US20170370480A1 - Large bore plug valve - Google Patents
Large bore plug valve Download PDFInfo
- Publication number
- US20170370480A1 US20170370480A1 US15/631,564 US201715631564A US2017370480A1 US 20170370480 A1 US20170370480 A1 US 20170370480A1 US 201715631564 A US201715631564 A US 201715631564A US 2017370480 A1 US2017370480 A1 US 2017370480A1
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- US
- United States
- Prior art keywords
- plug
- valve body
- insert
- passage
- hydraulic fracturing
- Prior art date
- Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
- Abandoned
Links
- 238000007789 sealing Methods 0.000 claims abstract description 41
- 239000012530 fluid Substances 0.000 claims description 73
- XEEYBQQBJWHFJM-UHFFFAOYSA-N Iron Chemical compound [Fe] XEEYBQQBJWHFJM-UHFFFAOYSA-N 0.000 claims description 70
- 229910052742 iron Inorganic materials 0.000 claims description 35
- 238000004891 communication Methods 0.000 claims description 19
- 238000009826 distribution Methods 0.000 claims description 13
- 230000005012 migration Effects 0.000 claims description 10
- 238000013508 migration Methods 0.000 claims description 10
- 238000000034 method Methods 0.000 description 9
- 125000006850 spacer group Chemical group 0.000 description 8
- 230000008901 benefit Effects 0.000 description 5
- 230000001050 lubricating effect Effects 0.000 description 5
- 238000005461 lubrication Methods 0.000 description 5
- 238000004519 manufacturing process Methods 0.000 description 4
- 230000008569 process Effects 0.000 description 4
- 230000015572 biosynthetic process Effects 0.000 description 3
- 230000003628 erosive effect Effects 0.000 description 3
- 238000005755 formation reaction Methods 0.000 description 3
- 230000007423 decrease Effects 0.000 description 2
- 230000007246 mechanism Effects 0.000 description 2
- 238000012986 modification Methods 0.000 description 2
- 230000004048 modification Effects 0.000 description 2
- 238000006467 substitution reaction Methods 0.000 description 2
- 230000001154 acute effect Effects 0.000 description 1
- 230000003090 exacerbative effect Effects 0.000 description 1
Images
Classifications
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- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F16—ENGINEERING ELEMENTS AND UNITS; GENERAL MEASURES FOR PRODUCING AND MAINTAINING EFFECTIVE FUNCTIONING OF MACHINES OR INSTALLATIONS; THERMAL INSULATION IN GENERAL
- F16K—VALVES; TAPS; COCKS; ACTUATING-FLOATS; DEVICES FOR VENTING OR AERATING
- F16K5/00—Plug valves; Taps or cocks comprising only cut-off apparatus having at least one of the sealing faces shaped as a more or less complete surface of a solid of revolution, the opening and closing movement being predominantly rotary
- F16K5/04—Plug valves; Taps or cocks comprising only cut-off apparatus having at least one of the sealing faces shaped as a more or less complete surface of a solid of revolution, the opening and closing movement being predominantly rotary with plugs having cylindrical surfaces; Packings therefor
- F16K5/0457—Packings
- F16K5/0471—Packings between housing and plug
-
- E—FIXED CONSTRUCTIONS
- E21—EARTH OR ROCK DRILLING; MINING
- E21B—EARTH OR ROCK DRILLING; OBTAINING OIL, GAS, WATER, SOLUBLE OR MELTABLE MATERIALS OR A SLURRY OF MINERALS FROM WELLS
- E21B33/00—Sealing or packing boreholes or wells
- E21B33/02—Surface sealing or packing
- E21B33/03—Well heads; Setting-up thereof
- E21B33/068—Well heads; Setting-up thereof having provision for introducing objects or fluids into, or removing objects from, wells
-
- B—PERFORMING OPERATIONS; TRANSPORTING
- B01—PHYSICAL OR CHEMICAL PROCESSES OR APPARATUS IN GENERAL
- B01F—MIXING, e.g. DISSOLVING, EMULSIFYING OR DISPERSING
- B01F23/00—Mixing according to the phases to be mixed, e.g. dispersing or emulsifying
- B01F23/40—Mixing liquids with liquids; Emulsifying
- B01F23/43—Mixing liquids with liquids; Emulsifying using driven stirrers
-
- B—PERFORMING OPERATIONS; TRANSPORTING
- B01—PHYSICAL OR CHEMICAL PROCESSES OR APPARATUS IN GENERAL
- B01F—MIXING, e.g. DISSOLVING, EMULSIFYING OR DISPERSING
- B01F27/00—Mixers with rotary stirring devices in fixed receptacles; Kneaders
- B01F27/05—Stirrers
-
- E—FIXED CONSTRUCTIONS
- E21—EARTH OR ROCK DRILLING; MINING
- E21B—EARTH OR ROCK DRILLING; OBTAINING OIL, GAS, WATER, SOLUBLE OR MELTABLE MATERIALS OR A SLURRY OF MINERALS FROM WELLS
- E21B43/00—Methods or apparatus for obtaining oil, gas, water, soluble or meltable materials or a slurry of minerals from wells
- E21B43/25—Methods for stimulating production
- E21B43/26—Methods for stimulating production by forming crevices or fractures
- E21B43/2607—Surface equipment specially adapted for fracturing operations
-
- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F04—POSITIVE - DISPLACEMENT MACHINES FOR LIQUIDS; PUMPS FOR LIQUIDS OR ELASTIC FLUIDS
- F04B—POSITIVE-DISPLACEMENT MACHINES FOR LIQUIDS; PUMPS
- F04B15/00—Pumps adapted to handle specific fluids, e.g. by selection of specific materials for pumps or pump parts
- F04B15/02—Pumps adapted to handle specific fluids, e.g. by selection of specific materials for pumps or pump parts the fluids being viscous or non-homogeneous
-
- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F04—POSITIVE - DISPLACEMENT MACHINES FOR LIQUIDS; PUMPS FOR LIQUIDS OR ELASTIC FLUIDS
- F04B—POSITIVE-DISPLACEMENT MACHINES FOR LIQUIDS; PUMPS
- F04B23/00—Pumping installations or systems
- F04B23/04—Combinations of two or more pumps
-
- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F04—POSITIVE - DISPLACEMENT MACHINES FOR LIQUIDS; PUMPS FOR LIQUIDS OR ELASTIC FLUIDS
- F04B—POSITIVE-DISPLACEMENT MACHINES FOR LIQUIDS; PUMPS
- F04B23/00—Pumping installations or systems
- F04B23/04—Combinations of two or more pumps
- F04B23/06—Combinations of two or more pumps the pumps being all of reciprocating positive-displacement type
-
- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F04—POSITIVE - DISPLACEMENT MACHINES FOR LIQUIDS; PUMPS FOR LIQUIDS OR ELASTIC FLUIDS
- F04B—POSITIVE-DISPLACEMENT MACHINES FOR LIQUIDS; PUMPS
- F04B47/00—Pumps or pumping installations specially adapted for raising fluids from great depths, e.g. well pumps
-
- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F16—ENGINEERING ELEMENTS AND UNITS; GENERAL MEASURES FOR PRODUCING AND MAINTAINING EFFECTIVE FUNCTIONING OF MACHINES OR INSTALLATIONS; THERMAL INSULATION IN GENERAL
- F16K—VALVES; TAPS; COCKS; ACTUATING-FLOATS; DEVICES FOR VENTING OR AERATING
- F16K11/00—Multiple-way valves, e.g. mixing valves; Pipe fittings incorporating such valves
- F16K11/02—Multiple-way valves, e.g. mixing valves; Pipe fittings incorporating such valves with all movable sealing faces moving as one unit
- F16K11/04—Multiple-way valves, e.g. mixing valves; Pipe fittings incorporating such valves with all movable sealing faces moving as one unit comprising only lift valves
- F16K11/048—Multiple-way valves, e.g. mixing valves; Pipe fittings incorporating such valves with all movable sealing faces moving as one unit comprising only lift valves with valve seats positioned between movable valve members
-
- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F16—ENGINEERING ELEMENTS AND UNITS; GENERAL MEASURES FOR PRODUCING AND MAINTAINING EFFECTIVE FUNCTIONING OF MACHINES OR INSTALLATIONS; THERMAL INSULATION IN GENERAL
- F16K—VALVES; TAPS; COCKS; ACTUATING-FLOATS; DEVICES FOR VENTING OR AERATING
- F16K27/00—Construction of housing; Use of materials therefor
- F16K27/06—Construction of housing; Use of materials therefor of taps or cocks
- F16K27/065—Construction of housing; Use of materials therefor of taps or cocks with cylindrical plugs
-
- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F16—ENGINEERING ELEMENTS AND UNITS; GENERAL MEASURES FOR PRODUCING AND MAINTAINING EFFECTIVE FUNCTIONING OF MACHINES OR INSTALLATIONS; THERMAL INSULATION IN GENERAL
- F16K—VALVES; TAPS; COCKS; ACTUATING-FLOATS; DEVICES FOR VENTING OR AERATING
- F16K31/00—Actuating devices; Operating means; Releasing devices
- F16K31/12—Actuating devices; Operating means; Releasing devices actuated by fluid
- F16K31/126—Actuating devices; Operating means; Releasing devices actuated by fluid the fluid acting on a diaphragm, bellows, or the like
-
- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F16—ENGINEERING ELEMENTS AND UNITS; GENERAL MEASURES FOR PRODUCING AND MAINTAINING EFFECTIVE FUNCTIONING OF MACHINES OR INSTALLATIONS; THERMAL INSULATION IN GENERAL
- F16K—VALVES; TAPS; COCKS; ACTUATING-FLOATS; DEVICES FOR VENTING OR AERATING
- F16K31/00—Actuating devices; Operating means; Releasing devices
- F16K31/44—Mechanical actuating means
- F16K31/53—Mechanical actuating means with toothed gearing
- F16K31/535—Mechanical actuating means with toothed gearing for rotating valves
-
- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F16—ENGINEERING ELEMENTS AND UNITS; GENERAL MEASURES FOR PRODUCING AND MAINTAINING EFFECTIVE FUNCTIONING OF MACHINES OR INSTALLATIONS; THERMAL INSULATION IN GENERAL
- F16K—VALVES; TAPS; COCKS; ACTUATING-FLOATS; DEVICES FOR VENTING OR AERATING
- F16K5/00—Plug valves; Taps or cocks comprising only cut-off apparatus having at least one of the sealing faces shaped as a more or less complete surface of a solid of revolution, the opening and closing movement being predominantly rotary
- F16K5/04—Plug valves; Taps or cocks comprising only cut-off apparatus having at least one of the sealing faces shaped as a more or less complete surface of a solid of revolution, the opening and closing movement being predominantly rotary with plugs having cylindrical surfaces; Packings therefor
-
- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F16—ENGINEERING ELEMENTS AND UNITS; GENERAL MEASURES FOR PRODUCING AND MAINTAINING EFFECTIVE FUNCTIONING OF MACHINES OR INSTALLATIONS; THERMAL INSULATION IN GENERAL
- F16K—VALVES; TAPS; COCKS; ACTUATING-FLOATS; DEVICES FOR VENTING OR AERATING
- F16K5/00—Plug valves; Taps or cocks comprising only cut-off apparatus having at least one of the sealing faces shaped as a more or less complete surface of a solid of revolution, the opening and closing movement being predominantly rotary
- F16K5/08—Details
-
- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F16—ENGINEERING ELEMENTS AND UNITS; GENERAL MEASURES FOR PRODUCING AND MAINTAINING EFFECTIVE FUNCTIONING OF MACHINES OR INSTALLATIONS; THERMAL INSULATION IN GENERAL
