Claims
- 1. A method of manufacturing an Al or Al alloy workpiece comprising the steps of
(a) providing an Al or Al alloy workpiece, (b) pre-treating the outersurface of the Al or Al alloy workpiece, and (c) plating a metal layer comprising nickel onto said outersurface of the Al or Al alloy workpiece, wherein during step (c) said metal layer comprising nickel is deposited by plating both nickel and bismuth using an aqueous bath having a pH in the range of 2.5 to 10, and comprising
a nickel-ion concentration in a range of 10 to 100 g/l, a bismuth-ion concentration in the range of 0.01 to 10 g/l, a citrate-ion concentration in the range of 40 to 150 g/l, a gluconate-ion concentration in the range of 2 to 80 g/l, a chloride- or fluoride-ion concentration in the range of 1 to 50 g/l.
- 2. A method according to claim 1, wherein the nickel-ion concentration is in the range of 20 to 70 g/l.
- 3. A method according to claim 1, wherein the bismuth-ion concentration is in the range of 0.02 to 5 g/l.
- 4. A method according to claim 1, wherein the aqueous bath and the resultant metal layer comprising nickel are essentially lead-free.
- 5. A method according to claim 1, wherein the gluconate-ion concentration is in the range of 4 to 50 g/l.
- 6. A method according to any of claim 1, wherein said layer comprising nickel has a thickness of not more than 2.0 microns.
- 7. A method according to any of claim 1, wherein said layer comprising nickel has a thickness in the range of 0.03 to 1.0 micron.
- 8. A method according to claim 1, wherein said layer comprising nickel has a thickness in the range of 0.05 to 0.5 microns.
- 9. A method according to claim 1, wherein the Bi-ion concentration results from the dissolution of one or more selected from the group consisting of bismuth carbonate, bismuth oxide, bismuth citrate and bismuth chloride.
- 10. A method according to claim 1, wherein the temperature of the aqueous bath during plating is in the range of 30 to 70° C.
- 11. A method according to claim 1, wherein the workpiece is an aluminum alloy sheet or aluminum alloy wire or rod.
- 12. A method according to claim 1, wherein the aluminum alloy comprises silicon as an alloying element in the range of 2 to 18% by weight.
- 13. A method according to claim 1, wherein the workpiece is a brazing sheet product comprising a core sheet coupled on at least one surface of said core sheet to an aluminum clad layer, the aluminum clad layer being made of an aluminum alloy comprising silicon in an amount in the range of 2 to 18% by weight, and wherein during step (b) at least the outersurface of the aluminum clad alloy is being pretreated.
- 14. A method according to claim 1, wherein the workpiece is a brazing sheet product comprising a core sheet being made of an AA3xxx, AA5xxx, or AA6xxx-series alloy coupled on at least one surface of said core sheet to an aluminum clad layer, the aluminum clad layer being made of an aluminum alloy comprising silicon in an amount in the range of 2 to 18% by weight, and wherein during step (b) at least the outersurface of the aluminum clad alloy is being pre-treated.
- 15. An aqueous bath for the electrodeposition of a layer of nickel and bismuth on an Al or Al alloy workpiece, having a pH in the range of 2.5 to 10, and comprising
a nickel-ion concentration in a range of 10 to 100 g/l, a bismuth-ion concentration in the range of 0.01 to 10 g/l, a citrate-ion concentration in the range of 50 to 150 g/l, a gluconate-ion concentration in the range of 2 to 80 g/l, a chloride- or fluoride-ion concentration in the range of 1 to 50 g/l.
- 16. An aqueous bath according to claim 15, wherein the nickel-ion concentration is in the range of 20 to 70 g/l.
- 17. An aqueous bath according to claim 15, wherein the bismuth-ion concentration is in the range of 0.02 to 5 g/l.
- 18. An aqueous bath according to claim 15, wherein the gluconate-ion concentration is in the range of 4 to 50 g/l.
