English

The evolution of far-infrared CO emission from protostars

Astrophysics of Galaxies 2016-08-18 v1 Solar and Stellar Astrophysics

Abstract

We investigate the evolution of far-IR CO emission from protostars observed with Herschel/PACS for 50 sources from the combined sample of HOPS and DIGIT Herschel key programs. From the uniformly sampled spectral energy distributions, we computed LbolL_{\rm{bol}}, TbolT_{\rm{bol}} and Lbol/LsmmL_{\rm {bol}}/L_{\rm {smm}} for these sources to search for correlations between far-IR CO emission and protostellar properties. We find a strong and tight correlation between far-IR CO luminosity (LCOfirL^{\rm fir}_{\rm CO}) and the bolometric luminosity (LbolL_{\rm{bol}}) of the protostars with LCOfirL^{\rm fir}_{\rm CO} \propto Lbol0.7L_{\rm{bol}}^{0.7}. We, however, do not find a strong correlation between LCOfirL^{\rm fir}_{\rm CO} and protostellar evolutionary indicators, TbolT_{\rm{bol}} and Lbol/LsmmL_{\rm {bol}}/L_{\rm {smm}}. FIR CO emission from protostars traces the currently shocked gas by jets/outflows, and LCOfirL^{\rm fir}_{\rm CO} is proportional to the instantaneous mass loss rate, M˙out\dot{M}_{\rm{out}}. The correlation between LCOfirL^{\rm fir}_{\rm CO} and LbolL_{\rm{bol}} is indicative of instantaneous M˙out\dot{M}_{\rm{out}} tracking instantaneous M˙acc\dot{M}_{\rm{acc}}. The lack of correlation between LCOfirL^{\rm fir}_{\rm CO} and evolutionary indicators TbolT_{\rm{bol}} and Lbol/LsmmL_{\rm {bol}}/L_{\rm {smm}} suggests that M˙out\dot{M}_{\rm{out}} and, therefore, M˙acc\dot{M}_{\rm{acc}} do not show any clear evolutionary trend. These results are consistent with mass accretion/ejection in protostars being episodic. Taken together with the previous finding that the time-averaged mass ejection/accretion rate declines during the protostellar phase (e.g., Bontemps et al. 1996), our results suggest that the instantaneous accretion/ejection rate of protostars is highly time variable and episodic, but the amplitude and/or frequency of this variability decreases with time such that the time averaged accretion/ejection rate declines with system age.

Keywords

Cite

@article{arxiv.1608.04965,
  title  = {The evolution of far-infrared CO emission from protostars},
  author = {P. Manoj and J. D. Green and S. T. Megeath and N. J. Evans and A. M. Stutz and J. J. Tobin and D. M. Watson and W. J. Fischer and E. Furlan and T. Henning},
  journal= {arXiv preprint arXiv:1608.04965},
  year   = {2016}
}

Comments

Accepted for publication in ApJ

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