Cosmic ray and magnetic pressure in radiative supernova remnants disrupts dense shell formation and suppresses the predicted nonthermal brightening, explaining the lack of observed complete shells.
Modeling the Saturation of the Bell Instability using Hybrid Simulations
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abstract
The nonresonant streaming instability (Bell instability) plays a pivotal role in the acceleration and confinement of cosmic rays (CRs); yet, the exact mechanism responsible for its saturation and the magnitude of the final amplified magnetic field have not been assessed from first-principles. Using a survey of hybrid simulations (with kinetic ions and fluid electrons), we study the evolution of the Bell instability as a function of the parameters of the CR population. We find that, at saturation, the magnetic pressure in the amplified field is comparable with the initial CR anisotropic pressure, rather than with the CR energy flux as previously argued. These results provide a predictive prescription for the total magnetic field amplification expected in the many astrophysical environments where the Bell instability is important.
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astro-ph.HE 1years
2024 1verdicts
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Nonthermal Signatures of Radiative Supernova Remnants II: The Impact of Cosmic Rays and Magnetic Fields
Cosmic ray and magnetic pressure in radiative supernova remnants disrupts dense shell formation and suppresses the predicted nonthermal brightening, explaining the lack of observed complete shells.