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Field-aligned chorus wave spectral power in Earth's outer radiation belt
- Source :
- Annales Geophysicae, Annales Geophysicae, European Geosciences Union, 2015, pp.583-597. ⟨10.5194/angeo-33-583-2015⟩, Annales Geophysicae, Vol 33, Pp 583-597 (2015)
- Publication Year :
- 2015
- Publisher :
- Copernicus GmbH, 2015.
-
Abstract
- International audience; Chorus-type whistler waves are one of the most intense electromagnetic waves generated naturally in the mag-netosphere. These waves have a substantial impact on the radiation belt dynamics as they are thought to contribute to electron acceleration and losses into the ionosphere through resonant wave–particle interaction. Our study is devoted to the determination of chorus wave power distribution on frequency in a wide range of magnetic latitudes, from 0 to 40 •. We use 10 years of magnetic and electric field wave power measured by STAFF-SA onboard Cluster spacecraft to model the initial (equatorial) chorus wave spectral power, as well as PEACE and RAPID measurements to model the properties of energetic electrons (∼ 0.1–100 keV) in the outer radiation belt. The dependence of this distribution upon latitude obtained from Cluster STAFF-SA is then consistently reproduced along a certain L-shell range (4 ≤ L ≤ 6.5), employing WHAMP-based ray tracing simulations in hot plasma within a realistic inner magnetospheric model. We show here that, as latitude increases, the chorus peak frequency is globally shifted towards lower frequencies. Making use of our simulations, the peak frequency variations can be explained mostly in terms of wave damping and amplification, but also cross-L propagation. These results are in good agreement with previous studies of chorus wave spectral extent using data from different spacecraft (Cluster, POLAR and THEMIS). The chorus peak frequency variations are then employed to calculate the pitch angle and energy diffusion rates, resulting in more effective pitch angle electron scattering (electron lifetime is halved) but less effective acceleration. These peak frequency parameters can thus be used to improve the accuracy of diffusion coefficient calculations. Keywords. Electromagnetics (wave propagation) – magne-tospheric physics (energetic particles precipitating) – space plasma physics (wave–particle interactions)
- Subjects :
- Atmospheric Science
Whistler
Magnetosphere
7. Clean energy
Electromagnetic radiation
symbols.namesake
Optics
Earth and Planetary Sciences (miscellaneous)
Pitch angle
lcsh:Science
Wave power
Physics
Electromagnetics (wave propagation) – magnetospheric physics (energetic particles precipitating) – space plasma physics (wave–particle interactions)
business.industry
lcsh:QC801-809
Geology
Astronomy and Astrophysics
lcsh:QC1-999
Computational physics
Ray tracing (physics)
lcsh:Geophysics. Cosmic physics
[SDU]Sciences of the Universe [physics]
13. Climate action
Space and Planetary Science
Van Allen radiation belt
Physics::Space Physics
symbols
lcsh:Q
Ionosphere
business
lcsh:Physics
Subjects
Details
- ISSN :
- 14320576 and 09927689
- Volume :
- 33
- Database :
- OpenAIRE
- Journal :
- Annales Geophysicae
- Accession number :
- edsair.doi.dedup.....fb3cce88c81d7d0af31befc7b5623ba6