- F16L—PIPES; JOINTS OR FITTINGS FOR PIPES; SUPPORTS FOR PIPES, CABLES OR PROTECTIVE TUBING; MEANS FOR THERMAL INSULATION IN GENERAL
- F16L41/00—Branching pipes; Joining pipes to walls
- F16L41/02—Branch units, e.g. made in one piece, welded, riveted
- F16L41/03—Branch units, e.g. made in one piece, welded, riveted comprising junction pieces for four or more pipe members
-
- B—PERFORMING OPERATIONS; TRANSPORTING
- B01—PHYSICAL OR CHEMICAL PROCESSES OR APPARATUS IN GENERAL
- B01F—MIXING, e.g. DISSOLVING, EMULSIFYING OR DISPERSING
- B01F2101/00—Mixing characterised by the nature of the mixed materials or by the application field
- B01F2101/49—Mixing drilled material or ingredients for well-drilling, earth-drilling or deep-drilling compositions with liquids to obtain slurries
-
- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F16—ENGINEERING ELEMENTS AND UNITS; GENERAL MEASURES FOR PRODUCING AND MAINTAINING EFFECTIVE FUNCTIONING OF MACHINES OR INSTALLATIONS; THERMAL INSULATION IN GENERAL
- F16K—VALVES; TAPS; COCKS; ACTUATING-FLOATS; DEVICES FOR VENTING OR AERATING
- F16K11/00—Multiple-way valves, e.g. mixing valves; Pipe fittings incorporating such valves
-
- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F16—ENGINEERING ELEMENTS AND UNITS; GENERAL MEASURES FOR PRODUCING AND MAINTAINING EFFECTIVE FUNCTIONING OF MACHINES OR INSTALLATIONS; THERMAL INSULATION IN GENERAL
- F16K—VALVES; TAPS; COCKS; ACTUATING-FLOATS; DEVICES FOR VENTING OR AERATING
- F16K5/00—Plug valves; Taps or cocks comprising only cut-off apparatus having at least one of the sealing faces shaped as a more or less complete surface of a solid of revolution, the opening and closing movement being predominantly rotary
Definitions
- the present disclosure relates in general to valves and, in particular, to a “large bore” plug valve used in oil or gas operations.
- one or more plug valves may be used to control fluid flow;
- one such plug valve generally includes a valve body defining a pair of fluid passages intersecting an internal cavity.
- the internal cavity of the valve body accommodates a plug and an insert, which insert extends within an annular space between the plug and the valve body.
- the plug and the insert include fluid passages that are adapted to be substantially aligned with the fluid passages of the valve body.
- the plug is adapted to rotate relative to the insert and the valve body to selectively permit fluid flow through the respective fluid passages of the valve body, the insert, and the plug.
- the insert is meant to seal against the plug and the valve body to thereby prevent migration of the fluid flow into the annular region between the plug and the valve body.
- contact pressure between the insert and the plug must be maintained above a threshold level.
- the present disclosure introduces an apparatus, including a valve body defining an internal cavity, a first passage, and a second passage; a plug defining a third passage and being rotatable within the internal cavity to selectively permit communication of a fluid between the first and second passages via the third passage; and an insert extending within the internal cavity between the valve body and the plug, the insert defining a first opening aligned with the first passage of the valve body, a first interior surface, and a first sealing surface extending around the first opening and standing in relief against the first interior surface to sealingly engage the plug; wherein migration of the fluid into an annular region between the insert and the plug is prevented, or at least reduced, by the sealing engagement of the first sealing surface with the plug.
- the insert includes a first segment including the first interior surface, the first opening, and the first sealing surface.
- the insert further defines a second opening aligned with the second passage of the valve body, a second interior surface, and a second sealing surface extending around the second opening and standing in relief against the second interior surface to sealingly engage the plug.
- migration of the fluid into the annular region between the insert and the plug is prevented, or at least reduced, by the respective sealing engagements of the first and second sealing surfaces with the plug.
- the insert includes a first segment including the first interior surface, the first opening, and the first sealing surface, and a second segment including the second interior surface, the second opening, and the second sealing surface.
- the insert further includes third and fourth segments interconnecting the first and second segments so that, in combination, the first, second, third, and fourth segments surround the plug.
- the apparatus further comprises a flow iron section adapted to be positioned between a hydraulic fracturing pump and a wellhead, the flow iron section including one or more of a pressurization manifold connected to the hydraulic fracturing pump, a hydraulic fracturing tree connected to the wellhead, and a distribution manifold connected between the pressurization manifold and the hydraulic fracturing tree; wherein the valve body is connected to the flow iron section so that the plug is rotatable within the valve body to selectively permit communication of a hydraulic fracturing fluid from the hydraulic fracturing pump to the wellhead via at least the flow iron section and the third passage.
- the present disclosure introduces an apparatus, including a valve body defining an internal cavity, a first passage, and a second passage; a plug defining a third passage and being rotatable within the internal cavity to selectively permit communication of a fluid between the first and second passages via the third passage; an insert extending within the internal cavity between the valve body and the plug, the insert defining a first opening aligned with the first passage of the valve body, a first interior surface, and a first projection at least partially defining the first interior surface; and a boot connected to the valve body and interlocked with the first projection of the insert to prevent, or at least reduce, rotation of the insert relative to the valve body when the plug rotates within the internal cavity.
- the first projection includes first and second side surfaces
- the boot includes first and second edge portions extending adjacent the first and second side surfaces, respectively, of the first projection.
- the boot further includes a third edge portion extending between the first and second edge portions and adjacent the first interior surface of the insert.
- the insert further defines a second opening aligned with the second passage of the valve body, a second interior surface, and a second projection at least partially defining the second interior surface; and the boot is interlocked with the second projection of the insert to prevent, or at least reduce, rotation of the insert relative to the valve body when the plug rotates within the internal cavity.
- the first projection includes first and second side surfaces
- the boot includes first and second edge portions extending adjacent the first and second side surfaces, respectively, of the first projection
- the second projection includes third and fourth side surfaces
- the boot includes third and fourth edge portions extending adjacent the third and fourth side surfaces, respectively, of the second projection.
- the boot further includes a fifth edge portion extending between the first and second edge portions and adjacent the first interior surface of the insert; and a sixth edge portion extending between the third and fourth edge portions and adjacent the second interior surface of the insert.
- the insert includes a first segment including the first interior surface, the first projection, and the first opening, and a second segment including the second interior surface, the second projection, and the second opening.
- the insert further includes third and fourth segments interconnecting the first and second segments so that, in combination, the first, second, third, and fourth segments surround the plug.
- the apparatus further comprises a flow iron section adapted to be positioned between a hydraulic fracturing pump and a wellhead, the flow iron section including one or more of a pressurization manifold connected to the hydraulic fracturing pump, a hydraulic fracturing tree connected to the wellhead, and a distribution manifold connected between the pressurization manifold and the hydraulic fracturing tree; and wherein the valve body is connected to the flow iron section so that the plug is rotatable within the valve body to selectively permit communication of a hydraulic fracturing fluid from the hydraulic fracturing pump to the wellhead via at least the flow iron section and the third passage.
- the present disclosure introduces an apparatus, including a flow iron section adapted to be positioned between a hydraulic fracturing pump and a wellhead, the flow iron section including one or more of a pressurization manifold connected to the hydraulic fracturing pump, a hydraulic fracturing tree connected to the wellhead, and a distribution manifold connected between the pressurization manifold and the hydraulic fracturing tree; and a plug valve connected to the flow iron section, the plug valve including a valve body and a plug, the plug defining a first passage and being rotatable within the valve body to selectively permit communication of a hydraulic fracturing fluid from the hydraulic fracturing pump to the wellhead via at least the flow iron section and the first passage, the first passage having an inner diameter that is equal to, or greater than, about 51 ⁇ 8 inches.
- valve body further defines second and third passages configured to communicate with one another via the first passage of the plug when communication of the hydraulic fracturing fluid is selectively permitted from the hydraulic fracturing pump to the wellhead via at least the flow iron section and the first passage.
- the plug valve further includes an insert extending between the valve body and the plug, the insert defining an opening aligned with the first passage of the valve body, an interior surface, and a sealing surface extending around the opening and standing in relief against the interior surface to sealingly engage the plug.
