Mandrels and mandrel balls help prevent tube buckling, wrinkling, and collapse in a rotary-draw bending operation. During bending, high normal forces between the mandrel and an inner surface of the tube create frictional forces at the contact interface. The relative motion between the outer surfaces of the mandrel and inner surface of the tube (workpiece) often creates galling on the inner surface of the tube. The presence of galling creates the need for cleaning (down-time, loss of productivity, etc.) and often leads to failure of the workpiece.
An embodiment of the present invention is directed to a galling-resistive insert for use in a mandrel assembly. The insert is secured at the outer surface of portions of the mandrel assembly and functions to reduce galling of an inner surface of a tubular blank.
In one embodiment, the present invention includes a mandrel-ball assembly that is comprised of a ball body, an insert, and a securing mechanism. The ball body includes an indentation in an outer surface within which an insert is at least partially positioned. The securing mechanism retains the insert in the indentation.
Another embodiment of the present invention includes a mandrel-shank assembly that is comprised of a shank body, an insert, and a securing mechanism. The shank body includes an indentation in an outer surface within which an insert is at least partially positioned. The securing mechanism retains the insert in the indentation.
An additional embodiment of the present invention includes a method for bending a tubular blank. According to the method, a tubular blank is clamped and a mandrel-ball assembly is positioned within a hollow central region of the tubular blank. The mandrel-ball assembly includes a ball body with an indentation in an outer surface, an insert at least partially positioned within the indentation, and a securing mechanism that retains the insert in the indentation. The tubular blank is then bent.
Embodiments of the invention are defined by the claims below, not this summary. A high-level overview of various aspects of the invention is provided here to provide an overview of the disclosure and to introduce a selection of concepts further described below in the detailed-description section. This summary is not intended to identify key or essential features of the claimed subject matter, nor is it intended to be used as an aid in isolation to determine the scope of the claimed subject matter.
Illustrative embodiments of the present invention are described in detail below with reference to the attached figures, which are incorporated herein by reference, wherein:
The subject matter of embodiments of the present invention is described with specificity herein to meet statutory requirements. But the description itself is not intended to necessarily limit the scope of claims. Rather, the claimed subject matter might be embodied in other ways to include different elements or combinations of elements similar to the ones described in this document, in conjunction with other present or future technologies.
As stated elsewhere in the specification, the present invention is directed to a galling-resistive insert for use in a mandrel assembly. The insert is secured at the outer surface of portions of the mandrel assembly and functions to reduce galling of an inner surface of a tubular blank.
Referring now to
The illustrated embodiment includes the ball body 12 that is generally symmetric about centerline axis 14. Outer surface 16 of ball body 12 includes indentation 18 and insert 20 is at least partially positioned within indentation 18.
In the figures, the insert 20 comprises a ring of material that is generally symmetric about centerline axis 14 and extends 360° about the outer surface 16 of ball body 12. Securing mechanism 22 is placed adjacent to insert 20 and retains insert 20 within indentation 18. In the embodiment shown, securing mechanism 22 includes holding ring 24 that captures insert 20 within indentation 18. Securing mechanism 22 also includes a plurality of separate fasteners 26A-E that secure holding ring 24 to ball body 12. Separate fasteners 26A-E may be threaded or unthreaded or may be of any type known by one skilled in the art.
Other securing mechanisms might also be used to retain the insert 20 in position. For instance, holding ring 24 may be secured to ball body 12 by mating together a threaded surface (male or female) on holding ring 24 with a complementary threaded surface (female or male, respectively) on ball body 12. That is, both the ball body 12 and the securing mechanism 22 might both be threaded and screwed together. In addition, holding ring 24 may be integrally formed with insert 20 creating a separate subassembly that is then secured to ball body 12 using any of the methods described. Other securing mechanisms, such as welding, adhesion, an interference fit, or a transition fit may also be used for embodiments that fall within the scope of the disclosed invention.
Insert 20 is positioned on the portion or portions of mandrel-ball assembly 10 that experience relatively high normal contact forces with an inner surface of a tubular blank during a bending operation. In one embodiment, insert 20 includes a single contiguous piece of material that at least partially circumscribes the outer surface 16. In an alternative embodiment, the insert 20 includes a discrete number of non-contiguous pieces of material that are shaped as incomplete arcs or triangles and that are spaced apart and around the outer surface 16. Insert 20 may include a uniform or non-uniform cross-sectional shape.
