The Polar Stratosphere of Jupiter

Fuente: arXiv
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Auteurs principaux: Hue, Vincent, Cavalié, Thibault, Sinclair, James A., Zhang, Xi, Benmahi, Bilal, Rodríguez-Ovalle, Pablo, Giles, Rohini S., Stallard, Tom S., Johnson, Rosie E., Dobrijevic, Michel, Fouchet, Thierry, Greathouse, Thomas K., Grodent, Denis C., Hueso, Ricardo, Mousis, Olivier, Nixon, Conor A.
Format: Preprint
Publié: 2024
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author Hue, Vincent
Cavalié, Thibault
Sinclair, James A.
Zhang, Xi
Benmahi, Bilal
Rodríguez-Ovalle, Pablo
Giles, Rohini S.
Stallard, Tom S.
Johnson, Rosie E.
Dobrijevic, Michel
Fouchet, Thierry
Greathouse, Thomas K.
Grodent, Denis C.
Hueso, Ricardo
Mousis, Olivier
Nixon, Conor A.
author_facet Hue, Vincent
Cavalié, Thibault
Sinclair, James A.
Zhang, Xi
Benmahi, Bilal
Rodríguez-Ovalle, Pablo
Giles, Rohini S.
Stallard, Tom S.
Johnson, Rosie E.
Dobrijevic, Michel
Fouchet, Thierry
Greathouse, Thomas K.
Grodent, Denis C.
Hueso, Ricardo
Mousis, Olivier
Nixon, Conor A.
contents Observations of the Jovian upper atmosphere at high latitudes in the UV, IR and mm/sub-mm all indicate that the chemical distributions and thermal structure are broadly influenced by auroral particle precipitations. Mid-IR and UV observations have shown that several light hydrocarbons (up to 6 carbon atoms) have altered abundances near Jupiter's main auroral ovals. Ion-neutral reactions influence the hydrocarbon chemistry, with light hydrocarbons produced in the upper stratosphere, and heavier hydrocarbons as well as aerosols produced in the lower stratosphere. One consequence of the magnetosphere-ionosphere coupling is the existence of ionospheric jets that propagate into the neutral middle stratosphere, likely acting as a dynamical barrier to the aurora-produced species. As the ionospheric jets and the background atmosphere do not co-rotate at the same rate, this creates a complex system where chemistry and dynamics are intertwined. The ion-neutral reactions produce species with a spatial distribution following the SIII longitude system in the upper stratosphere. As these species sediment down to the lower stratosphere, and because of the progressive dynamical decoupling between the ionospheric flows and the background atmosphere, the spatial distribution of the auroral-related species progressively follows a zonal distribution with increasing pressures that ultimately produces a system of polar and subpolar hazes that extends down to the bottom of the stratosphere. This paper reviews the most recent work addressing different aspects of this environment.
format Preprint
id arxiv_https___arxiv_org_abs_2410_20413
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle The Polar Stratosphere of Jupiter
Hue, Vincent
Cavalié, Thibault
Sinclair, James A.
Zhang, Xi
Benmahi, Bilal
Rodríguez-Ovalle, Pablo
Giles, Rohini S.
Stallard, Tom S.
Johnson, Rosie E.
Dobrijevic, Michel
Fouchet, Thierry
Greathouse, Thomas K.
Grodent, Denis C.
Hueso, Ricardo
Mousis, Olivier
Nixon, Conor A.
Earth and Planetary Astrophysics
Observations of the Jovian upper atmosphere at high latitudes in the UV, IR and mm/sub-mm all indicate that the chemical distributions and thermal structure are broadly influenced by auroral particle precipitations. Mid-IR and UV observations have shown that several light hydrocarbons (up to 6 carbon atoms) have altered abundances near Jupiter's main auroral ovals. Ion-neutral reactions influence the hydrocarbon chemistry, with light hydrocarbons produced in the upper stratosphere, and heavier hydrocarbons as well as aerosols produced in the lower stratosphere. One consequence of the magnetosphere-ionosphere coupling is the existence of ionospheric jets that propagate into the neutral middle stratosphere, likely acting as a dynamical barrier to the aurora-produced species. As the ionospheric jets and the background atmosphere do not co-rotate at the same rate, this creates a complex system where chemistry and dynamics are intertwined. The ion-neutral reactions produce species with a spatial distribution following the SIII longitude system in the upper stratosphere. As these species sediment down to the lower stratosphere, and because of the progressive dynamical decoupling between the ionospheric flows and the background atmosphere, the spatial distribution of the auroral-related species progressively follows a zonal distribution with increasing pressures that ultimately produces a system of polar and subpolar hazes that extends down to the bottom of the stratosphere. This paper reviews the most recent work addressing different aspects of this environment.
title The Polar Stratosphere of Jupiter
topic Earth and Planetary Astrophysics
url https://arxiv.org/abs/2410.20413