Gravitational wave asteroseismology of fast rotating neutron stars with realistic equations of state
Daniela D. Doneva, Erich Gaertig, Kostas D. Kokkotas, Christian, Kr\"uger

TL;DR
This paper investigates the oscillations of fast rotating neutron stars with realistic equations of state using gravitational wave asteroseismology, deriving empirical relations for various modes and analyzing their implications for neutron star parameter estimation and stability.
Contribution
It introduces new empirical relations for higher spherical order modes in neutron star oscillations and assesses their robustness beyond the Cowling approximation, enhancing gravitational wave asteroseismology methods.
Findings
Empirical relations hold for realistic EoS and are similar to polytropic cases.
Including l=3,4 modes significantly enlarges the CFS instability window.
Masses, radii, and rotation rates can be accurately estimated from asteroseismology data.
Abstract
In the present paper we study the oscillations of fast rotating neutron stars with realistic equations of state (EoS) within the Cowling approximation. We derive improved empirical relations for gravitational wave asteroseismology with f-modes and for the first time we consider not only quadrupolar oscillations but also modes with higher spherical order (l=|m|=3,4). After performing a systematic comparison with polytropic EoS, it is shown that the empirical relations found in this case approximately also hold for realistic EoS. Even more, we show that these relations will not change significantly even if the Cowling approximation is dropped and the full general relativistic case is considered, although the normalization used here(frequencies and damping times in the nonrotating limit) could differ considerably. We also address the inverse problem, i.e. we investigate in detail what kind…
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