Claims
- 1. A microwave furnace for treating nuclear fuel at temperatures of between 20 and 2000° C. and an average temperature of between 1220 and 1800° C., comprising:
a resonance chamber shielded on all sides by walls reflecting microwaves; a gassing and degassing system associated with said resonance chamber; at least one holder for nuclear fuel in said resonance chamber; an access for introducing nuclear fuel into and removing nuclear fuel from said resonance chamber; an antenna cavity; at least one waveguide closed at one end thereof and opening into said antenna cavity at an opposite end thereof; a microwave radiator fitted in said at least one waveguide, said at least one antenna cavity being shielded on all sides by walls reflecting microwaves except at the opening into said at least one waveguide and being matched to a frequency of said microwave radiator for generating a stationary wave; and a separating wall separating said antenna cavity from said resonance chamber, said separating wall having at least one narrow opening formed therein providing an interconnection between said antenna cavity and said resonance chamber, said at least one narrow opening being slots.
- 2. The furnace according to claim 1, wherein said antenna cavity has sides, and one of said sides is formed at least 95% by said separating wall and at most 5% by said interconnection to said resonance chamber.
- 3. A microwave furnace for producing sintered nuclear fuel compacts by sintering molded green compacts of nuclear fuel in a sintering gas at average temperatures of between 1200 and 1800° C., comprising:
an elongate resonance chamber shielded on all sides by walls reflecting microwaves, said resonance chamber having a longitudinal side and a longitudinal direction; a gassing and degassing system associated with said resonance chamber; at least one elongate holder associated with said resonance chamber for holding green compacts; an access associated with said resonance chamber for introduction of green compacts and removal of sintered compacts; a waveguide having a closed end; a microwave radiator disposed at said closed end of said waveguide, said microwave radiator having a frequency; said waveguide being positioned on said longitudinal side of said resonance chamber and having an open end opposite to said closed end, said waveguide further forming a rectilinear channel piece at least at said open end; a cuboidal elongate antenna cavity having an opening; said rectilinear channel piece having a rectangular cross-section matched to said frequency of said microwave radiator and leading into said opening of said cuboidal elongate antenna cavity; said cuboidal elongate antenna cavity being shielded on all sides except at said opening by walls reflecting microwaves and being constructed for formation of a stationary wave of said frequency of said microwave radiator; and a separating wall separating said antenna cavity from said resonance chamber; said antenna cavity being connected to said resonance chamber by a plurality of slots mutually offset in said longitudinal direction of said resonance chamber.
- 4. The furnace according to claim 3, including a diaphragm disposed in said waveguide between said microwave radiator and said open end leading into said cuboidal elongate antenna cavity.
- 5. The furnace according to claim 3, wherein said microwave radiator has a frequency of 0.4 to 30 GHz.
- 6. The furnace according to claim 3, wherein said microwave radiator has a frequency of 915 MHz.
- 7. The furnace according to claim 3, wherein said microwave radiator has a frequency of 2.45 GHz.
- 8. The furnace according to claim 3, wherein said microwave radiator is selected from the group consisting of a magnetron and a klystron.
- 9. The furnace according to claim 3, wherein said microwave radiator has an output between 1 and 4 Kw.
- 10. The furnace according to claim 3, including a terminating plunger with a microwave-reflecting surface for varying a length of said cuboidal elongate antenna cavity.
- 11. The furnace according to claim 3, including at least one further antenna cavity connected through slots to said resonance chamber, at least one further waveguide opening into said at least one further antenna cavity, and at least one further microwave radiator associated with said at least one further waveguide.
- 12. The furnace according to claim 3, wherein said resonance chamber includes two subchambers disposed one behind the other, said cuboidal elongate antenna cavity is at least one cuboidal elongate antenna cavity fed by said microwave radiator and connected through said plurality of slots to said subchambers, and said at least one holder for fuel extends through both of said subchambers.
- 13. The furnace according to claim 3, wherein said waveguide and said cuboidal elongate antenna cavity have the same cross section.
- 14. The furnace according to claim 3, wherein said resonance chamber has a cuboidal cross section being larger than a cross section of said cuboidal elongate antenna cavity.
- 15. The furnace according to claim 3, wherein said resonance chamber has a side formed by said separating wall and a cuboidal cross section being larger than a cross section of said cuboidal elongate antenna cavity at said side formed by said separating wall.
- 16. The furnace according to claim 3, wherein said resonance chamber has a cross section with sides being at least one quarter and at most 4 times a wavelength of microwave radiation in air.
- 17. The furnace according to claim 3, including a microwave-transparent thermal insulation fitted in said resonance chamber between nuclear fuel and said walls.
- 18. The furnace according to claim 3, wherein said walls of at least one of said resonance chamber and said cuboidal elongate antenna cavity are mirrored.
- 19. The furnace according to claim 3, wherein said walls of at least one of said resonance chamber and said cuboidal elongate antenna cavity are polished.
- 20. The furnace according to claim 3, wherein said at least one holder is a plurality of holders in said resonance chamber each for holding one respective layer of nuclear fuel.
- 21. The furnace according to claim 20, wherein the nuclear fuel is disposed in the layers approximately symmetrically about a longitudinal axis of said resonance chamber.
- 22. The furnace according to claim 3, wherein said at least one holder includes a ceramic tube disposed approximately centrally in said resonance chamber, surrounding the fuel and extending entirely through said resonance chamber.
Priority Claims (1)
Number |
Date |
Country |
Kind |
198 06 868.9 |
Feb 1998 |
DE |
|
CROSS-REFERENCE TO RELATED APPLICATION
[0001] This application is a division of U.S. application Ser. No. 09/643,183, which was a continuation of International Application No. PCT/EP99/01078, filed Feb. 19, 1999, which designated the United States, and which was not published in English.
Divisions (1)
|
Number |
Date |
Country |
Parent |
09643183 |
Aug 2000 |
US |
Child |
10180441 |
Jun 2002 |
US |
Continuations (1)
|
Number |
Date |
Country |
Parent |
PCT/EP99/01078 |
Feb 1999 |
US |
Child |
09643183 |
Aug 2000 |
US |