Bulletin of the American Physical Society
60th Annual Meeting of the APS Division of Plasma Physics
Volume 63, Number 11
Monday–Friday, November 5–9, 2018; Portland, Oregon
Session GP11: Poster Session III: Basic Plasma Physics: General; Space and Astrophysical Plasmas; ICF Measurement and Computational Techniques, Direct and Indirect Drive; MIF Science and Technology (9:30am-12:30pm)
Tuesday, November 6, 2018
OCC
Room: Exhibit Hall A1&A
Abstract ID: BAPS.2018.DPP.GP11.75
Abstract: GP11.00075 : Maser radiation from electrons accelerated by magnetised collisionless shock waves
Presenter:
Robert Bingham
(Rutherford Appleton Lab)
Authors:
Robert Bingham
(Rutherford Appleton Lab)
D C Speirs
(University of Strathclyde)
Kevin Ronald
(University of Strathclyde)
Alex Rigby
(University of Oxford)
Fabio Cruz
(Inst Superior Tecnico (IST))
Ruth Bamford
(Rutherford Appleton Lab)
R.A. Cairns
(Univ. St Andrews, Fife, UK)
A D.R. Phelps
(University of Strathclyde)
Mark E Koepke
(West Virginia Univ)
Barry Kellett
(Rutherford Appleton Lab)
Ricardo Fonseca
(ISCTE - Inst Universitario Lisboa)
Luis O Silva
(Inst Superior Tecnico (IST))
Sergey V Lebedev
(Imperial College London)
Gianluca Gregori
(University of Oxford)
In this paper we describe a model of electron energization and cyclotron-maser emission applicable to astrophysical magnetised collisionless shocks. It is inspired by the work of Begelman, Ergun and Rees [1] who argued that the cyclotron maser instability occurs in localised magnetised collisionless shocks such as those expected in Blazar jets. We report on two recent laboratory experiments and numerical simulations carried out to investigate electron acceleration at collisionless shocks and the maser radiation mechanism [2-3]. We describe how electrons accelerated by lower-hybrid waves at collisionless shocks generate cyclotron-maser radiation when the accelerated electrons move into regions of stronger magnetic fields. Magnetic compression and conservation of magnetic moment lead to the formation of an electron velocity distribution having a horseshoe or ring shape as the electrons are accelerated along the magnetic field. We show that under certain conditions the horseshoe or ring electron velocity distribution is unstable to the cyclotron maser instability.
[1] M. C. Begelman, R. E. Ergun, and M. J. Rees, Astrophys. J. 625, 51 (2005). [2] F. Cruz et al., Physics of Plasmas 24, 022901 (2017). [3] D. C. Speirs et al., Phys. Rev. Lett. 113, 155002 (2014).
To cite this abstract, use the following reference: http://meetings.aps.org/link/BAPS.2018.DPP.GP11.75
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