Various embodiments disclosed herein generally relate to coupler fittings for high-pressure fluid lines. More specifically, this disclosure pertains to offset-alignment pivotable coupler fittings for sealingly interconnecting two misaligned high-pressure fluid lines.
Ultra-high-pressure (UHP) fluid lines are used in many industrial applications for conversion of pressurized kinetic energy into mechanical energy. Examples of fluids that are commonly used for hydraulic power in complex industrial installations under ultra-high pressure include, water, steam, oil, and selected gases. It is common in large industrial installations, for hydraulic fluids to be pressurized by specialized equipment to high pressures or ultra-high pressures, for example in the range of 30,000 psi to 150,000 psi (207 mPa to 1,034 mPa), and then conveyed under high pressure or ultra-high pressure to one or more large-scale pieces of equipment for conversion of its kinetic energy into mechanical energy for industrial processes.
UHP fluids are commonly conveyed throughout such systems within infrastructures of stainless-steel tubing or alternatively, infrastructures of cold-drawn steel tubing. The walls of steel tubing used for conveyance of UHP fluids are very thick, for example an UHP steel tube with a ¼″ (6.35 mm) OD tube may have a 0.094″ (2.39 mm) ID with a pressure rating of 60,000 PSI; an UHP steel tube with a ⅜″ (9.53 mm) OD tube may have a 0.125″ (3.18 mm) ID with a pressure rating of 60,000 PSI; an UHP steel tube with a 9/16″ (7.94 mm) OD tube may have a 0.188″ (4.78 mm) ID with a pressure rating of 60,000 PSI; an UHP steel tube with a 9/16″ (7.94 mm) OD tube may have a 0.250″ (6.35 mm) ID with a pressure rating of 40,000 PSI; ; an UHP steel tube with a 1″ (25.4 mm) OD tube may have a 0.438″ (11.13 mm) ID with a pressure rating of 43,000 PSI, and so on.
Industrial UHP fluid conveyance infrastructures include multiple locations wherein coupler fittings sealingly interconnect two UHP fluid lines, for example, at a juncture with an UHP line egressing from a pump or a boiler wherein a fluid has been pressurized or adjacent to a piece of industrial equipment that is interconnected to the UHP fluid conveyance infrastructure. Commonly used for inline sealingly engaging and coupling together two UHP lines are coupling assemblies. The ends UHP lines are typically flared or alternatively, terminate in coned or and nippled shapes. A terminal end-facing gland nut is slipped over each end of an UHP line that is to be interconnect with another end of an UHP line followed by a collar over each end. Then a coupling body is threaded onto on the end-facing gland nut. An insert is then inserted into the coupling body so that its end abuts and engages the flared end or nippled end of the UHP line. The other UHP line fitted with a terminal end-facing gland nut and collar, is then inserted into the other end of the coupler body and its gland nut is threadably engaged with the coupling body, and finally, the two gland nuts are tightly engaged with the coupling body until the coupling sealably tightened.
There are numerous problems associated with the use of such coupling assemblies for providing durable, long-lasting, and leakproof interconnections between a plurality of two inline UHP lines within a sealed highly pressurized piping infrastructure. Regular maintenance of such complex industrial systems often requires replacement of coupling mixtures conjoining UHP lines. Such types of sealed pressure systems typically contain substantial amounts of stored energy that present significant safety hazards to personnel and equipment it the piping infrastructure, or its isolated substructures, are not properly and fully vented prior to opening high-pressure fittings. Another problem associated with high-pressure fittings is metal fatigue of one or both parts of a coupling fitting that may result from kinetic pressure exerted by the flows of highly pressurized fluids through the highly pressurized piping infrastructures. Yet another problem associated with such high-pressure coupling fittings that it is difficult to sufficiently sealingly tightening a coupling fitting assembly together to maintain a leak-proof seal for extended periods of time, if the two high-pressure lines being joined together are not exactly inline. However, if two high-pressure lines being joined together are misaligned, it is difficult to sealingly engage and tighten their coupling fitting assembly together. Furthermore, the coupling fitting assemblies currently available tend to quickly fail when installed to join together two misaligned high-pressure lines. Another problem commonly encountered in industrial settings having multiple pieces of large processing equipment interconnected into a sealed highly pressurized piping infrastructure, is that replacement parts for a piece of equipment that are interconnectable with one or more UHP lines, may have different shapes and/or dimensions thereby causing one or more misalignments between UHP lines interconnected with the replacement parts and the sealed highly pressurized piping infrastructure. Further adding to this problem is that quite often, replacement pieces of equipment have different sizes and shapes compared to their predecessors, causing additional problems and challenges for sealing engagement of the replacement equipment with and into the sealed highly pressurized piping infrastructure.
