Gas driven massive black hole binaries: signatures in the nHz gravitational wave background
arXiv:1002.0584 · doi:10.1111/j.1365-2966.2010.17782.x
Abstract
Pulsar timing arrays (PTAs) measure nHz frequency gravitational waves (GWs) generated by orbiting massive black hole binaries (MBHBs) with periods between 0.1-10 yr. Previous studies on the nHz GW background assumed that the inspiral is purely driven by GWs. However, torques generated by a gaseous disk can shrink the binary much more efficiently than GW emission, reducing the number of binaries at these separations. We use simple disk models for the circumbinary gas and for the binary-disk interaction to follow the orbital decay of MBHBs through physically distinct regions of the disk, until GWs take over their evolution. We extract MBHB cosmological merger rates from the Millennium simulation, generate Monte Carlo realizations of a population of gas driven binaries, and calculate the corresponding GW amplitudes of the most luminous individual binaries and the stochastic GW background. For steady state alpha-disks with alpha>0.1 we find that the nHz GW background can be significantly modified. The number of resolvable binaries is however not changed by the presence of gas; we predict 1-10 individually resolvable sources to stand above the noise for a 1-50 ns timing precision. Gas driven migration reduces predominantly the number of small total mass or unequal mass ratio binaries, which leads to the attenuation of the mean stochastic GW--background, but increases the detection significance of individually resolvable binaries. The results are sensitive to the model of binary--disk interaction. The GW background is not attenuated significantly for time-dependent models of Ivanov, Papaloizou, & Polnarev (1999).
Accepted by MNRAS, 15 pages, 8 figures
References in corpus (22)
- The international pulsar timing array project: using pulsars as a gravitational wave detector
- Tempo2, a new pulsar timing package. II: The timing model and precision estimates
- Accretion disc viscosity: how big is alpha?
- The stochastic gravitational-wave background from massive black hole binary systems: implications for observations with Pulsar Timing Arrays
- A torque formula for non-isothermal Type I planetary migration - I. Unsaturated horseshoe drag
- The North American Nanohertz Observatory for Gravitational Waves
- Massive black hole binary mergers within sub-pc scale gas discs
- The Population of Viscosity- and Gravitational Wave-Driven Supermassive Black Hole Binaries Among Luminous AGN
- Gravitational waves from resolvable massive black hole binary systems and observations with Pulsar Timing Arrays
- Supermassive black hole binaries in gaseous and stellar circumnuclear discs: orbital dynamics and gas accretion
- Black hole mergers: can gas discs solve the `final parsec' problem?
- On corotation torques, horseshoe drag and the possibility of sustained stalled or outward protoplanetary migration
- Angular Momentum Transport in Accretion Disks: Scaling Laws in MRI-driven Turbulence
- Measuring the parameters of massive black hole binary systems with Pulsar Timing Array observations of gravitational waves
- Black Hole Growth in Hierarchical Galaxy Formation
- The recycling of gas and metals in galaxy formation: predictions of a dynamical feedback model
- Pre-Merger Localization of Gravitational-Wave Standard Sirens With LISA: Triggered Search for an Electromagnetic Counterpart
- Triplets of supermassive black holes: Astrophysics, Gravitational Waves and Detection
- On the inconsistency between the black hole mass function inferred from M_bh-sigma and M_bh-L correlation
- The Most Massive Black Holes in the Universe: Effects of Mergers in Massive Galaxy Clusters
- Mass Function of Binary Massive Black Holes in Active Galactic Nuclei
- The Square Kilometre Array
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- The NANOGrav 15-year Data Set: Search for Signals from New Physics
- Black holes, gravitational waves and fundamental physics: a roadmap
- The NANOGrav 11-year Data Set: High-precision timing of 45 Millisecond Pulsars
- European Pulsar Timing Array Limits On An Isotropic Stochastic Gravitational-Wave Background
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- The NANOGrav 11-year Data Set: Pulsar-timing Constraints On The Stochastic Gravitational-wave Background
- Formation and Evolution of Compact Object Binaries in AGN Disks
- The NANOGrav 15-year Data Set: Constraints on Supermassive Black Hole Binaries from the Gravitational Wave Background
