Planet formation bursts at the borders of the dead zone in 2D numerical simulations of circumstellar disks
arXiv:0901.1638 · doi:10.1051/0004-6361/200811265
Abstract
As accretion in protoplanetary disks is enabled by turbulent viscosity, the border between active and inactive (dead) zones constitutes a location where there is an abrupt change in the accretion flow. The gas accumulation that ensues triggers the Rossby wave instability, that in turn saturates into anticyclonic vortices. It was suggested that the trapping of solids within them leads to a burst of planet formation on very short timescales. We perform two-dimensional global simulations of the dynamics of gas and solids in a non-magnetized thin protoplanetary disk with the Pencil Code. We use multiple particle species of radius 1, 10, 30, and 100 cm, solving for the particles' gravitational interaction by a particle-mesh method. The dead zone is modeled as a region of low viscosity. Adiabatic and locally isothermal equations of state are used. We find that the Rossby wave instability is triggered under a variety of conditions, thus making vortex formation a robust process. Inside the vortices, fast accumulation of solids occurs and the particles collapse into objects of planetary mass in timescales as short as five orbits. Because the drag force is size-dependent, aerodynamical sorting ensues within the vortical motion, and the first bound structures formed are composed primarily of similarly-sized particles. In addition to erosion due to ram pressure, we identify gas tides from the massive vortices as a disrupting agent of formed protoplanetary embryos. We also estimate the collisional velocity history of the particles that compose the most massive embryo by the end of the simulation, finding that the vast majority of them never experienced a collision with another particle at speeds faster than 1 m/s.
19 pages, 15 figures + Appendices. Accepted by A&A. Nature of replacement: included a missing reference
References in corpus (21)
- Coagulation, fragmentation and radial motion of solid particles in protoplanetary disks
- Closed-form expressions for particle relative velocities induced by turbulence
- A comparative study of disc-planet interaction
- Towards planetesimals: dense chondrule clumps in the protoplanetary nebula
- Dust coagulation in protoplanetary disks: porosity matters
- Vortex generation in protoplanetary disks with an embedded giant planet
- Planetesimal formation around the snow line in MRI-driven turbulent protoplanetary disks
- Dead Zone Accretion Flows in Protostellar Disks
- Standing on the shoulders of giants: Trojan Earths and vortex trapping in low mass self-gravitating protoplanetary disks of gas and solids
- Survival of the mm-cm size grain population observed in protoplanetary disks
- Planetesimal formation via fragmentation in self-gravitating protoplanetary discs
- Embryos grown in the dead zone: Assembling the first protoplanetary cores in low mass self-gravitating circumstellar disks of gas and solids
- A representative particle approach to coagulation and fragmentation of dust aggregates and fluid droplets
- Turbulent Torques on Protoplanets in a Dead Zone
- New composite models of partially ionized protoplanetary disks
- Vortices in Thin, Compressible, Unmagnetized Disks
- Global magnetohydrodynamical models of turbulence in protoplanetary disks I. A cylindrical potential on a Cartesian grid and transport of solids
- A coagulation-fragmentation model for the turbulent growth and destruction of preplanetesimals
- Kinematics of solid particles in a turbulent protoplanetary disc
- The Vertical Structure of Planet-induced Gaps in Proto-Planetary Discs
- A Link Between the Semi-Major Axis of Extrasolar Gas Giant Planets and Stellar Metallicity