- the plug valve further includes an insert extending within the valve body between the valve body and the plug, the insert defining an opening aligned with the first passage of the valve body, an interior surface, and a projection at least partially defining the interior surface; and a boot connected to the valve body and interlocked with the projection of the insert to prevent, or at least reduce, rotation of the insert relative to the valve body when the plug rotates within the valve body.
- FIG. 1A is a perspective view illustrating a plug valve, according to one or more embodiments of the present disclosure.
- FIG. 1B is an exploded perspective view illustrating internal components of the plug valve of FIG. 1A , including, inter alia, a plug, an inlet segment, an outlet segment, and a boot, according to one or more embodiments of the present disclosure.
- FIG. 2 is a cross-sectional view of the plug valve of FIG. 1A , including the plug, the inlet segment, the outlet segment, and the boot, according to one or more embodiments of the present disclosure.
- FIG. 3 is an enlarged view of the plug valve of FIG. 2 , according to one or more embodiments of the present disclosure.
- FIG. 4 is another enlarged view of the plug valve of FIG. 2 , according to one or more embodiments of the present disclosure.
- FIGS. 5-8 are rear perspective, front perspective, top plan, and bottom plan views, respectively, of the inlet segment of FIGS. 1B and 2 , according to one or more embodiments of the present disclosure.
- FIGS. 9 and 10 are perspective views illustrating the plug, the inlet segment, and the outlet segment in different stages of assembly, according to one or more embodiments of the present disclosure.
- FIG. 11 is a perspective view of the boot of FIGS. 1A and 2 , according to one or more embodiments of the present disclosure.
- FIG. 12 is an enlarged cross-sectional view of the plug valve of FIG. 2 in a first operational configuration, according to one or more embodiments of the present disclosure.
- FIG. 13 is a sectional view of the plug valve taken along the line 13 - 13 of FIG. 12 , according to one or more embodiments of the present disclosure.
- FIG. 14 is a sectional view of the plug valve taken along the line 14 - 14 of FIG. 12 , according to one or more embodiments of the present disclosure.
- FIG. 15 is an enlarged view of the plug valve similar to that shown in FIG. 12 , except that the plug valve is in a second operational configuration, according to one or more embodiments of the present disclosure.
- FIG. 16 is a sectional view of the plug valve taken along the line 16 - 16 of FIG. 15 , according to one or more embodiments of the present disclosure.
- FIG. 17 is a schematic illustration of a hydraulic fracturing system, the hydraulic fracturing system including a hydraulic fracturing pump, a flow iron section, and a wellhead, according to one or more embodiments of the present disclosure.
- FIG. 18 is an elevational view of the plug valve of FIGS. 1-16 connected between a pair of flow-line components, which flow-line components are part of the flow iron section of FIG. 17 , according to one or more embodiments of the present disclosure.
- the plug valve 10 includes a valve body 12 , an actuator 14 , an actuator plate 16 , and a cover plate 18 .
- the actuator 14 is connected to the actuator plate 16 via a plurality of fasteners 20
- the actuator plate 16 is connected to the valve body 12 .
- the cover plate 18 is connected to the valve body 12 via a plurality of fasteners 22 , opposite the actuator plate 16 .
- the cover plate 18 is considered part of the valve body 12 .
- the plug valve 10 includes one or more lubrication fittings 24 connected to the valve body 12 to facilitate lubrication of internal component(s) of the plug valve 10 .
- the actuator 14 is adapted to actuate the plug valve 10 between an open configuration in which fluid flow is permitted through the plug valve 10 and a closed configuration in which fluid flow through the plug valve 10 is prevented, or at least reduced.
- the plug valve 10 further includes a plug 26 and an insert 28 , which plug 26 defines an exterior surface 30 and a fluid passage 32 extending transversely therethrough.
- the insert 28 is adapted to extend about and sealingly engage the exterior surface 30 of the plug 26 .
- the insert 28 includes an inlet segment 34 , an outlet segment 36 , and side segments 38 a and 38 b .
- the inlet segment 34 includes an inlet opening 40 and is adapted to accommodate an inlet seal 42 around the inlet opening 40 .
- the inlet seal 42 is adapted to engage the valve body 12 .
- the outlet segment 36 includes an outlet opening 44 and is adapted to accommodate an outlet seal 46 around the outlet opening 44 .
- the outlet seal 46 is adapted to engage the valve body 12 .
- the side segments 38 a and 38 b are adapted to connect the inlet segment 34 to the outlet segment 36 to thereby place a compressive load on the plug 26 .
- the plug valve 10 includes alignment dowels 48 a and 48 b to facilitate the alignment of the inlet and outlet openings 40 and 44 within the valve body 12 .
- the plug valve 10 also includes a drive gear 50 and an adapter 52 via which the actuator 14 is adapted to be operably coupled to the plug 26 .
- the adapter 52 is adapted to be supported within the valve body 12 via a bearing 54 and a spacer 56 .
- the spacer 56 is adapted to accommodate an outer seal 58 and an outer backup ring 60 so that the outer seal 58 engages the spacer 56 and the valve body 12 .
- the spacer 56 is further adapted to accommodate an inner seal 62 and an inner backup ring 64 so that the inner seal 62 engages the spacer 56 and the adapter 52 .
- the valve body 12 is adapted to accommodate a wiper seal 66 so that the wiper seal 66 engages the adapter 52 and the valve body 12 to prevent drainage of fluid (e.g., lubricating fluid) from the actuator 14 into the valve body 12 .
- the cover plate 18 is adapted to accommodate a seal 68 and a backup ring 70 so that the seal 68 engages the cover plate 18 and the valve body 12 .
- the plug valve 10 includes a boot 72 adapted to be connected to the cover plate 18 via a plurality of fasteners 74 .
- the boot 72 is adapted to be connected to the valve body 12 in those embodiments in which the cover plate 18 is considered part of the valve body 12 .
- the boot 72 is adapted to interlock with the insert 28 to thereby prevent, or at least reduce, rotation of the insert 28 relative to the valve body 12 when the plug 26 rotated.
- valve body 12 defines an internal cavity 76 , an inlet passage 78 , an outlet passage 80 , an actuator bore 82 , and an access port 84 .
- the inlet passage 78 permits fluid communication between the valve body 12 and an adjacent flow-line component such as, for example, the flow-line component 134 shown in FIGS. 18A and 18B , which will be discussed in further detail below.
- the valve body 12 includes a flange 86 around the inlet passage 78 to facilitate connection of the valve body 12 to the adjacent flow-line component.
- the flange 86 includes a through-hole pattern (visible in FIG. 1A ; or a threaded-hole pattern).
- the outlet passage 80 permits fluid communication between the valve body 12 and another adjacent flow-line component such as, for example, the flow-line component 136 shown in FIGS. 18A and 18B , which will be discussed in further detail below.
- the valve body 12 includes a flange 88 around the outlet passage 80 to facilitate connection of the plug valve 10 to the another adjacent flow-line component.
- the flange 88 includes a through-hole pattern (visible in FIG. 1A ; or a threaded-hole pattern).
- one or both of the flanges 86 and 88 are omitted and replaced with another type of fluid-line connector such as, for example, the male half of a hammer union, the female half of a hammer union, a hammerless union, another fluid-line connector, or any combination thereof.
- the plug 26 extends within the internal cavity 76 of the valve body 12 and is coupled to the actuator 14 via the drive gear 50 and the adapter 52 .
- the adapter 52 is supported within the actuator bore 82 via the bearing 54 and the spacer 56 .
- the wiper seal 66 seals against the adapter 52 and the valve body 12 to thereby prevent drainage of fluid (e.g., lubricating fluid) from the actuator 14 into the valve body 12 .
- the insert 28 extends about and seals against the exterior surface 30 of the plug 26 .
- the inlet and outlet openings 40 and 44 are aligned with the inlet and outlet passages 78 and 80 , respectively, of the valve body 12 .
- the actuator 14 is operable to rotate the drive gear 50 , the adapter 52 , and the plug 26 relative to the valve body 12 to thereby actuate the plug 26 between the open configuration and the closed configuration.
- the fluid passage 32 of the plug 26 is adapted to be aligned with the inlet and outlet openings 40 and 44 of the insert 28 and the inlet and outlet passages 78 and 80 of the valve body 12 when the plug valve 10 is in the open configuration.
- the fluid passage 32 has an inner diameter of about 51 ⁇ 8 inches, of about 7 1/16 inches, or ranging from about 51 ⁇ 8 inches to about 7 1/16 inches.
- the inlet segment 34 accommodates the inlet seal 42 around the inlet opening 40 in a manner that seals the inlet seal 42 against the valve body 12 around the inlet passage 78 .
- the outlet segment 36 accommodates the outlet seal 46 around the outlet opening 44 in a manner that seals the outlet seal 46 against the valve body 12 around the outlet passage 80 (visible in FIG. 2 ).
- the cover plate 18 extends into the access port 84 and accommodates the seal 68 and the backup ring 70 so that the seal 68 seals against the valve body 12 .
- the boot 72 is connected to the cover plate 18 via the plurality of fasteners 74 in a manner that permits interlocking of the insert 28 with the boot 72 .
- the boot 72 is connected to the valve body 12 in those embodiments in which the cover plate 18 is considered part of the valve body 12 .
- the boot 72 may instead be connected directly to the valve body 12 .
- the spacer 56 accommodates the outer seal 58 and the outer backup ring 60 so that the outer seal 58 seals against the valve body 12 .
- the spacer 56 also accommodates the inner seal 62 and the inner backup ring 64 so that the inner seal 62 seals against the adapter 52 .
- the outlet segment 36 is substantially identical to the inlet segment 34 and, therefore, in connection with FIGS. 5-8 , only the inlet segment 34 will be described in detail below; however, the description below also applies to the outlet segment 36 .
- the inlet segment 34 includes a concave interior surface 90 and a convex exterior surface 92 .
- the inlet opening 40 extends through the concave interior surface 90 and the convex exterior surface 92 .
