Numerical Modeling of the Ash Cloud Movement from the Catastrophic Eruption of the Sheveluch Volcano in November 1964

This paper reconstructs, for the first time, the motion dynamics of an eruptive cloud formed during the catastrophic eruption of the Sheveluch volcano in November 1964 (Volcanic Explosivity Index 4+). This became possible due to the public availability of atmospheric reanalysis data from the ERA-40...

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Published in:Remote Sensing
Main Authors: Girina O.A., Malkovsky S.I., Sorokin A.A., Loupian E.A., Korolev S.P.
Format: Text
Language:Russian
Published: 2022
Subjects:
Online Access:http://repo.kscnet.ru/4300/
https://www.mdpi.com/journal/remotesensing/special_issues/volcanohazard_rs#info
https://doi.org/10.3390/rs14143449
id ftinstvs:oai:repo.kscnet.ru:4300
record_format openpolar
spelling ftinstvs:oai:repo.kscnet.ru:4300 2023-05-15T15:42:31+02:00 Numerical Modeling of the Ash Cloud Movement from the Catastrophic Eruption of the Sheveluch Volcano in November 1964 Girina O.A. Malkovsky S.I. Sorokin A.A. Loupian E.A. Korolev S.P. 2022-07-18 http://repo.kscnet.ru/4300/ https://www.mdpi.com/journal/remotesensing/special_issues/volcanohazard_rs#info https://doi.org/10.3390/rs14143449 ru rus Girina O.A. <http://repo.kscnet.ru/view/creators/Girina=3AO=2EA=2E=3A=3A.html>, Malkovsky S.I. <http://repo.kscnet.ru/view/creators/Malkovsky=3AS=2EI=2E=3A=3A.html>, Sorokin A.A. <http://repo.kscnet.ru/view/creators/Sorokin=3AA=2EA=2E=3A=3A.html>, Loupian E.A. <http://repo.kscnet.ru/view/creators/Loupian=3AE=2EA=2E=3A=3A.html>, Korolev S.P. <http://repo.kscnet.ru/view/creators/Korolev=3AS=2EP=2E=3A=3A.html> (2022) Numerical Modeling of the Ash Cloud Movement from the Catastrophic Eruption of the Sheveluch Volcano in November 1964 // Remote Sensing. Вып. 14. № 3449. doi: https://doi.org/10.3390/rs14143449. 38.37.25 Вулканология Шивелуч Статья PeerReviewed 2022 ftinstvs https://doi.org/10.3390/rs14143449 2022-08-09T17:07:01Z This paper reconstructs, for the first time, the motion dynamics of an eruptive cloud formed during the catastrophic eruption of the Sheveluch volcano in November 1964 (Volcanic Explosivity Index 4+). This became possible due to the public availability of atmospheric reanalysis data from the ERA-40 archive of the European Center for Medium-Range Weather Forecasts (ECMWF) and the development of numerical modeling of volcanic ash cloud propagation. The simulation of the eruptive cloud motion process, which was carried out using the FALL3D and PUFF models, made it possible to clarify the sequence of events of this eruption (destruction of extrusive domes in the crater and the formation of an eruptive column and pyroclastic flows), which lasted only 1 h 12 min. During the eruption, the ash cloud consisted of two parts: the main eruptive cloud that rose up to 15,000 m above sea level (a.s.l.), and the co-ignimbrite cloud that formed above the moving pyroclastic flows. The ashfall in Ust-Kamchatsk (Kamchatka) first occurred out of the eruptive cloud moving at a higher speed, then out of the co-ignimbrite cloud. In Nikolskoye (Bering Island, Commander Islands), ash fell only out of the co-ignimbrite cloud. Under the turbulent diffusion, the forefront of the main eruptive cloud rose slowly in the atmosphere and reached 16,500 m a.s.l. by 04:07 UTC on November 12. Three days after the eruption began, the eruptive cloud stretched for 3000 km over the territories of the countries of Russia, Canada, the USA, Mexico, and over both the Bering Sea and the Pacific Ocean. It is assumed that the well-known long-term decrease in the solar radiation intensity in the northern latitudes from 1963–1966, which was established according to the world remote sensing data, was associated with the spread of aerosol clouds formed not only by the Agung volcano, but those formed during the 1964 Sheveluch volcano catastrophic eruption Text Bering Island Bering Sea Kamchatka Institute of Volcanology and Seismology, Petropavlovsk-Kamchatsky: IVS FEB RAS Repository Bering Sea Canada Pacific Ust’-Kamchatsk ENVELOPE(162.484,162.484,56.225,56.225) Remote Sensing 14 14 3449
institution Open Polar
collection Institute of Volcanology and Seismology, Petropavlovsk-Kamchatsky: IVS FEB RAS Repository
op_collection_id ftinstvs
language Russian
topic 38.37.25 Вулканология
Шивелуч
spellingShingle 38.37.25 Вулканология
Шивелуч
Girina O.A.
