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Rapid uniform rotation of protoneutron stars

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arxiv astro-ph/9610265 v1 pith:24GB7SKH submitted 1996-10-31 astro-ph

classification astro-ph
keywords starsmassrotationbaryonmaximumneutronprotoneutronrotating
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Rapid uniform rotation of newborn neutron stars (protoneutron stars) is studied for a range of internal temperatures and entropies per baryon predicted by the existing numerical simulations. Calculations are performed using general relativistic equations of hydrostatic equilibrium of rotating, axially symmetric stars. Stability of rotating configurations with respect to mass shedding and the axially symmetric perturbations is studied. Numerical calculations are performed for a realistic dense matter equation of state, under various assumptions concerning neutron star interior (large trapped lepton number, no trapped lepton number, isentropic, isothermal). For configurations with baryon mass well below the maximum one for the non-rotating models, the mass shedding limit depends quite sensitively on the position of the ``neutrinosphere''. The absolute upper limit on rotation frequency is, to a good approximation, obtained for the maximum baryon mass of rotating configurations. Empirical formula for the maximum rotation frequency of uniformly rotating protoneutron stars is shown to be quite precise; it actually coincides with that used for cold neutron stars. Evolutionary sequences at fixed baryon mass and angular momentum, which correspond to evolution of protoneutron stars into cold neutron stars are studied, and resulting constraints on the maximum rotation frequency of solitary pulsars are discussed.

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Cited by 2 Pith papers

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    gr-qc 2019-08 conditional novelty 6.0 of 10

    A potential-based method constructs stationary, differentially rotating, non-barotropic neutron stars in general relativity, with dynamical evolutions supporting that they are equilibrium configurations.

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    A counterterm-free grand-canonical quasiparticle model gives quark star equations of state whose mass-radius and tidal deformability curves match current astronomical limits when vector repulsion is added.

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