- the inlet segment 34 includes a concave sealing surface 94 formed around the inlet opening 40 .
- the concave sealing surface 94 stands in relief against the concave interior surface 90 to seal against the exterior surface 30 of the plug 26 .
- the inlet segment 34 includes a sealing groove 96 formed in the convex exterior surface 92 and around the inlet opening 40 .
- the sealing groove 96 accommodates the inlet seal 42 .
- the convex exterior surface 92 also includes longitudinally-extending grooves 98 a and 98 b formed therein to facilitate connection of the inlet segment 34 to the side segments 38 a and 38 b , respectively.
- the inlet segment 34 includes an alignment notch 100 to accommodate the dowel 92 a when the plug valve 10 is assembled.
- the inlet segment 34 also includes a projection 102 opposite the alignment notch 100 .
- the projection 102 includes side surfaces 104 a and 104 b . In some embodiments, the side surfaces 104 a and 104 b are spaced in a parallel relation.
- the projection 102 is adapted to interlock with the boot 72 to thereby prevent, or at least reduce, rotation of the insert 28 relative to the valve body 12 when the plug 26 is actuated between the open configuration and the closed configuration, as
- the side segment 38 b is adapted to be connected to the longitudinally-extending groove 98 b of the inlet segment 34 and a longitudinally-extending groove of the outlet segment 36 (which is analogous to the longitudinally-extending groove 98 a of the inlet segment 34 ).
- the connection of the side segments 38 a and 38 b with the inlet and outlet segments 34 and 36 is adapted to place the side segments 38 a and 38 b in tension between the inlet and outlet segments 34 and 36 so that the compressive load is placed on the plug 26 by the inlet and outlet segments 34 and 36 .
- the tensioning of the side segments 38 a and 38 b between the inlet and outlet segments 34 and 36 is adapted to seal the concave sealing surface 94 of the inlet segment 34 against the exterior surface 30 of the plug 26 , and to seal a concave sealing surface of the outlet segment 36 (which is analogous to the concave sealing surface 94 of the inlet segment 34 ) against the exterior surface 30 of the plug 26 , opposite the inlet segment 34 .
- a lubricating fluid (not shown) provided at the interface between the plug 26 and the inlet and outlet segments 34 and 36 via, for example, the lubrication fitting(s) 24 ( FIG. 1A ).
- the side segments 38 a and 38 b are spaced apart from the plug 26 when the side segments 38 a and 38 b are tensioned between the inlet and outlet segments 34 and 36 (i.e., such that the side segments 38 a and 38 b do not contact the plug 26 ).
- the side segments 38 a and 38 b have been described herein as being connected to the inlet segment 34 's longitudinally-extending grooves 98 a and 98 b and the outlet segment 36 's longitudinally-extending grooves (which are analogous to the inlet segment 34 's longitudinally-extending grooves 98 a and 98 b ), the side segments 38 a and 38 b may be connected to the side segments 38 a and 38 b in another suitable manner.
- the compressive load applied to the plug 26 by the inlet and outlet segments 34 and 36 has been described herein as being provided by tensioning of the side segments 38 a and 38 b between the inlet and outlet segments 34 and 36 , the side segments 38 a and 38 b may alternatively be omitted and the compressive load applied to the plug 26 by the inlet and outlet segments 34 and 36 may be provided by another suitable structure or mechanism.
- the boot 72 includes edge portions 106 a and 106 b and edge portions 108 a - d .
- the edge portions 106 a and 106 b are convex.
- the edge portions 108 a - d are straight.
- the edge portions 106 a and 106 b are convex and the edge portions 108 a - d are straight.
- the boot 72 includes a through-hole pattern 110 (e.g., including countersunk through-holes) to facilitate connection of the boot 72 to the cover plate 18 .
- the edge portions 108 a and 108 b of the boot 72 are adapted to extend adjacent the side surfaces 104 a and 104 b , respectively, of the inlet segment 34 .
- the edge portions 108 a and 108 b are spaced in a parallel relation.
- the edge portion 106 a is adapted to extend adjacent the concave interior surface 90 of the inlet segment 34 when the edge portions 108 a and 108 b of the boot 72 extend adjacent the side surfaces 104 a and 104 b , respectively, of the inlet segment 34 .
- the boot 72 is adapted to interlock with the projection 102 of the inlet segment 34 .
- the edge portions 108 c and 108 d of the boot 72 are adapted to extend adjacent surfaces, respectively, of the outlet segment 36 .
- the edge portions 108 c and 108 d are spaced in a parallel relation.
- the surfaces of the outlet segment 36 with which the edge portions 108 c and 108 d of the boot 72 are adapted to extend adjacent are analogous to the side surfaces 104 a and 104 b of the inlet segment 34 .
- the edge portion 106 b of the boot 72 is adapted to extend adjacent a concave interior surface of the outlet segment 36 when the edge portions 108 c and 108 d extend adjacent the surfaces of the outlet segment 36 .
- the concave interior surface of the outlet segment 36 with which the edge portion 106 b of the boot 72 is adapted to extend adjacent is analogous to the concave interior surface 90 of the inlet segment 34 .
- the boot 72 is adapted to interlock with a projection of the outlet segment 36 that is analogous to the projection 102 of the inlet segment 34 .
- FIGS. 12-16 in operation, the plug valve 10 is actuable between the open configuration (shown in FIGS. 12-14 ) and the closed configuration (shown in FIGS. 15 and 16 ).
- FIGS. 12 and 13 in the open configuration, the fluid passage 32 of the plug 26 is aligned with the inlet and outlet openings 40 and 44 of the insert 28 and the inlet and outlet passages 78 and 80 of the valve body 12 so that fluid flow is permitted through the plug valve 10 , as indicated by arrow(s) 112 .
- the inlet seal 42 engages the valve body 12 around the inlet passage 78 to thereby prevent migration of the fluid 112 into an annular region between the insert 28 and the valve body 12 as the fluid 112 enters the fluid passage 32 via the inlet passage 78 and the inlet opening 40 .
- the concave sealing surface 94 of the inlet segment 34 seals against the exterior surface 30 of the plug 26 around the fluid passage 32 .
- the outlet seal 46 engages the valve body 12 around the outlet passage 80 to thereby prevent migration of the fluid 112 into the annular region between the insert 28 and the valve body 12 as the fluid 112 exits the fluid passage 32 via the outlet opening 44 and the outlet passage 80 .
- the concave sealing surface of the outlet segment 36 (which is analogous to the concave sealing surface 94 of the inlet segment 34 ) seals against the exterior surface 30 of the plug 26 around the fluid passage 32 .
- the sealing of the inlet and outlet segments 34 and 36 against the plug 26 is aided by the lubricating fluid (not shown) provided at the interface between the plug 26 and the inlet and outlet segments 34 and 36 via, for example, the lubrication fitting(s) 24 ( FIG. 1A ).
- the projection 102 of the inlet segment 34 and the projection of the outlet segment 36 each interlock with the boot 72 to thereby prevent, or at least reduce, rotation of the insert 28 relative to the valve body 12 .
- the edge portions 108 a and 108 b of the boot 72 extend adjacent the side surfaces 104 a and 104 b , respectively, of the inlet segment 34
- the edge portion 106 a of the boot 72 extends adjacent the concave interior surface 90 of the inlet segment 34 . In this manner, the boot 72 interlocks with the projection 102 of the inlet segment 34 .
- edge portions 108 c and 108 d of the boot 72 extend adjacent the surfaces, respectively, of the outlet segment 36 (which are analogous to the side surfaces 104 a and 104 b of the inlet segment 34 ), and the edge portion 106 b of the boot 72 extends adjacent the concave interior surface of the outlet segment 36 (which is analogous to the concave interior surface 90 of the inlet segment 34 ). In this manner, the boot 72 interlocks with the projection of the outlet segment 36 (which is analogous to the projection 102 of the inlet segment 34 ) to prevent, or at least reduce, rotation of the insert 28 relative to the valve body 12 .
- the plug 26 in the closed configuration, is rotated to prevent, or at least reduce, communication of the fluid 112 from the inlet passage 78 to the outlet passage 80 of the valve body 12 .
- the actuator 14 rotates the plug 26 (via the drive gear 50 and the adapter 52 ) so that the fluid passage 32 of the plug 26 is no longer aligned with the inlet and outlet openings 40 and 44 of the insert 28 or the inlet and outlet passages 78 and 80 of the valve body 12 .
- the exterior surface 30 of the plug 26 is substantially aligned with the inlet and outlet openings 40 and 44 of the insert 28 and the inlet and outlet passages 78 and 80 of the valve body 12 to thereby block communication of the fluid 112 from the inlet passage 78 to the outlet passage 80 of the valve body 12 .
- the fluid 112 within the inlet passage 78 and the inlet opening 40 is prevented from migrating into the annular region between the insert 28 and the valve body 12 by the sealing engagement of the inlet seal 42 against the valve body 12 around the inlet passage 78 .
- the concave sealing surface 94 of the inlet segment 34 seals against the exterior surface 30 of the plug 26 .
- the lubricating fluid (not shown) provided at the interface between the plug 26 and the inlet segment 34 (via, for example, the lubrication fitting(s) 24 ( FIG. 1A )) aids with the sealing engagement of the inlet segment 34 against the plug 26 .
- the tensioning of the side segments 38 a and 38 b between the inlet and outlet segments 34 and 36 prevents the fluid 112 in the inlet passage 78 from unsealing the concave sealing surface 94 of the inlet segment 34 from the exterior surface 30 of the plug 26 .
- reducing the contact area between the insert 28 and the plug 26 increases the contact pressure between the insert 28 and the plug 26 . In some embodiments, reducing the contact area between the insert 28 and the plug 26 decreases the amount of force required to maintain the contact pressure between the insert 28 and the plug 26 above the minimum threshold required to establish a suitable seal with the plug 26 . In some embodiments, reducing the contact area between the insert 28 and the plug 26 enables the side segments 38 a and 38 b (or another suitable structure or mechanism) to maintain the contact pressure between the insert 28 and the plug 26 above the minimum threshold required to establish a suitable seal with the plug 26 .
