BeiDa Imaging Electron Spectrometer observation of multi-period electron flux modulation caused by localized ultra-low-frequency waves

<p>We present multi-period modulation of energetic electron flux observed by the BeiDa Imaging Electron Spectrometer (BD-IES) on board a Chinese navigation satellite on 13 October 2015. Electron flux oscillations were observed at a dominant period of <span class="inline-formula"&g...

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Main Authors: X. Chen, Q. Zong, H. Zou, X. Zhou, L. Li, Y. Hao, Y. Wang
Format: Article
Language:English
Published: Copernicus Publications 2020-07-01
Series:Annales Geophysicae
Online Access:https://angeo.copernicus.org/articles/38/801/2020/angeo-38-801-2020.pdf
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author X. Chen
Q. Zong
H. Zou
X. Zhou
L. Li
Y. Hao
Y. Wang
author_facet X. Chen
Q. Zong
H. Zou
X. Zhou
L. Li
Y. Hao
Y. Wang
author_sort X. Chen
collection DOAJ
description <p>We present multi-period modulation of energetic electron flux observed by the BeiDa Imaging Electron Spectrometer (BD-IES) on board a Chinese navigation satellite on 13 October 2015. Electron flux oscillations were observed at a dominant period of <span class="inline-formula">∼190</span>&thinsp;s in consecutive energy channels from <span class="inline-formula">∼50</span> to <span class="inline-formula">∼200</span>&thinsp;keV. Interestingly, flux modulations at a secondary period of <span class="inline-formula">∼400</span>&thinsp;s were also unambiguously observed. The oscillating signals at different energy channels were observed in sequence, with a time delay of up to <span class="inline-formula">∼900</span>&thinsp;s. This time delay far exceeds the oscillating periods, by which we speculate that the modulations were caused by localized ultra-low-frequency (ULF) waves. To verify the wave–particle interaction scenario, we revisit the classic drift-resonance theory. We adopt the calculation method therein to derive the electron energy change in a multi-period ULF wave field. Then, based on the modeled energy change, we construct the flux variations to be observed by a virtual spacecraft. The predicted particle signatures well agree with the BD-IES observations. We demonstrate that the particle energy change might be underestimated in the conventional theories, as the Betatron acceleration induced by the curl of the wave electric field was often omitted. In addition, we show that azimuthally localized waves would notably extend the energy width of the resonance peak, whereas the drift-resonance interaction is only efficient for particles at the resonant energy in the original theory.</p>
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spelling doaj.art-e5bdffb2048b400988dff39e73d2bc882022-12-22T00:01:52ZengCopernicus PublicationsAnnales Geophysicae0992-76891432-05762020-07-013880181310.5194/angeo-38-801-2020BeiDa Imaging Electron Spectrometer observation of multi-period electron flux modulation caused by localized ultra-low-frequency wavesX. ChenQ. ZongH. ZouX. ZhouL. LiY. HaoY. Wang<p>We present multi-period modulation of energetic electron flux observed by the BeiDa Imaging Electron Spectrometer (BD-IES) on board a Chinese navigation satellite on 13 October 2015. Electron flux oscillations were observed at a dominant period of <span class="inline-formula">∼190</span>&thinsp;s in consecutive energy channels from <span class="inline-formula">∼50</span> to <span class="inline-formula">∼200</span>&thinsp;keV. Interestingly, flux modulations at a secondary period of <span class="inline-formula">∼400</span>&thinsp;s were also unambiguously observed. The oscillating signals at different energy channels were observed in sequence, with a time delay of up to <span class="inline-formula">∼900</span>&thinsp;s. This time delay far exceeds the oscillating periods, by which we speculate that the modulations were caused by localized ultra-low-frequency (ULF) waves. To verify the wave–particle interaction scenario, we revisit the classic drift-resonance theory. We adopt the calculation method therein to derive the electron energy change in a multi-period ULF wave field. Then, based on the modeled energy change, we construct the flux variations to be observed by a virtual spacecraft. The predicted particle signatures well agree with the BD-IES observations. We demonstrate that the particle energy change might be underestimated in the conventional theories, as the Betatron acceleration induced by the curl of the wave electric field was often omitted. In addition, we show that azimuthally localized waves would notably extend the energy width of the resonance peak, whereas the drift-resonance interaction is only efficient for particles at the resonant energy in the original theory.</p>https://angeo.copernicus.org/articles/38/801/2020/angeo-38-801-2020.pdf
spellingShingle X. Chen
Q. Zong
H. Zou
X. Zhou
L. Li
Y. Hao
Y. Wang
BeiDa Imaging Electron Spectrometer observation of multi-period electron flux modulation caused by localized ultra-low-frequency waves
Annales Geophysicae
title BeiDa Imaging Electron Spectrometer observation of multi-period electron flux modulation caused by localized ultra-low-frequency waves
title_full BeiDa Imaging Electron Spectrometer observation of multi-period electron flux modulation caused by localized ultra-low-frequency waves
title_fullStr BeiDa Imaging Electron Spectrometer observation of multi-period electron flux modulation caused by localized ultra-low-frequency waves
title_full_unstemmed BeiDa Imaging Electron Spectrometer observation of multi-period electron flux modulation caused by localized ultra-low-frequency waves
title_short BeiDa Imaging Electron Spectrometer observation of multi-period electron flux modulation caused by localized ultra-low-frequency waves
title_sort beida imaging electron spectrometer observation of multi period electron flux modulation caused by localized ultra low frequency waves
url https://angeo.copernicus.org/articles/38/801/2020/angeo-38-801-2020.pdf
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