Quasi-static contraction during runaway gas accretion onto giant planets
arXiv:1907.06362 · doi:10.1051/0004-6361/201834413
Abstract
Gas-giant planets, like Jupiter and Saturn, acquire massive gaseous envelopes during the approximately 3 Myr-long lifetimes of protoplanetary discs. In the core accretion scenario, the formation of a solid core of around 10 Earth masses triggers a phase of rapid gas accretion. Previous 3D grid-based hydrodynamical simulations found runaway gas accretion rates corresponding to approximately 10 to 100 Jupiter masses per Myr. Such high accretion rates would result in all planets with larger-than-10-Earth-mass cores forming Jupiter-like planets, in clear contrast to the ice giants in the Solar System and the observed exoplanet population. In this work, we use 3D hydrodynamical simulations, that include radiative transfer, to model the growth of the envelope on planets with different masses. We find that gas flows rapidly through the outer part of the envelope, but this flow does not drive accretion. Instead, gas accretion is the result of quasi-static contraction of the inner envelope, which can be orders of magnitude smaller than the mass flow through the outer atmosphere. For planets smaller than Saturn, we measure moderate gas accretion rates that are below 1 Jupiter mass per Myr. Higher mass planets, however, accrete up to 10 times faster and do not reveal a self-driven mechanism that can halt gas accretion. Therefore, the reason for the final masses of Saturn and Jupiter remains difficult to understand, unless their completion coincided with the dissipation of the Solar Nebula.
Accepted by A&A
References in corpus (27)
- Coagulation, fragmentation and radial motion of solid particles in protoplanetary disks
- Separating gas-giant and ice-giant planets by halting pebble accretion
- A comparative study of disc-planet interaction
- Pebble isolation mass --- scaling law and implications for the formation of super-Earths and gas giants
- The Exoplanet Mass-Ratio Function from the MOA-II Survey: Discovery of a Break and Likely Peak at a Neptune Mass
- Make Super-Earths, Not Jupiters: Accreting Nebular Gas onto Solid Cores at 0.1 AU and Beyond
- Radial migration of gap-opening planets in protoplanetary disks. I. The case of a single planet
- Hydrodynamics of Embedded Planets' First Atmospheres. II. A Rapid Recycling of Atmospheric Gas
- Formation of Regular Satellites from Ancient Massive Rings in the Solar System
- Reduced gas accretion on super-Earths and ice giants
- Gas accretion onto planetary cores: three-dimensional self-gravitating radiation hydrodynamical calculations
- Hydrodynamics of embedded planets' first atmospheres - III. The role of radiation transport for super-Earth planets
- Minimum Core Masses for Giant Planet Formation With Realistic Equations of State and Opacities
- On the Terminal Rotation Rates of Giant Planets
- Microlensing Results Challenge the Core Accretion Runaway Growth Scenario for Gas Giants
- Observational evidence for two distinct giant planet populations
- Hydrodynamics of Embedded Planets' First Atmospheres. I. A Centrifugal Growth Barrier for 2D Flows
- Suppression of atmospheric recycling of planets embedded in a protoplanetary disc by buoyancy barrier
- A Systematic Study of the Final Masses of Gas Giant Planets
- Toward a new paradigm for Type II migration
- Slowing Down Type II Migration of Gas Giants to Match Observational Data
- The accretion of migrating giant planets
- Pebble dynamics and accretion onto rocky planets. I. Adiabatic and convective models
- POISSON project - III - Investigating the evolution of the mass accretion rate
- In situ accretion of gaseous envelopes on to planetary cores embedded in evolving protoplanetary discs
- Revisiting the Long-Period Transiting Planets from Kepler
- Partition functions 1: Improved partition functions and thermodynamic quantities for normal, equilibrium, and ortho and para molecular hydrogen
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- How drifting and evaporating pebbles shape giant planets I: Heavy element content and atmospheric C/O
- The nature and origins of sub-Neptune size planets
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- Circumplanetary Disk Dynamics in the Isothermal and Adiabatic Limits
- Final Masses of Giant Planets III: Effect of Photoevaporation and a New Planetary Migration Model
- As the Worlds Turn: Constraining Spin Evolution in the Planetary-Mass Regime
- Influence of planetary gas accretion on the shape and depth of gaps in protoplanetary discs
- On the structure and mass delivery towards circumplanetary discs
- The maximum accretion rate of a protoplanet: how fast can runaway be?
- Building the Galilean moons system via pebble accretion and migration: A primordial resonant chain
- Sequential giant planet formation initiated by disc substructure
- The Planetary Accretion Shock. III. Smoothing-free 2.5D simulations and calculation of H alpha emission
- Origin and dynamical evolution of the asteroid belt
- The Origin of Universality in the Inner Edges of Planetary Systems
- Making the Solar System
- Radial migration of gap-opening planets in protoplanetary disks. II. The case of a planet pair
- Thermal processing of primordial pebbles in evolving protoplanetary disks
- In-situ enrichment in heavy elements of hot Jupiters
- Gap opening by planets in discs with magnetised winds
- Formation of Planetary Populations II: Effects of Initial Disk Size & Radial Dust Drift
- Analytic Approach to the Late Stages of Giant Planet Formation
- ALMA constraints on assembly of Core Accretion planets
- Gas accretion onto Jupiter mass planets in discs with laminar accretion flows
- Delivery of gas onto the circumplanetary disk of giant planets: Planetary-mass dependence of the source region of accreting gas and mass accretion rate
- Observational constraints on the formation and evolution of Neptune-class exoplanets
- Simultaneous gas accretion onto a pair of giant planets: Impact on their final mass and on the protoplanetary disk structure
- Effective dust growth in laminar circumplanetary discs with magnetic wind-driven accretion
- Formation of Multiple Dynamical Classes in the Kuiper Belt via Disk Dissipation
- A primordial radius valley as a consequence of planet formation
- Formation and Structure of Circumplanetary Disks and Envelopes during the Late Stages of Giant Planet Formation
- Gas dynamics around a Jupiter mass planet: II. Chemical evolution of circumplanetary material
- Emerging population of gap-opening planets around type-A stars -- Long-term evolution of the forming planets around HD 163296
- An impact-free mechanism to deliver water to terrestrial planets and exoplanets
- Planet formation: key mechanisms and global models
- Planet Formation
- The influence of dust growth on the observational properties of circumplanetary discs
- Architecture of planetary systems predicted from protoplanetary disks observed with ALMA II: evolution outcomes and dynamical stability
- Late gas released in the young Kuiper belt could have significantly contributed to the carbon enrichment of the atmospheres of Neptune and Uranus
- Atmospheric Signatures of Common Envelope Evolution in White Dwarf Planets