- reducing the contact area between the insert 28 and the plug 26 decreases the amount of friction between the plug 26 and the insert 28 . In some embodiments, reducing the contact area between the insert 28 and the plug 26 mitigates any shifting, turning, or rotation of the insert 28 relative to the valve body 12 . In some embodiments, reducing the contact area between the insert 28 and the plug 26 prevents, or at least reduces, misalignment between the inlet and outlet openings 40 and 44 of the insert 28 and the inlet and outlet passages 78 and 80 of the valve body 12 . In some embodiments, reducing the contact area between the insert 28 and the plug 26 prevents, or at least reduces, wear, erosion, or complete wash-out of the plug 26 , the insert 28 , and/or the valve body 12 .
- the reduced contact area between the insert 28 and the plug 26 makes possible the manufacture of an effective and reliable “large bore” plug valve 10 in which the fluid passage 32 of the plug 26 has an inner diameter of: about 51 ⁇ 8 inches, greater than about 51 ⁇ 8 inches, ranging from about 51 ⁇ 8 inches to about 7 1/16 inches, about 7 1/16 inches, or greater than about 7 1/16 inches.
- the reduced contact area between the insert 28 and the plug 26 permits relaxed tolerances during the manufacture of the insert 28 while maintaining the insert 28 's capability to matingly engage the plug 26 so that an effective seal is maintained therebetween.
- the engagement of the boot 72 with the inlet segment 34 's projection 102 and/or the outlet segment 36 's projection mitigates any shifting, turning, or rotation of the insert 28 relative to the valve body 12 .
- the engagement of the boot 72 with the inlet segment 34 's projection 102 and/or the outlet segment 36 's projection prevents, or at least reduces, misalignment between the inlet and outlet openings 40 and 44 of the insert 28 and the inlet and outlet passages 78 and 80 of the valve body 12 .
- the engagement of the boot 72 with the inlet segment 34 's projection 102 and/or the outlet segment 36 's projection prevents, or at least reduces, wear, erosion, or complete wash-out of the plug 26 , the insert 28 , and/or the valve body 12 .
- the engagement of the boot 72 with the inlet segment 34 's projection 102 and/or the outlet segment 36 's projection makes possible the manufacture of an effective and reliable “large bore” plug valve 10 in which the fluid passage 32 of the plug 26 has an inner diameter of: about 51 ⁇ 8 inches, greater than about 51 ⁇ 8 inches, ranging from about 51 ⁇ 8 inches to about 7 1/16 inches, about 7 1/16 inches, or greater than about 7 1/16 inches.
- the hydraulic fracturing system 114 includes a flow iron section 116 positioned between a hydraulic fracturing pump 118 and a wellhead 120 .
- the flow iron section 116 includes one or more of: a pressurization manifold 122 connected to the hydraulic fracturing pump 118 , a hydraulic fracturing tree 124 connected to the wellhead 120 , and a distribution manifold 126 connected between the pressurization manifold 122 and the hydraulic fracturing tree 124 .
- the pressurization manifold 122 includes a low pressure section 128 connected between a fluid source 130 and the hydraulic fracturing pump 118 , and a high pressure section 132 connected between the hydraulic fracturing pump 118 and the distribution manifold 126 .
- the hydraulic fracturing system 114 may include other hydraulic fracturing pump(s) (not shown) to facilitate pressurization of the hydraulic fracturing fluid from the low pressure section 128 and communication of the pressurized hydraulic fracturing fluid to the high pressure section 132 .
- the wellhead 120 is located at the top or head of an oil and gas wellbore (not shown), which penetrates one or more subterranean formations (not shown).
- the hydraulic fracturing system 114 may also include one or more wellheads (not shown) to which fracturing trees (not shown) are connected; the distribution manifold 126 facilitates communication of the pressurized hydraulic fracturing fluid to such wellhead(s) via the corresponding fracturing tree(s).
- the hydraulic fracturing fluid is communicated from the hydraulic fracturing pump 118 to the wellhead 120 via at least the flow iron section 116 to thereby facilitate hydraulic fracturing of the subterranean formation(s). More particularly, the hydraulic fracturing fluid is communicated from the fluid source 130 to the low pressure section 128 of the pressurization manifold 122 .
- the hydraulic fracturing pump 118 receives the hydraulic fracturing fluid from the low pressure section 128 , pressurizes the hydraulic fracturing fluid, and communicates the pressurized hydraulic fracturing fluid to the high pressure section 132 .
- the high pressure section 132 communicates the pressurized hydraulic fracturing fluid from the hydraulic fracturing pump 118 to the distribution manifold 126 .
- the distribution manifold 126 communicates the pressurized hydraulic fracturing fluid from the high pressure section 132 of the pressurization manifold 122 to the hydraulic fracturing tree 124 connected to the wellhead 120 .
- FIG. 18 With continuing reference to FIG. 17 , it can be seen that the flange 86 of the valve body 12 is connected to the flow-line component 134 , and the flange 88 of the valve body 12 is connected to the flow-line component 136 .
- the flow-line component 134 is connected to, or part of, the flow iron section 116 , including one or more of the pressurization manifold 122 connected to the hydraulic fracturing pump 118 , the hydraulic fracturing tree 124 connected to the wellhead 120 , and the distribution manifold 126 connected between the pressurization manifold 122 and the hydraulic fracturing tree 124 .
- the flow-line component 134 is connected to, or part of, the flow iron section 116 , including one or more of the pressurization manifold 122 , the hydraulic fracturing tree 124 , and the distribution manifold 126 .
- the connection of the valve body 12 between the flow-line components 134 and 136 incorporates the plug valve 10 into the hydraulic fracturing system 114 so that, during the operation of the hydraulic fracturing system 114 to facilitate hydraulic fracturing of the subterranean formation(s), the plug 26 is rotatable within the valve body 12 to selectively permit communication of the hydraulic fracturing fluid from the hydraulic fracturing pump 118 to the wellhead 120 via at least the flow iron section 116 and the fluid passage 32 of the plug 26 .
- the flow-line components 134 and 136 to which the plug valve 10 is connected are illustrated in FIG. 18 as a pair of spools; however, the flow-line components 134 and 136 may each be, include, or be part of, a variety of flow-line components including, but not limited to, a valve, a spool, a flow block, a swivel block, another flow-line component, or any combination thereof.
- the flow-line components 134 and 136 and the plug valve 10 may be oriented differently than the orientation illustrated in FIG. 18 (i.e., horizontally, vertically, diagonally, etc.).
- the elements and teachings of the various embodiments may be combined in whole or in part in some or all of the embodiments.
- one or more of the elements and teachings of the various embodiments may be omitted, at least in part, and/or combined, at least in part, with one or more of the other elements and teachings of the various embodiments.
- steps, processes, and procedures are described as appearing as distinct acts, one or more of the steps, one or more of the processes, and/or one or more of the procedures may also be performed in different orders, simultaneously and/or sequentially. In some embodiments, the steps, processes and/or procedures may be merged into one or more steps, processes and/or procedures.
- one or more of the operational steps in each embodiment may be omitted.
- some features of the present disclosure may be employed without a corresponding use of the other features.
- one or more of the above-described embodiments and/or variations may be combined in whole or in part with any one or more of the other above-described embodiments and/or variations.
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Abstract
Description
- This application claims the benefit of the filing date of, and priority to, U.S. Application No. 62/354,101, filed Jun. 23, 2016, the entire disclosure of which is hereby incorporated herein by reference.
- This application also claims the benefit of the filing date of, and priority to, U.S. Application No. 62/393,990, filed Sep. 13, 2016, the entire disclosure of which is hereby incorporated herein by reference.
- This application also claims the benefit of the filing date of, and priority to, U.S. Application No. 62/412,230, filed Oct. 24, 2016, the entire disclosure of which is hereby incorporated herein by reference.
- This application also claims the benefit of the filing date of, and priority to, U.S. Application No. 62/421,019, filed Nov. 11, 2016, the entire disclosure of which is hereby incorporated herein by reference.
- The present disclosure relates in general to valves and, in particular, to a “large bore” plug valve used in oil or gas operations.
- In oil or gas operations, one or more plug valves may be used to control fluid flow; one such plug valve generally includes a valve body defining a pair of fluid passages intersecting an internal cavity. The internal cavity of the valve body accommodates a plug and an insert, which insert extends within an annular space between the plug and the valve body. The plug and the insert include fluid passages that are adapted to be substantially aligned with the fluid passages of the valve body. The plug is adapted to rotate relative to the insert and the valve body to selectively permit fluid flow through the respective fluid passages of the valve body, the insert, and the plug. During operation, the insert is meant to seal against the plug and the valve body to thereby prevent migration of the fluid flow into the annular region between the plug and the valve body. To establish a suitable seal between the insert and the plug, contact pressure between the insert and the plug must be maintained above a threshold level.
- During rotation of the plug, friction between the plug and the insert can cause the insert to shift, turn, or rotate relative to the valve body. The shifting, turning, or rotation of the insert relative to the valve body causes misalignment between the fluid passages of the insert, the valve body, and the plug. This misalignment typically causes wear, erosion, or complete wash-out of the insert, the valve body, and/or the plug. In addition, the force required to maintain the contact pressure between the insert and the plug above the threshold level often increases the amount of friction between the insert and the plug, thereby exacerbating the issue(s) described above. Indeed, in some instances, excessive friction between the insert and the plug can make rotation of the plug relative to the insert difficult or impossible. These issues, among others, are particularly acute for “large bore” plug valves in which the fluid passage of the plug has a relatively large diameter (e.g., about 5⅛ inches, greater than about 5⅛ inches, etc.).
- Therefore, to make possible the manufacture of an effective and reliable “large bore” plug valve, what is needed is an apparatus, system, or method to address one or more of the foregoing issues, and/or one or more other issues.