The embodiments of the present disclosure generally relate to offset-alignment pivotable high-pressure coupler fittings for use to demountably and sealingly engage two misaligned high-pressure fluid lines. The offset-alignment pivotable high-pressure coupler fittings disclosed herein generally comprise (i) a female part having a bore therethrough with one end configured for sealing demountable engagement with an end of a first high-pressure fluid line and the other end having a symmetrical spherical recess, (ii) a male part having a bore therethrough with one end configured for sealing demountable engagement with an end of a second high-pressure fluid line and the other end having a symmetrical spherical protrusion that matches and is slidingly communicable with the spherical recess in the female part, and (iii) demountable engagement means configured for demountable and sealing engagement of the symmetrical spherical recess of the female part and the symmetrical spherical protrusion of the male part.
The present invention will be described in conjunction with reference to the following drawings in which:
As used herein, the term “about” refers to an approximate +/−10% variation from a given value. It is to be understood that such a variation is always included in any given value provided herein, whether or not it is specifically referred to.
As used herein, the term “lines” refers to piping, tubing, conduits, nipples, and the like that are commonly incorporated into piping infrastructures configured for conveying therein and therethrough selected fluids under pressure.
As used herein, the term “medium pressure” refers to fluids conveyed with a pressurized piping infrastructure, that have been pressurized to about 22,500 psi (1,550 bar; 155 mPa).
As used herein, the term “high pressure” refers to fluids conveyed with a pressurized piping infrastructure, that have been pressurized to about 65,500 psi (4,480 bar; 448 mPa).
As used herein, the term “ultra-high pressure” refers to fluids conveyed with a pressurized piping infrastructure, that have been pressurized to about 152,000 psi (10,500 bar; 1,048 mPa).
The embodiments of the present disclosure pertain to offset-alignment pivotable high-pressure coupler fittings for sealing interconnection and engagement with two misaligned lines, selected for conveying therein pressurized fluids, within a pressurized piping infrastructure that interconnects a plurality of industrial equipment. Those skilled in these arts will understand that the offset-alignment pivotable high-pressure coupler fittings configured for conveyance therethrough of fluids pressurized up to 65,500 psi may be made of carbon steel or stainless steel whereas coupler fittings configured for conveyance therethrough of ultra-high-pressurized fluids (i.e. up to 152,000 psi) may be made of stainless steel.
According to an example of an embodiment of the present disclosure, one of the two-part offset-alignment coupler fittings is a male part and comprises a body having a bore therethrough, the body having a receptacle at one end wherein the receptacle is configured for sealing communication with a first pressurized fluid line, and the opposite end has a collar and a symmetrical convex bowl-shaped protrusion extending outward therefrom the collar. The other of the two-part offset-alignment coupler fittings is a female part and comprises a body having a bore therethrough having a receptacle at one end, wherein the receptacle is configured for sealing communication with a second pressurized fluid line, and the opposite end has a collar and a symmetrical concave bowl-shaped recess extending inward therefrom the collar. The curvilinear structure of the surface of the symmetrical convex bowl-shaped protrusion extending outward therefrom the collar of the male part matches the curvilinear structure of the surface of the symmetrical concave bowl-shaped recess extending inward therefrom the collar of the female part whereby the convex surface of the male part and the concave surface of the female part are slidingly communicable and engageable. The male part and the female part of the two-part offset-alignment coupler fittings disclosed herein may be demountable and sealingly engaged by threaded means. According to one aspect, the curvilinear structures of the symmetrical convex bowl-shaped protrusion and the matching symmetrical concave bowl-shaped recess, may be matching shallow bowl shapes wherein the depth of the shallow concave bowl-shaped recess and the height of the shallow convex bowl-shaped protrusion are 1 mm or 2 mm or 3 mm or 4 mm or 5 mm. According to another aspect, the curvilinear structures of the symmetrical convex bowl-shaped protrusion and the matching symmetrical concave bowl-shaped recess, may be matching deep bowl shapes wherein the depth of the deep concave bowl-shaped recess and the height of the deep convex bowl-shaped protrusion are selected from a range of about 6 mm to about 15 mm and therebetween.
