Cosmic rays, gas and dust in the Central Molecular Zone I -- factors, cosmic-ray densities and dust opacities
arXiv:2503.17472 · doi:10.1051/0004-6361/202554033
Abstract
Our goal is to estimate the total gas mass in the direction of the Central Molecular Zone (CMZ), quantify the various uncertainties associated, and discuss the implications for the estimates of CR energy densities and dust opacities. The 21 cm line and the carbon monoxide isotopes (, and ) line emission maps are used to derive the total gas column density. The gas in the CMZ is separated from the disk contribution in position and velocity thanks to its different properties in term of velocity dispersion and brightness ratio of CO isotopes. The variations of the factors are modelled relying on both theoretical trends from simulations and empirical corrections. We use the new gas column density estimated together with gamma-ray and dust emission measurements to derive the CR energy density and dust opacities, respectively. The values in the CMZ range from cm K km s, with a distribution that is highly asymmetric and skewed. The median value is cm K km s. The total gas mass in the CMZ is estimated to be with contribution from the atomic phase. Without removing the disk contamination the total mass is about twice higher, and the atomic gas fraction increases to . The cosmic-ray (CR) energy density in the CMZ, assuming a 1/r profile, is higher by a factor of two compared to the previous calculations at TeV energies. Using molecular gas tracers which probes only the densest molecular cores leads to an overestimation of the CR energy density, while ignoring the foreground/background contribution leads to an underestimation of the CR energy density in the CMZ.
References in corpus (29)
- Array Programming with NumPy
- scikit-image: Image processing in Python
- The Astropy Project: Sustaining and Growing a Community-oriented Open-source Project and the Latest Major Release (v5.0) of the Core Package
- Physical properties of molecular clouds for the entire Milky Way disk
- Spatial distribution of interstellar gas in the innermost 3 kpc of our Galaxy
- Revealing the physical properties of molecular gas in Orion with a large scale survey in J=2-1 lines of 12CO, 13CO and C18O
- Molecular line intensities as measures of cloud masses - I. Sensitivity of CO emissions to physical parameter variations
- Measurement of ultra-high-energy diffuse gamma-ray emission of the Galactic plane from 10 TeV to 1 PeV with LHAASO-KM2A
- A Nearby Galaxy Perspective on Dust Evolution. Scaling relations and constraints on the dust build-up in galaxies with the DustPedia and DGS samples
- The SEDIGISM survey: first data release and overview of the Galactic structure
- Gammapy: A Python package for gamma-ray astronomy
- Modeling Thermal Dust Emission with Two Components: Application to the Planck HFI Maps
- The environmental dependence of the X_CO conversion factor
- Is the dust-to-gas ratio constant in molecular clouds?
- MAGIC observations of the diffuse -ray emission in the vicinity of the Galactic Centre
- The Physical Drivers and Observational Tracers of CO-to-H2 Conversion Factor Variations in Nearby Barred Galaxy Centers
- The inner two degrees of the Milky Way. Evidence of a chemical difference between the Galactic Center and the surrounding inner bulge stellar populations
- Gamma rays as probes of cosmic-ray propagation and interactions in galaxies
- THEMIS 2.0: A self-consistent model for dust extinction, emission, and polarisation
- An X-ray survey of the central molecular zone: variability of the Fe Ka emission line
- The SAMI Galaxy Survey: the drivers of gas and stellar metallicity differences in galaxies
- Prospects of 3D mapping of the Galactic Centre clouds with X-ray polarimetry
- Three-Dimensional Structure of the Central Molecular Zone
- Towards a three-dimensional distribution of the molecular clouds in the Galactic Centre
- Gas and Dust Properties in the Chamaeleon Molecular Cloud Complex based on the Optically Thick HI
- Galactic center gamma-ray production by cosmic rays from stellar winds and Sgr A East
- The Dark Neutral Medium is (Mostly) Molecular Hydrogen
- Impact of anisotropic cosmic-ray transport on the gamma-ray signatures in the Galactic Center
- Molecular Fraction in the Galactic Center: The Central Molecular and HI Zones