Gravitational waves from a test particle scattered by a neutron star: Axial mode case
- 3 June 1999
- journal article
- research article
- Published by American Physical Society (APS) in Physical Review D
- Vol. 60 (2) , 024004
- https://doi.org/10.1103/physrevd.60.024004
Abstract
Using a metric perturbation method, we study gravitational waves from a test particle scattered by a spherically symmetric relativistic star. We calculate the energy spectrum and the waveform of gravitational waves for axial modes. Since metric perturbations in axial modes do not couple to the matter fluid of the star, emitted waves for a normal neutron star show only one peak in the spectrum, which corresponds to the orbital frequency at the turning point, where the gravitational field is strongest. However, for an ultracompact star (the radius another type of resonant periodic peak appears in the spectrum. This is just because of an excitation by a scattered particle of axial quasinormal modes, which were found by Chandrasekhar and Ferrari. This excitation comes from the existence of the potential minimum inside of a star. We also find for an ultracompact star many small periodic peaks at the frequency region beyond the maximum of the potential, which would be due to a resonance of two waves reflected by two potential barriers (Regge-Wheeler type and one at the center of the star). Such resonant peaks appear neither for a normal neutron star nor for a Schwarzschild black hole. Consequently, even if we analyze the energy spectrum of gravitational waves only for axial modes, it would be possible to distinguish between an ultracompact star and a normal neutron star (or a Schwarzschild black hole).
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This publication has 28 references indexed in Scilit:
- Head-On Collision of Two Unequal Mass Black HolesPhysical Review Letters, 1998
- Head-on collision of two equal mass black holesPhysical Review D, 1995
- Collision of two black holesPhysical Review Letters, 1993
- LIGO: The Laser Interferometer Gravitational-Wave ObservatoryScience, 1992
- The VIRGO Project: A wide band antenna for gravitational wave detectionNuclear Instruments and Methods in Physics Research Section A: Accelerators, Spectrometers, Detectors and Associated Equipment, 1990
- Gravitational Waves from a Particle Scattered by a Schwarzschild Black HoleProgress of Theoretical Physics, 1984
- Energy, Momentum and Angular Momentum of Gravitational Waves Induced by a Particle Plunging into a Schwarzschild Black HoleProgress of Theoretical Physics, 1983
- Pulses of Gravitational Radiation of a Particle Falling Radially into a Schwarzschild Black HolePhysical Review D, 1972
- Gravitational Field of a Particle Falling in a Schwarzschild Geometry Analyzed in Tensor HarmonicsPhysical Review D, 1970
- Stability of a Schwarzschild SingularityPhysical Review B, 1957