A model for steady-state large-volume plasma generation
- 1. Naval Surface Weapons Center, Silver Spring, MD (United States). White Oak Lab.
- 2. Advanced Technology and Research, Inc., Laurel, MD (United States)
Description
In this paper, a simple, new scheme to generate a uniform, steady-state, large-volume plasma is presented. The weakly magnetized plasma is created by direct ionization of the background gas by low-energy electrons generated from thermionic filaments. An annular arrangement of the filaments ensures a uniform plasma density in the radial direction as predicted by theory. Experiments have been performed to characterize the plasma generated in such a configuration. In order to explain the experimental observation, we develop a bulk plasma theory based on plasma transport via cross-field diffusion. As assumed in the theoretical model, the experimental measurements indicate a uniform plasma density along the axis. Both the theory and experiment indicate that the plasma density is a function of the square of the external magnetic field. The theory also predicts the plasma density to be proportional to the neutral density to the two-thirds power in agreement with the experimental data. We also observe the experimental data to agree remarkably well with theoretical prediction for a broad range of system parameters
Additional details
Publishing Information
- Journal Title
- IEEE Transactions on Plasma Science
- Journal Volume
- 19
- Journal Issue
- 3
- Series
- IEEE Trans. Plasma Sci.
- Journal Page Range
- 535-542
- ISSN
- 0093-3813
- CODEN
- ITPSB
INIS
- Country of Publication
- United States
- Country of Input or Organization
- United States
- INIS RN
- 23038076
- Subject category
- S70: PLASMA PHYSICS AND FUSION TECHNOLOGY;
- Descriptors DEI
- CROSSED FIELDS; DIFFUSION; ELECTRON BEAMS; GASES; HOMOGENEOUS PLASMA; IONIZATION; MAGNETIZATION; PLASMA DENSITY; PLASMA PRODUCTION; PLASMA SIMULATION; STEADY-STATE CONDITIONS; THERMIONIC DIODES
- Descriptors DEC
- BEAMS; DIODE TUBES; ELECTRON TUBES; FLUIDS; LEPTON BEAMS; MAGNETIC MOMENTS; MAGNETIC PROPERTIES; PARTICLE BEAMS; PHYSICAL PROPERTIES; PLASMA; SIMULATION; THERMIONIC TUBES