English

Evidence for dense gas heated by the explosion in Orion KL

Astrophysics of Galaxies 2020-09-30 v1

Abstract

We mapped the kinetic temperature structure of Orion KL in a \sim20'' (\sim8000 AU) sized region with para-H2_{2}CS 7076067_{07}-6_{06}, 7266257_{26}-6_{25}, and 7256247_{25}-6_{24} making use of ALMA Band 6 Science Verification data. The kinetic temperatures obtained with a resolution of 1\hbox{\,.\!\!^{\prime\prime}}65×\times1\hbox{\,.\!\!^{\prime\prime}}14 (\sim550 AU) are deduced by modeling the measured averaged velocity-integrated intensity ratios of para-H2_2CS 726625/7076067_{26}-6_{25}/7_{07}-6_{06} and 725624/7076067_{25}-6_{24}/7_{07}-6_{06} with a RADEX non-LTE model. The kinetic temperatures of the dense gas, derived from the para-H2_2CS line ratios at a spatial density of 107^7 cm3^{-3}, are high, ranging from 43 to >>500 K with an unweighted average of \sim170 K. There is no evidence for internal sources playing an important role in the heating of the various structures identified in previous work, namely the elongated ridge, the northwestern clump, and the eastern region of the compact ridge, while the high temperatures in the western region of the compact ridge may be dominated by internal massive star formation. Significant gradients of kinetic temperature along molecular filaments traced by H2_2CS indicate that the dense gas is heated by the shocks induced by the enigmatic explosive event, which occurred several hundred years ago greatly affecting the energetics of the Orion KL region. Thus, with the notable exception of the western region of the compact ridge, the high temperatures of the dense gas in Orion KL are probably caused by shocks from the explosive event, leading to a dominant component of externally heated dense gas.

Keywords

Cite

@article{arxiv.2008.04564,
  title  = {Evidence for dense gas heated by the explosion in Orion KL},
  author = {Dalei Li and Xindi Tang and Christian Henkel and Karl M. Menten and Friedrich Wyrowski and Yan Gong and Gang Wu and Yuxin He and Jarken Esimbek and Jianjun Zhou},
  journal= {arXiv preprint arXiv:2008.04564},
  year   = {2020}
}

Comments

Accepted for publication to ApJ