Particle acceleration in relativistic magnetic flux-merging events
Maxim Lyutikov (Purdue), Serguei Komissarov (Leeds), Lorenzo Sironi, (Columbia), Oliver Porth (Goethe-Universitat)

TL;DR
This paper investigates particle acceleration during relativistic magnetic flux tube mergers, revealing two main acceleration stages with implications for high-energy astrophysical phenomena.
Contribution
It introduces a detailed analysis of particle acceleration mechanisms during flux tube mergers, highlighting the roles of X-point collapse and island merging in relativistic plasmas.
Findings
Fast X-point collapse accelerates particles with electric fields exceeding magnetic fields.
Power-law spectra depend on magnetization, with harder spectra at higher magnetization.
Maximal particle energies can surpass the average magnetic energy per particle.
Abstract
Using analytical and numerical methods (fluid and particle-in-cell simulations) we study a number of model problems involving merger of magnetic flux tubes in relativistic magnetically-dominated plasma. Mergers of current-carrying flux tubes (exemplified by the two dimensional `ABC' structures) and zero total current magnetic flux tubes are considered. In all cases regimes of spontaneous and driven evolution are investigated. We identify two stages of particle acceleration during flux mergers: (i) fast explosive prompt X-point collapse and (ii) ensuing island merger. The fastest acceleration occurs during the initial catastrophic X-point collapse, with the reconnection electric field of the order of the magnetic field. During the X-point collapse particles are accelerated by charge-starved electric fields, which can reach (and even exceed) values of the local magnetic field. The…
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