Model analysis of biases in the satellite-diagnosed aerosol effect on the cloud liquid water path
File(s) acp-25-1533-2025.pdf (4.83 MB)
Published version
Author(s)
Type
Journal Article
Abstract
The response in cloud water content to changes in cloud condensation nuclei remains one of the major uncertainties in determining how aerosols can perturb cloud properties. In this study, we used an ensemble of large eddy simulations of marine stratocumulus clouds to investigate the correlation between cloud liquid water path (LWP) and the amount of cloud condensation nuclei. We compare this correlation directly from the model to the correlation derived using equations which are used to retrieve liquid water path from satellite observations. Our comparison shows that spatial variability in cloud properties and instrumental noise in satellite retrievals of cloud optical depth and cloud effective radii results in bias in the satellite-derived liquid water path. In-depth investigation of high-resolution model data shows that in large part of a cloud, the assumption of adiabaticity does not hold, which results in a similar bias in the LWP–CDNC (cloud droplet number concentration) relationship as seen in satellite data. In addition, our analysis shows a significant positive bias of between 18 % and 40 % in satellite-derived cloud droplet number concentration. However, for the individual ensemble members, the correlation between the cloud condensation nuclei and the mean of the liquid water path was very similar between the methods. This suggests that if cloud cases are carefully chosen for similar meteorological conditions and it is ensured that cloud condensation nuclei concentrations are well-defined, changes in liquid water can be confidently determined using satellite data.
Date Issued
2025-02-04
Date Acceptance
2024-11-27
Citation
Atmospheric Chemistry and Physics, 2025, 25 (3), pp.1533-1543
ISSN
1680-7316
Publisher
Copernicus Publications
Start Page
1533
End Page
1543
Journal / Book Title
Atmospheric Chemistry and Physics
Volume
25
Issue
3
Copyright Statement
© Author(s) 2025. This work is distributed under the Creative Commons Attribution 4.0 License.
License URL
Identifier
10.5194/acp-25-1533-2025
Publication Status
Published
Date Publish Online
2025-02-04
