Gravitational collapse from cold uniform asymmetric initial conditions
arXiv:2106.02388 · doi:10.1051/0004-6361/202141040
Abstract
Using controlled numerical N-body experiments, we show how, in the collapse dynamics of an initially cold and uniform distribution of particles with a generic asymmetric shape, finite fluctuations and perturbations induced by the anisotropic gravitational field compete to determine the physical properties of the asymptotic quasi-stationary state. When finite fluctuations dominate the dynamics, the particle energy distribution changes greatly and the final density profile {decays outside its core} as with an -dependent amplitude. On the other hand, in the limit where the anisotropic perturbations dominate, the collapse is softer and the density profile shows a decay as , as is typical of halos in cosmological simulations. However, even in this limit, convergence with of the macroscopic properties of the virialized system, such as the particle energy distributions, the bound mass, and the density profile, is very slow and not clearly established, including for our largest simulations (with ). Our results illustrate the challenges of accurately simulating the first collapsing structures in standard-type cosmological models
8 pages, 6 figures. Accepted for publication in Astronomy and Astrophysics
References in corpus (8)
- Discreteness effects in simulations of Hot/Warm dark matter
- Violent and mild relaxation of an isolated self-gravitating uniform and spherical cloud of particles
- Universal properties of violently relaxed gravitational structures
- On the generation of triaxiality in the collapse of cold spherical self-gravitating systems
- Violent relaxation of ellipsoidal clouds
- Spherical symmetry breaking in cold gravitational collapse of isolated systems
- Formation of satellites from cold collapse
- Limitation of symmetry breaking by gravitational collapse: the revisit of Lin-Mestel-Shu instability