English

Astrophysics Milestones For Pulsar Timing Array Gravitational Wave Detection

High Energy Astrophysical Phenomena 2021-05-05 v2 Astrophysics of Galaxies General Relativity and Quantum Cosmology

Abstract

The NANOGrav Collaboration reported strong Bayesian evidence for a common-spectrum stochastic process in its 12.5-yr pulsar timing array dataset, with median characteristic strain amplitude at periods of a year of Ayr=1.920.55+0.75×1015A_{\rm yr} = 1.92^{+0.75}_{-0.55} \times 10^{-15}. However, evidence for the quadrupolar Hellings \& Downs interpulsar correlations, which are characteristic of gravitational wave signals, was not yet significant. We emulate and extend the NANOGrav dataset, injecting a wide range of stochastic gravitational wave background (GWB) signals that encompass a variety of amplitudes and spectral shapes, and quantify three key milestones: (I) Given the amplitude measured in the 12.5 yr analysis and assuming this signal is a GWB, we expect to accumulate robust evidence of an interpulsar-correlated GWB signal with 15--17 yrs of data, i.e., an additional 2--5 yrs from the 12.5 yr dataset; (II) At the initial detection, we expect a fractional uncertainty of 40%40\% on the power-law strain spectrum slope, which is sufficient to distinguish a GWB of supermassive black-hole binary origin from some models predicting more exotic origins;(III) Similarly, the measured GWB amplitude will have an uncertainty of 44%44\% upon initial detection, allowing us to arbitrate between some population models of supermassive black-hole binaries. In addition, power-law models are distinguishable from those having low-frequency spectral turnovers once 20~yrs of data are reached. Even though our study is based on the NANOGrav data, we also derive relations that allow for a generalization to other pulsar-timing array datasets. Most notably, by combining the data of individual arrays into the International Pulsar Timing Array, all of these milestones can be reached significantly earlier.

Keywords

Cite

@article{arxiv.2010.11950,
  title  = {Astrophysics Milestones For Pulsar Timing Array Gravitational Wave Detection},
  author = {Nihan S. Pol and Stephen R. Taylor and Luke Zoltan Kelley and Sarah J. Vigeland and Joseph Simon and Siyuan Chen and Zaven Arzoumanian and Paul T. Baker and Bence Bécsy and Adam Brazier and Paul R. Brook and Sarah Burke-Spolaor and Shami Chatterjee and James M. Cordes and Neil J. Cornish and Fronefield Crawford and H. Thankful Cromartie and Megan E. DeCesar and Paul B. Demorest and Timothy Dolch and Elizabeth C. Ferrara and William Fiore and Emmanuel Fonseca and Nathan Garver-Daniels and Deborah C. Good and Jeffrey S. Hazboun and Ross J. Jennings and Megan L. Jones and Andrew R. Kaiser and David L. Kaplan and Joey Shapiro Key and Michael T. Lam and T. Joseph W. Lazio and Jing Luo and Ryan S. Lynch and Dustin R. Madison and Alexander McEwen and Maura A. McLaughlin and Chiara M. F. Mingarelli and Cherry Ng and David J. Nice and Timothy T. Pennucci and Scott M. Ransom and Paul S. Ray and Brent J. Shapiro-Albert and Xavier Siemens and Ingrid H. Stairs and Daniel R. Stinebring and Joseph K. Swiggum and Michele Vallisneri and Haley Wahl and Caitlin A. Witt},
  journal= {arXiv preprint arXiv:2010.11950},
  year   = {2021}
}

Comments

15 pages, 7 figures

R2 v1 2026-06-23T19:34:05.069Z