SYSTEM AND METHOD FOR INSTALLING A MANIFOLD PLUG
20240246206 ยท 2024-07-25
Assignee
Inventors
- Victor Kirilichin (Madison, CT, US)
- David P. Turechek (Shelton, CT, US)
- Brian P. Krieger (Albion, NY, US)
Cpc classification
F16L55/13
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16L55/1108
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Y10T29/4994
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
Y10T29/53691
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
F16B13/0858
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
B25B27/00
PERFORMING OPERATIONS; TRANSPORTING
F16B13/08
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16L55/11
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
The present disclosure relates to an insert and system of installing the same. The insert includes a tapered core and a cylinder. The core releasably secures to an installation device which includes a depth stop or a depth control to control the installation depth of the insert. The insert may be provided in a tray that allows for easier handling of the inserts and installation thereof in installation holes, for example in a hydraulic manifold. In some cases, the core includes a threaded hole to releasably secure the insert to the installation device, thus allowing the installation device to pull the core into the cylinder. The core and cylinder may be made of metallic materials such as steels, steel alloys and others. In some cases the insert can withstand blow out pressures of 40,000 psi or higher.
Claims
1. A system for sealing a hole having a first diameter comprising: an installation device having a drive; an end piece coupled to said installation device and including a bore and a distal surface wherein a dimension of said distal surface is larger than a dimension of the hole; a pull-rod coupled to said drive and passing through said bore, the pull-rod having a threaded end; an insert including a sleeve having a cylindrical portion and the insert also including a core, the sleeve being metallic and having a hole with the core positionable in the hole, the core having a threaded hole at a first end and a tapered outer wall, wherein a maximum outer diameter of the cylindrical portion of the sleeve is equal to or less than the first diameter and a depth of the threaded hole is less than a height of the core, a second end of said core having an outer diameter larger than the inner diameter; a switch coupled to a rotation drive and said pull-rod coupler such that axial pressure on said pull-rod activates said switch; wherein activation of said switch causes said rotation drive to rotate said pull-rod; and said pull-rod threadable into the threaded hole and said pull-rod retractable by said drive to pull the core into the cylindrical sleeve thereby radially expanding the sleeve against the hole, wherein the installation device and insert are configured such that after retraction of said pull-rod to pull the core into the cylindrical sleeve, said installation device is configured to rotate said pull-rod and release the threaded end from the threaded hole of the core.
2. The system of claim 1 wherein the sleeve core has a top lip.
3. The system of claim 1 wherein said distal surface contacts a surface adjacent to the hole to control an installation depth of said insert in the hole.
4. The system of claim 1 wherein at least part of said core is press-fit into the sleeve.
5. The system of claim 1 further comprising protrusions located on an outer surface of said metallic sleeve, said protrusions configured as at least two separate rings.
6. The system of claim 1 further comprising: an outer support connected to said installation device and having a distal end; said end piece threaded into said outer support at said distal end; wherein a distance between the distal surface and said distal end is adjustable through rotation of said end piece.
7. The system of claim 1 further comprising: a tray having a plurality of voids, at least one of which has an insert placed therein; wherein the voids have a size so that when the insert is pressed into one of the voids, rotation of said pull-rod inside the threaded hole creates a torque less than a friction force exerted against the cylindrical sleeve; said threading step including threading said pull-rod into the insert that is placed in said tray.
8. The system of claim 1 further comprising: a button wherein pressure on said button causes the axial drive to retract along an axis of the pull-rod.
9. The system of claim 1 further comprising: a first coupler; a second coupler having a stop; said first coupler inserted into said second coupler; wherein said drive is secured to said first coupler with said second coupler.
10. The system of claim 1 further comprising: said pull-rod coupler in contact with the proximal end of said pull rod so that rotation of said pull-rod coupler causes rotation of said pull-rod.
11. The system of claim 1 wherein said rotation drive and said axial drive are each selected from the group consisting of: a pneumatic drive, a hydraulic drive, an electric motor drive and combinations thereof.
12. The system of claim 1 further comprising: a distal extension extending from said end piece and having a dimension smaller than a dimension of the hole.
13. The system of claim 1 wherein retraction of said pull-rod causes said distal surface to bear against said sleeve so that said core is pulled into and causes radial expansion of said sleeve.
