Scalar gravitational wave from Oppenheimer-Snyder collapse in scalar-tensor theories of gravity

Tomohiro Harada, Takeshi Chiba, Ken-ichi Nakao, and Takashi Nakamura
Phys. Rev. D 55, 2024 – Published 15 February 1997
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Abstract

Unlike general relativity, scalar-tensor theories of gravity predict scalar gravitational waves even from a spherically symmetric gravitational collapse. We solve numerically the generation and propagation of the scalar gravitational wave from a spherically symmetric and homogeneous dust collapse under the approximation that we can neglect the back reaction of the scalar wave on the space-time, and examine how the amplitude, characteristic frequency, and wave form of the observed scalar gravitational wave depend on the initial radius and mass of the dust and parameters contained in the theory. In the Brans-Dicke theory, through the observation of the scalar gravitational wave, it is possible to determine the initial radius and mass and a parameter contained in the theory. In the scalar-tensor theories, it would be possible to get the information of the first derivative of the coupling function contained in the theory because the wave form of the scalar gravitational wave greatly depends on it.

  • Received 23 August 1996

DOI:https://doi.org/10.1103/PhysRevD.55.2024

©1997 American Physical Society

Authors & Affiliations

Tomohiro Harada1, Takeshi Chiba2, Ken-ichi Nakao1, and Takashi Nakamura2

  • 1Department of Physics, Kyoto University, Kyoto 606-01, Japan
  • 2Yukawa Institute for Theoretical Physics, Kyoto University, Kyoto 606-01, Japan

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Issue

Vol. 55, Iss. 4 — 15 February 1997

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