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The f-mode instability in relativistic neutron stars

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arxiv 1106.5512 v2 pith:QEJYBT7J submitted 2011-06-27 astro-ph.SR gr-qc

classification astro-ph.SRgr-qc
keywords neutronf-modeinstabilitystarsstellargravitationalrelativisticmodel
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Rapidly spinning neutron stars are known to harbour pulsation modes that may become unstable and grow in amplitude by emitting gravitational radiation. Among the various stellar modes, the f-mode is the one typically considered as a promising source of gravitational radiation for ground-based detectors such as LIGO and VIRGO. Improving the existing work in Newtonian stellar models, we present the first calculation of the basic properties of the f-mode instability in rapidly rotating relativistic neutron stars, adopting the Cowling approximation. Using a relativistic polytropic stellar model, we obtain a minimum gravitational growth timescale (for the dominant l=m=4 mode) of the order of 10^3-10^4 s near the Kepler spin frequency Omega_K, which is substantially shorter than the Newtonian value. By accounting for dissipation in neutron star matter, i.e. shear/bulk viscosity and superfluid mutual friction, we calculate the associated f-mode instability window. For our specific stellar model, the instability is active above 0.92 \times Omega_K and for temperatures \sim (10^9 - 2 \times 10^{10}) K, characteristic of newborn neutron stars.

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Cited by 2 Pith papers

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  1. Dissipation triggers dynamical two-stream instability

    gr-qc 2019-08 conditional novelty 7.0 of 10

    Dissipation makes the relativistic two-stream instability dynamical exactly at the counterflow velocity where an ideal fluid would only show an energetic instability.

  2. PSR J0952-0607: Probing the Stiffest Equations of State and r-Mode Suppression Mechanisms

    astro-ph.HE 2025-02 conditional novelty 5.0 of 10

    Using the 709.2 Hz spin of PSR J0952-0607 in Bayesian equation-of-state inference shifts its inferred non-rotating mass to 2.10+0.25-0.24 Msun and makes r-mode stability depend on crust rigidity.

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