Resolving the timing problem of the globular clusters orbiting the Fornax dwarf galaxy
arXiv:0903.2874 · doi:10.1111/j.1365-2966.2009.14745.x
Abstract
We re-investigate the old problem of the survival of the five globular clusters orbiting the Fornax dwarf galaxy in both standard and modified Newtonian dynamics. For the first time in the history of the topic, we use accurate mass models for the Fornax dwarf, obtained through Jeans modelling of the recently published line of sight velocity dispersion data, and we are also not resigned to circular orbits for the globular clusters. Previously conceived problems stem from fixing the starting distances of the globulars to be less than half the tidal radius. We relax this constraint since there is absolutely no evidence for it and show that the dark matter paradigm, with either cusped or cored dark matter profiles, has no trouble sustaining the orbits of the two least massive globular clusters for a Hubble time almost regardless of their initial distance from Fornax. The three most massive globulars can remain in orbit as long as their starting distances are marginally outside the tidal radius. The outlook for modified Newtonian dynamics is also not nearly as bleak as previously reported. Although dynamical friction inside the tidal radius is far stronger in MOND, outside dynamical friction is negligible due to the absence of stars. This allows highly radial orbits to survive, but more importantly circular orbits at distances more than 85% of Fornax's tidal radius to survive indefinitely. The probability of the globular clusters being on circular orbits at this distance compared with their current projected distances is discussed and shown to be plausible. Finally, if we ignore the presence of the most massive globular (giving it a large line of sight distance) we demonstrate that the remaining four globulars can survive within the tidal radius for the Hubble time with perfectly sensible orbits.
8 pages, 10 figures, 1 table, MNRAS in press
References in corpus (9)
- Wilkinson Microwave Anisotropy Probe (WMAP) Three Year Results: Implications for Cosmology
- 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
- Velocity Dispersion Profiles of Seven Dwarf Spheroidal Galaxies
- Does the Fornax dwarf spheroidal have a central cusp or core?
- Dynamical friction in constant density cores: a failure of the Chandrasekhar formula
- Dwarf Spheroidals in MOND
- Dynamical friction in modified Newtonian dynamics
- Evolution of spiral galaxies in modified gravity: II- Gas dynamics
- The velocity distribution of SDSS satellites in MOND
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- The mass distribution of the Fornax dSph: constraints from its globular cluster distribution
- The globular cluster NGC 2419: a crucible for theories of gravity
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- Corrective effect of many-body interactions in dynamical friction
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- Globular clusters in modified Newtonian dynamics: velocity-dispersion profiles from self-consistent models
- Cusp or core? Revisiting the globular cluster timing problem in Fornax
- Assessing the Fornax globular cluster timing problem in different models of dark matter
- Orbital decay of Globular Clusters in the galaxy with little dark matter
- A scenario for ultra-diffuse satellite galaxies with low velocity dispersions: the case of [KKS 2000]04
- The cusp-core problem in gas-poor dwarf spheroidal galaxies
- The survival of globular clusters in a cuspy Fornax
- Constraints on a MOND effect for isolated aspherical systems in deep Newtonian regime from orbital motions
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- Globular clusters as tracers of the host galaxy mass distribution: the Fornax dSph test case
- The tidal evolution of the Fornax dwarf spheroidal and its globular clusters
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- The spatial distribution of globular clusters in dwarf spheroidal galaxies and the timing problem
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- Evolution of globular-cluster systems of ultra-diffuse galaxies due to dynamical friction in MOND gravity
- Distinguishing Dark Matter Cusps from Cores using Globular Clusters
- Collisional Dynamics of Stars and Dark Matter in Ultra-Faint Galaxies