Modeling the Galactic center gamma-ray emission with more realistic cosmic-ray dynamics
arXiv:2310.01226 · doi:10.1051/0004-6361/202245822
Abstract
Very-high-energy gamma-ray observations of the Galactic center (GC) show extended emission that is strongly correlated with the morphology of the central molecular zone (CMZ). The best explanation for that emission is a hadronic interaction between cosmic rays (CRs) and ambient gas, where a CR central and continuous source accelerates protons up to 1 PeV ("PeVatron"). However, current models assume very simplistic CR dynamics. Our goal is to verify if more realistic CR dynamics for the GC environment are consistent with current gamma-ray observations, and whether they could be constrained by upcoming observations with the Cherenkov Telescope Array (CTA). We generated synthetic gamma-ray maps using a CR transport model with spherical injection, different diffusion regimes (in and out of the CMZ), polar advection, and mono-energetic particles of 1 PeV, and including different CR populations injected from the Arches, Quintuplet, and nuclear clusters of young massive stars, plus supernova Sgr A East. We adopted two different 3D gas distributions consistent with the observed gas column density, either with or without an inner cavity. In order to reproduce the existing observations detected by the High Energy Stereoscopic System (HESS), a ring-like gas distribution, with its mass set by the standard Galactic CO-to-H conversion factor, and CR acceleration from all relevant sources are required. For a conversion factor one order of magnitude lower, injection rates that are ten times higher are needed. We show that CTA will be able to differentiate between models with different CR dynamics, proton sources, and CMZ morphology, owing to its unprecedented sensitivity and angular resolution. More realistic CR dynamics suggest that the CMZ has a large inner cavity and that the GC PeVatron is a composite CR population accelerated by the Arches, Quintuplet, and nuclear star clusters, and Sgr A East.
Accepted for publication in A&A. 15 pages, 11 figures
References in corpus (21)
- Giant Gamma-ray Bubbles from Fermi-LAT: AGN Activity or Bipolar Galactic Wind?
- Extended gamma-ray sources around pulsars constrain the origin of the positron flux at Earth
- Background Modelling in Very-High-Energy gamma-ray Astronomy
- The Spectrum and Morphology of the Fermi Bubbles
- Teraelectronvolt Astronomy
- The dynamical evolution of molecular clouds near the Galactic Centre - I. Orbital structure and evolutionary timeline
- The most massive stars in the Arches cluster
- Stellar and wind properties of massive stars in the central parsec of the Galaxy
- A radiation transfer model for the Milky-Way: I. Radiation fields and application to High Energy Astrophysics
- The 1.28 GHz MeerKAT Galactic Center Mosaic
- Variable accretion and emission from the stellar winds in the Galactic centre
- Nuclear Outflow of the Milky Way: Studying the Kinematics and Spatial Extent of the Northern Fermi Bubble
- Stellar winds pump the heart of the Milky Way
- Enhanced Cosmic Ray Flux and Ionization for Star Formation in Molecular Clouds Interacting with Supernova Remnants
- The role of feedback in accretion on Low Luminosity AGN: Sgr A* case study
- The Life Cycle of the Central Molecular Zone. II: Distribution of atomic and molecular gas tracers
- Three-Dimensional Structure of the Central Molecular Zone
- Measuring the Orbits of the Arches and Quintuplet Clusters using HST and Gaia: Exploring Scenarios for Star Formation Near the Galactic Center
- Towards a three-dimensional distribution of the molecular clouds in the Galactic Centre
- Cosmic rays from massive star clusters : A close look at Westerlund 1
- Galactic center gamma-ray production by cosmic rays from stellar winds and Sgr A East