Impacts of water partitioning and polarity of organic compounds on secondary organic aerosol over eastern China

被引:17
|
作者
Li, Jingyi [1 ,2 ]
Zhang, Haowen [2 ]
Ying, Qi [3 ]
Wu, Zhijun [1 ,4 ]
Zhang, Yanli [5 ,6 ,7 ]
Wang, Xinming [5 ,6 ,7 ,8 ]
Li, Xinghua [9 ]
Sun, Yele [10 ]
Hu, Min [1 ,4 ]
Zhang, Yuanhang [1 ,4 ]
Hu, Jianlin [1 ,2 ]
机构
[1] Nanjing Univ Informat Sci & Technol, Collaborat Innovat Ctr Atmospher Environm & Equip, Nanjing 210044, Peoples R China
[2] Nanjing Univ Informat Sci & Technol, Sch Environm Sci & Engn, Jiangsu Key Lab Atmospher Environm Monitoring & P, Nanjing 210044, Peoples R China
[3] Texas A&M Univ, Zachry Dept Civil & Environm Engn, College Stn, TX 77843 USA
[4] Peking Univ, Coll Environm Sci & Engn, State Key Joint Lab Environm Simulat & Pollut Con, Beijing 100871, Peoples R China
[5] Chinese Acad Sci, Guangzhou Inst Geochem, State Key Lab Organ Geochem, Guangzhou 510640, Peoples R China
[6] Chinese Acad Sci, Guangzhou Inst Geochem, Guangdong Key Lab Environm Protect & Resources Ut, Guangzhou 510640, Peoples R China
[7] Chinese Acad Sci, Ctr Excellence Reg Atmospher Environm, Inst Urban Environm, Xiamen 361021, Peoples R China
[8] Univ Chinese Acad Sci, Coll Resources & Environm, Beijing 100049, Peoples R China
[9] Beihang Univ, Sch Space & Environm, Beijing 100191, Peoples R China
[10] Chinese Acad Sci, Inst Atmospher Phys, State Key Lab Atmospher Boundary Layer Phys & Atm, Beijing 100029, Peoples R China
基金
国家重点研发计划; 美国国家科学基金会;
关键词
PARTICULATE MATTER; CHEMICAL-COMPOSITION; SOURCE APPORTIONMENT; OPTICAL DEPTH; RELATING HYGROSCOPICITY; RELATIVE-HUMIDITY; HAZE EPISODES; SOA FORMATION; LIQUID WATER; PM2.5;
D O I
10.5194/acp-20-7291-2020
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
Secondary organic aerosol (SOA) is an important component of fine particular matter (PM2.5). Most air quality models use an equilibrium partitioning method along with the saturation vapor pressure (SVP) of semivolatile organic compounds (SVOCs) to predict SOA formation. However, the models typically assume that the organic particulate matter (OPM) is an ideal mixture and ignore the partitioning of water vapor to OPM. In this study, the Community Multiscale Air Quality model (CMAQ) is updated to investigate the impacts of water vapor partitioning and nonideality of the organic-water mixture on SOA formation during winter (January) and summer (July) of 2013 over eastern China. The updated model treats the partitioning of water vapor molecules into OPM and uses the universal functional activity coefficient (UNIFAC) model to estimate the activity coefficients of species in the organic-water mixture. The modified model can generally capture the observed surface organic carbon (OC) with a correlation coefficient R of 0.7 and the surface organic aerosol (OA) with the mean fractional bias (MFB) and mean fractional error (MFE) of -0.28 and 0.54, respectively. SOA concentration shows significant seasonal and spatial variations, with high concentrations in the North China Plain (NCP), central China, and the Sichuan Basin (SCB) regions during winter (up to 25 mu g m(-3)) and in the Yangtze River Delta (YRD) during summer (up to 16 mu g m(-3)). In winter, SOA decreases slightly in the updated model, with a monthly averaged relative change of 10 %-20 % in the highly concentrated areas, mainly due to organic- water interactions. The monthly averaged concentration of SOA increases greatly in summer, by 20 %-50 % at the surface and 30 %-60 % in the whole column. The increase in SOA is mainly due to the increase in biogenic SOA in inland areas and anthropogenic SOA in coastal areas. As a result, the averaged aerosol optical depth (AOD) is increased by up to 10 %, and the cooling effect of aerosol radiative forcing (ARF) is enhanced by up to 15 % over the YRD in summer. The aerosol liquid water content associated with OPM (ALW(org)) at the surface is relatively high in inland areas in winter and over the ocean in summer, with a monthly averaged concentration of 0.5-3.0 and 5-7 mu g m(-3), respectively. The hygroscopicity parameter kappa of OA based on the kappa-Kohler theory is determined using the modeled ALW(org). The correlation of kappa with the O : C ratio varies significantly across different cities and seasons. Analysis of two representative cities, Jinan (in the NCP) and Nanjing (in the YRD), shows that the impacts of water partitioning and nonideality of the organic-water mixture on SOA are sensitive to temperature, relative humidity (RH), and the SVP of SVOCs. The two processes exhibit opposite impacts on SOA in eastern China. Water uptake increases SOA by up to 80 % in the organic phase, while including nonunity activity coefficients decreases SOA by up to 50 %. Our results indicate that both water partitioning into OPM and the activity coefficients of the condensed organics should be considered in simulating SOA formation from gas particle partitioning, especially in hot and humid environments.
