Radiatively Active Clouds and Magnetic Effects Explored in a Grid of Hot Jupiter GCMs

Fuente: arXiv
Saved in:
Bibliographic Details
Main Authors: Kennedy, Thomas D., Rauscher, Emily, Malsky, Isaac, Roman, Michael T., Beltz, Hayley
Format: Preprint
Published: 2024
Subjects:
Online Access:
Tags: Add Tag
No Tags, Be the first to tag this record!
_version_ 1866909373180149760
author Kennedy, Thomas D.
Rauscher, Emily
Malsky, Isaac
Roman, Michael T.
Beltz, Hayley
author_facet Kennedy, Thomas D.
Rauscher, Emily
Malsky, Isaac
Roman, Michael T.
Beltz, Hayley
contents Cloud formation and magnetic effects are both expected to significantly impact the structures and observable properties of hot Jupiter atmospheres. For some hot Jupiters, thermal ionization and condensation can coexist in a single atmosphere, and both processes are important. We present a grid of general circulation models across a wide range of irradiation temperatures with and without incorporating the effects of magnetism and cloud formation to investigate how these processes work in tandem. We find that clouds are present in the atmosphere at all modeled irradiation temperatures, while magnetic effects are negligible for planets with irradiation temperatures cooler than 2000 K. At and above this threshold, clouds and magnetic fields shape atmospheres together, with mutual feedback. Models that include magnetism, through their influence on the temperature structure, produce more longitudinally symmetric dayside cloud coverage and more equatorially concentrated clouds on the nightside and morning terminator. To indicate how these processes would affect observables, we generate bolometric thermal and reflected phase curves from these models. The combination of clouds and magnetic effects increases thermal phase curve amplitudes and decreases peak offsets more than either process does individually.
format Preprint
id arxiv_https___arxiv_org_abs_2410_23436
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Radiatively Active Clouds and Magnetic Effects Explored in a Grid of Hot Jupiter GCMs
Kennedy, Thomas D.
Rauscher, Emily
Malsky, Isaac
Roman, Michael T.
Beltz, Hayley
Earth and Planetary Astrophysics
Cloud formation and magnetic effects are both expected to significantly impact the structures and observable properties of hot Jupiter atmospheres. For some hot Jupiters, thermal ionization and condensation can coexist in a single atmosphere, and both processes are important. We present a grid of general circulation models across a wide range of irradiation temperatures with and without incorporating the effects of magnetism and cloud formation to investigate how these processes work in tandem. We find that clouds are present in the atmosphere at all modeled irradiation temperatures, while magnetic effects are negligible for planets with irradiation temperatures cooler than 2000 K. At and above this threshold, clouds and magnetic fields shape atmospheres together, with mutual feedback. Models that include magnetism, through their influence on the temperature structure, produce more longitudinally symmetric dayside cloud coverage and more equatorially concentrated clouds on the nightside and morning terminator. To indicate how these processes would affect observables, we generate bolometric thermal and reflected phase curves from these models. The combination of clouds and magnetic effects increases thermal phase curve amplitudes and decreases peak offsets more than either process does individually.
title Radiatively Active Clouds and Magnetic Effects Explored in a Grid of Hot Jupiter GCMs
topic Earth and Planetary Astrophysics
url https://arxiv.org/abs/2410.23436