- 19. An aqueous bath according to claim 15, wherein the following salts have been used, in grams per liter: nickel sulphate in a range of 45 to 450 g/l, chloride-ion concentration in a range of 1 to 50 g/l, sodium citrate in a range of 55 to 180 g/l, sodium gluconate in range of 2 to 90 g/l, ammonium sulphate in a range up to 270 g/l, bismuth oxide in a range of 0.02 to 22 g/l, or bismuth carbonate in a range of 0.03 to 29 g/l.
- 20. A method of use of the aqueous bath of claim 15 for the manufacturing of Ni-plated products for use in a brazing operation, comprising plating a metal layer comprising nickel onto an outersurface of an Al or Al alloy workpiece, wherein during said plating said metal layer comprising nickel is deposited by plating both nickel and bismuth using the aqueous bath.
- 21. A method of use of the aqueous bath of claim 15 for the manufacturing of Ni-plated brazing sheet products, comprising plating a metal layer comprising nickel onto an outersurface of an Al or Al alloy workpiece, wherein during said plating said metal layer comprising nickel is deposited by plating both nickel and bismuth using the aqueous bath.
- 22. An assembly of components joined by brazing, at least one said components being an Al or Al alloy workpiece produced by the method in accordance with claim 1.
- 23. Method of manufacturing an assembly of brazed components, comprising the steps of:
(a) shaping parts of which at least one is made from an Al or Al alloy workpiece obtained by the method according to claim 1;(b) assembling the parts into the assembly; (c) brazing the assembly in an inert atmosphere in the absence of a brazing-flux at elevated temperature for a period long enough for melting and spreading of the molten filler; (d) cooling the brazed assembly to below 100° C.
- 24. A method according to claim 23, wherein at least one other component is selected from the group consisting of steel, aluminized steel, stainless steel, plated or coated stainless steel, bronze, brass, nickel, nickel alloy, titanium, and plated or coated titanium.
- 25. Method of manufacturing an assembly of components joined by brazing, comprising the steps of:
(i) forming said components of which at least one is made from a multi-layered brazing sheet product, the multi-layered brazing sheet product comprising a core sheet (a) having on at least one surface of said core sheet an aluminium clad layer (b), the aluminium clad layer being made of an aluminium alloy comprising silicon in an amount in the range of 2 to 18% by weight, and a layer (c) on the outer surface of said aluminium clad layer, the layer (c) comprising nickel and further at least bismuth in a range of at most 5% by weight; (ii) forming at least one other component of a metal dissimilar to the core sheet of the multi-layered brazing sheet product and selected from the group consisting of titanium, plated titanium, coated titanium, bronze, brass, stainless steel, plated stainless steel, coated stainless steel, nickel, nickel alloy, low-carbon steel, plated low-carbon steel, coated low-carbon steel, high-strength steel, coated high-strength steel, and plated high-strength steel; (iii) assembling the respective components into an assembly such that the layer (c) comprising nickel of the multi-layered brazing sheet faces in part or in whole the at least one other component of a metal dissimilar to the core sheet of the multi-layered brazing sheet product; (iv) brazing the assembly under a vacuum or in an inert atmosphere in the absence of a brazing-flux at elevated temperature for a period long enough for melting and spreading of the aluminium clad layer (b) and all layers exterior thereto; (v) cooling the brazed assembly.
- 26. An assembly of components joined by brazing manufactured by the method according to claim 25.
- 27. An assembly according to claim 26, wherein the assembly is an automotive heat exchanger.
- 28. An assembly according to claim 26, wherein the assembly is a fuel cell.
- 29. An assembly according to claim 26, wherein the assembly is a proton exchange membrane fuel cell.
- 30. A rigid composite metal panel comprising at least two parallel metal members, selected from the group consisting of metal plate and metal sheet, secured to the peaks and troughs of a corrugated aluminium stiffener sheet arranged between said parallel metal members, wherein the corrugated aluminium stiffener sheet is made from an aluminium brazing sheet product comprising a core sheet made of an aluminium alloy having on at least one surface of said core sheet clad an aluminium alloy clad layer, the aluminium alloy clad layer being made of an aluminium alloy comprising silicon in an amount in the range of 2 to 18% by weight, and a layer comprising nickel on an outer surface of said aluminium alloy clad layer.
