A Review of Thermo- and Diffusio-Phoresis in the Atmospheric Aerosol Scavenging Process. Part 2: Ice Crystal and Snow Scavenging — Oak Academic Publishing
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A Review of Thermo- and Diffusio-Phoresis in the Atmospheric Aerosol Scavenging Process. Part 2: Ice Crystal and Snow Scavenging
Via E. De Marchi, Reggio Emilia, Italy
,
Nubila Sas, Bologna, Italy
,
Institute of Atmospheric Sciences and Climate, CNR-ISAC, Bologna, Italy
,
Institute of Atmospheric Sciences and Climate, CNR-ISAC, Bologna, Italy
1 Via E. De Marchi, Reggio Emilia, Italy
2 Nubila Sas, Bologna, Italy
3 Institute of Atmospheric Sciences and Climate, CNR-ISAC, Bologna, Italy
4 Institute of Atmospheric Sciences and Climate, CNR-ISAC, Bologna, Italy
The role of phoretic forces in the identification of particles acting as ice nuclei in mixed phase cloud is discussed. A method used to identify the effective ice nucleating particles is to sample ice crystals, which are afterwards sublimated, and to examine the particles remaining after evaporation. The procedure takes into account only crystal with a maximum diameter of 20 μm, by assuming that small crystals do not scavenge aerosol during growth, and therefore that crystals contain only the effective nucleating particles. This assumption is questionable, however, as experiments have shown that even small ice crystals can scavenge aerosol. Another approach has been to compare the number and elemental composition of residual particles in small ice crystals and of aerosol near the cloud. By considering as example soot and black carbon aerosol, contradictory conclusions on their importance in the processes of ice nucleation have been reported in the literature. We suggest that, in addition to physico-chemical properties of soot/carbon aerosol particles, even the mi crophysical and environmental parameters involved in the transition of aerosol from gas phase to ice crystals in cloud should be considered. The contribution of phoretic forces should also be considered. After initial growth ice crystals can continue to grow by water vapour diffusion. Laboratory experiments confirm the contribution of diffusiophoresis with Stefan flow in the scavenging by snow crystals up to 3 mm in diameter. The particle scavenging efficiency of snow crystals is related to crystalline shape and depends on air relative humidity and temperature.
Pruppacher, H.R. and Klett, J.D. (1997) Microphysics of Clouds and Precipitation. 2nd Edition, Kluwer Academic, Dordrecht, 954.
Santachiara, G., Prodi, F. and Belosi, F. (2012) A Review of Termo- and Diffusio-Phoresis in the Atmospheric Aerosol Scavenging Process: Part 1: Drop Scavenging. Atmospheric and Climate Sciences, 2, 148-158. https://doi.org/10.4236/acs.2012.22016
Rosinski, J. (1967) A Possible Role of Ice-Forming Nuclei in Rain Formation. Journal of Applied Meteorology and Climatology, 6, 1062-1065. https://doi.org/10.1175/1520-0450(1967)006 2.0.CO;2
Calvert, S. and Jhaveri, N.C. (1974) Flux Force/Condensation Scrubbing. Journal of the Air Pollution Control Association, 24, 946-951. https://doi.org/10.1080/00022470.1974.10469994
Feng Y., Li, Y., Cui, L., Yan, L., Zhao, C. and Dong, Y. (2019) Cold Condensing Scrubbing Method for Fine Particle Reduction from Saturated Flue Gas. Energy, 171, 1193-1205. https://doi.org/10.1016/j.energy.2019.01.065
Prodi, F., Santachiara, G., Belosi, F., Vedernikov, A. and Balapanov, D. (2014) Phoretic Forces on Aerosol Particles Surrounding an Evaporating Droplet in Microgravity Conditions. Atmospheric Research, 142, 40-44. https://doi.org/10.1016/j.atmosres.2013.09.001
Marcolli, C. (2014) Deposition Nucleation Viewed as Homogeneous or Immersion Freezing in Pores and Cavities. Atmospheric Chemistry and Physics, 14, 2071-2104. https://doi.org/10.5194/acp-14-2071-2014
