Gravitational Waves from Relativistic Rotational Core Collapse
Open Access
- 20 October 2001
- journal article
- research article
- Published by American Astronomical Society in The Astrophysical Journal
- Vol. 560 (2) , L163-L166
- https://doi.org/10.1086/324406
Abstract
We present results from simulations of axisymmetric relativistic rotational core collapse. The general relativistic hydrodynamic equations are formulated in flux-conservative form and solved using a high-resolution shock-capturing scheme. The Einstein equations are solved assuming a conformally flat 3-metric, and the quadrupole formula is used to extract waveforms of the gravitational radiation emitted during the collapse. A comparison of our results with those of Newtonian simulations shows that the wave amplitudes agree within 30%. Surprisingly, in some cases, relativistic effects actually diminish the amplitude of the gravitational wave signal. We further find that the parameter range of models suffering multiple coherent bounces due to centrifugal forces is considerably smaller than in Newtonian simulations.Keywords
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This publication has 11 references indexed in Scilit:
- Simulation of Astrophysical Fluid FlowPublished by Springer Nature ,2006
- Towards a stable numerical evolution of strongly gravitating systems in general relativity: The conformal treatmentsPhysical Review D, 2000
- Revised relativistic hydrodynamical model for neutron-star binariesPhysical Review D, 2000
- Presupernova Evolution of Rotating Massive Stars. I. Numerical Method and Evolution of the Internal Stellar StructureThe Astrophysical Journal, 2000
- Relativistic dust disks and the Wilson-Mathews approachPhysical Review D, 1999
- Possible Explanation for Star-Crushing Effect in Binary Neutron Star SimulationsPhysical Review Letters, 1999
- Numerical {3 + 1} General Relativistic Hydrodynamics: A Local Characteristic ApproachThe Astrophysical Journal, 1997
- Testing a simplified version of Einstein’s equations for numerical relativityPhysical Review D, 1996
- Rapidly rotating general relativistic stars - I. Numerical method and its application to uniformly rotating polytropesMonthly Notices of the Royal Astronomical Society, 1989
- Hydrodynamic Calculations of General-Relativistic CollapsePhysical Review B, 1966