Expanding Relativistic Shells and Gamma-Ray Burst Temporal Structure
Abstract
Many models of cosmological gamma-ray bursts involve the sudden release of erg which produce shells which expand at relativistic speeds (Lorentz factors of ). We investigate the kinematic limits on the source size due to the observed time structure in three types of bursts: short spikes, FREDs (Fast Rise, Exponentail decay), and long complex bursts. The emitting shell keeps up with the photons it produces reducing apparent durations by so that source sizes can be very large (c\Delta T\Delta T\Gamma^{-1}$, we show that the curvature of the shell within that angle creates delays comparable to those associated with the duration of the event. As a result, most bursts should be like FREDs with sharp rises related to how long the shell emits and power law decays related to how long the shell expanded before becoming gamma-ray active. Few bursts have the long decay phases required for large shells resulting in unacceptable high densities for ISM objects to cause the observed subpeaks. To be consistent with the observations, perhaps very thick shells (which act as parallel slabs) are required to avoid the effects of the curvature, or the duration is dictated by a central engine.
Cite
@article{arxiv.astro-ph/9607163,
title = {Expanding Relativistic Shells and Gamma-Ray Burst Temporal Structure},
author = {E. E. Fenimore and Claudine Madras and Sergei Nayakshin},
journal= {arXiv preprint arXiv:astro-ph/9607163},
year = {2008}
}
Comments
Tex file, 30 pages, 7 Postscript figures, in press ApJ, Vol 473