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Particle simulation study of electron heating by counter-streaming ion beams ahead of supernova remnant shocks

Dieckmann, Mark Eric (författare)
Centre for Plasma Physics, Queen's University Belfast, UK
Bret, Antoine (författare)
Harvard-Smithsonian Center for Astrophysics, Cambridge, MA , USA
Sarri, Gianluca (författare)
Centre for Plasma Physics, Queen's University Belfast, UK
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Perez Alvaro, Erica (författare)
ETSI Industriales, Universidad de Castilla-La Mancha, Ciudad Real, Spain
Kourakis, Ioannis (författare)
Centre for Plasma Physics, Queen's University Belfast, UK
Borghesi, Marco (författare)
Centre for Plasma Physics, Queen's University Belfast, UK
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 (creator_code:org_t)
2012-07-03
2012
Engelska.
Ingår i: Plasma Physics and Controlled Fusion. - : Institute of Physics Publishing (IOPP). - 0741-3335 .- 1361-6587. ; 54:8, s. 085015-
  • Tidskriftsartikel (refereegranskat)
Abstract Ämnesord
Stäng  
  • The growth and saturation of Buneman-type instabilities is examined with a particle-in-cell (PIC) simulation for parameters that are representative for the foreshock region of fast supernova remnant shocks. A dense ion beam and the electrons correspond to the upstream plasma and a fast ion beam to the shock-reflected ions. The purpose of the 2D simulation is to identify the nonlinear saturation mechanisms, the electron heating and potential secondary instabilities that arise from anisotropic electron heating and result in the growth of magnetic fields. We confirm that the instabilities between both ion beams and the electrons saturate by the formation of phase space holes by the beam-aligned modes. The slower oblique modes accelerate some electrons, but they cannot heat up the electrons significantly before they are trapped by the faster beam-aligned modes. Two circular electron velocity distributions develop, which are centred around the velocity of each ion beam. They develop due to the scattering of the electrons by the electrostatic wave potentials. The growth of magnetic fields is observed, but their amplitude remains low.

Nyckelord

plasma
instability
simulation

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