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Predictions for the rates of compact binary coalescences observable by ground-based gravitational-wave detectors

Classical and Quantum Gravity · 2010 · Vol. 27(17) · pp. 173001–173001
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MacInnisJean-Marie MackowskiM. MageswaranK MailandE. MajoranaCheuk Ming MakN. ManIlya MandelVuk MandicM. MantovaniF. MarchesoniF. MarionSzabolcs MárkaZ. MárkaE. MarosJ MarqueF MartelliI. W. MartinR. M. MartinJ. N. MarxK. MasonA. MasserotF. MatichardL. MatoneR. A. MatznerN. MavalvalaR. McCarthyD. E. McClellandS C McGuireG McIntyreG. McIvorD. J. A. McKechanG. D. MeadorsM. MehmetT. MeierA. MelatosA. C. MelissinosG MendellD. F. MenéndezR. A. MercerL. MerillS. MeshkovC. MessengerM. S. MeyerH. MiaoC. MichelL. MilanoJ. MillerY. MinenkovY. MinoS. MitraV. P. MitrofanovG. MitselmakherR MittlemanB. MoeMan MohanSoumya D. MohantyS. R. P. MohapatraD MoraruJ. MoreauG. MorenoN MorgadoA. MorgiaT. MoriokaK. MorsS. MoscaV. MoscatelliK. MossaviB. MoursC. M. Mow‐LowryGuido MuellerSuvodip MukherjeeA. MullaveyH. Müller‐EbhardtJ MunchP G MurrayT. NashR. NawrodtJohn H. NelsonI. NeriG. NewtonA. NishizawaF NoceraD. NoltingE. OchsnerJ. O’DellG. H. OginR. G. OldenburgB. O’ReillyR. O’ShaughnessyC. OsthelderD. J. 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J. van den BrandMarc van der SluysS. van der PuttenMarc van der SluysA. A. van VeggelS VassR. VaulinM. VavoulidisA. VecchioG. VedovatoJ. VeitchP. J. VeitchC. VeltkampD VerkindtF. VetranoA. ViceréA. VillarJ-Y VinetH. VoccaC VorvickS. P. VyachaninS. J. WaldmanL. WallaceA. WannerR. L. WardM. WąsP. WeiM. WeinertA. J. WeinsteinR WeissL. WenS. WenP. WeßelsMatthew J. WestT WestphalK. WetteJ. T. WhelanS. E. WhitcombD. J. WhiteB. F. WhitingC. WilkinsonP. A. WillemsL. WilliamsB. WillkeL. WinkelmannW. WinklerC C WipfA. G. WisemanG. WoanR. WooleyJohn R. WordenI. YakushinH. YamamotoKazuhiro YamamotoD. Yeaton-MasseyS. YoshidaP. YuM. YvertM ZanolinLiang ZhangZhibing ZhangC. ZhaoN. ZotovM. E. ZuckerJ. ZweizigKrzysztof Belczyński

Abstract

We present an up-to-date, comprehensive summary of the rates for all types of compact binary coalescence sources detectable by the Initial and Advanced versions of the ground-based gravitational-wave detectors LIGO and Virgo. Astrophysical estimates for compact-binary coalescence rates depend on a number of assumptions and unknown model parameters, and are still uncertain. The most confident among these estimates are the rate predictions for coalescing binary neutron stars which are based on extrapolations from observed binary pulsars in our Galaxy. These yield a likely coalescence rate of 100 per Myr per Milky Way Equivalent Galaxy (MWEG), although the rate could plausibly range from 1 per Myr per MWEG to 1000 per Myr per MWEG. We convert coalescence rates into detection rates based on data from the LIGO S5 and Virgo VSR2 science runs and projected sensitivities for our Advanced detectors. Using the detector sensitivities derived from these data, we find a likely detection rate of 0.02 per year for Initial LIGO-Virgo interferometers, with a plausible range between 0.0002 and 0.2 per year. The likely binary neutron-star detection rate for the Advanced LIGO-Virgo network increases to 40 events per year, with a range between 0.4 and 400 per year.

Pulsars and Gravitational Waves ResearchGeophysics and Gravity MeasurementsSeismic Waves and AnalysisLIGOPhysicsNeutron starGravitational waveAstrophysicsMilky WayGalaxyBinary numberAstronomyCoalescence (physics)

Funding

  • National Science Foundation
  • National Aeronautics and Space Administration
  • Alfred P. Sloan Foundation
  • Leverhulme Trust
  • Scottish Funding Council
  • Scottish Universities Physics Alliance
  • European Commission
  • Council of Scientific and Industrial Research, India
  • Fundacja na rzecz Nauki Polskiej
  • Nederlandse Organisatie voor Wetenschappelijk Onderzoek
  • Centre National de la Recherche Scientifique
  • Istituto Nazionale di Fisica Nucleare
  • Govern de les Illes Balears
  • Science and Technology Facilities Council
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