DocumentCode :
2558997
Title :
Numerical investigation of auroral magnetospheric radio emission
Author :
Speirs, D.C. ; Gillespie, K.M. ; McConville, S.L. ; Phelps, A.D.R. ; Cross, A.W. ; Ronald, K. ; Bingham, R. ; Kellett, B.J. ; Cairns, R.A. ; Vorgul, I.
Author_Institution :
Dept. of Phys., Univ. of Strathclyde, Glasgow, UK
fYear :
2012
fDate :
8-13 July 2012
Abstract :
In recent years, there has been considerable published research and debate on an instability produced within an electron beam transported into an increasing magnetic field. Due to conservation of energy and magnetic moment, a velocity distribution is produced having a significant pitch spread and effective population inversion in perpendicular velocity1. This distribution is unstable to cyclotron-maser emission and has been attributed to various planetary and stellar magnetospheric radio emissions2. Although the generation mechanism is well established, a satisfactory explanation does not yet exist for the sporadic occurrence of these emissions and the observed field-aligned beaming of the radiation out of the source region3. To address these issues, simulations have been conducted using the PiC code VORPAL to investigate the spatial growth of the instability in a sheet electron beam with background plasma whose density increases along the path of beam propagation. These simulations demonstrate a significant enhancement in spatial growth over the larger cross-section of the beam, and can simulate upward refraction of the generated radiation -consistent with recent theoretical predictions of enhanced emission / growth of terrestrial AKR tangential to the auroral cavity boundary and upward refraction of the resultant radiation due to an increasing background plasma density with decreasing altitude4.
Keywords :
aurora; electron beams; magnetospheric electromagnetic wave propagation; numerical analysis; plasma density; plasma instability; plasma simulation; plasma transport processes; plasma-beam interactions; PiC code; VORPAL; auroral cavity boundary; auroral magnetospheric radioemission; background plasma density; beam propagation path; cyclotron-maser emission; effective population inversion; electron beam transport; energy conservation; enhanced emission predictions; field-aligned radiation beaming; magnetic field; magnetic moment conservation; numerical investigation; perpendicular velocity; pitch spread; planetary magnetospheric radioemission; sheet electron beam instability; spatial growth; sporadic occurrence; stellar magnetospheric radioemission; terrestrial AKR tangential growth; upward refraction; velocity distribution; Educational institutions; Electron beams; Laboratories; Magnetosphere; Mathematics;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Plasma Science (ICOPS), 2012 Abstracts IEEE International Conference on
Conference_Location :
Edinburgh
ISSN :
0730-9244
Print_ISBN :
978-1-4577-2127-4
Electronic_ISBN :
0730-9244
Type :
conf
DOI :
10.1109/PLASMA.2012.6383593
Filename :
6383593
Link To Document :
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