Core Collapse Beyond the Fluid Approximation: The Late Evolution of Self-Interacting Dark Matter Halos
arXiv:2505.15903 · doi:10.1103/2ycz-3fvv
Abstract
We show that the gravothermal collapse of self-interacting dark matter (SIDM) halos can deviate from local thermodynamic equilibrium. As a consequence, the self-similar evolution predicted by the commonly adopted conducting fluid model can be altered or broken. Our results are obtained using a novel, efficient kinetic solver called KiSS-SIDM for tracing the gravothermal evolution based on the Direct Simulation Monte Carlo (DSMC) framework. In the long mean free path stage, the code is a viable alternative to the fluid model, yet requires no calibration parameters. Further, this method enables a fully kinetic treatment well into the late, short mean free path, stage of the collapse. We apply the method to a canonical case with isotropic, velocity independent scattering. We find that although a fluid treatment is appropriate deep in the short mean free path core, departures from local thermodynamic equilibrium develop in the intermediate mean free path region bounding the core, which modify the late-time evolution. KiSS-SIDM is publicly available at https://gitlab.com/Socob/KiSS-SIDM.
8 pages, 5 figures
References in corpus (21)
- Dark Matter Self-interactions and Small Scale Structure
- Cosmological Simulations with Self-Interacting Dark Matter I: Constant Density Cores and Substructure
- Cosmological Simulations with Self-Interacting Dark Matter II: Halo Shapes vs. Observations
- Evolution of Massive Protostars with High Accretion Rates
- How the Self-Interacting Dark Matter Model Explains the Diverse Galactic Rotation Curves
- Self-Interacting Dark Matter Halos and the Gravothermal Catastrophe
- Can Feedback Solve the Too Big to Fail Problem?
- Gravothermal collapse of isolated self-interacting dark matter haloes: N-body simulation versus the fluid model
- Supermassive Black Holes from Ultra-Strongly Self-Interacting Dark Matter
- Constraining Dissipative Dark Matter Self-Interactions
- Accelerated core collapse in tidally stripped self-interacting dark matter halos
- Gravothermal Collapse of Self-Interacting Dark Matter Halos and the Origin of Massive Black Holes
- Seeding Supermassive Black Holes with Self-Interacting Dark Matter: A Unified Scenario with Baryons
- The Onset of Gravothermal Core Collapse in Velocity Dependent Self-Interacting Dark Matter Subhaloes
- Gravothermal evolution of dark matter halos with differential elastic scattering
- Gravothermal solutions of SIDM halos: mapping from constant to velocity-dependent cross section
- Universal gravothermal evolution of isolated self-interacting dark matter halos for velocity-dependent cross sections
- Numerical Challenges in Modeling Gravothermal Collapse in Self-Interacting Dark Matter Halos
- Numerical challenges for energy conservation in N-body simulations of collapsing self-interacting dark matter halos
- Comparing Implementations of Self-Interacting Dark Matter in the Gizmo and Arepo Codes
- Direct Simulation Monte Carlo for astrophysical flows: I. Motivation and methodology