Please use this identifier to cite or link to this item: http://hdl.handle.net/10071/6706
Author(s): Gargaté, L.
Fonseca, R. A.
Niemiec, J.
Bingham, R.
Silva, L. O.
Date: 2010
Title: The Nonlinear Saturation of the Non-resonant Kinetically Driven Streaming Instability
Volume: 711
Number: 2
Pages: L127-L132
ISSN: 2041-8205
Keywords: Cosmic rays
Instabilities
ISM: supernova remnants
Magnetic fields
Abstract: A non-resonant instability for the amplification of the interstellar magnetic field in young supernova remnant (SNR) shocks was predicted by Bell, and is thought to be relevant for the acceleration of cosmic-ray (CR) particles. For this instability, the CRs streaming ahead of SNR shock fronts drive electromagnetic waves with wavelengths much shorter than the typical CR Larmor radius, by inducing a current parallel to the background magnetic field. We explore the nonlinear regime of the non-resonant mode using Particle-in-Cell hybrid simulations, with kinetic ions and fluid electrons, and analyze the saturation mechanism for realistic CR and background plasma parameters. In the linear regime, the observed growth rates and wavelengths match the theoretical predictions; the nonlinear stage of the instability shows a strong reaction of both the background plasma and the CR particles, with the saturation level of the magnetic field varying with the CR parameters. The simulations with CR-to-background density ratios of n CR/n b = 10–5 reveal the highest magnetic field saturation levels, with energy also being transferred to the background plasma and to the perpendicular velocity components of the CR particles. The results show that amplification factors > 10 for the magnetic field can be achieved, and suggest that this instability is important for the generation of magnetic field turbulence, and for the acceleration of CR particles.
Peerreviewed: Sim
Access type: Open Access
Appears in Collections:CTI-RI - Artigos em revistas científicas internacionais com arbitragem científica

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