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A Keplerian disk around a Class 0 source: ALMA observations of VLA1623A

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arxiv 1310.8481 v1 pith:F2U3OFZ7 submitted 2013-10-31 astro-ph.GA astro-ph.SR

A Keplerian disk around a Class 0 source: ALMA observations of VLA1623A

classification astro-ph.GA astro-ph.SR
keywords diskformationkeplerianrotationrotationallystructuresupportedclass
verification ladder T0 review T1 audit T2 compute T3 formal T4 reserved
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Context: Rotationally supported disks are critical in the star formation process. The questions of when do they form and what factors influence or hinder their formation have been studied but are largely unanswered. Observations of early stage YSOs are needed to probe disk formation. Aims: VLA1623 is a triple non-coeval protostellar system, with a weak magnetic field perpendicular to the outflow, whose Class 0 component, VLA1623A, shows a disk-like structure in continuum with signatures of rotation in line emission. We aim to determine whether this structure is in part or in whole a rotationally supported disk, i.e. a Keplerian disk, and what are its characteristics. Methods: ALMA Cycle 0 Early Science 1.3 mm continuum and C$^{18}$O (2-1) observations in the extended configuration are presented here and used to perform an analysis of the disk-like structure using PV diagrams and thin disk modelling with the addition of foreground absorption. Results: The PV diagrams of the C$^{18}$O line emission suggest the presence of a rotationally supported component with a radius of at least 50 AU. Kinematical modelling of the line emission shows that the disk out to 180 AU is actually rotationally supported, with the rotation being well described by Keplerian rotation out to at least 150 AU, and the central source mass to be $\sim$0.2 M$_{sun}$ for an inclination of 55$^{\circ}$. Pure infall and conserved angular momentum rotation models are excluded. Conclusions: VLA1623A, a very young Class 0 source, presents a disk with an outer radius $R_{\rm out}$ = 180 AU with a Keplerian velocity structure out to at least 150 AU. The weak magnetic fields and recent fragmentation in this region of rho Ophiuchus may have played a lead role in the formation of the disk.

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Cited by 3 Pith papers

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  1. Preferential alignment of Class 0, Class I protostellar disks in multiple systems across nine nearby molecular clouds

    astro-ph.SR 2026-07 conditional novelty 6.0

    Disks around young stars in binary and higher-order multiple systems are preferentially aligned out to 6000 AU, implying turbulent fragmentation alone cannot explain how most multiples form.

  2. Accurate proper motions of the protostellar system VLA1623-2417

    astro-ph.GA 2026-07 conditional novelty 5.0

    Accurate 11-34 year proper motions of VLA1623-2417 show the wide component W is approaching the A/B pair, eliminating the dynamical-ejection scenario.

  3. The Accretion Process on Protostars

    astro-ph.SR 2026-05 unverdicted novelty 2.0

    The paper reviews techniques for measuring protostellar accretion, analyzes methodological differences and caveats in comparing observations with simulations, and outlines next steps for a fuller picture.