An example of a two-part offset-alignment pivotable high-pressure coupler fitting 5 disclosed herein, wherein the male part 20 and the female part 10 have shallow symmetrical bowl-shaped curvilinear structures defining their convex protrusion 26 and concave recess 16, is illustrated in
Another example of a two-part offset-alignment pivotable high-pressure coupler fitting 105 according to the present disclosure is illustrated in
The male part 120 (
An example of a three-part offset-alignment pivotable high-pressure coupler fitting 200 according to another embodiment of the present disclosure is illustrated in
The three-part offset-alignment pivotable high-pressure coupler fitting 200 may be used to sealingly interconnect two misaligned high-pressure lines or UHP lines by: (i) mounting and sealingly engaging a female component 210 onto the end of one of the misaligned high-pressure lines or UHP lines, (ii) slipping the collar 230 and a compressible O-ring 240 over the end of the other of the misaligned high-pressure lines or UHP lines and then (iii) mounting and sealingly engaging a male component 220 onto the end of the other of the misaligned high-pressure lines or UHP lines, after which, (iv) the spherical-shaped inlet end 222 of the male part 220 is then inserted into the spherical cavity 219 of the female part 210, after which, (v) the O-ring 240 is snugged around the spherical-shaped inlet end 222 of the male part 220 against the outer rim of female body 211, and (vi) a bolt 235 is slipped through each of the two-stage bores 215 on the female collar 214, and threadingly engaged with its corresponding threaded bore 232 until the O-ring 240 is sealingly compressed between the female component 210 and the male component 220 (
An example of a four-part offset-alignment pivotable high-pressure coupler fitting 300 according to another embodiment of the present disclosure is illustrated in
The four-part offset-alignment pivotable high-pressure coupler fitting 300 may be used to sealingly interconnect two misaligned high-pressure lines or UHP lines by: (i) mounting and sealingly engaging a female component 310 onto the end of one of the misaligned high-pressure lines or UHP lines, (ii) threadably engaging the first gland nut 360 with the first male-threaded section 315 of the collar portion 314 of the female part 310, (iii) slipping the second gland nut 365 and a compressible O-ring 340 over the end of the other of the misaligned high-pressure lines or UHP lines and then (iii) mounting and sealingly engaging a male component 320 onto the end of the other of the misaligned high-pressure lines or UHP lines, after which, (iv) the spherical-shaped inlet end 322 of the male part 320 is then inserted into the spherical cavity 319 of the female part 310, after which, (v) the O-ring 340 is snugged around the spherical-shaped inlet end 322 of the male part 320 against the outer rim of female body 311, and (vi) the second gland nut 365 is threadingly engaged with the second male-threaded section 317 of the collar portion 314 of the female part 310 until the O-ring 340 is sealingly compressed between the female component 310 and the male component 320 (
An example of a five-part offset-alignment pivotable high-pressure coupler fitting 400 according to another embodiment of the present disclosure, is illustrated in
The five-part offset-alignment pivotable high-pressure coupler fitting 400 may be used to sealingly interconnect two misaligned high-pressure lines or UHP lines by: (i) slipping a first compression collar 480 and a suitable O-ring 440a over the end of one of the misaligned high-pressure lines or UHP lines and then mounting and sealingly engaging a first male part 420a onto the end of one of the misaligned high-pressure lines or UHP lines, (ii) slipping a second compression collar 490 and a suitable O-ring 440b over the end of the other of the misaligned high-pressure lines or UHP lines and then mounting and sealingly engaging a second male part 420b onto the end of the other of the misaligned high-pressure lines or UHP lines, (iii) inserting the first male part 420a into a spherical cavity 472a of a female part 470, (iv) inserting the second male part 420b into the other spherical cavity 472b of the female part 470, (v) snugging O-rings 440a, 440b against the outer-facing edges of the female body part and the first and second compression collars 480, 490 respectively, (vi) aligning the two-stage bores 482 in the first compression collar 480 with the bores in the collar portion 478 of the female body 470 and with the threaded bores 492 in the second compression collar, (vii) inserting a bolt 495 into each of the aligned bores in the first compression collar 480, the female body collar 478, and the second compression collar 490, and (viii) threadably engaging each bolt 495 with its threaded bore 492 until the O-rings 440a, 440b are sealingly compressed between the female body 470, the first compression collar, 480, and the second compression collar 490 (
Those skilled in this art will understand that suitable O-rings 440a, 440b to provide leak-proof compression between the female part 470, the male parts 420a, 420b, and the first compression collar 480 and second compression collar 490 are those that are commonly available for high-pressure coupling fittings and for UHP coupling fittings and comprise materials such as nitrile-butadiene (NBR) or fluorocarbon (FKM, FPM) or zinc-plated steel or zinc-nickel alloys or stainless steel and the like. It is to be noted that this five-part offset-alignment pivotable high-pressure coupler fitting 400 may be used to sealingly interconnect two misaligned high-pressure lines in which the flow of pressurized fluid 500a, 500b is deflected by 60°, i.e., by 30° in each of the two male parts 420a, 420b (
Those skilled in this art will understand that it is optional to provide a first male-threaded portion on the cylindrical body of the female part extending from one end of the body to the collar portion extending outward therefrom the body at the midpoint between its two ends, and a second male-threaded portion on the cylindrical body of the female part extending from the other end of the body to its collar portion (not shown). A first gland nut configured for threadable engaging the first threaded portion on the cylindrical body of the female part, may be substituted for the first compression collar. A second gland nut configured for threadable engaging the second threaded portion on the cylindrical body of the female part, may be substituted for the second compression collar.
Number | Date | Country | Kind |
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3061252 | Nov 2019 | CA | national |