Characteristics and source apportionment of volatile organic compounds in an industrial town of Pearl River Delta

被引:0
作者
Deng, Si-Xin [1 ]
Liu, Yong-Lin [2 ,3 ]
Situ, Shu-Ping [1 ]
Jiao, Ling [2 ,3 ]
Chang, Ming [2 ,3 ]
Xie, Min [4 ]
Li, Ting-Yuan [5 ]
An, Li-Na [1 ]
Zheng, Lian-Ming [2 ,3 ]
Zhou, Xue-Ling [1 ]
Kuang, Min-Er [1 ]
机构
[1] Foshan Environmental Monitoring Center, Foshan,528000, China
[2] Institute for Environmental and Climate Research, Jinan University, Guangzhou,510632, China
[3] Guangdong-Hongkong-Macau Joint Laboratory of Collaborative Innovation for Environmental Quality, Guangzhou,510308, China
[4] State Environmental Protection Key Laboratory of Regional Air Quality Monitoring, Guangdong Environmental Monitoring Center, Guangzhou,510308, China
[5] Guangdong Ecological Meteorological Center/Environmental Meteorology Forecast Center of Pearl River Delta, Guangzhou,510640, China
来源
Zhongguo Huanjing Kexue/China Environmental Science | 2021年 / 41卷 / 07期
关键词
Volatile organic compounds;
D O I
暂无
中图分类号
学科分类号
摘要
The volatile organic compounds (VOCs) were continuously measured in the typical industrial town Shishan in Foshan in the Pearl River Delta region, and their characteristics of variability, Ozone Formation Potentials (OFP) and source apportionment were analyzed in 2019. A total of 56 VOCs species were detected during sampling time. The concentrations of TVOCs (total VOCs) were (39.64±30.46)×10-9, and the dominated VOC components were alkanes (56.5%) and aromatics (30.1%). The general trend of seasonal variation indicated higher concentrations in spring and winter. The classified VOCs were characterized by U diurnal variation. The range of diurnal variation of polluted period was obviously greater than that of unpolluted period.The relative incremental reactivities (RIR) showed that ground-level ozone formation in the study area was generally limited by the concentrations of VOCs. The OFP concentrations of VOCs were 107.40×10-9 with the highest contributions from aromatics (54.6%).The summed of the top 10 OFP compounds accounted for 80.3% of the total OFP and 59.9% of the TVOCs. The concentrations of the key active VOCs species were higher, which should be paid more attention. Probabilistic matrix factorization (PMF) model was used to identify the sources of the VOCs.Solvent use(42.4%) and vehicle(25.8%) were the major sources of VOCs emissions in 2019, followed by industrial process(14.6%), fuel evaporation (7.9%) and biogenic emissions(1.7%). The result suggests that controlling the emission sources above would be an effective strategy to alleviate photochemical ozone pollution. © 2021, Editorial Board of China Environmental Science. All right reserved.
引用
收藏
页码:2993 / 3003
相关论文
共 50 条
  • [41] Source apportionment of volatile organic compounds: Implications to reactivity, ozone formation, and secondary organic aerosol potential
    Zheng, Huang
    Kong, Shaofei
    Chen, Nan
    Niu, Zhenzhen
    Zhang, Ying
    Jiang, Shuning
    Yan, Yingying
    Qi, Shihua
    ATMOSPHERIC RESEARCH, 2021, 249
  • [42] Contribution of Ship Emission to Volatile Organic Compounds Based on One-Year Monitoring at a Coastal Site in the Pearl River Delta Region
    Tong, Mengxue
    Zhang, Yanli
    Zhang, Huiyi
    Chen, Duohong
    Pei, Chenglei
    Guo, Hao
    Song, Wei
    Yang, Xin
    Wang, Xinming
    JOURNAL OF GEOPHYSICAL RESEARCH-ATMOSPHERES, 2024, 129 (02)
  • [43] Decrease in ambient volatile organic compounds during the COVID-19 lockdown period in the Pearl River Delta region, south China
    Pei, Chenglei
    Yang, Weiqiang
    Zhang, Yanli
    Song, Wei
    Xiao, Shaoxuan
    Wang, Jun
    Zhang, Jinpu
    Zhang, Tao
    Chen, Duohong
    Wang, Yujun
    Chen, Yanning
    Wang, Xinming
    SCIENCE OF THE TOTAL ENVIRONMENT, 2022, 823
  • [44] Volatile Organic Compounds in a Petrochemical Region in Arid of NW China: Chemical Reactivity and Source Apportionment
    Zhang, Xiaoxiao
    Ding, Xiang
    Wang, Xinming
    Talifu, Dilinuer
    Wang, Guo
    Zhang, Yanli
    Abulizi, Abulikemu
    ATMOSPHERE, 2019, 10 (11)
  • [45] Temperature dependence and source apportionment of volatile organic compounds (VOCs) at an urban site on the north China plain
    Song, Congbo
    Liu, Baoshuang
    Dai, Qili
    Li, Huairui
    Mao, Hongjun
    ATMOSPHERIC ENVIRONMENT, 2019, 207 : 167 - 181
  • [46] The impacts of photochemical loss on the source apportionment of ambient volatile organic compounds: A case study in Northern China
    Zhang, Jingqiao
    Liu, Zheng
    Wu, Yajun
    Zhu, Yao
    Cao, Ting
    Ling, Deyin
    Wang, Han
    Wang, Shulan
    ATMOSPHERIC ENVIRONMENT, 2024, 333
  • [47] Characterization, source apportionment, and assessment of volatile organic compounds in a typical urban area of southern Xinjiang, China
    Xin Liu
    Jianjiang Lu
    Weijun Li
    Zilong Liu
    Yanbin Tong
    Hao Chen
    Junda Yu
    YanZhou Ding
    Air Quality, Atmosphere & Health, 2022, 15 : 785 - 797
  • [48] Indoor volatile organic compounds in existing densely occupied education buildings of four universities: Source apportionment
    Wei, Pian
    Fu, Nan
    Lv, Xinba
    Jia, Yabin
    Zheng, Xu
    Guan, Jun
    BUILDING AND ENVIRONMENT, 2023, 227
  • [49] Characterization, source apportionment, and assessment of volatile organic compounds in a typical urban area of southern Xinjiang, China
    Liu, Xin
    Lu, Jianjiang
    Li, Weijun
    Liu, Zilong
    Tong, Yanbin
    Chen, Hao
    Yu, Junda
    Ding, Yanzhou
    AIR QUALITY ATMOSPHERE AND HEALTH, 2022, 15 (05) : 785 - 797
  • [50] VOC Characteristics and Their Source Apportionment in the Yangtze River Delta Region during the G20 Summit
    Chen, Cheng
    Wang, Lingrui
    Qin, Yanhong
    Zhang, Yunjiang
    Zheng, Shanshan
    Yang, Yifan
    Jin, Shiguang
    Yang, Xiaoxiao
    ATMOSPHERE, 2021, 12 (07)