UV-driven chemistry in simulations of the interstellar medium
F. Levrier, Franck Le Petit, P. Hennebelle, P. Lesaffre, Maryvonne Gérin, É. Falgarone
Abstract
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F. Levrier, Franck Le Petit, P. Hennebelle, P. Lesaffre, Maryvonne Gérin, É. Falgarone
Abstract
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Context. Observations have long demonstrated the molecular diversity of the diffuse interstellar medium (ISM). Only now, with the advent of high-performance computing, does it become possible for numerical simulations of astrophysical fluids to include a treatment of chemistry, to faithfully reproduce the abundances of the many observed species, and especially that of CO, which is used as a proxy for molecular hydrogen. When applying photon-dominated region (PDR) codes to describe the UV-driven chemistry of uniform density cloud models, it is found that the observed abundances of CO are not well reproduced.
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Context. Observations have long demonstrated the molecular diversity of the diffuse interstellar medium (ISM). Only now, with the advent of high-performance computing, does it become possible for numerical simulations of astrophysical fluids to include a treatment of chemistry, to faithfully reproduce the abundances of the many observed species, and especially that of CO, which is used as a proxy for molecular hydrogen. When applying photon-dominated region (PDR) codes to describe the UV-driven chemistry of uniform density cloud models, it is found that the observed abundances of CO are not well reproduced.
Key concepts: Interstellar medium, Astrochemistry, Molecular cloud, Interstellar cloud, Context (archaeology), Physics, Chemical physics, Hydrogen