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Slowly rotating neutron stars with small differential rotation: equilibrium models and oscillations in the Cowling approximation

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arxiv 1301.3111 v3 pith:7JCVB2Q2 submitted 2013-01-14 gr-qc

classification gr-qc
keywords rotationdifferentialneutronstarsapproximationequilibriumgravitationalcowling
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Newly born neutron stars can present differential rotation, even if later it should be suppressed by viscosity or a sufficiently strong magnetic field. And in this early stage of its life, a neutron star is expected to have a strong emission of gravitational waves, which could be influenced by the differential rotation. We present here a new formalism for modelling differentially rotating neutron stars: working on the slow rotation approximation and assuming a small degree of differential rotation, we show that it is possible to separate variables in the Einstein field equations. The dragging of inertial frames is determined by solving three decoupled ODEs. After we establish our equilibrium model, we explore the influence of the differential rotation on the f and r-modes of oscillation of the neutron star in the Cowling approximation, and we also analyze an effect of the differential rotation on the emission of gravitational radiation from the f-modes. We see that the gravitational radiation from the f-modes is slightly suppressed by introducing differential rotation to the equilibrium stars.

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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. Highly-accurate neutron star modeling in the Hartle-Thorne Approximation

    gr-qc 2025-05 conditional novelty 6.0 of 10

    The Hartle-Thorne slow-rotation expansion is extended to seventh order, yielding analytical exterior metrics and multipole moments up to S7 for isolated neutron stars.

  2. Building Neutron Stars with the MUSES Calculation Engine

    nucl-th 2025-02 conditional novelty 6.0 of 10

    A new open-source calculation engine produces crust-to-core neutron star equations of state and shows that smooth matching choices change predicted radii and masses by several percent.

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