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Understanding Streaming Instabilities in the Limit of High Cosmic Ray Current Density
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A critical component of particle acceleration in astrophysical shocks is the non-resonant (Bell) instability, where the streaming of cosmic rays (CRs) leads to the amplification of magnetic fields necessary to scatter particles. In this work we use kinetic particle-in-cells simulations to investigate the high-CR current regime, where the typical assumptions underlying the Bell instability break down. Despite being more strongly driven, significantly less magnetic field amplification is observed compared to low-current cases, an effect due to the anisotropic heating that occurs in this regime. We also find that electron-scale modes, despite being fastest growing, mostly lead to moderate electron heating and do not affect the late evolution or saturation of the instability.
Forward citations
Cited by 2 Pith papers
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Self-confinement of relativistic pair beams in magnetized interstellar plasmas: the case of pulsar X-ray filaments
A charge-neutral pair beam can spontaneously develop a net current via the cavitation instability, and that current drives the Bell instability to amplify the magnetic field.
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Speed-dependent Threshold for Electron Injection into Diffusive Shock Acceleration
Electrons enter diffusive shock acceleration once their speed exceeds the shock speed, producing nonthermal tails that start at low momenta.
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