Seasonal updraft speeds change cloud droplet number concentrations in low-level clouds over the western North Atlantic
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Published:2022-06-28
Issue:12
Volume:22
Page:8299-8319
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ISSN:1680-7324
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Container-title:Atmospheric Chemistry and Physics
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language:en
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Short-container-title:Atmos. Chem. Phys.
Author:
Kirschler SimonORCID, Voigt ChristianeORCID, Anderson Bruce, Campos Braga Ramon, Chen Gao, Corral Andrea F., Crosbie Ewan, Dadashazar Hossein, Ferrare Richard A., Hahn Valerian, Hendricks Johannes, Kaufmann StefanORCID, Moore RichardORCID, Pöhlker Mira L., Robinson Claire, Scarino Amy J., Schollmayer Dominik, Shook Michael A.ORCID, Thornhill K. Lee, Winstead Edward, Ziemba Luke D., Sorooshian ArminORCID
Abstract
Abstract. To determine the impact of dynamic and aerosol processes on marine low clouds, we examine the seasonal impact of updraft speed w and cloud
condensation nuclei concentration at 0.43 % supersaturation (NCCN0.43%) on the cloud droplet number
concentration (NC) of low-level clouds over the western North Atlantic Ocean. Aerosol and cloud properties were measured with
instruments on board the NASA LaRC Falcon HU-25 during the ACTIVATE (Aerosol Cloud meTeorology Interactions oVer the western ATlantic Experiment)
mission in summer (August) and winter (February–March) 2020. The data are grouped into different NCCN0.43% loadings, and the
density functions of NC and w near the cloud bases are compared. For low updrafts (w < 1.3 m s−1), NC in
winter is mainly limited by the updraft speed and in summer additionally by aerosols. At larger updrafts (w > 3 m s−1),
NC is impacted by the aerosol population, while at clean marine conditions cloud nucleation is aerosol-limited, and for high
NCCN0.43% it is influenced by aerosols and updraft. The aerosol size distribution in winter shows a bimodal distribution in
clean marine environments, which transforms to a unimodal distribution in high NCCN0.43% due to chemical and physical aerosol
processes, whereas unimodal distributions prevail in summer, with a significant difference in their aerosol concentration and composition. The
increase of NCCN0.43% is accompanied with an increase of organic aerosol and sulfate compounds in both seasons. We demonstrate
that NC can be explained by cloud condensation nuclei activation through upwards processed air masses with varying fractions of
activated aerosols. The activation highly depends on w and thus supersaturation between the different seasons, while the aerosol size distribution
additionally affects NC within a season. Our results quantify the seasonal influence of w and NCCN0.43%
on NC and can be used to improve the representation of low marine clouds in models.
Funder
Earth Sciences Division Helmholtz-Gemeinschaft Deutsche Forschungsgemeinschaft
Publisher
Copernicus GmbH
Subject
Atmospheric Science
Reference104 articles.
1. Abdul-Razzak, H. and Ghan, S. J.:
A Parameterization of Aerosol Activation: 2. Multiple Aerosol Types, J. Geophys. Res.-Atmos., 105, 6837–6844, https://doi.org/10.1029/1999JD901161, 2000. a 2. Albrecht, B. A.:
Aerosols, Cloud Microphysics, and Fractional Cloudiness, Science, 245, 1227–1230, https://doi.org/10.1126/science.245.4923.1227, 1989. a 3. Andrews, T., Gregory, J. M., and Webb, M. J.:
The Dependence of Radiative Forcing and Feedback on Evolving Patterns of Surface Temperature Change in Climate Models, J. Climate, 28, 1630–1648, https://doi.org/10.1175/JCLI-D-14-00545.1, 2015. a 4. Baker, B. and Lawson, R. P.:
Improvement in Determination of Ice Water Content from Two-Dimensional Particle Imagery. Part I: Image-to-Mass Relationships, J. Appl. Meteorol. Clim., 45, 1282–1290, https://doi.org/10.1175/JAM2398.1, 2006. a 5. Baumgardner, D., Strapp, W., and Dye, J. E.:
Evaluation of the Forward Scattering Spectrometer Probe. Part II: Corrections for Coincidence and Dead-Time Losses, J. Atmos. Ocean. Tech., 2, 626–632, https://doi.org/10.1175/1520-0426(1985)002<0626:EOTFSS>2.0.CO;2, 1985. a
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