Claims
- 1. A cell component for the electrowinning of aluminum by the electrolysis of alumina dissolved in a molten fluoride electrolyte, comprising;a porous micropyretic reaction product of particulate nickel, aluminum, iron and optionally, copper, and of at least one additive element selected from the group consisting of silicon, tin, zinc, vanadium, indium, hafnium, tungsten, elements from the lanthanide series starting from praesodymium, and misch metal, in an amount ranging from 0.5 up to 8 wt % of the total, the porous micropyretic reaction product containing metallic and intermetallic phases, said additive elements being supplied in the form of an elemental powder, oxides of said elements, other compounds of said elements or mixtures thereof.
- 2. The cell component of claim 1, comprising a composite oxide surface formed in-situ by anodically polarizing the micropyretic reaction product in a molten fluoride electrolyte containing dissolved alumina, or ex situ by oxidizing the surface of the nicropyretic reaction product in an oxidizing gas at high temperature.
- 3. The cell component of claim 2, wherein said composite oxide surface comprises an iron-rich relatively dense outer portion and an aluminate-rich relatively porous inner portion.
- 4. The cell component of claim 2, which is an anode.
- 5. The cell component of claim 2, wherein the composite oxide surface comprises nickel oxide, nickel ferrite and complex oxides including oxides of the additive element(s).
- 6. The cell component of claim 5, wherein the additive element is zinc and said complex oxides include nickel-zinc ferrite.
- 7. The cell component of claim 6, wherein said composite oxide surface comprises nickel oxide, nickel ferrite, zinc oxide and nickel-zinc ferrite.
- 8. The cell component of claim 2, which is an anode, the composite oxide surface whereof is coated with a coating of cerium oxyfluoride.
- 9. The cell component of claim 1, wherein the micropyretic reaction product is produced from particulate nickel, aluminum, iron, copper and the additive element in the amounts 50-90 wt % nickel, 3-20 wt % aluminum, 5-20 wt % iron, 0-15 wt % copper and 0.5-5 wt % of said at least one additive element from the group consisting of silicon, tin, zinc, vanadium, indium, hafnium, tungsten, elements from the lanthanide series starting from praesodymium, and misch metal.
- 10. The cell component of claim 9, wherein the micropyretic reaction product is produced from 60-80% wt % nickel, 3-10 wt % aluminum, 5-20 wt % iron, 5-15 wt % copper and 0.5-5 wt % of said at least one additive element from the group consisting of silicon, tin, zinc, vanadium, indium, hafnium, tungsten, elements from the lanthanide series starting from praesodymium, and misch metal.
- 11. The cell component of claim 1, produced from a mixture containing said at least one additive element from the group consisting of silicon, tin, zinc, vanadium, indium, hafnium, tungsten, elements from the lanthanide series starting from praesodymium, and misch metal in an amount of 0.5 to 5 wt % of the total, and at least one further additive element from the group consisting of chromium, manganese, titanium, molybdenum, cobalt, zirconium, niobium, tantalum, yttrium, cerium, lanthanum, oxygen, boron and nitrogen, the amount of all additives not exceeding 8 wt % of the total.
- 12. The cell component of claim 1, produced from a mixture comprising silicon as additive element in an amount of from 0.5 to 5 wt % of the total.
- 13. The cell component of claim 1, produced from a mixture comprising tin as additive element in an amount of from 0.5 to 5 wt % of the total.
- 14. The cell component of claim 1, produced from a mixture comprising zinc as additive element in an amount of from 0.5 to 5 wt % of the total.
- 15. The cell component of claim 1, wherein the micropyretic reaction product comprises at least one ordered intermetallic compound from the group consisting of nickel-iron, nickel-aluminum, aluminum-iron, nickel-aluminum-copper and nickel-aluminum iron-copper containing intermetallic compounds.
- 16. The cell component of claim 15, wherein the micropyretic reaction product comprises Ni, Ni3Al, NiCu and NiFe.
- 17. A method of manufacturing a cell component for the electrowinning of alumina by the electrolysis of alumina in a molten fluoride electrolyte, comprising:initiating a micropyretic reaction of a mixture of particulate nickel, aluminum, iron and optionally, copper, and at least one additive element selected from the group consisting of silicon, tin, zinc, vanadium, indium, hafnium, tungsten, elements from the lanthanide series starting from praesodymium, and misch metal in an amount ranging from 0.5 up to 8 wt % of the total reaction mixture, to produce a porous micropyretic reaction product containing metallic and intermetallic phases, said additive elements being supplied in the form of an elemental powder, oxides of said elements, other compounds of said elements or mixtures thereof.
