Structure of the equivalent Newtonian systems in MOND N-body simulations. Density profiles and the core-cusp problem
arXiv:2307.08865 · doi:10.1051/0004-6361/202347487
Abstract
We investigate the core-cusp problem of the cold dark matter (CDM) scenario in the context of Modified Newtonian Dynamics (MOND) paradigm exploiting the concept of equivalent Newtonian system (ENS). By means of particle-mesh body simulations in MOND we explore processes of galaxy formation via cold dissipationless collapse or merging of smaller substructures. From the end states of our simulations we recover the associated ENS and study the properties of their dark matter halos. We compare the simulation results with simple analytical estimates with a family of models. We find that the dark matter density of ENSs of most spherical cold collapses ha a markedly cored structure, in particular for the lowest values of the initial virial ratios. End states of some simulations with clumpy initial conditions have more complex profiles and some of their ENSs exhibit a moderate cusp, with logarithmic density slope always shallower than 1. These results seem to point towards the fact that the absence in most observed galaxies of a central DM cusp, at variance with what one would expect from theoretical and numerical arguments in CDM, would be totally consistent in a MONDian description.
10 pages, 8 figures 1 table. Matching the version accepted in A&A
References in corpus (21)
- N-body simulations of gravitational dynamics
- Can MOND take a bullet? Analytical comparisons of three versions of MOND beyond spherical symmetry
- Evolution of spiral galaxies in modified gravity
- Cores and Cusps in the Dwarf Spheroidals
- Rings and shells of "dark matter" as MOND artifacts
- Dark matter annihilation near a black hole: plateau vs. weak cusp
- Galaxy merging in MOND
- Vertical dynamics of disk galaxies in MOND
- Forming Galaxies with MOND
- Dissipationless collapse, weak homology and central cores of elliptical galaxies
- Evolution of spiral galaxies in modified gravity: II- Gas dynamics
- Einasto Profiles and the Dark Matter Power Spectrum
- The formation of exponential disk galaxies in MOND
- Models of modified-inertia formulation of MOND
- Gaussian Random Field: Physical Origin of Sersic Profiles
- Gaussian random field power spectrum and the Sérsic law
- Two-component galaxy models: the effect of density profile at large radii on the phase-space consistency
- Dark Matter in Fractional Gravity I: Astrophysical Tests on Galactic Scales
- Deep-MOND polytropes
- Dwarf galaxies with central cores in modified Newtonian dynamics (MOND) gravity
- Distribution of Phantom Dark Matter in Dwarf Spheroidals