Malkovsky S.I.
Sorokin A.A.
Loupian E.A.
Korolev S.P.
Numerical Modeling of the Ash Cloud Movement from the Catastrophic Eruption of the Sheveluch Volcano in November 1964
topic_facet 38.37.25 Вулканология
Шивелуч
description This paper reconstructs, for the first time, the motion dynamics of an eruptive cloud formed during the catastrophic eruption of the Sheveluch volcano in November 1964 (Volcanic Explosivity Index 4+). This became possible due to the public availability of atmospheric reanalysis data from the ERA-40 archive of the European Center for Medium-Range Weather Forecasts (ECMWF) and the development of numerical modeling of volcanic ash cloud propagation. The simulation of the eruptive cloud motion process, which was carried out using the FALL3D and PUFF models, made it possible to clarify the sequence of events of this eruption (destruction of extrusive domes in the crater and the formation of an eruptive column and pyroclastic flows), which lasted only 1 h 12 min. During the eruption, the ash cloud consisted of two parts: the main eruptive cloud that rose up to 15,000 m above sea level (a.s.l.), and the co-ignimbrite cloud that formed above the moving pyroclastic flows. The ashfall in Ust-Kamchatsk (Kamchatka) first occurred out of the eruptive cloud moving at a higher speed, then out of the co-ignimbrite cloud. In Nikolskoye (Bering Island, Commander Islands), ash fell only out of the co-ignimbrite cloud. Under the turbulent diffusion, the forefront of the main eruptive cloud rose slowly in the atmosphere and reached 16,500 m a.s.l. by 04:07 UTC on November 12. Three days after the eruption began, the eruptive cloud stretched for 3000 km over the territories of the countries of Russia, Canada, the USA, Mexico, and over both the Bering Sea and the Pacific Ocean. It is assumed that the well-known long-term decrease in the solar radiation intensity in the northern latitudes from 1963–1966, which was established according to the world remote sensing data, was associated with the spread of aerosol clouds formed not only by the Agung volcano, but those formed during the 1964 Sheveluch volcano catastrophic eruption
format Text
author Girina O.A.
Malkovsky S.I.
Sorokin A.A.
Loupian E.A.
Korolev S.P.
author_facet Girina O.A.
Malkovsky S.I.
Sorokin A.A.
Loupian E.A.
Korolev S.P.
author_sort Girina O.A.
title Numerical Modeling of the Ash Cloud Movement from the Catastrophic Eruption of the Sheveluch Volcano in November 1964
title_short Numerical Modeling of the Ash Cloud Movement from the Catastrophic Eruption of the Sheveluch Volcano in November 1964
title_full Numerical Modeling of the Ash Cloud Movement from the Catastrophic Eruption of the Sheveluch Volcano in November 1964
title_fullStr Numerical Modeling of the Ash Cloud Movement from the Catastrophic Eruption of the Sheveluch Volcano in November 1964
title_full_unstemmed Numerical Modeling of the Ash Cloud Movement from the Catastrophic Eruption of the Sheveluch Volcano in November 1964
title_sort numerical modeling of the ash cloud movement from the catastrophic eruption of the sheveluch volcano in november 1964
publishDate 2022
url http://repo.kscnet.ru/4300/
https://www.mdpi.com/journal/remotesensing/special_issues/volcanohazard_rs#info
https://doi.org/10.3390/rs14143449
long_lat ENVELOPE(162.484,162.484,56.225,56.225)
geographic Bering Sea
Canada
Pacific
Ust’-Kamchatsk
geographic_facet Bering Sea
Canada
Pacific
Ust’-Kamchatsk
genre Bering Island
Bering Sea
Kamchatka
genre_facet Bering Island
Bering Sea
Kamchatka
op_relation Girina O.A. <http://repo.kscnet.ru/view/creators/Girina=3AO=2EA=2E=3A=3A.html>, Malkovsky S.I. <http://repo.kscnet.ru/view/creators/Malkovsky=3AS=2EI=2E=3A=3A.html>, Sorokin A.A. <http://repo.kscnet.ru/view/creators/Sorokin=3AA=2EA=2E=3A=3A.html>, Loupian E.A. <http://repo.kscnet.ru/view/creators/Loupian=3AE=2EA=2E=3A=3A.html>, Korolev S.P. <http://repo.kscnet.ru/view/creators/Korolev=3AS=2EP=2E=3A=3A.html> (2022) Numerical Modeling of the Ash Cloud Movement from the Catastrophic Eruption of the Sheveluch Volcano in November 1964 // Remote Sensing. Вып. 14. № 3449. doi: https://doi.org/10.3390/rs14143449.
op_doi https://doi.org/10.3390/rs14143449
container_title Remote Sensing
container_volume 14
container_issue 14
container_start_page 3449
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