Pollution level and source apportionment of atmospheric particles PM2.5 in southwest suburb of Chengdu in spring

被引:0
|
作者
Lin Y. [1 ]
Ye Z.-X. [1 ,2 ]
Yang H.-J. [1 ,2 ]
Zhang J. [1 ,2 ]
Yin W.-W. [1 ]
Li X.-F. [1 ]
机构
[1] College of Resources and Environment, Chengdu University of Information Technology, Chengdu
[2] Air Environmental Modeling and Pollution Controlling Key Laboratory of Sichuan Higher Education Institutes, Chengdu
来源
Ye, Zhi-Xiang (yzxiang@cuit.edu.cn) | 1629年 / Science Press卷 / 37期
关键词
Chengdu; Elemental carbon; Inorganic elements; Organic carbon; PM[!sub]2.5[!/sub; Source apportionment; Water-soluble inorganic ions;
D O I
10.13227/j.hjkx.2016.05.005
中图分类号
学科分类号
摘要
In order to understand the characteristics of PM2.5 pollution in the atmosphere of Chengdu southwest suburb, PM2.5 particles in Chengdu southwest suburb were collected and analyzed from March 1st to March 31st, 2015. The results showed that the daily average concentration of PM2.5 in the southwest suburb of Chengdu reached 121.21 μg·m-3, and the average daily concentration of 24 samples in 31 PM2.5 samples was over 75 μg·m-3, the daily excessive rate was 77%, indicating the PM2.5 pollution in the study area was serious in March. When studying the relationship between atmospheric and meteorological factors, it was found that there was a significant index correlation between PM2.5 concentration and atmospheric visibility, and it had a positive correlation with temperature and humidity, but the correlation was not obvious. NH4+ (16.24%), SO42- (12.58%) and NO3- (9.91%) were dominant in PM2.5. The ratio of NO3-/SO42- was 0.77, which indicated that the pollution of stationary sources in the southwest suburb was more severe than that of mobile sources. Organic carbon (OC)/elemental carbon(EC) ratios were higher than 2, which indicated the existence of second organic carbon (SOC). Using OC/EC ratio method to estimate the concentration of SOC, it was found that the average concentration of SOC in the southwest suburb of Chengdu in March was 3.49 μg·m-3, and the contribution rate of OC was 20.6%, which showed that the main source of OC in the southwest suburb of Chengdu was primary discharge. The correlation analysis of OC and EC showed that the correlation coefficient reached 0.95, indicating that the OC and EC sources were similar and relatively stable, and there was a great impact of local source emissions on Chengdu southwest suburb in spring, and primary discharge played a dominant role, while the contribution of SOC to OC was relatively small, which was consistent with the SOC characteristics obtained by estimation. Using principal component analysis method to analyze the sources of PM2.5 in the southwest of Chengdu, it was found that the main pollution sources of PM2.5 in southwest suburb of Chengdu were coal burning and biomass burning, secondary nitrate/sulfate, soil and dust, vehicle emissions, electronic production source, and mechanical processing source. © 2016, Science Press. All right reserved.
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页码:1629 / 1638
页数:9
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