Giant planet formation in radially structured protoplanetary discs
arXiv:1604.05191 · doi:10.1093/mnras/stw1177
Abstract
Our recent N-body simulations of planetary system formation, incorporating models for the main physical processes thought to be important during the building of planets (i.e. gas disc evolution, migration, planetesimal/boulder accretion, gas accretion onto cores, etc.), have been successful in reproducing some of the broad features of the observed exoplanet population (e.g. compact systems of low mass planets, hot Jupiters), but fail completely to form any surviving cold Jupiters. The primary reason for this failure is rapid inward migration of growing protoplanets during the gas accretion phase, resulting in the delivery of these bodies onto orbits close to the star. Here, we present the results of simulations that examine the formation of gas giant planets in protoplanetary discs that are radially structured due to spatial and temporal variations in the effective viscous stresses, and show that such a model results in the formation of a population of cold gas giants. Furthermore, when combined with models for disc photoevaporation and a central magnetospheric cavity, the simulations reproduce the well-known hot-Jupiter/cold-Jupiter dichotomy in the observed period distribution of giant exoplanets, with a period valley between 10-100 days.
18 pages, 10 figures. Accepted for publication in MNRAS
References in corpus (24)
- Spectroscopic parameters for 451 stars in the HARPS GTO planet search program. Stellar [Fe/H] and the frequency of exo-Neptunes
- One or more bound planets per Milky Way star from microlensing observations
- Ringed Substructure and a Gap at 1 AU in the Nearest Protoplanetary Disk
- Gaps, Rings, and Non-Axisymmetric Structures in Protoplanetary Disks - From Simulations to ALMA Observations
- The structure of protoplanetary discs around evolving young stars
- The Exoplanet Orbit Database II: Updates to exoplanets.org
- Three-dimensional simulations of multiple protoplanets embedded in a protostellar disc
- Formation of Jupiter using opacities based on detailed grain physics
- On the formation of planetary systems via oligarchic growth in thermally evolving viscous discs
- The Migration of Gap-Opening Planets is not Locked to Viscous Disk Evolution
- Migration of massive planets in accreting disks
- Global MHD simulations of stratified and turbulent protoplanetary discs. I. Model properties
- Magnetic Flux Concentration and Zonal Flows in Magnetorotational Instability Turbulence
- Dynamical corotation torques on low-mass planets
- Cloud-cloud collision as a trigger of the high-mass star formation; a molecular line study in RCW120
- On the Commonality of 10-30AU Sized Axisymmetric Dust Structures in Protoplanetary Disks
- Deserts and pile-ups in the distribution of exoplanets due to photoevaporative disc clearing
- Formation and structure of the three Neptune-mass planets system around HD69830
- On the formation of compact planetary systems via concurrent core accretion and migration
- The link between disc dispersal by photoevaporation and the semi-major axis distribution of exoplanets
- Transiting Planet Candidates Beyond the Snow Line Detected by Visual Inspection of 7557 Kepler Objects of Interest
- A Transiting Jupiter Analog
- Self-organisation in protoplanetary disks: global, non-stratified Hall-MHD simulations
- Embryo impacts and gas giant mergers II: Diversity of Hot Jupiters' internal structure
Cited by in corpus (48)
- The Disk Substructures at High Angular Resolution Project (DSHARP): I. Motivation, Sample, Calibration, and Overview
- Origins of Hot Jupiters
- The New Generation Planetary Population Synthesis (NGPPS). IV. Planetary systems around low-mass stars
- Challenges in Planet Formation
- Hot Jupiters: Origins, Structure, Atmospheres
- Planetary population synthesis
- Planet formation and migration near the silicate sublimation front in protoplanetary disks
- Pebbles versus Planetesimals: The case of Trappist-1
- Connecting planet formation and astrochemistry: Refractory carbon depletion leading to super-stellar C/O in giant planetary atmospheres
- Dawes Review. The tidal downsizing hypothesis of planet formation
- Rapid Formation of Massive Planetary Cores in a Pressure Bump
- Pebbles versus planetesimals: the outcomes of population synthesis models
- Exploring the formation by core accretion and the luminosity evolution of directly imaged planets: The case of HIP 65426 b
- Formation of solar system analogs I: looking for initial conditions through a population synthesis analysis
- Thermal torque effects on the migration of growing low-mass planets
- In situ accretion of gaseous envelopes on to planetary cores embedded in evolving protoplanetary discs
- N-body simulations of planet formation via pebble accretion I: First Results
- Exploring the conditions for forming cold gas giants through planetesimal accretion
- On the Formation and Chemical Composition of Super Earths
- A new and simple prescription for planet orbital migration and eccentricity damping by planet-disc interactions based on dynamical friction
- Planet formation via pebble accretion in externally photoevaporating discs
- Setting the Stage: Planet formation and Volatile Delivery
- Inner Super-Earths, Outer Gas Giants: How Pebble Isolation and Migration Feedback Keep Jupiters Cold
- The growth and migration of massive planets under the influence of external photoevaporation
- Are the observed gaps in protoplanetary discs caused by growing planets?
- N-body simulations of planet formation via pebble accretion II. How various giant planets form
- Two long-period transiting exoplanets on eccentric orbits: NGTS-20 b (TOI-5152 b) and TOI-5153 b
- Mottled protoplanetary disk ionization by magnetically-channeled T Tauri star energetic particles
- Formation of Planetary Populations I: Metallicity & Envelope Opacity Effects
- The Effect of Protoplanetary Disk Cooling Times on the Formation of Gas Giant Planets by Gravitational Instability
- In situ formation of hot Jupiters with companion super-Earths
- From Dust to Planets I: Planetesimal and Embryo Formation
- Sequential giant planet formation initiated by disc substructure
- Stability of the co-orbital resonance under dissipation: Application to its evolution in protoplanetary discs
- Global N-body simulations of circumbinary planet formation around Kepler-16 and -34 analogues I: Exploring the pebble accretion scenario
- Planetary Migration in Protoplanetary Disks
- Formation of Planetary Populations II: Effects of Initial Disk Size & Radial Dust Drift
- Can Large-Scale Migration Explain the Giant Planet Occurrence Rate?
- ALMA constraints on assembly of Core Accretion planets
- Can the giant planets of the Solar System form via pebble accretion in a smooth protoplanetary disc?
- Connecting Planetary Composition with Formation
- Turbulent Disk Viscosity and the Bifurcation of Planet Formation Histories
- Migration of gap-opening planets in 3D stellar-irradiated accretion disks
- The Terrestrial Planet Formation around M Dwarfs: In-situ, Inward Migration or Reversed Migration
- The Effect of the Approach to Gas Disk Gravitational Instability on the Rapid Formation of Gas Giant Planets
- Investigating the possibility of reversing giant planet migration via gap edge illumination
- Emerging population of gap-opening planets around type-A stars -- Long-term evolution of the forming planets around HD 163296
- Giant planet formation via pebble accretion across different stellar masses