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Stratocumulus adjustments to aerosol perturbations disentangled with a causal approach

Earth Sciences

Stratocumulus adjustments to aerosol perturbations disentangled with a causal approach

E. Fons, J. Runge, et al.

Discover how aerosol-liquid cloud interactions influence future global warming predictions. This groundbreaking research by Emilie Fons, Jakob Runge, David Neubauer, and Ulrike Lohmann unveils the nuances of liquid water path adjustments and the complexities of meteorological influences, providing critical insights into the cooling effects of aerosols in our atmosphere.

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Playback language: English
Abstract
A large fraction of the uncertainty around future global warming is due to the cooling effect of aerosol-liquid cloud interactions, and in particular to the elusive sign of liquid water path (LWP) adjustments to aerosol perturbations. To quantify this adjustment, we propose a causal approach that combines physical knowledge in the form of a causal graph with geostationary satellite observations of stratocumulus clouds. This allows us to remove confounding influences from large-scale meteorology and to disentangle counteracting physical processes (cloud-top entrainment enhancement and precipitation suppression due to aerosol perturbations) on different timescales. This results in weak LWP adjustments that are time-dependent (first positive then negative) and meteorological regime-dependent. More importantly, the causal approach reveals that failing to account for covariations of cloud droplet sizes and cloud depth, which are, respectively, a mediator and a confounder of entrainment and precipitation influences, leads to an overly negative aerosol-induced LWP response. This would result in an underestimation of the cooling influence of aerosol-cloud interactions.
Publisher
npj Climate and Atmospheric Science
Published On
Aug 29, 2023
Authors
Emilie Fons, Jakob Runge, David Neubauer, Ulrike Lohmann
Tags
aerosols
global warming
liquid water path
cloud interactions
meteorology
precipitation suppression
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