Neutrino pair annihilation near accreting, stellar-mass black holes
arXiv:astro-ph/0608543 · doi:10.1051/0004-6361:20066293
Abstract
We investigate the energy-momentum deposition due to neutrino-antineutrino annihilation in the vicinity of axisymmetric, accreting black holes (BHs) by numerically ray-tracing neutrino trajectories in a Kerr space-time. Hyperaccreting stellar-mass BHs are widely considered as energy sources that can drive ultrarelativistic outflows with the potential to produce gamma-ray bursts. In contrast to earlier works, we provide an extensive and detailed parameter study of the influence of general relativistic (GR) effects and of different neutrinosphere geometries. These include idealized thin disks, tori, and spheres, or are constructed as non-selfgravitating equilibrium matter distributions for varied BH rotation. Considering isothermal neutrinospheres with the same temperature and surface area, we confirm previous results that compared to Newtonian calculations, GR effects increase the annihilation rate measured by an observer at infinity by a factor of 2 when the neutrinosphere is a disk. However, in case of a torus and a sphere the influence of GR effects is globally only ~25%, although locally it can be significantly larger. Independent of whether GR effects are included, disks yield the highest energy deposition rates, followed by tori and, with the lowest rates, spheres. For disks and tori, increasing the angular momentum of the BH from 0 to 1 enhances the energy deposition rate measured by an observer at infinity by roughly a factor of 2 due to the shrinking inner radius of the neutrinosphere. (abridged)
18 pages, 8 figures, accepted by A&A
References in corpus (1)
Cited by in corpus (29)
- Comprehensive nucleosynthesis analysis for ejecta of compact binary mergers
- Neutrino signatures and the neutrino-driven wind in Binary Neutron Star Mergers
- Multi-messenger picture of compact binary mergers
- GRB170817A associated with GW170817: multifrequency observations and modeling of prompt gamma-ray emission
- Development of General Relativistic Magnetohydrodynamic Code and its Application to Central Engine of Long Gamma-Ray Bursts
- Coalescence of black hole--neutron star binaries
- Magnetic Flux of Progenitor Stars Sets Gamma-ray Burst Luminosity and Variability
- Hyperaccreting Neutron-Star Disks and Neutrino Annihilation
- Long-Term Evolution of Slowly Rotating Collapsar in Special Relativistic Magnetohydrodynamics
- Can black-hole neutrino-cooled disks power short gamma-ray bursts?
- Jet formation in GRBs: A semi-analytic model of MHD flow in Kerr geometry with realistic plasma injection
- Testing the neutrino annihilation model for launching GRB jets
- Observational Effects of Anomalous Boundary Layers in Relativistic Jets
- Spontaneous Lorentz symmetry breaking effects on GRBs jets arising from neutrino pair annihilation process near a black hole
- Nuclear Statistical Equilibrium neutrino spectrum
- Central Engine of Late-Time X-ray Flares with Internal Origin
- Astrophysical Implications of Neutron Star Inspiral and Coalescence
- On Stellar Evolution In A Neutrino Hertzsprung-Russell Diagram
- Properties of neutrino transfer in a deformed remnant of neutron star merger
- GRB 180418A: A possibly-short GRB with a wide-angle outflow in a faint host galaxy
- Neutrino pair annihilation () in the presence of quintessence surrounding a black hole
- Neutrino pair annihilation above black-hole accretion disks in modified gravity
- A General Relativistic study of the neutrino path and calculation of minimum photosphere for different stars
- Creation of electron-positron pairs at excited Landau levels by neutrino in a strong magnetic field
- The neutrino pair annihilation ()around a massive source with an global monopole
- Energizing gamma ray bursts via mediated neutrino heating
- Exploring GRBs and supernovae connection: does a superluminous hypernova population exist?
- Nonuniform Particle Injection into Black Hole Jets by Radiative Magnetic Reconnection
- Gamma-ray Bursts