- 18. The method of claim 17, further comprising anodically polarizing the micropyretic reaction product in said molten fluoride electrolyte to produce, from the metallic and intermetallic phases contained in the porous micropyretic reaction product, a composite oxide surface formed in-situ.
- 19. The method of claim 18, wherein said cell component is an anode.
- 20. The method of claim 18, wherein the micropyretic reaction product is produced from particulate nickel, aluminum, iron, copper and the additive element(s) in the amounts 50-90 wt % nickel, 3-20 wt % aluminum, 5-20 wt % iron, 0-15 wt % copper and 0.5-5 wt % of said at least one additive element from the group consisting of silicon, tin, zinc, vanadium, indium, hafnium, tungsten, elements from the lanthanide series starting from praesodymium, and misch metal.
- 21. The method of claim 20, wherein the micropyretic reaction product is produced from 60-80 wt % nickel, 3-10 wt % aluminum, 5-20 wt % iron, 5-15 wt % copper and 0.5-5 wt % of said at least one additive element from the group consisting of silicon, tin, zinc, vanadium, indium, hafnium, tungsten, elements from the lanthanide series starting from praesodymium, and misch metal.
- 22. The method of claim 18, wherein the in-situ composite oxide surface is formed in a molten cryolite electrolyte containing dissolved alumina and cerium, and an in-situ cerium oxyfluoride coating is formed on the composite oxide surface.
- 23. The method of claim 17, further comprising exposing the surface of the micropyretic reaction product to oxidizing gas at high temperature to produce, from the metallic and intermetallic phases contained in the porous micropyretic reaction product, a composite oxide surface.
- 24. The method of claim 18 or 23, wherein said composite oxide surface comprises an iron-rich relatively dense outer portion and an aluminate-rich relatively porous inner portion.
- 25. The method of claim 17, wherein the reaction mixture contains said at least one additive element from the group consisting of silicon, tin, zinc, vanadium, indium, hafnium, tungsten, elements from the lanthanide series starting from praesodymium, and misch metal in an amount of 0.5 to 5 wt % of the total, and at least one further additive element from the group consisting of chromium, manganese, titanium, molybdenum, cobalt, zirconium, niobium, tantalum, yttrium, cerium, lanthanum, oxygen, boron and nitrogen, the amount of all additives not exceeding 8 wt % of the total.
- 26. The method of claim 17, wherein the reaction mixture contains as additive element from 0.5 to 5 wt % of silicon.
- 27. The method of claim 17, wherein the reaction mixture contains as additive element from 0.5 to 5 wt % of tin.
- 28. The method of claim 17, wherein the reaction mixture contains as additive element from 0.5 to 5 wt % of zinc.
- 29. The method of claim 17, wherein the particulate nickel has a larger particle size than the particulate aluminum, iron, copper and additive element(s).
- 30. A method of electrowinning aluminum by the electrolysis of alumina in a molten fluoride electrolyte, comprising:providing a starter anode which is a porous micropyretic reaction product comprising metallic and intermetallic phases produced by reacting a micropyretic reaction mixture of particulate nickel, aluminum, iron and optionally, copper, and at least one additive element from the group consisting of silicon, tin, zinc, vanadium, indium, hafnium, tungsten, elements from the lanthanide series starting from praesodymium, and misch metal in an amount ranging from 0.5 up to 8 wt % of the total, said additive elements being supplied in the form of an elemental powder, oxides of said elements, other compounds of said elements or mixtures thereof; oxidizing the surface of the starter anode to produce, from the metallic and intermetallic phases contained in the porous micropyretic reaction product, a composite oxide surface, in situ in a molten fluoride electrolyte or by exposure to an oxidizing gas; and anodically polarizing the anode in a molten fluoride electrolyte containing dissolved alumina to produce aluminum in an aluminum production cell.
- 31. The method of claim 30, wherein the starter anode is anodically polarized in a molten fluoride electrolyte containing dissolved alumina and electrolysis is continued in the same or a different aluminum production cell.
- 32. The method of claim 31, wherein an in-situ composite oxide surface is formed in a molten cryolite electrolyte containing dissolved alumina and cerium, and an in-situ cerium oxyfluoride coating is formed on the composite oxide surface.
