An evaluation of phase, aerosol-cloud interactions and microphysical properties of single- and multi-layer clouds over the Southern Ocean using in situ observations from SOCRATES

Single- and multi-layer clouds are commonly observed over the Southern Ocean in varying synoptic settings, yet few studies have characterized and contrasted their properties. This study provides a statistical analysis of the microphysical properties of single- and multi-layer clouds using in-situ observations acquired during the Southern Ocean Cloud-Radiation Aerosol Transport Experimental Study. The relative frequencies of ice-containing samples (i.e., mixed and ice phase) for multi-layer clouds are 0.05-0.25 greater than for single-layer clouds, depending on cloud layer height. In multi-layer clouds, the lowest cloud layers have the highest ice-containing sample frequencies, which decrease with increasing cloud layer height up to the third highest cloud layer. This suggests a prominent seeder-feeder mechanism over the region. Ice nucleating particle (cloud condensation nuclei) concentrations are positively (negatively) correlated with ice-containing sample frequencies in select cases. Differences in microphysical properties are observed for single- and multi-layer clouds. Drop concentrations (size distributions) are greater (narrower) for single-layer clouds compared with the lowest multi-layer clouds. When differentiating cloud layers by top (single- and highest multi-layer clouds) and non-top layers (underlying multi-layer clouds), total particle size distributions (including liquid and ice) are similarly broader for non-top cloud layers. Additionally, drop concentrations in coupled environments are approximately double those in decoupled environments.

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Related Links

Related Dataset #1 : NSF/NCAR GV HIAPER 2D-S Particle Size Distribution (PSD) Product Data. Version 1.1

Related Dataset #2 : NSF/NCAR GV HIAPER 2D-S Particle Size Distribution (PSD) Product Data. Version 1.1

Related Dataset #3 : SOCRATES: Low Rate (LRT - 1 sps) Navigation, State Parameter, and Microphysics Flight-Level Data. Version 1.3

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Author D'Alessandro, J. J.
McFarquhar, G. M.
Stith, Jeffrey Len
Diao, M.
DeMott, P. J.
McCluskey, Christina S.
Hill, T. C.
Roberts, G. C.
Sanchez, K. J.
Publisher UCAR/NCAR - Library
Publication Date 2023-08-16T00:00:00
Digital Object Identifier (DOI) Not Assigned
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Topic Category geoscientificInformation
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Metadata Date 2025-07-11T15:15:29.682961
Metadata Record Identifier edu.ucar.opensky::articles:26569
Metadata Language eng; USA
Suggested Citation D'Alessandro, J. J., McFarquhar, G. M., Stith, Jeffrey Len, Diao, M., DeMott, P. J., McCluskey, Christina S., Hill, T. C., Roberts, G. C., Sanchez, K. J.. (2023). An evaluation of phase, aerosol-cloud interactions and microphysical properties of single- and multi-layer clouds over the Southern Ocean using in situ observations from SOCRATES. UCAR/NCAR - Library. https://n2t.org/ark:/85065/d7fr01m7. Accessed 11 August 2025.

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