English

Gravitational waves from very massive stars collapsing to a black hole

High Energy Astrophysical Phenomena 2019-01-25 v1

Abstract

We compute gravitational waves emitted by the collapse of a rotating very massive star (VMS) core leading directly to a black hole in axisymmetric numerical-relativity simulations. The evolved rotating VMS is derived by a stellar evolution calculation and its initial mass and the final carbon-oxygen core mass are 320M320M_\odot and 150M\approx 150M_\odot, respectively. We find that for the moderately rapidly rotating cases, the peak strain amplitude and the corresponding frequency of gravitational waves are 1022\sim 10^{-22} and f300f \approx 300--600\,Hz for an event at the distance of D=50D=50~Mpc. Such gravitational waves will be detectable only for D10D \lesssim 10~Mpc by second generation detectors, advanced LIGO, advanced VIRGO, and KAGRA, even if the designed sensitivity for these detectors is achieved. However, third-generation detectors will be able to detect such gravitational waves for an event up to D100D \sim 100~Mpc. The detection of the gravitational-wave signal will provide a potential opportunity for verifying the presence of VMSs with mass 300M\gtrsim 300M_\odot and their pair-unstable collapse in the universe.

Keywords

Cite

@article{arxiv.1901.08260,
  title  = {Gravitational waves from very massive stars collapsing to a black hole},
  author = {Haruki Uchida and Masaru Shibata and Koh Takahashi and Takashi Yoshida},
  journal= {arXiv preprint arXiv:1901.08260},
  year   = {2019}
}

Comments

5 pages, 3 figures, accepted to PRD