Simulation and Quasilinear Theory of Magnetospheric Bernstein Mode Instability
Abstract
Multiple harmonic electron cyclotron emissions, often known in the literature as the (n+1/2)fce emission, are a common occurrence in the magnetosphere. These emissions are often interpreted in terms of the Bernstein mode instability driven by the electron loss cone velocity distribution function. Alternatively, they can be interpreted as quasi thermal emission of electrostatic fluctuations in magnetized plasmas. The present paper carries out a one-dimensional relativistic electromagnetic particle-in-cell simulation and also employs a reduced quasilinear kinetic theoretical analysis in order to compare against the simu lation. It is found that the Bernstein mode instability is indeed excited by the loss cone distribution of electrons, but the saturation level of the electrostatic mode is quite low and that the effects of instability on the electrons is rather minimal. This supports the interpretation of multiple harmonic emission in the context of the spontaneous emission and reabsorption in quasi thermal magnetized plasma in the the magnetosphere.
- Publication:
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AGU Fall Meeting Abstracts
- Pub Date:
- December 2018
- Bibcode:
- 2018AGUFMSM33C3602L
- Keywords:
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- 2716 Energetic particles: precipitating;
- MAGNETOSPHERIC PHYSICSDE: 2720 Energetic particles: trapped;
- MAGNETOSPHERIC PHYSICSDE: 2772 Plasma waves and instabilities;
- MAGNETOSPHERIC PHYSICSDE: 2774 Radiation belts;
- MAGNETOSPHERIC PHYSICS