WIRE FEEDER AND WIRE FEEDER CONNECTION
20170246702 ยท 2017-08-31
Assignee
Inventors
Cpc classification
B23K9/122
PERFORMING OPERATIONS; TRANSPORTING
B23K9/133
PERFORMING OPERATIONS; TRANSPORTING
B65H51/10
PERFORMING OPERATIONS; TRANSPORTING
International classification
Abstract
Embodiments of the present invention are wire feeders and wire feeder cable connections which include a power block portion, a cable connection portion and a liner guide assembly portion. The liner guide assembly portion and power block portion are structured and assembly so that a liner guide can be removed from a welding cable from inside the wire feeder, without removing the cable connector from the wire feeder.
Claims
1. A welding wire feeder connector, comprising: a connection end portion configured to be coupled to a wire feeder power block, said connector end portion having and end face with a first passage opening configured to align with a corresponding opening in said wire feeder power block, where said first passage opening is positioned offset of a centerline of said connection end portion; a cable connection end portion configured to be connected to a welding cable, said cable connection end portion extending from said connection end portion, where said cable connection end portion has a smaller outer diameter than an outer diameter of said connection end portion and where said cable connection end portion is positioned offset from said centerline of said connection end portion; and a passage extending from a distal end of said cable connection end portion through said welding wire feeder connector to said first passage opening, where said passage is offset from said center line of said connection end portion, wherein said passage is configured to receive a liner guide assembly through said first passage opening such that a liner guide of said liner guide assembly extends out of said distal end of said cable connection end portion and retain said liner guide assembly.
2. The welding wire feeder connector of claim 1, further comprising a further opening on said end face of said connection end portion, where said further opening is configured to correspond to a passage on said power block.
3. The welding wire feeder connector claim 2, wherein said further opening is configured to receive a shielding gas from said power block and direct said shielding gas to a welding torch cable.
4. The welding wire feeder connector of claim 1, further comprising a plurality of additional openings on said end face of said connection end portion, wherein each of said plurality of additional openings are configured to correspond to a separate passage, respectively, on said power block.
5. The welding wire feeder connector of claim 4, wherein a first of said plurality of additional openings is configured to receive a shielding gas from said power block and direct said shielding gas to a welding torch cable, a second of said additional openings is configured to receive a coolant liquid from said power block and direct said coolant liquid to said welding torch cable, and a third of said plurality of additional openings is configured to receive said coolant liquid from said welding torch cable and direct said received coolant liquid to said power block.
6. The welding wire feeder connector of claim 1, wherein said passage comprises a shoulder portion internal from said end face configured to engage with a distal end of said liner guide assembly and configured to retain said liner guide assembly with said power block.
7. The welding wire feeder connector of claim 1, wherein said welding wire feeder connector is configured to be secured to said power block using a threaded collar connector.
8. A welding wire feeder connector, comprising: a connection end portion configured to be coupled to a wire feeder power block, said connector end portion having and end face with a first passage opening configured to align with a first opening in said wire feeder power block and a second passage opening configured to align with a second opening in said wire feeder power block, where said first passage opening is positioned offset of a centerline of said connection end portion, and a cable connection end portion configured to be connected to a welding cable, said cable connection end portion extending from said connection end portion, where said cable connection end portion has a smaller outer diameter than an outer diameter of said connection end portion and where said cable connection end portion is positioned offset from said centerline of said connection end portion; and a passage extending from a distal end of said cable connection end portion through said welding wire feeder connector to said first passage opening, where said passage is offset from said center line of said connection end portion, wherein said passage is configured to receive a liner guide assembly through said first passage opening such that a liner guide of said liner guide assembly extends out of said distal end of said cable connection end portion, and wherein said passage comprises a shoulder portion internal from said end face configured to engage with a distal end of said liner guide assembly and configured to retain said liner guide assembly such that a portion of said liner guide assembly extends out from said end face and into said power block.
9. The welding wire feeder connector claim 8, wherein said second passage opening is configured to receive a shielding gas from said power block and direct said shielding gas to a welding torch cable.
10. The welding wire feeder connector of claim 8, further comprising a plurality of additional passage openings on said end face of said connection end portion, wherein each of said plurality of additional passage openings are configured to correspond to separate openings on said power block.
11. The welding wire feeder connector of claim 10, wherein a first of said plurality of additional openings is configured to receive a shielding gas from said power block and direct said shielding gas to a welding torch cable, a second of said additional openings is configured to receive a coolant liquid from said power block and direct said coolant liquid to said welding torch cable, and a third of said plurality of additional openings is configured to receive said coolant liquid from said welding torch cable and direct said received coolant liquid to said power block.
12. The welding wire feeder connector of claim 8, wherein said welding wire feeder connector is configured to be secured to said power block using a threaded collar connector.
