DocumentCode
1804591
Title
Dynamics of downstream plasma in the plasma opening switch
Author
Dolgachev, G. ; Kingsep, A. ; Ushakov, A. ; Zabaidullin, O. ; Krasik, Y. ; Dunaevsky, A. ; Felsteiner, J. ; Dolinskii, Y.
fYear
2001
fDate
17-22 June 2001
Firstpage
421
Abstract
Summary form only given, as follows. The paper is devoted to the physical aspects of plasma opening switches (POS). It has been demonstrated that POS operation is governed not only by the processes in the plasma-filled POS region but also by the rarefied plasma which appears in the downstream region. The expansion of this plasma towards the downstream load determines typical time of the POS opening. In experiments with POS (IPOS /spl sim/35 kA, T1/4/spl sim/300 ns) high-energy electron beam generation has been observed in the region downstream with respect to the load. It has been shown that such a beam is accompanied by ions having energies several times higher than the electron energies. It has been shown that these ions were accelerated from the load side edge of the plasma. The beam appearance occurred almost simultaneously with the beginning of the inductive voltage. The paper attracts especial attention to the conduction phase of a high-impedance POS (Ig/spl sim/170 kA; Ug/spl sim/180 kV, Il/spl sim/10 kA, Ul/spl sim/700 kV). Results of non-linear magnetic field and current penetration into the downstream plasma are reported. An effect of the acceleration and broadening of the penetrating wave of convective field/current transport in the downstream region has been observed. This effect has been explained on the base of electron magnetohydrodynamics (EMHD) combined with the effect of plasma anomalous resistivity conditioned by the current-driven ion-acoustic instability resulting from the high current flow velocity in the downstream region.
Keywords
plasma magnetohydrodynamics; plasma switches; 170 kA; 180 kV; 35 kA; 700 kV; beam appearance; conduction phase; convective field/current transport; current flow velocity; current penetration; current-driven ion-acoustic instability; downstream plasma; electron energy; electron magnetohydrodynamics; high-energy electron beam generation; inductive voltage; nonlinear magnetic field; penetrating wave; physical aspects; plasma opening switch; rarefied plasma; Acceleration; Conductivity; Electron beams; Magnetic fields; Magnetohydrodynamics; Plasma accelerators; Plasma transport processes; Plasma waves; Switches; Voltage;
fLanguage
English
Publisher
ieee
Conference_Titel
Pulsed Power Plasma Science, 2001. IEEE Conference Record - Abstracts
Conference_Location
Las Vegas, NV, USA
Print_ISBN
0-7803-7141-0
Type
conf
DOI
10.1109/PPPS.2001.961166
Filename
961166
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