- 31. A rigid metal composite panel comprising at least two parallel metal members, selected from the group consisting of metal plate and metal sheet, secured to aluminium stiffener sheet having a honeycomb structure arranged between said parallel metal members, wherein the aluminium stiffener sheet is made from an aluminium brazing sheet product comprising a core sheet made of an aluminium alloy having on at least one surface of said core sheet clad an aluminium alloy clad layer, the aluminium alloy clad layer being made of an aluminium alloy comprising silicon in an amount in the range of 2 to 18% by weight and a layer comprising nickel on an outer surface of said aluminium alloy clad layer.
- 32. A composite metal panel according to claim 30, wherein the corrugated aluminium stiffener sheet is in the form of turbulator sheet.
- 33. A composite metal panel according to claim 30, wherein the corrugated aluminium stiffener sheet is a formed sheet having a plurality of cup-like cavities, which cup-like cavities are aligned in parallel rows and whereby in alternating parallel rows the openings of the cup-like cavities are facing opposed directions.
- 34. A composite metal panel according to claim 30, wherein said layer comprising nickel farther comprises bismuth in a range of at most 5% by weight.
- 35. A composite metal panel according to claim 30, wherein said layer comprising nickel is essentially lead-free.
- 36. A composite metal panel according to claim 30, wherein said layer comprising nickel has a thickness of not more than 2.0 micron.
- 37. A composite metal panel according to claim 30, wherein said layer comprising nickel is applied by means of electroplating.
- 38. A composite metal panel according to claim 34, wherein said layer comprising nickel is deposited by electroplating both nickel and bismuth using an aqueous bath comprising a nickel-ion concentration in a range of 10 to 100 g/l and a bismuth-ion concentration in the range of 0.01 to 10 g/l.
- 39. A brazing sheet product according to claim 30, wherein said aluminium clad layer further comprises magnesium in a range of at most 8%.
- 40. A composite metal panel according to claim 30, wherein at least one of the parallel metal members is made from a metal selected from the group consisting of aluminium, aluminium alloy, titanium, plated or coated titanium, bronze, brass, stainless steel, plated or coated stainless steel, low-carbon steel, plated or coated low-carbon steel, high-strength steel, and plated or coated high-strength steel, nickel or nickel alloy.
- 41. A composite metal panel according to claim 30, wherein the parallel metal members have been secured or joined to the aluminium stiffener sheet by brazing.
- 42. A composite metal panel according to claim 30, wherein said layer comprising nickel has a thickness of not more than 1.0 micron.
- 43. A composite metal panel according to claim 30, wherein both sides of said core sheet are respectively clad by the aluminium alloy clad layer and the layer comprising nickel on the outer surface of said aluminium alloy clad layer.
- 44. A composite metal panel according to claim 30, wherein the aluminium alloy of the aluminium alloy clad layer comprises silicon in an amount in the range of 5 to 14% by weight.
- 45. A composite metal panel according to claim 31, wherein both sides of said core sheet are respectively clad by the aluminium alloy clad layer and the layer comprising nickel on the outer surface of said aluminium alloy clad layer.
- 46. A composite metal panel according to claim 31, wherein the aluminium alloy of the aluminium alloy clad layer comprises silicon in an amount in the range of 5 to 14% by weight.
- 47. A composite metal panel according to claim 30, wherein the parallel metal members have been secured or joined to the aluminium stiffener sheet by brazing in the absence of a brazing flux material.
- 48. A composite metal panel according to claim 30, wherein the parallel metal members have been secured or joined to the aluminium stiffener sheet by a controlled atmosphere brazing process in the absence of a brazing flux material.
