Intercomparison of large-eddy simulations of Arctic mixed-phase clouds: Importance of ice size distribution assumptions

Large-eddy simulations of mixed-phase Arctic clouds by 11 different models are analyzed with the goal of improving understanding and model representation of processes controlling the evolution of these clouds. In a case based on observations from the Indirect and Semi-Direct Aerosol Campaign (ISDAC), it is found that ice number concentration, Ni, exerts significant influence on the cloud structure. Increasing Ni leads to a substantial reduction in liquid water path (LWP), in agreement with earlier studies. In contrast to previous intercomparison studies, all models here use the same ice particle properties (i.e., mass-size, mass-fall speed, and mass-capacitance relationships) and a common radiation parameterization. The constrained setup exposes the importance of ice particle size distributions (PSDs) in influencing cloud evolution. A clear separation in LWP and IWP predicted by models with bin and bulk microphysical treatments is documented and attributed primarily to the assumed shape of ice PSD used in bulk schemes. Compared to the bin schemes that explicitly predict the PSD, schemes assuming exponential ice PSD underestimate ice growth by vapor deposition and overestimate mass-weighted fall speed leading to an underprediction of IWP by a factor of two in the considered case. Sensitivity tests indicate LWP and IWP are much closer to the bin model simulations when a modified shape factor which is similar to that predicted by bin model simulation is used in bulk scheme. These results demonstrate the importance of representation of ice PSD in determining the partitioning of liquid and ice and the longevity of mixed-phase clouds.

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Author Ovchinnikov, Mikhail
Ackerman, Andrew
Avramov, Alexander
Cheng, Anning
Fan, Jiwen
Fridlind, Ann
Ghan, Steven
Harrington, Jerry
Hoose, Corinna
Korolev, Alexei
McFarquhar, Greg
Morrison, Hugh
Paukert, Marco
Savre, Julien
Shipway, Ben
Shupe, Matthew
Solomon, Amy
Sulia, Kara
Publisher UCAR/NCAR - Library
Publication Date 2014-03-01T00:00:00
Digital Object Identifier (DOI) Not Assigned
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Topic Category geoscientificInformation
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Metadata Date 2023-08-18T18:46:08.916135
Metadata Record Identifier edu.ucar.opensky::articles:14041
Metadata Language eng; USA
Suggested Citation Ovchinnikov, Mikhail, Ackerman, Andrew, Avramov, Alexander, Cheng, Anning, Fan, Jiwen, Fridlind, Ann, Ghan, Steven, Harrington, Jerry, Hoose, Corinna, Korolev, Alexei, McFarquhar, Greg, Morrison, Hugh, Paukert, Marco, Savre, Julien, Shipway, Ben, Shupe, Matthew, Solomon, Amy, Sulia, Kara. (2014). Intercomparison of large-eddy simulations of Arctic mixed-phase clouds: Importance of ice size distribution assumptions. UCAR/NCAR - Library. http://n2t.net/ark:/85065/d7tb17t2. Accessed 26 June 2025.

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