Gravitational waves and pulsar timing: stochastic background, individual sources and parameter estimation
arXiv:1001.3161 · doi:10.1088/0264-9381/27/8/084016
Abstract
Massive black holes are key ingredients of the assembly and evolution of cosmic structures. Pulsar Timing Arrays (PTAs) currently provide the only means to observe gravitational radiation from massive black hole binary systems with masses >10^7 solar masses. The whole cosmic population produces a signal consisting of two components: (i) a stochastic background resulting from the incoherent superposition of radiation from the all the sources, and (ii) a handful of individually resolvable signals that raise above the background level and are produced by sources sufficiently close and/or massive. Considering a wide range of massive black hole binary assembly scenarios, we investigate both the level and shape of the background and the statistics of resolvable sources. We predict a characteristic background amplitude in the interval h_c(f = 10^-8 Hz)~5*10^-16 - 5*10^-15, within the detection range of the complete Parkes PTA. We also quantify the capability of PTAs of measuring the parameters of individual sources, focusing on monochromatic signals produced by binaries in circular orbit. We investigate how the results depend on the number and distribution of pulsars in the array, by computing the variance-covariance matrix of the parameter measurements. For plausible Square Kilometre Array (SKA) observations (100 pulsars uniformly distributed in the sky), and assuming a coherent signal-to-noise ratio of 10, the sky position of massive black hole binaries can be located within a ~40deg^2 error box, opening promising prospects for detecting a putative electromagnetic counterpart to the gravitational wave emission. The planned SKA, can plausibly observe these unique systems, although the number of detections is likely to be small. (Abridged)
11 pages, 4 figures. Submitted to CQGra. Proceedings to the AMALDI8 conference
References in corpus (8)
- The stochastic gravitational-wave background from massive black hole binary systems: implications for observations with Pulsar Timing Arrays
- Upper bounds on the low-frequency stochastic gravitational wave background from pulsar timing observations: current limits and future prospects
- Gravitational waves from resolvable massive black hole binary systems and observations with Pulsar Timing Arrays
- Black Hole Growth in Hierarchical Galaxy Formation
- The recycling of gas and metals in galaxy formation: predictions of a dynamical feedback model
- On the inconsistency between the black hole mass function inferred from M_bh-sigma and M_bh-L correlation
- The Parkes Pulsar Timing Array
- The Most Massive Black Holes in the Universe: Effects of Mergers in Massive Galaxy Clusters
Cited by in corpus (42)
- Pulsar timing signal from ultralight scalar dark matter
- Stochastic gravitational waves associated with the formation of primordial black holes
- Constraints on cosmic string tension imposed by the limit on the stochastic gravitational wave background from the European Pulsar Timing Array
- Massive black hole binaries: dynamical evolution and observational signatures
- Gravitational waves and stalled satellites from massive galaxy mergers at z <= 1
- Constraints of relic gravitational waves by Pulsar Timing Array: Forecasts for the FAST and SKA projects
- Constraints on ultralight scalar dark matter from pulsar timing
- Detection of eccentric supermassive black hole binaries with pulsar timing arrays: Signal-to-noise ratio calculations
- Pulsar Timing Array Analysis for Black Hole Backgrounds
- Detecting eccentric supermassive black hole binaries with pulsar timing arrays: Resolvable source strategies
- Detecting Relic Gravitational Waves by Pulsar Timing Arrays: Effects of Cosmic Phase Transitions and Relativistic Free-Streaming Gases
- Estimating the sensitivity of pulsar timing arrays
- Gravitational wave signal from massive gravity
- The puzzling case of the radio-loud QSO 3C 186: a gravitational wave recoiling black hole in a young radio source?
- Pulsar timing arrays as imaging gravitational wave telescopes: angular resolution and source (de)confusion
- Forecast constraints on cosmic strings from future CMB, pulsar timing and gravitational wave direct detection experiments
- Constraints on Black Hole/Host Galaxy Co-evolution and Binary Stalling Using Pulsar Timing Arrays
- Modelling and mitigating refractive propagation effects in precision pulsar timing observations
- Versatile Directional Searches for Gravitational Waves with Pulsar Timing Arrays
- Pulsar Timing and its Application for Navigation and Gravitational Wave Detection
- Gravitational waves from domain walls in the next-to-minimal supersymmetric standard model
- Constraints on Individual Supermassive Black Hole Binaries from Pulsar Timing Array Limits on Continuous Gravitational Waves
- Pulsar timing array observations of gravitational wave source timing parallax
- Optimizing Pulsar Timing Arrays to Maximize Gravitational Wave Single Source Detection: a First Cut
- Imprints of Supermassive Black Hole Evolution on the Spectral and Spatial Anisotropy of Nano-Hertz Stochastic Gravitational-Wave Background
- Constraining a black hole companion for M87* through imaging by the Event Horizon Telescope
- Weighing The Evidence For A Gravitational-Wave Background In The First International Pulsar Timing Array Data Challenge
- Pulsar Timing Array Experiments
- On Detecting Nearby Nano-Hertz Gravitational Wave Sources via Pulsar Timing Arrays
- On the complementarity of pulsar timing and space laser interferometry for the individual detection of supermassive black hole binaries
- The Abundance of X-Shaped Radio Sources: Implications for the Gravitational Wave Background
- Pulsar Timing Residuals Induced by Gravitational Waves from Single Non-evolving Supermassive Black Hole Binaries with Elliptical Orbits
- Damping of long wavelength gravitational waves by the intergalactic medium
- The impact of a stochastic gravitational-wave background on pulsar timing parameters
- The sensitivity of pulsar timing arrays
- Anisotropy of Nanohertz Gravitational Wave Background and Source Clustering from Supermassive Binary Black Holes Based on Cosmological Simulation
- Realistic assessment of a single gravitational wave source localization taking into account precise pulsar distances with pulsar timing arrays
- Detectability of dark matter density distribution via gravitational waves from binary black holes in the Galactic center
- An estimate of the gravitational-wave background from the observed cosmological distribution of quasars
- Pulsar timing residuals due to individual non-evolving gravitational wave sources
- A Population Study for Searching Supermassive Binary Black Holes in Active Galactic Nuclei: Continuum Spectral Features and Periodic Variabilities
- Non canonical polarizations of Gravitational Waves