Proving the short-wavelength approximation in Pulsar Timing Array gravitational-wave background searches
arXiv:1806.06979 · doi:10.1088/2399-6528/aae06d
Abstract
A low-frequency gravitational-wave background (GWB) from the cosmic merger history of supermassive black holes is expected to be detected in the next few years by pulsar timing arrays. A GWB induces distinctive correlations in the pulsar residuals --- the expected arrival time of the pulse less its actual arrival time. Simplifying assumptions are made in order to write an analytic expression for this correlation function, called the Hellings and Downs curve for an isotropic GWB, which depends on the angular separation of the pulsar pairs, the gravitational-wave frequency considered, and the distance to the pulsars. This is called the short-wavelength approximation, which we prove here rigorously and analytically for the first time.
10 pages, 2 figures
References in corpus (8)
- Multi-messenger Observations of a Binary Neutron Star Merger
- Laser Interferometer Space Antenna
- Gravitational-wave sensitivity curves
- The NANOGrav 11-year Data Set: High-precision timing of 45 Millisecond Pulsars
- The NANOGrav 11-year Data Set: Pulsar-timing Constraints On The Stochastic Gravitational-wave Background
- Upper bounds on the low-frequency stochastic gravitational wave background from pulsar timing observations: current limits and future prospects
- The Local Nanohertz Gravitational-Wave Landscape From Supermassive Black Hole Binaries
- Pulsars probe the low-frequency gravitational sky: Pulsar Timing Arrays basics and recent results
Cited by in corpus (7)
- The NANOGrav 15-year Data Set: Evidence for a Gravitational-Wave Background
- The Astrophysics of Nanohertz Gravitational Waves
- Fisher formalism for anisotropic gravitational-wave background searches with pulsar timing arrays
- Evaluating the prevalence of spurious correlations in pulsar timing array datasets
- Pulsar-timing measurement of the circular polarization of the stochastic gravitational-wave background
- Gravitational Waves, Extreme Astrophysics, and Fundamental Physics with Precision Pulsar Timing
- Flattened bispectrum of the scalar-induced gravitational waves