- 33. The method of claim 31, wherein an in-situ composite oxide surface is formed in a first molten cryolite electrolyte containing dissolved alumina, and electrolysis is continued in a second molten cryolite electrolyte containing dissolved alumina and cerium wherein an in-situ formed cerium oxyfluoride coating is formed on the composite oxide surface.
- 34. The method of claim 30, wherein the micropyretic reaction product is produced from particulate nickel, aluminum, iron, copper and additive element(s) in the amounts 50-90 wt % nickel, 3-20 wt % aluminum, 5-20 wt % iron, 0-15 wt % copper and 0.5-5 wt % of at least one element from the group consisting of silicon, tin, zinc, vanadium, indium, hafnium, tungsten, elements from the lanthanide series starting from praesodymnum, and misch metal.
- 35. The method of claim 34, wherein the micropyretic reaction product is produced from 60-80 wt % nickel, 3-10 wt % aluminum, 5-20 wt % iron, 5-15 wt % copper and 0.5-5 wt % of at least one element from the group consisting of silicon, tin, zinc, vanadium, indium, hafnium, tungsten, elements from the lanthanide series starting from praesodymium, and misch metal.
- 36. The method of claim 30, wherein the micropyretic reaction product is produced from a mixture containing said at least one additive element from the group consisting of silicon, tin, zinc, vanadium, indium, hafnium, tungsten, elements from the lanthanide series starting from praesodymium, and misch metal in an amount of 0.5 to 5 wt % of the total, and at least one further additive element from the group consisting of chromium, manganese, titanium, molybdenum, cobalt, zirconium, niobium, tantalum, yttrium, cerium, lanthanum, oxygen, boron and nitrogen, the amount of all additives not exceeding 8 wt % of the total.
- 37. The method of claim 30, wherein said cell is operated at an anode current density up to 8 Amps/cm2.
- 38. A precursor of a cell component of an aluminum production cell, which is ignitable to produce by micropyretic reaction the cell component, the precursor being made of a composite material comprising particulate nickel, aluminum, iron and, optionally, copper, and at least one additive element selected from the group consisting of silicon, tin, zinc, vanadium, indium, hafnium, tungsten, elements from the lanthanide series starting from praesodymium, and misch metal, said additive element being present in an amount ranging from 0.5 up to 8 weight percent of the total precursor, said elements being supplied in the form of an elemental powder, oxides of said additive elements, other compounds of said elements or mixture thereof.
- 39. The precursor of claim 38, wherein said cell component is an anode.
- 40. The precursor of claim 38, comprising 50-90 weight % nickel, 3-20 weight % aluminum, 5-20 weight % iron, 0-15 weight % copper and 0.5-5 weight % of said additive element(s).
- 41. The precursor of claim 40, comprising 60-80 weight % nickel, 3-10 weight % aluminum, 5-20 weight % iron and 5-15 weight % copper.
- 42. The precursor of claims 38, comprising at least one additive element from the group consisting of silicon, tin, zinc, vanadium, indium, hafnium, tungsten, elements from the lanthanide series starting from praesodymium, and misch metal in an amount of 0.5 to 3 wt % of the total, and at least one further additive element from the group consisting of chromium, manganese, titanium, molybdenum, cobalt, zirconium, niobium, tantalum, yttrium, cerium, lanthanum, oxygen, boron and nitrogen, the amount of all additives not exceeding 8 wt % of the total.
- 43. The precursor of claim 38, comprising silicon as the additive element in an amount from 0.5-5 weight % of the total.
- 44. The precursor of claim 38, comprising zinc as the additive element in an amount from 0.5-5 weight % of the total.
- 45. The precursor of claim 38, comprising tin as the additive element in an amount from 0.5-5 weight % of the total.
RELATED APPLICATION
This application is a continuation-in-part of the US designation of International application PCT/US96/15176, filed Sep. 23, 1996.
PCT Information
Filing Document |
Filing Date |
Country |
Kind |
PCT/US97/16865 |
|
WO |
00 |
Publishing Document |
Publishing Date |
Country |
Kind |
WO98/12363 |
3/26/1998 |
WO |
A |
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Number |
Name |
Date |
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5510008 |
Sekhar et al. |
Apr 1996 |
A |
5720860 |
Sekhar et al. |
Feb 1998 |
A |
5904828 |
Sekhar et al. |
May 1999 |
A |