Claims
- 1. The method of producing aluminum in a low temperature electrolytic cell containing alumina dissolved in a molten electrolyte, the method comprising the steps of:
(a) providing a molten electrolyte having alumina dissolved therein in an electrolytic cell; (b) providing an anode and a cathode disposed in said electrolyte, the anode comprised of a Cu—Ni—Fe alloy having a single microstructural phase; (c) passing electric current from said anode through said electrolyte to said cathode thereby depositing aluminum on said cathode; and (d) collecting molten aluminum from said cathode.
- 2. The method in accordance with claim 1 including operating said cell to maintain said electrolyte in a temperature range of about 660° to 800° C.
- 3. The method in accordance with claim 1 including using an electrolyte comprised of one or more alkali metal fluorides.
- 4. The method in accordance with claim 4 including maintaining up to 30 wt. % undissolved alumina particles in said electrolyte to provide a slurry therein.
- 5. The method in accordance with claim 4 wherein undissolved alumina has a particle size in the range of 1 to 100 μm.
- 6. The method in accordance with claim 1 wherein Fe in said anode ranges from 1 to 50 wt. %.
- 7. The method in accordance with claim 1 including passing an electric current through said cell at a current density in the range of 0.1 to 1.5 A/cm2.
- 8. The method in accordance with claim 1 including using a cathode comprised of a material selected from the group consisting of titanium diboride, zirconium boride, titanium carbide, zirconium carbide and titanium.
- 9. The method in accordance with claim 1 including providing said anode and said cathode substantially vertical or upright in said electrolyte and arranging said anodes and said cathode in alternating relationship.
- 10. The method in accordance with claim 1 wherein said anode is comprised of 10 to 70 wt. % Cu, and 15 to 60 wt. % Ni, the remainder iron, incidental elements and impurities.
- 11. The method in accordance with claim 1 wherein said anodes are cast from a melt of Cu—Ni—Fe and heated to provide said single microstructural phase.
- 12. The method in accordance with claim 1 wherein said cell is comprised of metal bottom and sidewalls for containing said electrolyte, at least one of said bottom and sidewalls comprised of a composition which is the same as said anode.
- 13. The method in accordance with claim 14 wherein at least one of said metal bottom and sidewalls are electrically connected to said anodes thereby making at least one of said bottom and sidewalls anodic.
- 14. The method in accordance with claim 1 wherein said electrolyte is comprised of one or more alkali metal fluorides and at least one metal fluoride.
- 15. The method in accordance with claim 1 wherein said electrolyte is comprised of NaF and AlF3.
- 16. A method of producing aluminum in a low temperature electrolytic cell containing alumina dissolved in an electrolyte, the method comprising the steps of:
(a) providing a cell comprising a vessel having a bottom and walls extending upwardly from said bottom for containing electrolyte; (b) providing a molten electrolyte having alumina dissolved therein in said vessel; (c) providing a plurality of generally vertically disposed anodes and a plurality of generally vertically disposed cathodes in said electrolyte in alternating relationship with said anodes, wherein said anodes are cast anodes comprised of about 10 to 70 wt. % Cu, 15 to 60 wt. % Ni, and 15 to 40 wt % Fe and having a single microstructural phase; (d) passing an electric current through said vessel to said anodes and through said electrolyte to said cathodes, thereby depositing aluminum on said cathodes; and (e) collecting aluminum from said cathodes.
- 17. The method in accordance with claim 16 wherein said electrolyte is comprised of one or more alkali metal fluorides and at least one metal fluoride.
- 18. The method in accordance with claim 16 wherein said electrolyte is comprised of NaF and AlF3.
- 19. The method in accordance with claim 16 wherein said cast anodes are heated to provide said single metallurgical phase.
- 20. In an electrolytic cell for the production of aluminum from alumina dissolved in an electrolyte contained in the cell, wherein a plurality of non-consumable anodes and cathodes are disposed in a vertical direction in the electrolyte in alternating relationship wherein electric current is passed from said anodes through said cathodes and aluminum is deposited on said cathodes, the improvement wherein said anodes are cast anodes having a single microstructural phase comprised of 10 to 70 wt. % Cu, and 15 to 60 wt. % Ni, the balance Fe and incidental elements and impurities.
- 21. The method in accordance with claim 19 wherein said electrolyte is comprised of one or more alkali metal fluorides and at least one metal fluoride.
- 22. An electrolytic cell for the production of aluminum from alumina dissolved in an electrolyte contained in the cell, the cell comprising:
(a) a vessel having a bottom and walls extending upwardly from said bottom, and an interior metal lining for containing electrolyte; (b) a plurality of anodes disposed in said vessel, said anodes comprised of 10 to 70 wt. % Cu, and 15 to 60 wt. % Ni, the balance Fe and incidental elements and impurities, the anodes are cast anodes having a single microstructural phase; (c) a plurality of cathodes disposed in said vessel in alternating relationship with said anodes, said cell designed to pass electric current from said anodes through said electrolyte to said cathodes to deposit aluminum at said cathodes; and (d) means provided for removing aluminum from said cell.
- 23. The cell in accordance with claim 22 wherein said anodes are comprised of 10 to 70 wt. % Cu, 15 to 60 wt. % Ni, and 1 to 40 wt. % Fe.
- 24. A non-consumable anode suitable for use in a low temperature electrolytic cell for the production of aluminum from alumina dissolved in an electrolyte contained in the cell, the anode consisting essentially of copper, nickel and iron, incidental elements and impurities, the anode having a single microstructural phase.
- 25. The anode in accordance with claim 24 wherein the anode is comprised of 10 to 70 wt. % Cu, 15 to 60 wt. % Ni, and 1 to 40 wt. % Fe.
- 26. The anode in accordance with claim 24 wherein the anode is comprised of 20 to 50 wt. % Cu, 20 to 40 wt. % Ni, and 20 to 40 wt. % Fe.
- 27. The anode in accordance with claim 24 wherein said anode is composed of sintered metal powders.
- 28. The anode in accordance with claim 24 wherein said anode is a cast anode.
- 29. The anode in accordance with claim 24 wherein said anode is a cast anode subjected to homogenization to provide said single metallurgical phase.
- 30. The anode in accordance with claim 29 wherein said homogenization is carried out in a temperature range of 950° to 1250° C.
- 31. The anode in accordance with claim 24 wherein said anode is an anode cast from a melt having a composition of 10 to less than 50 wt. % Cu, and 15 to 60 wt. % Ni, the balance Fe, incidental elements and impurities.
Government Interests
[0001] The invention embodied in the subject matter described herein was made during work financed by the following government contract: Department of Energy Office of Industrial Technologies Contract #DE-FC07-98ID13662.