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On the Cause of Two Prompt Shock-Induced Relativistic Electron Depletion Events Dayside interplanetary (IP) shock-induced injections are known to be a source of highly relativistic electrons in Earth's outer radiation belt, and are possibly the only source of greater than 1 megaelectronvolt electrons in the inner belt. The associated electron energization process is well understood and modeled. Recently, relativistic electron depletion echoes have also been associated with IP shocks, but the processes driving the depletions are less well understood. In this study, we investigate in detail two shock induced greater than 1 megaelectronvolt electron depletion events observed by the Van Allen Probes, March 17, 2015 and May 24, 2013, and draw similarities to night-side substorm related enhancements and depletions. Both events exhibit shock induced enhancements on one of the Van Allen Probes and depletions on the other in greater than 1 megaelectronvolt channels, such observations have not previously been reported. The depletion of greater than 1 megaelectronvolt electrons during the March 17, 2015 event is associated with enhancements in 10 second - 100 second kiloelectronvolt electrons on the same spacecraft. The depletion is consistent with the effects of a lack of seed electrons at larger radial distances combined with inward motion due to asymmetric compression by the shock impact. The immediate enhancements and depletions of 75 kiloelectronvolt - 2.6 greater than 1 megaelectronvolt electrons are explained by the local phase space density radial profile. Observations of electron flux dynamics during the May 24, 2013 event can also be explained by a lack of a seed population at larger radial distances, supported by butterfly distributions observed during the event. The electron's inward radial motion can be attributed to the inward propagating impulse also associated with the greater than 1 megaelectronvolt electron enhancements observed on the complementary probe, rather than global asymmetric compression. This causal mechanism has parallels to substorm related depletions. Alternatively, evidence is provided to attribute the sudden depletions to losses due to a sudden but brief inward motion of the magnetopause.
Document ID
20180004008
Acquisition Source
Goddard Space Flight Center
Document Type
Reprint (Version printed in journal)
Authors
Schiller, Quintin
(NASA Goddard Space Flight Center Greenbelt, MD, United States)
Kanekal, Shri G.
(NASA Goddard Space Flight Center Greenbelt, MD, United States)
Boyd, Alex J.
(New Mexico Consortium (NMC) Los Alamos, NM, )
Blum, Lauren W.
(NASA Goddard Space Flight Center Greenbelt, MD, United States)
Jones, Ashley D.
(Catholic Univ. of America Washington, DC, United States)
Baker, D.N.
(Colorado Univ. Boulder, CO, United States)
Blake, J. B.
(Aerospace Corp. Arlington, VA, United States)
Date Acquired
July 25, 2018
Publication Date
August 30, 2017
Publication Information
Publication: Journal of Atmospheric and Solar-Terrestrial Physics
Publisher: Elsevier Ltd.
Volume: In Press
ISSN: 1364-6826
Subject Category
General
Report/Patent Number
GSFC-E-DAA-TN51158
Funding Number(s)
CONTRACT_GRANT: NNG11PL10A
CONTRACT_GRANT: NNH15CO48B
Distribution Limits
Public
Copyright
Other

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