DocumentCode
1495989
Title
Dielectric and geometric dependence of electric field and power distribution in a waveguide heterogeneously filled with lossy dielectrics
Author
Outifa, Lhoussain ; Delmotte, Michel ; Jullien, Henri
Author_Institution
Lab. Microstructure et Mecanique des Materiaux, CNRS, Paris, France
Volume
45
Issue
8
fYear
1997
fDate
8/1/1997 12:00:00 AM
Firstpage
1154
Lastpage
1161
Abstract
In microwave processing of dielectric materials which completely fill a waveguide, the distribution of the electric field within the material needs to be known. This paper presents the theoretical conditions for the microwave cure of large pieces, the size of which is more than the wavelength. The mathematical description of heterogeneously multilayer-filled waveguides presents certain difficulties because of the involved transcendental equations. A computer treatment to determine the electric-field spatial distribution is developed. The influence of the dielectric constants and the thickness of the dielectric materials on the spatial distribution of the electric field and power flow in each layer is studied. In particular, the field strength is enhanced in the dielectric with the highest permittivity. A numerical resolution of the transcendental equations defining the cutoff frequencies of propagation modes allows one to enumerate the modes, which can successively appear in a dielectric-loaded waveguide as functions of dielectric and geometric parameters. The attenuation constant and the microwave power dissipated in each material are determined. A balance sheet of energy is established
Keywords
dielectric-loaded waveguides; electric fields; permittivity; waveguide theory; attenuation constant; balance sheet; cutoff frequencies; dielectric constants; dielectric-loaded waveguide; electric field; field spatial distribution; geometric dependence; heterogeneous filling; lossy dielectrics; microwave cure; multilayer-filled waveguides; permittivity; power distribution; power flow; propagation modes; transcendental equations; Cutoff frequency; Dielectric constant; Dielectric materials; Distributed computing; Energy resolution; Equations; Load flow; Microwave propagation; Permittivity; Spatial resolution;
fLanguage
English
Journal_Title
Microwave Theory and Techniques, IEEE Transactions on
Publisher
ieee
ISSN
0018-9480
Type
jour
DOI
10.1109/22.618402
Filename
618402
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