Aluminum alloy welding wire

US2020276675A1 · US · A1

Patent metadata
FieldValue
Publication numberUS-2020276675-A1
Application numberUS-202016878050-A
CountryUS
Kind codeA1
Filing dateMay 19, 2020
Priority dateFeb 10, 2010
Publication dateSep 3, 2020
Grant date

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  1. Title

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  2. Abstract

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  3. Assignees and inventors

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  4. Key dates

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  5. First independent claim

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  6. CPC / IPC classifications

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  7. Citations and related patents

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Abstract

Official abstract text for this publication.

The present disclosure relates generally to the field of welding filler metals, and more particularly to compositions suitable for welding or brazing aluminum alloys. In an embodiment, an aluminum-silicon-magnesium alloy, includes a magnesium content between approximately 0.1 wt % and approximately 0.5 wt %, wherein substantially all of the magnesium content is present as magnesium silicide. The alloy includes a silicon content between approximately 5.0 wt % and approximately 6.0 wt %, wherein at least 4.75 wt % of the silicon content is present as free silicon. The alloy includes one or more of iron, copper, manganese, zinc, and titanium. The alloy further includes a remainder of aluminum and trace components.

First claim

Opening claim text (preview).

What is claimed is: 1 . An Al—Si—Mg welding filler metal consisting of: 5.0 to 6.0 wt % silicon; 0.1 to 0.5 wt % magnesium; 0.2 to 0.8 wt % iron; and the balance being aluminum and trace elements, wherein the trace elements consist of: a maximum allowable amount of copper of 0.3 wt %; a maximum allowable amount of manganese of 0.05 wt %; a maximum allowable amount of zinc of 0.2 wt %; a maximum allowable amount of titanium of 0.2 wt %; a maximum allowable amount of beryllium of 0.0003 wt %; and other trace elements are allowable in a maximum weight percent of 0.05% each, the other trace elements together being allowable in a maximum weight percent of 0.15% total; and wherein the Al—Si—Mg welding filler metal is a welding filler metal rod or wire for alloying with a base metal of a workpiece to produce a weld. 2 . The Al—Si—Mg welding filler metal of claim 1 , wherein silicon is present in a weight percent of between approximately 5.2% and 5.8% inclusive. 3 . The Al—Si—Mg welding filler metal of claim 1 , wherein the workpiece is a 6xxx series workpiece, wherein the weld is a weld joint that satisfies 6xxx series structural welding codes, and wherein the weld joint comprises weld metal that, with little or no dilution by the base metal of the 6xxx series workpiece, comprises: silicon in a weight percent of between approximately 5.0% inclusive and 6.0% inclusive; and magnesium in a weight percent of between approximately 0.15% inclusive and 0.50% inclusive. 4 . The Al—Si—Mg welding filler metal of claim 3 , wherein, with little or no dilution by the base metal of the 6xxx series workpiece, a tensile strength of the weld metal is greater than 27 kilopounds per square inch (ksi). 5 . The Al—Si—Mg welding filler metal of claim 3 , wherein, with little or no dilution by the base metal of the 6xxx series workpiece, a longitudinal shear strength of the weld metal is greater than 13.5 ksi. 6 . The Al—Si—Mg welding filler metal of claim 3 , wherein, with little or no dilution by the base metal of the 6xxx series workpiece, a transverse shear strength of the weld metal is greater than 20 ksi. 7 . The Al—Si—Mg welding filler metal of claim 3 , wherein, with little or no dilution by the base metal of the 6xxx series workpiece, a tensile strength of the weld metal is greater than 27 kilopounds per square inch (ksi), a longitudinal shear strength of the weld metal is greater than 13.5 ksi, and a transverse shear strength of the weld metal is greater than 20 ksi. 8 . The Al—Si—Mg welding filler metal of claim 3 , wherein, after the weld joint is formed, a strength of the weld metal increases over time at room temperature for weeks to years through natural age strengthening of the weld metal. 9 . The Al—Si—Mg welding filler metal of claim 3 , wherein a strength of the weld metal increases with post-weld artificial aging or with post-weld heat treatment and artificial aging, and wherein the post-weld artificial aging or the post-weld heat treatment and artificial aging involves an artificial age treatment of heating the weld metal to a temperature greater than room temperature for a period of time from 1 to 30 hours. 10 . The Al—Si—Mg welding filler metal of claim 3 , wherein an as-welded longitudinal shear strength of the weld metal is at least 17% greater than that of a second weld metal formed on the 6xxx series workpiece using a 4043 aluminum alloy, an as-welded transverse shear strength of the weld metal is at least 33% greater than that of the second weld metal, and an as-welded tensile strength of the weld joint is at least 42% greater than that of the second weld metal. 