The origin and formation of cuspy density profiles through violent relaxation of stellar systems
arXiv:astro-ph/9906354 · doi:10.1046/j.1365-8711.2000.03058.x
Abstract
It is shown that the cuspy density distributions observed in the cores of elliptical galaxies can be realized by dissipationless gravitational collapse. The initial models consist of power-law density spheres such as with anisotropic velocity dispersions. Collapse simulations are carried out by integrating the collisionless Boltzmann equation directly, on the assumption of spherical symmetry. From the results obtained, the extent of constant density cores, formed through violent relaxation, decreases as the velocity anisotropy increases radially, and practically disappears for extremely radially anisotropic models. As a result, the relaxed density distributions become more cuspy with increasing radial velocity anisotropy. It is thus concluded that the velocity anisotropy could be a key ingredient for the formation of density cusps in a dissipationless collapse picture. The velocity dispersions increase with radius in the cores according to the nearly power-law density distributions. The power-law index, , of the density profiles, defined as , changes from at intermediate radii, to a shallower power than toward the centre. This density bend can be explained from our postulated local phase-space constraint that the phase-space density accessible to the relaxed state is determined at each radius by the maximum phase-space density of the initial state.
13 pages with 7 embedded PS figures (Fig.4 is reduced in quality), using mn.sty, submitted to MNRAS
References in corpus (7)
- A Universal Density Profile from Hierarchical Clustering
- Resolving the Structure of Cold Dark Matter Halos
- The Centers of Early-Type Galaxies with HST. IV. Central Parameter Relations
- The Cores of Dark Matter Dominated Galaxies: theory vs. observations
- On the Origin of Cusps in Dark Matter Halos
- On the Cusp around Central Black Holes in Luminous Elliptical Galaxies
- A Phase-Space Approach to Collisionless Stellar Systems Using a Particle Method
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