- Binary Black Hole Accretion From a Circumbinary Disk: Gas Dynamics Inside the Central Cavity
- The NANOGrav Nine-year Data Set: Limits on the Isotropic Stochastic Gravitational Wave Background
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- Massive Black Hole Binary Mergers in Dynamical Galactic Environments
- The recent gravitational wave observation by pulsar timing arrays and primordial black holes: the importance of non-gaussianities
- Accretion-Driven Evolution of Black Holes: Eddington Ratios, Duty Cycles, and Active Galaxy Fractions
- The Gravitational Wave Background from Massive Black Hole Binaries in Illustris: spectral features and time to detection with pulsar timing arrays
- On the orbital evolution of supermassive black hole binaries with circumbinary accretion discs
- Circumbinary Accretion from Finite and Infinite Disks
- Multimessenger astronomy with pulsar timing and X-ray observations of massive black hole binaries
- Gas-driven inspiral of binaries in thin accretion disks
- Binary Black Hole Accretion During Inspiral and Merger
- Resolving multiple supermassive black hole binaries with pulsar timing arrays
- Characteristic Signatures in the Thermal Emission from Accreting Binary Black Holes
- Insights on the astrophysics of supermassive black hole binaries from pulsar timing observations
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- The MeerKAT Pulsar Timing Array: First Data Release
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- Interactions between multiple supermassive black holes in galactic nuclei: a solution to the final parsec problem
- Black Hole Mergers From Globular Clusters Observable by LISA II: Resolved Eccentric Sources and the Gravitational Wave Background
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- The Formation of the First Massive Black Holes
- Testing the binary hypothesis: pulsar timing constraints on supermassive black hole binary candidates
- Gas pile-up, gap overflow, and Type 1.5 migration in circumbinary disks: application to supermassive black hole binaries
- Selection bias in dynamically-measured super-massive black hole samples: consequences for pulsar timing arrays
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- Probing gas disc physics with LISA: simulations of an intermediate mass ratio inspiral in an accretion disc
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- The nightmare scenario: measuring the stochastic gravitational-wave background from stalling massive black-hole binaries with pulsar-timing arrays
- Resolving multiple supermassive black hole binaries with pulsar timing arrays II: genetic algorithm implementation
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- Long-term Evolution of Binary Orbits Induced by Circumbinary Disks
- Astrophysical constraints on massive black hole binary evolution from Pulsar Timing Arrays
- Discovery of a Candidate Binary Supermassive Black Hole in a Periodic Quasar from Circumbinary Accretion Variability
- Constraints on Individual Supermassive Black Hole Binaries from Pulsar Timing Array Limits on Continuous Gravitational Waves
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- Lighthouse in the Dust: Infrared Echoes of Periodic Emission from Massive Black Hole Binaries
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- Constraints on Supermassive Black Hole Binaries from JWST and NANOGrav
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- An estimate of the stochastic gravitational wave background from the MassiveBlackII simulation
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- Review of Pulsar Timing Array for Gravitational Wave Research
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- Separating deterministic and stochastic gravitational wave signals in realistic pulsar timing array datasets
- Neural Networks unveiling the properties of gravitational wave background from massive black hole binaries
- Observable Signatures of EMRI Black Hole Binaries Embedded in Thin Accretion Disks
- Improving pulsar-timing solutions through dynamic pulse fitting
- Statistics of the supermassive black hole gravitational wave background anisotropy
- Gravitational wave science with laser interferometers and pulsar timing
- Prospects for gravitational wave astronomy with next generation large-scale pulsar timing arrays
- Self-Interacting Dark-Matter Spikes and the Final-Parsec Problem: Bayesian constraints from the NANOGrav 15-Year Gravitational-Wave Background
- High-Redshift Merger Model for Low-Frequency Gravitational Wave Background
- Gravitational Wave Measurement of the - Intrinsic Scatter at High Redshift