Air mass physiochemical characteristics over New Delhi: impacts on aerosol hygroscopicity and cloud condensation nuclei (CCN) formation

被引:26
|
作者
Arub, Zainab [1 ]
Bhandari, Sahil [2 ]
Gani, Shahzad [3 ]
Apte, Joshua S. [3 ]
Hildebrandt Ruiz, Lea [2 ]
Habib, Gazala [1 ]
机构
[1] Indian Inst Technol Delhi, Dept Civil Engn, New Delhi, India
[2] Univ Texas Austin, McKetta Dept Chem Engn, Austin, TX 78712 USA
[3] Univ Texas Austin, Dept Civil Architectural & Environm Engn, Austin, TX 78712 USA
关键词
SIZE-RESOLVED CCN; BIOMASS BURNING SMOKE; MEGA-CITY GUANGZHOU; CHEMICAL-COMPOSITION; MIXING STATE; ORGANIC AEROSOL; POLLUTED AIR; PARTICLE HYGROSCOPICITY; SEASONAL VARIABILITY; ATMOSPHERIC AMMONIA;
D O I
10.5194/acp-20-6953-2020
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
Delhi is a megacity subject to high local anthropogenic emissions and long-range transport of pollutants. This work presents for the first time time-resolved estimates of hygroscopicity parameter (kappa) and cloud condensation nuclei (CCN), spanning for more than a year, derived from chemical composition and size distribution data. As a part of the Delhi Aerosol Supersite (DAS) campaign, the characterization of aerosol composition and size distribution was conducted from January 2017 to March 2018. Air masses originating from the Arabian Sea (AS), Bay of Bengal (BB), and southern Asia (SA) exhibited distinct characteristics of time-resolved sub-micron non-refractory PM1 (NRPM1) species, size distributions, and CCN number concentrations. The SA air mass had the highest NRPM1 loading with high chloride and organics, followed by the BB air mass, which was more contaminated than AS, with a higher organic fraction and nitrate. The primary sources were identified as biomass-burning, thermal power plant emissions, industrial emissions, and vehicular emissions. The average hygroscopicity parameter (kappa), calculated by the mixing rule, was approximately 0.3 (varying between 0.13 and 0.77) for all the air masses (0.32 +/- 0.06 for AS, 0.31 +/- 0.06 for BB, and 0.32 +/- 0.10 for SA). The diurnal variations in kappa were impacted by the chemical properties and thus source activities. The total, Aitken, and accumulation mode number concentrations were higher for SA, followed by BB and AS. The mean values of estimated CCN number concentration (N-CCN; 3669-28926 cm(-3)) and the activated fraction (a(f); 0.19-0.87), for supersaturations varying from 0.1 % to 0.8 %, also showed the same trend, implying that these were highest in SA, followed by those in BB and then those in AS. The size turned out to be more important than chemical composition directly, and the N-CCN was governed by either the Aitken or accumulation modes, depending upon the supersaturation (SS) and critical diameter (D-c). a(f) was governed mainly by the geometric mean diameter (GMD), and such a high a(f) (0.71 +/- 0.14 for the most dominant sub-branch of the SA air mass - R1 - at 0.4 % SS) has not been seen anywhere in the world for a continental site. The high a(f) was a consequence of very low D-c (25-130 nm, for SS ranging from 0.1 % to 0.8 %) observed for Delhi. Indirectly, the chemical properties also impacted CCN and a(f) by impacting the diurnal patterns of Aitken and accumulation modes, kappa and D-c. The high-hygroscopic nature of aerosols, high N-CCN, and high a(f) can severely impact the precipitation patterns of the Indian monsoon in Delhi, impact the radiation budget, and have indirect effects and need to be investigated to quantify this impact.
引用
收藏
页码:6953 / 6971
页数:19
相关论文
共 28 条
  • [1] Impacts of new particle formation on aerosol cloud condensation nuclei (CCN) activity in Shanghai: case study
    Leng, C.
    Zhang, Q.
    Tao, J.
    Zhang, H.
    Zhang, D.
    Xu, C.
    Li, X.
    Kong, L.
    Cheng, T.
    Zhang, R.
    Yang, X.
    Chen, J.
    Qiao, L.
    Lou, S.
    Wang, H.
    Chen, C.
