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April 29, 20260 citations

From fragments to flares: Migration, tidal disruption, and observable bursts in massive protostellar disks

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VEVardan ElbakyanRKRolf KuiperAOAndré Oliva

Key Points

  • This research aims to investigate how the resolution of massive protostellar disks influences the properties of accretion bursts caused by migrating fragments.
  • Conducted a three-dimensional radiation-hydrodynamic simulation of a 5msun protostar with different sink models.
  • Compared behaviors of a 30 AU sink model and a refined 1 AU sink model regarding fragment disruption and accretion.
  • Post-processed gas structures with radiative transfer to generate synthetic photometry and multiband images.
  • Both simulations led to significant accretion bursts during fragment tidal disruption.
  • The refined model showed faster migration and a more pronounced tidal disruption, resulting in sharper outbursts.
  • The refined setup produced stronger near-infrared emissions, indicating a hotter compact inner disk.

Abstract

Gravitational fragmentation in massive protostellar disks can lead to the formation of bound gaseous clumps whose inward migration and disruption may trigger strong accretion outbursts. Yet the roles of numerical resolution and inner boundary treatment in shaping the burst properties remain poorly understood. We investigate how resolving the inner few astronomical units of a massive protostellar disk affects the migration, disruption, and accretion signatures of an inward-moving fragment. In particular, we aim to determine whether the predicted burst strength and duration depend on the adopted sink cell size. We present a new three-dimensional radiation-hydrodynamic simulation of a ∼5msun protostar surrounded by a self-gravitating disk that compares the original 30 AU sink model to a refined model with a 1 AU sink that resolves the inner disk. The resulting gas structures were post-processed with radiative transfer calculations to derive synthetic photometry and multiband images. We find the both simulations produce a major accretion burst as a migrating fragment is tidally disrupted, but their detailed behavior differs markedly. The refined model shows faster migration, a complete tidal disruption of the fragment, and a shorter, sharper outburst (more consistent with observations) with nearly the same peak accretion rate as the 30 AU model, which yields a broader, smoother event. The refined run also produces much stronger near- and mid-infrared emission, reflecting the formation of a compact, hot inner disk. Resolving the inner few AU qualitatively changes the dynamics and observable appearance of fragment-driven bursts. Diffuse fragment disruption can reproduce decade-long events, but the much shorter (<3 yr) bursts observed in some massive protostars likely require the tidal disruption of more compact objects, such as second Larson cores. Our trajectory analysis indicates that second Larson cores can migrate sufficiently close to the star to be tidally destroyed, offering a plausible mechanism for the fastest FU-Ori–like bursts observed in massive protostars.

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Cite This Study

Elbakyan et al. (2026) studied this question.

synapsesocial.com/papers/69f154c0879cb923c4944f28https://doi.org/10.1051/0004-6361/202658960/pdf
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