Articles | Volume 11, issue 18
https://doi.org/10.5194/acp-11-9749-2011
https://doi.org/10.5194/acp-11-9749-2011
Research article
 | 
21 Sep 2011
Research article |  | 21 Sep 2011

A comprehensive numerical study of aerosol-cloud-precipitation interactions in marine stratocumulus

Y.-C. Chen, L. Xue, Z. J. Lebo, H. Wang, R. M. Rasmussen, and J. H. Seinfeld

Related subject area

Subject: Clouds and Precipitation | Research Activity: Atmospheric Modelling and Data Analysis | Altitude Range: Troposphere | Science Focus: Physics (physical properties and processes)
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Cited articles

Ackerman, A. S., Toon, O. B., Taylor, J. P., Johnson, D. W., Hobbs, P. V., and Ferek, R. J.: Effects of aerosols on cloud albedo: Evaluation of Twomey's parameterization of the cloud susceptibility using measurement of ship tracks, J. Atmos. Sci., 57, 2684–2695, 2000.
Ackerman, A. S., Kirkpatrick, M. P., Stevens, D. E., and Toon, O. B.: The impact of humidity above stratiform clouds on indirect aerosol climate forcing, Nature, 432, 1014–1017, 2004.
Albrecht, B.: Aerosols, Cloud Microphysics, and Fractional Cloudiness, Science, 245, 1227–1230, https://doi.org/10.1126/science.245.4923.1227, 1989.
Brenguier, J.-L., Pawloska, H., Schüller, L., Preusker, R., and Fischer, J.: Radiative properties of boundary layer clouds: Droplet effective radius versus number concentration, J. Atmos. Sci., 57, 803–821, 2000.
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