Envelopes of embedded super-Earths II. Three-dimensional isothermal simulations
arXiv:1907.02763 · doi:10.1093/mnras/stz1870
Abstract
Massive planetary cores embedded in protoplanetary discs are believed to accrete extended atmospheres, providing a pathway to forming gas giants and gas-rich super-Earths. The properties of these atmospheres strongly depend on the nature of the coupling between the atmosphere and the surrounding disc. We examine the formation of gaseous envelopes around massive planetary cores via three-dimensional inviscid and isothermal hydrodynamic simulations. We focus the changes in the envelope properties as the core mass varies from low (sub-thermal) to high (super-thermal) values, a regime relevant to close-in super-Earths. We show that global envelope properties such as the amount of rotational support or turbulent mixing are mostly sensitive to the ratio of the Bondi radius of the core to its physical size. High-mass cores are fed by supersonic inflows arriving along the polar axis and shocking on the densest parts of the envelope, driving turbulence and mass accretion. Gas flows out of the core's Hill sphere in the equatorial plane, describing a global mass circulation through the envelope. The shell of shocked gas atop the core surface delimits regions of slow (inside) and fast (outside) material recycling by gas from the surrounding disc. While recycling hinders the runaway growth towards gas giants, the inner regions of protoplanetary atmospheres, more immune to mixing, may remain bound to the planet.
16 pages, 15 figures, accepted for publication in MNRAS
References in corpus (14)
- PLUTO: a Numerical Code for Computational Astrophysics
- Most 1.6 Earth-Radius Planets are not Rocky
- Make Super-Earths, Not Jupiters: Accreting Nebular Gas onto Solid Cores at 0.1 AU and Beyond
- Hydrodynamics of Embedded Planets' First Atmospheres. II. A Rapid Recycling of Atmospheric Gas
- 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
- Hydrodynamics of Embedded Planets' First Atmospheres. I. A Centrifugal Growth Barrier for 2D Flows
- The Boundary between Gas-rich and Gas-poor Planets
- Thermodynamics of Giant Planet Formation: Shocking Hot Surfaces on Circumplanetary Disks
- The End of Runaway: How Gap Opening Limits the Final Masses of Gas Giants
- Gas flow around a planet embedded in a protoplanetary disc: the dependence on the planetary mass
- Formation of Isothermal Disks around Protoplanets. I. Introductory Three-Dimensional Global Simulations for Sub-Neptune-Mass Protoplanets
- Envelopes of embedded super-Earths I. Two-dimensional simulations
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