Electron acceleration in relativistic GRB shocks
Mikhail V. Medvedev
Abstract
The shock model of gamma-ray bursts (GRBs) contains two equipartition parameters: the magnetic energy density and the kinetic energy density of the electrons relative to the total energy density of the shock, "epsilonB" and "epsilone", respectively. These are free parameters within the model. Whereas the Weibel shock theory and numerical simulations fix "epsilonB" at the level of ~few times(10-3...10-4), no understanding of "epsilone" exists so far. Here we demonstrate that it inevitably follows from the theory that "epsilone"~(epsilonB)(1/2). The GRB afteglow data fully agree with this theoretical prediction. Our result explains why the electrons are close to equipartition in GRBs. The "epsilone"-"epsilonB" relation can potentially be used to reduce the number of free parameters in afterglow models.
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