Claims
- 1. A method of producing aluminum in an electrolytic cell containing alumina dissolved in a molten electrolyte, the method comprising:
(a) providing a molten salt electrolyte having alumina dissolved therein in an electrolytic cell having a liner containing molten electrolyte and a pool of molten aluminum, said liner having a cell bottom and walls extending upwardly from said cell bottom, said pool of molten aluminum located on said cell bottom and molten electrolyte located on top of said pool of molten aluminum; (b) locating an anode assembly in said electrolyte above said pool of molten aluminum, said anode assembly comprised of:
(i) a first side, a second side and an anode bottom, said first and second sides disposed substantially opposite each other; (ii) two anode panels extending in a generally vertical direction between said first side and said second side to form a cathode slot, said assembly containing a plurality of spaced-apart cathode slots defining a region therebetween; (c) providing a cathode in each of said cathode slots, said cathode having a bottom end, said anode bottom having an opening therein opposite said bottom end of said cathode; (d) passing electric current through said anode assembly to flow electric current from said anode panels through said electrolyte to said cathode, depositing aluminum at said cathode and producing gas at said anodes; (e) draining aluminum from said bottom end of said cathode through said opening in said anode bottom to said pool of molten aluminum; and (f) circulating molten electrolyte upwardly in said cathode slot between said anode panels and said cathode and downwardly outside said cathode slots.
- 2. The method in accordance with claim 1 wherein said electrolyte is comprised of one or more alkali metal fluorides.
- 3. The method in accordance with claim 1 wherein said electrolyte is comprised of one or more alkali metal fluorides and aluminum fluoride.
- 4. The method in accordance with claim 1 including maintaining said electrolyte in a temperature range of about 660° to 860° C.
- 5. The method in accordance with claim 1 wherein said electrolyte has a melting point in the range of 715° to 860° C.
- 6. 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.
- 7. The method in accordance with claim 1 wherein said anodes are comprised of 10 to 70 wt. % Cu, 15 to 60 wt. % Ni, the remainder iron, incidental elements and impurities.
- 8. The method in accordance with claim 7 wherein said cathodes are selected from the group consisting of titanium diboride, zirconium diboride, titanium carbide, zirconium carbide and molybdenum.
- 9. The method in accordance with claim 1 including adding alumina to said cell on a substantially continuous basis.
- 10. The method in accordance with claim 1 including maintaining alumina in said electrolyte in excess of solubility.
- 11. The method in accordance with claim 1 including adding said alumina to the surface of said electrolyte substantially opposite said anode assembly to ingest alumina in said electrolyte circulating downwardly in regions between said cathode slots.
- 12. The method in accordance with claim 1 wherein said anode panels are perforated to flow alumina-rich electrolyte into said cathode slot.
- 13. The method in accordance with claim 1 wherein said anode panels have openings therein adjacent said anode bottom to flow alumina-rich electrolyte into said cathode slot and upwardly between said anode plates and said cathode.
- 14. The method in accordance with claim 1 wherein said anode assembly is box shaped.
- 15. The anode box in accordance with claim 1 wherein said anode box is comprised of a material selected from the group consisting of cermet, metal and metal alloy.
- 16. The anode box in accordance with claim 1 wherein said anode box is comprised of a Cu—Ni—Fe alloy.
- 17. In an improved method of producing aluminum in an electrolytic cell containing alumina dissolved in a molten electrolyte, using substantially nonconsumable anodes and cathodes in the electrolytic cell, the cell having a liner containing molten electrolyte resting on a pool of molten aluminum, the improved method comprising:
(a) providing a substantially inert anode box in said electrolyte above said pool of molten aluminum, said anode box comprised of:
(i) a first side, a second side and an anode bottom, said first and second sides disposed substantially opposite each other; and (ii) two anode panels extending in a generally vertical direction between said first side and said second side to form a cathode slot, said box containing a plurality of spaced-apart cathode slots defining a region therebetween; (b) locating an inert cathode having bottom end in said cathode slot, said anode bottom having an opening therein substantially opposite said bottom end of said cathode; (c) passing electric current through said anode box to flow electric current from said anode panels through said electrolyte to said cathode, depositing aluminum at said cathode and generating gas at said anode panels; (d) circulating molten electrolyte upwardly in said cathode slot and downwardly in the region between said cathode slots; and (e) draining aluminum from said bottom end of said cathode through said opening in said anode bottom to said pool of molten aluminum.
