南京大学学报(自然科学版) ›› 2014, Vol. 50 ›› Issue (6): 800–809.

• • 上一篇    下一篇

长三角城市群区大气污染对气象要素及地表能量平衡的影响研究

刘丽霞1,凌肖露1*,郭维栋1   

  • 出版日期:2014-11-11 发布日期:2014-11-11
  • 作者简介:1 南京大学气候与全球变化研究院,南京大学大气科学学院,南京 210093
  • 基金资助:
    973项目(2010CB428503)、 教育部“新世纪优秀人才支持计划”、江苏省博士生创新项目以及国家人才培养基金(J1103410)联合资助。

A study of the impacts of aerosols on micrometeorological characteristics and energy budget in the western Yangtze River Delta

LiuLixia1, Ling Xiaolu1*, GuoWeidong1   

  • Online:2014-11-11 Published:2014-11-11
  • About author:(1 Institute for Climate and Global Change Research University, School of Atmospheric Sciences, Nanjing University, Nanjing 210093, China)

摘要: 利用2012年4-6月南京溧水野外观测站近地层微气象、地表辐射和通量交换数据,结合南京大学地球系统区域过程综合观测研究站(SORPES-NJU)的PM2.5质量浓度以及环境保护部发布的逐日API资料,使用聚类分析、合成分析和个例分析的方法,定量分析了南京地区不同大气污染程度下气象要素和地表能量平衡的响应特征。结果表明,观测期间南京地区污染天盛行偏南风,且风速较清洁天气低约30%。气溶胶白天对到达地面的太阳辐射的削弱作用大于对地面有效辐射的减弱作用,使得地面净辐射减小(日均值约46.3W·m-2)。气溶胶减弱感热通量、潜热通量,并影响二者在能量平衡中的比重。个例分析表明气溶胶通过减小白天地面净辐射,减弱地气系统能量,导致近地层气温降低(最大差值约1℃),湍流运动减弱,从而进一步抑制污染物的扩散,形成空气污染-地表能量收支-边界层结构间的正反馈过程。

Abstract: Aerosols contribute substantially to radiative forcing, which inevitably influences the land surface process and then exert s a perturbation on climate. The interaction of meteorological characteristics, energy budget and aerosols over Yangtze River Delta has been investigated, by analyzing the concentration of fine particles collected from the Xianlin ‘flagship’ central site of the Stations for Observing Regional Processes of the Earth System(SORPES) and meteorological parameters, radiation fluxes obtained from the Lishui subsidiary site of SORPES from April to June 2012. The results indicate that air pollution in this area is associated with southerly wind characterized by low speed. Heavy load of aerosols resulted in a decrease in the solar radiation by 64.8 W·m-2 and a decrease in the net radiation by 46.3 W·m-2 in the daytime. Weakened latent fluxes and sensible fluxes are observed combined with a changed Bowen ratio. It is speculated that aerosols reduce the net radiation and cause a decrease in air temperature near surface, which depresses the land surface turbulent fluxes and leads to an increase in aerosol concentration in turn.


