4.7 Article

3d-pdr: a new three-dimensional astrochemistry code for treating photodissociation regions

期刊

出版社

WILEY-BLACKWELL
DOI: 10.1111/j.1365-2966.2012.22077.x

关键词

astrochemistry; radiative transfer; methods: numerical; ISM: abundances; photodissociation region (PDR)

资金

  1. STFC [ST/H001794/1]
  2. Spanish MICINN [AYA2009-07304, CSD2009-00038]
  3. CSIC JAE-DOC
  4. Science and Technology Facilities Council [ST/K000373/1, ST/J001511/1, ST/H002022/1, ST/H001794/1, ST/F501761/1] Funding Source: researchfish
  5. STFC [ST/K000373/1, ST/F501761/1, ST/J001511/1, ST/H001794/1, ST/H002022/1] Funding Source: UKRI

向作者/读者索取更多资源

Photodissociation regions (PDRs) define the transition zone between an ionized and a dark molecular region. They consist of neutral gas which interacts with far-ultraviolet radiation and are characterized by strong infrared line emission. Various numerical codes treating one-dimensional PDRs have been developed in the past, simulating the complexity of chemical reactions occurring and providing a better understanding of the structure of a PDR. In this paper we present the three-dimensional code, 3d-pdr, which can treat PDRs of arbitrary density distribution. The code solves the chemistry and the thermal balance self-consistently within a given three-dimensional cloud. It calculates the total heating and cooling functions at any point in a given PDR by adopting an escape probability method. It uses a healpix-based ray tracing scheme to evaluate the attenuation of the far-ultraviolet radiation in the PDR and the propagation of the far-infrared/submm line emission out of the PDR. We present benchmarking results and apply 3d-pdr to (i) a uniform-density spherical cloud interacting with a plane-parallel external radiation field, (ii) a uniform-density spherical cloud interacting with a two-component external radiation field and (iii) a cometary globule interacting with a plane-parallel external radiation field. We find that the code is able to reproduce the benchmarking results of various other one-dimensional numerical codes treating PDRs. We also find that the accurate treatment of the radiation field in the fully three-dimensional treatment of PDRs can in some cases leads to different results when compared to a standard one-dimensional treatment.

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