Modelling the volcanic ash plume from Eyjafjallajökull eruption (May 2010) over Europe: evaluation of the benefit of source term improvements and of the assimilation of aerosol measurements

Numerical dispersion models are used operationally worldwide to mitigate the effect of volcanic ash on aviation. In order to improve the representation of the horizontal dispersion of ash plumes and of the 3D concentration of ash, a study was conducted using the MOCAGE model during the EUNADICS-AV p...

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Main Authors: Plu, Matthieu, Bigeard, Guillaume, Sicˇ, Bojan, Emili, Emanuele, Bugliaro Goggia, Luca, El Amraoui, Laaziz, Guth, Jonathan, Josse, Beatrice, Mona, Licia, Piontek, Dennis
Format: Article in Journal/Newspaper
Language:English
Published: Copernicus Publications 2021
Subjects:
Online Access:https://elib.dlr.de/142084/
https://nhess.copernicus.org/preprints/nhess-2021-97/
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author Plu, Matthieu
Bigeard, Guillaume
Sicˇ, Bojan
Emili, Emanuele
Bugliaro Goggia, Luca
El Amraoui, Laaziz
Guth, Jonathan
Josse, Beatrice
Mona, Licia
Piontek, Dennis
author_facet Plu, Matthieu
Bigeard, Guillaume
Sicˇ, Bojan
Emili, Emanuele
Bugliaro Goggia, Luca
El Amraoui, Laaziz
Guth, Jonathan
Josse, Beatrice
Mona, Licia
Piontek, Dennis
author_sort Plu, Matthieu
collection Unknown
description Numerical dispersion models are used operationally worldwide to mitigate the effect of volcanic ash on aviation. In order to improve the representation of the horizontal dispersion of ash plumes and of the 3D concentration of ash, a study was conducted using the MOCAGE model during the EUNADICS-AV project. Source term modelling and assimilation of different data were investigated. A sensitivity study to source term formulation showed that a resolved source term, using the FPLUME plume-rise model in MOCAGE, instead of a parameterised source term, induces a more realistic representation of the horizontal dispersion of the ash plume. The FPLUME simulation provides more concentrated and focused ash concentrations in the horizontal and the vertical dimensions than the other source term. The assimilation of MODIS Aerosol Optical Depth has an impact on the horizontal dispersion the plume, but this effect is rather low and local, compared to source term improvement. More promising results are obtained with the continuous assimilation of ground-based lidar profiles, which improves the vertical distribution of ash and helps to reach realistic values of ash concentrations. The improvement can remain several hours after and several hundred kilometers away downstream to the assimilated profiles.
format Article in Journal/Newspaper
genre Eyjafjallajökull
genre_facet Eyjafjallajökull
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op_doi https://doi.org/10.5194/nhess-2021-97
op_relation https://elib.dlr.de/142084/1/nhess-2021-97.pdf
Plu, Matthieu und Bigeard, Guillaume und Sicˇ, Bojan und Emili, Emanuele und Bugliaro Goggia, Luca und El Amraoui, Laaziz und Guth, Jonathan und Josse, Beatrice und Mona, Licia und Piontek, Dennis (2021) Modelling the volcanic ash plume from Eyjafjallajökull eruption (May 2010) over Europe: evaluation of the benefit of source term improvements and of the assimilation of aerosol measurements. Natural Hazards and Earth System Sciences (NHESS), 2021, Seiten 1-24. Copernicus Publications. doi:10.5194/nhess-2021-97 <https://doi.org/10.5194/nhess-2021-97>. ISSN 1561-8633.
