Feedback-limited Accretion: Variable Luminosity from Growing Planets
arXiv:1711.01372 · doi:10.1093/mnras/staa3860
Abstract
Planets form in discs of gas and dust around stars, and continue to grow by accretion of disc material while available. Massive planets clear a gap in their protoplanetary disc, but can still accrete gas through a circumplanetary disk. For high enough accretion rates the planet should be detectable at infrared wavelengths. As the energy of the gas accreted on to the planet is released, the planet surroundings heat up in a feedback process. We aim to test how this planet feedback affects the gas in the coorbital region and the accretion rate itself. We modified the 2D code FARGO-AD to include a prescription for the accretion and feedback luminosity of the planet and use it to model giant planets on 10 au circular and eccentric orbits around a solar mass star. We find that this feedback reduces but does not halt the accretion on to the planet, although this result might depend on the near-coincident radial ranges where both recipes are implemented. Our simulations also show that the planet heating gives the accretion rate a stochastic variability with an amplitude . A planet on an eccentric orbit ( presents a similar variability amplitude, but concentrated on a well-defined periodicity of half the orbital period and weaker broadband noise, potentially allowing observations to discriminate between both cases. Finally, we find that the heating of the coorbital region by the planet feedback alters the gas dynamics, reducing the difference between its orbital velocity and the Keplerian motion at the edge of the gap, which can have important consequences for the formation of dust rings.
11 Pages, 10 Figures, accepted to MNRAS. Manuscript updated following the referee report, changing the focus towards the accretion variability
References in corpus (27)
- Discovery of a planetary-mass companion within the gap of the transition disk around PDS 70
- Ring shaped dust accumulation in transition disks
- A Kinematical Detection of Two Embedded Jupiter Mass Planets in HD 163296
- Dust filtration at gap edges: Implications for the spectral energy distributions of discs with embedded planets
- Kinematic evidence for an embedded protoplanet in a circumstellar disc
- Orbital and atmospheric characterization of the planet within the gap of the PDS 70 transition disk
- Mass Estimates of a Giant Planet in a Protoplanetary Disk from the Gap Structures
- Simulations of star formation in a gaseous disc around sgr A* - a failed AGN
- Kinematic detection of a planet carving a gap in a protoplanetary disc
- Accreting Circumplanetary Disks: Observational Signatures
- Discovery of a Companion Candidate in the HD169142 Transition Disk and the Possibility of Multiple Planet Formation
- Migration of massive planets in accreting disks
- Type I planetary migration in a self-gravitating disk
- Gas accretion onto planetary cores: three-dimensional self-gravitating radiation hydrodynamical calculations
- Characterization of exoplanets from their formation III: The statistics of planetary luminosities
- Coorbital thermal torques on low-mass protoplanets
- A Mexican Hat with holes: calculating low resolution power spectra from data with gaps
- The dynamical role of the circumplanetary disc in planetary migration
- The effect of a planet on the dust distribution in a 3D protoplanetary disk
- Effects of the Planetary Temperature on the Circumplanetary Disk and on the Gap
- The Planetary Accretion Shock: I. Framework for Radiation-hydrodynamical Simulations and First Results
- The accretion of migrating giant planets
- Thermal torque effects on the migration of growing low-mass planets
- The effect of radiative feedback on disc fragmentation
- The diverse lives of massive protoplanets in self-gravitating discs
- 1D accretion discs around eccentric planets: observable near-infrared variability
- Setting the Stage for the Planet Formation Imager
Cited by in corpus (5)
- Accreting protoplanets: Spectral signatures and magnitude of gas and dust extinction at H alpha
- A search for companions via direct imaging in the DSHARP planet-forming disks
- Three-temperature radiation hydrodynamics with PLUTO: Thermal and kinematic signatures of accreting protoplanets
- Radiative scale-height and shadows in protoplanetary disks
- Monte Carlo post-processing for radiation hydro simulations of accreting planets in protoplanetary disks