What to expect from dynamical modelling of galactic haloes
arXiv:1605.09386 · doi:10.1093/mnras/stx1334
Abstract
Many dynamical models of the Milky Way halo require assumptions that the distribution function of a tracer population should be independent of time (i.e., a steady state distribution function) and that the underlying potential is spherical. We study the limitations of such modelling by applying a general dynamical model with minimal assumptions to a large sample of galactic haloes from cosmological -body and hydrodynamical simulations. Using dark matter particles as dynamical tracers, we find that the systematic uncertainties in the measured mass and concentration parameters typically have an amplitude of 25% to 40%. When stars are used as tracers, however, the systematic uncertainties can be as large as a factor of . The systematic uncertainties are not reduced by increasing the tracer sample size and vary stochastically from halo to halo. These systematic uncertainties are mostly driven by underestimated statistical noise caused by correlated phase-space structures that violate the steady state assumption. The number of independent phase-space structures inferred from the uncertainty level sets a limiting sample size beyond which a further increase no longer significantly improves the accuracy of dynamical inferences. The systematic uncertainty level is determined by the halo merger history, the shape and environment of the halo. Our conclusions apply generally to any spherical steady-state model.
16 pages, 12 figures, published by MNRAS
References in corpus (18)
- The EAGLE project: Simulating the evolution and assembly of galaxies and their environments
- The EAGLE simulations of galaxy formation: calibration of subgrid physics and model variations
- Too big to fail? The puzzling darkness of massive Milky Way subhaloes
- The Milky Way's Circular Velocity Curve to 60 kpc and an Estimate of the Dark Matter Halo Mass from Kinematics of ~2400 SDSS Blue Horizontal Branch Stars
- The RAVE Survey: Constraining the Local Galactic Escape Speed
- A systematic variation of the stellar initial mass function in early-type galaxies
- The APOSTLE simulations: solutions to the Local Group's cosmic puzzles
- Baryon effects on the internal structure of LCDM halos in the EAGLE simulations
- "Skinny Milky Way, Please", says Sagittarius
- On the Shoulders of Giants: Properties of the Stellar Halo and the Milky Way Mass Distribution
- The Mass Profile of the Galaxy to 80 kpc
- A dynamical model of the local cosmic expansion
- The stellar initial mass function of early type galaxies from low to high stellar velocity dispersion: homogeneous analysis of ATLAS and Sloan Lens ACS galaxies
- Galaxy and Mass Assembly (GAMA): The halo mass of galaxy groups from maximum-likelihood weak lensing
- The Stellar Content of Galaxy Halos: A Comparison between LambdaCDM Models and Observations of M31
- Alignments between galaxies, satellite systems and haloes
- A new spin on disks of satellite galaxies
- Subhalo statistics of galactic halos: beyond the resolution limit
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- Milky Way Mass with K Giants and BHB Stars Using LAMOST, SDSS/SEGUE, and Gaia: 3D Spherical Jeans Equation and Tracer Mass Estimator
- What to expect from dynamical modelling of galactic haloes II: the spherical Jeans equation
- Determination of Dark Matter Halo Mass from Dynamics of Satellite Galaxies
- What to expect from dynamical modelling of cluster haloes II. Investigating dynamical state indicators with Random Forest
- Physical evolution of dark matter halo around the depletion boundary
- Towards a higher mass for NGC1052-DF2: an analysis based on full distribution functions
- What to expect from dynamical modelling of cluster haloes I. The information content of different dynamical tracers
- A Versatile and Accurate Method for Halo Mass Determination from Phase-Space Distribution of Satellite Galaxies
- The outermost edges of the Milky Way halo from galaxy kinematics
- Characterising the Structure of Halo Merger Trees Using a Single Parameter: The Tree Entropy
- BASILISK: Bayesian Hierarchical Inference of the Galaxy-Halo Connection using Satellite Kinematics--I. Method and Validation
- Local dark matter density from Gaia DR3 K-dwarfs using Gaussian processes
- Satellite galaxies as better tracers of the Milky Way halo mass
- BASILISK II. Improved Constraints on the Galaxy-Halo Connection from Satellite Kinematics in SDSS