- 49. A brazing sheet product comprising: a core sheet (1) made of an aluminum alloy; an aluminum alloy clad layer (2) cladding on at least one of the surfaces of said core sheet; and a layer (3) comprising nickel on the outersurface of one or both said clad layer or layers (2); wherein the brazing sheet product is devoid of a layer comprising zinc or tin as a bonding layer between said outersurface of said aluminum alloy clad layer or layers (2) and said layer comprising nickel (3), and the aluminum clad alloy layer comprises, in weight percent:
Si 2 to 18 Mg up to 8.0 Zn up to 5.0 Cu up to 5.0 Mn up to 0.30 In up to 0.30 Fe up to 0.80 Sr up to 0.20 at least one element selected from the group consisting of: Bi 0.01 to 1.0 Pb 0.01 to 1.0 Li 0.01 to 1.0 Sb 0.01 to 1.0
- 50. The brazing sheet product according to claim 49, wherein said layer (3) comprising nickel is essentially free from lead.
- 51. The brazing sheet product according to claim 49, wherein said layer (3) comprising nickel is essentially free from bismuth.
- 52. The brazing sheet product according to claim 49, wherein said layer (3) comprising nickel has a thickness of not more than 2.0 mm.
- 53. The brazing sheet product according to claim 49, wherein said layer (3) comprising nickel has a thickness of not more than 1.0 mm.
- 54. The brazing sheet product according to claim 49, wherein said layer (3) comprising nickel has a thickness of not more than 0.5 mm.
- 55. The brazing sheet product according to claim 49, wherein said aluminum alloy clad layer (2) contains by weight Mg in an amount in the range of 0.2 to 5.0%.
- 56. The brazing sheet product according to claim 49, wherein said aluminum clad layer (2) contains by weight Mg in an amount in the range of 0.2 to 2.0%.
- 57. The brazing sheet product according to claim 49, wherein said aluminum clad layer (2) contains by weight Zn in an amount in the range of 0.5 to 3.0%.
- 58. The brazing sheet product according to claim 49, wherein said aluminum clad layer (2) contains by weight Bi in an amount in the range of 0.01 to 0.5%.
- 59. The brazing sheet product according to claim 49, wherein the total of Bi, Pb, Li and Sb contained by said aluminum clad layer (2) is by weight an amount in the range of equal to or less than 1.0%.
- 60. The brazing sheet product according to claim 49, wherein said core sheet (1) is coupled to said aluminum alloy clad layer (2) via at least one intermediate layer (4).
- 61. The brazing sheet product according to claim 49, wherein said core sheet (1) is an aluminum alloy comprising magnesium in an amount in the range of up to 8.0%.
- 62. An assembly of components comprising at least one brazing sheet product according to claim 49 joined by brazing to another component.
- 63. A method of manufacturing an assembly of brazed components, comprising the sequential process steps of: (a) forming said components of which at least one is made from brazing sheet product according to claim 49; (b) assembling the components into an assembly; (c) brazing the assembly under a vacuum or in an inert atmosphere in the absence of a brazing-flux at elevated temperature for a period long enough for melting and spreading of the clad layer; (d) cooling the brazed assembly.
- 64. A method of using an aluminum clad alloy in brazing sheet product according to claim 49 comprising brazing an assembly comprising said aluminum clad alloy.
- 65. A method of using an aluminum clad alloy according to claim 49 comprising brazing an assembly comprising said aluminum clad alloy in an inert atmosphere brazing process in the absence of a brazing-flux.
- 66. The method of claim 65, wherein the aluminum clad alloy comprises, in weight %,
Si 2 to 18, Bi 0.01 to 1.0, elements other than aluminum, Si and Bi, each up to 0.05%, total up to 0.20%, balance aluminum.
- 67. The method of claim 65, wherein the aluminum clad alloy comprises, in weight %,
Si 2 to 18, Mg 0.5 to 8.0, Bi 0.01 to 1.0, elements other than aluminum, Si, Mg and Bi, each up to 0.05%, total up to 0.20%, balance aluminum.
- 68. The method of use according to claim 65, wherein the aluminum clad alloy comprises, in weight %,
Si 2 to 18, Zn up to 5.0, Bi 0.01 to 1.0, elements other than aluminum, Si, Zn, and Bi, each up to 0.05%, total up to 0.20%, balance aluminum.