- In a first aspect, the present disclosure introduces an apparatus, including a valve body defining an internal cavity, a first passage, and a second passage; a plug defining a third passage and being rotatable within the internal cavity to selectively permit communication of a fluid between the first and second passages via the third passage; and an insert extending within the internal cavity between the valve body and the plug, the insert defining a first opening aligned with the first passage of the valve body, a first interior surface, and a first sealing surface extending around the first opening and standing in relief against the first interior surface to sealingly engage the plug; wherein migration of the fluid into an annular region between the insert and the plug is prevented, or at least reduced, by the sealing engagement of the first sealing surface with the plug.
- In an embodiment, the insert includes a first segment including the first interior surface, the first opening, and the first sealing surface.
- In another embodiment, the insert further defines a second opening aligned with the second passage of the valve body, a second interior surface, and a second sealing surface extending around the second opening and standing in relief against the second interior surface to sealingly engage the plug.
- In yet another embodiment, migration of the fluid into the annular region between the insert and the plug is prevented, or at least reduced, by the respective sealing engagements of the first and second sealing surfaces with the plug.
- In certain embodiments, the insert includes a first segment including the first interior surface, the first opening, and the first sealing surface, and a second segment including the second interior surface, the second opening, and the second sealing surface.
- In an embodiment, the insert further includes third and fourth segments interconnecting the first and second segments so that, in combination, the first, second, third, and fourth segments surround the plug.
- In another embodiment, the apparatus further comprises a flow iron section adapted to be positioned between a hydraulic fracturing pump and a wellhead, the flow iron section including one or more of a pressurization manifold connected to the hydraulic fracturing pump, a hydraulic fracturing tree connected to the wellhead, and a distribution manifold connected between the pressurization manifold and the hydraulic fracturing tree; wherein the valve body is connected to the flow iron section so that the plug is rotatable within the valve body to selectively permit communication of a hydraulic fracturing fluid from the hydraulic fracturing pump to the wellhead via at least the flow iron section and the third passage.
- In a second aspect, the present disclosure introduces an apparatus, including a valve body defining an internal cavity, a first passage, and a second passage; a plug defining a third passage and being rotatable within the internal cavity to selectively permit communication of a fluid between the first and second passages via the third passage; an insert extending within the internal cavity between the valve body and the plug, the insert defining a first opening aligned with the first passage of the valve body, a first interior surface, and a first projection at least partially defining the first interior surface; and a boot connected to the valve body and interlocked with the first projection of the insert to prevent, or at least reduce, rotation of the insert relative to the valve body when the plug rotates within the internal cavity.
- In an embodiment, the first projection includes first and second side surfaces, and the boot includes first and second edge portions extending adjacent the first and second side surfaces, respectively, of the first projection.
- In another embodiment, the boot further includes a third edge portion extending between the first and second edge portions and adjacent the first interior surface of the insert.
- In yet another embodiment, the insert further defines a second opening aligned with the second passage of the valve body, a second interior surface, and a second projection at least partially defining the second interior surface; and the boot is interlocked with the second projection of the insert to prevent, or at least reduce, rotation of the insert relative to the valve body when the plug rotates within the internal cavity.
- In certain embodiments, the first projection includes first and second side surfaces, and the boot includes first and second edge portions extending adjacent the first and second side surfaces, respectively, of the first projection; and the second projection includes third and fourth side surfaces, and the boot includes third and fourth edge portions extending adjacent the third and fourth side surfaces, respectively, of the second projection.
- In an embodiment, the boot further includes a fifth edge portion extending between the first and second edge portions and adjacent the first interior surface of the insert; and a sixth edge portion extending between the third and fourth edge portions and adjacent the second interior surface of the insert.
- In another embodiment, the insert includes a first segment including the first interior surface, the first projection, and the first opening, and a second segment including the second interior surface, the second projection, and the second opening.
- In yet another embodiment, the insert further includes third and fourth segments interconnecting the first and second segments so that, in combination, the first, second, third, and fourth segments surround the plug.
- In certain embodiments, the apparatus further comprises a flow iron section adapted to be positioned between a hydraulic fracturing pump and a wellhead, the flow iron section including one or more of a pressurization manifold connected to the hydraulic fracturing pump, a hydraulic fracturing tree connected to the wellhead, and a distribution manifold connected between the pressurization manifold and the hydraulic fracturing tree; and wherein the valve body is connected to the flow iron section so that the plug is rotatable within the valve body to selectively permit communication of a hydraulic fracturing fluid from the hydraulic fracturing pump to the wellhead via at least the flow iron section and the third passage.
- In a third aspect, the present disclosure introduces an apparatus, including a flow iron section adapted to be positioned between a hydraulic fracturing pump and a wellhead, the flow iron section including one or more of a pressurization manifold connected to the hydraulic fracturing pump, a hydraulic fracturing tree connected to the wellhead, and a distribution manifold connected between the pressurization manifold and the hydraulic fracturing tree; and a plug valve connected to the flow iron section, the plug valve including a valve body and a plug, the plug defining a first passage and being rotatable within the valve body to selectively permit communication of a hydraulic fracturing fluid from the hydraulic fracturing pump to the wellhead via at least the flow iron section and the first passage, the first passage having an inner diameter that is equal to, or greater than, about 5⅛ inches.
- In an embodiment, the valve body further defines second and third passages configured to communicate with one another via the first passage of the plug when communication of the hydraulic fracturing fluid is selectively permitted from the hydraulic fracturing pump to the wellhead via at least the flow iron section and the first passage.
- In another embodiment, the plug valve further includes an insert extending between the valve body and the plug, the insert defining an opening aligned with the first passage of the valve body, an interior surface, and a sealing surface extending around the opening and standing in relief against the interior surface to sealingly engage the plug.
- In yet another embodiment, the plug valve further includes an insert extending within the valve body between the valve body and the plug, the insert defining an opening aligned with the first passage of the valve body, an interior surface, and a projection at least partially defining the interior surface; and a boot connected to the valve body and interlocked with the projection of the insert to prevent, or at least reduce, rotation of the insert relative to the valve body when the plug rotates within the valve body.
-
FIG. 1A is a perspective view illustrating a plug valve, according to one or more embodiments of the present disclosure. -
FIG. 1B is an exploded perspective view illustrating internal components of the plug valve ofFIG. 1A , including, inter alia, a plug, an inlet segment, an outlet segment, and a boot, according to one or more embodiments of the present disclosure. -
FIG. 2 is a cross-sectional view of the plug valve ofFIG. 1A , including the plug, the inlet segment, the outlet segment, and the boot, according to one or more embodiments of the present disclosure. -
FIG. 3 is an enlarged view of the plug valve ofFIG. 2 , according to one or more embodiments of the present disclosure. -
FIG. 4 is another enlarged view of the plug valve ofFIG. 2 , according to one or more embodiments of the present disclosure. -
FIGS. 5-8 are rear perspective, front perspective, top plan, and bottom plan views, respectively, of the inlet segment ofFIGS. 1B and 2 , according to one or more embodiments of the present disclosure. -
FIGS. 9 and 10 are perspective views illustrating the plug, the inlet segment, and the outlet segment in different stages of assembly, according to one or more embodiments of the present disclosure. -
FIG. 11 is a perspective view of the boot ofFIGS. 1A and 2 , according to one or more embodiments of the present disclosure. -
FIG. 12 is an enlarged cross-sectional view of the plug valve ofFIG. 2 in a first operational configuration, according to one or more embodiments of the present disclosure. -
FIG. 13 is a sectional view of the plug valve taken along the line 13-13 ofFIG. 12 , according to one or more embodiments of the present disclosure. -
FIG. 14 is a sectional view of the plug valve taken along the line 14-14 ofFIG. 12 , according to one or more embodiments of the present disclosure. -
FIG. 15 is an enlarged view of the plug valve similar to that shown inFIG. 12 , except that the plug valve is in a second operational configuration, according to one or more embodiments of the present disclosure. -
FIG. 16 is a sectional view of the plug valve taken along the line 16-16 ofFIG. 15 , according to one or more embodiments of the present disclosure. -
FIG. 17 is a schematic illustration of a hydraulic fracturing system, the hydraulic fracturing system including a hydraulic fracturing pump, a flow iron section, and a wellhead, according to one or more embodiments of the present disclosure. -
FIG. 18 is an elevational view of the plug valve ofFIGS. 1-16 connected between a pair of flow-line components, which flow-line components are part of the flow iron section ofFIG. 17 , according to one or more embodiments of the present disclosure. - Turning initially to
