The orbital architecture and debris disks of the HR 8799 planetary system
arXiv:1807.05898 · doi:10.3847/1538-4365/aad3d3
Abstract
The HR8799 planetary system with four ~10 mJup planets in wide orbits up to 70 au, and periods up to 500 yr has been detected with the direct imaging. Its intriguing orbital architecture is not fully resolved due to time-limited astrometry covering ~20 years. Earlier, we constructed a heuristic model of the system based on rapid, convergent migration of the planets. We developed a better structured and CPU-efficient variant of this model. We re-analyzed the self-consistent, homogeneous astrometric dataset in Konopacky (2016). The best-fitting configuration agrees with our earlier findings. The planets are likely involved in dynamically robust Laplace resonance chain. Hypothetical planets with masses below the current detection limit of 0.1-3 Jupiter masses, within the observed inner, or beyond the outer orbit, respectively, do not influence the long term stability of the system. We predict positions of such non-detected objects. The long-term stable orbital model of the observed planets helps to simulate the dynamical structure of debris disks in the system. A CPU-efficient fast indicator technique makes it possible to reveal their complex, resonant shape in 10^6 particles scale. We examine the inner edge of the outer disk detected between 90-145 au. We also reconstruct the outer disk assuming that it has been influenced by convergent migration of the planets. A complex shape of the disk strongly depends on various dynamical factors, like orbits and masses of non-detected planets. It may be highly non-circular and its models are yet non-unique, regarding both observational constraints, as well as its origin.
27 pages, 13 figures, 1 table; accepted in Astrophysical Journal Supplement Series
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Cited by in corpus (21)
- Deep exploration of the planets HR 8799 b, c, and d with moderate resolution spectroscopy
- Solar System Physics for Exoplanet Research
- A search for a 5th planet around HR 8799 using the star-hopping RDI technique at VLT/SPHERE
- Four-of-a-kind? Comprehensive atmospheric characterisation of the HR 8799 planets with VLTI/GRAVITY
- A detailed characterization of HR 8799's debris disk with ALMA in Band 7
- The First Dynamical Mass Measurement in the HR 8799 System
- The Scattered Disc of HR 8799
- Orbital and dynamical analysis of the system around HR 8799. New astrometric epochs from VLT/SPHERE and LBT/LUCI
- An exact, generalised Laplace resonance in the HR 8799 planetary system
- Constraining planetesimal stirring: how sharp are debris disc edges?
- Dynamical Mass of the Exoplanet Host Star HR 8799
- Deep orbital search for additional planets in the HR 8799 system
- Inner edges of planetesimal belts: collisionally eroded or truncated?
- The compositions of the HR 8799 planets reflect accretion of both solids and metal-enriched gas
- The post-main-sequence fate of the HR 8799 planetary system
- Architecture of three-planet systems predicted from the observed protoplanetary disk of HL Tau
- Enrichment of the HR 8799 planets by minor bodies and dust
- Planet-planet scattering in presence of a companion star
- Architecture of planetary systems predicted from protoplanetary disks observed with ALMA II: evolution outcomes and dynamical stability
- Radial velocity analysis of stars with debris discs
- The orbital architecture and stability of the Arae planetary system