- 69. The method of claim 65, wherein the aluminum clad alloy comprises, in weight %,
Si 2 to 18, Bi 0.01 to 0.5, elements other than aluminum, Si and Bi, each up to 0.05%, total up to 0.20%, balance aluminum.
- 70. The method of claim 65, wherein the aluminum clad alloy comprises, in weight %,
Si 2 to 18, Mg 0.5 to 2.5, Bi 0.01 to 0.5, elements other than aluminum, Si, Mg, and Bi, each up to 0.05%, total up to 0.20%, balance aluminum.
- 71. The method of claim 65, wherein the aluminum clad alloy comprises, in weight %,
Si 2 to 18, Zn 0.5 to 3.0, Bi 0.01 to 0.5, elements other than aluminum, Si and Bi, each up to 0.05%, total up to 0.20%, balance aluminum.
- 72. The method of claim 65, wherein the aluminum clad alloy comprises, in weight %,
Si 2 to 18, Cu up to 5.0, Bi 0.01 to 0.5 elements other than aluminum, Si, Cu, and Bi, each up to 0.05%, total up to 0.20%, balance aluminum.
- 73. The brazing sheet product according to claim 49, wherein the aluminum alloy clad layer (2) consists of, in weight percent:
Si 2 to 18 Mg up to 8.0 Zn up to 5.0 Cu up to 5.0 Mn up to 0.30 In up to 0.30 Fe up to 0.80 Sr up to 0.20 at least one element selected from the group consisting of: Bi 0.01 to 1.0 Pb 0.01 to 1.0 Li 0.01 to 1.0 Sb 0.01 to 1.0 impurities each up to 0.05, total up to 0.20 balance aluminum.
- 74. The brazing sheet product according to claim 73, wherein said aluminum clad layer (2) contains by weight Mg in an amount in the range of 0.2 to 2.0%.
- 75. A brazing product comprising: an aluminium layer (1) made of an aluminium alloy comprising silicon in an amount in the range of 2 to 18% by weight, and a layer (2) comprising nickel on an outer surface of said aluminium layer (1), wherein taken together said aluminium layer (1) and all layers exterior thereto form a filler metal for a brazing operation, wherein the filler metal has a composition containing at least one element with a smaller exchange current density for the Hydrogen Evolution Reaction than nickel, and wherein the mol-ratio of Ni to the total of said at least one element is in the range of 10:(0.3 to 30).
- 76. A brazing product according to claim 75, wherein the at least one element is selected from at least one member of the group consisting of tin, bismuth, zinc, silver, indium, lead, antimony, magnesium, cadmium, and gallium.
- 77. A brazing product according to claim 75, wherein there is provided a separately applied layer (3) comprising said at least one element in an amount such that in the filler metal the mol-ratio of Ni to the total of said at least one element is in the range of 10:(0.3 to 30).
- 78. A brazing product according to claim 77, wherein the separately applied layer (3) is a plated layer or a thermal sprayed layer.
- 79. A brazing product according to claim 75, wherein there is provided a separately applied layer (3) comprising tin in an amount such that in the filler metal the mol-ratio of Ni:Sn is in the range of 10:(0.5 to 9).
- 80. A brazing product according to claim 75, wherein the brazing product is elongated aluminium alloy stock.
- 81. A brazing product according to claim 80, wherein the elongated aluminium alloy stock is a member of the group consisting of sheet and strip.
- 82. A brazing product according to claim 80, wherein the brazing product is a brazing sheet product comprising a core sheet (5) made of an aluminium alloy, at least one surface of said core sheet coupled to said aluminium layer (1), said aluminium layer (1) being an aluminium clad layer (1), the aluminium clad layer being made of said aluminium alloy comprising silicon in an amount in the range of 2 to 18% by weight, and said layer (2) comprising nickel on the outer surface of said aluminium clad layer such that taken together said aluminium clad layer and all layers exterior thereto form the filler metal for a brazing operation.
