Accuracy of ALMA estimates of young disk radii and masses. Predicted observations from numerical simulations
arXiv:2401.12142 · doi:10.1051/0004-6361/202348730
Abstract
Protoplanetary disks, which are the natural consequence of the gravitational collapse of the dense molecular cloud cores, host the formation of the known planetary systems in our universe. Substantial efforts have been dedicated to investigating the properties of these disks in the more mature Class II stage, either via numerical simulations of disk evolution from a limited range of initial conditions or observations of their dust continuum and line emission from specific molecular tracers. The results coming from these two standpoints have been used to draw comparisons. However, few studies have investigated the main limitations at work when measuring the embedded Class 0/I disk properties from observations, especially in a statistical fashion. In this study, we provide a first attempt to compare the accuracy of some critical disk parameters in Class 0/I systems, as derived on real ALMA observational data, with the corresponding physical parameters that can be directly defined by theoreticians and modellers in numerical simulations. The approach we follow here is to provide full post-processing of the numerical simulations and apply it to the synthetic observations the same techniques used by observers to derive the physical parameters. We performed 3D Monte Carlo radiative transfer and mock interferometric observations of the disk populations formed in a magnetohydrodynamic (MHD) simulation model of disk formation through the collapse of massive clumps with the tools \textsc{Radmc-3d} and \textsc{Casa}, respectively, to obtain their synthetic observations. With these observations, we re-employed the techniques commonly used in disk modelling from their continuum emissions to infer the properties that would most likely be obtained with real interferometers. We then demonstrated how these properties may vary with respect to the gas kinematics analyses and dust continuum modelling.
Accepted for publication in Astronomy & Astrophysics, 32 pages, 28 figures
References in corpus (28)
- Some Aspects of Measurement Error in Linear Regression of Astronomical Data
- CASA, the Common Astronomy Software Applications for Radio Astronomy
- A Steeper than Linear Disk Mass-Stellar Mass Scaling Relation
- A High Order Godunov Scheme with Constrained Transport and Adaptive Mesh Refinement for Astrophysical MHD
- On the diversity and statistical properties of protostellar discs
- The VLA/ALMA Nascent Disk and Multiplicity (VANDAM) Survey of Orion Protostars. A Statistical Characterization of Class 0 and I Protostellar Disks
- Radiative transfer in very optically thick circumstellar disks
- A Triple Protostar System Formed via Fragmentation of a Gravitationally Unstable Disk
- A Millimeter Continuum Size-Luminosity Relationship for Protoplanetary Disks
- Dust masses of young disks: constraining the initial solid reservoir for planet formation
- A protostellar system fed by a streamer of 10,500 au length
- Physical properties of dusty protoplanetary disks in Lupus: evidence for viscous evolution?
- Towards a more realistic sink particle algorithm for the RAMSES code
- A Sub-arcsecond Survey Toward Class 0 Protostars in Perseus: Searching for Signatures of Protostellar Disks
- The time evolution of dusty protoplanetary disc radii: observed and physical radii differ
- The formation of the solar system
- High gas/dust size ratio indicating efficient radial drift in the mm-faint CX Tau disk
- On the secular evolution of the ratio between gas and dust radii in protoplanetary discs
- Dust Polarization Toward Embedded Protostars in Ophiuchus with ALMA. II. IRAS 16293-2422
- Protostellar collapse simulations in spherical geometry with dust coagulation and fragmentation
- Protoplanetary disk birth in massive star forming clumps: the essential role of the magnetic field
- Demographics of disks around young very low-mass stars and brown dwarfs in Lupus
- Revealing the dust grain size in the inner envelope of the Class I protostar Per-emb-50
- Detection of Irregular, Sub-mm Opaque Structures in the Orion Molecular Clouds: Protostars within 10000 years of formation?
- Testing Disk Identification Methods Through Numerical Simulations of Protostellar Evolution
- Early Planet Formation in Embedded Disks (eDisk) IX: High-resolution ALMA Observations of the Class 0 Protostar R CrA IRS5N and its surrounding
- An analytic solution to measure the gas size in protoplanetary discs in the viscous self-similar scenario
- The FluxCompensator: Making Radiative Transfer Models of hydrodynamical Simulations Directly Comparable to Real Observations
Cited by in corpus (2)
- Variation of the low-mass end of the stellar initial mass function with redshift and metallicity
- The Rosetta Stone Project. II. The correlation between star formation efficiency and L/M indicator for the evolutionary stages of star-forming clumps in post-processed radiative magnetohydrodynamics simulations