Combined Effects of Disk Winds and Turbulence-Driven Accretion on Planet Populations
arXiv:2207.01626 · doi:10.1093/mnras/stac1782
Abstract
Recent surveys show that protoplanetary disks have lower levels of turbulence than expected based on their observed accretion rates. A viable solution to this is that magnetized disk winds dominate angular momentum transport. This has several important implications for planet formation processes. We compute the physical and chemical evolution of disks and the formation and migration of planets under the combined effects of angular momentum transport by turbulent viscosity and disk winds. We take into account the critical role of planet traps to limit Type I migration in all of these models and compute thousands of planet evolution tracks for single planets drawn from a distribution of initial disk properties and turbulence strengths. We do not consider multi-planet models nor include N-body planet-planet interactions. Within this physical framework we find that populations with a constant value disk turbulence and winds strength produce mass-semimajor axis distributions in the M-a diagram with insufficient scatter to compare reasonably with observations. However, populations produced as a consequence of sampling disks with a distribution of the relative strengths of disk turbulence and winds fit much better. Such models give rise to a substantial super Earth population at orbital radii 0.03-2 AU, as well as a clear separation between the produced hot Jupiter and warm Jupiter populations. Additionally, this model results in a good comparison with the exoplanetary mass-radius distribution in the M-R diagram after post-disk atmospheric photoevaporation is accounted for.
30 pages (including 4 page Appendix), 10 figures in main text ( 3 in Appendix), 1 movie (clickable in caption of Figure 7). Accepted for publication in the Monthly Notices of the Royal Astronomical Society
References in corpus (48)
- Dynamical Outcomes of Planet-Planet Scattering
- Atmospheric Escape from Hot Jupiters
- Formation of Hot Planets by a combination of planet scattering, tidal circularization, and Kozai mechanism
- Origins of Eccentric Extrasolar Planets: Testing the Planet-Planet Scattering Model
- Two accreting protoplanets around the young star PDS 70
- A Steeper than Linear Disk Mass-Stellar Mass Scaling Relation
- Toward a Deterministic Model of Planetary Formation V. Accumulation Near the Ice Line
- Planetary population synthesis coupled with atmospheric escape: a statistical view of evaporation
- Detailed Models of super-Earths: How well can we infer bulk properties?
- Global simulations of protoplanetary disks with ohmic resistivity and ambipolar diffusion
- Evolution of Protoplanetary Discs with Magnetically Driven Disc Winds
- Constraining the X-ray and Cosmic Ray Ionization Chemistry of the TW Hya Protoplanetary Disk: Evidence for a Sub-interstellar Cosmic Ray Rate
- Three radial gaps in the disk of TW Hydrae imaged with SPHERE
- Hall-effect Controlled Gas Dynamics in Protoplanetary Disks: II. Full 3D Simulations toward the Outer Disk
- On the formation of planetary systems via oligarchic growth in thermally evolving viscous discs
- Formation of planetary systems by pebble accretion and migration: Growth of gas giants
- Resolved images of a protostellar outflow launched by an extended disk wind
- Physical properties of dusty protoplanetary disks in Lupus: evidence for viscous evolution?
- The New Generation Planetary Population Synthesis (NGPPS). II. Planetary population of solar-like stars and overview of statistical results
- Global Models of Planet Formation and Evolution
- Composition of Early Planetary Atmospheres I: Connecting Disk Astrochemistry to the Formation of Planetary Atmospheres
- Connection between jets, winds and accretion in T Tauri stars: the X-shooter view
- A stellar mass dependence of structured disks: a possible link with exoplanet demographics
- The Role of Magnetic Fields in Protostellar Outflows and Star Formation
- ALMA reveals a large structured disk and nested rotating outflows in DG Tau B
- The efficiency of dust trapping in ringed proto-planetary discs
- Connecting planet formation and astrochemistry: A main sequence for C/O in hot-exoplanetary atmospheres
- Grain opacity and the bulk composition of extrasolar planets. I. Results from scaling the ISM opacity
- Constraints from Dust Mass and Mass Accretion Rate Measurements on Angular Momentum Transport in Protoplanetary Disks
- Temperature Structure in the Inner Regions of Protoplanetary Disks: Inefficient Accretion Heating Controlled by Nonideal Magnetohydrodynamics
- Global Hydromagnetic Simulations of Protoplanetary Disks with Stellar Irradiation and Simplified Thermochemistry
- Gas Disk Sizes from CO Line Observations: A Test of Angular Momentum Evolution
- Connecting planet formation and astrochemistry: Refractory carbon depletion leading to super-stellar C/O in giant planetary atmospheres
- Constraining disk evolution prescriptions of planet population synthesis models with observed disk masses and accretion rates
- Hydro-, Magnetohydro-, and Dust-Gas Dynamics of Protoplanetary Disks
- Constraining MHD disk winds with ALMA. Apparent rotation signatures and application to HH212
- The Role of Disk Winds in the Evolution and Dispersal of Protoplanetary Disks
- Effect of wind-driven accretion on planetary migration
- Planet Traps and Planetary Cores: Origins of the Planet-Metallicity Correlation
- In situ accretion of gaseous envelopes on to planetary cores embedded in evolving protoplanetary discs
- Magnetically Induced Disk Winds and Transport in the HL Tau Disk
- Planet-Disk Interactions
- N-body simulations of planet formation via pebble accretion II. How various giant planets form
- Global axisymmetric simulations of photoevaporation and magnetically driven protoplanetary disk winds
- Formation of Planetary Populations II: Effects of Initial Disk Size & Radial Dust Drift
- Super-Earths as Failed Cores in Orbital Migration Traps
- Turbulent Disk Viscosity and the Bifurcation of Planet Formation Histories
- Formation of Planetary Populations III: Core Composition & Atmospheric Evaporation
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- Planetary Population Synthesis and the Emergence of Four Classes of Planetary System Architectures
- Magnetic disk winds in protoplanetary disks: Description of the model and impact on global disk evolution
- A question of personalities: evolution of viscous and wind-driven protoplanetary discs in the presence of dead zones
- A Validated Low-to-Intermediate Mass Planetary Interior Structure Model and New Mass-Radius Relations