Hollow cores in Warm Dark Matter halos from the Vlasov-Poisson equation
Claudio Destri

TL;DR
This study uses high-resolution simulations of the Vlasov-Poisson equation to explore the structure of Warm Dark Matter halos, revealing hollow cores with properties consistent with dwarf spheroids and small disk galaxies, supporting WDM as a viable dark matter model.
Contribution
The paper presents detailed numerical results showing that WDM halos naturally develop hollow cores with specific density and size characteristics, advancing understanding of dark matter halo structure.
Findings
Halos have hollow cores with density decreasing towards the center.
Core sizes range from 0.1 to 0.6 kpc, matching dwarf spheroids.
Product of core density and radius aligns with observed surface densities.
Abstract
We report the results of extended high--resolution numerical integrations of the Vlasov--Poisson equation for the collapse of spherically symmetric WDM halos. For thermal relics with mass keV/, we find collapsed halos with cores of size from to kpc. The typical core is hollow, with the mass density decreasing towards the core center by almost three orders of magnitude from its maximum near the core radius . The core is in equilibrium with the diffused part of the halo but far from virialization. These properties are rooted in the conservation of the squared angular momentum and in the original excess, proper of WDM initial conditions, of kinetic energy in the core region. In a sample of more than one hundred simulated collapses, the values of and of the core density are in the range typical of dwarf spheroids, while the…
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