A self-consistent quasilinear theory for collisionless relaxation to universal quasi-steady state attractors in cold dark matter halos
Uddipan Banik, Amitava Bhattacharjee

TL;DR
This paper develops a self-consistent quasilinear theory in action-angle space to explain the universal density profiles of collisionless dark matter halos as quasi-steady state attractors resulting from collisionless relaxation.
Contribution
It introduces a novel self-consistent quasilinear framework that accounts for collective dressing effects to derive halo density profiles as attractors.
Findings
Universal halo density profiles emerge as steady-state solutions.
The $r^{-1}$ cusp arises from constant flux steady states in accreting halos.
Profiles depend on boundary conditions and central objects.
Abstract
Collisionless self-gravitating systems, e.g., cold dark matter halos, harbor universal density profiles despite the intricate non-linear physics of hierarchical structure formation, the origin of which has been a persistent mystery. To solve this problem, we develop a self-consistent quasilinear theory (QLT) in action-angle space for the collisionless relaxation of driven, inhomogeneous, self-gravitating systems by perturbing the governing Vlasov-Poisson equations. We obtain a quasilinear diffusion equation (QLDE) for the secular evolution of the mean distribution function of a halo due to linear fluctuations (induced by random perturbations in the force field) that are collectively dressed by self-gravity, a phenomenon described by the response matrix. Unlike previous studies, we treat collective dressing up to all orders. Well-known halo density profiles commonly…
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Taxonomy
TopicsAdvanced Thermodynamics and Statistical Mechanics · Cosmology and Gravitation Theories · Stellar, planetary, and galactic studies
