Tubular choked waveguide applicator
09642194 ยท 2017-05-02
Assignee
Inventors
Cpc classification
H05B2206/046
ELECTRICITY
International classification
Abstract
A microwave heating apparatus with a tubular waveguide applicator and reactive and resistive chokes to decrease leakage. Microwave-transparent centering elements maintain articles to be treated centered in the applicator. Articles, such as individual cylindrical articles or continuous cylindrical strands, advance through the applicator in a direction in or opposite to the direction of propagation of microwaves. The resistive chokes have conductive vanes coated with a dielectric material that absorbs microwave energy that leaks through the reactive chokes to allow for large openings for large-diameter articles. The waveguide applicator is operated in the TE.sub.01 mode to concentrate microwave heating energy along the outer circumferences of the articles.
Claims
1. A microwave heating apparatus comprising: a tubular waveguide applicator having a first end and an opposite second end, a centerline, and a circular cross section and forming a heating chamber between the first and second ends with an axis along the centerline of the tubular waveguide applicator; a microwave source; a waveguide feed connected between the microwave source and the tubular waveguide applicator at the first end to propagate microwaves through the tubular waveguide applicator from the first end to the second end with a dominant TE.sub.01 pattern in the heating chamber; a first resistive choke connected in series with the tubular waveguide applicator at the first end and a second resistive choke connected in series the tubular waveguide applicator at the second end, wherein each of the first and second resistive chokes includes: opposite ends having openings; a plurality of conductive vanes covered with a microwave-absorbent material and spaced apart along the axis in a chevron pattern, wherein the conductive vanes have apertures aligned with the openings in the opposite ends of the first and second resistive chokes and with the heating chamber to guide articles to be treated in the heating chamber through the first and second resistive chokes.
2. A microwave heating apparatus as in claim 1 further comprising microwave-transparent tubes extending through the central apertures and the openings in the first and second resistive chokes to guide articles to be heated in the heating chamber through the resistive chokes.
3. A microwave heating apparatus as in claim 1 further comprising a first reactive choke disposed in series with the tubular waveguide applicator between the first resistive choke and the first end of the tubular waveguide applicator and a second reactive choke disposed in series with the tubular waveguide applicator between the second resistive choke and the second end of the tubular waveguide applicator.
4. A microwave heating apparatus as in claim 1 wherein the conductive vanes are V-shaped.
5. A microwave heating apparatus as in claim 1 wherein the tubular waveguide is arranged with its axis vertical and articles to be heated advance by gravity through the heating chamber.
6. A microwave heating apparatus comprising: a tubular waveguide applicator having a cylindrical outer wall terminating in a first end and an opposite second end to form a heating chamber having a centerline and a circular cross section between the first and second ends with an axis along the centerline of the heating chamber; a microwave source supplying microwave energy into the tubular waveguide applicator; a first reactive choke disposed in series with the tubular waveguide applicator at the first end of the tubular waveguide applicator; a second reactive choke disposed in series with the tubular waveguide applicator at the second end of the tubular waveguide applicator; a first resistive choke connected in series with the tubular waveguide applicator and the first reactive choke; and a second resistive choke connected in series with the tubular waveguide applicator and the second reactive choke; wherein the microwave source supplies microwaves with a dominant TE.sub.01 mode into the tubular waveguide applicator to produce a maximum electric field in the heating chamber midway between the centerline and the outer walls of the tubular waveguide applicator.
7. A microwave heating apparatus as in claim 6 wherein each of the first and second resistive chokes includes a plurality of V-shaped conductive vanes covered with a microwave-absorbent material and spaced apart along the axis in a chevron pattern, wherein the V- shaped conductive vanes have central apertures aligned with the heating chamber to pass articles to be treated in the heating chamber through the first and second resistive chokes.
8. A microwave heating apparatus as in claim 7 further comprising microwave-transparent tubes extending through the central apertures in the first and second resistive chokes to guide articles to be heated in the heating chamber through the first and second resistive chokes.
9. A microwave heating apparatus as in claim 6 wherein the first reactive choke is between the first resistive choke and the first end of the tubular waveguide applicator and the second reactive choke is disposed between the second resistive choke and the second end of the tubular waveguide applicator.
10. A microwave heating apparatus as in claim 6 further comprising a plurality of microwave-transparent ribs circumferentially spaced apart and extending inward from the cylindrical outer wall into the heating chamber to inner ends bounding a central bore to guide articles passing through the heating chamber.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) These features of the invention are described in more detail in the following description, appended claims, and accompanying drawings, in which:
(2)
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DETAILED DESCRIPTION
(7) A microwave heating apparatus embodying features of the invention, including a tubular waveguide applicator, is shown in
(8) A microwave source 17 injects microwaves 18, for example, at 915 MHz or 2540 MHz, into the waveguide applicator 10 through a rectangular waveguide feed 20 at an entrance end 22 of the applicator. The microwaves propagate along the waveguide applicator 10 from the entrance end 22 to an exit end 23. The microwaves travel through the interior of the applicator 10 in a direction of propagation 24 parallel to the axis 25 of the applicator. Microwave energy unabsorbed by the articles to be treated in the heating chamber exits the exit end 23 through a rectangular waveguide segment 21 to a dummy load 26, which prevents reflections back into the applicator. But it would also be possible to operate without a dummy load and allow the microwave energy to reflect back through the applicator 10 toward the entrance end 22 and, in that way, double the effective length of the applicator. The shorter sides 27 of the rectangular waveguide feed 20, which define the feed's E plane, are perpendicular to the axis 25 of the applicator 10 to produce an electric field pattern in which the TE.sub.01 mode is dominant.
(9) As shown in
(10) As shown in
(11) The chokes 34 closer to the applicator are reactive chokes that reflect microwave energy back into the applicator. The reactive chokes 34 are positioned at the ends 22, 23 of the applicator 10. The reactive chokes 34 shown in
(12) Because of the large opening required to accommodate large-diameter articles entering and exiting the reactive chokes 34, the reactive chokes may not reduce leakage enough. So resistive, absorbing choke boxes 42 (