English

Proplyds in the Flame Nebula NGC 2024

Solar and Stellar Astrophysics 2021-01-06 v1 Earth and Planetary Astrophysics Astrophysics of Galaxies

Abstract

A recent survey of the inner 0.35×0.350.35\times0.35pc of the NGC 2024 star forming region revealed two distinct millimetre continuum disc populations that appear to be spatially segregated by the boundary of a dense cloud. The eastern (and more embedded) population is 0.20.5\sim0.2-0.5Myr old, with an ALMA mm continuum disc detection rate of about 4545\,per cent. However this drops to only 15\sim15per cent in the 1Myr western population. When presenting this result, van Terwisga et al. (2020) suggested that the two main UV sources, IRS 1 (a B0.5V star in the western region) and IRS 2b (an O8V star in the eastern region, but embedded) have both been evaporating the discs in the depleted western population. In this paper we report the firm discovery in archival HST data of 4 proplyds and 4 further candidate proplyds in NGC 2024, confirming that external photoevaporation of discs is occurring. However, the locations of these proplyds changes the picture. Only three of them are in the depleted western population and their evaporation is dominated by IRS 1, with no obvious impact from IRS 2b. The other 5 proplyds are in the younger eastern region and being evaporated by IRS 2b. We propose that both populations are subject to significant external photoevaporation, which happens throughout the region wherever discs are not sufficiently shielded by the interstellar medium. The external photoevaporation and severe depletion of mm grains in the 0.2-0.5Myr eastern part of NGC 2024 would be in competition even with very early planet formation.

Keywords

Cite

@article{arxiv.2012.09166,
  title  = {Proplyds in the Flame Nebula NGC 2024},
  author = {Thomas J. Haworth and Jinyoung S. Kim and Andrew J. Winter and Dean C. Hines and Cathie J. Clarke and Andrew D. Sellek and Giulia Ballabio and Karl R. Stapelfeldt},
  journal= {arXiv preprint arXiv:2012.09166},
  year   = {2021}
}

Comments

14 pages, Accepted for publication in MNRAS

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