BUILT-IN END COUPLING FOR HIGH PRESSURE REINFORCED BONDED RUBBER HOSE ASSEMBLIES
20210033223 ยท 2021-02-04
Inventors
Cpc classification
F16L33/34
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16L13/11
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F16L13/11
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
One aspect of the disclosure is a method of attaching a hose coupling to a reinforced hose. In one embodiment, the method comprises: skiving the first end of the reinforced hose to expose at least one reinforcing layer of a plurality of reinforcing layers of the reinforced hose; positioning the skived first end of the reinforced hose in an inner cavity of the hose coupling; introducing a vacuum into the inner cavity through a vent port in the hose coupling; and introducing a bonding agent into the cavity through an injection port in the hose coupling, wherein the bonding agent is drawn by the vacuum into the plurality of reinforcing layers of the reinforced hose.
Claims
1. A method of attaching a hose coupling to a first end of a reinforced hose, the method comprising: skiving the first end of the reinforced hose to expose at least one reinforcing layer of a plurality of reinforcing layers of the reinforced hose; positioning the skived first end of the reinforced hose in an inner cavity of the hose coupling; introducing a vacuum into the inner cavity through a vent port in the hose coupling; and introducing a bonding agent into the cavity through an injection port in the hose coupling, wherein the bonding agent is drawn by the vacuum into the plurality of reinforcing layers of the reinforced hose.
2. The method as recited in claim 1, wherein the bonding agent is an epoxy.
3. The method as recited in claim 2, wherein the epoxy bonding agent is modified with the use of additives comprising nanoparticles.
4. The method as recited in claim 1, further comprising locating carbon-fiber layers between the at least some of the plurality of reinforcing layers prior to positioning the skived first end of the reinforced hose in the inner cavity of the hose coupling.
5. The method as recited in claim 4, wherein the carbon-fiber layers comprise pre-woven carbon-fiber.
6. The method as recited in claim 5, wherein the pre-woven carbon-fiber is a cylindrical shape, a helically wound braid, or a biaxial braid open sock.
7. The method as recited in claim 1, further comprising locating fiber layers between the at least some of the plurality of reinforcing layers prior to positioning the skived first end of the reinforced hose in the inner cavity of the hose coupling, wherein the fiber layers are selected from the group comprising: fiberglass, Kevlar, Rayon, Nylon, and polyester.
8. The method as recited in claim 1, further comprising, prior to introducing the vacuum and bonding agent into the cavity: sealing a leading edge the reinforced hose at the skived first end that abuts an inside of the hose coupling at a coupling end of the inner cavity of the hose coupling to the coupling end of the inner cavity of the hose coupling with a first seal; and sealing an aft end of the inner cavity of the hose coupling opposite the coupling end of the inner cavity to an outer cover of the reinforced hose with a second seal.
9. The method as recited in claim 8, further comprising terminating supply of the bonding agent into the injection port once the bonding agent is detected at the vent port.
10. The method as recited in claim 8, further comprising, prior to introducing the vacuum and bonding agent into the cavity: placing a first vacuum bag around the hose coupling and a portion of the outer cover of the first end of the reinforced hose; and sealing the first vacuum bag to the portion of the outer cover of the first end of the reinforced hose with vacuum sealing tape.
11. The method as recited in claim 10, further comprising, prior to introducing the vacuum and bonding agent into the cavity: inserting an expandable plug in an inner diameter of the reinforced hose at a second end of the reinforced hose opposite the skived first end of the reinforced hose; placing a second vacuum bag over the expandable plug and the outer cover of second end of the reinforced hose; and sealing the second vacuum bag to the outer cover of the second end of the reinforced hose with vacuum sealing tape.
12. The method as recited in claim 9, further comprising terminating supply of the bonding agent into the injection port once the bonding agent is detected at the vent port.
13. An reinforced hose assembly, comprising: a reinforced hose, comprising: a skived first end with a leading edge; a second end opposite the skived end; a plurality of reinforcing layers therein; and an outer cover; and at least one hose coupling, each comprising: an inner cavity having a coupling end and an aft end opposite the coupling end; a vent port; and an injection port; wherein: the skived first end of the reinforced hose is skived to expose at least one reinforcing layer of the plurality of reinforcing layers; the skived first end of the reinforced hose is positioned in the inner cavity of the at least one hose coupling; a vacuum is introduced the inner cavity of the at least one hose coupling through the vent port; a bonding agent is introduced to the inner cavity of the at least one hose coupling through the injection port; and the bonding agent is drawn by the vacuum into the plurality of reinforcing layers of the reinforced hose.
14. The reinforced hose assembly as recited in claim 13, wherein the bonding agent is epoxy.
15. The reinforced hose assembly as recited in claim 14, wherein the epoxy bonding agent is modified with the use of additives comprising nanoparticles.
16. The reinforced hose assembly as recited in claim 13, wherein carbon-fiber layers are located between at least some of the plurality of reinforcing layers prior to the skived first end of the reinforced hose being positioned in the inner cavity of the at least one hose coupling.
