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DOE OSTI · 2430132

Pluminate: Quantifying aerosol injection behavior from simulation, experimentation and observations

Abstract

Marine aerosol injections are a key component in further understanding of both the potentials of deliberate injection for marine cloud brightening (MCB), a potential climate intervention (CI) strategy, and key aerosol-cloud interaction behaviors that currently form the largest uncertainty in global climate model (GCM) predictions of our climate. Since the rate of spread of aerosols in a marine environment directly translates to the effectiveness and ability of aerosol injections in impacting cloud radiative forcing, it is crucial to understand the spatial and temporal extent of injected-aerosol effects following direct injection into marine environments. The ubiquity of ship-injected aerosol tracks from satellite imagery renders observational validation of new parameterizations possible in 2D, however, 3D compatible data is more scarce, and necessary for the development of subgrid scale parameterizations of aerosol-cloud interactions in GCMs. This report introduces two novel parameterizations of atmospheric aerosol injection behavior suitable for both 3D (GCM-compatible) and 2D (observation-related) modeling. Their applicability is highlighted using a wealth of different observational data: small and larger scale salt-aerosol injection experiments conducted at SNL, 3D large eddy simulations of ship-injected aerosol tracks and 2D satellite images of ship tracks. The power of experimental data in enhancing knowledge of aerosol-cloud interactions is in particular emphasized by studying key aerosol microphysical and optical properties as observed through their mixing in cloud-like environments.

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BibTeXRIS

Patel, Lekha, Zenker, Jake Paul, Pattyn, Christian Alexander, Warburton, Pierce David, Shuler, Kurtis Woodfin, McMichael, Lucas, Schmidt, Michael John, Blossey, Peter, Roesler, Erika Louise, Mondragon, Kathryn, Sanchez, Andres L., Wright, Jeremy Benjamin, Wood, Robert. 2023-11-01. Pluminate: Quantifying aerosol injection behavior from simulation, experimentation and observations. https://doi.org/10.2172/2430132

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