Extending gravitational wave burst searches with pulsar timing arrays
arXiv:1201.3573 · doi:10.1111/j.1365-2966.2012.21655.x
Abstract
Pulsar timing arrays (PTAs) are being used to search for very low frequency gravitational waves. A gravitational wave signal appears in pulsar timing residuals through two components: one independent of and one dependent on the pulsar's distance, called the 'Earth term' (ET) and 'pulsar term' (PT), respectively. The signal of a burst (or transient) gravitational wave source in pulsars' residuals will in general have the Earth and pulsar terms separated by times of the order of the time of flight from the pulsar to the Earth. Therefore, both terms are not observable over a realistic observation span, but the ETs observed in many pulsars should be correlated. We show that pairs (or more) of pulsars can be aligned in such a way that the PTs caused by a source at certain sky locations can arrive at Earth within a time window short enough to be captured during a realistic observation span. We find that for the pulsars within the International Pulsar Timing Array (IPTA) ~67 per cent of the sky produces such alignments for pulsars terms separated by less than 10 years. We compare estimates of the source event rate that would be required to observe one signal in the IPTA if searching for the correlated ETs, or in searching via the PTs, and find that event rates would need to be about two orders of magnitude higher to observe an event with the PTs than the ETs. We also find that an array of hundreds of thousands of pulsars would be required to achieve similar numbers of observable events in PT or ET searches. This disfavours PTs being used for all-sky searches, but they could potentially be used target specific sources and be complementary to ET only searches.
version accepted for MNRAS
References in corpus (13)
- Upper bounds on the low-frequency stochastic gravitational wave background from pulsar timing observations: current limits and future prospects
- Coherent method for detection of gravitational wave bursts
- Gravitational waves from resolvable massive black hole binary systems and observations with Pulsar Timing Arrays
- Placing limits on the stochastic gravitational-wave background using European Pulsar Timing Array data
- On measuring the gravitational-wave background using Pulsar Timing Arrays
- Gravitational wave astronomy of single sources with a pulsar timing array
- The Mock LISA Data Challenges: from Challenge 3 to Challenge 4
- Resolving multiple supermassive black hole binaries with pulsar timing arrays
- Prospects for accurate distance measurements of pulsars with the SKA: enabling fundamental physics
- On detection of the stochastic gravitational-wave background using the Parkes pulsar timing array
- An Evidence Based Search Method For Gravitational Waves From Neutron Star Ring-downs
- Practical Methods for Continuous Gravitational Wave Detection using Pulsar Timing Data
- Pulsar Timing Arrays: No longer a Blunt Instrument for Gravitational Wave Detection
Cited by in corpus (7)
- Time-domain Implementation of the Optimal Cross-Correlation Statistic for Stochastic Gravitational-Wave Background Searches in Pulsar Timing Data
- Binary super-massive black hole environments diminish the gravitational-wave signal in the pulsar timing band
- Detection and localization of single-source gravitational waves with pulsar timing arrays
- The NANOGrav 11-Year Data Set: Limits on Gravitational Wave Memory
- Bayesian search for gravitational wave bursts in pulsar timing array data
- On the complementarity of pulsar timing and space laser interferometry for the individual detection of supermassive black hole binaries
- Searching for Gravitational Wave Bursts via Bayesian Nonparametric Data Analysis with Pulsar Timing Arrays