EP1545873A2

Corrosion-resistant coated copper and method for making the same

Abstract

This record has no abstract on file.

Term

Term ended

Projected expiry passed 12 September 2023, 3 years ago.

  1. Priority
  2. Filed
  3. Published
  4. Projected expiry
  5. Today

62 claims: 62 independent, 0 dependent

  1. 1
    Claims of equivalent WO 2004029316 A2 We claim:1. A method of producing a corrosion-resistant copper metal strip comprising the steps of: (a) providing a copper metal strip from a roll of copper metal strip;(b) coating said copper metal strip with a corrosion resistant metal alloy, said corrosion resistant metal alloy comprising tin and zinc, said tin content plus said zinc content constituting a majority weight percent ofthe metal alloy, said metal alloy including at least about 15 weight percent tin;and, (c) forming a heat created intermetallic layer between said metal alloy coating and said copper metal strip by exposing said copper metal strip and said metal alloy to heat so as to enable at portion of said zinc in said metal alloy to migrate from said metal alloy and at least partially combine with said copper metal sfrip, said heat created intermetallic layer includes at least about 60 weight percent copper plus zinc.
  2. 2
    The method as defined in claim 1 , wherein said heat created intermetallic layer has a thickness of up to about 10 microns.
  3. 3
    The method as defined in claim 1 , wherein said step of exposing said copper metal sfrip and said metal alloy to heat is selected from the group consisting of applying molten metal alloy to said metal strip, flow heating said metal alloy on said metal sfrip, and combinations thereof.
  4. 4
    The method as defined in claim 1, wherein said metal alloy comprises:Tin 15 - 90 Zinc 10 - 85 Aluminum 0 - 2 Antimony 0 - 2 Bismuth 0 - 1.7 Copper 0 - 2 Iron 0 - 1 Magnesium 0 - 2 Nickel 0 - 2 Titanium 0 - 1 The method as defined in claim 4, wherein said metal alloy comprises: Tin 40 - 60 Zinc 40 - 60 Aluminum 0-2 Antimony 0-2 Bismuth 0-1.7 Copper 0-2 Iron 0 - 1 Lead 0 - 0.
  5. 5
    5 Magnesium 0-2 Nickel 0 - 2 Titanium 0-1
  6. 6
    The method as defined in claim 5, wherein said metal alloy comprises:Tin 45 - 55 Zinc 45 - 55 Aluminum 0-2 Antimony 0-2 Bismuth 0-1.
  7. 7
    7 Boron 0-0.01 Cadmium 0-0.1 Carbon 0 - 0.5 Chromium 0 - 0.5 Copper 0-2 Iron 0 - 1 Lead 0-0.5 Magnesium 0 - 0.4 Manganese 0-0.1 Molybdenum 0-0.1 Nickel 0 - 2 Silicon 0 - 0.5 Titanium 0-1 Vanadium 0-0.1 7. The method as defined in claim 1, wherein said heat created intermetallic layer includes at least about 75 weight percent copper plus zinc.
  8. 8
    The method as defined in claim 7, wherein said heat created intermetallic layer includes zinc and at least about 85 weight percent copper plus zinc.
  9. 9
    The method as defined in claim 8, wherein said heat created intermetallic layer includes at least about 90 weight percent copper plus zinc.
  10. 10
    The method as defined in claim 9, wherein said heat created intermetallic layer includes at least about 95 weight percent copper plus zinc.
  11. 11
    The method as defined in claim 10, wherein said heat created intermetallic layer includes at least about 99 weight percent copper plus zinc.
  12. 12
    The method as defined in claim 1 , wherein said metal alloy coating includes less than or equal to the amount of zinc in said metal alloy prior to coating on said copper metal sfrip.
  13. 13
    The method as defined in claim 12, wherein said metal alloy coating includes less than the amount of zinc in said metal alloy prior to coating on said copper metal strip.
  14. 14
    A method of producing a corrosion-resistant metal sfrip comprising the steps of:(a) providing a metal strip from a roll of metal sfrip, said metal sfrip selected from the group consisting of carbon steel, stainless steel and aluminum;(b) applying a copper metal layer to said metal sfrip prior to coating said metal sfrip with a metal alloy;(c) coating said metal strip with a corrosion resistant metal alloy, said corrosion resistant metal alloy comprising tin and zinc, said tin content plus said zinc content constituting a majority weight percent ofthe metal alloy, said metal alloy including at least about 15 weight percent tin;and, (d) forming a heat created intermetallic layer between said metal alloy coating and said copper metal layer by exposing said copper metal layer and said metal alloy to heat so as to enable at portion of said zinc in said metal alloy to migrate from said metal alloy and at least partially combine with said copper metal layer, said heat created intermetallic layer includes at least about 60 weight percent copper plus zinc.
