Theoretical Support for the Hydrodynamic Mechanism of Pulsar Kicks
Abstract
The collapse of a massive star's core, followed by a neutrino-driven, asymmetric supernova explosion, can naturally lead to pulsar recoils and neutron star kicks. Here, we present a two-dimensional, radiation-hydrodynamic simulation in which core collapse leads to significant acceleration of a fully-formed, nascent neutron star (NS) via an induced, neutrino-driven explosion. During the explosion, a ~10% anisotropy in the low-mass, high-velocity ejecta lead to recoil of the high-mass neutron star. At the end of our simulation, the NS has achieved a velocity of ~150 km s and is accelerating at ~350 km s, but has yet to reach the ballistic regime. The recoil is due almost entirely to hydrodynamical processes, with anisotropic neutrino emission contributing less than 2% to the overall kick magnitude. Since the observed distribution of neutron star kick velocities peaks at ~300-400 km s, recoil due to anisotropic core-collapse supernovae provides a natural, non-exotic mechanism with which to obtain neutron star kicks.
Keywords
Cite
@article{arxiv.1010.0674,
title = {Theoretical Support for the Hydrodynamic Mechanism of Pulsar Kicks},
author = {J. Nordhaus and T. D. Brandt and A. Burrows and E. Livne and C. D. Ott},
journal= {arXiv preprint arXiv:1010.0674},
year = {2015}
}
Comments
Replaced with Phys. Rev. D accepted version