Kanji, Z.A., Ladino, L.A., Heike, W, Boose, Y., Burkert-Kohn, M., Cziczo, D.J. and Krämer, M. (2017) Overview of Ice Nucleating Particles. Meteorological Monographs, 58, 1.1-1.33. https://doi.org/10.1175/AMSMONOGRAPHS-D-16-0006.1
Wilson, T.W., et al. (2015) A Marine Biogenic Source of Atmospheric Ice-Nucleating Particles. Nature, 525, 234-238. https://doi.org/10.1038/nature14986
Gong X., et al. (2020) Characterization of Aerosol Particles at Cabo Verde Close to Sea Level and at the Cloud Level—Part 2: Ice-Nucleating Particles in Air, Cloud and Seawater. Atmospheric Chemistry and Physics, 20, 1451-1468. https://doi.org/10.5194/acp-20-1451-2020
Si, M., et al. (2018) Ice-Nucleating Ability of Aerosol Particles and Possible Sources at Three Coastal Marine Sites. Atmospheric Chemistry and Physics, 18, 15669-15685. https://doi.org/10.5194/acp-18-15669-2018
Kumai, M. (1976) Identification of Nuclei and Concentrations of Chemical Species in Snow Crystals Sampled at the South Pole. Journal of the Atmospheric Sciences, 33, 833-841. https://doi.org/10.1175/1520-0469(1976)033 2.0.CO;2
Kumai, M. and Francis, K.E. (1962) Nuclei in Snow and Ice Crystals on the Greenland Ice Cap under Natural and Artificially Stimulated Conditions. Journal of the Atmospheric Sciences, 19, 474-481. https://doi.org/10.1175/1520-0469(1962)019 2.0.CO;2
Kreidenweiss, S.M., Chen, Y., Rogers, D.C. and DeMott, P.J. (1998) Isolating and Identifying Atmospheric Ice-Nucleating Aerosols: A New Technique. Atmospheric Research, 46, 263-278. https://doi.org/10.1016/S0169-8095(97)00068-9
Cziczo, D.J., et al. (2017) Measurements of Ice Nucleating Particles and Ice Residuals. Meteorological Monographs, 58, 8.1-8.13. https://doi.org/10.1175/AMSMONOGRAPHS-D-16-0008.1
Bahreini, R., et al. (2003) Aircraft-Based Aerosol Size and Composition Measurements during ACE-Asia Using an Aerodyne Aerosol Mass Spectrometer. Journal of Geophysical Research, 108, Article No. 8645. https://doi.org/10.1029/2002JD003226
Cziczo, D.J., Murphy, D.M., Hudson, P.K. and Thomson, D.S. (2004) Single Particle Measurements of the Chemical Composition of Cirrus Ice Residue during CRYSTAL-FACE. Journal of Geophysical Research, 109, Article No. D04201. https://doi.org/10.1029/2003JD004032
Schmidt, S., et al. (2017) Online Single Particle Analysis of Ice Particle Residuals from Mountain-Top Mixed-Phase Clouds Using Laboratory Derived Particle Type Assignment. Atmospheric Chemistry and Physics, 17, 575-594. https://doi.org/10.5194/acp-17-575-2017
Cozic, J., et al. 2008) Black Carbon Enrichment in Atmospheric Ice Particle Residuals Observed in Lower Tropospheric Mixed Phase Clouds. Journal of Geophysical Research, 113, Article No. D15209. https://doi.org/10.1029/2007JD009266
Ebert, M., Worringen, A., Benker, N., Mertes, S., Weingartner, E. and Weinbruch, S. (2011) Chemical Composition and Mixing-State of Ice Residuals Sampled within Mixed Phase Clouds. Atmospheric Chemistry and Physics, 11, 2805-2816. https://doi.org/10.5194/acp-11-2805-2011
Fukuta, N. and Takahashi, T. (1999) The Growth of Atmospheric Ice Crystals: A Summary of Findings in Vertical Supercooled Cloud Tunnel Studies. Journal of the Atmospheric Sciences, 56, 1963-1979. https://doi.org/10.1175/1520-0469(1999)056 2.0.CO;2
Mertes, S., et al. (2007) Counterflow Virtual Impactor Based Collection of Small Ice Particles in Mixed-Phase Clouds for the Physico-Chemical Characterization of Tropospheric Ice Nuclei: Sampler Description and First Case Study. Aerosol Science and Technology, 41, 848-864. https://doi.org/10.1080/02786820701501881
Santachiara, G., Belosi, F. and Prodi F. (2016) Ice Crystal Precipitation at Dome C Site (East Antarctica). Atmospheric Research, 167, 108-117. https://doi.org/10.1016/j.atmosres.2015.08.006
Waldmann, L. and Schmitt, K.H. (1966) Thermophoresis and Diffusiophoresis of Aerosol. Aerosol Science Academic Press, London, 163-194.
