English

Evaporation of grain-surface species by shock waves in proto-planetary disk

Solar and Stellar Astrophysics 2015-06-23 v1

Abstract

Recent ALMA (Atacama Large Millimeter/submillimeter Array) observations of young protostellar objects detected warm SO emission, which could be associated with a forming protostellar disk. In order to investigate if such warm gas can be produced by accretion shock onto the forming disk, we calculate the sputtering and thermal desorption of various grain surface species in one dimensional shock waves. We find that thermal desorption is much more efficient than the sputtering in the post-shock region. While H2_{2}O can be thermally desorbed, if the accretion velocity is larger than 8 km s1^{-1} with the pre-shock gas number density of 109^{9} cm3^{-3}, SO is desorbed, if the accretion velocity \gtrsim 2 km s1^{-1} and \gtrsim 4km s1^{-1}, with the pre-shock density of 109^{9} cm3^{-3} and 108^{8} cm3^{-3}, respectively. We also find that the column density of hydrogen nuclei in warm post-shock gas is Nwarm1021N_{{\rm warm}} \sim 10^{21} cm2^{-2}.

Keywords

Cite

@article{arxiv.1412.1178,
  title  = {Evaporation of grain-surface species by shock waves in proto-planetary disk},
  author = {Takuhiro Aota and Tsuyoshi Inoue and Yuri Aikawa},
  journal= {arXiv preprint arXiv:1412.1178},
  year   = {2015}
}

Comments

Accepted to ApJ