Dark matter halo dynamics in 2D Vlasov Simulations: a self-similar approach
arXiv:2501.07001 · doi:10.1051/0004-6361/202553734
Abstract
Understanding dark matter halo dynamics can be pivotal in unravelling the nature of dark matter particles. Analytical treatment of the multistream flows inside the turnaround region of a collapsed cold dark matter (CDM) halo using various self-similar approaches already exist. In this work, we aim to determine the extent of self-similarity in 2D halo dynamics and the factors leading to deviations from it by studying numerical simulations of monolithically growing CDM halos. We have adapted the Fillmore and Goldreich (FG) self-similar solutions assuming cylindrical symmetry to data from 2D Vlasov-Poisson (ColDICE package) simulations of CDM halos seeded by sine wave initial conditions. We measured trajectories in position and phase-space, mass and density profiles and compared these to predictions from the FG model. We find that after turn-around and subsequent shell crossing, particles undergo a period of relaxation, typically about 1-2 oscillations about the center before they start to trace the self-similar fits and continue to do so as long as their orbits are predominantly radial. Overplotting the trajectories from different snapshots in scale-free position-time and phase spaces shows strikingly good superposition, a defining feature of self-similarity. The radial density profiles measured from simulations: are consistent with FG's prediction for 2D halos. Deviations from the model, on the other hand, are evidently linked to relaxation, inhibited motion due to periodic boundaries, transverse motion in the halo interior, and deficit of infalling mass in limited simulation volume. It could not be conclusively established if the halos tend to grow circular over time. Extension of this work to actual 3D CDM cosmologies necessitates further detailed study of self-similar solutions with ellipsoidal collapse and transverse motion.
15 pages, 13 figures, 2 tables
References in corpus (11)
- Self-Similar Solutions of Triaxial Dark Matter Halos
- Inner cusps of the first dark matter haloes: Formation and survival in a cosmological context
- Phase-space structure of protohalos: Vlasov versus Particle-Mesh
- Self-Similar Spherical Collapse with Tidal Torque
- Vlasov-Poisson in 1D for initially cold systems: post-collapse Lagrangian perturbation theory
- Phase-space structure of cold dark matter halos inside splashback: multi-stream flows and self-similar solution
- Dark matter halo's and self similarity
- Cold dark matter protohalo structure around collapse: Lagrangian cosmological perturbation theory versus Vlasov simulations
- Velocity Structure of Self-Similar Spherically Collapsed Halos
- The gravitational force field of proto-pancakes
- Universal multi-stream radial structures of cold dark matter halos