A double-box model for aircraft exhaust plumes based on the MADE3 aerosol microphysics (MADE3 v4.0)

Aviation emissions of aerosol particles and aerosol precursor gases alter the Earth's radiation budget via both direct and indirect aerosol effects, resulting in a significant climate effect. Current estimates of aviation-induced climate effects are based on coarse-resolution global aerosol-cli...

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Main Authors: Sharma, Monica, Righi, Mattia, Hendricks, Johannes, Schmidt, Anja, Sauer, Daniel, Grewe, Volker
Format: Article in Journal/Newspaper
Language:unknown
Published: Copernicus Publications 2025
Subjects:
Online Access:https://elib.dlr.de/213959/
https://egusphere.copernicus.org/preprints/2025/egusphere-2025-1137/
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author Sharma, Monica
Righi, Mattia
Hendricks, Johannes
Schmidt, Anja
Sauer, Daniel
Grewe, Volker
author_facet Sharma, Monica
Righi, Mattia
Hendricks, Johannes
Schmidt, Anja
Sauer, Daniel
Grewe, Volker
author_sort Sharma, Monica
collection Unknown
description Aviation emissions of aerosol particles and aerosol precursor gases alter the Earth's radiation budget via both direct and indirect aerosol effects, resulting in a significant climate effect. Current estimates of aviation-induced climate effects are based on coarse-resolution global aerosol-climate models, which are not able to resolve the microphysical processes at the aircraft plume scale. This results in large uncertainties on the aviation-induced impact on aerosol number and size, which are key quantities for estimating the aerosol indirect effect, especially for low-level liquid-phase clouds. In this work, a double-box aircraft exhaust plume model is developed to explicitly simulate the aerosol microphysics inside a dispersing aircraft exhaust plume, together with a simplified representation of the vortex regime (which begins 10 s after the aircraft emissions and captures the dynamics of aerosol particle interactions with contrail ice particles). The aircraft exhaust plume model is used to quantify the aviation-induced aerosol number concentration at the end of the dispersion regime ~46 h) and the results are compared with the result obtained by the instantaneous dispersion approach commonly applied by the global models. The difference between the plume approach (simulated using two boxes) and the instantaneous dispersion approach (simulated by a single box) is defined as the plume correction: for typical cruise conditions over the North Atlantic and typical aviation emission parameters, the plume correction for aviation-induced particle number concentration ranges between −15 % and −4 %, depending on the presence or absence of the contrail ice in the vortex regime, respectively.
format Article in Journal/Newspaper
genre North Atlantic
genre_facet North Atlantic
id ftdlr:oai:elib.dlr.de:213959
institution Open Polar
language unknown
op_collection_id ftdlr
op_doi https://doi.org/10.5194/egusphere-2025-1137
op_relation Sharma, Monica und Righi, Mattia und Hendricks, Johannes und Schmidt, Anja und Sauer, Daniel und Grewe, Volker (2025) A double-box model for aircraft exhaust plumes based on the MADE3 aerosol microphysics (MADE3 v4.0). Geoscientific Model Development, 2025, Seiten 1-38. Copernicus Publications. doi:10.5194/egusphere-2025-1137 <https://doi.org/10.5194/egusphere-2025-1137>. ISSN 1991-959X. (eingereichter Beitrag)
publishDate 2025
publisher Copernicus Publications
record_format openpolar
spelling ftdlr:oai:elib.dlr.de:213959 2025-06-15T14:43:23+00:00 A double-box model for aircraft exhaust plumes based on the MADE3 aerosol microphysics (MADE3 v4.0) Sharma, Monica Righi, Mattia Hendricks, Johannes Schmidt, Anja Sauer, Daniel Grewe, Volker 2025 https://elib.dlr.de/213959/ https://egusphere.copernicus.org/preprints/2025/egusphere-2025-1137/ unknown Copernicus Publications Sharma, Monica und Righi, Mattia und Hendricks, Johannes und Schmidt, Anja und Sauer, Daniel und Grewe, Volker (2025) A double-box model for aircraft exhaust plumes based on the MADE3 aerosol microphysics (MADE3 v4.0). Geoscientific Model Development, 2025, Seiten 1-38. Copernicus Publications. doi:10.5194/egusphere-2025-1137 <https://doi.org/10.5194/egusphere-2025-1137>. ISSN 1991-959X. (eingereichter Beitrag) Erdsystem-Modellierung Zeitschriftenbeitrag NonPeerReviewed 2025 ftdlr https://doi.org/10.5194/egusphere-2025-1137 2025-06-04T04:58:10Z Aviation emissions of aerosol particles and aerosol precursor gases alter the Earth's radiation budget via both direct and indirect aerosol effects, resulting in a significant climate effect. Current estimates of aviation-induced climate effects are based on coarse-resolution global aerosol-climate models, which are not able to resolve the microphysical processes at the aircraft plume scale. This results in large uncertainties on the aviation-induced impact on aerosol number and size, which are key quantities for estimating the aerosol indirect effect, especially for low-level liquid-phase clouds. In this work, a double-box aircraft exhaust plume model is developed to explicitly simulate the aerosol microphysics inside a dispersing aircraft exhaust plume, together with a simplified representation of the vortex regime (which begins 10 s after the aircraft emissions and captures the dynamics of aerosol particle interactions with contrail ice particles). The aircraft exhaust plume model is used to quantify the aviation-induced aerosol number concentration at the end of the dispersion regime ~46 h) and the results are compared with the result obtained by the instantaneous dispersion approach commonly applied by the global models. The difference between the plume approach (simulated using two boxes) and the instantaneous dispersion approach (simulated by a single box) is defined as the plume correction: for typical cruise conditions over the North Atlantic and typical aviation emission parameters, the plume correction for aviation-induced particle number concentration ranges between −15 % and −4 %, depending on the presence or absence of the contrail ice in the vortex regime, respectively. Article in Journal/Newspaper North Atlantic Unknown
spellingShingle Erdsystem-Modellierung
Sharma, Monica
Righi, Mattia
Hendricks, Johannes
Schmidt, Anja
Sauer, Daniel
Grewe, Volker
A double-box model for aircraft exhaust plumes based on the MADE3 aerosol microphysics (MADE3 v4.0)
title A double-box model for aircraft exhaust plumes based on the MADE3 aerosol microphysics (MADE3 v4.0)
title_full A double-box model for aircraft exhaust plumes based on the MADE3 aerosol microphysics (MADE3 v4.0)
title_fullStr A double-box model for aircraft exhaust plumes based on the MADE3 aerosol microphysics (MADE3 v4.0)
title_full_unstemmed A double-box model for aircraft exhaust plumes based on the MADE3 aerosol microphysics (MADE3 v4.0)
title_short A double-box model for aircraft exhaust plumes based on the MADE3 aerosol microphysics (MADE3 v4.0)
title_sort double-box model for aircraft exhaust plumes based on the made3 aerosol microphysics (made3 v4.0)
topic Erdsystem-Modellierung
topic_facet Erdsystem-Modellierung
url https://elib.dlr.de/213959/
https://egusphere.copernicus.org/preprints/2025/egusphere-2025-1137/