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Open AccessJournal ArticleDOI

Double Compact Objects. I. The Significance of the Common Envelope on Merger Rates

TLDR
In this article, the authors compute the Galactic merger rates for NS-NS, BH-BH, and BH -BH mergers with the StarTrack code and show that the binding energy of the envelope plays a pivotal role in determining whether a binary merges within a Hubble time.
Abstract
The last decade of observational and theoretical developments in stellar and binary evolution provides an opportunity to incorporate major improvements to the predictions from population synthesis models. We compute the Galactic merger rates for NS-NS, BH-NS, and BH-BH mergers with the StarTrack code. The most important revisions include updated wind mass-loss rates (allowing for stellar-mass black holes up to 80 M {sub Sun }), a realistic treatment of the common envelope phase (a process that can affect merger rates by 2-3 orders of magnitude), and a qualitatively new neutron star/black hole mass distribution (consistent with the observed {sup m}ass gap{sup )}. Our findings include the following. (1) The binding energy of the envelope plays a pivotal role in determining whether a binary merges within a Hubble time. (2) Our description of natal kicks from supernovae plays an important role, especially for the formation of BH-BH systems. (3) The masses of BH-BH systems can be substantially increased in the case of low metallicities or weak winds. (4) Certain combinations of parameters underpredict the Galactic NS-NS merger rate and can be ruled out. (5) Models incorporating delayed supernovae do not agree with the observed NS/BH 'mass gap', in accordance with our previousmore » work. This is the first in a series of three papers. The second paper will study the merger rates of double compact objects as a function of redshift, star formation rate, and metallicity. In the third paper, we will present the detection rates for gravitational-wave observatories, using up-to-date signal waveforms and sensitivity curves.« less

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Journal ArticleDOI

Binary Black Hole Mergers in the First Advanced LIGO Observing Run

B. P. Abbott, +981 more
- 21 Oct 2016 - 
TL;DR: The first observational run of the Advanced LIGO detectors, from September 12, 2015 to January 19, 2016, saw the first detections of gravitational waves from binary black hole mergers as discussed by the authors.
Journal ArticleDOI

GW190814: Gravitational Waves from the Coalescence of a 23 Solar Mass Black Hole with a 2.6 Solar Mass Compact Object

Richard J. Abbott, +1337 more
TL;DR: In this paper, the authors reported the observation of a compact binary coalescence involving a 222 −243 M ⊙ black hole and a compact object with a mass of 250 −267 M ⋆ (all measurements quoted at the 90% credible level) The gravitational-wave signal, GW190814, was observed during LIGO's and Virgo's third observing run on 2019 August 14 at 21:10:39 UTC and has a signal-to-noise ratio of 25 in the three-detector network.
Journal ArticleDOI

The first gravitational-wave source from the isolated evolution of two stars in the 40–100 solar mass range

TL;DR: High-precision numerical simulations of the formation of binary black holes via the evolution of isolated binary stars are reported, providing a framework within which to interpret the first gravitational-wave source, GW150914, and to predict the properties of subsequent binary-black-hole gravitational- wave events.
Journal ArticleDOI

Astrophysical implications of the binary black hole merger gw150914

B. P. Abbott, +964 more
TL;DR: The discovery of the GW150914 with the Advanced LIGO detectors provides the first observational evidence for the existence of binary black-hole systems that inspiral and merge within the age of the Universe as mentioned in this paper.
Journal ArticleDOI

Comprehensive nucleosynthesis analysis for ejecta of compact binary mergers

TL;DR: In this paper, the authors present the first comprehensive study of r-process element nucleosynthesis in the ejecta of compact binary mergers (CBMs) and their relic black hole (BH)-torus systems.
References
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Journal ArticleDOI

A two-solar-mass neutron star measured using Shapiro delay

TL;DR: Radio timing observations of the binary millisecond pulsar J1614-2230 that show a strong Shapiro delay signature are presented and the pulsar mass is calculated to be (1.97 ± 0.04)M⊙, which rules out almost all currently proposed hyperon or boson condensate equations of state.
Journal ArticleDOI

Double white dwarfs as progenitors of R Coronae Borealis stars and type I supernovae

TL;DR: In this article, the authors explored the role of mass transfer in the evolution of double degenerate systems and found that low-mass helium/helium pairs are unstable to dynamical time-scale mass transfer and probably coalesce to form helium-burning sdO stars.
Journal ArticleDOI

The distribution of low-mass stars in the Galactic disc

TL;DR: In this paper, the authors quantify the complex interdependence of stellar binarity, the stellar mass-luminosity relation, the mass function, the colour-magnitude relation and the Galactic disc structure, all of which must be understood when analysing star-count data and stellar luminosity functions.
Journal ArticleDOI

Mass-loss predictions for O and B stars as a function of metallicity

TL;DR: In this paper, a grid of massive star wind models and mass-loss rates for a wide range of metal abundances between 1=100 Z=Z 10 was calculated and the mass loss rate was shown to be constant in the range between 1/30 Z =Z 3.
Journal ArticleDOI

Comprehensive analytic formulae for stellar evolution as a function of mass and metallicity

TL;DR: In this article, the authors present analytic formulae that approximate the evolution of stars for a wide range of mass M and metallicity Z, including all phases from the zero-age main sequence up to, and including, the remnant stages.
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