English

Neutrino Losses in Type I Thermonuclear X-ray Bursts: An Improved Nuclear Energy Generation Approximation

High Energy Astrophysical Phenomena 2019-01-16 v3

Abstract

Type I X-ray bursts are thermonuclear explosions on the surface of accreting neutron stars. Hydrogen rich X-ray bursts burn protons far from the line of stability and can release energy in the form of neutrinos from β\beta-decays. We have estimated, for the first time, the neutrino fluxes of Type I bursts for a range of initial conditions based on the predictions of a 1D implicit hydrodynamics code, KEPLER, which calculates the complete nuclear reaction network. We find that neutrino losses are between 6.7×1056.7 \times 10^{-5} and 0.140.14 of the total energy per nucleon, Qnuc_{nuc}, depending upon the hydrogen fraction in the fuel. These values are significantly below the 35%35\,\% value for neutrino losses often adopted in recent literature for the rp-process. The discrepancy arises because it is only at β\beta-decays that 35%\approx35\,\% of energy is lost due to neutrino emission, whereas there are no neutrino losses in (p,γ)(p,\gamma) and (α,p)(\alpha,p) reactions. Using the total measured burst energies from KEPLER for a range of initial conditions, we have determined an approximation formula for the total energy per nucleon released during an X-ray burst, Qnuc_{nuc}=1.31+6.95Xˉ1.92Xˉ2\bar{X} - 1.92\bar{X}^2 MeV/nucleon, where Xˉ\bar{X} is the average hydrogen mass fraction of the ignition column, with an RMS error of 0.0520.052\,Mev/nucleon. We provide a detailed analysis of the nuclear energy output of a burst and find an incomplete extraction of mass excess in the burst fuel, with 14%14\,\% of the mass excess in the fuel not being extracted.

Keywords

Cite

@article{arxiv.1808.02225,
  title  = {Neutrino Losses in Type I Thermonuclear X-ray Bursts: An Improved Nuclear Energy Generation Approximation},
  author = {Adelle J. Goodwin and Alexander Heger and Duncan K. Galloway},
  journal= {arXiv preprint arXiv:1808.02225},
  year   = {2019}
}

Comments

8 pages, 5 figures, published in ApJ