Formation of hot Jupiters through disk migration and evolving stellar tides
arXiv:1806.06601 · doi:10.1051/0004-6361/201833486
Abstract
Here we address the hot Jupiter (hJ) pile-up at 0.05 AU around young solar-type stars observed in stellar radial velocity surveys, the hJ longterm orbital stability in the presence of stellar tides, and the hJ occurrence rate of 1.2 (+-0.38)% in one framework. We calculate the combined torques on the planet from the stellar dynamical tide and from the protoplanetary disk in the type II migration regime. We model a 2D nonisothermal viscous disk parameterized to reproduce the minimum-mass solar nebula and simulate an inner disk cavity at various radial positions near the star. We choose stellar rotation periods according to observations of young star clusters. The planet is on a circular orbit in the disk midplane and in the star's equatorial plane. We show that the torques can add up to zero beyond the corotation radius around young stars and stop inward migration. Monte Carlo simulations predict hot Jupiter survival rates between ~3% (alpha disk viscosity of 1e-1) and 15% (alpha = 1e-3). Once the protoplanetary disk has been fully accreted, the surviving hJs are pushed outward from their tidal migration barrier and pile up near 0.05 AU, as we demonstrate using a numerical implementation of a stellar dynamical tide model. Orbital decay is negligible on a one-billion-year timescale due to the contraction of the highly dissipative convective envelopes in young Sun-like stars. We find that the higher pile-up efficiency around metal-rich stars can at least partly explain the observed positive correlation between stellar metallicity and hJ occurrence. Combined with the observed hJ occurrence rate, our results for the survival rate imply that <8 % (alpha = 1e-3) to <43 % (alpha = 1e-1) of sun-like stars initially encounter an inward migrating hJ. This reconciles models and observations of young spinning stars with the observed hJ pile up and hJ occurrence rates.
accepted by A&A (30 June 2019), 14 pages, 12 figures (6 col, 6 b/w)
References in corpus (30)
- Origins of Hot Jupiters
- Formation of Hot Planets by a combination of planet scattering, tidal circularization, and Kozai mechanism
- Accretion disc viscosity: how big is alpha?
- Tidal Evolution of Close-in Extra-Solar Planets
- The California-Kepler Survey. IV. Metal-rich Stars Host a Greater Diversity of Planets
- Three regimes of extrasolar planets inferred from host star metallicities
- On the tidal evolution of Hot Jupiters on inclined orbits
- The Migration of Gap-Opening Planets is not Locked to Viscous Disk Evolution
- Migration of massive planets in accreting disks
- Inflating and Deflating Hot Jupiters: Coupled Tidal and Thermal Evolution of Known Transiting Planets
- 3D Radiation Non-ideal Magnetohydrodynamical Simulations Of The Inner Rim In Protoplanetary Disks
- The Monitor project: Rotation of low-mass stars in NGC 2362 -- testing the disc regulation paradigm at 5 Myr
- On the tidal origin of hot Jupiter stellar obliquity trends
- On the physical nature of accretion disc viscosity
- Hierarchical Bayesian calibration of tidal orbit decay rates among hot Jupiters
- Properties and occurrence rates of exoplanet candidates as a function of host star metallicity from the DR25 catalog
- Magnetospheric Gap and Accumulation of Giant Planets Close to the Star
- Tidal Dissipation in WASP-12
- Star-planet interactions. V. Dynamical and equilibrium tides in convective zones
- The metallicity distribution and hot Jupiter rate of the Kepler field: Hectochelle High-resolution spectroscopy for 776 Kepler target stars
- A Continuum of Planet Formation Between 1 and 4 Earth Radii
- Evolution of star-planet systems under magnetic braking and tidal interaction
- Obliquity Tides May Drive WASP-12b's Rapid Orbital Decay
- Tidal dissipation in rotating low-mass stars and implications for the orbital evolution of close-in massive planets. II. Effect of stellar metallicity
- Secular orbital evolution of planetary systems and the dearth of close-in planets around fast rotators
- Dynamical tides in exoplanetary systems containing Hot Jupiters: confronting theory and observations
- Teetering Stars: Resonant Excitation of Stellar Obliquities by Hot and Warm Jupiters with External Companions
- Influence of stellar structure, evolution and rotation on the tidal damping of exoplanetary spin-orbit angles
- Forming Different Planetary Architectures . I . Formation Efficiency of Hot Jupites from High-eccentricity Mechanisms
- A search for transit timing variations and orbital decay in WASP-46b
Cited by in corpus (21)
- Wotan: Comprehensive time-series de-trending in Python
- The New Generation Planetary Population Synthesis (NGPPS). II. Planetary population of solar-like stars and overview of statistical results
- Magnetic and tidal migration of close-in planets. Influence of secular evolution on their population
- NGTS-10b: The shortest period hot Jupiter yet discovered
- The Mean Magnetic Field Strength of CI Tau
- On a Possible Solution to the Tidal Realignment Problem for Hot Jupiters
- Tidal migration of hot Jupiters: introducing the impact of gravity wave dissipation
- TOI-2046b, TOI-1181b and TOI-1516b, three new hot Jupiters from \textit{TESS}: planets orbiting a young star, a subgiant and a normal star
- The influence of planetary engulfment on stellar rotation in metal-poor main-sequence stars
- Inflation of Migrated Hot Jupiters
- The Period Distribution of Hot Jupiters is Not Dependent on Host Star Metallicity
- Radial-velocity search and statistical studies for short-period planets in the Pleiades open cluster
- HD 83443c: A highly eccentric giant planet on a 22-year orbit
- Doppler confirmation of TESS planet candidate TOI1408.01: grazing transit and likely eccentric orbit
- The Rate of Planet-star Coalescences Due to Tides and Stellar Evolution
- An upper limit for the growth of inner planets?
- Production of hot Jupiter candidates from high-eccentricity mechanisms for different initial planetary mass configurations
- Flows, Circulations, and Energy Transport in the Outer and Deep Atmospheres of Synchronous and Non-synchronous Hot Jupiters
- Hot Jupiter formation in dense stellar clusters: A Monte Carlo model applied to 47 Tucanae
- Evidence for the Late Arrival of Hot Jupiters in Systems with High Host-star Obliquities
- Observational imprints of tidal internal gravity wave dissipation in star-planet systems