An Extremely Elongated Cloud over Arsia Mons Volcano on Mars: II. Mesoscale modeling

Fuente: arXiv
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Hauptverfasser: From, Jorge, :, Hernández-Bernal, Jorge, Spiga, Aymeric, Lavega, Agustin Sanchez, Gaztelurrutia, Teresa del Rio, Forget, Francois, Millour, Ehouarn
Format: Preprint
Veröffentlicht: 2024
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author From, Jorge
:
Hernández-Bernal, Jorge
Spiga, Aymeric
Lavega, Agustin Sanchez
Gaztelurrutia, Teresa del Rio
Forget, Francois
Millour, Ehouarn
author_facet From, Jorge
:
Hernández-Bernal, Jorge
Spiga, Aymeric
Lavega, Agustin Sanchez
Gaztelurrutia, Teresa del Rio
Forget, Francois
Millour, Ehouarn
contents In a previous work (Hernández-Bernal et al. 2021) we performed an observational analysis of the Arsia Mons Elongated Cloud (AMEC), which stands out due to its impressive size and shape, quick dynamics, and the fact that it happens during the martian dusty season. Observations show that its morphology can be split in a head, on the western slope of the volcano of around 120 km in diameter; and a tail, that expands to the west reaching more than 1000 km in length, making the AMEC the longest orographic cloud observed so far in the solar system. In this work we run the LMD (Laboratoire de Météorologie Dynamique) Mesoscale Model to gain insight into the physics of the AMEC. We note that it is coincident in terms of local time and seasonality with the fastest winds on the summit of Arsia Mons. A downslope windstorm on the western slope is followed by a hydraulic-like jump triggering a strong vertical updraft that propagates upwards in the atmosphere, causing a drop in temperatures of down to 30K at 40-50 km in altitude, spatially and temporarily coincident with the observed head of the AMEC. However the model does not reproduce the microphysics of this cloud: the optical depth is too low and the expansion of the tail does not happen in the model. The observed diurnal cycle is correctly captured by the model for the head of the cloud. This work raises new questions that will guide future observations of the AMEC.
format Preprint
id arxiv_https___arxiv_org_abs_2410_03025
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle An Extremely Elongated Cloud over Arsia Mons Volcano on Mars: II. Mesoscale modeling
From, Jorge
:
Hernández-Bernal, Jorge
Spiga, Aymeric
Lavega, Agustin Sanchez
Gaztelurrutia, Teresa del Rio
Forget, Francois
Millour, Ehouarn
Earth and Planetary Astrophysics
In a previous work (Hernández-Bernal et al. 2021) we performed an observational analysis of the Arsia Mons Elongated Cloud (AMEC), which stands out due to its impressive size and shape, quick dynamics, and the fact that it happens during the martian dusty season. Observations show that its morphology can be split in a head, on the western slope of the volcano of around 120 km in diameter; and a tail, that expands to the west reaching more than 1000 km in length, making the AMEC the longest orographic cloud observed so far in the solar system. In this work we run the LMD (Laboratoire de Météorologie Dynamique) Mesoscale Model to gain insight into the physics of the AMEC. We note that it is coincident in terms of local time and seasonality with the fastest winds on the summit of Arsia Mons. A downslope windstorm on the western slope is followed by a hydraulic-like jump triggering a strong vertical updraft that propagates upwards in the atmosphere, causing a drop in temperatures of down to 30K at 40-50 km in altitude, spatially and temporarily coincident with the observed head of the AMEC. However the model does not reproduce the microphysics of this cloud: the optical depth is too low and the expansion of the tail does not happen in the model. The observed diurnal cycle is correctly captured by the model for the head of the cloud. This work raises new questions that will guide future observations of the AMEC.
title An Extremely Elongated Cloud over Arsia Mons Volcano on Mars: II. Mesoscale modeling
topic Earth and Planetary Astrophysics
url https://arxiv.org/abs/2410.03025