- 18. The method in accordance with claim 17 wherein said electrolyte is comprised of one or more alkali metal fluorides.
- 19. The method in accordance with claim 17 wherein said electrolyte is comprised of one or more alkali metal fluorides and aluminum fluoride.
- 20. The method in accordance with claim 17 including maintaining said electrolyte in a temperature range of about 660° to 860° C.
- 21. The method in accordance with claim 17 wherein said electrolyte has a melting point in the range of 715° to 860° C.
- 22. The method in accordance with claim 17 including passing an electric current through said cell at a current density in the range of 0.1 to 1.5 A/cm2.
- 23. The method in accordance with claim 17 wherein said anodes are comprised of 10 to 70 wt. % Cu, 15 to 60 wt. % Ni, the remainder iron, incidental elements and impurities.
- 24. The method in accordance with claim 23 wherein said cathodes are selected from the group consisting of titanium diboride, zirconium diboride, titanium carbide, zirconium carbide and molybdenum.
- 25. The method in accordance with claim 17 including adding alumina to said cell on a substantially continuous basis.
- 26. The method in accordance with claim 17 including maintaining alumina in said electrolyte in excess of solubility.
- 27. The method in accordance with claim 17 including adding said alumina to the surface of said electrolyte substantially opposite said anode assembly to ingest alumina in said electrolyte circulating downwardly in regions between said cathode slote.
- 28. The method in accordance with claim 17 wherein said anode panels are perforated to flow alumina-rich electrolyte into said cathode slot.
- 29. The method in accordance with claim 17 wherein said anode panels have openings therein adjacent said anode bottom to flow alumina-rich electrolyte into said cathode slot and upwardly between said anode plates and said cathode.
- 30. The anode box in accordance with claim 17 wherein said anode box is comprised of a material selected from the group consisting of cermet, metal and metal alloy.
- 31. The anode box in accordance with claim 17 wherein said anode box is comprised of a Cu—Ni—Fe alloy.
- 32. An improved anode for use in an electrolytic cell for producing aluminum from alumina dissolved in molten salt electrolyte contained in said cell, wherein aluminum is deposited at a substantially inert cathode and gas is generated at a substantially inert anode box when electric current is passed through the cell, the cell having a liner for containing molten electrolyte in a layer above a pool of molten aluminum, said anode box designed to be disposed in said electrolyte above said pool of molten aluminum, said anode box comprised of:
(a) a first side, a second side and an anode bottom, said first and second sides disposed substantially opposite each other and attached to said bottom; (b) two anode panels extending in a generally vertical direction between said first side and said second side to form a cathode slot for receiving a cathode to provide two anode panels for each cathode, said box containing a plurality of spaced-apart cathode slots; and (c) said anode bottom having an opening therein substantially opposite said cathode to permit molten aluminum to drain from said cathode to said pool of molten aluminum during electrolysis.
- 33. The anode box in accordance with claim 32 wherein said anode box is comprised of a material selected from the group consisting of cermet, metal and metal alloy.
- 34. The anode box in accordance with claim 32 wherein said anode box is comprised of a Cu—Ni—Fe alloy.
- 35. The anode box in accordance with claim 32 wherein said anode box is comprised of 10 to 70 wt. % Cu, 15 to 60 wt. % Ni, the remainder iron, incidental elements and impurities.
- 36. The anode box in accordance with claim 32 wherein said anode box is comprised of 20 to 50 wt. % Cu, 20 to 40 wt. % Ni, and 20 to 40 wt. % Fe.
- 37. The anode box in accordance with claim 32 wherein said anode panels are perforated to flow alumina-rich electrolyte into said cathode slot.
- 38. The anode box in accordance with claim 32 wherein said anode panels have openings therein adjacent said anode bottom to flow alumina-rich electrolyte into said cathode slot and upwardly between said anode plates and said cathode.
- 39. The anode box in accordance with claim 32 wherein the cathode slots are spaced apart to permit electrolyte flow downwardly between said cathode slots.
