Glaciation of mixed-phase clouds: Insights from bulk model and bin-microphysics large-eddy simulation informed by laboratory experiment

Mixed-phase clouds affect precipitation and radiation differently from liquid and ice clouds, posing greater challenges to their representation in numerical simulations. Recent laboratory experiments using the Pi Cloud Chamber explored cloud glaciation conditions based on increased injection of ice-nucleating particles. In this study, we use two approaches to reproduce the results of the laboratory experiments: a bulk scalar mixing model and large-eddy simulation (LES) with bin microphysics. The first approach assumes a well-mixed domain to provide an efficient assessment of the mean cloud properties for a wide range of conditions. The second approach resolves the energy-carrying turbulence, the particle size distribution, and their spatial distribution to provide more details. These modeling approaches enable a separate and detailed examination of liquid and ice properties, which is challenging in the laboratory. Both approaches demonstrate that, with an increased ice number concentration, the flow and microphysical properties exhibit the same changes in trends. Additionally, both approaches show that the ice integral radius reaches the theoretical glaciation threshold when the cloud is subsaturated with respect to liquid water. The main difference between the results of the two approaches is that the bulk model allows for the complete glaciation of the cloud. However, LES reveals that, in a dynamic system, the cloud is not completely glaciated as liquid water droplets are continuously produced near the warm lower boundary and subsequently mixed into the chamber interior. These results highlight the importance of the ice mass fraction in distinguishing the mixed-phase clouds and ice clouds.

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Author Wang, A.
Krueger, S.
Chen, Sisi
Ovchinnikov, M.
Cantrell, W.
Shaw, R. A.
Publisher UCAR/NCAR - Library
Publication Date 2024-09-01T00:00:00
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Topic Category geoscientificInformation
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Metadata Date 2025-07-10T19:58:41.942605
Metadata Record Identifier edu.ucar.opensky::articles:42528
Metadata Language eng; USA
Suggested Citation Wang, A., Krueger, S., Chen, Sisi, Ovchinnikov, M., Cantrell, W., Shaw, R. A.. (2024). Glaciation of mixed-phase clouds: Insights from bulk model and bin-microphysics large-eddy simulation informed by laboratory experiment. UCAR/NCAR - Library. https://n2t.net/ark:/85065/d75x2f8q. Accessed 03 August 2025.

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