How do giant planetary cores shape the dust disk? HL Tau system
arXiv:1510.01498 · doi:10.1051/0004-6361/201526921
Abstract
We are observing, thanks to ALMA, the dust distribution in the region of active planet formation around young stars. This is a powerful tool to connect observations with theoretical models and improve our understandings of the processes at play. We want to test how a multi-planetary system shapes its birth disk and study the influence of the planetary masses and particle sizes on the final dust distribution. Moreover, we apply our model to the HL Tau system in order to obtain some insights on the physical parameters of the planets that are able to create the observed features. We follow the evolution of a population of dust particles, treated as Lagrangian particles, in two-dimensional, locally isothermal disks where two equal mass planets are present. The planets are kept in fixed orbits and they do not accrete mass. The outer planet plays a major role removing the dust particles in the co-orbital region of the inner planet and forming a particle ring which promotes the development of vortices respect to the single planetary case. The ring and gaps width depends strongly on the planetary mass and particle stopping times, and for the more massive cases the ring clumps in few stable points that are able to collect a high mass fraction. The features observed in the HL Tau system can be explained through the presence of several massive cores that shape the dust disk, where the inner planet(s) should have a mass on the order of 0.07 Jupiter masses and the outer one(s) on the order of 0.35 Jupiter masses. These values can be significantly lower if the disk mass turns out to be less than previously estimated. Decreasing the disk mass by a factor 10 we obtain similar gap widths for planets with a mass of 10 and 20 Earth masses respectively. Although the particle gaps are prominent, the expected gaseous gaps would be barely visible.
16 pages, 23 figures, accepted for publication in A&A
References in corpus (11)
- First Results from High Angular Resolution ALMA Observations Toward the HL Tau Region
- A comparative study of disc-planet interaction
- Gaps, Rings, and Non-Axisymmetric Structures in Protoplanetary Disks - From Simulations to ALMA Observations
- Evidence of fast pebble growth near condensation fronts in the HL Tau protoplanetary disk
- On planet formation in HL Tau
- On the corotation torque in a radiatively inefficient disk
- Dust flow in gas disks in the presence of embedded planets
- Mass Estimates of a Giant Planet in a Protoplanetary Disk from the Gap Structures
- Treating gravity in thin disk simulations
- Dust accretion onto high-mass planets
- The effect of a planet on the dust distribution in a 3D protoplanetary disk
Cited by in corpus (41)
- Ringed Substructure and a Gap at 1 AU in the Nearest Protoplanetary Disk
- The Disk Substructures at High Angular Resolution Project (DSHARP): VII. The Planet-Disk Interactions Interpretation
- The minimum mass of detectable planets in protoplanetary discs and the derivation of planetary masses from high resolution observations
- A Multi-Ringed, Modestly-Inclined Protoplanetary Disk around AA Tau
- Mass constraint for a planet in a protoplanetary disk from the gap width
- The VLA view of the HL Tau Disk - Disk Mass, Grain Evolution, and Early Planet Formation
- Characterizing the variable dust permeability of planet-induced gaps
- Including Dust Coagulation in Hydrodynamic Models of Protoplanetary Disks: Dust Evolution in the Vicinity of a Jupiter-mass Planet
- An opening criterion for dust gaps in protoplanetary discs
- The circumstellar disk HD169142: gas, dust and planets acting in concert?
- HL Tau disk in HCO+ (3-2) and (1-0) with ALMA: gas density, temperature, gap, and one-arm spiral
- Two mechanisms for dust gap opening in protoplanetary discs
- Giant planet formation in radially structured protoplanetary discs
- Modeling of deep gaps created by giant planets in protoplanetary discs
- Dust-driven viscous ring-instability in protoplanetary disks
- SPHERE/SHINE reveals concentric rings in the debris disk of HIP 73145
- Gas Gaps in the Protoplanetary Disk around the Young Protostar HL Tau
- On the planetary interpretation of multiple gaps and rings in protoplanetary disks seen by ALMA
- Effect of dust radial drift on viscous evolution of gaseous disk
- Linear growth of streaming instability in pressure bumps
- Impacts of dust feedback on a dust ring induced by a planet in a protoplanetary disk
- The properties of the inner disk around HL Tau: Multi-wavelength modeling of the dust emission
- Particle accretion onto planets in discs with hydrodynamic turbulence
- A photo-evaporative gap in the closest planet forming disc
- Dusty disc-planet interaction with dust-free simulations
- Resilience of Planetesimal Formation in Weakly-Reinforced Pressure Bumps
- Modeling the nonaxisymmetric structure in the HD 163296 disk with planet-disk interaction
- Pebble accretion in class 0/I YSOs as a possible pathway for early planet formation
- Eccentric gap induced by a super-Jupiter mass planet
- Planet gap opening across stellar masses
- A sub-grid model for the growth of dust particles in hydrodynamical simulations of protoplanetary disks
- PGNets: Planet mass prediction using convolutional neural networks for radio continuum observations of protoplanetary disks
- Giant planet migration during the disc dispersal phase
- Circumstellar discs: What will be next?
- Circumstellar dust distribution in systems with two planets in resonance
- The role of density perturbation on planet formation by pebble accretion
- Architecture of three-planet systems predicted from the observed protoplanetary disk of HL Tau
- Primordial dust rings, hidden dust mass, and the first generation of planetesimals in gravitationally unstable protoplanetary disks
- Dust Coagulation in the Vicinity of a Gap-Opening Jupiter-Mass Planet
- Dust distribution around low-mass planets on converging orbits
- Effects of turbulent diffusion and back-reaction on the dust distribution around two resonant planets