
[25] Cheung V T F, Wang T. Observational study of ozone pollution at a rural site in the Yangtze Delta of China[J]. Atmospheric Environment, 2001,35(29):4947-4958.
[26] Clapp L J, Jenkin M E. Analysis of the relationship between ambient levels of O3, NO and NO2 as a function of NOx in the UK[J]. Atmospheric Environment, 2001,35(36):6391-6405.
[27] Vakkari V, Kerminen V M, Beukes J P, et al. Rapid changes in biomass burning aerosols by atmospheric oxidation[J]. Geophysical Research Letters, 2014,41(7):2644-2651.
[28] Jacob D J, Winner D A. Effect of climate change on air quality[J]. Atmospheric Environment, 2009,43(1):51-63.
[29] Odum J R, Jungkamp T P, Griffin R J, et al. The atmospheric aerosol-forming potential of whole gasoline vapor[J]. Science, 1997,276(5309):96-99.
[30] Chang S C, Lee C T. Secondary aerosol formation through photochemical reactions estimated by using air quality monitoring data in Taipei City from 1994 to 2003[J]. Atmospheric Environment, 2007, 41(19):4002-4017.
[31] Tao J, Zhang L, Ho K, et al. Impact of PM2.5, chemical compositions on aerosol light scattering in Guangzhou -the largest megacity in South China[J]. Atmospheric Research, 2014,135-136(1):48-58.
[32] Dickerson R R, Kondragunta S, Stenchikov G, et al. The impact of aerosols on solar ultraviolet radiation and photochemical smog[J]. Science, 1997,278(5339):827-830.
[33] Li G, Bei N, Tie X, et al. Aerosol effects on the photochemistry in Mexico City during MCMA-2006/MILAGRO campaign[J]. Atmospheric Chemistry & Physics, 2011,11(3):5169-5182.

基金

国家重点研发计划试点专项(2016YFC0203304);国家自然科学基金资助项目(41830965,91744209);国家科技支撑计划项目(2014BAC22B04)


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