引用
收藏
页码:7291 / 7306
页数:16
相关论文
共 50 条
  • [31] Secondary Organic Aerosol Formation over Coastal Ocean: Inferences from Atmospheric Water-Soluble Low Molecular Weight Organic Compounds
    Bikkina, Srinivas
    Kawamura, Kimitaka
    Sarin, Manmohan
    ENVIRONMENTAL SCIENCE & TECHNOLOGY, 2017, 51 (08) : 4347 - 4357
  • [32] Impacts of Sulfate Seed Acidity and Water Content on Isoprene Secondary Organic Aerosol Formation
    Wong, Jenny P. S.
    Lee, Alex K. Y.
    Abbatt, Jonathan P. D.
    ENVIRONMENTAL SCIENCE & TECHNOLOGY, 2015, 49 (22) : 13215 - 13221
  • [33] Particle partitioning potential of organic compounds is highest in the Eastern US and driven by anthropogenic water
    Carlton, A. G.
    Turpin, B. J.
    ATMOSPHERIC CHEMISTRY AND PHYSICS, 2013, 13 (20) : 10203 - 10214
  • [34] Modeling secondary organic aerosol formation through cloud processing of organic compounds
    Chen, J.
    Griffin, R. J.
    Grini, A.
    Tulet, P.
    ATMOSPHERIC CHEMISTRY AND PHYSICS, 2007, 7 (20) : 5343 - 5355
  • [35] Intermediate-Volatility Organic Compounds: A Large Source of Secondary Organic Aerosol
    Zhao, Yunliang
    Hennigan, Christopher J.
    May, Andrew A.
    Tkacik, Daniel S.
    de Gouw, Joost A.
    Gilman, Jessica B.
    Kuster, William C.
    Borbon, Agnes
    Robinson, Allen L.
    ENVIRONMENTAL SCIENCE & TECHNOLOGY, 2014, 48 (23) : 13743 - 13750
  • [36] Organic peroxides' gas-particle partitioning and rapid heterogeneous decomposition on secondary organic aerosol
    Li, Huan
    Chen, Zhongming
    Huang, Liubin
    Huang, Dao
    ATMOSPHERIC CHEMISTRY AND PHYSICS, 2016, 16 (03) : 1837 - 1848
  • [37] Secondary organic aerosol formed by condensing anthropogenic vapours over China's megacities
    Nie, Wei
    Yan, Chao
    Huang, Dan Dan
    Wang, Zhe
    Liu, Yuliang
    Qiao, Xiaohui
    Guo, Yishuo
    Tian, Linhui
    Zheng, Penggang
    Xu, Zhengning
    Li, Yuanyuan
    Xu, Zheng
    Qi, Ximeng
    Sun, Peng
    Wang, Jiaping
    Zheng, Feixue
    Li, Xiaoxiao
    Yin, Rujing
    Dallenbach, Kaspar R.
    Bianchi, Federico
    Petaja, Tuukka
    Zhang, Yanjun
    Wang, Mingyi
    Schervish, Meredith
    Wang, Sainan
    Qiao, Liping
    Wang, Qian
    Zhou, Min
    Wang, Hongli
    Yu, Chuan
    Yao, Dawen
    Guo, Hai
    Ye, Penglin
    Lee, Shuncheng
    Li, Yong Jie
    Liu, Yongchun
    Chi, Xuguang
    Kerminen, Veli-Matti
    Ehn, Mikael
    Donahue, Neil M.
    Wang, Tao
    Huang, Cheng
    Kulmala, Markku
    Worsnop, Douglas
    Jiang, Jingkun
    Ding, Aijun
    NATURE GEOSCIENCE, 2022, 15 (04) : 255 - +
  • [38] AN ABSORPTION-MODEL OF THE GAS AEROSOL PARTITIONING INVOLVED IN THE FORMATION OF SECONDARY ORGANIC AEROSOL
    PANKOW, JF
    ATMOSPHERIC ENVIRONMENT, 1994, 28 (02) : 189 - 193
  • [39] Age evolution of secondary organic aerosol: Impacts of regional transport and aerosol volatility
    Zhao, Bingnan
    Su, Fangcheng
    Wang, Ke
    Ying, Qi
    Zhang, Ruiqin
    Xu, Qixiang
    SCIENCE OF THE TOTAL ENVIRONMENT, 2023, 904
  • [40] Secondary organic aerosol formed by condensing anthropogenic vapours over China’s megacities
    Wei Nie
    Chao Yan
    Dan Dan Huang
    Zhe Wang
    Yuliang Liu
    Xiaohui Qiao
    Yishuo Guo
    Linhui Tian
    Penggang Zheng
    Zhengning Xu
    Yuanyuan Li
    Zheng Xu
    Ximeng Qi
    Peng Sun
    Jiaping Wang
    Feixue Zheng
    Xiaoxiao Li
    Rujing Yin
    Kaspar R. Dallenbach
    Federico Bianchi
    Tuukka Petäjä
    Yanjun Zhang
    Mingyi Wang
    Meredith Schervish
    Sainan Wang
    Liping Qiao
    Qian Wang
    Min Zhou
    Hongli Wang
    Chuan Yu
    Dawen Yao
    Hai Guo
    Penglin Ye
    Shuncheng Lee
    Yong Jie Li
    Yongchun Liu
    Xuguang Chi
    Veli-Matti Kerminen
    Mikael Ehn
    Neil M. Donahue
    Tao Wang
    Cheng Huang
    Markku Kulmala
    Douglas Worsnop
    Jingkun Jiang
    Aijun Ding
    Nature Geoscience, 2022, 15 : 255 - 261