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HP2 Survey V. Ophiuchus: Filament formation in a dispersing cloud complex

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arxiv 2501.13931 v1 pith:ZKGWYZLM submitted 2025-01-23 astro-ph.GA

HP2 Survey V. Ophiuchus: Filament formation in a dispersing cloud complex

classification astro-ph.GA
keywords formationcomplexfilamentfilamentsmassmassivestarstextit
verification ladder T0 review T1 audit T2 compute T3 formal T4 reserved
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We search for potential ``birthmarks'' left from the formation of filamentary molecular clouds in the Ophiuchus complex. We use high dynamic-range column density and temperature maps derived from \textit{Herschel}, \textit{Planck}, and \textit{2MASS/NICEST} extinction data. We find two distinct types of filaments based on their orientation relative to nearby massive stars: radial (R-type) and tangential (T-type). R-type filaments exhibit decreasing mass profiles away from massive stars, while T-type filaments show flat but structured profiles. We propose a scenario where both filament types originate from the dynamic interplay of compression and stretching forces exerted by a fast outflow emanating from the OB association. The two formation mechanisms leave distinct observable ``birthmarks'' (namely, filament orientation, mass distribution, and star formation location) on each filament type. Our results illustrate a complex phase in molecular cloud evolution with two simultaneous yet contrasting processes: the formation of filaments and stars via the dispersal of residual gas from a previous massive star formation event. Our approach highlights the importance of taking into account the wider context of a star-forming complex, rather than concentrating exclusively on particular subregions.

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Cited by 2 Pith papers

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    Core-scale magnetic fields in star-forming regions are more disordered than cloud-scale fields and align randomly with core orientations and velocity gradients.

  2. The evolution of velocity dispersion in the Sco-Cen OB association

    astro-ph.GA 2025-09 unverdicted novelty 5.0

    Sco-Cen shows abrupt jumps and plateaus in velocity dispersion correlated with star formation bursts, indicating isotropic expansion, inside-out propagation at 5-6 km/s, and stellar feedback as the primary driver.