- 83. A brazing product according to claim 75, wherein the brazing product has a post-braze corrosion life of 8 days or more in a SWAAT-test without perforations in accordance with ASTM G-85.
- 84. A brazing product according to claim 75, wherein the brazing product has a post-braze corrosion life of 12 days or more, in a SWAAT-test without perforations in accordance with ASTM G-85.
- 85. A brazing product according to claim 82, wherein the brazing product has a post-braze corrosion life of 8 days or more in a SWAAT-test without perforations in accordance with ASTM G-85.
- 86. A brazing product according to claim 82, wherein the brazing product has a post-braze corrosion life of 12 days or more, in a SWAAT-test without perforations in accordance with ASTM G-85.
- 87. A brazing product having an aluminium layer (1) made of an aluminium alloy comprising silicon in an amount in the range of 2 to 18% by weight, and a layer (2) comprising nickel on the outer surface of said aluminium layer (1), wherein taken together said aluminium layer (1) and all layers exterior thereto form the filler metal for a brazing operation, wherein the filler metal has a composition containing at least one element having an electrochemical potential such that the electrochemical potential difference between Ni-aluminides particles and the aluminium alloy matrix of the filler composition is reduced relative to an aluminium alloy matrix from a composition which is the same as the filler composition except for lacking said at least one element, and wherein the mol-ratio of Ni to the total of said at least one element is in the range of 10:(0.3 to 30).
- 88. A brazing product according to claim 87, wherein there is provided a separately applied layer (3) comprising said at least one element in an amount such that in the filler metal the mol-ratio of Ni to the total of said at least one element is in the range of 10:(0.3 to 30).
- 89. A brazing product according to claim 88, wherein the separately applied layer (3) is a plated layer or a thermal sprayed layer.
- 90. A brazing product according to claim 87, wherein the brazing product is elongated aluminium alloy stock.
- 91. A brazing product according to claim 90, wherein the elongated aluminium alloy stock is a member of the group consisting of sheet and strip.
- 92. A brazing product according to claim 90, wherein the brazing product is a brazing sheet product comprising a core sheet (5) made of an aluminium alloy, at least one surface of said core sheet coupled to said aluminium layer (1), said aluminium layer (1) being an aluminium clad layer (1), the aluminium clad layer being made of said aluminium alloy comprising silicon in an amount in the range of 2 to 18% by weight, and said layer (2) comprising nickel on the outer surface of said aluminium clad layer such that taken together said aluminium clad layer and all layers exterior thereto form the filler metal for a brazing operation.
- 93. A brazing product according to claim 87, wherein the brazing product has a post-braze corrosion life of 8 days or more in a SWAAT-test without perforations in accordance with ASTM G-85.
- 94. A brazing product according to claim 87, wherein the brazing product has a post-braze corrosion life of 12 days or more, in a SWAAT-test without perforations in accordance with ASTM G-85.
- 95. A brazing product according to claim 92, wherein the brazing product has a post-braze corrosion life of 8 days or more in a SWAAT-test without perforations in accordance with ASTM G-85.
- 96. A brazing product according to claim 92, wherein the brazing product has a post-braze corrosion life of 12 days or more, in a SWAAT-test without perforations in accordance with ASTM G-85.
- 97. Method of manufacturing an assembly of brazed components, comprising the steps of: (a) shaping parts of which at least one of the parts is made from the brazing product according to claim 75; (b) assembling the parts into the assembly; (c) brazing the assembly under a vacuum or in an inert atmosphere in the absence of a brazing-flux at elevated temperature for a period long enough for melting and spreading of the molten filler metal; (d) cooling the brazed assembly.
- 98. The method of claim 97, wherein in step (a) said at least one of the parts to be joined by brazing is a brazing sheet product.
- 99. The method of claim 97, wherein in step (a) at least one other of said parts comprises a material selected from the group consisting of titanium, plated or coated titanium, bronze, brass, stainless steel, plated or coated stainless steel, nickel, nickel-alloy, low-carbon steel, plated or coated low-carbon steel, high-strength steel, and plated or coated high-strength steel.
