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Non-adiabatic oscillations of compact stars in general relativity

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arxiv gr-qc/0405063 v2 pith:OAMYIDJ2 submitted 2004-05-12 gr-qc astro-ph

classification gr-qcastro-ph
keywords starsgeneraloscillationoscillationsthermaladiabaticcompactdiffusion
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We have developed a formalism to study non-adiabatic, non-radial oscillations of non-rotating compact stars in the frequency domain, including the effects of thermal diffusion in the framework of general relativistic perturbation theory. When a general equation of state depending on temperature is used, the perturbations of the fluid result in heat flux which is coupled with the spacetime geometry through the Einstein field equations. Our results show that the frequency of the first pressure (p) and gravity (g) oscillation modes is significantly affected by thermal diffusion, while that of the fundamental (f) mode is basically unaltered due to the global nature of that oscillation. The damping time of the oscillations is generally much smaller than in the adiabatic case (more than two orders of magnitude for the p- and g-modes) reflecting the effect of thermal dissipation. Both the isothermal and adiabatic limits are recovered in our treatment and we study in more detail the intermediate regime. Our formalism finds its natural astrophysical application in the study of the oscillation properties of newly born neutron stars, neutron stars with a deconfined quark core phase, or strange stars which are all promising sources of gravitational waves with frequencies in the band of the first generation and advanced ground-based interferometric detectors.

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Cited by 2 Pith papers

Reviewed papers in the Pith corpus that reference this work. Sorted by Pith novelty score. Full citation record

  1. Out-of-Equilibrium Effects in Non-Radial Relativistic Stellar Perturbations: A Model-Agnostic Formulation and Mode Analysis

    gr-qc 2026-06 unverdicted novelty 7.0 of 10

    A general framework for incorporating arbitrary nonequilibrium corrections into linear non-radial relativistic stellar perturbations without specifying constitutive relations.

  2. The dynamical response of viscous objects to gravitational waves

    gr-qc 2024-11 conditional novelty 6.0 of 10

    First fully relativistic calculation of gravitational wave scattering and oscillation modes of viscous stars: viscosity absorbs high-frequency waves, and maximally viscous, near-maximum-compactness stars mimic black h...

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