On the observed duration distribution of gamma-ray bursts from collapsars
arXiv:1309.1473 · doi:10.1093/mnras/stt1705
Abstract
The duration of the prompt emission of long gamma-ray bursts is generally considered to be fairly similar to the duration of the activity of the engine in the center of the progenitor star. Here, we investigate the relation between the duration of the engine activity and that of the observed light curve, using inputs from both numerical simulations and observations. We find that the observed burst duration is a good proxy for the engine duration after the time necessary for the jet to break out the star's surface is subtracted. However, the observed duration is a function of the viewing angle and can be significantly shorter than the duration of the engine activity. We also show that the observed, redshift-corrected burst duration evolves only moderately with redshift for both observations and synthetic light curves. We conclude that the broad distribution of the observed duration of long BATSE gamma-ray bursts is mostly accounted for by an engine lasting ~20 s, the dispersion being due to viewing and redshift effects. Our results do not rule out the existence of engines with very long duration. However, we find that they are constrained to be a small minority of the BATSE detected bursts.
6 pages, 6 figures, accepted for publication in MNRAS. One typo corrected in the abstract
References in corpus (10)
- The Supernova -- Gamma-Ray Burst Connection
- A new population of ultra-long duration gamma-ray bursts
- Making a Short Gamma-Ray Burst from a Long one: Implications for the Nature of GRB 060614
- Short vs Long and Collapsars vs. non-Collapsar: a quantitative classification of GRBs
- The ultra-long Gamma-Ray Burst 111209A: the collapse of a blue supergiant?
- The First Survey of X-ray Flares from Gamma Ray Bursts Observed by Swift: Spectral Properties and Energetics
- A Comprehensive Analysis of Fermi Gamma-ray Burst Data: II. -Evolution Patterns and Implications for the Observed Spectrum-Luminosity Relations
- Photospheric emission as the dominant radiation mechanism in long-duration gamma-ray bursts
- X-ray flares and the duration of engine activity in gamma-ray bursts
- Three-dimensional AMR simulations of long-duration Gamma-Ray Burst jets inside massive progenitor stars
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