DocumentCode
1433571
Title
Whistler Wave Resonances in Laboratory Plasma
Author
Amatucci, W.E. ; Blackwell, David D. ; Tejero, Erik M. ; Cothran, Christopher D. ; Rudakov, L. ; Ganguli, Gurudas I. ; Walker, David N.
Author_Institution
Plasma Phys. Div., Naval Res. Lab., Washington, DC, USA
Volume
39
Issue
2
fYear
2011
Firstpage
637
Lastpage
643
Abstract
Standing whistler wave patterns have been investigated in the Naval Research Laboratory´s Space Physics Simulation Chamber. In the original experimental configuration, partial reflection of the antenna-launched whistler waves from the chamber end boundaries occurs, setting up a combination of standing and traveling waves. By controlling the axial magnetic field strength profile, cyclotron absorption of the whistler waves can be induced before reflection occurs, leaving only the forward propagating waves. By comparing standing-wave amplitudes to that when the wave is prevented from reflecting, cavity Q´s in excess of 30 have been observed. Under uniform axial magnetic field conditions, the addition of planar conducting grids across the vacuum chamber cross section at the ends of the plasma column provides improved reflecting surfaces and corresponding increases in the value of Q.
Keywords
antennas in plasma; plasma oscillations; plasma waves; antenna-launched whistler waves; axial magnetic field strength profile; chamber end boundaries; planar conducting grids; plasma column; standing whistler wave patterns; traveling waves; vacuum chamber cross section; whistler oscillations; whistler wave cyclotron absorption; whistler wave resonances; Laboratory plasma; standing wave; whistler wave;
fLanguage
English
Journal_Title
Plasma Science, IEEE Transactions on
Publisher
ieee
ISSN
0093-3813
Type
jour
DOI
10.1109/TPS.2010.2096235
Filename
5699402
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