English

On the formation history of Galactic double neutron stars

Solar and Stellar Astrophysics 2018-09-19 v2 High Energy Astrophysical Phenomena

Abstract

Double neutron stars (DNSs) have been observed as Galactic radio pulsars, and the recent discovery of gravitational waves from the DNS merger GW170817 adds to the known DNS population. We perform rapid population synthesis of massive binary stars and discuss model predictions, including formation rates, mass distributions, and delay time distributions. We vary assumptions and parameters of physical processes such as mass transfer stability criteria, supernova kick distributions, remnant mass distributions and common-envelope energetics. We compute the likelihood of observing the orbital period-eccentricity distribution of the Galactic DNS population under each of our population synthesis models, allowing us to quantitatively compare the models. We find that mass transfer from a stripped post-helium-burning secondary (case BB) onto a neutron star is most likely dynamically stable. We also find that a natal kick distribution composed of both low (Maxwellian σ=30 km s1\sigma=30\rm~km~s^{-1}) and high (σ=265 km s1\sigma=265\rm~km~s^{-1}) components is preferred over a single high-kick component. We find that the observed DNS mass distribution can place strong constraints on model assumptions.

Keywords

Cite

@article{arxiv.1805.07974,
  title  = {On the formation history of Galactic double neutron stars},
  author = {Alejandro Vigna-Gómez and Coenraad J. Neijssel and Simon Stevenson and Jim W. Barrett and Krzysztof Belczynski and Stephen Justham and Selma E. de Mink and Bernhard Müller and Philipp Podsiadlowski and Mathieu Renzo and Dorottya Szécsi and Ilya Mandel},
  journal= {arXiv preprint arXiv:1805.07974},
  year   = {2018}
}

Comments

23 pages, 10 main figures, 2 tables, 3 figures in appendices; typos added, references added; Formation rates corrected; Table 1 has an extra column