High-mass star formation at sub-50AU scales
arXiv:1811.10245 · doi:10.1051/0004-6361/201834064
Abstract
Methods: We observed the high-mass hot core region G351.77-0.54 with ALMA and more than 16km baselines. Results: At a spatial resolution of 18/40au (depending on the distance), we identify twelve sub-structures within the inner few thousand au of the region. The brightness temperatures are high, reaching values greater 1000K, signposting high optical depth toward the peak positions. Core separations vary between sub-100au to several 100 and 1000au. The core separations and approximate masses are largely consistent with thermal Jeans fragmentation of a dense gas core. Due to the high continuum optical depth, most spectral lines are seen in absorption. However, a few exceptional emission lines are found that most likely stem from transitions with excitation conditions above1000K. Toward the main continuum source, these emission lines exhibit a velocity gradient across scales of 100-200au aligned with the molecular outflow and perpendicular to the previously inferred disk orientation. While we cannot exclude that these observational features stem from an inner hot accretion disk, the alignment with the outflow rather suggests that it stems from the inner jet and outflow region. The highest-velocity features are found toward the peak position, and no Hubble-like velocity structure can be identified. Therefore, these data are consistent with steady-state turbulent entrainment of the hot molecular gas via Kelvin-Helmholtz instabilities at the interface between the jet and the outflow. Conclusions: Resolving this high-mass star-forming region at sub-50au scales indicates that the hierarchical fragmentation process in the framework of thermal Jeans fragmentation can continue down to the smallest accessible spatial scales. Velocity gradients on these small scales have to be treated cautiously and do not necessarily stem from disks, but may be better explained with outflow emission.
Accepted by Astronomy & Astrophysics, high-resolution version available at http://www.mpia.de/homes/beuther/papers.html
References in corpus (16)
- Theory of Star Formation
- The Evolution of Outflow-Envelope Interactions in Low-Mass Protostars
- Large-scale filaments associated with Milky Way spiral arms
- The Bones of the Milky Way
- Forming spectroscopic massive proto-binaries by disk fragmentation
- A Keplerian disk around Orion Source I, a ~15 Msun YSO
- Dust and gas emission in the prototypical hot core G29.96-0.02 at sub-arcsecond resolution
- Chasing discs around O-type (proto)stars - ALMA evidence for an SiO disc and disc wind from G17.64+0.16
- Radiative transfer modelling of W33A MM1: 3-D structure and dynamics of a complex massive star forming region
- A multiple system of high-mass YSOs surrounded by disks in NGC7538 IRS1
- Anatomy of the internal bow shocks in the IRAS 04166+2706 protostellar jet
- Fragmentation and disk formation during high-mass star formation: The IRAM NOEMA (Northern Extended Millimeter Array) large program CORE
- The dark matter profile of the Milky Way: a non-parametric reconstruction
- Unveiling a Compact Cluster of Massive and Young Stars in IRAS 17233-3606
- Multiplicity and disks within the high-mass core NGC7538IRS1: Resolving cm line and continuum emission at ~0.06"x0.05" resolution
- The SiO outflow from IRAS 17233-3603 at high resolution
Cited by in corpus (23)
- The Origin of Massive Stars: The Inertial-Inflow Model
- Substructures in the Keplerian disc around the O-type (proto)star G17.64+0.16
- Formation and Evolution of Disks around Young Stellar Objects
- Modeling disk fragmentation and multiplicity in massive star formation
- Zooming in on Individual Star Formation: Low- and High-mass Stars
- Star-Gas Surface Density Correlations in Twelve Nearby Molecular Clouds I: Data Collection and Star-Sampled Analysis
- Collapse of turbulent massive cores with ambipolar diffusion and hybrid radiative transfer I. Accretion and multiplicity
- Massive Star Formation via the Collapse of Subvirial and Virialized Turbulent Massive Cores
- Dynamical evolution of Population III stellar systems and the resulting binary statistics
- Young massive star cluster formation in the Galactic Centre is driven by global gravitational collapse of high-mass molecular clouds
- Parameter study for the burst mode of accretion in massive star formation
- The SEDIGISM survey: a search for molecular outflows
- A Detailed View of the Circumstellar Environment and Disk of the Forming O-star AFGL 4176
- Salt-bearing disk candidates around high-mass young stellar objects
- On the ALMA observability of nascent massive multiple systems formed by gravitational instability
- The accretion burst of the massive young stellar object G323.46 -0.08
- Fragmentation of the High-mass "Starless'' Core G10.21-0.31: a Coherent Evolutionary Picture for Star Formation
- Disk fragmentation around a massive protostar: a comparison of two three-dimensional codes
- The evolution of the internal structure of massive star forming regions in the Milky Way as revealed by ALMA
- A multi-line study of the filamentary infrared dark cloud G351.78-0.54
- Digging into the Interior of Hot Cores with ALMA (DIHCA). VII. Disk candidates around high-mass stars and evidence of anisotropic infall
- A quest for sulfur-bearing refractory species. Identification of CaS in the interstellar medium
- Discs and outflows in the early phases of massive star formation: influence of magnetic fields and ambipolar diffusion