Published 1989 | Version v1
Book

Theory and measurements of electrophoretic effects in monolith, fixed-bed, and fluidized-bed plasma reactors

Creators

  • 1. Idaho Univ., Moscow, ID (USA). Dept. of Chemical Engineering

Description

Pressure gradients and secondary flow fields generated by the passage of electrical current in a d.c. gas discharge or gas laser are topics of longstanding interest in the gaseous electronics literature. These hydrodynamic effects of space charge fields and charged particle density gradients have been principally exploited in the development of gas separation and purification processes. In recent characterization studies of fixed-bed and fluidized-bed plasma reactors several anomalous flow features have been observed. These reactors involve the contacting of a high-frequency, resonantly-sustained, disperse gas discharge with granular solids in a fixed or fluidized bed. Anomalies in the measured pressure drops and fluidization velocities have motivated the development of an appropriate theoretical approach to, and some additional experimental investigations of electrophoretic effects in disperse gas discharges. In this paper, a theory which includes the effects of space charge and diffusion is used to estimate the electric field and charged particle density profiles. These profiles are then used to calculate velocity fields and gas flow rates for monolith, fixed-bed, and fluidized-bed reactors. These results are used to rationalize measurements of gas flow rates and axial pressure gradients in high-frequency disperse gas discharges with and without an additional d.c. axial electric field

Additional details

Publishing Information

Publisher
IEEE Service Center.
Imprint Place
Piscataway, NJ (USA)
Imprint Title
Proceedings of the 1989 IEEE International conference on plasma science (Abstracts)
Imprint Pagination
180 p.
Journal Page Range
p. 166.

Conference

Title
Institute of Electrical and Electronics Engineers international conference on plasma science.
Dates
22-24 May 1989.
Place
Buffalo, NY (USA).

Optional Information

Secondary number(s)
CONF-8905184--.