Articles | Volume 11, issue 3
https://doi.org/10.5194/acp-11-1117-2011
https://doi.org/10.5194/acp-11-1117-2011
Research article
 | 
09 Feb 2011
Research article |  | 09 Feb 2011

The European aerosol budget in 2006

J. M. J. Aan de Brugh, M. Schaap, E. Vignati, F. Dentener, M. Kahnert, M. Sofiev, V. Huijnen, and M. C. Krol

Related subject area

Subject: Aerosols | Research Activity: Atmospheric Modelling and Data Analysis | Altitude Range: Troposphere | Science Focus: Chemistry (chemical composition and reactions)
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Cited articles

Anderson, T. L., Charlson, R. J., Schwartz, S. E., Knutti, R., Boucher, O., Rodhe, H., and Heintzenberg, J.: Climate forcing by aerosols – a hazy picture, Science, 300, 1103–1104, https://doi.org/10.1126/science.1084777, 2003.
Andres, R. J. and Kasgnoc, A. D.: A time-averaged inventory of subaerial volcanic sulfur emissions, J. Geophys. Res., 103, 25251–25261, https://doi.org/10.1029/98JD02091, 1998.
Ångström, A. K.: On the atmospheric transmission of sun radiation and on the dust in the air, Geogr. Ann., 11, 156–166, 1929.
Balkanski, Y. J., Jacob, D. J., Gardner, G. M., Graustein, W. C., and Turekian, K. K.: Transport and residence times of tropospheric aerosols inferred from a global trhee-dimensional simulation of 210Pb., J. Geophys. Res., 98, 20573–20586, https://doi.org/10.1029/93JD2456, 1993.
Barber, P. W. and Hill, S. C.: Light scattering by particles: Computational Methods, Advanced series in applied physics, World Scientific, 2, 261 pp., 1990.
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