Insert 20 includes a galling-resistive material, which may include a plastic material, a low-stacking-fault-energy metal or metallic alloy (e.g., a copper-, bronze-, or cobalt-based alloy), a material that is metallurgically-incompatible with the tubular blank (i.e., insoluble solids), a low-friction material, and any combination thereof. Suitable plastic material includes, but is not limited to, nylon, polytetrafluoroethylene, polyoxymethylene, polyurethane, and polyethylene, or any combination thereof. Generally, the hardness of the galling-resistive material should be less than the hardness of the tubular blank in which the mandrel-ball assembly will be used during bending.
The exemplary embodiment shown in
Referring now to
Generally, nose 36 experiences relatively high normal contact forces with an inner surface of a tubular blank during a bending operation. Similar to the mandrel-ball assembly described above, outer surface 34 of shank body 32 includes indentation 38. Insert 40 is at least partially positioned within indentation 38. Insert 40 comprises a ring of material that extends about the outer surface 34 of shank body 32. Securing mechanism 42 is placed adjacent to insert 40 and retains insert 40 within indentation 38. Securing mechanism 42 includes holding ring 44 that captures insert 40 within indentation 38.
As similarly described above for securing mechanism 22, securing mechanism 42 may retain insert 40 in indentation 38 by threading holding ring 44 onto shank body 32 using complementary male/female threaded surfaces or may include a plurality of separate fasteners that secure holding ring 44 to shank body 32. Separate fasteners may be threaded or unthreaded or may be of any type known by one skilled in the art. Additionally, holding ring 44 may also be integrally formed with insert 40 creating a separate subassembly that is then secured to shank body 32 using any of the methods described herein.
Other securing mechanisms, such as welding, adhesion, an interference fit, or a transition fit may also be used for embodiments that fall within the scope of the disclosed invention. Furthermore, the disclosed invention is not limited to the exemplary embodiment shown in
Insert 40 is positioned on a portion of nose 36 of shank body 32. Similar to insert 20 described above, insert 40 includes a galling-resistive material, which may include a plastic material (e.g., nylon, polytetrafluoroethylene, polyoxymethylene, polyurethane, polyethylene, etc.), a low-stacking-fault-energy metal or metallic alloy (e.g., a copper-, bronze-, or cobalt-based alloy), a material that is metallurgically-incompatible with the tubular blank (i.e., insoluble solids), a low-friction material, and any combination thereof. Generally, the hardness of the galling-resistive material should be less than the hardness of the tubular blank in which the mandrel-ball assembly will be used during bending. In addition, insert 40 may include a single contiguous piece of material or may be formed of a discrete number of non-contiguous pieces of material and may include a uniform or non-uniform cross-sectional shape.
Referring now to
Insert 40 and inserts 20A-C may include the same galling-resistant material or the same combination of materials in accordance with embodiments described herein. Alternatively, insert 40 and one or more of insert 20A, 20B, and 20C may each include a different galling-resistant material or combination of materials in accordance with embodiments described herein. Although the embodiment shown in
Referring now to
For each of the exemplary embodiments discussed, many different alternative arrangements of the various components depicted, as well as components not shown, are possible without departing from the scope of the claims below. Embodiments of our technology have been described with the intent to be illustrative rather than restrictive. Alternative embodiments will become apparent to readers of this disclosure after and because of reading it. Alternative means of implementing the aforementioned can be completed without departing from the scope of the claims below. Certain features and subcombinations are of utility and may be employed without reference to other features and subcombinations and are contemplated within the scope of the claims.
Number | Name | Date | Kind |
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2962077 | Condiff et al. | Nov 1960 | A |
3456482 | Maier et al. | Jul 1969 | A |
5588505 | Heath | Dec 1996 | A |
6085572 | McGuire, Sr. | Jul 2000 | A |
6389872 | Hanson | May 2002 | B1 |
Entry |
---|
A. Gillard, et al.; “Incremental Forming of 5xxx and 6xxx Aluminum Alloys for Improved Formability”; Ford Research and Advanced Engineering Technical Reports, SRR-2005-0096, Project No. AJ41G, Jun. 6, 2005; 48 pages. |
H.K. Yi, et al.; “Application of a combined heating system for the warm hydroforming of lightweight alloy tubes”; Elsevier, Journal of Materials Processing Technology, vol. 203, (2008), pp. 532-536. |
Number | Date | Country | |
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20150328671 A1 | Nov 2015 | US |