14. The system of claim 12, wherein the distal extension has a diameter that is larger than the diameter of the threaded hole of the core such that a distal surface of the distal extension contacts a top surface of the insert.
15. The system of claim 14, wherein, when the distal surface of the end piece contacts the surface adjacent to the installation hole, the length of the distal extension enables the insert to be installed at a depth within the installation hole at which the top surface of the insert is below the surface adjacent to the installation hole.
16. The system of claim 1, wherein the hole in the sleeve is a through hole.
17. The system of claim 1, wherein the entire sleeve is cylindrical.
18. A system for sealing an installation hole having a first diameter, comprising: a robotic installation device including: an axial drive; a rotation drive; an end piece having a distal surface that is larger than the first diameter of the installation hole; a pull-rod coupled to the axial and rotation drives and having a threaded end; an insert including a core and a sleeve, the sleeve having a cylindrical portion and defining a hole with an inner diameter and into which the core is retractable, the core having a height and a tapered outer wall, the core also having a threaded hole at a first end wherein a depth of the threaded hole is less than the height of the core, a second end of the core having an outer diameter that is larger than the inner diameter of the sleeve; wherein the rotation drive is configured to rotate the pull-rod in a first rotational direction so that the threaded end of the pull-rod is threaded into the threaded hole of the core, wherein the pull-rod is retractable by the axial drive to pull the core into the sleeve thereby radially expanding the sleeve against the hole, and wherein, after the core is pulled into the sleeve by the retraction of the pull-rod, the rotation drive is configured to rotate the pull-rod in a second rotational direction to release the threaded end of the pull-rod from the threaded hole of the core.
19. The system of claim 18, wherein the installation device is computer or electronically controlled.
20. The system of claim 18, further comprising: a tray having a plurality of tray holes, at least one of the tray holes having an insert positioned therein; wherein the tray holes have a size such that, when the insert is pressed into one of the tray holes, rotation of the pull-rod inside the threaded hole of the core creates a torque force that is less than a friction force exerted by the tray hole against the sleeve.
21. The system of claim 20, wherein threading the threaded end of the pull-rod into the threaded hole of the core is performed while the insert is positioned in a tray hole of the tray.
22. The system of claim 20, further comprising: a plurality of inserts, each one the plurality of inserts being positioned in one of the plurality of tray holes of the tray.
23. The system of claim 22, wherein the tray holes are disposed in a known pattern so that the robotic installation device can move the pull-rod to a position in the known pattern so as to thread the threaded end of the pull-rod into the threaded hole of the core.
24. The system of claim 21, wherein the tray includes reference marks in order to calibrate the position of the threaded end of the pull-rod relative to the threaded hole of the core.
25. The system of claim 18, wherein the distal surface of the end piece contacts a surface adjacent to the installation hole to control an installation depth of the insert in the installation hole.
26. The system of claim 18, wherein the end piece includes a distal extension having a diameter that is smaller than the installation hole but larger than the diameter of the threaded hole of the core such that a distal surface of the distal extension contacts a top surface of the insert.
27. The system of claim 26, wherein, when the distal surface of the end piece contacts the surface adjacent to the installation hole, the length of the distal extension enables the insert to be installed at a depth within the installation hole at which the top surface of the insert is below the surface adjacent to the installation hole.
28. The system of claim 18, wherein a maximum outer diameter of the cylindrical portion of the sleeve is equal to or less than the first diameter of the installation hole.
29. The system of claim 18, wherein the rotation drive and the axial drive are each selected from the group consisting of: a pneumatic drive, a hydraulic drive, an electric motor drive and combinations thereof.
30. The system of claim 18, wherein the robotic installation device is a part of an assembly line.
31. The system of claim 18, wherein the installation hole is a cylindrical hole in a manifold.
32. The system of claim 18, wherein the core and the sleeve are metallic.
33. The system of claim 18, wherein a bottom of the threaded hole of the core is solid.
34. The system of claim 18, wherein the bottom of the threaded hole of the core is not solid and permits hydraulic flow therethrough.
