Streams and Bubbles: Tidal Shaping of Planetary Outflows

Fuente: arXiv
Saved in:
Bibliographic Details
Main Authors: MacLeod, Morgan, Oklopčić, Antonija, Nail, Fabienne, Linssen, Dion
Format: Preprint
Published: 2024
Subjects:
Online Access:
Tags: Add Tag
No Tags, Be the first to tag this record!
_version_ 1866929599503400960
author MacLeod, Morgan
Oklopčić, Antonija
Nail, Fabienne
Linssen, Dion
author_facet MacLeod, Morgan
Oklopčić, Antonija
Nail, Fabienne
Linssen, Dion
contents Planets lose mass to atmospheric outflows, and this mass loss is thought to be central in shaping the bimodal population of gaseous giant and rocky terrestrial exoplanets in close orbits. We model the escape of planetary atmospheres in three dimensional gas dynamic simulations in order to study their emergent morphology. Planetary outflows show a range of shapes from fast, isotropic outflows bounded by bow shocks to slower motion confined to thin streams. We show that a crucial factor is the role of the tidal gravity and orbiting reference frame in which planets lose mass. Flows can be characterized by the dimensionless Rossby number evaluated at the scale of the Hill sphere. Flows with a low Rossby number are significantly deviated and shaped by the stellar gravity, while those with a high Rossby number are comparatively unaffected. Rossby number alone is sufficient to predict outflow morphology as well as kinematic gradients across transit. The known exoplanet population should span a range of outflow Rossby numbers and thus shapes. We can use this information to constrain outflow physics and to inform observing strategies.
format Preprint
id arxiv_https___arxiv_org_abs_2411_12895
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Streams and Bubbles: Tidal Shaping of Planetary Outflows
MacLeod, Morgan
Oklopčić, Antonija
Nail, Fabienne
Linssen, Dion
Earth and Planetary Astrophysics
Solar and Stellar Astrophysics
Planets lose mass to atmospheric outflows, and this mass loss is thought to be central in shaping the bimodal population of gaseous giant and rocky terrestrial exoplanets in close orbits. We model the escape of planetary atmospheres in three dimensional gas dynamic simulations in order to study their emergent morphology. Planetary outflows show a range of shapes from fast, isotropic outflows bounded by bow shocks to slower motion confined to thin streams. We show that a crucial factor is the role of the tidal gravity and orbiting reference frame in which planets lose mass. Flows can be characterized by the dimensionless Rossby number evaluated at the scale of the Hill sphere. Flows with a low Rossby number are significantly deviated and shaped by the stellar gravity, while those with a high Rossby number are comparatively unaffected. Rossby number alone is sufficient to predict outflow morphology as well as kinematic gradients across transit. The known exoplanet population should span a range of outflow Rossby numbers and thus shapes. We can use this information to constrain outflow physics and to inform observing strategies.
title Streams and Bubbles: Tidal Shaping of Planetary Outflows
topic Earth and Planetary Astrophysics
Solar and Stellar Astrophysics
url https://arxiv.org/abs/2411.12895