Modelling clumpy PDRs in 3D - Understanding the Orion Bar stratification
arXiv:1405.5553 · doi:10.1051/0004-6361/201424287
Abstract
Context. Models of photon-dominated regions (PDRs) still fail to fully reproduce some of the observed properties, in particular the combination of the intensities of different PDR cooling lines together with the chemical stratification, as observed e.g. for the Orion Bar PDR. Aims. We aim to construct a numerical PDR model, KOSMA-τ3D, to simulate full spectral cubes of line emission from arbitrary PDRs in three dimensions (3D). The model is to reproduce the intensity of the main cooling lines from the Orion Bar PDR and the observed layered structure of the different transitions. Methods. We build up a 3D compound, made of voxels ("3D pixels") that contain a discrete mass distribution of spherical "clumpy" structures, approximating the fractal ISM. To analyse each individual clump the new code is combined with the KOSMA-τPDR model. Probabilistic algorithms are used to calculate the local FUV flux for each voxel as well as the voxel-averaged line emissivities and optical depths, based on the properties of the individual clumps. Finally, the computation of the radiative transfer through the compound provides full spectral cubes. To test the new model we try to simulate the structure of the Orion Bar PDR and compare the results to observations from HIFI/Herschel and from the Caltech Submillimetre Observatory (CSO). In this context new Herschel data from the HEXOS guaranteed-time key program is presented. Results. Our model is able to reproduce the line integrated intensities within a factor 2.5 and the observed stratification pattern within 0.016 pc for the [Cii] 158 μm and different 12/13 CO and HCO+ transitions, based on the representation of the Orion Bar PDR by a clumpy edge-on cavity wall. In the cavity wall, a large fraction of the total mass needs to be contained in clumps. The mass of the interclump medium is constrained by the FUV penetration. Furthermore, ...
Major changes compared to v1. Also several references have been added
References in corpus (12)
- The distance to the Orion Nebula
- [CII] 158m Emission and Metallicity in PDRs
- The chemistry and spatial distribution of small hydrocarbons in UV-irradiated molecular clouds: the Orion Bar PDR
- Velocity-resolved [CII] emission and [CII]/FIR Mapping along Orion with Herschel
- The chemistry of ions in the Orion Bar I. - CH+, SH+, and CF+: The effect of high electron density and vibrationally excited H2 in a warm PDR surface
- A clumpy-cloud PDR model of the global far-infrared line emission of the Milky Way
- Spatially extended OH+ emission from the Orion Bar and Ridge
- Full SED fitting with the KOSMA-τ PDR code - I. Dust modelling
- CH observations toward the Orion Bar
- Long-term monitoring of theta1 OriC: the spectroscopic orbit and an improved rotational period
- Herschel / HIFI spectral line survey of the Orion Bar - Temperature and density differentiation near the PDR surface
- A non-equilibrium ortho-to-para ratio of water in the Orion PDR
Cited by in corpus (33)
- Photodissociation and X-Ray Dominated Regions
- Structure of photodissociation fronts in star-forming regions revealed by observations of high-J CO emission lines with Herschel
- PDRs4All III: JWST's NIR spectroscopic view of the Orion Bar
- PDRs4All: A JWST Early Release Science Program on radiative feedback from massive stars
- Complex organic molecules in strongly UV-irradiated gas
- FEEDBACK: a SOFIA Legacy Program to Study Stellar Feedback in Regions of Massive Star Formation
- Photodissociation Region Diagnostics Across Galactic Environments
- GMC Collisions as Triggers of Star Formation. V. Observational Signatures
- Spatially resolved images of reactive ions in the Orion Bar
- Bottlenecks to interstellar sulfur chemistry: Sulfur-bearing hydrides in UV-illuminated gas and grains
- Constraining physical conditions for the PDR of Trumpler 14 in the Carina Nebula
- Synthetic observations of star formation and the interstellar medium
- Excitation of Molecular Hydrogen in the Orion Bar Photodissociation Region From a Deep Near-Infrared IGRINS Spectrum
- Herschel / HIFI spectral line survey of the Orion Bar - Temperature and density differentiation near the PDR surface
- Velocity profiles of [CII], [CI], CO, and [OI] and physical conditions in four star-forming regions in the Large Magellanic Cloud
- A Near-infrared Survey of UV-excited Molecular Hydrogen in Photodissociation Regions
- High angular resolution near-IR view of the Orion Bar revealed by Keck/NIRC2
- The water line emission and ortho-to-para ratio in the Orion Bar photon-dominated region
- Direct estimation of electron density in the Orion Bar PDR from mm-wave carbon recombination lines
- The KOSMA- PDR Model -- I. Recent updates to the numerical model of photo-dissociated regions
- The role of highly vibrationally excited H2 initiating the N chemistry: Quantum study and 3-sigma detection of NH emission in the Orion Bar PDR
- First detection of [13CII] in the Large Magellanic Cloud
- PDRs4All. XII. FUV-driven formation of hydrocarbon radicals and their relation with PAHs
- Globules and pillars in Cygnus X III. Herschel and upGREAT/SOFIA far-infrared spectroscopy of the globule IRAS 20319+3958 inCygnus X
- The cold molecular gas in z6 quasar host galaxies
- Merged H/H2 and C+/C/CO transitions in the Orion Bar
- Observational study of hydrocarbons in the bright photodissociation region of Messier 8
- Unveiling the remarkable photodissociation region of M8
- The origin of dust polarization in the Orion Bar
- 3D structure of HII regions in the star-forming complex S254-S258
- Widespread subsonic turbulence in Ophiuchus North 1
- Detection of Dust Condensations in the Orion Bar Photon-dominated Region
- Extended atomic carbon around molecular clouds