  15. 15
    The method as defined in claim 14, wherein said heat created intermetallic layer has a thickness of up to about 10 microns.
  16. 16
    The method as defined in claim 14, wherein said step of exposing said copper metal layer and said metal alloy to heat is selected from the group consisting of applying molten metal alloy to said metal layer, flow heating said metal alloy on said metal layer, and combinations thereof.
  17. 17
    The method as defined in claim 14, wherein said metal alloy comprises:Tin 15-90 Zinc 10-85 Aluminum 0-2 Antimony 0-2 Bismuth 0-1.7 Copper 0-2 Iron 0 - 1 Magnesium 0-2 Nickel 0 - 2 Titanium 0-1
  18. 18
    The method as defined in claim 17, wherein said metal alloy comprises:Tin 40 - 60 Zinc 40 - 60 Aluminum 0-2 Antimony 0-2 Bismuth 0-1.7 Copper 0-2 Iron 0 - 1 Lead 0 - 0.5 Magnesium 0-2 Nickel 0 - 2 Titanium 0-1
  19. 19
    The method as defined in claim 18, wherein said metal alloy comprises:Tin 45 - 55 Zinc 45 - 55 Aluminum 0-2 Antimony 0 - 2 Bismuth 0 - 1.7 Boron 0 - 0.01 Cadmium 0 - 0.1 Carbon 0 - 0.5 Chromium 0 - 0.5 Copper 0 - 2 fron 0 - 1 Lead 0 - 0.5 Magnesium 0 - 0.4 Manganese 0 - 0.1 Molybdenum 0 - 0.1 Nickel 0 - 2 Silicon 0 - 0.5 Titanium 0 - 1 Vanadium 0 - 0.1
  20. 20
    The method as defined in claim 14, wherein said heat created intermetallic layer includes at least about 75 weight percent copper plus zinc.
  21. 21
    The method as defined in claim 20, wherein said heat created intermetallic layer includes at least about 85 weight percent copper plus zinc.
  22. 22
    The method as defined in claim 14, wherein said copper metal layer is applied by a process selected from the group consisting of plating, immersion, brazening, adhesive, metal spraying, cladding, and combinations thereof.
  23. 23
    The method as defined in claim 14, wherein said metal alloy coating includes less than or equal to the amount of zinc in said metal alloy prior to coating on said metal strip.
  24. 24
    The method as defined in claim 23 , wherein said metal alloy coating includes less than the amount of zinc in said metal alloy prior to coating on said metal strip.
  25. 25
    A method of forming a corrosion-resistant heat created intermetallic layer comprising the steps of:(a) providing copper surface;(b) coating said copper surface with a corrosion resistant metal alloy, said corrosion resistant metal alloy comprising tin and zinc, said tin content plus said zinc content constituting a majority weight percent ofthe metal alloy, said metal alloy including at least about 15 weight percent tin;and, (c) exposing said copper surface and metal alloy to heat so as to at least partially cause said zinc in said metal alloy to migrate from said metal alloy and at least partially combine with said copper surface to form a heat created intermetallic layer that includes at least about 60 weight percent copper plus zinc.
  26. 26
    The method as defined in claim 25, wherein said heat created intermetallic layer has a thickness of up to about 10 microns.
  27. 27
    The method as defined in claim 25, wherein said step of exposing said copper surface and metal alloy to heat includes the application of molten metal alloy to said copper surface, flow heating said metal alloy which is coated on said copper surface, and combinations thereof.
  28. 28
    The method as defined in claim 25, wherein said metal alloy comprises:Tin 15 - 90 Zinc 10 - 85 Aluminum 0 - 2 Antimony 0 - 2 Bismuth 0 - 1.7 Copper 0 - 2 Iron 0 - 1 Magnesium 0 - 2 Nickel 0 - 2 Titanium 0 - 1
  29. 29
    The method as defined in claim 28, wherein said metal alloy comprises:Tin 40 - 60 Zinc 40 - 60 Aluminum 0 - 2 Antimony 0-2 Bismuth 0-1.7 Copper 0-2 Iron 0 - 1 Lead 0 - 0.5 Magnesium 0-2 Nickel 0 - 2 Titanium 0-1
  30. 30
    The method as defined in claim 29, wherein said metal alloy comprises:Tin 45 - 55 Zinc 45 - 55 Aluminum 0-2 Antimony 0-2 Bismuth 0-1.7 Boron 0 - 0.01 Cadmium 0-0.1 Carbon 0 - 0.5 Chromium 0-0.5 Copper 0-2 Iron 0 - 1 Lead 0 - 0.5 Magnesium 0 - 0.4 Manganese 0-0.1 Molybdenum 0-0.1 Nickel 0 - 2 Silicon 0 - 0.5 Titanium 0-1 Vanadium 0-0.1
