Asosiy kontentga oʻtish
AkademIndex

Mahsulotlar

Ishlab chiquvchilar uchun

AkademBaseEkotizim uchun ochiq API
Maqola

Improved effective-one-body model of spinning, nonprecessing binary black holes for the era of gravitational-wave astrophysics with advanced detectors

A. BohéMax Planck Institute for Gravitational Physics (Albert Einstein Institute), Am Mühlenberg 1, Potsdam 14476, GermanyLijing ShaoMax Planck Institute for Gravitational Physics (Albert Einstein Institute), Am Mühlenberg 1, Potsdam 14476, GermanyAndrea TaracchiniMax Planck Institute for Gravitational Physics (Albert Einstein Institute), Am Mühlenberg 1, Potsdam 14476, GermanyAlessandra BuonannoDepartment of Physics, University of Maryland, College Park, Maryland 20742, USAS. BabakMax Planck Institute for Gravitational Physics (Albert Einstein Institute), Am Mühlenberg 1, Potsdam 14476, GermanyI. W. HarryMax Planck Institute for Gravitational Physics (Albert Einstein Institute), Am Mühlenberg 1, Potsdam 14476, GermanyIan HinderMax Planck Institute for Gravitational Physics (Albert Einstein Institute), Am Mühlenberg 1, Potsdam 14476, GermanySerguei OssokineMax Planck Institute for Gravitational Physics (Albert Einstein Institute), Am Mühlenberg 1, Potsdam 14476, GermanyM. PürrerMax Planck Institute for Gravitational Physics (Albert Einstein Institute), Am Mühlenberg 1, Potsdam 14476, GermanyV. RaymondMax Planck Institute for Gravitational Physics (Albert Einstein Institute), Am Mühlenberg 1, Potsdam 14476, GermanyTony ChuCanadian Institute for Theoretical Astrophysics, University of Toronto, Toronto M5S 3H8, CanadaHeather FongCanadian Institute for Theoretical Astrophysics, University of Toronto, Toronto M5S 3H8, CanadaP. KumarCanadian Institute for Theoretical Astrophysics, University of Toronto, Toronto M5S 3H8, CanadaHarald PfeifferCanadian Institute for Advanced Research, Toronto M5G 1Z8, CanadaMichael BoyleCornell Center for Astrophysics and Planetary Science, Cornell University, Ithaca, New York, 14853, USADaniel A. HembergerTheoretical Astrophysics 350-17, California Institute of Technology, Pasadena, California 91125, USALawrence E. KidderCornell Center for Astrophysics and Planetary Science, Cornell University, Ithaca, New York, 14853, USAGeoffrey LovelaceGravitational Wave Physics and Astronomy Center, California State University Fullerton, Fullerton, California 92834, USAMark ScheelTheoretical Astrophysics 350-17, California Institute of Technology, Pasadena, California 91125, USABéla SzilágyiJet Propulsion Laboratory, California Institute of Technology, 4800 Oak Grove Drive, Pasadena, California 91109, USA
2017en
ABI

Annotatsiya

We improve the accuracy of the effective-one-body (EOB) waveforms that were employed during the first observing run of Advanced LIGO for binaries of spinning, nonprecessing black holes by calibrating them to a set of 141 numerical-relativity (NR) waveforms. The NR simulations expand the domain of calibration toward larger mass ratios and spins, as compared to the previous EOBNR model. Merger-ringdown waveforms computed in black-hole perturbation theory for Kerr spins close to extremal provide additional inputs to the calibration. For the inspiral-plunge phase, we use a Markov-chain Monte Carlo algorithm to efficiently explore the calibration space. For the merger-ringdown phase, we fit the NR signals with phenomenological formulae. After extrapolation of the calibrated model to arbitrary mass ratios and spins, the (dominant-mode) EOBNR waveforms have faithfulness---at design Advanced-LIGO sensitivity---above 99% against all the NR waveforms, including 16 additional waveforms used for validation, when maximizing only on initial phase and time. This implies a negligible loss in event rate due to modeling for these binary configurations. We find that future NR simulations at mass ratios $\ensuremath{\gtrsim}4$ and double spin $\ensuremath{\gtrsim}0.8$ will be crucial to resolving discrepancies between different ways of extrapolating waveform models. We also find that some of the NR simulations that already exist in such region of parameter space are too short to constrain the low-frequency portion of the models. Finally, we build a reduced-order version of the EOBNR model to speed up waveform generation by orders of magnitude, thus enabling intensive data-analysis applications during the upcoming observation runs of Advanced LIGO.

Hali tarjima qilinmagan

Identifikatorlar

Iqtiboslar va manbalar

2 ta iqtibos0 ta foydalanilgan manba