Massive pre-main-sequence stars in M17 -- Modelling hydrogen and dust in MYSO disks
Frank Backs, J. Poorta, Ch. Rab, A. R. Derkink, A. de Koter, L. Kaper,, M. C. Ram\'irez-Tannus, I. Kamp

TL;DR
This study models the inner circumstellar disks of massive pre-main-sequence stars in M17, revealing transitional disk structures and accretion processes using radiation thermo-chemical simulations and spectral energy distribution fitting.
Contribution
It provides detailed physical characterization of the inner disks of two massive young stellar objects, highlighting their transitional nature and accretion mechanisms.
Findings
Inner disks extend close to the stellar surface.
Disks are likely in the process of clearing, indicating transition stages.
Evidence suggests boundary-layer accretion without strong magnetic fields.
Abstract
The young massive-star-forming region M17 contains optically visible massive pre-main-sequence stars that are surrounded by circumstellar disks. Such disks are expected to disappear when these stars reach the main sequence. The physical and dynamical structure of these remnant disks are poorly constrained, especially the inner regions where accretion, photo-evaporation, and companion formation and migration may be ongoing. We aim to constrain the physical properties of the inner parts of the circumstellar disks of massive young stellar objects B243 (6 Msun) and B331 (12 Msun), two systems for which the central star has been detected and characterized previously despite strong dust extinction. Two-dimensional radiation thermo-chemical modelling with ProDiMo of double-peaked hydrogen lines of the Paschen and Brackett series observed with X-shooter was used to probe the properties of the…
Peer Reviews
No public reviews on file for this paper yet. If you reviewed it on a platform where reviews are public (OpenReview, ICLR, NeurIPS, ICML), you can paste yours below so the community can read it here.
Videos
No videos yet. Explain this paper in a talk, walkthrough, or lecture? Add one.
Taxonomy
TopicsAstrophysics and Star Formation Studies · Phase Equilibria and Thermodynamics · Astro and Planetary Science