FIGS. 1A and 1B , an example embodiment of a plug valve, generally referred to by thereference numeral 10, is illustrated. As shown inFIG. 1A , theplug valve 10 includes avalve body 12, anactuator 14, anactuator plate 16, and acover plate 18. Theactuator 14 is connected to theactuator plate 16 via a plurality offasteners 20, and theactuator plate 16 is connected to thevalve body 12. Thecover plate 18 is connected to thevalve body 12 via a plurality offasteners 22, opposite theactuator plate 16. In some embodiments, thecover plate 18 is considered part of thevalve body 12. Theplug valve 10 includes one ormore lubrication fittings 24 connected to thevalve body 12 to facilitate lubrication of internal component(s) of theplug valve 10. Theactuator 14 is adapted to actuate theplug valve 10 between an open configuration in which fluid flow is permitted through theplug valve 10 and a closed configuration in which fluid flow through theplug valve 10 is prevented, or at least reduced. - The
valve body 12, theactuator 14, theactuator plate 16, and thecover plate 18 are omitted from view inFIG. 1B to more clearly illustrate the internal components of theplug valve 10. Turning toFIG. 1B , theplug valve 10 further includes aplug 26 and aninsert 28, which plug 26 defines anexterior surface 30 and afluid passage 32 extending transversely therethrough. Theinsert 28 is adapted to extend about and sealingly engage theexterior surface 30 of theplug 26. Theinsert 28 includes aninlet segment 34, anoutlet segment 36, and 38 a and 38 b. Theside segments inlet segment 34 includes aninlet opening 40 and is adapted to accommodate aninlet seal 42 around theinlet opening 40. Theinlet seal 42 is adapted to engage thevalve body 12. Theoutlet segment 36 includes anoutlet opening 44 and is adapted to accommodate anoutlet seal 46 around theoutlet opening 44. Theoutlet seal 46 is adapted to engage thevalve body 12. The 38 a and 38 b are adapted to connect theside segments inlet segment 34 to theoutlet segment 36 to thereby place a compressive load on theplug 26. Theplug valve 10 includes alignment dowels 48 a and 48 b to facilitate the alignment of the inlet and 40 and 44 within theoutlet openings valve body 12. - The
plug valve 10 also includes adrive gear 50 and anadapter 52 via which theactuator 14 is adapted to be operably coupled to theplug 26. Theadapter 52 is adapted to be supported within thevalve body 12 via abearing 54 and aspacer 56. Thespacer 56 is adapted to accommodate anouter seal 58 and anouter backup ring 60 so that theouter seal 58 engages thespacer 56 and thevalve body 12. Thespacer 56 is further adapted to accommodate aninner seal 62 and aninner backup ring 64 so that theinner seal 62 engages thespacer 56 and theadapter 52. Thevalve body 12 is adapted to accommodate awiper seal 66 so that thewiper seal 66 engages theadapter 52 and thevalve body 12 to prevent drainage of fluid (e.g., lubricating fluid) from theactuator 14 into thevalve body 12. Thecover plate 18 is adapted to accommodate aseal 68 and abackup ring 70 so that theseal 68 engages thecover plate 18 and thevalve body 12. Theplug valve 10 includes aboot 72 adapted to be connected to thecover plate 18 via a plurality offasteners 74. Thus, theboot 72 is adapted to be connected to thevalve body 12 in those embodiments in which thecover plate 18 is considered part of thevalve body 12. Theboot 72 is adapted to interlock with theinsert 28 to thereby prevent, or at least reduce, rotation of theinsert 28 relative to thevalve body 12 when theplug 26 rotated. - Turning to
FIG. 2 , with continuing reference toFIGS. 1A and 1B , it can be seen that thevalve body 12 defines aninternal cavity 76, aninlet passage 78, anoutlet passage 80, an actuator bore 82, and anaccess port 84. Theinlet passage 78 permits fluid communication between thevalve body 12 and an adjacent flow-line component such as, for example, the flow-line component 134 shown inFIGS. 18A and 18B , which will be discussed in further detail below. Thevalve body 12 includes aflange 86 around theinlet passage 78 to facilitate connection of thevalve body 12 to the adjacent flow-line component. Theflange 86 includes a through-hole pattern (visible inFIG. 1A ; or a threaded-hole pattern). Theoutlet passage 80 permits fluid communication between thevalve body 12 and another adjacent flow-line component such as, for example, the flow-line component 136 shown inFIGS. 18A and 18B , which will be discussed in further detail below. Thevalve body 12 includes aflange 88 around theoutlet passage 80 to facilitate connection of theplug valve 10 to the another adjacent flow-line component. Theflange 88 includes a through-hole pattern (visible inFIG. 1A ; or a threaded-hole pattern). In some embodiments, one or both of the 86 and 88 are omitted and replaced with another type of fluid-line connector such as, for example, the male half of a hammer union, the female half of a hammer union, a hammerless union, another fluid-line connector, or any combination thereof.flanges - The
plug 26 extends within theinternal cavity 76 of thevalve body 12 and is coupled to theactuator 14 via thedrive gear 50 and theadapter 52. Theadapter 52 is supported within the actuator bore 82 via thebearing 54 and thespacer 56. Thewiper seal 66 seals against theadapter 52 and thevalve body 12 to thereby prevent drainage of fluid (e.g., lubricating fluid) from theactuator 14 into thevalve body 12. Theinsert 28 extends about and seals against theexterior surface 30 of theplug 26. The inlet and 40 and 44 are aligned with the inlet andoutlet openings 78 and 80, respectively, of theoutlet passages valve body 12. Theactuator 14 is operable to rotate thedrive gear 50, theadapter 52, and theplug 26 relative to thevalve body 12 to thereby actuate theplug 26 between the open configuration and the closed configuration. As shown inFIG. 2 , thefluid passage 32 of theplug 26 is adapted to be aligned with the inlet and 40 and 44 of theoutlet openings insert 28 and the inlet and 78 and 80 of theoutlet passages valve body 12 when theplug valve 10 is in the open configuration. In some embodiments, thefluid passage 32 has an inner diameter of about 5⅛ inches, of about 7 1/16 inches, or ranging from about 5⅛ inches to about 7 1/16 inches. - Turning to
FIG. 3 , with continuing reference toFIG. 2 , it can be seen that theinlet segment 34 accommodates theinlet seal 42 around the inlet opening 40 in a manner that seals theinlet seal 42 against thevalve body 12 around theinlet passage 78. Likewise, theoutlet segment 36 accommodates theoutlet seal 46 around the outlet opening 44 in a manner that seals theoutlet seal 46 against thevalve body 12 around the outlet passage 80 (visible inFIG. 2 ). Thecover plate 18 extends into theaccess port 84 and accommodates theseal 68 and thebackup ring 70 so that theseal 68 seals against thevalve body 12. Theboot 72 is connected to thecover plate 18 via the plurality offasteners 74 in a manner that permits interlocking of theinsert 28 with theboot 72. Thus, theboot 72 is connected to thevalve body 12 in those embodiments in which thecover plate 18 is considered part of thevalve body 12. Alternatively, although described herein as being connected to thecover plate 18, theboot 72 may instead be connected directly to thevalve body 12. - Turning to
FIG. 4 , with continuing reference toFIG. 2 , thespacer 56 accommodates theouter seal 58 and theouter backup ring 60 so that theouter seal 58 seals against thevalve body 12. Thespacer 56 also accommodates theinner seal 62 and theinner backup ring 64 so that theinner seal 62 seals against theadapter 52. - The
outlet segment 36 is substantially identical to theinlet segment 34 and, therefore, in connection withFIGS. 5-8 , only theinlet segment 34 will be described in detail below; however, the description below also applies to theoutlet segment 36. Turning toFIGS. 5-8 , theinlet segment 34 includes a concaveinterior surface 90 and aconvex exterior surface 92. Theinlet opening 40 extends through the concaveinterior surface 90 and theconvex exterior surface 92. Theinlet segment 34 includes aconcave sealing surface 94 formed around theinlet opening 40. Theconcave sealing surface 94 stands in relief against the concaveinterior surface 90 to seal against theexterior surface 30 of theplug 26. Theinlet segment 34 includes a sealinggroove 96 formed in theconvex exterior surface 92 and around theinlet opening 40. The sealinggroove 96 accommodates theinlet seal 42. Theconvex exterior surface 92 also includes longitudinally-extending 98 a and 98 b formed therein to facilitate connection of thegrooves inlet segment 34 to the 38 a and 38 b, respectively. Theside segments inlet segment 34 includes analignment notch 100 to accommodate the dowel 92 a when theplug valve 10 is assembled. Theinlet segment 34 also includes aprojection 102 opposite thealignment notch 100. Theprojection 102 includes side surfaces 104 a and 104 b. In some embodiments, the side surfaces 104 a and 104 b are spaced in a parallel relation. Theprojection 102 is adapted to interlock with theboot 72 to thereby prevent, or at least reduce, rotation of theinsert 28 relative to thevalve body 12 when theplug 26 is actuated between the open configuration and the closed configuration, as will be discussed in further detail below. - Turning to
FIGS. 9 and 10 , with continuing reference toFIGS. 5-8 , an example embodiment of the manner in which the compressive load is placed on theplug 26 by theinsert 28 is illustrated. To begin with, the inlet and 34 and 36 are engaged with theoutlet segments exterior surface 30 of theplug 26. Subsequently, theside segment 38 a is adapted to be connected to the longitudinally-extendinggroove 98 a of theinlet segment 34 and a longitudinally-extending groove of the outlet segment 36 (which is analogous to the longitudinally-extendinggroove 98 b of the inlet segment 34). Moreover, theside segment 38 b is adapted to be connected to the longitudinally-extendinggroove 98 b of theinlet segment 34 and a longitudinally-extending groove of the outlet segment 36 (which is analogous to the longitudinally-extendinggroove 98 a of the inlet segment 34). The connection of the 38 a and 38 b with the inlet andside segments 34 and 36 is adapted to place theoutlet segments 38 a and 38 b in tension between the inlet andside segments 34 and 36 so that the compressive load is placed on theoutlet segments plug 26 by the inlet and 34 and 36. The tensioning of theoutlet segments 38 a and 38 b between the inlet andside segments 34 and 36 is adapted to seal theoutlet segments concave sealing surface 94 of theinlet segment 34 against theexterior surface 30 of theplug 26, and to seal a concave sealing surface of the outlet segment 36 (which is analogous to theconcave sealing surface 94 of the inlet segment 34) against theexterior surface 30 of theplug 26, opposite theinlet segment 34. During operation, the sealing of the inlet and 34 and 36 against theoutlet segments plug 26 is aided by a lubricating fluid (not shown) provided at the interface between theplug 26 and the inlet and 34 and 36 via, for example, the lubrication fitting(s) 24 (outlet segments FIG. 1A ). The 38 a and 38 b are spaced apart from theside segments plug 26 when the 38 a and 38 b are tensioned between the inlet andside segments outlet segments 34 and 36 (i.e., such that the 38 a and 38 b do not contact the plug 26).side segments - Although the
