A European aerosol phenomenology – 6: scattering properties of atmospheric aerosol particles from 28 ACTRIS sites

Author:

Pandolfi Marco,Alados-Arboledas LucasORCID,Alastuey AndrésORCID,Andrade MarcosORCID,Angelov Christo,Artiñano Begoña,Backman JohnORCID,Baltensperger Urs,Bonasoni Paolo,Bukowiecki NicolasORCID,Collaud Coen Martine,Conil Sébastien,Coz EstherORCID,Crenn Vincent,Dudoitis Vadimas,Ealo Marina,Eleftheriadis KostasORCID,Favez Olivier,Fetfatzis Prodromos,Fiebig MarkusORCID,Flentje Harald,Ginot Patrick,Gysel MartinORCID,Henzing BasORCID,Hoffer Andras,Holubova Smejkalova Adela,Kalapov Ivo,Kalivitis NikosORCID,Kouvarakis Giorgos,Kristensson Adam,Kulmala MarkkuORCID,Lihavainen HeikkiORCID,Lunder Chris,Luoma KristaORCID,Lyamani HassanORCID,Marinoni AngelaORCID,Mihalopoulos Nikos,Moerman Marcel,Nicolas José,O'Dowd Colin,Petäjä TuukkaORCID,Petit Jean-EudesORCID,Pichon Jean Marc,Prokopciuk Nina,Putaud Jean-Philippe,Rodríguez SergioORCID,Sciare Jean,Sellegri Karine,Swietlicki ErikORCID,Titos GloriaORCID,Tuch Thomas,Tunved Peter,Ulevicius Vidmantas,Vaishya AdityaORCID,Vana Milan,Virkkula Aki,Vratolis Stergios,Weingartner ErnestORCID,Wiedensohler Alfred,Laj Paolo

Abstract

Abstract. This paper presents the light-scattering properties of atmospheric aerosol particles measured over the past decade at 28 ACTRIS observatories, which are located mainly in Europe. The data include particle light scattering (σsp) and hemispheric backscattering (σbsp) coefficients, scattering Ångström exponent (SAE), backscatter fraction (BF) and asymmetry parameter (g). An increasing gradient of σsp is observed when moving from remote environments (arctic/mountain) to regional and to urban environments. At a regional level in Europe, σsp also increases when moving from Nordic and Baltic countries and from western Europe to central/eastern Europe, whereas no clear spatial gradient is observed for other station environments. The SAE does not show a clear gradient as a function of the placement of the station. However, a west-to-east-increasing gradient is observed for both regional and mountain placements, suggesting a lower fraction of fine-mode particle in western/south-western Europe compared to central and eastern Europe, where the fine-mode particles dominate the scattering. The g does not show any clear gradient by station placement or geographical location reflecting the complex relationship of this parameter with the physical properties of the aerosol particles. Both the station placement and the geographical location are important factors affecting the intra-annual variability. At mountain sites, higher σsp and SAE values are measured in the summer due to the enhanced boundary layer influence and/or new particle-formation episodes. Conversely, the lower horizontal and vertical dispersion during winter leads to higher σsp values at all low-altitude sites in central and eastern Europe compared to summer. These sites also show SAE maxima in the summer (with corresponding g minima). At all sites, both SAE and g show a strong variation with aerosol particle loading. The lowest values of g are always observed together with low σsp values, indicating a larger contribution from particles in the smaller accumulation mode. During periods of high σsp values, the variation of g is less pronounced, whereas the SAE increases or decreases, suggesting changes mostly in the coarse aerosol particle mode rather than in the fine mode. Statistically significant decreasing trends of σsp are observed at 5 out of the 13 stations included in the trend analyses. The total reductions of σsp are consistent with those reported for PM2.5 and PM10 mass concentrations over similar periods across Europe.

Funder

Horizon 2020

Secretaría de Estado de Investigación, Desarrollo e Innovación

Academy of Finland

Publisher

Copernicus GmbH

Subject

Atmospheric Science

Reference110 articles.

1. Aaltonen, V., Lihavainen, H., Kerminen, V.-M., Komppula, M., Hatakka, J., Eneroth, K., Kulmala, M., and Viisanen, Y.: Measurements of optical properties of atmospheric aerosols in Northern Finland, Atmos. Chem. Phys., 6, 1155–1164, https://doi.org/10.5194/acp-6-1155-2006, 2006.

2. Alastuey, A., Querol, X., Castillo, S., Escudero, M., Avila, A., Cuevas, E., Torres, C., Romero, P.-M., Exposito, F., García, O., Diaz, J. P., Van Dingenen, R., and Putaud, J. P.: Characterisation of TSP and PM2.5 at Izaña and Sta. Cruz de Tenerife (Canary Islands, Spain) during a Saharan dust episode (July 2002), Atmos. Environ., 39, 4715–4728, https://doi.org/10.1016/j.atmosenv.2005.04.018, 2005.

3. Anderson, T. L. and Ogren, J. A.: Determining aerosol radia radiative properties using the TSI 3563 Integrating Nephelometer, Aerosol Sci. Tech., 29, 57–69, 1998.

4. Andrews, E., Sheridan, P. J., Fiebig, M., McComiskey, A., Ogren, J. A., Arnott, P., Covert, D., Elleman, R., Gasparini, R., Collins, D., Jonsson, H., Schmid, B., and Wang, J.: Comparison of methods for deriving aerosol asymmetry parameter, J. Geophys. Res.-Atmos., 111, D05S04, https://doi.org/10.1029/2004JD005734, 2006.

5. Andrews, E., Ogren, J. A., Bonasoni, P., Marinoni, A., Cuevas, E., Rodríguez, S., Sun, J. Y., Jaffe, D. A., Fischer, E. V., Baltensperger, U., Weingartner, E., Collaud Coen, M., Sharma, S., Macdonald, A. M., Leaitch, W. R., Lin, N.-H., Laj, P., Arsov, T., Kalapov, I., Jefferson, A., and Sheridan, P.: Climatology of aerosol radiative properties in the free troposphere, Atmos. Res., 102, 365–393, https://doi.org/10.1016/j.atmosres.2011.08.017, 2011.

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