Wave-particle interactions at dipolarization fronts
Abstract
We report in situ observations by the Cluster spacecraft of wave-particle interactions in a magnetic flux pileup region created by a magnetic reconnection outflow jet in Earth's magnetotail. Two distinct regions of wave activity are identified: lower-hybrid drift waves at the front edge and whistler-mode waves inside the pileup region. The whistler-mode waves are locally generated by the electron temperature anisotropy, and provide evidence for ongoing betatron energization caused by magnetic flux pileup. The whistler-mode waves cause fast pitch-angle scattering of electrons and isotropization of the electron distribution, thus making the flow braking process nonadiabatic. The waves strongly affect the electron dynamics and thus play an important role in the energy conversion chain during plasma jet braking.
- Publication:
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AGU Fall Meeting Abstracts
- Pub Date:
- December 2011
- Bibcode:
- 2011AGUFMSM13C2097K
- Keywords:
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- 7829 SPACE PLASMA PHYSICS / Kinetic waves and instabilities;
- 7835 SPACE PLASMA PHYSICS / Magnetic reconnection;
- 7846 SPACE PLASMA PHYSICS / Plasma energization;
- 7867 SPACE PLASMA PHYSICS / Wave/particle interactions