Friction stir welding attachment, friction stir welding head, and friction stir welding device
US-2024066622-A1 · Feb 29, 2024 · US
US2016202001A1 · US · A1
| Field | Value |
|---|---|
| Publication number | US-2016202001-A1 |
| Application number | US-201414914451-A |
| Country | US |
| Kind code | A1 |
| Filing date | Aug 25, 2014 |
| Priority date | Aug 26, 2013 |
| Publication date | Jul 14, 2016 |
| Grant date | — |
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A process that uses friction stir welding to connect a tube, for example a thin gauge tube having a wall thickness of about 2.54 mm (0.100 inch) or less, to another element, such as a tube sheet of a heat exchanger. The process employs a tubular anvil that is installed into the end of the tube and which, in one embodiment, can provide material during the friction stir welding process. After the weld is complete, the weld zone between the tubular anvil and the tube is machined away and the anvil tube removed.
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1 . A process of connecting a tube to an element, comprising: inserting an end of the tube into a hole in the element that extends from a first surface at a first side to a second surface at a second side of the element; immobilizing the end of the tube with respect to the hole; installing a tubular anvil into the end of the tube from the first side of the element, the tubular anvil having a flared end positioned at the first surface of the element; friction stir welding the end of the tube, the flared end of the tubular anvil, and the element at the first side of the element to intermingle material of the tube, the tubular anvil and the element; machining the first surface of the element to remove the friction stir weld between the end of the tube and the tubular anvil; and removing the tubular anvil from the tube. 2 . The process of claim 1 , wherein the element is a tube sheet of a heat exchanger, the tube is a process tube of the heat exchanger, and the process tube has a thickness of about 0.100 inch or less. 3 . The process of claim 1 , installing includes inserting the tubular anvil into the end of the tube, and thereafter applying force to the tubular anvil to create a press fit between the tubular anvil and the tube with a portion of the flared end extending beyond the first surface of the element. 4 . The process of claim 3 , wherein machining includes using a machining device having a mandrel, and installing further includes inserting the mandrel of the machining device into the tubular anvil, and using the machining device to machine the portion of the flared end of the tubular anvil that extends beyond the first surface of the element to make the flared end flush with the first surface of the element. 5 . The process of claim 1 , wherein immobilizing the end of the tube comprises mechanically expanding the end of the tube. 6 . The process of claim 1 , wherein after installing the tubular anvil and prior to friction stir welding, installing a solid tapered anvil into the tubular anvil to prevent collapse of the tubular anvil during the friction stir welding. 7 . The process of claim 1 , wherein machining includes using a machining device having a mandrel, and machining the first surface includes inserting the mandrel of the machining device into the tubular anvil. 8 . The process of claim 1 , wherein machining the first surface of the element includes machining the first surface using a two-piece end mill. 9 . The process of claim 8 , wherein the two-piece end mill includes a cutter with a center bore, the cutter is movable toward and away from the first surface of the element, and the two-piece end mill further includes a probe disposed in the center bore that is movable independently of the cutter toward and away from the first surface of the element. 10 . The process of claim 8 , wherein the two-piece end mill includes a cutter with a center bore, the cutter is movable toward and away from the first surface of the element, and the two-piece end mill further includes a spring-loaded sensor disposed in the center bore. 11 . The process of claim 8 , wherein the two-piece end mill includes a cutter with a center bore, the cutter is movable toward and away from the first surface of the element, and the two-piece end mill further includes at least one depth finder that is rigidly attached to the two-piece end mill at a location external to the center bore. 12 . The process of claim 1 , wherein machining the first surface of the element includes machining the first surface using a one-piece end mill with a cutter that is movable toward and away from the first surface of the element, and the one-piece end mill further includes at least one depth stop sensor that controls depth of penetration of the cutter into the first surface of the element. 13 . A structure formed by the process of any one of claims 1 to 12 . 14 . The structure of claim 13 , wherein the structure is part of a heat exchanger. 15 . A structure, comprising: an element having a first surface, a second surface, and a plurality of holes extending through the element from the first surface to the second surface; a tube having a first end and a second end, the first end of the tube is disposed in one of the holes in the element, and the tube has a thickness of about 0 . 100 inch or less; and the first end of the tube and the element are friction stir welded to one another at the first surface of the element. 16 . The structure of claim 15 , wherein the structure is part of a heat exchanger, the element is a tube sheet of the heat exchanger, and the tube is a process tube of the heat exchanger. 17 . The structure of claim 16 , wherein the heat exchanger is a shell-and-tube heat exchanger.
using a non-consumable tool, e.g. friction stir welding · CPC title
heat exchangers {or the like (making heat exchangers by methods covered by other subclasses B21D53/02)} · CPC title
specially adapted for particular articles or work · CPC title
by welding · CPC title
by impact pressure or friction welding · CPC title
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