17. The reinforced hose assembly as recited in claim 16, wherein the carbon-fiber layers comprise pre-woven carbon-fiber.
18. The reinforced hose assembly as recited in claim 17, wherein the pre-woven carbon-fiber is a cylindrical shape, a helically wound braid, or a biaxial braid open sock.
19. The reinforced hose assembly as recited in claim 13, wherein fiber layers are located between the at least some of the plurality prior to positioning the skived first end of the reinforced hose in the inner cavity of the hose coupling, wherein the fiber layers are selected from the group comprising: fiberglass, Kevlar, Rayon, Nylon, and polyester.
20. The reinforced hose assembly as recited in claim 13, wherein, prior to introducing the vacuum and bonding agent into the cavity: the leading edge of the first end of the reinforced hose that abuts an inside of the at least one hose coupling at the coupling end of the inner cavity of the at least one hose coupling is sealed to the coupling end of the inner cavity of the at least one hose coupling with a first seal; and the aft end of the inner cavity of the at least one hose coupling is sealed to the outer cover of the reinforced hose with a second seal.
21. The reinforced hose assembly as recited in claim 20, wherein the supply of the bonding agent into the injection port is terminated once the bonding agent is detected at the vent port.
22. The reinforced hose assembly as recited in claim 20, wherein, prior to introducing the vacuum and bonding agent into the cavity: a first vacuum bag is placed around the at least one hose coupling and a portion of the outer cover of the first end of the reinforced hose; and the first vacuum bag is sealed to the portion of the outer cover of the first end of the reinforced hose with vacuum sealing tape.
23. The reinforced hose assembly as recited in claim 22, wherein, prior to introducing the vacuum and bonding agent into the cavity: an expandable plug is inserted in an inner diameter of the reinforced hose at the second end of the reinforced hose; a second vacuum bag is placed over the expandable plug and the outer cover of the second end of the reinforced hose; and the second vacuum bag is sealed to the outer cover of the second end of the reinforced hose.
24. The reinforced hose assembly as recited in claim 23, wherein the supply of the bonding agent into the injection port is terminated once the bonding agent is detected at the vent port.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0008] Reference is now made to the following descriptions taken in conjunction with the accompanying drawings, in which:
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DETAILED DESCRIPTION
[0017] Specific examples are described in detail and are shown in the drawings, with the understanding that the present disclosure is to be considered an exemplification of the principles of the disclosure, and is not intended to limit the disclosure to that illustrated and described herein. It is to be fully recognized that the different teachings of the examples discussed herein may be employed separately or in any suitable combination to produce desired results.
[0018] In order to obtain a high-pressure flexible rubber hose (the term rubber is used generally and does not specifically mean natural occurring rubber gum), a hose manufacturer incorporates a reinforcing material. Thus, the hose will consist of an inside sealing membranethe fluid tight element (inner tube), an inner rubber bonding element, a reinforcing element, an outer rubber bonding element, and finally an abrasive resistant covering. The reinforcing element is usually in the form of steel wire or cable, but also can be polyester or similar organic material, carbon fiber or similar high technology material. The reinforcement generally is used in multiple layers called plies which are laid in pairs spirally around the hose inner layers in opposing lay directions.
[0019] In order to torque-balance the hose, reinforcing employed by the hose manufacturer that is set down in even layers in alternating lay directioni.e., 2 layers, 4 layers, 6 layers, etc. Grading systems are used to specify burst pressure classification for hose. For example, in the rotary drilling industry, API Grade C hose has a minimum burst pressure of 10,000 psi, Grade D hose has a minimum burst pressure of 12,500 psi and Grade E hose has a minimum (guaranteed) burst pressure of 18,750 psi.
[0020] Generally, a hose manufacturer manufactures flexible hoses to specific parameters set by the purchaser who specifies length, diameter, pressure, service ratings and required end connectors. These flexible hoses are generally referred to as hose assemblies. In a hose assembly with built-in couplings, the manufacturer, either during or after the course of manufacturing the hose, terminates the rubber hose into a metal fitting (the coupling with connector as specified by the purchaser).
[0021] One coupling installation technique is to install the end coupling utilizing epoxy fill to lock the reinforcing cables to the coupling. This method is termed a built-in coupling for use herein. This technique is used either during the manufacture of the hose or post manufacture of the hose. The post manufacturing installation of the couplings allows cut-to-length hose assemblies, cut from longer hose lengths, to be completed on a quick turn-around basis. For both of these installation procedures, built-in couplings with epoxy fill form the basis of this disclosure.
[0022] For a built-in coupling to be installed at the time of the hose manufacturing, each end of the hose would have the outer layers plus the reinforcing layers left bare for later inserting into the couplings. However, for a built-in coupling to be installed with a post manufactured hose, the manufacturer is able to cut the hose to length and then skive (remove) the outer layers of the rubber hose down to the reinforcement layers at each end of the hose. The length of the skive(s) fits within the coupling length. The manufacturer then carefully strips back each reinforcing layer and cleans all rubber compounds, as needed, from that reinforcement. The underlying section(s) of the inner tube are not disturbed. The wire reinforcement is now placed carefully back in place over the inner tube. Also, additional layers of uncured rubber compound, yet to be vulcanized, may be inserted between the inner layer of wire reinforcement and the OD of the inner tube and other locations to assist forming one or more seals between the hose and the coupling. The un-vulcanized rubber placed around the OD of the inner tube will repair any harm done during the initial separation of the inner layer and as well as form a bond after reinforcing wires are replaced and the later vulcanization operation.
