Stability analysis of relativistic jets from collapsars and its implications on the short-term variability of gamma-ray bursts
arXiv:astro-ph/0209575 · doi:10.1051/0004-6361:20021367
Abstract
We consider the transverse structure and stability properties of relativistic jets formed in the course of the collapse of a massive progenitor. Our numerical simulations show the presence of a strong shear in the bulk velocity of such jets. This shear can be responsible for a very rapid shear--driven instability that arises for any velocity profile. This conclusion has been confirmed both by numerical simulations and theoretical analysis. The instability leads to rapid fluctuations of the main hydrodynamical parameters (density, pressure, Lorentz factor, etc.). However, the perturbations of the density are effectively decoupled from those of the pressure because the beam of the jet is radiation--dominated. The characteristic growth time of instability is much shorter than the life time of the jet and, therefore, may lead to a complete turbulent beam. In the course of the non-linear evolution, these fluctuations may yield to internal shocks which can be randomly distributed in the jet. In the case that internal shocks in a ultrarelativistic outflow are responsible for the observed phenomenology of gamma-ray bursts, the proposed instability can well account for the short-term variability of gamma-ray light curves down to milliseconds.
8 pages, 5 figures. Received 2 July 2002 / Accepted 30 August 2002 in A&A
Cited by in corpus (31)
- The Physics of Gamma-Ray Bursts
- General Relativistic Magnetohydrodynamic Simulations of Jet Formation and Large-Scale Propagation from Black Hole Accretion Systems
- Formation rates of core collapse SNe and GRBs
- An HLLC Solver for Relativistic Flows -- II. Magnetohydrodynamics
- RAM: A Relativistic Adaptive Mesh Refinement Hydrodynamics Code
- The origin and propagation of variability in the outflows of long duration gamma-ray bursts
- Prompt and Afterglow Emission Properties of Gamma-Ray Bursts with Spectroscopically Identified Supernovae
- Three-dimensional AMR simulations of long-duration Gamma-Ray Burst jets inside massive progenitor stars
- Angular Energy Distribution of Collapsar-Jets
- Nonlinear stability of relativistic sheared planar jets
- Magnetorotational core collapse of possible GRB progenitors. II. Formation of protomagnetars and collapsars
- A powerful hydrodynamic booster for relativistic jets
- Development of General Relativistic Magnetohydrodynamic Code and its Application to Central Engine of Long Gamma-Ray Bursts
- Collimated Jet or Expanding Outflow: Possible Origins of GRBs and X-Ray Flashes
- Resonant Kelvin-Helmholtz modes in sheared relativistic flows
- Hydrodynamic properties of gamma-ray bursts outflows deduced from thermal component
- Photospheric Emission in Gamma-Ray Bursts
- Linear Theory of the Rayleigh-Taylor Instability at a Discontinuous Surface of a Relativistic Flow
- Intermittent hydrodynamic jets in collapsars do not produce GRBs
- A VLA Study of High-redshift GRBs II - The Complex Radio Afterglow of GRB 140304A: Shell Collisions and Two Reverse Shocks
- Observational Effects of Anomalous Boundary Layers in Relativistic Jets
- Rotating BHs as Central Engines of Long GRBs: Faster is Better
- Intermittent mildly magnetized jets as the source of GRBs
- Precursors and Main-bursts of Gamma Ray Bursts in a Hypernova Scenario
- Critical angular momentum distributions in collapsars: quiescent periods from accretion state transitions in long gamma-ray bursts
- Nucleosynthesis in Baryon-Rich Outflows Associated With Gamma-Ray Bursts
- Self-consistent MHD simulation of jet launching in a neutron star - white dwarf merger
- Generation of the magnetic field in jets
- The lag and duration-luminosity relations of gamma-ray burst pulses
- Steep Decay Phase Shaped by the Curvature Effect. II. Spectral Evolution
- Validation of Radiative Transfer Computation with Monte Carlo Method for Ultra-Relativistic Background Flow