Claims
- 1. A nuclear fuel electrorefiner for recovering uranium from nuclear material containing uranium, comprising a cylindrical vessel having a longitudinal axis containing at the bottom thereof a product collector movable axially of said cylindrical vessel, at least one cathode generally circular in horizontal cross section extending axially of and radially spaced inwardly of said vessel, a plurality of generally polyhedron-shaped anode baskets extending axially of said vessel, each anode basket having at least one face aligned with a radius of said vessel and circumferentially spaced from adjacent anode baskets and concentric with respect to said cathode, mechanism outside of said vessel rotating said generally polyhedron-shaped anode baskets with respect to said cathode, and an electrical power supply in selective electrical communication with said cathode and said anode baskets for causing uranium values in said anode baskets in the presence of a molten electrolyte containing uranium cations to move between said anode baskets and said cathode where uranium values are reduced to uranium metal and thereafter uranium metal is transported from said cathode to said product collector axially removable from said vessel without removing either said anode baskets or said cathode.
- 2. The nuclear fuel electrorefiner of claim 1, wherein said cathode is a metal conductor.
- 3. The nuclear fuel electrorefiner of claim 1, wherein said cathode is steel.
- 4. The nuclear fuel electrorefiner of claim 1, wherein said cathode is steel coated with tungsten.
- 5. The nuclear fuel electrorefiner of claim 1, wherein said anode baskets have perforated faces.
- 6. The nuclear fuel electrorefiner of claim 1, wherein said anode baskets are generally hexahedron shaped having four axially extending faces.
- 7. The nuclear fuel electrorefiner of claim 6, wherein each anode basket has two axially extending faces aligned with a radius of said vessel and are longer in horizontal cross section than the other two axially extending faces.
- 8. The nuclear fuel electrorefiner of claim 1, wherein said anode baskets are generally pentahedron-shaped.
- 9. The nuclear fuel electrorefiner of claim 1, wherein said anode baskets rotate with respect to said cathode and said product collector.
- 10. The nuclear fuel electrorefiner of claim 1, wherein there is more than one cathode.
- 11. The nuclear fuel electrorefiner of claim 1, wherein there are a plurality of concentrically positioned cathodes and anode baskets.
- 12. The nuclear electrorefiner of claim 1, wherein there is at least one cathode exterior to each anode basket.
- 13. The nuclear electrorefiner of claim 1, wherein said anode baskets during rotation scrape at least some of the uranium metal deposited on an adjacent cathode to enhance transportation of uranium metal from said adjacent cathode to said product collector.
- 14. The nuclear electrorefiner of claim 1, and further comprising a product diverter positioned below said cathode sloping toward said product collector to direct uranium metal from said cathode to said product collector.
- 15. The nuclear electrorefiner of claim 14, wherein at least a portion of said product diverter is frustum shaped.
- 16. The nuclear electrorefiner of claim 15, and further including a scraper rotatable with said anode baskets for scraping uranium metal from said cathode and/or said product diverter.
- 17. A nuclear fuel electrorefiner for recovering uranium from nuclear material containing uranium, comprising a cylindrical vessel having a longitudinal axis containing at the bottom thereof a product collector movable axially of said cylindrical vessel, at least one cathode generally circular in horizontal cross section extending axially of and radially spaced inwardly of said vessel, a plurality of generally polyhedron-shaped anode baskets extending axially of said vessel, each anode basket having at least one face aligned with a radius of said vessel and circumferentially spaced from adjacent anode baskets and concentric with respect to said cathode, a plurality of axially extending metal rods spaced circumferentially about said longitudinal axis electrically insulated from and between at least some of said polyhedron-shaped anode baskets, mechanism outside of said vessel rotating said generally polyhedron-shaped anode baskets and said metal rods with respect to said cathode, and an electrical power supply in selective electrical communication with said cathode and said anode baskets and said metal rods and when current flow is in a first direction uranium values in said anode baskets in the presence of a molten electrolyte containing uranium cations move between said anode baskets and said cathode where uranium values are reduced to uranium metal and when current is flowing reversely to the first direction uranium metal is transported from said cathode to said axially extending metal rods and when current again flows in the first direction uranium values are all transported from said anode baskets and said metal rods to said cathode and to said product collector axially removable from said vessel without removing either said anode baskets or said metal rods or said cathode.