13. A welding wire feeder connector, comprising: a connection end portion configured to be coupled to a wire feeder power block, said connector end portion having and end face with a first passage opening configured to align with a first opening in said wire feeder power block and a second passage opening configured to align with a second opening in said wire feeder power block and is configured to receive a shielding gas from said power block and direct said shielding gas to a welding torch cable, and where said first passage opening is positioned offset of a centerline of said connection end portion, and a cable connection end portion configured to be connected to a welding cable, said cable connection end portion extending from said connection end portion, where said cable connection end portion has a smaller outer diameter than an outer diameter of said connection end portion and where said cable connection end portion is positioned offset from said centerline of said connection end portion; and a passage extending from a distal end of said cable connection end portion through said welding wire feeder connector to said first passage opening, where said passage is offset from said center line of said connection end portion, wherein said passage is configured to receive a liner guide assembly through said first passage opening such that a liner guide of said liner guide assembly extends out of said distal end of said cable connection end portion, and wherein said passage comprises a shoulder portion internal from said end face configured to engage with a distal end of said liner guide assembly and configured to retain said liner guide assembly such that a portion of said liner guide assembly extends out from said end face and into said power block.
14. The welding wire feeder connector of claim 13, further comprising a plurality of additional passage openings on said end face of said connection end portion, wherein each of said plurality of additional passage openings are configured to correspond to separate openings on said power block.
15. The welding wire feeder connector of claim 14, wherein a first of said plurality of additional openings is configured to receive a shielding gas from said power block and direct said shielding gas to a welding torch cable, a second of said additional openings is configured to receive a coolant liquid from said power block and direct said coolant liquid to said welding torch cable, and a third of said plurality of additional openings is configured to receive said coolant liquid from said welding torch cable and direct said received coolant liquid to said power block.
16. The welding wire feeder connector of claim 13, wherein said welding wire feeder connector is configured to be secured to said power block using a threaded collar connector.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0008] The above and/or other aspects of the invention will be more apparent by describing in detail exemplary embodiments of the invention with reference to the accompanying drawings, in which:
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DETAILED DESCRIPTION
[0018] Reference will now be made in detail to various and alternative exemplary embodiments and to the accompanying drawings, with like numerals representing substantially identical structural elements. Each example is provided by way of explanation, and not as a limitation. In fact, it will be apparent to those skilled in the art that modifications and variations can be made without departing from the scope or spirit of the disclosure and claims. For instance, features illustrated or described as part of one embodiment may be used on another embodiment to yield a still further embodiment. Thus, it is intended that the present disclosure includes modifications and variations as come within the scope of the appended claims and their equivalents.
[0019] Exemplary embodiments described herein are particularly applicable for use in connection with welding wire feeders and, therefore, embodiments of the present invention will be described with particular reference to wire feeders used in connection with a welding operation. However, the claimed invention has broader applications and may be used with other types of wire or other wire-like materials.
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[0024] The passage 313 is the wire guide passage through which the wire guide from the cable 135 passes through the power block such that it couples the interior cavity of the wire feeder with the outside of the wire feeder. The wire guide assembly passes through this passage 313, and during use of the wire feeder 200, the wire consumable passes through this passage via the wire guide and into the cable 135. The other passages 314, 315 and 316 can be used for shielding gas, cooling gas and/or cooling liquid (for liquid cooled torches) as needed. In the embodiment shown, the passages 314, 315 and 316 are connected to exit passages (not shown) at the bottom 318 of the block 310 where connections are made for the gas/liquid as needed. It should be noted that embodiments of the present invention are not limited to liquid cooled embodiments, but can apply to both liquid cooled and non-liquid cooled wire feeders.
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[0028] Turning now to
[0029] Unlike known systems, exemplary embodiments like those discussed herein allow for the liner assembly 400 to be removed simply by removing the nipple 750 from the interior of the wire feeder. The connector 320 need not be removed or disconnected from the power block 310 or the wire feeder. This significantly reduces the time needed to change the liner assembly 400 and greatly reduces the risk of damaging or losing any of the connection components. In known systems, many of the above described components had to be disconnected and/or removed to allow for removal of the liner assembly 400. With embodiments described herein, only the housing need be opened and the nipple 750 be removed.
[0030] While the claimed subject matter of the present application has been described with reference to certain embodiments, it will be understood by those skilled in the art that various changes may be made and equivalents may be substituted without departing from the scope of the claimed subject matter. In addition, many modifications may be made to adapt a particular situation or material to the teachings of the claimed subject matter without departing from its scope. Therefore, it is intended that the claimed subject matter not be limited to the particular embodiment disclosed, but that the claimed subject matter will include all embodiments falling within the scope of the appended claims.