    [J]. ATMOSPHERIC CHEMISTRY AND PHYSICS, 2014, 14 (20) : 11353 - 11365
  • [2] Enhanced organic mass fraction and decreased hygroscopicity of cloud condensation nuclei (CCN) during new particle formation events
    Dusek, U.
    Frank, G. P.
    Curtius, J.
    Drewnick, F.
    Schneider, J.
    Kuerten, A.
    Rose, D.
    Andreae, M. O.
    Borrmann, S.
    Poeschl, U.
    [J]. GEOPHYSICAL RESEARCH LETTERS, 2010, 37
  • [3] Modeling new particle formation during air pollution episodes: Impacts on aerosol and cloud condensation nuclei
    Sotiropoulou, R. E. P.
    Tagaris, E.
    Pilinis, C.
    Anttila, T.
    Kulmala, M.
    [J]. AEROSOL SCIENCE AND TECHNOLOGY, 2006, 40 (07) : 557 - 572
  • [4] Preliminary studies on the variations of cloud condensation nuclei (CCN) and aerosol particles over Thailand and Indonesia and the possible impacts on precipitation formation in clouds
    Bruintjes, RT
    Rasmussen, RM
    Sukarnjanaset, W
    Sudhikoses, P
    Karmini, M
    [J]. CONFERENCE ON CLOUD PHYSICS, 1998, : J9 - J12
  • [5] Organic condensation: a vital link connecting aerosol formation to cloud condensation nuclei (CCN) concentrations
    Riipinen, I.
    Pierce, J. R.
    Yli-Juuti, T.
    Nieminen, T.
    Hakkinen, S.
    Ehn, M.
    Junninen, H.
    Lehtipalo, K.
    Petaja, T.
    Slowik, J.
    Chang, R.
    Shantz, N. C.
    Abbatt, J.
    Leaitch, W. R.
    Kerminen, V. -M.
    Worsnop, D. R.
    Pandis, S. N.
    Donahue, N. M.
    Kulmala, M.
    [J]. ATMOSPHERIC CHEMISTRY AND PHYSICS, 2011, 11 (08) : 3865 - 3878
  • [6] Aerosol- and updraft-limited regimes of cloud droplet formation: influence of particle number, size and hygroscopicity on the activation of cloud condensation nuclei (CCN)
    Reutter, P.
    Su, H.
    Trentmann, J.
    Simmel, M.
    Rose, D.
    Gunthe, S. S.
    Wernli, H.
    Andreae, M. O.
    Poeschl, U.
    [J]. ATMOSPHERIC CHEMISTRY AND PHYSICS, 2009, 9 (18) : 7067 - 7080
  • [7] Cloud condensation nuclei (CCN) activity analysis of low-hygroscopicity aerosols using the aerodynamic aerosol classifier (AAC)
    Gohil, Kanishk
    Asa-Awuku, Akua A.
    [J]. ATMOSPHERIC MEASUREMENT TECHNIQUES, 2022, 15 (04) : 1007 - 1019
  • [8] A study on aerosol-cloud condensation nuclei (CCN) activation over eastern Himalaya in India
    Roy, Arindam
    Chatterjee, Abhijit
    Sarkar, Chirantan
    Das, Sanat Kumar
    Ghosh, Sanjay Kumar
    Raha, Sibaji
    [J]. ATMOSPHERIC RESEARCH, 2017, 189 : 69 - 81
  • [9] Impacts of Aerosol Chemical Composition on Cloud Condensation Nuclei (CCN) Activity during Wintertime in Beijing, China
    Liu, Quan
    Shen, Xiaojing
    Li, Lei
    Sun, Junying
    Liu, Zirui
    Zhu, Weibin
    Zhong, Junting
    Zhang, Yangmei
    Hu, Xinyao
    Liu, Shuo
    Che, Huizheng
    Zhang, Xiaoye
    [J]. REMOTE SENSING, 2023, 15 (17)
  • [10] Characterization of Aerosol Hygroscopicity Over the Northeast Pacific Ocean: Impacts on Prediction of CCN and Stratocumulus Cloud Droplet Number Concentrations
    Schulze, B. C.
    Charan, S. M.
    Kenseth, C. M.
    Kong, W.
    Bates, K. H.
    Williams, W.
    Metcalf, A. R.
    Jonsson, H. H.
    Woods, R.
    Sorooshian, A.
    Flagan, R. C.
    Seinfeld, J. H.
    [J]. EARTH AND SPACE SCIENCE, 2020, 7 (07)