2008ApJ...684..430D


Query : 2008ApJ...684..430D

2008ApJ...684..430D - Astrophys. J., 684, 430-448 (2008/September-1)

Nonthermal synchrotron radiation from gamma-ray burst external shocks and the X-ray flares observed with Swift.

DERMER C.D.

Abstract (from CDS):

An analysis of the interaction between a spherical relativistic blast-wave shell and a stationary cloud with a spherical cap geometry is performed assuming that the cloud width Δcl≪x, where x is the distance of the cloud from the gamma-ray burst (GRB) explosion center. The interaction is divided into three phases: (1) a collision phase with both forward and reverse shocks; (2) a penetration phase when either the reverse shock has crossed the shell while the forward shock continues to cross the cloud, or vice versa; and (3) an expansion phase when, both shocks having crossed the cloud and shell, the shocked fluid expands. Temporally evolving spectral energy distributions (SEDs) are calculated for the problem of the interaction of a blast-wave shell with clouds that subtend large and small angles compared with the Doppler (-cone) angle θ0=1/Γ0, where Γ0 is the coasting Lorentz factor. The Lorentz factor evolution of the shell/cloud collision is treated in the adiabatic limit. The behavior of the light curves and SEDs on, e.g., Γ0, shell-width parameter η, where Δ0+ηx/Γ20 is the blast-wave shell width, and properties and locations of the cloud is examined. Short-timescale variability in GRB light curves, including ∼100 keV γ-ray pulses observed with BATSE and delayed ∼1 keV X-ray flares found with Swift, can be explained by emissions from an external shock formed by the GRB blast wave colliding with small density inhomogeneities in the ``frozen-pulse'' approximation (η⟶0), and perhaps in the thin-shell approximation (η~1/Γ0), but not when η~1. If the frozen-pulse approximation is valid, then external shock processes could make the dominant prompt and afterglow emissions in GRB light curves consistent with short-delay two-step collapse models for GRBs.

Abstract Copyright:

Journal keyword(s): Gamma Rays: Bursts - Hydrodynamics - Radiation Mechanisms: Nonthermal - Relativity

Simbad objects: 16

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Number of rows : 16
N Identifier Otype ICRS (J2000)
RA
ICRS (J2000)
DEC
Mag U Mag B Mag V Mag R Mag I Sp type #ref
1850 - 2024
#notes
1 GRB 050822 gB 03 24 27.240 -46 01 59.20     20.82     ~ 108 0
2 GRB 050916 gB 09 03 57.270 -51 25 42.51           ~ 45 0
3 GRB 050502B gB 09 30 10.024 +16 59 48.07           ~ 161 0
4 GRB 050319 gB 10 16 47.900 +43 32 53.80   18.02 17.01     ~ 259 0
5 GRB 050416 gB 12 33 54.600 +21 03 26.69     19.12     ~ 285 1
6 GRB 050915B gB 14 36 25.890 -67 24 33.21           ~ 55 0
7 GRB 050802 gB 14 37 05.820 +27 47 12.62 16.85 17.38 16.97     ~ 174 0
8 GRB 050401 gB 16 31 28.84 +02 11 14.5           ~ 336 0
9 GRB 050814 gB 17 36 45.390 +46 20 21.60           ~ 153 0
10 SN 1998bw SN* 19 35 03.17 -52 50 46.1   14.09       SNIc 1827 2
11 GRB 050607 gB 20 00 42.790 +09 08 31.50   19.55 18.94     ~ 98 0
12 GRB 050315 gB 20 25 54.100 -42 36 02.19           ~ 216 0
13 GRB 050713B gB 20 31 15.570 +60 56 43.70           ~ 71 0
14 GRB 050922C gB 21 09 33.000 -08 45 30.10 15.15 15.86 14.69     ~ 283 0
15 GRB 050713A gB 21 22 09.530 +77 04 29.50           ~ 121 0
16 GRB 050820A gB 22 29 38.110 +19 33 37.10 18.33 19.00 18.47     ~ 387 0

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