Santachiara, G., Piazza, M. and Belosi, F. (2018) Aerosol Scavenging during the Early Growth Stage of Ice Crystal Formation. Atmospheric and Climate Sciences, 8, 395-409. https://doi.org/10.4236/acs.2018.84026
Kamphus, M., et al. (2010) Chemical Composition of Ambient Aerosol, Ice Residues and Cloud Droplet Residues in Mixed-Phase Clouds: Single Particle Analysis during the Cloud and Aerosol Characterization Experiment (CLACE 6). Atmospheric Chemistry and Physics, 10, 8077-8095. https://doi.org/10.5194/acp-10-8077-2010
Worringen, A., et al. (2015) Single-Particle Characterization of Ice-Nucleating Particles and Ice Particle Residuals Sampled by Three Different Techniques. Atmospheric Chemistry and Physics, 15, 4161-4178. https://doi.org/10.5194/acp-15-4161-2015
Vergara-Temprado, J., et al. (2018) Is Black Carbon an Unimportant Ice-Nucleating Particle in Mixed-Phase Clouds? Journal of Geophysical Research: Atmospheres, 123, 4273-4283. https://doi.org/10.1002/2017JD027831
Friedman, B., Kulkarni, G., Beránek, J., Zelenyuk, A., Thornton, J.A. and Cziczo, D.J. (2011) Ice Nucleation and Droplet Formation by Bare and Coated Soot Particles. Journal of Geophysical Research, 116, Article No. D17203. https://doi.org/10.1029/2011JD015999
Schill, G.P., et al. (2016) Ice-Nucleating Particle Emissions from Photochemically Aged Diesel and Biodiesel Exhaust. Geophysical Research Letters, 43, 5524-5531. https://doi.org/10.1002/2016GL069529
Marth, F. Marcolli, C., David, R.O., Grönquist P., Meier, E.J.B., Lohman, U. and Kanji, K.A. (2018) Ice Nucleation Abilities of Soot Particles Determined with the Horizontal Ice Nucleation Chamber. Atmospheric Chemistry and Physics, 18, 13363-13392. https://doi.org/10.5194/acp-18-13363-2018
Kanji, Z.A., Welti, A., Corbin, J.C. and Mensah, A. (2020) Black Carbon Particles Do Not Matter for Immersion Mode Ice Nucleation. Geophysical Research Letters, 46, e2019GL086764. https://doi.org/10.1029/2019GL086764
Pratt, K.A., et al. (2009) In Situ Detection of Biological Particles in Cloud Ice-Crystals. Nature Geoscience, 2, 398-401. https://doi.org/10.1038/ngeo521
Kupiszewski, P., et al. (2016) Ice Residual Properties in Mixed-Phase Clouds at the High-Alpine Jungfraujoch Site. Journal of Geophysical Research: Atmosphere, 121, 12343-12362. https://doi.org/10.1002/2016JD024894
Hammer, S.E., Mertes, S., Schneider, J., Ebert, M., Kandler,K. and Weinbruch, S. (2018) Composition of Ice Particle Residuals in Mixed-Phase Clouds at Jungfraujoch (Switzerland): Enrichment and Depletion of Particle Groups Relative to Total Aerosol. Atmospheric Chemistry and Physics, 18, 13987-14003. https://doi.org/10.5194/acp-18-13987-2018
Schill, G.P., et al. (2020) The Contribution of Black Carbon to Global Ice Nucleating Particle Concentrations Relevant to Mixed-Phase Clouds. Proceedings of the National Academy of Sciences of the United States of America, 117, 22705-22711. https://doi.org/10.1073/pnas.2001674117
Petzold, A., Ström, J., Ohlson, S. and Schröder, F.P. (1998) Elemental Composition and Morphology of Ice-Crystal Residual Particles in Cirrus Clouds and Contrails. Atmospheric Research, 49, 21-34. https://doi.org/10.1016/S0169-8095(97)00083-5
Baumgardner, D., Subramanian, R., Twohy, C., Stith, J. and Kok, G. (2008) Scavenging of Black Carbon by Ice Crystals over the Northern Pacific. Geophysical Research Letters, 35, Article No. L22815. https://doi.org/10.1029/2008GL035764
McCluskey, C.S., et al. (2014) Characteristics of Atmospheric Ice Nucleating Particles Associated with Biomass Burning in the US: Prescribed Burns and Wildfires. Journal of Geophysical Research: Atmospheres, 119, 10458-10470.
