The fate of planetesimals in turbulent disks with dead zones. II. Limits on the viability of runaway accretion
arXiv:1305.1890 · doi:10.1088/0004-637X/771/1/44
Abstract
A critical phase in the standard model for planet formation is the runaway growth phase. During runaway growth bodies in the 0.1--100 km size range (planetesimals) quickly produce a number of much larger seeds. The runaway growth phase is essential for planet formation as the emergent planetary embryos can accrete the leftover planetesimals at large gravitational focusing factors. However, torques resulting from turbulence-induced density fluctuations may violate the criterion for the onset of runaway growth, which is that the magnitude of the planetesimals' random (eccentric) motions are less than their escape velocity. This condition represents a more stringent constraint than the condition that planetesimals survive their mutual collisions. To investigate the effects of MRI turbulence on the viability of the runaway growth scenario, we apply our semi-analytical recipes of Paper I, which we augment by a coagulation/fragmentation model for the dust component. We find that the surface area-equivalent abundance of 0.1 micron particles is reduced by factors 10^2--10^3, which tends to render the dust irrelevant to the turbulence. We express the turbulent activity in the midplane regions in terms of a size s_run above which planetesimals will experience runaway growth. We find that s_run is mainly determined by the strength of the vertical net field that threads the disks and the disk radius. At disk radii beyond 5 AU, s_run becomes larger than ~100 km and the collision times among these bodies longer than the duration of the nebula phase. Our findings imply that the classical, planetesimal-dominated, model for planet formation is not viable in the outer regions of a turbulent disk.
ApJ accepted
References in corpus (11)
- Closed-form expressions for particle relative velocities induced by turbulence
- Halting Type I planet migration in non-isothermal disks
- Dust size distributions in coagulation/fragmentation equilibrium: Numerical solutions and analytical fits
- Dust retention in protoplanetary disks
- Gas disks to gas giants: Simulating the birth of planetary systems
- High Velocity Dust Collisions: Forming Planetesimals in a Fragmentation Cascade with Final Accretion
- Accretion and destruction of planetesimals in turbulent disks
- Accretion of Terrestrial Planets from Oligarchs in a Turbulent Disk
- Rapid Formation of Icy Super-Earths and the Cores of Gas Giant Planets
- Planetesimal-driven planet migration in the presence of a gas disk
- On the dynamics of planetesimals embedded in turbulent protoplanetary discs with dead zones
Cited by in corpus (29)
- The Disk Substructures at High Angular Resolution Project (DSHARP): V. Interpreting ALMA maps of protoplanetary disks in terms of a dust model
- The Mass and Size Distribution of Planetesimals Formed by the Streaming Instability. I. The Role of Self-Gravity
- Inside-Out Planet Formation
- The Impact of Dust Evolution and Photoevaporation on Disk Dispersal
- Hall-effect Controlled Gas Dynamics in Protoplanetary Disks: I. Wind Solutions at the Inner Disk
- Can dust coagulation trigger streaming instability?
- Global Models of Planet Formation and Evolution
- MHD Simulations of Global Accretion Disks with Vertical Magnetic Fields
- Streaming Instability in Turbulent Protoplanetary Disks
- Temperature Structure in the Inner Regions of Protoplanetary Disks: Inefficient Accretion Heating Controlled by Nonideal Magnetohydrodynamics
- Global Modeling of Nebulae with Particle Growth, Drift and Evaporation Fronts. I: Methodology and Typical Results
- Utilitarian Opacity Model for Aggregate Particles in Protoplanetary Nebulae and Exoplanet Atmospheres
- Radial Transport of Large-Scale Magnetic Fields in Accretion Disks. I. Steady Solutions and an Upper Limit on the Vertical Field Strength
- Steady-state accretion in magnetized protoplanetary disks
- An Analytic Criterion for Turbulent Disruption of Planetary Resonances
- Cascade Model for Planetesimal Formation by Turbulent Clustering
- From Planetesimals to Planets in Turbulent Protoplanetary Disks I. Onset of Runaway Growth
- Rapid Formation of Jupiter and Wide-Orbit Exoplanets in Disks with Pressure Bumps
- Making Planet Nine: Pebble Accretion at 250--750 AU in a Gravitationally Unstable Ring
- Atmospheric Recyling of Volatiles by Pebble-Accreting Planets
- Effect of turbulence on collisions of dust particles with planetesimals in protoplanetary disks
- Dust dynamics in 2D gravito-turbulent disks
- The effect of multiple particle sizes on cooling rates of chondrules produced in large-scale shocks in the solar nebula
- Global Modeling of Nebulae With Particle Growth, Drift, and Evaporation Fronts. II. The Influence of Porosity on Solids Evolution
- The impact of dust evolution on the dead zone outer edge in magnetized protoplanetary disks
- Viscous Instability Triggered by Layered Accretion in Protoplanetary Disks
- United Theory of Planet Formation (I): Tandem Regime
- Ejection of Chondrules from Fluffy Matrices
- Runaway Growth of Planetesimals Revisited: Presenting Criteria Required for Realistic Modeling of Planetesimal Growth