Orbital Migration through Atmospheric Mass Loss
arXiv:2411.18960 · doi:10.3847/1538-3881/ad944f
Abstract
Atmospheric mass loss is thought to have strongly shaped the sample of close-in exoplanets. These atmospheres should be lost isotropically, leading to no net migration on the planetary orbit. However, strong stellar winds can funnel the escaping atmosphere into a tail trailing the planet. We derive a simple kinematic model of the gravitational interaction between the planet and this anisotropic wind, and derive expressions for the expected migration of the planet. Over the expected range of parameters, we find typical migrations of a few tenths to a few percent inward. We argue that this modest migration may be observable for planet pairs near mean motion resonances, which would provide an independent observational constraint on atmospheric mass loss models.
Accepted to the Astronomical Journal on 18 Nov. 2024
References in corpus (10)
- Most 1.6 Earth-Radius Planets are not Rocky
- Atmospheric Escape from Hot Jupiters
- Growth Model Interpretation of Planet Size Distribution
- Stellar Winds on the Main-Sequence II: the Evolution of Rotation and Winds
- The Gaia-Kepler Stellar Properties Catalog. II. Planet Radius Demographics as a Function of Stellar Mass and Age
- A Joint Mass-Radius-Period Distribution of Exoplanets
- Thick Disks in the Hubble Space Telescope Frontier Fields
- Radiative Thrusters on Close-in Extrasolar Planets
- Dynamical Evolution of Closely Packed Multiple Planetary Systems Subject to Atmospheric Mass-Loss
- Orbital Evolution of Close-in Super-Earths Driven by Atmospheric Escape