Particle-in-cell modeling of the nanosecond field emission driven discharge in pressurized hydrogen

Dmitry Levko, Shurik Yatom, Yakov E. Krasik

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30 Scopus citations

Abstract

The high-voltage field-emission driven nanosecond discharge in pressurized hydrogen is studied using the one-dimensional Particle-in-Cell Monte Carlo collision model. It is obtained that the main part of the field-emitted electrons becomes runaway in the thin cathode sheath. These runaway electrons propagate the entire cathode-anode gap, creating rather dense (∼1012 cm-3) seeding plasma electrons. In addition, these electrons initiate a streamer propagating through this background plasma with a speed ∼30% of the speed of light. Such a high streamer speed allows the self-acceleration mechanism of runaway electrons present between the streamer head and the anode to be realized. As a consequence, the energy of runaway electrons exceeds the cathode-anode gap voltage. In addition, the influence of the field emission switching-off time is analyzed. It is obtained that this time significantly influences the discharge dynamics.

Original languageEnglish (US)
Article number083303
JournalJournal of Applied Physics
Volume123
Issue number8
DOIs
StatePublished - Feb 28 2018

All Science Journal Classification (ASJC) codes

  • General Physics and Astronomy

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