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Fragmentation and ob star formation in high-mass molecular hub-filament systems
Journal article   Peer reviewed

Fragmentation and ob star formation in high-mass molecular hub-filament systems

Hauyu Baobab Liu, Izaskun Jiménez-Serra, Paul T. P. Ho, Huei-Ru Chen, Qizhou Zhang and Zhi-Yun Li
Astrophysical Journal, Vol.756(1), 10
2012

Abstract

evolution stars: formation
Filamentary structures are ubiquitously seen in the interstellar medium. The concentrated molecular mass in the filaments allows fragmentation to occur in a shorter timescale than the timescale of the global collapse. Such hierarchical fragmentation may further assist the dissipation of excessive angular momentum. It is crucial to resolve the morphology and the internal velocity structures of the molecular filaments observationally. We perform 0.5-2.5 angular resolution interferometric observations toward the nearly face-on OB cluster-forming region G33.92+0.11. Observations of various spectral lines, as well as the millimeter dust continuum emission, consistently trace several ∼1pc scale, clumpy molecular arms. Some of the molecular arms geometrically merge to an inner 3.0 +2.8 - 1.4 × 10 3 M , 0.6pc scale central molecular clump, and may directly channel the molecular gas to the warm (∼50K) molecular gas immediately surrounding the centrally embedded OB stars. The NH 3 spectra suggest a medium turbulence line width of FWHM ≲ 2kms -1 in the central molecular clump, implying a ≳10times larger molecular mass than the virial mass. Feedbacks from shocks and the centrally embedded OB stars and localized (proto)stellar clusters likely play a key role in the heating of molecular gas and could lead to the observed chemical stratification. Although (proto)stellar feedbacks are already present, G33.92+0.11 chemically appears to be at an early evolutionary stage given by the low abundance limit of SO 2 observed in this region. © © 2012. The American Astronomical Society. All rights reserved..

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