- 100. A brazed assembly manufactured in accordance with claim 97, and wherein the parts made from said brazing product have a post-braze corrosion life of 12 days or more in a SWAAT-test without perforations in accordance with ASTM G85.
- 101. Method of manufacturing an assembly of brazed components, comprising the steps of: (a) shaping parts of which at least one is made from the brazing product according to claim 82; (b) assembling the parts into the assembly; (c) brazing the assembly under a vacuum or in an inert atmosphere in the absence of a brazing-flux at elevated temperature for a period long enough for melting and spreading of the molten filler metal; (d) cooling the brazed assembly.
- 102. The method of claim 101, wherein in step (a) said at least one of the parts to be joined by brazing is a brazing sheet product.
- 103. The method of claim 101, wherein in step (a) at least one other of said parts comprises a material selected from the group consisting of titanium, plated or coated titanium, bronze, brass, stainless steel, plated or coated stainless steel, nickel, nickel-alloy, low-carbon steel, plated or coated low-carbon steel, high-strength steel, and plated or coated high-strength steel.
- 104. A brazed assembly manufactured in accordance with claim 101, and wherein the parts made from said brazing product have a post-braze corrosion life of 12 days or more in a SWAAT-test without perforations in accordance with ASTM G85.
- 105. Method of manufacturing an assembly of brazed components, comprising the steps of: (a) shaping parts of which at least one is made from the brazing product according to claim 87; (b) assembling the parts into the assembly; (c) brazing the assembly under a vacuum or in an inert atmosphere in the absence of a brazing-flux at elevated temperature for a period long enough for melting and spreading of the molten filler metal; (d) cooling the brazed assembly.
- 106. The method of claim 105, wherein in step (a) said at least one of the parts to be joined by brazing is a brazing sheet product.
- 107. The method of claim 105, wherein in step (a) at least one other of said parts comprises a material selected from the group consisting of titanium, plated or coated titanium, bronze, brass, stainless steel, plated or coated stainless steel, nickel, nickel-alloy, low-carbon steel, plated or coated low-carbon steel, high-strength steel, and plated or coated high-strength steel.
- 108. A brazed assembly manufactured in accordance with claim 105, and wherein the parts made from said brazing product have a post-braze corrosion life of 12 days or more in a SWAAT-test without perforations in accordance with ASTM G85.
- 109. Method of manufacturing an assembly of brazed components, comprising the steps of: (a) shaping parts of which at least one is made from the brazing product according to claim 92; (b) assembling the parts into the assembly; (c) brazing the assembly under a vacuum or in an inert atmosphere in the absence of a brazing-flux at elevated temperature for a period long enough for melting and spreading of the molten filler metal; (d) cooling the brazed assembly.
- 110. The method of claim 109, wherein in step (a) said at least one of the parts to be joined by brazing is a brazing sheet product.
- 111. The method of claim 109, wherein in step (a) at least one other of said parts comprises a material selected from the group consisting of titanium, plated or coated titanium, bronze, brass, stainless steel, plated or coated stainless steel, nickel, nickel-alloy, low-carbon steel, plated or coated low-carbon steel, high-strength steel, and plated or coated high-strength steel.
- 112. A brazed assembly manufactured in accordance with claim 109, and wherein the parts made from said brazing product have a post-braze corrosion life of 12 days or more in a SWAAT-test without perforations in accordance with ASTM G85.
CROSS-REFERENCE TO RELATED APPLICATION
[0001] This is a continuation-in-part of U.S. patent application Ser. No. 09/990,507, filed Nov. 21, 2001, and Ser. No. 10/300,836, filed Nov. 21, 2002, both applications are now pending, and both are incorporated herein by reference in their entireties.
Continuation in Parts (2)
|
Number |
Date |
Country |
Parent |
09990507 |
Nov 2001 |
US |
Child |
10424159 |
Apr 2003 |
US |
Parent |
10300836 |
Nov 2002 |
US |
Child |
10424159 |
Apr 2003 |
US |