op_rights cc_by
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publishDate 2021
publisher Copernicus Publications
record_format openpolar
spelling ftdlr:oai:elib.dlr.de:142084 2025-06-15T14:26:36+00:00 Modelling the volcanic ash plume from Eyjafjallajökull eruption (May 2010) over Europe: evaluation of the benefit of source term improvements and of the assimilation of aerosol measurements Plu, Matthieu Bigeard, Guillaume Sicˇ, Bojan Emili, Emanuele Bugliaro Goggia, Luca El Amraoui, Laaziz Guth, Jonathan Josse, Beatrice Mona, Licia Piontek, Dennis 2021-03-21 application/pdf https://elib.dlr.de/142084/ https://nhess.copernicus.org/preprints/nhess-2021-97/ en eng Copernicus Publications https://elib.dlr.de/142084/1/nhess-2021-97.pdf Plu, Matthieu und Bigeard, Guillaume und Sicˇ, Bojan und Emili, Emanuele und Bugliaro Goggia, Luca und El Amraoui, Laaziz und Guth, Jonathan und Josse, Beatrice und Mona, Licia und Piontek, Dennis (2021) Modelling the volcanic ash plume from Eyjafjallajökull eruption (May 2010) over Europe: evaluation of the benefit of source term improvements and of the assimilation of aerosol measurements. Natural Hazards and Earth System Sciences (NHESS), 2021, Seiten 1-24. Copernicus Publications. doi:10.5194/nhess-2021-97 <https://doi.org/10.5194/nhess-2021-97>. ISSN 1561-8633. cc_by info:eu-repo/semantics/openAccess Wolkenphysik Zeitschriftenbeitrag PeerReviewed info:eu-repo/semantics/article 2021 ftdlr https://doi.org/10.5194/nhess-2021-97 2025-06-04T04:58:10Z Numerical dispersion models are used operationally worldwide to mitigate the effect of volcanic ash on aviation. In order to improve the representation of the horizontal dispersion of ash plumes and of the 3D concentration of ash, a study was conducted using the MOCAGE model during the EUNADICS-AV project. Source term modelling and assimilation of different data were investigated. A sensitivity study to source term formulation showed that a resolved source term, using the FPLUME plume-rise model in MOCAGE, instead of a parameterised source term, induces a more realistic representation of the horizontal dispersion of the ash plume. The FPLUME simulation provides more concentrated and focused ash concentrations in the horizontal and the vertical dimensions than the other source term. The assimilation of MODIS Aerosol Optical Depth has an impact on the horizontal dispersion the plume, but this effect is rather low and local, compared to source term improvement. More promising results are obtained with the continuous assimilation of ground-based lidar profiles, which improves the vertical distribution of ash and helps to reach realistic values of ash concentrations. The improvement can remain several hours after and several hundred kilometers away downstream to the assimilated profiles. Article in Journal/Newspaper Eyjafjallajökull Unknown
spellingShingle Wolkenphysik
Plu, Matthieu
Bigeard, Guillaume
Sicˇ, Bojan
Emili, Emanuele
Bugliaro Goggia, Luca
El Amraoui, Laaziz
Guth, Jonathan
Josse, Beatrice
Mona, Licia
Piontek, Dennis
Modelling the volcanic ash plume from Eyjafjallajökull eruption (May 2010) over Europe: evaluation of the benefit of source term improvements and of the assimilation of aerosol measurements
title Modelling the volcanic ash plume from Eyjafjallajökull eruption (May 2010) over Europe: evaluation of the benefit of source term improvements and of the assimilation of aerosol measurements
title_full Modelling the volcanic ash plume from Eyjafjallajökull eruption (May 2010) over Europe: evaluation of the benefit of source term improvements and of the assimilation of aerosol measurements
title_fullStr Modelling the volcanic ash plume from Eyjafjallajökull eruption (May 2010) over Europe: evaluation of the benefit of source term improvements and of the assimilation of aerosol measurements
title_full_unstemmed Modelling the volcanic ash plume from Eyjafjallajökull eruption (May 2010) over Europe: evaluation of the benefit of source term improvements and of the assimilation of aerosol measurements
title_short Modelling the volcanic ash plume from Eyjafjallajökull eruption (May 2010) over Europe: evaluation of the benefit of source term improvements and of the assimilation of aerosol measurements
title_sort modelling the volcanic ash plume from eyjafjallajökull eruption (may 2010) over europe: evaluation of the benefit of source term improvements and of the assimilation of aerosol measurements
topic Wolkenphysik
topic_facet Wolkenphysik
url https://elib.dlr.de/142084/
https://nhess.copernicus.org/preprints/nhess-2021-97/