Articles | Volume 18, issue 5
https://doi.org/10.5194/acp-18-3619-2018
https://doi.org/10.5194/acp-18-3619-2018
Research article
 | 
13 Mar 2018
Research article |  | 13 Mar 2018

Model simulations with COSMO-SPECS: impact of heterogeneous freezing modes and ice nucleating particle types on ice formation and precipitation in a deep convective cloud

Karoline Diehl and Verena Grützun

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Cited articles

Atkinson, J. D., Murray, B. J., Woodhouse, M. T., Whale, T. F., Baustian, K. J., Carslaw, K. S., Dobbie, S., O'Sullivan, D., and Malkin, T. L.: The importance of feldspar for ice nucleation by mineral dust in mixed-phase clouds, Nature, 498, 355–358, https://doi.org/10.1038/nature12278, 2013. 
Baldauf, M., Seifert, A., Förstner, J., Majewski, D., Raschendorfer, M., and Reinhardt, T.: Operational convective-scale numerical weather prediction with the COSMO model: Description and sensitivities, Mon. Weather Rev., 139, 3887–3905, 2011. 
Bauer, H., Kasper-Giebl, A., Löflund, M., Giebl, H., Hitzenberger, R., Zibuschka, F., and Puxbaum, H.: The contribution of bacteria and fungal spores to the organics content of cloud water, precipitation and aerosols, Atmos. Res., 64, 109–119, 2002. 
Busch, B., Kandler, K., Schütz, L., and Neusüß, C.: Hygroscopic properties and water soluble volume fraction of atmospheric particles in the diameter range from 50 nm to 3.8 µm during LACE 98, J. Geophys. Res., 107, LAC 2-1–LAC 2-11, https://doi.org/10.1029/2000JD000228, 2002. 
Cziczo, D. J. and Froyd, K. D.: Sampling the composition of cirrus ice residuals, Atmos. Res., 142, 15–31, https://doi.org/10.1016/j.atmosres.2013.06.012, 2014. 
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Short summary
In deep convective clouds reaching altitudes of 14 km, heavy rain is often formed involving the ice phase. Ice nucleating particles (INPs) are responsible for heterogeneous freezing at middle and lower altitudes. Cloud model simulations indicate that INPs may effect a gradual increase in precipitation at early cloud stages instead of a strong increase at later cloud stages. Simultaneously, the local distribution of precipitation is changed, with more precipitation in the cloud center.
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