Modeled source apportionment of black carbon particles coated with a light-scattering shell
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Published:2021-05-21
Issue:5
Volume:14
Page:3707-3719
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ISSN:1867-8548
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Container-title:Atmospheric Measurement Techniques
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language:en
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Short-container-title:Atmos. Meas. Tech.
Abstract
Abstract. The Aethalometer model has been used widely for estimating the contributions
of fossil fuel emissions and biomass burning to equivalent black carbon
(eBC). The calculation is based on measured absorption Ångström
exponents (αabs). The interpretation of αabs is
ambiguous since it is well known that it not only depends on the dominant absorber but also on the size and internal structure of the particles, core
size, and shell thickness. In this work the uncertainties of the
Aethalometer-model-derived apparent fractions of absorption by eBC from
fossil fuel and biomass burning are evaluated with a core–shell Mie model.
Biomass-burning fractions (BB(%)) were calculated for pure and coated
single BC particles for lognormal unimodal and bimodal size distributions
of BC cores coated with ammonium sulfate, a scattering-only material.
BB(%) was very seldom 0 % even though BC was the only absorbing
material in the simulations. The shape of size distribution plays an
important role. Narrow size distributions result in higher αabs
and BB(%) values than wide size distributions. The sensitivity of αabs and BB(%) to variations in shell volume fractions is the
highest for accumulation-mode particles. This is important because that is
where the largest aerosol mass is. For the interpretation of absorption
Ångström exponents it would be very good to measure BC size
distributions and shell thicknesses together with the wavelength dependency
of absorption.
Funder
Business Finland Academy of Finland
Publisher
Copernicus GmbH
Subject
Atmospheric Science
Reference40 articles.
1. Andreae, M. O. and Gelencsér, A.: Black carbon or brown carbon? The nature of light-absorbing carbonaceous aerosols, Atmos. Chem. Phys., 6, 3131–3148, https://doi.org/10.5194/acp-6-3131-2006, 2006. 2. Arola, A., Schuster, G., Myhre, G., Kazadzis, S., Dey, S., and Tripathi, S. N.: Inferring absorbing organic carbon content from AERONET data, Atmos. Chem. Phys., 11, 215–225, https://doi.org/10.5194/acp-11-215-2011, 2011. 3. Bergstrom, R. W., Pilewskie, P., Russell, P. B., Redemann, J., Bond, T. C., Quinn, P. K., and Sierau, B.: Spectral absorption properties of atmospheric aerosols, Atmos. Chem. Phys., 7, 5937–5943, https://doi.org/10.5194/acp-7-5937-2007, 2007. 4. Bond, T. C. and Bergstrom, R. W.: Light Absorption by Carbonaceous
Particles: An Investigative Review, Aerosol Sci. Technol., 40, 27–67, 2006. 5. Bond, T. C., Doherty, S. J., Fahey, D. W., Forster, P. M., Berntsen, T.,
DeAngelo, B. J., Flanner, M. G., Ghan, S., Kärcher, B., Koch, D., Kinne,
S., Kondo, Y., Quinn, P. K., Sarofim, M. C., Schultz, M. G., Schulz, M.,
Venkataraman, C., Zhang, H., Zhang, S., Bellouin, N., Guttikunda, S. K.,
Hopke, P. K., Jacobson, M. Z., Kaiser, J. W., Klimont, Z., Lohmann, U.,
Schwarz, J. P., Shindell, D., Storelvmo, T., Warren, S. G., and Zender,
C.S.: Bounding the role of black carbon in the climate system: A scientific
assessment, J. Geophys. Res.-Atmos., 118, 5380–5552, https://doi.org/10.1002/jgrd.50171, 2013.
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