English

Fast cooling and internal heating in hyperon stars

High Energy Astrophysical Phenomena 2021-11-04 v1

Abstract

Neutron star models with maximum mass close to 2 M2 \ M_{\odot} reach high central densities, which may activate nucleonic and hyperon direct Urca neutrino emission. To alleviate the tension between fast theoretical cooling rates and thermal luminosity observations of moderately magnetized, isolated thermally-emitting stars (with Lγ1031L_{\gamma} \gtrsim 10^{31} erg s1^{-1} at t105.3t \gtrsim 10^{5.3} yr), some internal heating source is required. The power supplied by the internal heater is estimated for both a phenomenological source in the inner crust and Joule heating due to magnetic field decay, assuming different superfluidity models and compositions of the outer stellar envelope. It is found that a thermal power of W(t)1034W(t) \approx 10^{34} erg s1^{-1} allows neutron star models to match observations of moderately magnetized, isolated stars with ages t105.3t \gtrsim 10^{5.3} yr. The requisite W(t)W(t) can be supplied by Joule heating due to crust-confined initial magnetic configurations with (i) mixed poloidal-toroidal fields, with surface strength Bdip=1013B_{\textrm{dip}} = 10^{13} G at the pole of the dipolar poloidal component and 90\sim 90 per cent of the magnetic energy stored in the toroidal component; and (ii) poloidal-only configurations with Bdip=1014B_{\textrm{dip}} = 10^{14} G.

Keywords

Cite

@article{arxiv.2110.14039,
  title  = {Fast cooling and internal heating in hyperon stars},
  author = {F. Anzuini and A. Melatos and C. Dehman and D. Viganò and J. A. Pons},
  journal= {arXiv preprint arXiv:2110.14039},
  year   = {2021}
}

Comments

15 pages, 9 figures. Accepted for publication in MNRAS

R2 v1 2026-06-24T07:12:57.152Z