N-body simulations of the Carina dSph in MOND
arXiv:1403.4119 · doi:10.1093/mnras/stu182
Abstract
The classical dwarf spheroidals (dSphs) provide a critical test for Modified Newtonian Dynamics (MOND) because they are observable satellite galactic systems with low internal accelerations and low, but periodically varying, external acceleration. This varying external gravitational field is not commonly found acting on systems with low internal acceleration. Using Jeans modelling, Carina in particular has been demonstrated to require a V-band mass-to-light ratio greater than 5, which is the nominal upper limit for an ancient stellar population. We run MOND N-body simulations of a Carina-like dSph orbiting the Milky Way to test if dSphs in MOND are stable to tidal forces over the Hubble time and if those same tidal forces artificially inflate their velocity dispersions and therefore their apparent mass-to-light ratio. We run many simulations with various initial total masses for Carina, and Galactocentric orbits (consistent with proper motions), and compare the simulation line of sight velocity dispersions (losVDs) with the observed losVDs of Walker et al. (2007). We find that the dSphs are stable, but that the tidal forces are not conducive to artificially inflating the losVDs. Furthermore, the range of mass-to-light ratios that best reproduces the observed line of sight velocity dispersions of Carina is 5.3 to 5.7 and circular orbits are preferred to plunging orbits. Therefore, some tension still exists between the required mass-to-light ratio for the Carina dSph in MOND and those expected from stellar population synthesis models. It remains to be seen whether a careful treatment of the binary population or triaxiality might reduce this tension.
17 pages, 12 figures, accepted for publication in MNRAS
References in corpus (14)
- A Vast Thin Plane of Co-rotating Dwarf Galaxies Orbiting the Andromeda Galaxy
- Velocity Dispersion Profiles of Seven Dwarf Spheroidal Galaxies
- Exploring Halo Substructure with Giant Stars XI: The Tidal Tails of the Carina Dwarf Spheroidal and the Discovery of Magellanic Cloud Stars in the Carina Foreground
- Dynamical friction in constant density cores: a failure of the Chandrasekhar formula
- The orbital poles of Milky Way satellite galaxies: a rotationally supported disc-of-satellites
- Tidal dwarf galaxies as a test of fundamental physics
- Modeling The Structure And Dynamics of Dwarf Spheroidal Galaxies with Dark Matter And Tides
- Evolution of spiral galaxies in modified gravity
- Mass modelling of dwarf spheroidal galaxies: the effect of unbound stars from tidal tails and the Milky Way
- Dwarf Spheroidals in MOND
- Milky Way potentials in CDM and MOND. Is the Large Magellanic Cloud on a bound orbit?
- Cosmological Structure Formation under MOND: a new numerical solver for Poisson's equation
- Loss of mass and stability of galaxies in MOND
- MOND and the mass discrepancies in tidal dwarf galaxies
Cited by in corpus (13)
- Galaxies as simple dynamical systems: observational data disfavor dark matter and stochastic star formation
- From galactic bars to the Hubble tension: weighing up the astrophysical evidence for Milgromian gravity
- Dark matters on the scale of galaxies
- Phantom of RAMSES (POR): A new Milgromian dynamics N-body code
- Andromeda XXI -- a dwarf galaxy in a low density dark matter halo
- A census of the expected properties of classical Milky Way dwarfs in Milgromian dynamics
- The cusp-core problem in gas-poor dwarf spheroidal galaxies
- Testing modified gravity with dwarf spheroidal galaxies
- Modified Baryonic Dynamics: two-component cosmological simulations with light sterile neutrinos
- Low-surface-brightness spheroidal galaxies as Milgromian isothermal spheres
- Distribution of Phantom Dark Matter in Dwarf Spheroidals
- Dynamics of Dwarf Galaxies in Scalar-Tensor-Vector-Gravity
- The stability of galaxies in an expanding universe obtained by Newtonian dynamics