4.7 Article

ON THE DISTRIBUTION OF PARTICLE ACCELERATION SITES IN PLASMOID-DOMINATED RELATIVISTIC MAGNETIC RECONNECTION

期刊

ASTROPHYSICAL JOURNAL
卷 815, 期 2, 页码 -

出版社

IOP PUBLISHING LTD
DOI: 10.1088/0004-637X/815/2/101

关键词

acceleration of particles; magnetic reconnection

资金

  1. NASA Astrophysics Theory Program grant [NNX14AB37G]
  2. NSF [AST-1411879]
  3. DoE [DE-SC0008409]
  4. NASA Fermi Guest Investigator Program
  5. NASA through Einstein Postdoctoral Fellowship [PF3-140130]
  6. NASA [NAS8-03060]
  7. Lyman Spitzer Jr. Fellowship - Department of Astrophysical Sciences at Princeton University
  8. Max-Planck/Princeton Center for Plasma Physics
  9. Direct For Mathematical & Physical Scien
  10. Division Of Astronomical Sciences [1411879] Funding Source: National Science Foundation
  11. Direct For Mathematical & Physical Scien
  12. Division Of Physics [1144374] Funding Source: National Science Foundation
  13. Direct For Mathematical & Physical Scien
  14. Division Of Physics [1523261] Funding Source: National Science Foundation

向作者/读者索取更多资源

We investigate the distribution of particle acceleration sites, independently of the actual acceleration mechanism, during plasmoid-dominated, relativistic collisionless magnetic reconnection by analyzing the results of a particle-in-cell numerical simulation. The simulation is initiated with Harris-type current layers in pair plasma with no guide magnetic field, negligible radiative losses, no initial perturbation, and using periodic boundary conditions. We find that the plasmoids develop a robust internal structure, with colder dense cores and hotter outer shells, that is recovered after each plasmoid merger on a dynamical timescale. We use spacetime diagrams of the reconnection layers to probe the evolution of plasmoids, and in this context we investigate the individual particle histories for a representative sample of energetic electrons. We distinguish three classes of particle acceleration sites associated with (1) magnetic X-points, (2) regions between merging plasmoids, and (3) the trailing edges of accelerating plasmoids. We evaluate the contribution of each class of acceleration sites to the final energy distribution of energetic electrons: magnetic X-points dominate at moderate energies, and the regions between merging plasmoids dominate at higher energies. We also identify the dominant acceleration scenarios, in order of decreasing importance: (1) single acceleration between merging plasmoids, (2) single acceleration at a magnetic X-point, and (3) acceleration at a magnetic X-point followed by acceleration in a plasmoid. Particle acceleration is absent only in the vicinity of stationary plasmoids. The effect of magnetic mirrors due to plasmoid contraction does not appear to be significant in relativistic reconnection.

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