Vacuum arc plasma jet propagation in a toroidal duct
- 1 May 1996
- journal article
- research article
- Published by AIP Publishing in Journal of Applied Physics
- Vol. 79 (9) , 6791-6802
- https://doi.org/10.1063/1.361500
Abstract
A two fluid magneto‐hydrodynamic theory of vacuum arc plasma jet propagation in a magnetized toroidal duct is developed. The physical mechanisms of jet transverse displacement and plasma losses are analyzed and the centrifugal force on the ions is shown to play the principle role in these processes. Optimal conditions for jet propagation occur when the centrifugal force is balanced by the electrical force on the ions. An analytical solution of the nonlinear problem of plasma beam transport through a toroidal duct is obtained for the two cases where ions are magnetized or not magnetized. The ion mass current decreases with the azimuthal distance along the torus as (1+φ/φ0)−1 where φ0 is a characteristic angular distance, for the case when ions are magnetized, and exponentially when the ions are not magnetized. Numerical calculations show that the decrease of plasma density leads to a longitudinal electric field and current. This current, together with the current due to the centrifugal drift, form a current loop which is closed through the plasma and structures outside the torus. Moreover if there are optimal conditions for jet propagation at the torus entrance, they are approximately conserved along the length of the torus.This publication has 9 references indexed in Scilit:
- Plasma motion in a filtered cathodic vacuum arcIEEE Transactions on Plasma Science, 1993
- Modeling plasma flow in straight and curved solenoidsJournal of Applied Physics, 1991
- On optimizing maximum-power heat enginesJournal of Applied Physics, 1991
- Coating technology based on the vacuum arc-a reviewIEEE Transactions on Plasma Science, 1990
- Principles and applications of vacuum arc coatingsIEEE Transactions on Plasma Science, 1989
- Plasma flux motion in a toroidal plasma guidePlasma Physics and Controlled Fusion, 1986
- Collective focusing of a charge-neutral ion beam with warm electronsJournal of Applied Physics, 1986
- Vlasov equilibrium and nonlocal stability properties of an inhomogeneous plasma columnPhysics of Fluids, 1976
- Kinetic description of linear theta-pinch equilibriaJournal of Plasma Physics, 1975