Shielding gas weld cone and method
11045903 · 2021-06-29
Assignee
Inventors
Cpc classification
B23K26/147
PERFORMING OPERATIONS; TRANSPORTING
B23K26/1476
PERFORMING OPERATIONS; TRANSPORTING
B23K26/123
PERFORMING OPERATIONS; TRANSPORTING
B23K26/1482
PERFORMING OPERATIONS; TRANSPORTING
International classification
B23K26/12
PERFORMING OPERATIONS; TRANSPORTING
B23K26/14
PERFORMING OPERATIONS; TRANSPORTING
Abstract
A device for distributing gas near a weld location includes a cap, a funnel, an inlet, and an aperture. The cap includes a sidewall and an annular lip, and defines a reservoir between the sidewall and the annular lip. The annular lip includes a proximal-most edge. The cap defines an opening, and defines a longitudinal axis. The funnel is disposed adjacent a distal end of the cap. The inlet is disposed in mechanical cooperation with the cap. The aperture is disposed through the sidewall of the cap and is in fluid communication with the inlet. The aperture is disposed distally of the proximal-most edge of the annular lip. Gas is configured to flow through the inlet, through the aperture and into the reservoir. The reservoir is configured to allow the gas to uniformly overflow the proximal-most edge of the annular lip and flow distally through the opening defined by the cap.
Claims
1. A device configured for distributing gas near a weld location, the device comprising: a cap including a sidewall and an annular lip, a reservoir defined between the sidewall and the annular lip, the annular lip including a proximal-most edge, the cap defining an opening, having a longitudinal axis extending through a radial center of the opening from a proximal end of the opening to a distal end of the opening; a funnel disposed adjacent a distal end of the cap; an inlet disposed in mechanical cooperation with the cap; and an aperture disposed through the sidewall of the cap and in fluid communication with the inlet, the aperture disposed distally of the proximal-most edge of the annular lip; wherein gas is configured to flow through the inlet, through the aperture and into the reservoir, and wherein the reservoir is configured to allow the gas to uniformly overflow the proximal-most edge of the annular lip and flow distally through the opening defined by the cap, and wherein a distal end of the cap is disposed at a non-perpendicular angle with respect to the longitudinal axis.
2. The device according to claim 1, wherein the funnel is selectively engageable with the cap.
3. The device according to claim 1, wherein the funnel is configured to selectively engage the cap with a plurality of magnets.
4. The device according to claim 1, further comprising a first plurality of magnets disposed on a distal end of the cap, and a second plurality of magnets disposed on a proximal end of the funnel.
5. The device according to claim 1, wherein a proximal end of the funnel is disposed at a non-perpendicular angle with respect to the longitudinal axis.
6. The device according to claim 5, further comprising a first plurality of magnets disposed on the distal end of the cap, and a second plurality of magnets disposed on the proximal end of the funnel.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) Various aspects of the present disclosure are described herein with reference to the drawings wherein like reference numerals identify similar or identical elements:
(2)
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DETAILED DESCRIPTION
(7) Embodiments of the presently disclosed shielding gas weld cone are described in detail with reference to the drawings, in which like reference numerals designate identical or corresponding elements in each of the several views.
(8) With initial reference to
(9) With initial reference to
(10) Shielding gas weld cone 100 of the present disclosure enables a uniform shield or curtain of shielding gas “SG” to be directed toward or poured over the location of the weld, as shown in
(11) With reference to
(12) More particularly, cap 120 includes a proximal end 122, a distal end 124, sidewall 126, and a lip 130. As shown in
(13) Funnel 160 extends distally from cap 120 and is configured to direct shielding gas “SG” toward the weld site. Funnel 160 may be connected to cap 120, integrally formed with cap 120, coupled to cap 120, affixed to cap 120, or selectively attachable to and removable from cap 120, for example. In the illustrated embodiment, funnel 160 selectively engages cap 120 with a plurality of magnets 180 (see
(14) The polarity of magnets 180 is configured such that first set of magnets 180a and second set of magnets 180b are attracted to each other. It is envisioned that the polarity of the magnets in first set of magnets 180a and the polarity of the magnets in second set of magnets 180b alternate, such that funnel 160 and cap 120 can only engage one another at predefined radial orientations (e.g., only two radial orientations when first set of magnets 180a includes four magnets, and when second set of magnets 180b includes four magnets, as shown in
(15) With particular reference to
(16) Referring back to
(17) When shielding gas weld cone 100 is properly positioned (or prior thereto), a portion of a welding device (not shown) is inserted through an opening 110 defined within and extending through shielding gas weld cone 100. A plurality of set screws (or similar) 112 extending through cap 120 is usable to temporarily secure shielding gas weld cone 100 to the welding device. Additionally, an O-ring 190 (
(18) After the welding device is positioned with respect to shielding gas weld cone 100, a supply of shielding gas “SG” is engaged with inlets 140a, 140b. The shielding gas “SG” gas then flows through inlets 140a, 140b, through apertures 142, and accumulates within reservoir 132. Gravity keeps shielding gas “SG” within reservoir 132 until the amount of shielding gas “SG” exceeds the volume of reservoir 132 causing the shielding gas “SG” to overflow or flow over proximal-most edge 131 of lip 130. Since shielding gas weld cone 100 is level, the shielding gas “SG” overflows the entire, annular proximal-most edge 131 of lip 130 at the same time or essentially the same time. Thus, reservoir 132 of cap 120 is configured to allow the shielding gas “SG” to overflow uniformly over proximal-most edge 131 of lip 130. This uniform overflow or spilling of the shielding gas “SG” results in a curtain-like flow of the shielding gas “SG” along an inner wall 164 of funnel 160. The shielding gas “SG” continues to flow out of a distal aperture 166 of funnel 160, toward and radially surrounding the weld area, which creates curtain of shielding gas “SG” (
(19) As noted above, funnel 160 is shown engaging cap 120 with plurality of magnets 180, thereby creating a selective connection therebetween. The selective connection may be helpful when positioning shielding gas weld cone 100 is a tight location, if a user wants to reposition funnel 160, replace a broken funnel 160, or use a different size funnel 160, for example. Additionally, the connection between cap 120 and funnel 160 is designed such that funnel 160 is able to break away or separate from cap 120, thereby reducing the chances that cap 120 or funnel 160 becomes damaged during use, reducing the odds that cap 120 becomes dislodged from the welding device during use, and reducing the likelihood that cap 120 is moved out of its level position during use, for example.
(20) Further, the present disclosure relates to methods of manufacturing (e.g., surgical instruments 20) utilizing the disclosed shielding gas weld cone 100. Disclosed methods include positioning shielding gas weld cone 100 adjacent a weld site such that proximal-most edge 131 of lip 130 of cap 120 is level, engaging a supply of shielding gas “SG” with shielding gas weld cone 100, inserting a portion of a welding device within opening 110 of shielding gas weld cone 100, filling reservoir 132 with shielding gas “AG,” and overflowing reservoir 132 with shielding gas “SG” thereby creating a uniform curtain of shielding gas “SG” near the weld site. Disclosed methods also include engaging and/or disengaging funnel 160 with cap 120.
(21) From the foregoing and with reference to the various figure drawings, those skilled in the art will appreciate that certain modifications can also be made to the present disclosure without departing from the scope of the same. While several embodiments of the disclosure have been shown in the drawings, it is not intended that the disclosure be limited thereto, as it is intended that the disclosure be as broad in scope as the art will allow and that the specification be read likewise. Therefore, the above description should not be construed as limiting, but merely as exemplifications of particular embodiments. Those skilled in the art will envision other modifications within the scope and spirit of the claims appended hereto.