Geometric Considerations in Hot Jupiter Magnetic Drag Models

Fuente: arXiv
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Hauptverfasser: Christie, Duncan A., Evans-Soma, Tom M., Mayne, Nathan J., Kohary, Krisztian
Format: Preprint
Veröffentlicht: 2025
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author Christie, Duncan A.
Evans-Soma, Tom M.
Mayne, Nathan J.
Kohary, Krisztian
author_facet Christie, Duncan A.
Evans-Soma, Tom M.
Mayne, Nathan J.
Kohary, Krisztian
contents Magnetic fields are expected to impact the atmospheric dynamics of hot and ultra-hot Jupiters due to their increased ionization fractions, compared to that of cooler exoplanets, but our ability to model these magnetic processes is limited by the different coupling regimes between the day and night sides of the planets. One common approach is to approximate the magnetic interactions as a drag acting on the atmosphere. In this work, we examine, within the context of this drag approximation, the impact of including vertical and meridional drag, in addition to zonal drag, from a background dipole magnetic field on the flows in hot Jupiter atmospheres as well as a relaxation of the assumption of solely meridional currents and demonstrate that the inclusion of meridional and vertical drag can limit flows over the poles in hotter atmospheres, something not seen in models that only consider zonal drag, and the assumption of only meridional currents results in an underestimation of the equatorial drag in all cases examined.
format Preprint
id arxiv_https___arxiv_org_abs_2507_08511
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Geometric Considerations in Hot Jupiter Magnetic Drag Models
Christie, Duncan A.
Evans-Soma, Tom M.
Mayne, Nathan J.
Kohary, Krisztian
Earth and Planetary Astrophysics
Magnetic fields are expected to impact the atmospheric dynamics of hot and ultra-hot Jupiters due to their increased ionization fractions, compared to that of cooler exoplanets, but our ability to model these magnetic processes is limited by the different coupling regimes between the day and night sides of the planets. One common approach is to approximate the magnetic interactions as a drag acting on the atmosphere. In this work, we examine, within the context of this drag approximation, the impact of including vertical and meridional drag, in addition to zonal drag, from a background dipole magnetic field on the flows in hot Jupiter atmospheres as well as a relaxation of the assumption of solely meridional currents and demonstrate that the inclusion of meridional and vertical drag can limit flows over the poles in hotter atmospheres, something not seen in models that only consider zonal drag, and the assumption of only meridional currents results in an underestimation of the equatorial drag in all cases examined.
title Geometric Considerations in Hot Jupiter Magnetic Drag Models
topic Earth and Planetary Astrophysics
url https://arxiv.org/abs/2507.08511