Fermi Gamma-Ray Pulsars: Understanding the High-Energy Emission from Dissipative Magnetospheres
arXiv:1702.03069 · doi:10.3847/1538-4357/aa713a
Abstract
Based on the Fermi observational data we reveal meaningful constraints for the dependence of the macroscopic conductivity of dissipative pulsar magnetosphere models on the corresponding spin-down rate, . Our models are refinements of the FIDO (Force-Free Inside, Dissipative Outside) models whose dissipative regions are restricted on the equatorial current-sheet outside the light-cylinder. Taking into account the observed cutoff-energies of all the Fermi-pulsars and assuming that a) the corresponding ray pulsed emission is due to curvature radiation at the radiation-reaction-limit regime and b) this emission is produced at the equatorial current-sheet near the light-cylinder, we show that the \emph{Fermi}-data provide clear indications about the corresponding accelerating electric-field components. A direct comparison between the \emph{Fermi} cutoff-energies and the model ones reveals that increases with for high -values while it saturates for low ones. This comparison indicates also that the corresponding gap-width increases toward low -values. Assuming the Goldreich-Julian flux for the emitting particles we calculate the total ray luminosity . A comparison between the dependence of the Fermi -values and the model ones on indicates an increase of the emitting particle multiplicity with . Our modeling guided by the \emph{Fermi}-data alone, enhances our understanding of the physical mechanisms behind the high energy emission in pulsar magnetospheres.
7 pages, 4 figures, accepted in ApJ
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