English

Curvature Effects in Gamma Ray Burst Colliding Shells

Astrophysics 2009-11-10 v2

Abstract

An elementary kinematic model for emission produced by relativistic spherical colliding shells is studied. The case of a uniform blast-wave shell with jet opening angle θj1/Γ\theta_j \gg 1/\Gamma is considered, where Γ\Gamma is the Lorentz factor of the emitting shell. The shell, with comoving width Δr\Delta r^\prime, is assumed to be illuminated for a comoving time Δt\Delta t^\prime and to radiate a broken power-law νLν\nu L_\nu spectrum peaking at comoving photon energy \epk,0\e_{pk,0}^{\prime}. Synthetic GRB pulses are calculated, and the relation between energy flux and internal comoving energy density is quantified. Curvature effects dictate that the measured νFν\nu F_\nu flux at the measured peak photon energy \epk\e_{pk} is proportional to \epk3\e^3_{pk} in the declining phase of a GRB pulse. Possible reasons for discrepancy with observations are discussed, including adiabatic and radiative cooling processes that extend the decay timescale, a nonuniform jet, or the formation of pulses by external shock processes. A prediction of a correlation between prompt emission properties and times of the optical afterglow beaming breaks is made for a cooling model, which can be tested with Swift.

Keywords

Cite

@article{arxiv.astro-ph/0403508,
  title  = {Curvature Effects in Gamma Ray Burst Colliding Shells},
  author = {Charles D. Dermer},
  journal= {arXiv preprint arXiv:astro-ph/0403508},
  year   = {2009}
}

Comments

13 pages, 5 figures, added back-of-envelope estimate of curvature relation, minor corrections, ApJ, in press, v. 614, 10 Oct 2004

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