Characterizing fragmentation and sub-Jovian clump properties in magnetized young protoplanetary disks
arXiv:2303.04163 · doi:10.1093/mnras/stad2478
Abstract
We study the initial development, structure and evolution of protoplanetary clumps formed in 3D resistive MHD simulations of self-gravitating disks. The magnetic field grows by means of the recently identified gravitational instability dynamo (Riols & Latter 2018; Deng et al. 2020). Clumps are identified and their evolution is tracked finely both backward and forward in time. Their properties and evolutionary path is compared to clumps in companion simulations without magnetic fields. We find that magnetic and rotational energy are important in the clumps' outer regions, while in the cores, despite appreciable magnetic field amplification, thermal pressure is most important in counteracting gravity. Turbulent kinetic energy is of a smaller scale than magnetic energy in the clumps. Compared to non-magnetized clumps, rotation is less prominent, which results in lower angular momentum in much better agreement with observations. In order to understand the very low sub-Jovian masses of clumps forming in MHD simulations, we revisit the perturbation theory of magnetized sheets finding support for a previously proposed magnetic destabilization in low-shear regions. This can help explaining why fragmentation ensues on a scale more than an order of magnitude smaller than that of the Toomre mass. The smaller fragmentation scale and the high magnetic pressure in clumps' envelopes explain why clumps in magnetized disks are typically in the super-Earth to Neptune mass regime rather than Super-Jupiters as in conventional disk instability. Our findings put forward a viable alternative to core accretion to explain widespread formation of intermediate-mass planets.
19 pages, 18 figures. Submitted to MNRAS
References in corpus (42)
- GIZMO: A New Class of Accurate, Mesh-Free Hydrodynamic Simulation Methods
- Nonlinear Outcome of Gravitational Instability in Cooling, Gaseous Disks
- Defining and cataloging exoplanets: The exoplanet.eu database
- Spiral Density Waves in a Young Protoplanetary Disk
- Formation of giant planets by fragmentation of protoplanetary disks
- The interaction of planets with a disc with MHD turbulence IV: Migration rates of embedded protoplanets
- Clumps in the Outer Disk by Disk Instability: Why They are Initially Gas Giants and the Legacy of Disruption
- The evolution of gravitationally unstable protoplanetary disks: fragmentation and possible giant planet formation
- Ambipolar diffusion in low-mass star formation. I. General comparison with the ideal MHD case
- Formation of planets by tidal downsizing of giant planet embryos
- Accurate, Meshless Methods for Magneto-Hydrodynamics
- The Thermal Regulation of Gravitational Instabilities in Protoplanetary Disks III. Simulations with Radiative Cooling and Realistic Opacities
- Surface Layer Accretion in Conventional and Transitional Disks Driven by Far-Ultraviolet Ionization
- A giant exoplanet orbiting a very low-mass star challenges planet formation models
- The formation of Jupiter by hybrid pebble-planetesimal accretion
- A Constrained-Gradient Method to Control Divergence Errors in Numerical MHD
- A lower fragmentation mass scale in high redshift galaxies and its implications on giant clumps: a systematic numerical study
- Microlensing Results Challenge the Core Accretion Runaway Growth Scenario for Gas Giants
- Planetary population synthesis
- On the gap-opening criterion of migrating planets in protoplanetary disks
- On the origin of the spiral morphology in the Elias 2-27 circumstellar disc
- Convergence of the critical cooling rate for protoplanetary disk fragmentation achieved; the key role of numerical dissipation of angular momentum
- Formation of terrestrial planet cores inside giant planet embryos
- Did Fomalhaut, HR 8799, and HL Tauri Form Planets via the Gravitational Instability? Placing Limits on the Required Disk Masses
- RV-detected planets around M dwarfs: Challenges for core accretion models
- Molecules with ALMA at Planet-forming Scales (MAPS). A Circumplanetary Disk Candidate in Molecular Line Emission in the AS 209 Disk
- Circumplanetary disks around young giant planets: a comparison between core-accretion and disk instability
- Jupiter's Moment of Inertia: A Possible Determination by JUNO
- A dynamical measurement of the disk mass in Elias 2-27
- The collapse of protoplanetary clumps formed through disc instability: 3D simulations of the pre-dissociation phase
- The migration of gas giant planets in gravitationally unstable discs
- Radiative feedback from protoplanets in self-gravitating protoplanetary discs
- Global simulations of self-gravitating magnetized protoplanetary disks
- Formation of intermediate-mass planets via magnetically-controlled disk fragmentation
- Are the observed gaps in protoplanetary discs caused by growing planets?
- Evolution of Coated Grains in Spiral Shocks of Self-Gravitating Protoplanetary Disks
- Gravitoturbulent dynamos in astrophysical discs
- Local simulations of MRI turbulence with meshless methods
- Planet Migration in Self-Gravitating Discs: Survival of Planets
- Simulating the magnetorotational instability on a moving mesh with the shearing box approximation
- Gravito-turbulence and dynamo in poorly ionised protostellar discs. I. Zero-net-flux case
- Standing solitary waves as transitions to spiral structures in gravitationally unstable accretion disks
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- DIPSY: A new Disc Instability Population SYnthesis, I. Modeling, evolution of individual systems, and tests
- The Outcome of Collisions between Gaseous Clumps formed by Disk Instability
- Dust growth and planet formation by disc fragmentation
- Observational Signatures of Planetary Tidal Disruption Events Around Solar-Mass Stars