The initial physical conditions of Kepler-36 b & c
arXiv:1511.07385 · doi:10.3847/2041-8205/819/1/L10
Abstract
The Kepler planetary system consists of two exoplanets at similar separations (0.115 & 0.128 AU), which have dramatically different densities. The inner planet has a density consistent with an Earth-like composition, while the outer planet is extremely low-density, such that it must contain a voluminous H/He envelope. Such a density difference would pose a problem for any formation mechanism if their current densities were representative of their composition at formation. However, both planets are at close enough separations to have undergone significant evaporation in the past. We constrain the core-mass, core composition, initial envelope-mass, and initial cooling-time of each planet using evaporation models conditioned on their present-day masses and radii, as inferred from Kepler photometry and transit timing analysis. The inner planet is consistent with being an evaporatively stripped core, while the outer planet has retained some of its initial envelope due to its higher core-mass. Therefore, both planets could have had a similar formation pathway, with the inner planet having an initial envelope-mass fraction of and core-mass of M, while the outer had an initial envelope-mass fraction of order 15-30\% and core-mass M. Finally, our results indicate that the outer planet had a long ( Myr) initial cooling-time, much longer than would naively be predicted from simple timescale arguments. The long initial cooling-time could be evidence for a dramatic early cooling episode such as the recently proposed "boil-off" process.
Accepted version in ApJL, 6 pages, 3 figures
References in corpus (14)
- Modules for Experiments in Stellar Astrophysics (MESA)
- Most 1.6 Earth-Radius Planets are not Rocky
- Atmospheric Escape from Hot Jupiters
- The Occurrence and Mass Distribution of Close-in Super-Earths, Neptunes, and Jupiters
- Planetary population synthesis coupled with atmospheric escape: a statistical view of evaporation
- Exoplanet population inference and the abundance of Earth analogs from noisy, incomplete catalogs
- Make Super-Earths, Not Jupiters: Accreting Nebular Gas onto Solid Cores at 0.1 AU and Beyond
- Planetary Candidates Observed by Kepler VI: Planet Sample from Q1-Q16 (47 Months)
- Inferring the eccentricity distribution
- Atmospheric Mass Loss During Planet Formation: The Importance of Planetesimal Impacts
- A Statistical Reconstruction of the Planet Population Around Kepler Solar-Type Stars
- Obliquities of Kepler Stars: Comparison of Single- and Multiple-Transit Systems
- Giant Impact: An Efficient Mechanism for the Devolatilization of Super-Earths
- The Albedos of Kepler's Close-in super-Earths
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- TESS Hunt for Young and Maturing Exoplanets (THYME) VI: an 11 Myr giant planet transiting a very low-mass star in Lower Centaurus Crux
- Testing exoplanet evaporation with multi-transiting systems
- The Compositional Diversity of Low-Mass Exoplanets
- New Formation Models for the Kepler-36 System
- Survival of a planet in short-period Neptunian desert under effect of photo-evaporation
- Evolution of the Exoplanet Size Distribution: Forming Large Super-Earths Over Billions of Years
- Hot, rocky and warm, puffy super-Earths orbiting TOI-402 (HD 15337)
- Irradiation-driven escape of primordial planetary atmospheres I. The ATES photoionization hydrodynamics code
- Constraining the entropy of formation from young transiting planets
- Evaporation of Low-Mass Planet Atmospheres: Multidimensional Hydrodynamics with Consistent Thermochemistry
- Young planets under extreme UV irradiation. I. Upper atmosphere modelling of the young exoplanet K2-33b
- Near Mean-motion Resonances in the Systems Observed by Kepler: Affected by Mass Accretion and Type I Migration
- A HARDCORE model for constraining an exoplanet's core size
- So close, so different: characterization of the K2-36 planetary system with HARPS-N
- Outcomes of Grazing Impacts Between Sub-Neptunes in Kepler Multis
- Exoplanet atmosphere evolution: emulation with neural networks
- Unveiling the Planet Population at Birth
- Discovery and Characterization of Kepler-36b
- Dynamical evolution and stability maps of the Proxima Centauri system
- Hidden water in magma ocean exoplanets