  31. 31
    The method as defined in claim 25, wherein said heat created intermetallic layer includes at least about 75 weight percent copper plus zinc.
  32. 32
    The method as defined in claim 31 , wherein said heat created intermetallic layer includes at least about 85 weight percent copper plus zinc.
  33. 33
    The method as defined in claim 32, wherein said heat created intermetallic layer includes at least about 90 weight percent copper plus zinc.
  34. 34
    The method as defined in claim 33, wherein said heat created intermetallic layer includes at least about 95 weight percent copper plus zinc.
  35. 35
    The method as defined in claim 34, wherein said heat created intermetallic layer includes at least about 99 weight percent copper plus zinc.
  36. 36
    The method as defined in claim 25, wherein said metal alloy coating includes less than or equal to the amount of zinc in said metal alloy prior to exposing said metal alloy to said copper surface.
  37. 37
    The method as defined in claim 36, wherein said metal alloy coating includes less than the amount of zinc in said metal alloy prior to exposing said metal alloy to said copper surface.
  38. 38
    A corrosion-resistant metal strip comprising metal strip coated with a corrosion resistant metal alloy and a heat created intermetallic layer between said metal alloy coating and said metal strip, said metal strip selected from the group consisting of copper strip, carbon steel strip, stainless steel strip, and aluminum strip, said corrosion resistant metal alloy comprising tin and zinc, said tin content plus said zinc content constituting a majority weight percent ofthe metal alloy, said metal alloy including at least about 15 weight percent tin and at least about 5 weight percent zinc, said heat created intermetallic layer including at least about 60 weight percent copper plus zinc.
  39. 39
    The corrosion-resistant metal sfrip as defined in claim 38, wherein said heat created intermetallic layer has a thickness of up to about 10 microns.
  40. 40
    The corrosion-resistant metal strip as defined in claim 38, wherein said metal alloy comprises:Tin 15 - 90 Zinc 10 - 85 Aluminum 0 - 2 Antimony 0-2 Bismuth 0-1.7 Copper 0-2 Iron 0-1 Magnesium 0 2 Nickel 0 2 Titanium 0 1
  41. 41
    The corrosion-resistant metal sfrip as defined in claim 40, wherein said metal alloy comprises:Tin 40-60 Zinc 40-60 Aluminum 0-2 Antimony 0-2 Bismuth 0-1.7 Copper 0-2 fron 0-1 Lead 0-0.5 Magnesium 0-2 Nickel 0-2 Titanium 0-1
  42. 42
    The corrosion-resistant metal strip as defined in claim 41 , wherein said metal alloy comprises:Tin 45 -55 Zinc 45 -55 Aluminum 0- 2 Antimony 0- 2 Bismuth 0- 1.7 Boron 0- 0.01 Cadmium 0- 0.1 Carbon 0- 0.5 Chromium 0- 0.5 Copper 0-2 Iron 0-1 Lead 0-0.5 Magnesium 0-0.4 Manganese 0-0.1 Molybdenum 0-0.1 Nickel 0-2 Silicon 0-0.5 Titanium 0 - 1 Vanadium 0 - 0.1
  43. 43
    The corrosion-resistant metal strip as defined in claim 38, wherein said heat created intermetallic layer includes at least about 75 weight percent copper plus zinc.
  44. 44
    The corrosion-resistant metal strip as defined in claim 43, wherein said heat created intermetallic layer includes at least about 85 weight percent copper plus zinc.
  45. 45
    The corrosion-resistant metal sfrip as defined in claim 44, wherein said heat created intermetallic layer includes at least about 90 weight percent copper plus zinc.
  46. 46
    The corrosion-resistant metal sfrip as defined in claim 45, wherein said heat created intermetallic layer includes at least about 95 weight percent copper plus zinc.
  47. 47
    The corrosion-resistant metal strip as defined in claim 46, wherein said heat created intermetallic layer includes at least about 99 weight percent copper plus zinc.
  48. 48
    The corrosion-resistant metal strip as defined in claim 38, wherein said metal alloy coating includes less than or equal to the amount of zinc in said metal alloy prior to coating on said metal strip.
  49. 49
    The corrosion-resistant metal strip as defined in claim 48, wherein said metal alloy coating includes less than the amount of zinc in said metal alloy prior to coating on said metal strip.
  50. 50
