Stability and Occurrence Rate Constraints on the Planetary Sculpting Hypothesis for "Transitional" Disks
arXiv:1605.02074 · doi:10.3847/0004-637X/825/1/77
Abstract
Transitional disks, protoplanetary disks with deep and wide central gaps, may be the result of planetary sculpting. By comparing numerical planet-opening-gap models with observed gaps, we find systems of 3-6 giant planets are needed in order to open gaps with the observed depths and widths. We explore the dynamical stability of such multi-planet systems using N-body simulations that incorporate prescriptions for gas effects. We find they can be stable over a typical disk lifetime, with the help of eccentricity damping from the residual gap gas that facilitates planets locking into mean motion resonances. However, in order to account for the occurrence rate of transitional disks, the planet sculpting scenario demands gap-opening-friendly disk conditions, in particular, a disk viscosity . In addition, the demography of giant planets at AU separations, poorly constrained by current data, has to largely follow occurrence rates extrapolated outward from radial velocity surveys, not the lower occurrence rates extrapolated inward from direct imaging surveys. Even with the most optimistic occurrence rates, transitional disks cannot be a common phase that most gas disks experience at the end of their life, as popularly assumed, simply because there are not enough planets to open these gaps. Finally, as consequences of demanding almost all giant planets at large separations participate in transitional disk sculpting, the majority of such planets must form early and end up in a chain of mean motion resonances at the end of disk lifetime.
ApJ in press
References in corpus (37)
- Direct Imaging of Multiple Planets Orbiting the Star HR 8799
- Dynamical Outcomes of Planet-Planet Scattering
- The Occurrence and Mass Distribution of Close-in Super-Earths, Neptunes, and Jupiters
- Photoevaporation of protoplanetary discs II: evolutionary models and observable properties
- Ring shaped dust accumulation in transition disks
- Dynamics of the giant planets of the solar system in the gaseous proto-planetary disk and relationship to the current orbital architecture
- On the Diversity of the Taurus Transitional Disks: UX Tau A & Lk Ca 15
- Spectro-astrometric imaging of molecular gas within protoplanetary disk gaps
- Resolved gas cavities in transitional disks inferred from CO isotopologues with ALMA
- Mass Estimates of a Giant Planet in a Protoplanetary Disk from the Gap Structures
- Resonant Repulsion of Kepler Planet Pairs
- Hall-effect Controlled Gas Dynamics in Protoplanetary Disks: II. Full 3D Simulations toward the Outer Disk
- Post-Oligarchic Evolution of Protoplanetary Embryos and the Stability of Planetary Systems
- The Migration of Gap-Opening Planets is not Locked to Viscous Disk Evolution
- Discovery of a Companion Candidate in the HD169142 Transition Disk and the Possibility of Multiple Planet Formation
- Migration of massive planets in accreting disks
- Gas density drops inside dust cavities of transitional disks around young stars observed with ALMA
- Standing on the shoulders of giants: Trojan Earths and vortex trapping in low mass self-gravitating protoplanetary disks of gas and solids
- A Statistical Analysis of SEEDS and Other High-Contrast Exoplanet Surveys: Massive Planets or Low-Mass Brown Dwarfs?
- Can grain growth explain transition disks?
- Dust Trapping by Vortices in Transitional Disks: Evidence for Non-ideal MHD Effects in Protoplanetary Disks
- Type I Planet Migration in Nearly Laminar Disks
- Modeling Dust Emission of HL Tau Disk Based on Planet-Disk Interactions
- Subaru Imaging of Asymmetric Features in a Transitional Disk in Upper Scorpius
- CO gas inside the protoplanetary disk cavity in HD 142527: disk structure from ALMA
- The Formation of Ice Giants in a Packed Oligarchy: Instability and Aftermath
- NIR Spectroscopy of the HAeBe Star HD 100546: III. Further Evidence of an Orbiting Companion?
- The Structure of Pre-transitional Protoplanetary Disks. II. Azimuthal Asymmetries, Different Radial Distributions of Large and Small Dust Grains in PDS~70
- Demographics of Transition Discs in Ophiuchus and Taurus
- Comparison of the dust and gas radial structure in the transition disk [PZ99] J160421.7-213028
- Planet gaps in the dust layer of 3D protoplanetary disks. II. Observability with ALMA
- From mean-motion resonances to scattered planets: Producing the Solar System, eccentric exoplanets and Late Heavy Bombardments
- Dynamical Stability of Imaged Planetary Systems in Formation: Application to HL Tau
- Shallow Cavities in Multiple-Planet Systems
- Constraining the structure of the transition disk HD 135344B (SAO 206462) by simultaneous modeling of multiwavelength gas and dust observations
- Fast Modes and Dusty Horseshoes in Transitional Disks
- Type III migration in a low viscosity disc
Cited by in corpus (33)
- Origins of Hot Jupiters
- Radial migration of gap-opening planets in protoplanetary disks. I. The case of a single planet
- Multiple Disk Gaps and Rings Generated by a Single Super-Earth
- The dispersal of protoplanetary discs I: A new generation of X-ray photoevaporation models
- Dynamical Constraints on the HR 8799 Planets with GPI
- Constraining the Nature of the PDS 70 Protoplanets with VLTI/GRAVITY
- What is the Mass of a Gap-Opening Planet?
- Spiral Arms in Disks: Planets or Gravitational Instability?
- The Sizes and Depletions of the Dust and Gas Cavities in the Transitional Disk J160421.7-213028
- Wind-driven Accretion in Transitional Protostellar Disks
- The unseen planets of double belt debris disk systems
- Save the Planet, Feed the Star: How Super-Earths Survive Migration and Drive Disk Accretion
- Precise transit and radial-velocity characterization of a resonant pair: a warm Jupiter TOI-216c and eccentric warm Neptune TOI-216b
- PDS 70: A transition disk sculpted by a single planet
- Accreting Transition Discs with large cavities created by X-ray photoevaporation in C and O depleted discs
- TOI-216b and TOI-216c: Two warm, large exoplanets in or slightly wide of the 2:1 orbital resonance
- The Orbital Eccentricities of Directly Imaged Companions Using Observable-Based Priors: Implications for Population-level Distributions
- Three Pathways for Observed Resonant Chains
- The 1600 Angstrom Emission Bump in Protoplanetary Disks: A Spectral Signature of HO Dissociation
- Magnetised Winds in Transition Discs I: 2.5D Global Simulations
- The interplay between radiation pressure and the photoelectric instability in optically thin disks of gas and dust
- Chains of Planets in Mean Motion Resonances Arising from Oligarchic Growth
- Confirming the 3:2 Resonance Chain of K2-138
- Radial migration of gap-opening planets in protoplanetary disks. II. The case of a planet pair
- Observational Signatures of Circumbinary Discs I: Kinematics
- Migration jumps of planets in transition disks
- exoMMR: a New Python Package to Confirm and Characterize Mean Motion Resonances
- Nature vs. nurture: a Bayesian framework for assessing apparent correlations between planetary orbital properties and stellar ages
- Observability of Photoevaporation Signatures in the Dust Continuum Emission of Transition Discs
- UV Spectropolarimetry with Polstar: Protoplanetary Disks
- Disentangling Planets from Photoelectric Instability in Gas-Rich Optically Thin Dusty Disks
- Nature vs. Nurture: Investigating the Effects of Measurement Uncertainties in the Assessment of Potential Trends Between Planetary and Stellar Properties
- Longterm Stability of Planetary Systems formed from a Transitional Disk