Phillips, V.T.J., DeMott, P.J., Andronache, C., Pratt, K.A., Prather, K.A., Subramanian, R. and Twohy, C. (2013) Improvements to an Empirical Parameterization of Heterogeneous Ice Nucleation and Its Comparison with Observations. Journal of the Atmospheric Sciences, 70, 378-409. https://doi.org/10.1175/JAS-D-12-080.1
Twohy, C.H., et al. (2010) Relationships of Biomass-Burning Aerosols to Ice in Orographic Wave Clouds. Journal of the Sciences, 70, 2437-2450. https://doi.org/10.1175/2010JAS3310.1
Cozic, J., et al. (2007) Scavenging of Black Carbon in Mixed Phase Clouds at the High Alpine Site Jungfraujoch. Atmospheric Chemistry and Physics, 7, 1797-1807. https://www.atmos-chem-phys.net/7/1797 https://doi.org/10.5194/acp-7-1797-2007
Qi, L., Li, Q., He, C., Wang, X. and Huang, J. (2017) Effects of the Wegener-Bergeron-Findeisen Process on Global Black Carbon Distribution. Atmospheric Chemistry and Physics, 17, 7459-7479. https://doi.org/10.5194/acp-17-7459-2017
Verheggen, B., et al. (2007) Aerosol Partitioning between the Interstitial and the Condensed Phase in Mixed-Phase Clouds. Journal of Geophysical Research, 112, Article No. D23202. https://doi.org/10.1029/2007JD008714
Kasper-Giebl, A., Koch, A., Hitzenberger, R. and Puxbaum, H. (2000) Scavenging Efficiency of ‘Aerosol Carbon’ and Sulfate in Supercooled Clouds at Mt. Sonnblick (3106m a.s.l., Austria). Journal of Atmospheric Chemistry, 35, 33-46. https://doi.org/10.1023/A:1006250508562
Bukowiecki, N., et al. (2016) A Review of More than 20 Years of Aerosol Observation at the High Altitude Research Station Jungfraujoch, Switzerland (3580 m asl). Aerosol and Air Quality Research, 16, 764-788. https://doi.org/10.4209/aaqr.2015.05.0305
Lloyd, G., et al. (2015) The Origins of Ice Crystals Measured in Mixed-Phase Clouds at the High-Alpine Site Jungfraujoch. Atmospheric Chemistry and Physics, 15, 12953-12969. https://doi.org/10.5194/acp-15-12953-2015
Fuchs, N.A. (1964) The Mechanics of Aerosol. Pergamon Press, Oxford, 202.
Park, S.H., Jung, C.H., Jung, K.R., Lee, B.K and Lee. K.W. (2005) Wet Scrubbing of Polydisperse Aerosols by Freely Falling Droplets. Journal of Aerosol Science, 36, 1444-1458. https://doi.org/10.1016/j.jaerosci.2005.03.012
Vittori, O. and Prodi, V. (1967) Scavenging of Atmospheric Particles by Ice Crystals. Journal of Atmospheric Sciences, 24, 533-588. https://doi.org/10.1175/1520-0469(1967)024 2.0.CO;2
Prodi, F. (1976) Scavenging of Aerosol Particles by Growing Ice Crystals. International Conference on Cloud Physics, Boulder, 26-30 July 1976, 70-75.
Oraltay, R.G. and Hallett, J. (1990) Scavenging of Soot Particles by Ice Crystals. Journal of Aero sol Science, 21, S263-S266. https://doi.org/10.1016/0021-8502(90)90234-O
Walden, V.P., Warren, S.G. and Tuttle, E. (2003) Atmospheric Ice Crystals over the Antarctic Plateau in Winter. Journal of Applied Meteorology, 42, 1391-1405.
Douglas, T.A., et al. (2008) Influence of Snow and Ice Crystal Formation and Accumulation on Mercury Deposition to the Arctic. Environmental Science and Technology, 42, 1542-1551. https://doi.org/10.1021/es070502d
Franz, T.P. and Eisenreich, S.J. (1998) Snow Scavenging of Polychlorinated Biphenyls and Polycyclic Aromatic Hydrocarbons in Minnesota. Environmental Science and Technology, 32, 1771-1778. https://doi.org/10.1021/es970601z