Title :
Relativistic electron beam generation in a plasma-filled diode with foilless injection into a dense plasma
Author :
Burmasov, Vladimir S. ; Kandaurov, Igor V. ; Kruglyakov, E.P. ; Meshkov, Oleg I.
Author_Institution :
Budker Inst. of Nucl. Phys., Novosibirsk, Russia
fDate :
12/1/1995 12:00:00 AM
Abstract :
In the experiments an relativistic electron beam (REB)-plasma interaction, the foilless injection of REB from a magnetized diode is of special interest due to the low spread angle of the beam and high repetition rate of the shots. In the experiments presented, the problem of diode shortening in the presence of a dense plasma from the interaction chamber has been solved using a special drift pipe as an anode of the foilless diode. The electron beam (Ud~0.7 MeV, t b~100-200 ns) produced by an axially symmetric magnetically insulated diode has been injected into a magnetized hydrogen plasma column with density ranging from 1·1015-3·10 16 cm-3. It has been found that the anode pipe substantially reduces the plasma flow into the diode gap, but does not stop it completely, thus the REB generation in a plasma-filled diode has taken place. In some regimes of the beam generation it becomes possible to increase significantly the injected current and total energy deposition of the beam in comparison with the case of a vacuum magnetized diode of the same geometry. The experiments have shown effective dense plasma heating under the foilless injection
Keywords :
electron beams; plasma beam injection heating; plasma diodes; plasma flow; plasma-beam interactions; relativistic plasmas; anode pipe; axially symmetric magnetically insulated diode; beam low spread angle; dense plasma; density; diode gap; diode shortening; foilless injection; interaction chamber; magnetized H2 plasma column; magnetized diode; plasma flow; plasma heating; plasma-filled diode; relativistic electron beam generation; shot high repetition rate; special drift pipe; vacuum magnetized diode; Anodes; Diodes; Electron beams; Elementary particle vacuum; Geometry; Heating; Hydrogen; Insulation; Particle beam injection; Plasma density;
Journal_Title :
Plasma Science, IEEE Transactions on