Articles | Volume 12, issue 20
https://doi.org/10.5194/acp-12-9941-2012
https://doi.org/10.5194/acp-12-9941-2012
Research article
 | 
30 Oct 2012
Research article |  | 30 Oct 2012

Are simulated aerosol-induced effects on deep convective clouds strongly dependent on saturation adjustment?

Z. J. Lebo, H. Morrison, 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

Albrecht, B.: Aerosols, cloud microphysics, and fractional cloudiness, Science, 245, 1227–1230, https://doi.org/10.1126/science.245.4923.1227, 1989.
Chuang, P. Y., Charlson, R. J., and Seinfeld, J. H.: Kinetic limitations on droplet formation in clouds, Nature, 390, 94–96, 1997.
Clark, T. L.: Numerical Modeling of the Dynamics and Microphysics of Warm Cumulus Convection, J. Atmos. Sci., 30, 857–878, 1973.
Dawson II, D. T., Xue, M., Milbrandt, J. A., and Yau, M. K.: Comparison of evaporation and cold pool development between single-moment and multi-moment bulk microphysics schemes in idealized simulations of tornadic thunderstorms, Mon. Weather Rev., 138, 1152–1171, 2010.
Ekman, A. M. L., Engstrom, A., and Soderberg, A.: Impact of two-way aerosol-cloud interaction and changes in aerosol size distribution on simulated aerosol-induced deep convective cloud sensitivity, J. Atmos. Sci., 68, 685–697, 2011.
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