Properties of the First-order Fermi acceleration in fast magnetic reconnection driven by turbulence in collisional MHD flows
arXiv:1609.08598 · doi:10.1093/mnras/stw2276
Abstract
Fast magnetic reconnection may occur in different astrophysical sources, producing flare-like emission and particle acceleration. Currently, this process is being studied as an efficient mechanism to accelerate particles via a first-order Fermi process. In this work we analyse the acceleration rate and the energy distribution of test particles injected in three-dimensional magnetohydrodynamical (MHD) domains with large-scale current sheets where reconnection is made fast by the presence of turbulence. We study the dependence of the particle acceleration time with the relevant parameters of the embedded turbulence, i.e., the Alfvén speed , the injection power and scale (). We find that the acceleration time follows a power-law dependence with the particle kinetic energy: , with for a vast range of values of . The acceleration time decreases with the Alfvén speed (and therefore with the reconnection velocity) as expected, having an approximate dependence , with for particles reaching kinetic energies between , respectively. Furthermore, we find that the acceleration time is only weakly dependent on the and parameters of the turbulence. The particle spectrum develops a high-energy tail which can be fitted by a hard power-law already in the early times of the acceleration, in consistency with the results of kinetic studies of particle acceleration by magnetic reconnection in collisionless plasmas.
15 pages, 15 figures, accepted by MNRAS
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- On the broad-band synchrotron spectra of pulsar wind nebulae
- Multi-messenger emission from magnetic reconnection in blazar jets: the case of TXS 0506+056
- The impact of resistive electric fields on particle acceleration in reconnection layers
- Colliding-Wind Binaries as a Source of TeV Cosmic Rays
- Ultra-high-energy cosmic ray acceleration by magnetic reconnection in relativistic jets and the origin of very high energy emission
- On the Impact of the Numerical Method on Magnetic Reconnection and Particle Acceleration -- I. The MHD case