Universal gravothermal evolution of isolated self-interacting dark matter halos for velocity-dependent cross-sections

Author:

Outmezguine Nadav Joseph12ORCID,Boddy Kimberly K3,Gad-Nasr Sophia4ORCID,Kaplinghat Manoj4,Sagunski Laura5

Affiliation:

1. Berkeley Center for Theoretical Physics, University of California , Berkeley, CA 94720, USA

2. Theory Group, Lawrence Berkeley National Laboratory , Berkeley, CA 94720, USA

3. Theory Group, Department of Physics, The University of Texas at Austin , Austin, TX 78712, USA

4. Center for Cosmology, Department of Physics and Astronomy, University of California − Irvine , Irvine, CA 92697, USA

5. Institute for Theoretical Physics, Goethe University , D-60438 Frankfurt am Main, Germany

Abstract

ABSTRACT We study the evolution of isolated self-interacting dark matter halos using spherically symmetric gravothermal equations allowing for the scattering cross-section to be velocity dependent. We focus our attention on the large class of models where the core is in the long mean free path regime for a substantial time. We find that the temporal evolution exhibits an approximate universality that allows velocity-dependent models to be mapped onto velocity-independent models in a well-defined way using the scattering time-scale computed when the halo achieves its minimum central density. We show how this time-scale depends on the halo parameters and an average cross-section computed at the central velocity dispersion when the central density is minimum. The predicted collapse time is fully defined by the scattering time-scale, with negligible variation due to the velocity dependence of the cross-section. We derive new self-similar solutions that provide an analytic understanding of the numerical results.

Funder

National Science Foundation

Publisher

Oxford University Press (OUP)

Subject

Space and Planetary Science,Astronomy and Astrophysics

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