- 18. The nuclear electrorefiner of claim 17, wherein each of said anode baskets is generally hexahedron shaped having four axially extending faces, two of said faces being generally aligned with a radius of said vessel and longer in horizontal cross section than the other two axially extending faces.
- 19. The nuclear electrorefiner of claim 18, wherein said axially extending anode baskets have the longer faces thereof perforated.
- 20. The nuclear electrorefiner of claim 19, wherein at least one axially extending metal rod is positioned between adjacent anode baskets.
- 21. The nuclear electrorefiner of claim 20, wherein said anode baskets are carried by an annular plate extending inwardly from said vessel and said metal rods extend through said plate.
- 22. The nuclear electrorefiner of claim 21, wherein there are a plurality of concentric cathodes, each substantially circular in horizontal cross section.
- 23. The nuclear electrorefiner of claim 22, wherein anode baskets are intermediate adjacent cathodes.
- 24. The nuclear electrorefiner of claim 23, wherein said anode baskets during rotation scrape at least some of the uranium metal deposited on an adjacent cathode to enhance transportation of uranium metal from said adjacent cathode to said product collector.
- 25. The nuclear electrorefiner of claim 24, and further comprising a product diverter positioned below said cathode sloping toward said product collector to direct uranium metal from said cathode to said product collector.
- 26. The nuclear electrorefiner of claim 25, wherein at least a portion of said product diverter is frustum shaped.
- 27. The nuclear electrorefiner of claim 26, and further including a scraper rotatable with respect to said cathode for scraping uranium metal from said cathode and/or said product diverter.
- 28. A nuclear fuel electrorefiner for recovering uranium from nuclear material containing uranium, comprising a cylindrical vessel having a longitudinal axis containing at the bottom thereof a product collector movable axially of said cylindrical vessel, a plurality of concentric radially spaced apart cathodes generally circular in horizontal cross section extending axially of said vessel, a plurality of generally polyhedron-shaped anode baskets extending axially of said vessel, each anode basket having at least one face aligned with a radius of said vessel and circumferentially spaced from adjacent anode baskets and concentric with respect to said cathodes, a plurality of axially extending metal rods spaced circumferentially about said longitudinal axis electrically insulated from and between at least some of said polyhedron-shaped anode baskets, mechanism outside of said vessel rotating said generally polyhedron-shaped anode baskets and said metal rods with respect to said cathodes, and an electrical power supply in selective electrical communication with said cathodes and said anode baskets and said metal rods and when current flow is in a first direction uranium values in said anode baskets in the presence of a molten electrolyte containing uranium cations move between said anode baskets and said cathodes where uranium values are reduced to uranium metal and when current is flowing reversely to the first direction uranium metal is transported from said cathodes to said axially extending metal rods and when current again flows in the first direction uranium values are simultaneously transported from said anode baskets and said metal rods to said cathodes and said product collector axially removable from said vessel without removing either said anode baskets or said metal rods or said cathodes.
- 29. The nuclear fuel electrorefiner of claim 28, wherein said anode baskets are generally hexahedron shaped having four axially extending faces at least two of which are perforated.
- 30. The nuclear fuel electrorefiner of claim 29, wherein each anode basket has two perforated axially extending faces generally aligned with a radius of said vessel and are longer in horizontal cross section than the other two axially extending faces.
- 31. The nuclear fuel electrorefiner of claim 30, wherein an axially extending metal rod is positioned between each anode basket and the adjacent anode basket.
- 32. The nuclear electrorefiner of claim 31, and further comprising a product diverter positioned below said cathodes sloping toward said product collector to direct uranium metal from said cathodes to said product collector.
- 33. The nuclear electrorefiner of claim 32, wherein at least a portion of said product diverter is frustum shaped.
- 34. The nuclear electrorefiner of claim 33, and further including a scraper rotatable with said anode baskets for scraping uranium metal from said cathodes and/or said product diverter.
- 35. The nuclear electrorefiner of claim 28, wherein there are independent electrical power supplies between said cathodes and said anode baskets and between said cathodes and said metal rods.
Government Interests
[0001] The United States Government has rights in this invention pursuant to Contract No. W-31-109-ENG-38 between the U.S. Department of Energy (DOE) and The University of Chicago representing Argonne National Laboratory.