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May 10, 2026Monthly Notices of the Royal Astronomical Society0 citationsOpen Access

The Impact of Radiation Environment on the Evolution and Fragmentation of Protostellar Discs

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MCMatt T CusackPCP C ClarkKRKen Rice

Key Points

  • This research aims to investigate how a stronger radiation environment affects the evolution and fragmentation of protostellar discs around newly formed stars.
  • High-resolution simulations of molecular clouds exposed to varying radiation fields and cosmic ray ionization rates.
  • Zoom-in procedure to resolve accretion discs at au-scale while preserving larger molecular cloud structures.
  • Assessment of stability metrics before fragmentation, including Toomre Q, α viscosity, and β cooling parameter.
  • Discs in high-radiation environments are more massive, hotter, and denser, leading to more massive stars.
  • Only some discs fragmented, despite exhibiting stability up to a few hundred years prior to fragmentation.
  • Fragments in high-radiation environments are larger than 0.1 solar masses, unlike smaller planetary-mass fragments in solar-like conditions.

Abstract

Abstract We present high-resolution zoom-in simulations of molecular clouds exposed to an interstellar radiation field and cosmic ray ionisation rate up to 1000 times stronger than that of the solar neighbourhood. We detail the evolution of the accretion discs that form around the first protostar in each simulation, for a total of 7 discs, for up to 100 \, kyr. The use of a zoom-in procedure allows for the au-scale discs to be well resolved (with resolution 0. 25 \, au) whilst retaining the structure of the wider parsec-scale molecular cloud. We find that discs exposed to a stronger radiation field tend to be more massive, hotter and denser. Similarly, their host stars grow to become more massive as a result of accreting more rapidly from their surroundings. All the discs show evidence of recurrent instability during the simulations, but only some of them fragment. We investigate whether stability metrics, such as the Toomre Q, α viscosity, and β cooling parameter, can predict fragmentation by calculating them just before the discs fragment. We find that the metrics are generally unable to do so, as the discs appear stable even up to a few hundred years before fragmenting. In solar-like environments fragments are typically of planetary mass and often migrate to the centre of the disc, whereas fragments in a high-radiation environment are massive (0. 1 \, M_) and fully disrupt/accrete from the progenitor disc. We conclude that the evolution and properties of circumstellar discs depend on both their radiation and physical environment.

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Cite This Study

Cusack et al. (2026) studied this question.

synapsesocial.com/papers/6a0020aec8f74e3340f9b7e9https://doi.org/10.1093/mnras/stag880
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Also Consider

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  1. 1Inferring the physics of protoplanetary disc evolution from the irradiated Cygnus OB2 region2026
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  4. 4From fragments to flares: Migration, tidal disruption, and observable bursts in massive protostellar disks2026
  5. 5Revisiting gravitational instability in protostellar discs with improved radiative cooling models2026