f-mode oscillations of anisotropic neutron stars in full general relativity
Sushovan Mondal, Manjari Bagchi

TL;DR
This paper studies how anisotropy affects the oscillation frequencies and damping times of neutron stars using full general relativity, revealing relationships between anisotropy, mass, and oscillation properties.
Contribution
It provides a detailed analysis of f-mode oscillations in anisotropic neutron stars within full general relativity, including equations, solutions, and the impact of anisotropy on observable properties.
Findings
Frequency of f-mode correlates linearly with square root of average density.
Higher anisotropy increases frequency for low mass, decreases for high mass.
Damping time decreases with increasing neutron star mass.
Abstract
We investigate f-mode oscillations of static anisotropic stable neutron stars within the framework of full general relativity. We present equations governing unperturbed stellar structures and oscillations with an ansatz to account for the anisotropy. We solve those equations for two different equations of states. We see that, moderately anisotropic neutron stars with the tangential pressure larger than the radial pressure can give more massive neutron stars than the isotropic or very anisotropic ones. We find that the frequency of the f-mode exhibits a linear relationship with the square root of the average density of the stars and the slope of the fit depends on the anisotropic strength. For any given value of the anisotropic strength, the frequency increases with the increase of the mass of the neutron star, linearly for lower masses, and rapidly at higher masses. However, this…
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Taxonomy
TopicsPulsars and Gravitational Waves Research · Geophysics and Gravity Measurements · Stellar, planetary, and galactic studies
