English

Macroscopic approaches to rotating neutron stars

High Energy Astrophysical Phenomena 2025-08-18 v2 Solar and Stellar Astrophysics Nuclear Theory

Abstract

The macroscopic model for a neutron star (NS) as a perfect liquid drop at equilibrium is extended to rotating systems with a small frequency ω\omega within the effective-surface (ES) approach. The gradient surface terms of the NS energy density E(ρ)\cal{E}(\rho) [Equation of State] are taken into account along with the volume ones at the leading order of the leptodermic parameter a/R<<1a/R << 1, where aa is the ES crust thickness and RR is the mean NS radius. The macroscopic NS angular momentum at small frequencies ω\omega is specified for calculations of the adiabatic moment of inertia (MI) within the Kerr metric coordinate approach in the outer Boyer-Lindquist and inner Hogan forms. The NS MI, Θ=Θ~/(1Gtφ)\Theta=\tilde{\Theta}/(1-\cal{G}_{t\varphi}), was obtained in terms of the statistically averaged MI, Θ~\tilde{\Theta}, and its time and azimuthal-angle correlation, Gtφ\cal{G}_{t\varphi}, as sums of the volume and surface components. The MI Θ\Theta depends dramatically on its effective radius RR because of strong gravitation and surface effects. We found the significant shift of the Schwarzschild radius due to the correlation term Gtφ\cal{G}_{t\varphi}. With this term, the adiabaticity condition fails for the NS J0740+6620, with the mass about MM_\odot for a strong gravitation, in contrast to the NS J0030+0451 for smaller mass, and many other NSs.

Keywords

Cite

@article{arxiv.2508.10717,
  title  = {Macroscopic approaches to rotating neutron stars},
  author = {A. A. Uleiev and A. G. Magner and S. P. Maydanyuk and A. Bonasera and H. Zheng and S. N. Fedotkin and A. I. Levon and U. V. Grygoriev and T. Depastas},
  journal= {arXiv preprint arXiv:2508.10717},
  year   = {2025}
}

Comments

18 pages, 4 figures. arXiv admin note: text overlap with arXiv:2403.01445