Seasonal variation of aerosol water uptake and its impact on the direct radiative effect at Ny-Ålesund, Svalbard
-
Published:2014-07-21
Issue:14
Volume:14
Page:7445-7460
-
ISSN:1680-7324
-
Container-title:Atmospheric Chemistry and Physics
-
language:en
-
Short-container-title:Atmos. Chem. Phys.
Author:
Rastak N., Silvergren S., Zieger P.ORCID, Wideqvist U., Ström J., Svenningsson B., Maturilli M.ORCID, Tesche M.ORCID, Ekman A. M. L.ORCID, Tunved P., Riipinen I.
Abstract
Abstract. In this study we investigated the impact of water uptake by aerosol particles in ambient atmosphere on their optical properties and their direct radiative effect (ADRE, W m−2) in the Arctic at Ny-Ålesund, Svalbard, during 2008. To achieve this, we combined three models, a hygroscopic growth model, a Mie model and a radiative transfer model, with an extensive set of observational data. We found that the seasonal variation of dry aerosol scattering coefficients showed minimum values during the summer season and the beginning of fall (July-August-September), when small particles (< 100 nm in diameter) dominate the aerosol number size distribution. The maximum scattering by dry particles was observed during the Arctic haze period (March-April-May) when the average size of the particles was larger. Considering the hygroscopic growth of aerosol particles in the ambient atmosphere had a significant impact on the aerosol scattering coefficients: the aerosol scattering coefficients were enhanced by on average a factor of 4.30 ± 2.26 (mean ± standard deviation), with lower values during the haze period (March-April-May) as compared to summer and fall. Hygroscopic growth of aerosol particles was found to cause 1.6 to 3.7 times more negative ADRE at the surface, with the smallest effect during the haze period (March-April-May) and the highest during late summer and beginning of fall (July-August-September).
Funder
European Commission
Publisher
Copernicus GmbH
Subject
Atmospheric Science
Reference70 articles.
1. Aas, W., Solberg, S., Manø, S., and Yttri, K. E.: Overvåking av langtransportert forurenset luft og nedbør. Atmosfærisk tilførsel, 2008. Norsk institutt for luftforskning, Kjeller, OR 22/2009 (SFT (Klif) rapport nr 1051/2009), 2009. 2. Achtert, P., Birmili, W., Nowak, A., Wehner, B., Wiedensohler, A., Takegawa, N., Kondo, Y., Miyazaki, Y., Hu, M., and Zhu, T.: Hygroscopic growth of tropospheric particle number size distributions over the North China Plain, J. Geophys. Res, 114, D00G07, https://doi.org/10.1029/2008JD010921, 2009. 3. Albrecht, B. A.: Aerosols, Cloud Microphysics, and Fractional Cloudiness, Science 245, 1227–1230, 1989. 4. Anderson, T. L., Covert, D. S., Marshall, S. F., Laucks, M. L., Charlson, R. J., Waggoner, A. P., Ogren, J. A., Caldow, R., Holm, R. L., Quant, F. R., Sem, G. J., Wiedensohler, A., Ahlquist, N. A., and Bates, T. S.: Performance Characteristics of a High-Sensitivity, Three-Wavelength, Total Scatter/Backscatter Nephelometer, J. Atmos. Ocean. Technol., 13, 967–986, https://doi.org/10.1175/1520-0426(1996)0132.0.CO;2, 1996. 5. Atwater, M. A: Planetary albedo changes due to aerosols. Science, 170, 64–66, https://doi.org/10.1126/science.170.3953.64, 1970.
Cited by
30 articles.
订阅此论文施引文献
订阅此论文施引文献,注册后可以免费订阅5篇论文的施引文献,订阅后可以查看论文全部施引文献
|
|