Air mass history linked to the development of Arctic mixed-phase clouds
File(s)acp-24-11115-2024.pdf (1.97 MB)
Published version
Author(s)
Murray-Watson, Rebecca
Gryspeerdt, Edward
Type
Journal Article
Abstract
Clouds formed during marine cold-air outbreaks (MCAOs) exhibit a distinct transition from stratocumulus decks near the ice edge to broken cumuliform fields further downwind. The mechanisms associated with ice formation are believed to be crucial in driving this transition, yet the factors influencing such formation remain unclear. Through Lagrangian trajectories collocated with satellite data, this study investigates the development of mixed-phase clouds using these outbreaks. Cloud formed in MCAOs are characterized by a swift shift from liquid to ice-containing states, contrasting with non-MCAO clouds also moving off the ice edge. These mixed-phase clouds are predominantly observed at temperatures below −20 °C near the ice edge. However, further into the outbreak, they become dominant at temperatures as high as −13 °C. This shift is consistent with the influence of biological ice-nucleating particles (INPs), which become more prevalent as the air mass ages over the ocean. The evolution of these clouds is closely linked to the history of the air mass, especially the length of time it spends over snow- and ice-covered surfaces – terrains may that be deficient in INPs. This connection also accounts for the observed seasonal variations in the development of Arctic clouds, both within and outside of MCAO events. The findings highlight the importance of understanding both local marine aerosol sources near the ice edge and the overarching INP distribution in the Arctic for modelling of cloud phase in the region.
Date Issued
2024-10
Date Acceptance
2024-07-28
Citation
Atmospheric Chemistry and Physics, 2024, 24 (19), pp.11115-11132
ISSN
1680-7316
Publisher
Copernicus Publications
Start Page
11115
End Page
11132
Journal / Book Title
Atmospheric Chemistry and Physics
Volume
24
Issue
19
Copyright Statement
© Author(s) 2024. This work is distributed under
the Creative Commons Attribution 4.0 License.
the Creative Commons Attribution 4.0 License.
License URL
Identifier
https://acp.copernicus.org/articles/24/11115/2024/
Publication Status
Published
Date Publish Online
2024-10-07