The effectiveness of the coagulation sink of 3–10 nm atmospheric particles
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Published:2022-09-07
Issue:17
Volume:22
Page:11529-11541
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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:
Cai Runlong, Häkkinen EllaORCID, Yan ChaoORCID, Jiang Jingkun, Kulmala MarkkuORCID, Kangasluoma JuhaORCID
Abstract
Abstract. As a major source of ultrafine particles, new particle
formation (NPF) occurs frequently in various environments. However, the
survival of new particles and the frequent occurrence of NPF events in
polluted environments have long been perplexing, since new particles are
expected to be scavenged by high coagulation sinks. Towards solving these
problems, we establish an experimental method and directly measure the
effectiveness of the size-dependent coagulation sink of monodisperse 3–10 nm
particles in well-controlled chamber experiments. Based on the chamber
experiments and long-term atmospheric measurements from Beijing, we then
discuss the survival of new particles in polluted environments. In the
chamber experiments, the measured coagulation sink of 3–10 nm particles
increases significantly with a decreasing particle size, whereas it is not
sensitive to the compositions of test particles. Comparison between the
measured coagulation coefficient with theoretical predictions shows that
almost every coagulation leads to the scavenging of one particle, and the
coagulation sink exceeds the hard-sphere kinetic limit due to van der Waals
attractive force. For urban Beijing, the effectiveness of the coagulation sink
and a moderate or high (e.g., > 3 nm h−1) growth rate of new
particles can explain the occurrence of measured NPF events; the moderate
growth rate further implies that, in addition to gaseous sulfuric acid, other
gaseous precursors also contribute to the growth of new particles.
Funder
Academy of Finland National Natural Science Foundation of China Jane ja Aatos Erkon Säätiö
Publisher
Copernicus GmbH
Subject
Atmospheric Science
Reference59 articles.
1. Alam, M. K.: The Effect of van der Waals and Viscous Forces on Aerosol
Coagulation, Aerosol Sci. Tech., 6, 41–52, https://doi.org/10.1080/02786828708959118, 1987. 2. Bianchi, F., Tröstl, J., Junninen, H., Frege, C., Henne, S., Hoyle, C.
R., Molteni, U., Herrmann, E., Adamov, A., Bukowiecki, N., Chen, X.,
Duplissy, J., Gysel, M., Hutterli, M., Kangasluoma, J., Kontkanen, J.,
Kürten, A., Manninen, H. E., Münch, S., Peräkylä, O.,
Petäjä, T., Rondo, L., Williamson, C., Weingartner, E., Curtius, J.,
Worsnop, D. R., Kulmala, M., Dommen, J., and Baltensperger, U.: New particle
formation in the free troposphere: A question of chemistry and timing,
Science, 352, 1109–1112, https://doi.org/10.1126/science.aad5456, 2016. 3. Cai, R.: Data for The effectiveness of coagulation sink of 3–10 nm atmospheric particles, Zenodo [data set], https://doi.org/10.5281/zenodo.6982767. 2022. 4. Cai, R. and Jiang, J.: A new balance formula to estimate new particle formation rate: reevaluating the effect of coagulation scavenging, Atmos. Chem. Phys., 17, 12659–12675, https://doi.org/10.5194/acp-17-12659-2017, 2017. 5. Cai, R., Chen, D.-R., Hao, J., and Jiang, J.: A miniature cylindrical
differential mobility analyzer for sub-3 nm particle sizing, J.
Aerosol Sci., 106, 111–119, https://doi.org/10.1016/j.jaerosci.2017.01.004, 2017a.
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