Nonlinear Electron Trapping Through Cyclotron Resonance in the Formation of Chorus Subpackets

Author:

Chen Huayue1ORCID,Wang Xueyi1ORCID,Chen Lunjin2ORCID,Zhang Xiao‐Jia2ORCID,Omura Yoshiharu3ORCID,Chen Rui1ORCID,Hsieh Yi‐Kai3ORCID,Lin Yu1ORCID,Xia Zhiyang2ORCID

Affiliation:

1. Department of Physics Auburn University Auburn AL USA

2. William B. Hanson Center for Space Sciences University of Texas at Dallas Richardson TX USA

3. Research Institute for Sustainable Humanosphere Kyoto University Kyoto Japan

Abstract

AbstractChorus subpackets are the wave packets with modulated amplitudes in chorus waves, commonly observed in the magnetospheres of Earth and other planets. Nonlinear wave‐particle interactions have been suggested to play an important role in subpacket formation, yet the corresponding electron dynamics remain not fully understood. In this study, we have investigated the electron trapping through cyclotron resonance with subpackets, using a self‐consistent general curvilinear plasma simulation code simulation model in dipole fields. The electron trapping period has been quantified separately through electron dynamic analysis and theoretical derivation. Both methods indicate that the electron trapping period is shorter than the subpacket period/duration. We have further established the relation between electron trapping period and subpacket period through statistical analysis using simulation and observational data. Our study demonstrates that the nonlinear electron trapping through cyclotron resonance is the dominant mechanism responsible for subpacket formation.

Funder

National Aeronautics and Space Administration

Publisher

American Geophysical Union (AGU)

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