Tidal Inflation Reconciles Low-Density Sub-Saturns with Core Accretion
arXiv:2005.11209 · doi:10.3847/1538-4357/ab959c
Abstract
While the Solar System contains no planets between the sizes of Uranus and Saturn, our current exoplanet census includes several dozen such planets with well-measured masses and radii. These sub-Saturns exhibit a diversity of bulk densities, ranging from ~. When modeled simply as hydrogen/helium envelopes atop rocky cores, this diversity in densities translates to a diversity in planetary envelope fractions, $f_\rm{env}=M_\rm{env}/M_p$ ranging from ~ to ~. Planets with $f_\rm{env}\sim50\%$ pose a challenge to traditional models of giant planet formation by core-nucleated accretion, which predict the onset of runaway gas accretion when $M_\rm{env}\sim M_\rm{core}$. Here we show that many of these apparent $f_\rm{env}\sim50\%$ planets are less envelope rich than they seem, after accounting for tidal heating. We present a new framework for modeling sub-Saturn interiors that incorporates envelope inflation due to tides, which are driven by the observed non-zero eccentricities, as well as potential obliquities. Consequently, when we apply our models to known sub-Saturns, we infer lower $f_\rm{env}$ than tides-free estimates. We present a case study of K2-19 b, a moderately eccentric sub-Saturn. Neglecting tides, K2-19 b appears to have $f_\rm{env}\sim50\%$, poised precariously near the runaway threshold; by including tides, we find $f_\rm{env}\sim10\%$, resolving the tension. Through a systematic analysis of planets, we find that most (but not all) of the similarly envelope-rich planets have more modest envelopes of $f_\rm{env}\sim10\%-20\%$. Thus, many sub-Saturns may be understood as sub-Neptunes that have undergone significant radius inflation, rather than a separate class of objects. Tidal radius inflation likely plays an important role in other size classes of planets including ultra-low-density Jupiter-size planets like WASP-107 b.
Accepted for publication in ApJ, 17 pages, 8 figures. Code available at this URL: https://github.com/smillholland/Sub-Saturns/
References in corpus (30)
- Modules for Experiments in Stellar Astrophysics (MESA)
- The James Webb Space Telescope
- Most 1.6 Earth-Radius Planets are not Rocky
- Accurate, Empirical Radii and Masses of Planets and their Host Stars with Gaia Parallaxes
- Make Super-Earths, Not Jupiters: Accreting Nebular Gas onto Solid Cores at 0.1 AU and Beyond
- Tidal friction in close-in satellites and exoplanets. The Darwin theory re-visited
- A resonant chain of four transiting, sub-Neptune planets
- Hydrodynamics of Embedded Planets' First Atmospheres. II. A Rapid Recycling of Atmospheric Gas
- Tidal Heating of Extra-Solar Planets
- Forward and Inverse Modeling of the Emission and Transmission Spectrum of GJ 436b: Investigating Metal Enrichment, Tidal Heating, and Clouds
- Inflating and Deflating Hot Jupiters: Coupled Tidal and Thermal Evolution of Known Transiting Planets
- The Featureless Transmission Spectra of Two Super-Puff Planets
- Obliquity-Driven Sculpting of Exoplanetary Systems
- Deformation and tidal evolution of close-in planets and satellites using a Maxwell viscoelastic rheology
- Four Sub-Saturns with Dissimilar Densities: Windows into Planetary Cores and Envelopes
- Hydrodynamics of Embedded Planets' First Atmospheres. I. A Centrifugal Growth Barrier for 2D Flows
- Coupled Evolution with Tides of the Radius and Orbit of Transiting Giant Planets: General Results
- Deflating Super-Puffs: Impact of Photochemical Hazes on the Observed Mass-Radius Relationship of Low Mass Planets
- Tidally-Induced Radius Inflation of Sub-Neptunes
- The Boundary between Gas-rich and Gas-poor Planets
- Dusty outflows in planetary atmospheres: Understanding "super-puffs" and transmission spectra of sub-Neptunes
- Kepler-411: a four-planet system with an active host star
- Complete spin and orbital evolution of close-in bodies using a Maxwell viscoelastic rheology
- Long-Period Giant Companions to Three Compact, Multiplanet Systems
- Precise masses for the transiting planetary system HD 106315 with HARPS
- K2-98 b: A 32-M Neptune-sized planet in a 10-day orbit transiting an F8 star
- Models of Warm Jupiter Atmospheres: Observable Signatures of Obliquity
- K2-19b and c are in a 3:2 Commensurability but out of Resonance: A Challenge to Planet Assembly by Convergent Migration
- Transit least-squares survey - I. Discovery and validation of an Earth-sized planet in the four-planet system K2-32 near the 1:2:5:7 resonance
- Tidal Heating of Young Super-Earth Atmospheres
Cited by in corpus (10)
- WASP-107b's density is even lower: a case study for the physics of planetary gas envelope accretion and orbital migration
- Formation of Ultra-Short-Period Planets by Obliquity-Driven Tidal Runaway
- The TESS-Keck Survey IV: A Retrograde, Polar Orbit for the Ultra-Low-Density, Hot Super-Neptune WASP-107b
- Constraining the entropy of formation from young transiting planets
- Scaling K2. VI. Reduced Small Planet Occurrence in High Galactic Amplitude Stars
- NGTS-19b : A high mass transiting brown dwarf in a 17-day eccentric orbit
- Kepler-1656b's Extreme Eccentricity: Signature of a Gentle Giant
- NGTS-12b: A sub-Saturn mass transiting exoplanet in a 7.53 day orbit
- TOI-1296b and TOI-1298b observed with TESS and SOPHIE: Two hot Saturn-mass exoplanets with different densities around metal-rich stars
- The TESS-Keck Survey. XIII. An Eccentric Hot Neptune with a Similar-Mass Outer Companion around TOI-1272