English

Hydrodynamic Photoevaporation of Protoplanetary Disks with Consistent Thermochemistry

Earth and Planetary Astrophysics 2017-09-20 v1

Abstract

Photoevaporation is an important dispersal mechanism for protoplanetary disks. We conduct hydrodynamic simulations coupled with ray-tracing radiative transfer and consistent thermochemistry to study photoevaporative winds driven by ultraviolet and X-ray radiation from the host star. Most models have a three-layer structure: a cold midplane, warm intermediate layer, and hot wind, the last having typical speeds 30 km s1\sim 30~\mathrm{km\ s}^{-1} and mass-loss rates 109 M yr1\sim 10^{-9}~M_\odot~\mathrm{yr}^{-1} when driven primarily by ionizing UV radiation. Observable molecules including CO, OH and H2O re-form in the intermediate layer and survive at relatively high wind temperatures due to reactions being out of equilibrium. Mass-loss rates are sensitive to the intensity of radiation in energy bands that interact directly with hydrogen. Comparison with previous works shows that mass loss rates are also sensitive to the treatment of both the hydrodynamics and the thermochemistry. Divergent results concerning the efficiency of X-ray photoevaporation are traced in part to differing assumptions about dust and other coolants.

Keywords

Cite

@article{arxiv.1706.03155,
  title  = {Hydrodynamic Photoevaporation of Protoplanetary Disks with Consistent Thermochemistry},
  author = {Lile Wang and Jeremy J. Goodman},
  journal= {arXiv preprint arXiv:1706.03155},
  year   = {2017}
}

Comments

15 pages, 9 figures, submitted to ApJ