Subpacket structure in strong VLF chorus rising tones: characteristics and consequences for relativistic electron acceleration

Abstract Van Allen Probes in situ observations are used to examine detailed subpacket structure observed in strong VLF (very low frequency) rising-tone chorus elements observed at the time of a rapid MeV electron energization in the inner magnetosphere. Analysis of the frequency gap between lower an...

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Main Authors: John C. Foster, Philip J. Erickson, Yoshiharu Omura
Format: Article
Language:English
Published: SpringerOpen 2021-07-01
Series:Earth, Planets and Space
Subjects:
Online Access:https://doi.org/10.1186/s40623-021-01467-4
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spelling doaj-8aa097f6837046b4b82c631ad6cb1e022021-07-11T11:37:54ZengSpringerOpenEarth, Planets and Space1880-59812021-07-0173111210.1186/s40623-021-01467-4Subpacket structure in strong VLF chorus rising tones: characteristics and consequences for relativistic electron accelerationJohn C. Foster0Philip J. Erickson1Yoshiharu Omura2MIT Haystack ObservatoryMIT Haystack ObservatoryResearch Institute for Sustainable Humanosphere, Kyoto UniversityAbstract Van Allen Probes in situ observations are used to examine detailed subpacket structure observed in strong VLF (very low frequency) rising-tone chorus elements observed at the time of a rapid MeV electron energization in the inner magnetosphere. Analysis of the frequency gap between lower and upper chorus-band waves identifies f ceEQ, the electron gyrofrequency in the equatorial wave generation region. Initial subpackets in these strong chorus rising-tone elements begin at a frequency near 1/4 f ceEQ and exhibit smooth gradual frequency increase across their > 10 ms temporal duration. A second much stronger subpacket is seen at frequencies around the local value of 1/4 f ce with small wave normal angle (< 10°) and steeply rising df/dt. Smooth frequency and phase variation across and between the initial subpackets support continuous phase trapping of resonant electrons and increased potential for MeV electron acceleration. The total energy gain for individual seed electrons with energies between 100 keV and 3 MeV ranges between 2 and 15%, in their nonlinear interaction with a single chorus element.https://doi.org/10.1186/s40623-021-01467-4VLF chorusSubpacketsRadiation beltNonlinear interactionElectron acceleration
collection DOAJ
language English
format Article
sources DOAJ
author John C. Foster
Philip J. Erickson
Yoshiharu Omura
spellingShingle John C. Foster
Philip J. Erickson
Yoshiharu Omura
Subpacket structure in strong VLF chorus rising tones: characteristics and consequences for relativistic electron acceleration
Earth, Planets and Space
VLF chorus
Subpackets
Radiation belt
Nonlinear interaction
Electron acceleration
author_facet John C. Foster
Philip J. Erickson
Yoshiharu Omura
author_sort John C. Foster
title Subpacket structure in strong VLF chorus rising tones: characteristics and consequences for relativistic electron acceleration
title_short Subpacket structure in strong VLF chorus rising tones: characteristics and consequences for relativistic electron acceleration
title_full Subpacket structure in strong VLF chorus rising tones: characteristics and consequences for relativistic electron acceleration
title_fullStr Subpacket structure in strong VLF chorus rising tones: characteristics and consequences for relativistic electron acceleration
title_full_unstemmed Subpacket structure in strong VLF chorus rising tones: characteristics and consequences for relativistic electron acceleration
title_sort subpacket structure in strong vlf chorus rising tones: characteristics and consequences for relativistic electron acceleration
publisher SpringerOpen
series Earth, Planets and Space
issn 1880-5981
publishDate 2021-07-01
description Abstract Van Allen Probes in situ observations are used to examine detailed subpacket structure observed in strong VLF (very low frequency) rising-tone chorus elements observed at the time of a rapid MeV electron energization in the inner magnetosphere. Analysis of the frequency gap between lower and upper chorus-band waves identifies f ceEQ, the electron gyrofrequency in the equatorial wave generation region. Initial subpackets in these strong chorus rising-tone elements begin at a frequency near 1/4 f ceEQ and exhibit smooth gradual frequency increase across their > 10 ms temporal duration. A second much stronger subpacket is seen at frequencies around the local value of 1/4 f ce with small wave normal angle (< 10°) and steeply rising df/dt. Smooth frequency and phase variation across and between the initial subpackets support continuous phase trapping of resonant electrons and increased potential for MeV electron acceleration. The total energy gain for individual seed electrons with energies between 100 keV and 3 MeV ranges between 2 and 15%, in their nonlinear interaction with a single chorus element.
topic VLF chorus
Subpackets
Radiation belt
Nonlinear interaction
Electron acceleration
url https://doi.org/10.1186/s40623-021-01467-4
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