[1] IPCC. Climate Change 2007:The Physical Science Basis.Contribution of Working Group I to the Fourth Assessment Report of the Intergovernmental Panel on Climate Change,2007, 996.
[2] 张小曳. 中国大气气溶胶及其气候效应的研究. 地球科学进展,2007(1): 12~16.
[3] 张 强,王 胜,张 杰等. 干旱区陆面过程和大气边界层研究进展. 地球科学进展,2009(11): 1185~1194.
[4] Ding A J, Fu C B, Yang X Q, et al. Intense atmospheric pollution modifies weather: a case of mixed biomass burning with fossil fuel combustion pollution in eastern China. Atmospheric Chemistry and Physics,2013, 13(20): 10545~10554.
[5] 张 强,胡隐樵,曹晓彦等. 论西北干旱气候的若干问题. 中国沙漠,2000(4): 13~18.
[6] 胡隐樵,光田宁. 强沙尘暴微气象特征和局地触发机制. 大气科学,1997(5): 70~78.
[7] 王介民. 陆面过程实验和地气相互作用研究——从HEIFE到IMGRASS和GAME-Tibet/TIPEX. 高原气象, 1999(3): 280~294.
[8] 任阵海,黄美元,董保群等. 我国酸性物质的大气输送研究. 北京:国家环境保护总局, 1995.
[9] 徐祥德,周秀骥,施晓晖. 城市群落大气污染源影响的空间结构及尺度特征. 中国科学(D辑:地球科学), 2005(S1): 1~19.
[10] 邵振艳,周 涛,史培军等. 大气污染对中国重点城市地面总辐射影响的时空特征. 高原气象, 2009(5): 1105-1114.
[11] 王晓元,辛金元,王莉莉等. 中国3个典型城市气溶胶光学厚度地基观测及其MODIS气溶胶产品精度分析. 气候与环境研究, 2012(1): 37~45.
[12] 李晓林,包良满,刘江峰等. 上海2004年冬季城市大气气溶胶含Pb单颗粒物的来源查证. 中国科学院研究生院学报, 2007(5): 688~691.
[13] 黄 健,李 菲,邓雪娇等. 珠江三角洲城市地区MODIS气溶胶光学厚度产品的检验分析. 热带气象学报, 2010(5): 526~532.
[14] 段 婧,毛节泰. 长江三角洲大气气溶胶光学厚度分布和变化趋势研究. 环境科学学报, 2007(4): 537~543.
[15] Xu J, Bergin M H, Yu X, et al. Measurement of aerosol chemical, physical and radiative properties in the Yangtze delta region of China. Atmospheric Environment, 2002, 36(2): 161~173.
[16] Xia X G, Li Z Q, Holben B, et al. Aerosol optical properties and radiative effects in the Yangtze Delta region of China.Journal of Geophysical Research-Atmospheres,2007, 112(D22S12D22).
[17] Ding A J, Fu C B, Yang X Q, et al. Ozone and fine particle in the western Yangtze River Delta: an overview of 1 yr data at the SORPES station. Atmospheric Chemistry and Physics,2013, 13(11): 5813~5830.
[18] Fan S J, Wang B M, Tesche M, et al. Meteorological conditions and structures of atmospheric boundary layer in October 2004 over Pearl River Delta area. Atmospheric Environment,2008, 42(25): 6174~6186.
[19] 赵 鸣. 大气边界层动力学. 2006: 310~311.
[20] Zhou L, Xu X D, Ding G A, et al. Diurnal variations of air pollution and atmospheric boundary layer structure in Beijing during winter 2000/2001. Advances in Atmospheric Sciences, 2005, 22(1): 126~132.
[21] Quan J N, Gao Y, Zhang Q, et al. Evolution of planetary boundary layer under different weather conditions, and its impact on aerosol concentrations. Particuology,2013, 11(1SI): 34~40.
[22] 张予燕,芮冬梅,刘 军,等. 南京市重点污染源对城区空气质量的影响. 环境监测管理与技术. 2009(6): 62~64.
[23] Zhao C S, Tie X X, Lin Y P. A possible positive feedback of reduction of precipitation and increase in aerosols over eastern central China. Geophysical Research Letters, 2006, 33(L1181411).
[24] 王开燕,王雪梅,张仁健等. 北京市冬季气象要素对气溶胶浓度日变化的影响. 环境科学研究, 2008(4): 132~135.
[25] 凌肖露,张 镭,郭维栋等. 沙尘气溶胶对半干旱区微气象学特征影响的初步研究. 气候与环境研究,2010(3): 279~288.
[26] 张 强,曹晓彦. 敦煌地区荒漠戈壁地表热量和辐射平衡特征的研究. 大气科学, 2003(2): 245~254.

No related articles found!
Viewed
Full text


Abstract

Cited

  Shared   
  Discussed   
No Suggested Reading articles found!