11 . The Al—Si—Mg welding filler metal of claim 3 , wherein the weld metal, with little or no dilution by the 6xxx series workpiece, has shear and tensile strengths in accordance with American Welding Society (AWS) D1.2, Structural Welding Code for Aluminum 6xxx series alloys in an as-welded, a post-weld artificial aged, and a post-weld heat treated and artificially aged condition. 12 . The Al—Si—Mg welding filler metal of claim 3 , wherein the weld metal, with little or no dilution by the 6xxx series workpiece, has a post-weld artificial aging or post-weld heat treatment and artificial aging longitudinal shear strength greater than 15.8 ksi, a post-weld artificial aging or post-weld heat treatment and artificial aging transverse shear strength greater than 26.6 ksi, and a post-weld artificial aging or post-weld heat treatment and artificial aging tensile strength greater than 42 ksi. 13 . An Al—Si—Mg welding filler metal consisting of: 5.0 to 6.0 wt % silicon; 0.1 to 0.5 wt % magnesium; 0.2 to 0.8 wt % iron; 0.05 to 0.2 wt % zinc; and the balance being aluminum and trace elements, wherein the trace elements consist of: a maximum allowable amount of copper of 0.3 wt %; a maximum allowable amount of manganese of 0.05 wt %; a maximum allowable amount of titanium of 0.2 wt %; a maximum allowable amount of beryllium of 0.0003 wt %; and other trace elements are allowable in a maximum weight percent of 0.05% each, the other trace elements together being allowable in a maximum weight percent of 0.15% total; and wherein the Al—Si—Mg welding filler metal is a welding filler metal rod or wire for alloying with a base metal of a workpiece to produce a weld. 14 . The Al—Si—Mg welding filler metal of claim 13 , wherein silicon is present in a weight percent of between approximately 5.2% and 5.8% inclusive. 15 . The Al—Si—Mg welding filler metal of claim 13 , wherein the workpiece is a 6xxx series workpiece, wherein the weld is a weld joint that satisfies 6xxx series structural welding codes, and wherein the weld joint comprises weld metal that, with little or no dilution by the base metal of the 6xxx series workpiece, comprises: silicon in a weight percent of between approximately 5.0% inclusive and 6.0% inclusive; and magnesium in a weight percent of between approximately 0.15% inclusive and 0.50% inclusive. 16 . The Al—Si—Mg welding filler metal of claim 15 , wherein, with little or no dilution by the base metal of the 6xxx series workpiece, a tensile strength of the weld metal is greater than 27 kilopounds per square inch (ksi). 17 . An Al—Si—Mg welding filler metal consisting of: 5.0 to 6.0 wt % silicon; 0.31 to 0.5 wt % magnesium; 0.05 to 0.2 wt % zinc; 0.05 to 0.2 wt % titanium; and the balance being aluminum and trace elements, wherein the trace elements consist of: a maximum allowable amount of iron of 0.8 wt %; a maximum allowable amount of copper of 0.3 wt %; a maximum allowable amount of manganese of 0.05 wt %; a maximum allowable amount of beryllium of 0.0003 wt %; and other trace elements are allowable in a maximum weight percent of 0.05% each, the other trace elements together being allowable in a maximum weight percent of 0.15% total; and wherein the Al—Si—Mg welding filler metal is a welding filler metal rod or wire for alloying with a base metal of a workpiece to produce a weld. 18 . The Al—Si—Mg welding filler metal of claim 17 , wherein silicon is present in a weight percent of between approximately 5.2% and 5.8% inclusive. 19 . The Al—Si—Mg welding filler metal of claim 17 , wherein the workpiece is a 6xxx series workpiece, wherein the weld is a weld joint that satisfies 6xxx series structural welding codes, and wherein the weld joint comprises weld metal that, with little or no dilution by the base metal of the 6xxx series workpiece, comprises: silicon in a weight percent of be

Assignees

Inventors

Classifications

  • with Sn or Zn · CPC title

  • mainly containing noble gases or nitrogen · CPC title

  • with silicon as the next major constituent · CPC title

  • Rods, electrodes or wires · CPC title

  • Making wire or rods for soldering or welding · CPC title

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What does patent US2020276675A1 cover?
The present disclosure relates generally to the field of welding filler metals, and more particularly to compositions suitable for welding or brazing aluminum alloys. In an embodiment, an aluminum-silicon-magnesium alloy, includes a magnesium content between approximately 0.1 wt % and approximately 0.5 wt %, wherein substantially all of the magnesium content is present as magnesium silicide. Th…
Who is the assignee on this patent?
Illinois Tool Works
What technology area does this patent fall under?
Primary CPC classification B23K35/286. Mapped technology areas include Operations & Transport.
When was this patent published?
Publication date Thu Sep 03 2020 00:00:00 GMT+0000 (Coordinated Universal Time) (A1). Legal status and post-grant events are not shown on this page.
What related patents are in patentsdb?
We list 8 related publications on this page (citations in our corpus or others sharing the same primary CPC).