4.7 Article

Simulating dust grain-radiation coupling on a moving mesh

期刊

出版社

OXFORD UNIV PRESS
DOI: 10.1093/mnras/stab021

关键词

radiative transfer; methods: numerical; dust, extinction; galaxies: ISM

资金

  1. MIT RSC award
  2. Kavli Foundation Research Investment Fund
  3. NASA ATP grant [NNX17AG29G]
  4. NSF [AST-1814053, AST-1814259, AST-1909831, AST-1909933]
  5. DOE CSGF [DE-FG02-97ER25308]
  6. MKI
  7. FAS

向作者/读者索取更多资源

This study presents a model that directly treats dust using live simulation particles and solves the interaction between dust and radiation fields on an unstructured moving mesh. The hybrid scheme coupling dust and radiation has been validated using several test problems with known analytic solutions.
We present a model for the interaction between dust and radiation fields in the radiation hydrodynamic code AREPO-RT, which solves the moment-based radiative transfer equations on an unstructured moving mesh. Dust is directly treated using live simulation particles, each of which represent a population of grains that are coupled to hydrodynamic motion through a drag force. We introduce methods to calculate radiation pressure on and photon absorption by dust grains. By including a direct treatment of dust, we are able to calculate dust opacities and update radiation fields self-consistently based on the local dust distribution. This hybrid scheme coupling dust particles to an unstructured mesh for radiation is validated using several test problems with known analytic solutions, including dust driven via spherically symmetric flux from a constant luminosity source and photon absorption from radiation incident on a thin layer of dust. Our methods are compatible with the multifrequency scheme in AREPO-RT, which treats UV, optical photons as single scattered and IR photons as multi scattered. At IR wavelengths, we model heating of and thermal emission from dust. Dust and gas are not assumed to be in local thermodynamic equilibrium but transfer energy through collisional exchange. We estimate dust temperatures by balancing these dust-radiation and dust-gas energy exchange rates. This framework for coupling dust and radiation can be applied in future radiation hydrodynamic simulations of galaxy formation.

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