- 40. An improved anode for use in an electrolytic cell for producing aluminum from alumina dissolved in molten salt electrolyte contained in said cell, wherein aluminum is deposited at a substantially inert cathode and gas is generated at a substantially inert anode box when electric current is passed through the cell, the cell containing molten electrolyte in a layer above a pool of molten aluminum, said anode box designed to be disposed in said electrolyte above said pool of molten aluminum, said anode box comprised of:
(a) a first side, a second side and an anode bottom, said first and second sides disposed substantially opposite each other and attached to said bottom; (b) anode panels extending in a generally vertical direction between said first side and said second side to form a cathode slot for receiving a cathode to provide two anode panels for each cathode, said box containing a plurality of spaced-apart cathode slots, said anode panels having openings therein adjacent said anode bottom to flow alumina-rich electrolyte into said cathode slot; and (c) said anode bottom having an opening therein substantially opposite said cathode to permit molten aluminum to drain from said cathode to said pool of molten aluminum during electrolysis.
- 41. An improved electrolytic cell for producing aluminum from alumina dissolved in a molten electrolyte, the cell comprised of:
(a) a vessel therein having a liner for containing molten electrolyte and a pool of molten aluminum, said liner having a cell bottom and walls extending upwardly from said bottom, the liner designed to contain said pool of molten aluminum on said bottom and molten electrolyte located in top of said pool of molten aluminum; (b) an anode box adapted to be located in said electrolyte above said pool of molten aluminum, said anode box comprised of:
(i) a first side, a second side and an anode bottom, said first and second sides disposed substantially opposite each other; (ii) two anode panels extending in a generally vertical direction between said first side and said second side to form a cathode slot, said box containing a plurality of cathode slots spaced apart to provide a region therebetween; (c) a cathode provided in each of said cathode slots, said cathode having a bottom end, said anode bottom having an opening therein opposite said bottom end of said cathode; (d) means for passing electric current through said anode box to flow electric current from said anode panels through said electrolyte to said cathode to deposit aluminum at said cathode and produced gas at said anode panels; (e) means for draining aluminum from said bottom end of said cathode through said opening in said anode bottom to said pool of molten aluminum; and (f) means for circulating molten electrolyte upwardly in said cathode slot between said anode panels and said cathode and downwardly outside said cathode slot.
- 42. The cell in accordance with claim 41 wherein said anode box is comprised of a material selected from the group consisting of cermet, metal and metal alloy.
- 43. The cell in accordance with claim 41 wherein said anode box is comprised of a Cu—Ni—Fe alloy.
- 44. The cell in accordance with claim 41 wherein said anode box is comprised of 10 to 70 wt. % Cu, 15 to 60 wt. % Ni, the remainder iron, incidental elements and impurities.
- 45. The cell in accordance with claim 41 wherein said anode box is comprised of 20 to 50 wt. % Cu, 20 to 40 wt. % Ni, and 20 to 40 wt. % Fe.
- 46. The cell in accordance with claim 41 wherein said anode panels are perforated to flow alumina-rich electrolyte into said cathode slot.
- 47. The cell in accordance with claim 41 wherein said anode panels have openings therein adjacent said anode bottom to flow alumina-rich electrolyte into said cathode slot and upwardly between said anode plates and said cathode.
- 48. The cell in accordance with claim 41 wherein the cathode slots are spaced apart to permit electrolyte flow downwardly between said cathode slots.
CROSS REFERENCE TO RELATED APPLICATIONS
[0001] This application is a continuation-in-part of U.S. Ser. No. 10/195,733, filed Jul. 16, 2002, and also claims the benefit of U.S. provisional application Serial No. 60/434,108, filed Dec. 17, 2002.
Government Interests
[0002] The government has rights in this invention pursuant to Contract No. DE-FC07-98ID13662 awarded by the Department of Energy.
Provisional Applications (1)
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Number |
Date |
Country |
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60434108 |
Dec 2002 |
US |
Continuation in Parts (1)
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Number |
Date |
Country |
Parent |
10195733 |
Jul 2002 |
US |
Child |
10387602 |
Mar 2003 |
US |