Sensitivity of Nitrate Aerosol Production to Vehicular Emissions in an Urban Street

被引:11
作者
Kim, Minjoong J. [1 ]
机构
[1] Myongji Univ, Dept Environm Engn & Energy, Yongin 17058, Gyunggi, South Korea
关键词
Urban pollution; Street canyon; Nitrate aerosol; CFD; Air quality; THERMODYNAMIC-EQUILIBRIUM MODEL; SOURCE APPORTIONMENT; VEHICLE EXHAUST; HAZE POLLUTION; AIR-QUALITY; DATA SET; CHINA; TRANSPORT; PM2.5; SIMULATION;
D O I
10.3390/atmos10040212
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
This study investigated the sensitivity of nitrate aerosols to vehicular emissions in urban streets using a coupled computational fluid dynamics (CFD)-chemistry model. Nitrate concentrations were highest at the street surface level following NH3 emissions from vehicles, indicating that ammonium nitrate formation occurs under NH3-limited conditions in street canyons. Sensitivity simulations revealed that the nitrate concentration has no clear relationship with the NOx emission rate, showing nitrate changes of only 2% across among 16 time differences in NOx emissions. NOx emissions show a conflicting effect on nitrate production via decreasing O-3 and increasing NO2 concentrations under a volatile organic compound (VOC)-limited regime for O-3 production. The sensitivity simulations also show that nitrate aerosol is proportional to vehicular VOC and NH3 emissions in the street canyon. Changes of VOC emissions affect the nitrate aerosol and HNO3 concentrations through changes in the O-3 concentration under a VOC-limited regime for O-3 production. Nitrate aerosol concentration is influenced by vehicular NH3 emissions, which produce ammonium nitrate effectively under an NH3-limited regime for nitrate production. This research suggests that, when vehicular emissions are dominant in winter, the control of vehicular VOC and NH3 emissions might be a more effective way to degrade PM2.5 problems than the control of NOx.
引用
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页数:20
相关论文
共 61 条
[1]  
Amon B., 2016, EMEP EEA AIR POLLUTA
[2]   A study of the dispersion and transport of reactive pollutants in and above street canyons - a large eddy simulation [J].
Baker, J ;
Walker, HL ;
Cai, XM .
ATMOSPHERIC ENVIRONMENT, 2004, 38 (39) :6883-6892
[3]   Global modeling of tropospheric chemistry with assimilated meteorology: Model description and evaluation [J].
Bey, I ;
Jacob, DJ ;
Yantosca, RM ;
Logan, JA ;
Field, BD ;
Fiore, AM ;
Li, QB ;
Liu, HGY ;
Mickley, LJ ;
Schultz, MG .
JOURNAL OF GEOPHYSICAL RESEARCH-ATMOSPHERES, 2001, 106 (D19) :23073-23095
[4]   Estimations of road vehicle primary NO2 exhaust emission fractions using monitoring data in London [J].
Carslaw, DC ;
Beevers, SD .
ATMOSPHERIC ENVIRONMENT, 2005, 39 (01) :167-177
[5]   Emission-driven changes in anthropogenic aerosol concentrations in China during 1970-2010 and its implications for PM2.5 control policy [J].
Chang, Wenyuan ;
Zhan, Jianqiong ;
Zhang, Ying ;
Li, Zhengqiang ;
Xing, Jia ;
Li, Jiandong .
ATMOSPHERIC RESEARCH, 2018, 212 :106-119
[6]   Sea salt emission, transport and influence on size-segregated nitrate simulation: a case study in northwestern Europe by WRF-Chem [J].
Chen, Ying ;
Cheng, Yafang ;
Ma, Nan ;
Wolke, Ralf ;
Nordmann, Stephan ;
Schuettauf, Stephanie ;
Ran, Liang ;
Wehner, Birgit ;
Birmili, Wolfram ;
van der Gon, Hugo A. C. Denier ;
Mu, Qing ;
Barthel, Stefan ;
Spindler, Gerald ;
Stieger, Bastian ;
Mueller, Konrad ;
Zheng, Guang-Jie ;
Poeschl, Ulrich ;
Su, Hang ;
Wiedensohler, Alfred .
ATMOSPHERIC CHEMISTRY AND PHYSICS, 2016, 16 (18) :12081-12097
[7]   Construction of a 1° x 1° fossil fuel emission data set for carbonaceous aerosol and implementation and radiative impact in the ECHAM4 model [J].
Cooke, WF ;
Liousse, C ;
Cachier, H ;
Feichter, J .
JOURNAL OF GEOPHYSICAL RESEARCH-ATMOSPHERES, 1999, 104 (D18) :22137-22162
[8]   Short-term variation in near-highway air pollutant gradients on a winter morning [J].
Durant, J. L. ;
Ash, C. A. ;
Wood, E. C. ;
Herndon, S. C. ;
Jayne, J. T. ;
Knighton, W. B. ;
Canagaratna, M. R. ;
Trull, J. B. ;
Brugge, D. ;
Zamore, W. ;
Kolb, C. E. .
ATMOSPHERIC CHEMISTRY AND PHYSICS, 2010, 10 (17) :8341-8352
[9]   ISORROPIA II:: a computationally efficient thermodynamic equilibrium model for K+-Ca2+-Mg2+-Nh4+-Na+-SO42--NO3--Cl--H2O aerosols [J].
Fountoukis, C. ;
Nenes, A. .
ATMOSPHERIC CHEMISTRY AND PHYSICS, 2007, 7 (17) :4639-4659
[10]   Receptor modeling of source apportionment of Hong Kong aerosols and the implication of urban and regional contribution [J].
Guo, H. ;
Ding, A. J. ;
So, K. L. ;
Ayoko, G. ;
Li, Y. S. ;
Hung, W. T. .
ATMOSPHERIC ENVIRONMENT, 2009, 43 (06) :1159-1169