English

Planck Cold Clumps in the $\lambda$ Orionis complex. II. Environmental effects on core formation

Astrophysics of Galaxies 2018-07-04 v1 Solar and Stellar Astrophysics

Abstract

Based on the 850 μ\mum dust continuum data from SCUBA-2 at James Clerk Maxwell Telescope (JCMT), we compare overall properties of Planck Galactic Cold Clumps (PGCCs) in the λ\lambda Orionis cloud to those of PGCCs in the Orion A and B clouds. The Orion A and B clouds are well known active star-forming regions, while the λ\lambda Orionis cloud has a different environment as a consequence of the interaction with a prominent OB association and a giant Hii region. PGCCs in the λ\lambda Orionis cloud have higher dust temperatures (Td=16.13±0.15Td=16.13\pm0.15 K) and lower values of dust emissivity spectral index (β=1.65±0.02 \beta=1.65\pm0.02) than PGCCs in the Orion A (Td=13.79±0.21\pm 0.21K, β=2.07±0.03\beta=2.07\pm0.03) and Orion B (Td=13.82±0.19Td=13.82\pm0.19K, β=1.96±0.02\beta=1.96\pm0.02) clouds. We find 119 sub-structures within the 40 detected PGCCs and identify them as cores. Of total 119 cores, 15 cores are discovered in the λ\lambda Orionis cloud, while 74 and 30 cores are found in the Orion A and B clouds, respectively. The cores in the λ\lambda Orionis cloud show much lower mean values of size R=0.08 pc, column density N(H2)=(9.5±1.2)×1022(9.5\pm1.2) \times 10^{22} cm2^{-2}, number density n(H2)=(2.9±0.4)×105(2.9 \pm 0.4)\times10^{5} cm3^{-3}, and mass McoreM_{core}=1.0±0.31.0\pm0.3 M_{\odot} compared to the cores in the Orion A (R=0.11pc, N(H2)=(2.3±0.3)×1023N(H2)=(2.3\pm0.3) \times 10^{23} cm2^{-2}, n(H2)=(3.8±0.5)×105(3.8\pm0.5) \times 10^{5}cm3^{-3}, and McoreM_{core}=2.4±0.32.4 \pm 0.3 M_{\odot}) and Orion B (R=0.16pc, N(H2)=(3.8±0.4)×1023(3.8 \pm 0.4) \times 10^{23}cm2^{-2}, n(H2)=(15.6±1.8)×105(15.6\pm1.8)\times10^{5} cm3^{-3}, and McoreM_{core}= 2.7±0.32.7\pm0.3 M_{\odot}) clouds. These core properties in the λ\lambda Orionis cloud can be attributed to the photodissociation and external heating by the nearby Hii region, which may prevent the PGCCs from forming gravitationally bound structures and eventually disperse them. These results support the idea of negative stellar feedback on core formation.

Keywords

Cite

@article{arxiv.1805.05738,
  title  = {Planck Cold Clumps in the $\lambda$ Orionis complex. II. Environmental effects on core formation},
  author = {Hee-Weon Yi and Jeong-Eun Lee and Tie Liu and Kee-Tae Kim and Minho Choi and David Eden and Neal J. Evans and James Di Francesco and Gary Fuller and N. Hirano and Mika Juvela and Sung-ju Kang and Gwanjeong Kim and Patrick M. Koch and Chang Won Lee and Di Li and H. -Y. B. Liu and Hong-Li Liu and Sheng-Yuan Liu and Mark G. Rawlings and I. Ristorcelli and Patrico Sanhueza and Archana Soam and Ken'ichi Tatematsu and Mark Thompson and L. V. Toth and Ke Wang and Glenn J. White and Yuefang Wu and Yao-Lun Yang},
  journal= {arXiv preprint arXiv:1805.05738},
  year   = {2018}
}
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