English

Inertial modes of neutron stars with the superfluid core

Astrophysics 2009-11-07 v2 General Relativity and Quantum Cosmology

Abstract

We investigate the modal properties of inertial modes of rotating neutron stars with the core filled with neutron and proton superfluids, taking account of entrainment effects between the superfluids. In this paper, the entrainment effects are modeled by introducing a parameter η\eta so that no entrainment state is realized at η=0\eta=0. We find that inertial modes of rotating neutron stars with the superfluid core are split into two families, which we call ordinary fluid inertial modes (ioi^o-mode) and superfluid inertial modes (isi^s-mode). The two superfluids in the core counter-move for the isi^s-modes. For the ioi^o-modes, κ0=limΩ0ω/Ω\kappa_0=\lim_{\Omega\to 0}\omega/\Omega is only weakly dependent on the entrainment parameter η\eta, where Ω\Omega and ω\omega are the angular frequency of rotation and the oscillation frequency observed in the corotating frame of the star, respectively. For the isi^s-modes, on the other hand, κ0|\kappa_0| almost linearly increases as η\eta increases. Avoided crossings as functions of η\eta are therefore quite common between ioi^o- and isi^s-modes. We find that some of the isi^s-modes that are unstable against the gravitational radiation reaction at η=0\eta=0 become stable when η\eta is larger than ηcrit\eta_{crit}, the value of which depends on the mode. Since the radiation driven instability associated with the current multipole radiation is quite weak for the inertial modes and the mutual friction damping in the superfluid core is strong, the instability caused by the inertial modes will be easily suppressed unless the entrainment parameter η\eta is extremely small and the mutual friction damping is sufficiently weak.

Keywords

Cite

@article{arxiv.astro-ph/0302313,
  title  = {Inertial modes of neutron stars with the superfluid core},
  author = {Shijun Yoshida and Umin Lee},
  journal= {arXiv preprint arXiv:astro-ph/0302313},
  year   = {2009}
}

Comments

19 pages, 20 figures. To appear in MNRAS