Radiation shielding of protoplanetary discs in young star-forming regions
arXiv:2302.03721 · doi:10.1093/mnras/stad445
Abstract
Protoplanetary discs spend their lives in the dense environment of a star forming region. While there, they can be affected by nearby stars through external photoevaporation and dynamic truncations. We present simulations that use the AMUSE framework to couple the Torch model for star cluster formation from a molecular cloud with a model for the evolution of protoplanetary discs under these two environmental processes. We compare simulations with and without extinction of photoevaporation-driving radiation. We find that the majority of discs in our simulations are considerably shielded from photoevaporation-driving radiation for at least 0.5 Myr after the formation of the first massive stars. Radiation shielding increases disc lifetimes by an order of magnitude and can let a disc retain more solid material for planet formation. The reduction in external photoevaporation leaves discs larger and more easily dynamically truncated, although external photoevaporation remains the dominant mass loss process. Finally, we find that the correlation between disc mass and projected distance to the most massive nearby star (often interpreted as a sign of external photoevaporation) can be erased by the presence of less massive stars that dominate their local radiation field. Overall, we find that the presence and dynamics of gas in embedded clusters with massive stars is important for the evolution of protoplanetary discs.
23 pages, 22 figures, 1 table, accepted for publication in MNRAS
References in corpus (36)
- Array Programming with NumPy
- Modules for Experiments in Stellar Astrophysics (MESA)
- Modules for Experiments in Stellar Astrophysics (MESA): Pulsating Variable Stars, Rotation, Convective Boundaries, and Energy Conservation
- Modeling Collapse and Accretion in Turbulent Gas Clouds: Implementation and Comparison of Sink Particles in AMR and SPH
- Dust masses of young disks: constraining the initial solid reservoir for planet formation
- A multiphysics and multiscale software environment for modeling astrophysical systems
- The Coupled Physical Structure of Gas and Dust in the IM Lup Protoplanetary Disk
- STARFORGE: Toward a comprehensive numerical model of star cluster formation and feedback
- The Photoevaporation of Discs Around Young Stars in Massive Clusters
- The Disk Substructures at High Angular Resolution Project (DSHARP): IV. Characterizing substructures and interactions in disks around multiple star systems
- ALMA Observations of the Orion Proplyds
- A stellar mass dependence of structured disks: a possible link with exoplanet demographics
- The evolution of dust in discs influenced by external photoevaporation
- Protoplanetary disc evolution affected by star-disc interactions in young stellar clusters
- A Tale of Three Cities: OmegaCAM discovers multiple sequences in the color-magnitude diagram of the Orion Nebula Cluster
- Sizes of protoplanetary discs after star-disc encounters
- Strong effect of the cluster environment on the size of protoplanetary discs?
- Environmental dependence of the molecular cloud lifecycle in 54 main sequence galaxies
- Survivability of planetary systems in young and dense star clusters
- Cluster dynamics largely shapes protoplanetary disc sizes
- Protoplanetary disk masses in NGC 2024: Evidence for two populations
- ALMA Observations of the T Tauri Binary System AS 205: Evidence for Molecular Winds and/or Binary Interactions
- Rapid destruction of protoplanetary discs due to externalphotoevaporation in star-forming regions
- The evolution of protoplanetary discs in star formation and feedback simulations
- Proplyds in the Flame Nebula NGC 2024
- A likely flyby of binary protostar Z CMa caught in action
- Ionization: a possible explanation for the difference of mean disk sizes in star-forming regions
- The growth and migration of massive planets under the influence of external photoevaporation
- Effects of stellar density on the photoevaporation of circumstellar discs
- External photoevaporation of protoplanetary discs: does location matter?
- Warm millimetre dust in protoplanetary discs near massive stars
- Far and extreme ultraviolet radiation fields and consequent disc destruction in star-forming regions
- Disk Evolution Study Through Imaging of Nearby Young Stars (DESTINYS): A Panchromatic View of DO Tau's Complex Kilo-au Environment
- Evolution of circumstellar discs in young star-forming regions
- Exploring the possibility of Peter Pan discs across stellar mass
- Turbulent Disk Viscosity and the Bifurcation of Planet Formation Histories
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- Kaleidoscope of irradiated disks: MUSE observations of proplyds in the Orion Nebula Cluster. I. Sample presentation and ionization front sizes
- The external photoevaporation of structured protoplanetary disks
- Massive star cluster formation II. Runaway stars as fossils of sub-cluster mergers
- The ALMA Survey of Gas Evolution of PROtoplanetary Disks (AGE-PRO): VIII. The impact of external photoevaporation on disk masses and radii in Upper Scorpius
- On the suppression of giant planet formation around low-mass stars in clustered environments
- Infall and Disk Processes - the Message from Meteorites
- Oort Cloud Ecology. III. The Sun left the parent star cluster shortly after the giant planets formed
- Using simultaneous mass accretion and external photoevaporation rates for d203-504 to constrain disc evolution processes
- Line ratio identification of external photoevaporation
- Survival of Protoplanetary Disks in Upper Scorpius from Population Synthesis Models with External Photoevaporation
- Transferring Data from a Voronoi Mesh to an Adaptive Cartesian Grid in Pursuit of Self-consistent Top-down Star Formation