Adding ions to a magnetized relativistic wind lets inductive acceleration push both ions and leptons to Hillas-limit energies in a shorter distance than lepton-only winds.
A new mechanism for dissipation of alternating fields in Poynting dominated outflows
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abstract
Reconnection of alternating magnetic fields is an important energy transformation mechanism in Poynting dominated outflows. We show that the reconnection is facilitated by the Kruskal-Schwarzschild instability of current sheets separating the oppositely directed fields. This instability, which is a magnetic counterpart of the Rayleigh-Taylor instability, develops if the flow is accelerated. Then the plasma drips out of the current sheet providing conditions for rapid reconnection. Since the magnetic dissipation leads to the flow acceleration, the process is self-sustaining. In pulsar winds, this process could barely compete with the earlier proposed dissipation mechanisms. However, the novel mechanism turns out to be very efficient at AGN and GRB conditions.
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Inductive acceleration of ions in Poynting-flux dominated outflows
Adding ions to a magnetized relativistic wind lets inductive acceleration push both ions and leptons to Hillas-limit energies in a shorter distance than lepton-only winds.