Modeling the source of GW150914 with targeted numerical-relativity simulations
Creators
- 1. Gravitational Wave Physics and Astronomy Center, California State University Fullerton, Fullerton, CA 92834 (United States)
- 2. Center for Computational Relativity and Gravitation, School of Mathematical Sciences, Rochester Institute of Technology, 85 Lomb Memorial Drive, Rochester, NY, 14623 (United States)
- 3. Theoretical Astrophysics 350-17, California Institute of Technology, Pasadena, CA 91125 (United States)
- 4. Center for Astrophysics and Planetary Science, Cornell University, Ithaca, NY 14853 (United States)
- 5. Canadian Institute for Theoretical Astrophysics, 60 St. George Street, University of Toronto, Toronto, ON M5S 3H8 (Canada)
Description
In fall of 2015, the two LIGO detectors measured the gravitational wave signal GW150914, which originated from a pair of merging black holes (Abbott et al Virgo, LIGO Scientific 2016 Phys. Rev. Lett . 116 061102). In the final 0.2 s (about 8 gravitational-wave cycles) before the amplitude reached its maximum, the observed signal swept up in amplitude and frequency, from 35 Hz to 150 Hz. The theoretical gravitational-wave signal for merging black holes, as predicted by general relativity, can be computed only by full numerical relativity, because analytic approximations fail near the time of merger. Moreover, the nearly-equal masses, moderate spins, and small number of orbits of GW150914 are especially straightforward and efficient to simulate with modern numerical-relativity codes. In this paper, we report the modeling of GW150914 with numerical-relativity simulations, using black-hole masses and spins consistent with those inferred from LIGO's measurement (Abbott et al LIGO Scientific Collaboration, Virgo Collaboration 2016 Phys. Rev. Lett . 116 241102). In particular, we employ two independent numerical-relativity codes that use completely different analytical and numerical methods to model the same merging black holes and to compute the emitted gravitational waveform; we find excellent agreement between the waveforms produced by the two independent codes. These results demonstrate the validity, impact, and potential of current and future studies using rapid-response, targeted numerical-relativity simulations for better understanding gravitational-wave observations. (paper)
Availability note (English)
Available from http://dx.doi.org/10.1088/0264-9381/33/24/244002Additional details
Identifiers
Publishing Information
- Journal Title
- Classical and Quantum Gravity
- Journal Volume
- 33
- Journal Issue
- 24
- Journal Page Range
- [16 p.]
- ISSN
- 0264-9381
- CODEN
- CQGRDG
INIS
- Country of Publication
- United Kingdom
- Country of Input or Organization
- International Atomic Energy Agency (IAEA)
- INIS RN
- 49031993
- Subject category
- S72: PHYSICS OF ELEMENTARY PARTICLES AND FIELDS;
- Descriptors DEI
- AMPLITUDES; APPROXIMATIONS; BLACK HOLES; GENERAL RELATIVITY THEORY; GRAVITATIONAL WAVES; ORBITS; SIGNALS; SIMULATION; SPIN; WAVE FORMS
- Descriptors DEC
- ANGULAR MOMENTUM; CALCULATION METHODS; FIELD THEORIES; PARTICLE PROPERTIES; RELATIVITY THEORY