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April 29, 20260 citations

Linear filament and nested cluster evolution tomography (LANCET)

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FXFengwei XuKWKe WangNSNicola Schneider

Key Points

  • This research aims to understand how massive stars and clusters evolve within the G316.8 filament.
  • Mapped the G316.8 filament using the Atacama Compact Array at 1.3 mm resolution.
  • Combined ACA data with Herschel and APEX/ArTéMiS observations for high-resolution mapping.
  • Quantified differences using dense-fragment statistics and N-PDFs.
  • Maximum fragment mass increased from 8 to 490 M⊙ across evolutionary stages.
  • Dense-gas mass fraction grew from 0.4% to 9.6% from young to evolved regions.
  • Subregional analysis indicates a coherent evolutionary trend in massive star formation.

Abstract

A dynamic view of mass assembly is essential for understanding the formation of massive stars and clusters. However, interpreting evolutionary diagnostics from Galactic-wide surveys requires careful consideration of distance and environmental variations. The G316.8 filament provides an excellent controlled case: a 14-parsec, nearly linear structure comprising three contiguous subregions with comparable molecular gas reservoirs (each ~10 000 M⊙), yet spanning a clear evolutionary sequence from a northern infrared dark cloud (young) through a central massive young stellar object (intermediate), to a southern HII region (evolved). The Linear filament and nested cluster evolution tomography (LANCET) project mapped the entire G316.8 filament with the Atacama Compact Array (ACA) at 1.3 mm, achieving 6″ (0.08 pc) resolution over 26.7 arcmin2 (17.1 pc2). By combining ACA 7 m data with Herschel and APEX/ArTéMiS observations, we produced high-resolution temperature and column-density maps. We quantified subregional differences using (i) dense-fragment statistics, (ii) column-density probability distribution functions (N-PDFs), and (iii) the scale-dependent structural diagnostic, the Δ-variance. From young to intermediate to evolved, the maximum fragment mass increases from 8 to 160 to 490 M⊙, while the dense-gas mass fraction (>0.5 g cm−2) rises from 0.4 to 2.3 to 9.6%. Along this sequence, the N-PDF develops a slightly flatter primary power-law tail and an additional, steeper secondary tail; the Δ-variance slope becomes progressively shallower. Across G316.8, the subregional differences consistently indicate a coherent evolutionary trend of massive star formation, in which gas is continuously assembled into sub-parsec dense structures. The forthcoming 12 m array observations are about to extend this dynamic picture by resolving dense core formation and probing gas kinematics and magnetic fields.

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Cite This Study

Xu et al. (2026) studied this question.

synapsesocial.com/papers/69f154e0879cb923c4945329https://doi.org/10.1051/0004-6361/202557480/pdf
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