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Spherical neutron star collapse toward a black hole in tensor-scalar theory of gravity

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arxiv gr-qc/9707041 v2 pith:J3P3NWS2 submitted 1997-07-18 gr-qc astro-ph

Spherical neutron star collapse toward a black hole in tensor-scalar theory of gravity

classification gr-qc astro-ph
keywords gravitationalcollapsestarblackfluidholeneutronresulting
verification ladder T0 review T1 audit T2 compute T3 formal T4 reserved
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Complete tensor-scalar and hydrodynamic equations are presented and integrated, for a self-gravitating perfect fluid. The initial conditions describe unstable-equilibrium neutron star configuration, with a polytropic equation of state. They are necessary in order to follow the gravitational collapse (including full hydrodynamics) of this star toward a black hole and to study the resulting scalar gravitational wave. The amplitude of this wave, as well as the radiated energy dramatically increase above some critical value of the parameter of the coupling function, due to the spontaneous scalarization, an effect not present in Brans-Dicke theory. In most cases, the pressure of the collapsing fluid does not have a significant impact on the resulting signal. These kind of sources are not likely to be observed by future laser interferometric detectors (such as VIRGO or LIGO) of gravitational waves, if they are located at more than a few 100 kpc. However, spontaneous scalarization could be constrained if such a gravitational collapse is detected by its quadrupolar gravitational signal, since this latter is quite lower than the monopolar one.

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Cited by 2 Pith papers

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    For scalarization of the full Bardeen spacetime, small magnetic charges give the usual smooth scalarization threshold, while large charges end in a 'frozen' horizonless scalarized state rather than a Bardeen black hole.

  2. Testing General Relativity with Present and Future Astrophysical Observations

    gr-qc 2015-01 accept novelty 2.0

    A review summarizing modified theories of gravity, their effects on compact objects, existing bounds from astrophysical observations, and the promise of future gravitational wave tests for strong-field gravity.