[0023] In either case, the skived section of the hose is then placed within the end coupling so that the inner tube butts-up against the inside of the coupling nearest it's outboard (opposite hose connection) end and around an inner tube sealing system. Epoxy resin is then poured into the cavity within the coupling thereby filling the void between the hose, the voids between the wire reinforcement, and the inside of the coupling. If needed, the coupling and the hose can then be heated in one or more steps to vulcanize any uncured additional rubber compound and/or enhance the curing of the epoxy resin.
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[0027] An appropriate length of manufactured reinforced rubber hose is prepared by skiving the outer layers of the hose (to be attached) down to the layers of hose reinforcement. As previously stated, the hose reinforcement is pealed carefully away from the inner tube and cleaned of all rubber compounds. Afterwards the layers of reinforcement are placed back over the inner tube, the un-vulcanized rubber seal, 3 (
[0028] Certain failure modes have been found in known built-in couplings. One of these failures is found in the epoxy used to affect the attachment of the hose reinforcement to the end coupling. Essentially, in known applications, the epoxy was not strong enough when the hose was subjected to high pressure and high frequency impulse loads. Additionally, voids have been found within the epoxy itself which contributed to failures. Thus, there exists a need to strengthen the epoxy and consequent bond between the hose reinforcement and the coupling, and to eliminate voids in the epoxy.
[0029] With the present disclosure, it is recognized that, if the epoxy itself could be strengthened, then the bond between the hose reinforcement and the coupling would work far better and the fiber reinforcement in the epoxy could indeed increase the bond strength.
[0030] As shown in
[0031] Following the addition of the fiber reinforcement, known techniques may be used to complete attachment of the end-coupling (i.e., insertion of the fluid seal, 3 (
[0032] However, an additional technique is added to embodiments of the instant disclosure in order to not only assure complete filling of the cavity, 2 (
[0033] A seal at the leading end of the hose is required as the hose butts into the inside of the coupling, item 3 (
[0034] If air leakage is between the reinforcement layers then it may be possible to apply an epoxy dab at the point where the layers are bent back from just prior to the replacement of each reinforcement layer after its cleaning step. This may eliminate or limit the flow of air between the layers from an open second hose end.
[0035] However, if excessive air is leaking through seal 3 (
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[0037] If required, at the second hose end, which is depicted as a square cut end although it could be a skived end with the reinforcing layers exposed, an expandable plug, 17, is inserted into its position in the ID and a vacuum bag is attached around the coupling utilizing the vacuum seal tape, 16. Again, this sealing of the 2nd end coupling is only necessary if excessive air can travel through the hose between adjacent reinforcement layers and in the case of steel cable reinforcement, through the cable strands themselves. The attachment of the 2nd end vacuum bag and expandable plug will prevent air from replenishing through an open ended hose.
[0038] At this stage, a vacuum can be pulled at the 1st end and the air evacuated. Once the vacuum has been achieved, the epoxy can be pumped into the 1st end cavity. Epoxy supply will terminate once epoxy is seen at the inboard vent port, 12. The vacuum bags can now be removed along with the epoxy supply and vacuum hoses and the open ports plugged. The 1st end coupling is now ready for epoxy curing and rubber seal vulcanizing, as needed by heating.
[0039] There has been disclosed embodiments of a method (or technique) to manufacture an improved high pressure, reinforced rubber hose assembly with the assembly consisting of built-in couplings attached to the respective ends of an appropriate length of reinforced high pressure rubber hose. The disclosure considers a two-ply reinforced hose, but any form of reinforced rubber hose, 2-ply, 4-ply, 6-ply, etc. and using single wire reinforcement, cable reinforcement, or fiber reinforcement can employ this instant disclosure. Such use is contemplated by this disclosure.
[0040] Furthermore, the carbon-fiber preferred reinforcement may easily be any suitable fiber, such as fiber-glass, Kevlar, Rayon, Nylon, Polyester, or similar material. Such materials are anticipated and claimed in this disclosure.
[0041] Similarly, vacuum epoxy infusion may be employed in the current state of the art built-in coupling and such use is also anticipated and claimed in this disclosure.
[0042] Those skilled in the art to which this application relates will appreciate that other and further additions, deletions, substitutions and modifications may be made to the described embodiments. It is also to be understood that the terminology used herein is for the purpose of describing particular embodiments only, and is not intended to be limiting, since the scope of the present disclosure will be limited only by the claims. Unless defined otherwise, all technical and scientific terms used herein have the same meaning as commonly understood by one of ordinary skill in the art to which this disclosure belongs. Although any methods and materials similar or equivalent to those described herein can also be used in the practice or testing of the present disclosure, a limited number of the exemplary methods and materials are described herein.