Bimodal distribution of size-resolved particle effective density: results from a short campaign in a rural environment over the North China Plain
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Published:2022-02-14
Issue:3
Volume:22
Page:2029-2047
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ISSN:1680-7324
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Container-title:Atmospheric Chemistry and Physics
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language:en
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Short-container-title:Atmos. Chem. Phys.
Author:
Zhou Yaqing, Ma Nan, Wang Qiaoqiao, Wang Zhibin, Chen Chunrong, Tao Jiangchuan, Hong Juan, Peng Long, He Yao, Xie Linhong, Zhu Shaowen, Zhang Yuxuan, Li GuoORCID, Xu Wanyun, Cheng PengORCID, Kuhn Uwe, Zhou Guangsheng, Fu PingqingORCID, Zhang Qiang, Su HangORCID, Cheng YafangORCID
Abstract
Abstract. Effective density is one of the most important physical
properties of atmospheric particles. It is closely linked to particle
chemical composition and morphology and could provide special information
on particle emissions and aging processes. In this study, size-resolved
particle effective density was measured with a combined differential mobility analyzer–centrifugal particle mass analyzer–condensation particle counter (DMA–CPMA–CPC) system
in autumn 2019 as part of the Multiphase chemistry experiment in Fogs and
Aerosols in the North China Plain (McFAN). With a newly developed flexible
Gaussian fit algorithm, frequent (77 %–87 %) bimodal distribution of particle effective density is identified, with a low-density mode (named
sub-density mode) accounting for 22 %–27 % of the total number of observed
particles. The prevalence of the sub-density mode is closely related to
fresh black carbon (BC) emissions. The geometric mean for the main density
mode (ρ‾eff,main) increases from
1.18 ± 0.10 g cm−3 (50 nm) to 1.37 ± 0.12 g cm−3 (300 nm) due to a larger
fraction of high-density components and a more significant restructuring
effect at large particle sizes but decreases from 0.89 ± 0.08 g cm−3 (50 nm) to 0.62 ± 0.12 g cm−3 (300 nm) for the sub-density mode (ρ‾eff,sub), which could be mainly ascribed to the agglomerate effect of BC. ρ‾eff,main and ρ‾eff,sub show similar diurnal cycles with peaks
in the early afternoon, mainly attributed to the increasing mass fraction of high material density components associated with secondary aerosol
production, especially of secondary inorganic aerosol (SIA). To investigate
the impact of chemical composition, bulk particle effective density was
calculated based on measured chemical composition (ρeff,ACSM) and compared to the average effective density at 300 nm (ρ‾eff,tot,300nm). The best agreement between the two densities is achieved when assuming a BC effective density of 0.60 g cm−3. The particle effective density is highly dependent on SIA and BC
mass fractions. The influence of BC on the effective density is even
stronger than SIA, implying the importance and necessity of including BC in
the estimate of effective density for ambient particles.
Funder
National Natural Science Foundation of China Guangdong Innovative and Entrepreneurial Research Team Program Special Fund Project for Science and Technology Innovation Strategy of Guangdong Province
Publisher
Copernicus GmbH
Subject
Atmospheric Science
Reference74 articles.
1. Abegglen, M., Durdina, L., Brem, B., Wang, J., Rindlisbacher, T., Corbin,
J., Lohmann, U., and Sierau, B.: Effective density and mass–mobility
exponents of particulate matter in aircraft turbine exhaust: Dependence on
engine thrust and particle size, J. Aerosol Sci., 88, 135–147,
https://doi.org/10.1016/j.jaerosci.2015.06.003, 2015. 2. Bahreini, R., Keywood, M. D., Ng, N. L., Varutbangkul, V., Gao, S., Flagan,
R. C., Seinfeld, J. H., Worsnop, D., and Jimenez<span id="page2044"/>, J.: Measurements of
secondary organic aerosol from oxidation of cycloalkenes, terpenes, and
m-xylene using an Aerodyne aerosol mass spectrometer, Environ. Sci.
Technol., 39, 5674–5688, https://doi.org/10.1021/es048061a, 2005. 3. Baron, P. A. and Willeke, K.: Aerosol measurement: Principles, techniques
and applications, 2nd edn., John Wiley and Sons, New York, ISBN 0471356360, 2001. 4. Cha, Y. and Olofsson, U.: Effective density of airborne particles in a
railway tunnel from field measurements of mobility and aerodynamic size
distributions, Aerosol Sci. Tech., 52, 886–899,
https://doi.org/10.1080/02786826.2018.1476750, 2018. 5. Cheng, Y. F., Su, H., Rose, D., Gunthe, S. S., Berghof, M., Wehner, B., Achtert, P., Nowak, A., Takegawa, N., Kondo, Y., Shiraiwa, M., Gong, Y. G., Shao, M., Hu, M., Zhu, T., Zhang, Y. H., Carmichael, G. R., Wiedensohler, A., Andreae, M. O., and Pöschl, U.: Size-resolved measurement of the mixing state of soot in the megacity Beijing, China: diurnal cycle, aging and parameterization, Atmos. Chem. Phys., 12, 4477–4491, https://doi.org/10.5194/acp-12-4477-2012, 2012.
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