Process-based VOCs source profiles and contributions to ozone formation and carcinogenic risk in a typical chemical synthesis pharmaceutical industry in China

被引:68
作者
Cheng, Nana [1 ]
Jing, Deji [1 ]
Zhang, Cheng [1 ]
Chen, Ziwei [1 ]
Li, Wei [1 ]
Li, Sujing [1 ]
Wang, Qiaoli [1 ]
机构
[1] Zhejiang Univ, Inst Ind Ecol & Environm, Coll Chem & Biol Engn, Key Lab Biomass Chem Engn,Minist Educ, Yuquan Campus, Hangzhou 310027, Peoples R China
关键词
Chemical synthesis pharmaceutical industry; VOCs; Source profiles; Ozone formation potentials; Carcinogenic risk potentials; VOLATILE ORGANIC-COMPOUNDS; EMISSION CHARACTERISTICS; SOURCE APPORTIONMENT; RIVER DELTA;
D O I
10.1016/j.scitotenv.2020.141899
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
The chemical synthesis pharmaceutical industry plays an important role in VOCs emissions from industrial sources, which has caused increasing concern. In this study, the process-based pollution characteristics of VOCs from the chemical synthesis pharmaceutical industry were investigated in the Yangtze River Delta, China. A total of 16 samples were collected from 12 process units (including 5 production lines and 2 postprocessing units) and 2 factory boundary sites. 116 VOCs species were analyzed and sorted into 6 classes, including alkanes, alkenes, acetylene, aromatics, halocarbons and oxygenated VOCs (OVOCs). The concentration of stack VOCs was 3.37 x 10(4) mu g.m(-3), while the concentration of fugitive VOCs from other process units ranged from 827 mu g.m(-3) to 2.11 x 10(4) mu g.m(-3). Aromatics, halocarbons and OVOCs accounted for a relatively high proportion in all process units. Process-based source profiles of each process unit were compiled. Generally, toluene, dichloromethane, ethanol, methanol and acetone were the most abundant species in all process units. Furthermore, the process-based ozone formation potentials (OFPs) and carcinogenic risk potentials (CRPs) were calculated, suggesting that toluene, methanol, ethanol and m/p-xylene should be preferentially controlled to reduce the OFPs, while acetaldehyde and chloroform were the priority control species to reduce the CRPs. Further discussion showed that ambient VOCs pollution at the factory boundary was affected by both stack and fugitive sources from the production process. The source profiles built in this study are necessary addition to the current profiles and are a good reference to study VOCs emission characteristics from the perspective of the process procedure. The results obtained from this work provide a guidance for effective VOCs abatement strategies and further lay a foundation for related research on VOCs in the chemical synthesis pharmaceutical industry. (C) 2020 Elsevier B.V. All rights reserved.
引用
收藏
页数:12
相关论文
共 31 条
[1]   Atmospheric chemistry of VOCs and NOx [J].
Atkinson, R .
ATMOSPHERIC ENVIRONMENT, 2000, 34 (12-14) :2063-2101
[2]   Development of the SAPRC-07 chemical mechanism [J].
Carter, William P. L. .
ATMOSPHERIC ENVIRONMENT, 2010, 44 (40) :5324-5335
[3]  
CARTER WPL, 1994, J AIR WASTE MANAGE, V44, P881
[4]  
Du G., 2020, ENV MONIT FOREWARNIN, V12, P1
[5]   A large source of low-volatility secondary organic aerosol [J].
Ehn, Mikael ;
Thornton, Joel A. ;
Kleist, Einhard ;
Sipila, Mikko ;
Junninen, Heikki ;
Pullinen, Iida ;
Springer, Monika ;
Rubach, Florian ;
Tillmann, Ralf ;
Lee, Ben ;
Lopez-Hilfiker, Felipe ;
Andres, Stefanie ;
Acir, Ismail-Hakki ;
Rissanen, Matti ;
Jokinen, Tuija ;
Schobesberger, Siegfried ;
Kangasluoma, Juha ;
Kontkanen, Jenni ;
Nieminen, Tuomo ;
Kurten, Theo ;
Nielsen, Lasse B. ;
Jorgensen, Solvejg ;
Kjaergaard, Henrik G. ;
Canagaratna, Manjula ;
Dal Maso, Miikka ;
Berndt, Torsten ;
Petaja, Tuukka ;
Wahner, Andreas ;
Kerminen, Veli-Matti ;
Kulmala, Markku ;
Worsnop, Douglas R. ;
Wildt, Juergen ;
Mentel, Thomas F. .
NATURE, 2014, 506 (7489) :476-+
[6]  
He Hua-fei, 2012, China Environmental Science, V32, P2271
[7]   Characteristics and reactivity of volatile organic compounds from non-coal emission sources in China [J].
He, Qiusheng ;
Yan, Yulong ;
Li, Hongyan ;
Zhang, Yiqiang ;
Chen, Laiguo ;
Wang, Yuhang .
ATMOSPHERIC ENVIRONMENT, 2015, 115 :153-162
[8]   Ambient VOCs in residential areas near a large-scale petrochemical complex: Spatiotemporal variation, source apportionment and health risk [J].
Hsu, Chin Yu ;
Chiang, Hung-Che ;
Shie, Ruei-Hao ;
Ku, Chun-Hung ;
Lin, Tzu-Yu ;
Chen, Mu-Jean ;
Chen, Nai-Tzu ;
Chen, Yu-Cheng .
ENVIRONMENTAL POLLUTION, 2018, 240 :95-104
[9]   Source apportionment of surface ozone in the Yangtze River Delta, China in the summer of 2013 [J].
Li, L. ;
An, J. Y. ;
Shi, Y. Y. ;
Zhou, M. ;
Yan, R. S. ;
Huang, C. ;
Wang, H. L. ;
Lou, S. R. ;
Wang, Q. ;
Lu, Q. ;
Wu, J. .
ATMOSPHERIC ENVIRONMENT, 2016, 144 :194-207
[10]   Emission profiles, ozone formation potential and health-risk assessment of volatile organic compounds in rubber footwear industries in China [J].
Li, Qianqian ;
Su, Guijin ;
Li, Chuanqi ;
Wang, Mengjing ;
Tan, Li ;
Gao, Lirong ;
Wu, Mingge ;
Wang, Qingliang .
JOURNAL OF HAZARDOUS MATERIALS, 2019, 375 :52-60