Sensitivity of PDR Calculations to Microphysical Details
- 20 October 2008
- journal article
- research article
- Published by American Astronomical Society in The Astrophysical Journal
- Vol. 686 (2) , 1125-1136
- https://doi.org/10.1086/591505
Abstract
Our understanding of physical processes in photodissociation regions or photon-dominated regions (PDRs) largely depends on the ability of spectral synthesis codes to reproduce the observed infrared emission-line spectrum. In this paper, we explore the sensitivity of a single PDR model to microphysical details. Our calculations use the Cloudy spectral synthesis code, recently modified to include a wealth of PDR physical processes. We show how the chemical/thermal structure of a PDR, along with the calculated spectrum, changes when the treatment of physical processes such as grain physics and atomic/molecular rates are varied. We find a significant variation in the intensities of PDR emission lines, depending on different treatments of the grain physics. We also show how different combinations of the cosmic-ray ionization rate, inclusion of grain-atom/ion charge transfer, and the grain size distribution can lead to very similar results for the chemical structure. In addition, our results show the utility of Cloudy for the spectral modeling of molecular environments.Keywords
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This publication has 60 references indexed in Scilit:
- Bistability in Interstellar Gas‐Phase ChemistryThe Astrophysical Journal, 2006
- The H ii Region/PDR Connection: Self‐consistent Calculations of Physical Conditions in Star‐forming RegionsThe Astrophysical Journal Supplement Series, 2005
- Physical Conditions in Orion’s VeilThe Astrophysical Journal, 2004
- Implications of [ITAL]Submillimeter Wave Astronomy Satellite[/ITAL] Observations for Interstellar Chemistry and Star FormationThe Astrophysical Journal, 2000
- The Effects of Polycyclic Aromatic Hydrocarbons on the Chemistry of Photodissociation RegionsThe Astrophysical Journal, 1998
- Physical Conditions in Low-Ionization Regions of the Orion NebulaThe Astrophysical Journal, 1996
- Nonequilibrium Photodissociation Regions: Ionization-Dissociation FrontsThe Astrophysical Journal, 1996
- Gas-phase chemistry in dense interstellar clouds including grain surface molecular depletion and desorptionThe Astrophysical Journal, 1995
- The photoelectric heating mechanism for very small graphitic grains and polycyclic aromatic hydrocarbonsThe Astrophysical Journal, 1994
- Interstellar polycyclic aromatic hydrocarbons - The infrared emission bands, the excitation/emission mechanism, and the astrophysical implicationsThe Astrophysical Journal Supplement Series, 1989