    A corrosion-resistant petroleum receptacle comprising at least one shell member coated with a corrosion resistant metal alloy, said shell member including a sfrip formed at least partially from carbon steel, stainless steel, aluminum, or titanium, said sfrip having a copper or copper alloy surface layer that is coated with a corrosion resistant metal alloy and having a heat created intermetallic layer between said metal alloy coating and said copper or copper alloy layer, said corrosion resistant metal alloy comprising tin and zinc, said tin content plus said zinc content constituting a maj ority weight percent ofthe metal alloy, said metal alloy including at least about 15 weight percent tin, said heat created intermetallic layer including at least about 60 weight percent copper plus zinc.
  51. 51
    The corrosion-resistant petroleum receptacle as defined in claim 50, wherein said heat created intermetallic layer has a thickness of up to about 10 microns.
  52. 52
    The corrosion-resistant petroleum receptacle as defined in claim 50, wherein said metal alloy comprises:Tin 15-90 Zinc 10 - 85 Aluminum 0-2 Antimony 0-2 Bismuth 0-1.7 Copper 0-2 Iron 0 - 1 Magnesium 0-2 Nickel 0 - 2 Titanium 0-1
  53. 53
    The corrosion-resistant petroleum receptacle as defined in claim 52, wherein said metal alloy comprises:Tin 40 - 60 Zinc 40 - 60 Aluminum 0-2 Antimony 0-2 Bismuth 0-1.7 Copper 0-2 Iron 0-1 Lead 0 - 0.5 Magnesium 0-2 Nickel 0 - 2 Titanium 0-1
  54. 54
    The corrosion-resistant petroleum receptacle as defined in claim 53, wherein said metal alloy comprises:Tin 45 -
  55. 55
    55 Zinc 45 -55 Aluminum 0- -2 Antimony 0- -2 Bismuth 0- -1.7 Boron 0- -0.01 Cadmium 0- -0.1 Carbon 0- -0.5 Chromium 0- -0.5 Copper 0- -2 Iron 0- ■ 1 Lead 0- •0.5 Magnesium 0- ■0.4 Manganese 0- ■0.1 Molybdenum 0- ■0.1 Nickel 0- •2 Silicon 0- ■0.5 Titanium 0- ■ 1 Vanadium 0- •0.1 55. The corrosion-resistant petroleum receptacle as defined in claim 50, wherein said heat created intermetallic layer includes at least about 75 weight percent copper plus zinc.
  56. 56
    The corrosion-resistant petroleum receptacle as defined in claim 55, wherein said heat created intermetallic layer includes at least about 85 weight percent copper plus zinc.
  57. 57
    The corrosion-resistant petroleum receptacle as defined in claim 56, wherein said heat created intermetallic layer includes at least about 90 weight percent copper plus zinc.
  58. 58
    The corrosion-resistant petroleum receptacle as defined in claim 57, wherein said heat created intermetallic layer includes at least about 95 weight percent copper plus zinc.
  59. 59
    The corrosion-resistant petroleum receptacle as defined in claim 58, wherein said heat created intermetallic layer includes at least about 99 weight percent copper plus zinc.
  60. 60
    The corrosion-resistant petroleum receptacle as defined in claim 50, wherein said metal alloy coating includes less than the amount of zinc in said metal alloy prior to coating on said metal sfrip.
  61. 61
    A corrosion-resistant coated base metal comprising a base metal having a copper surface coated with a corrosion resistant metal alloy and an intermetallic layer at least partially between said base metal and said corrosion resistant metal alloy, said base metal including a carbon steel, stainless steel, aluminum, or titanium, said corrosion resistant metal alloy comprising tin and zinc, said tin content plus said zinc content constituting a majority weight percent ofthe metal alloy, said metal alloy including at least about 15 weight percent tin, said heat created intermetallic layer including at least about 60 weight percent copper plus zinc. 61. The corrosion-resistant coated base metal as defined in claim 60, wherein said intermetallic layer has a thickness of up to about 10 microns.
  62. 62
    The corrosion-resistant coated base metal as defined in claim 60, wherein said metal alloy comprises:Tin 15 - 90 Zinc 10 - 85 Aluminum 0 - 2 Antimony 0 - 2 Bismuth 0 - 1.7 Copper 0 - 2 Iron 0 - 1 Magnesium 0 - 2 Nickel 0 - 2 Titanium 0 - 1 63. The corrosion-resistant coated base metal defined in claim 62, wherein said metal alloy comprises: Tin 40 - 60 Zinc 40 - 60 Aluminum 0 - 2 Antimony 0 - 2 Bismuth 0 - 1.7 Copper 0 - 2 Iron 0-1 Lead 0 - 0,5 Magnesium 0-2 Nickel 0 - 2 Titanium 0-1 64. The corrosion-resistant coated base metal as defined in claim 61, wherein said heat created intermetallic layer includes at least about 75 weight percent copper plus zinc.
Independent claims62