35. The system of claim 18, wherein the threaded hole of the core is configured to receive a device therein.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION OF THE INVENTION
[0032] In
[0033] Cylindrical sleeve 5 has a top surface 12 and has a void 10 passing through the cylindrical sleeve 5. Core 3 inserts into the void 10 at one end. In the illustrated embodiment of
[0034] As further shown, the bottom 16 of core 3 is solid and the hole 14 does not pass all the way through the core 3. It is contemplated that certain applications for the plug may include the hole 14 extending all the way through core 3. As one example, hydraulic lines may be installed in an insert having a hole extending all the way through the core. In some cases, the threads used to install hydraulic or other lines may become damaged. Rather than replacing the entire manifold, the threaded hole of the manifold can be bored out and an insert can be inserted inside the bored out hole. When the threads pass all the way through the core 3, the insert can be used to repair threads for hydraulic lines.
[0035] Proximate to bottom section 18, a lip may be located within cylindrical sleeve 5. Further core 3 may include a corresponding lip close to the top of the tapered section or cylindrical section 7. These two lips can interact to prevent or resist the possibility that core 3 can be extracted from cylindrical sleeve 5.
[0036] In
[0037] In one embodiment, the core and sleeve of the insert are made of a metallic material, in some cases a steel or aluminum alloy can be used. In some embodiments, the insert can be design to resist blow out for pressures of 40,000 psi. The insert shown in
[0038] The core and cylinder are sized so that the core can be press-fit into the cylinder. The taper angle of the core is designed to provide sufficient radial expansion without being so large as to progressively force the core out of the cylinder. Too large of an angle could result on too high of a resultant downward force between the cylinder and core which could force the core out of the cylinder over time. Therefore, the taper angle may be as large as 10?. Preferably, the angle is in the range of 5?-6?. The outer dimension of the sleeve and the inner dimension of the hole are typically also within close tolerances so that the radial expansion of the sleeve is sufficient to seal the hole. For example, the outer diameter of the sleeve may be 0 to 0.004 smaller than the diameter of the hole (diameter difference). It is understood that larger differences in diameter between the sleeve and the hole could still seal the hole, but may result in a lower blow out pressure. In addition, the ridges or ribs that protrude from the sleeve can provide additional guards for sealing the hole. It is understood that the ribs may be created by removal of material from the sleeve in channels to create the ribs or ridges that are raised with respect to the channel. These ribs or ridges can account for 0-20% of the outer diameter of the sleeve and more preferably 15-20% of the outer diameter of the sleeve. In some cases, the ridges can protrude 0.004-0.008 and preferably 0.006. Therefore, the ratio of ridge protrusion to diameter difference may be approximately 1:1-1:2 and preferably 1:1.5. The cylinder and core are typically made of relatively hard materials, for example steels. In some cases, the hardness may be measured as Re20 on the Rockwell hardness scale. In some cases the hardness of the rings or ridges may be increased so that the ridges are forced into the surface of the installation hole, thus providing added sealing and resistance to leakage. It is understood that the specific dimensional characteristics described herein are exemplary only and not limiting in scope.
[0039] In
[0040] It is understood that the installation device can also be a robotic or other mechanical arm that is computer or electronically controlled. For example, on an assembly line. In
[0041] In
[0042] In
[0043] In
[0044] In
[0045] In
[0046] Sealing is obtained by the expansion of the insert against the hole which may be in a manifold. Further, the depth the tapered section is pulled into the cylindrical section may be predetermined and repeatable regardless of hole size based on a pull setting of the installation device. The depth of pull can also be controlled by a force sensor or a control system. For example, upon reaching a certain pull force, the installation device may stop pulling on the insert and proceed to release the insert from the end piece. The pre-determined pull force may be set based on hole size, insert size or other criteria related to the installation of the plug in the hole. The insert when installed withstands high pressures commonly found in hydraulic manifolds and systems. For example, some embodiments of the inserts shown and described herein can withstand pressures up to and in excess of 40,000 PSI.
[0047] Although generally round inserts have been shown, it is understood that the geometry of the plug can change in order to interact with the hole to be sealed. It is further understood that various types of drives may be employed with the installation device, for example hydraulic or electric motor drives can be employed.
[0048] Although the invention has been described with reference to a particular arrangement of parts, features and the like, these are not intended to exhaust all possible arrangements or features, and indeed many other modifications and variations will be ascertainable to those of skill in the art.