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Sci Total Environ


Title:"Secondary aerosol formation from a Chinese gasoline vehicle: Impacts of fuel (E10, gasoline) and driving conditions (idling, cruising)"
Author(s):Wang H; Guo S; Yu Y; Shen R; Zhu W; Tang R; Tan R; Liu K; Song K; Zhang W; Zhang Z; Shuai S; Xu H; Zheng J; Chen S; Li S; Zeng L; Wu Z;
Address:"State Key Joint Laboratory of Environmental Simulation and Pollution Control, International Joint Laboratory for Regional Pollution Control, Ministry of Education (IJRC), College of Environmental Sciences and Engineering, Peking University, Beijing 100871, PR China. State Key Joint Laboratory of Environmental Simulation and Pollution Control, International Joint Laboratory for Regional Pollution Control, Ministry of Education (IJRC), College of Environmental Sciences and Engineering, Peking University, Beijing 100871, PR China; Collaborative Innovation Center of Atmospheric Environment and Equipment Technology, Nanjing University of Information Science & Technology, Nanjing 210044, PR China. Electronic address: songguo@pku.edu.cn. State Key Laboratory of Automotive Safety and Energy, Tsinghua University, Beijing 100871, PR China. Chinese Academy of Meteorological Science, Beijing 100871, PR China. State Key Joint Laboratory of Environmental Simulation and Pollution Control, International Joint Laboratory for Regional Pollution Control, Ministry of Education (IJRC), College of Environmental Sciences and Engineering, Peking University, Beijing 100871, PR China; Collaborative Innovation Center of Atmospheric Environment and Equipment Technology, Nanjing University of Information Science & Technology, Nanjing 210044, PR China"
Journal Title:Sci Total Environ
Year:2021
Volume:20210706
Issue:
Page Number:148809 -
DOI: 10.1016/j.scitotenv.2021.148809
ISSN/ISBN:1879-1026 (Electronic) 0048-9697 (Linking)
Abstract:"Chassis dynamometer experiments were conducted to investigate the effect of vehicle speed and usage of ethanol-blended gasoline (E10) on formation and evolution of gasoline vehicular secondary organic aerosol (SOA) using a Gothenburg Potential Aerosol Mass (Go: PAM) reactor. The SOA forms rapidly, and its concentration exceeds that of primary organic aerosol (POA) at an equivalent photochemical age (EPA) of ~1 day. The particle effective densities grow from 0.62 +/- 0.02 g cm(-3) to 1.43 +/- 0.07 g cm(-3) with increased hydroxyl radical (OH) exposure. The maximum SOA production under idling conditions (4259-7394 mg kg-fuel(-1)) is ~20 times greater than under cruising conditions. There was no statistical difference between SOA formation from pure gasoline and its formation from E10. The slopes in Van Krevelen diagram indicate that the formation pathways of bulk SOA includes the addition of both alcohol/peroxide functional groups and carboxylic acid formation from fragmentation. A closure estimation of SOA based on bottom-up and top-down methods shows that only 16%-38% of the measured SOA can be explained by the oxidation of measured volatile organic compounds (VOCs), suggesting the existence of missing precursors, e.g. unmeasured VOCs and probably semivolatile or intermediate volatile organic compounds (S/IVOCs). Our results suggest that applying parameters obtained from unified driving cycles to model SOA concentrations may lead to large discrepancies between modeled and ambient vehicular SOA. No reduction in vehicular ;SOA production is realized by replacing normal gasoline with E10"
Keywords:Aerosols/analysis *Air Pollutants/analysis China *Gasoline/analysis Vehicle Emissions/analysis Driving conditions E10 Go:PAM reactor SOA estimation SOA formation potential;
Notes:"MedlineWang, Hui Guo, Song Yu, Ying Shen, Ruizhe Zhu, Wenfei Tang, Rongzhi Tan, Rui Liu, Kefan Song, Kai Zhang, Wenbin Zhang, Zhou Shuai, Shijin Xu, Hongming Zheng, Jing Chen, Shiyi Li, Shaomeng Zeng, Limin Wu, Zhijun eng Netherlands 2021/07/31 Sci Total Environ. 2021 Nov 15; 795:148809. doi: 10.1016/j.scitotenv.2021.148809. Epub 2021 Jul 6"

 
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