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Description and evaluation of airborne microplastics in the United Kingdom Earth System Model (UKESM1.1) using GLOMAP-mode

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Laura E. Revell Laura E. Revell Nikolaos Evangeliou, Alex Aves, Alex Aves, Alex Aves, Alex Aves, Alex Aves, Alex Aves, Alex Aves, Alex Aves, Alex Aves, Cameron McErlich, Cameron McErlich, Cameron McErlich, Cameron McErlich, Felix Goddard, Cameron McErlich, Nikolaos Evangeliou, Nikolaos Evangeliou, Nikolaos Evangeliou, Nikolaos Evangeliou, Nikolaos Evangeliou, Laura E. Revell Laura E. Revell Nikolaos Evangeliou, Laura E. Revell Catherine Hardacre, Nikolaos Evangeliou, Laura E. Revell Nikolaos Evangeliou, Nikolaos Evangeliou, Nikolaos Evangeliou, Felix Goddard, Laura E. Revell Felix Goddard, Laura E. Revell Laura E. Revell Laura E. Revell Alex Aves, Catherine Hardacre, Alex Aves, Nikolaos Evangeliou, Laura E. Revell Alex Aves, Laura E. Revell Nikolaos Evangeliou, Laura E. Revell Felix Goddard, Nikolaos Evangeliou, Nikolaos Evangeliou, Nikolaos Evangeliou, Nikolaos Evangeliou, Nikolaos Evangeliou, Cameron McErlich, Nikolaos Evangeliou, Nikolaos Evangeliou, Nikolaos Evangeliou, Catherine Hardacre, Laura E. Revell Laura E. Revell Nikolaos Evangeliou, Nikolaos Evangeliou, Nikolaos Evangeliou, Nikolaos Evangeliou, Laura E. Revell Laura E. Revell Nikolaos Evangeliou, Nikolaos Evangeliou, Catherine Hardacre, Laura E. Revell Alex Aves, Laura E. Revell Laura E. Revell Laura E. Revell Nikolaos Evangeliou, Nikolaos Evangeliou, Nikolaos Evangeliou, Nikolaos Evangeliou, Laura E. Revell Laura E. Revell Laura E. Revell

Summary

Researchers incorporated microplastics as a new aerosol species into the UK Earth System Model (UKESM1.1) using the GLOMAP-mode aerosol scheme, representing both fragments and fibres across multiple size modes to enable interaction with existing aerosol processes. Evaluation of the model revealed that airborne microplastics have potential air quality and climate impacts not yet captured in standard global climate models.

Abstract. Airborne microplastics are a recently identified atmospheric aerosol species with potential air quality and climate impacts, yet they are not currently represented in global climate models. Here, we describe the addition of microplastics to the aerosol scheme of the UK Earth System Model (UKESM1.1): the Global Model of Aerosol Processes (GLOMAP). Microplastics are included as both fragments and fibres across a range of aerosol size modes, enabling interaction with existing aerosol processes such as ageing and wet and dry deposition. Simulated microplastics have higher concentrations over land, but can be transported into remote regions including Antarctica despite no assumed emissions from these regions. Lifetimes range between ~17 days to ~1 hour, with smaller, soluble microplastics having longer lifetimes. Microplastics are well-mixed throughout the troposphere, and the smallest particles are simulated to reach the lower stratosphere in small numbers. Dry deposition is the dominant microplastic removal pathway, but greater wet deposition occurs for smaller soluble microplastic, due to interactions with clouds. Although microplastics currently contribute a minor fraction of the total aerosol burden, their concentration is expected to increase in future if plastic production continues to increase, and as existing plastic waste in the environment degrades to form new microplastic. Incorporating microplastics into UKESM1.1 is a key step toward quantifying their current atmospheric impact and offers a framework for simulating future emission scenarios for an assessment of their long term impacts on air quality and climate.

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