Radius and mass distribution of ultra-short period planets
arXiv:2105.10001 · doi:10.3847/1538-4357/ac0bb8
Abstract
Ultra-short period (USP) planets are an enigmatic subset of exoplanets defined by having orbital periods 1 day. It is still not understood how USP planets form, or to what degree they differ from planets with longer orbital periods. Most USP planets have radii 2 , while planets that orbit further from their star extend to Jupiter size ( 10 ). Several theories attempt to explain the formation and composition of USP planets: they could be remnant cores of larger gas giants that lost their atmospheres due to photo-evaporation or Roche lobe overflow, or they could have developed through mass accretion in the innermost part of the protoplanetary disk. The radius and mass distribution of USP planets could provide important clues to distinguish between potential formation mechanisms. In this study, we first verify and update the Kepler catalog of USP planet host star properties, incorporating new data collected by the Gaia mission where applicable. We then use the transit depths measured by Kepler to derive a radius distribution and present occurrence rates for USP planets. Using spherical and tidally distorted planet models, we then derive a mass distribution for USP planets. Comparisons between the updated USP planet mass distribution and simulated planetary systems offer further insights into the formation and evolutionary processes shaping USP planet populations.
Submitted to ApJ. Revised based on reviewer feedback. Comments welcome. 16 pages, 7 figures
References in corpus (20)
- Mass-Radius Relationships for Solid Exoplanets
- Atmospheric Escape from Hot Jupiters
- Comparing Jupiter interior structure models to Juno gravity measurements and the role of a dilute core
- Exoplanet population inference and the abundance of Earth analogs from noisy, incomplete catalogs
- A Study of the Shortest-Period Planets Found With Kepler
- The Occurrence of Rocky Habitable Zone Planets Around Solar-Like Stars from Kepler Data
- A Statistical Reconstruction of the Planet Population Around Kepler Solar-Type Stars
- Minimum Core Masses for Giant Planet Formation With Realistic Equations of State and Opacities
- The Formation of Jupiter's Diluted Core by a Giant Impact
- Formation of Ultra-Short-Period Planets by Obliquity-Driven Tidal Runaway
- From Hot Jupiters to Super-Earths via Roche Lobe Overflow
- A New Model of Roche-lobe Overflow for Short-Period Gaseous Planets and Binary Stars
- A Joint Mass-Radius-Period Distribution of Exoplanets
- Ultra-short-period Planets are Stable Against Tidal Inspiral
- A population of planetary systems characterized by short-period, Earth-sized planets
- An ultra-short period rocky super-Earth orbiting the G2-star HD 80653
- Ultra Short Period Planets in K2 with companions: a double transiting system for EPIC 220674823
- Earths in Other Solar Systems N-body simulations: the Role of Orbital Damping in Reproducing the Kepler Planetary Systems
- Instability of mass transfer in a planet-star system
- On the origin of dynamically isolated hot Earths