38 a and 38 b have been described herein as being connected to theside segments inlet segment 34's longitudinally-extending 98 a and 98 b and thegrooves outlet segment 36's longitudinally-extending grooves (which are analogous to theinlet segment 34's longitudinally-extending 98 a and 98 b), thegrooves 38 a and 38 b may be connected to theside segments 38 a and 38 b in another suitable manner. Moreover, although the compressive load applied to theside segments plug 26 by the inlet and 34 and 36 has been described herein as being provided by tensioning of theoutlet segments 38 a and 38 b between the inlet andside segments 34 and 36, theoutlet segments 38 a and 38 b may alternatively be omitted and the compressive load applied to theside segments plug 26 by the inlet and 34 and 36 may be provided by another suitable structure or mechanism.outlet segments - Turning to
FIG. 11 , with continuing reference toFIGS. 5-10 , an example embodiment of theboot 72 is illustrated. Theboot 72 includes 106 a and 106 b and edge portions 108 a-d. In some embodiments, theedge portions 106 a and 106 b are convex. In some embodiments, the edge portions 108 a-d are straight. In some embodiments, theedge portions 106 a and 106 b are convex and the edge portions 108 a-d are straight. Theedge portions boot 72 includes a through-hole pattern 110 (e.g., including countersunk through-holes) to facilitate connection of theboot 72 to thecover plate 18. - The
108 a and 108 b of theedge portions boot 72 are adapted to extend adjacent the side surfaces 104 a and 104 b, respectively, of theinlet segment 34. In some embodiments, the 108 a and 108 b are spaced in a parallel relation. Moreover, theedge portions edge portion 106 a is adapted to extend adjacent the concaveinterior surface 90 of theinlet segment 34 when the 108 a and 108 b of theedge portions boot 72 extend adjacent the side surfaces 104 a and 104 b, respectively, of theinlet segment 34. In this manner, theboot 72 is adapted to interlock with theprojection 102 of theinlet segment 34. - The
108 c and 108 d of theedge portions boot 72 are adapted to extend adjacent surfaces, respectively, of theoutlet segment 36. In some embodiments, the 108 c and 108 d are spaced in a parallel relation. The surfaces of theedge portions outlet segment 36 with which the 108 c and 108 d of theedge portions boot 72 are adapted to extend adjacent are analogous to the side surfaces 104 a and 104 b of theinlet segment 34. Moreover, theedge portion 106 b of theboot 72 is adapted to extend adjacent a concave interior surface of theoutlet segment 36 when the 108 c and 108 d extend adjacent the surfaces of theedge portions outlet segment 36. The concave interior surface of theoutlet segment 36 with which theedge portion 106 b of theboot 72 is adapted to extend adjacent is analogous to the concaveinterior surface 90 of theinlet segment 34. In this manner, theboot 72 is adapted to interlock with a projection of theoutlet segment 36 that is analogous to theprojection 102 of theinlet segment 34. - Turning to
FIGS. 12-16 , in operation, theplug valve 10 is actuable between the open configuration (shown inFIGS. 12-14 ) and the closed configuration (shown inFIGS. 15 and 16 ). Turning toFIGS. 12 and 13 , in the open configuration, thefluid passage 32 of theplug 26 is aligned with the inlet and 40 and 44 of theoutlet openings insert 28 and the inlet and 78 and 80 of theoutlet passages valve body 12 so that fluid flow is permitted through theplug valve 10, as indicated by arrow(s) 112. Theinlet seal 42 engages thevalve body 12 around theinlet passage 78 to thereby prevent migration of the fluid 112 into an annular region between theinsert 28 and thevalve body 12 as the fluid 112 enters thefluid passage 32 via theinlet passage 78 and theinlet opening 40. To prevent migration of the fluid 112 into an annular region between theinsert 28 and theplug 26, theconcave sealing surface 94 of theinlet segment 34 seals against theexterior surface 30 of theplug 26 around thefluid passage 32. In addition, theoutlet seal 46 engages thevalve body 12 around theoutlet passage 80 to thereby prevent migration of the fluid 112 into the annular region between theinsert 28 and thevalve body 12 as the fluid 112 exits thefluid passage 32 via theoutlet opening 44 and theoutlet passage 80. To prevent migration of the fluid 112 into the annular region between theinsert 28 and theplug 26, the concave sealing surface of the outlet segment 36 (which is analogous to theconcave sealing surface 94 of the inlet segment 34) seals against theexterior surface 30 of theplug 26 around thefluid passage 32. The sealing of the inlet and 34 and 36 against theoutlet segments plug 26 is aided by the lubricating fluid (not shown) provided at the interface between theplug 26 and the inlet and 34 and 36 via, for example, the lubrication fitting(s) 24 (outlet segments FIG. 1A ). - Turning to
FIG. 14 , it can be seen that theprojection 102 of theinlet segment 34 and the projection of the outlet segment 36 (which is analogous to theprojection 102 of the inlet segment 34) each interlock with theboot 72 to thereby prevent, or at least reduce, rotation of theinsert 28 relative to thevalve body 12. More particularly, the 108 a and 108 b of theedge portions boot 72 extend adjacent the side surfaces 104 a and 104 b, respectively, of theinlet segment 34, and theedge portion 106 a of theboot 72 extends adjacent the concaveinterior surface 90 of theinlet segment 34. In this manner, theboot 72 interlocks with theprojection 102 of theinlet segment 34. In addition, the 108 c and 108 d of theedge portions boot 72 extend adjacent the surfaces, respectively, of the outlet segment 36 (which are analogous to the side surfaces 104 a and 104 b of the inlet segment 34), and theedge portion 106 b of theboot 72 extends adjacent the concave interior surface of the outlet segment 36 (which is analogous to the concaveinterior surface 90 of the inlet segment 34). In this manner, theboot 72 interlocks with the projection of the outlet segment 36 (which is analogous to theprojection 102 of the inlet segment 34) to prevent, or at least reduce, rotation of theinsert 28 relative to thevalve body 12. As a result, the substantial alignment between the inlet and 40 and 44 of theoutlet openings insert 28 and the inlet and 78 and 80, respectively, of theoutlet passages valve body 12 is maintained during the actuation of theplug valve 10 between the open and closed configurations. - Turning to
FIGS. 15 and 16 , in the closed configuration, theplug 26 is rotated to prevent, or at least reduce, communication of the fluid 112 from theinlet passage 78 to theoutlet passage 80 of thevalve body 12. To actuate theplug 26 from the open configuration to the closed configuration, theactuator 14 rotates the plug 26 (via thedrive gear 50 and the adapter 52) so that thefluid passage 32 of theplug 26 is no longer aligned with the inlet and 40 and 44 of theoutlet openings insert 28 or the inlet and 78 and 80 of theoutlet passages valve body 12. Instead, theexterior surface 30 of theplug 26 is substantially aligned with the inlet and 40 and 44 of theoutlet openings insert 28 and the inlet and 78 and 80 of theoutlet passages valve body 12 to thereby block communication of the fluid 112 from theinlet passage 78 to theoutlet passage 80 of thevalve body 12. The fluid 112 within theinlet passage 78 and theinlet opening 40 is prevented from migrating into the annular region between theinsert 28 and thevalve body 12 by the sealing engagement of theinlet seal 42 against thevalve body 12 around theinlet passage 78. More particularly, to prevent migration of the fluid 112 into the annular region between theinsert 28 and theplug 26, theconcave sealing surface 94 of theinlet segment 34 seals against theexterior surface 30 of theplug 26. The lubricating fluid (not shown) provided at the interface between theplug 26 and the inlet segment 34 (via, for example, the lubrication fitting(s) 24 (FIG. 1A )) aids with the sealing engagement of theinlet segment 34 against theplug 26. The tensioning of the 38 a and 38 b between the inlet andside segments 34 and 36 prevents the fluid 112 in theoutlet segments inlet passage 78 from unsealing theconcave sealing surface 94 of theinlet segment 34 from theexterior surface 30 of theplug 26. - The manner in which the
concave sealing surface 94 stands in relief against the concaveinterior surface 90 of theinlet segment 34 reduces the contact area between theinsert 28 and theplug 26. Similarly, the manner in which theoutlet segment 36's concave sealing surface (which is analogous to theconcave sealing surface 94 of the inlet segment 34) stands in relief against the concave interior surface (which is analogous to the concaveinterior surface 90 of the inlet segment 34) reduces the contact area between theinsert 28 and theplug 26. In addition, the spacing apart of the 38 a and 38 b from theside segments plug 26 when the 38 a and 38 b are tensioned between the inlet andside segments 34 and 36 reduces the contact area between theoutlet segments insert 28 and theplug 26. - In some embodiments, reducing the contact area between the
insert 28 and theplug 26 increases the contact pressure between theinsert 28 and theplug 26. In some embodiments, reducing the contact area between theinsert 28 and theplug 26 decreases the amount of force required to maintain the contact pressure between theinsert 28 and theplug 26 above the minimum threshold required to establish a suitable seal with theplug 26. In some embodiments, reducing the contact area between theinsert 28 and theplug 26 enables the 38 a and 38 b (or another suitable structure or mechanism) to maintain the contact pressure between theside segments insert 28 and theplug 26 above the minimum threshold required to establish a suitable seal with theplug 26. - In some embodiments, reducing the contact area between the
insert 28 and theplug 26 decreases the amount of friction between theplug 26 and theinsert 28. In some embodiments, reducing the contact area between theinsert 28 and theplug 26 mitigates any shifting, turning, or rotation of theinsert 28 relative to thevalve body 12. In some embodiments, reducing the contact area between theinsert 28 and theplug 26 prevents, or at least reduces, misalignment between the inlet and 40 and 44 of theoutlet openings insert 28 and the inlet and 78 and 80 of theoutlet passages valve body 12. In some embodiments, reducing the contact area between theinsert 28 and theplug 26 prevents, or at least reduces, wear, erosion, or complete wash-out of theplug 26, theinsert 28, and/or thevalve body 12. - In some embodiments, the reduced contact area between the
insert 28 and theplug 26 makes possible the manufacture of an effective and reliable “large bore”plug valve 10 in which thefluid passage 32 of theplug 26 has an inner diameter of: about 5⅛ inches, greater than about 5⅛ inches, ranging from about 5⅛ inches to about 7 1/16 inches, about 7 1/16 inches, or greater than about 7 1/16 inches. In some embodiments, the reduced contact area between theinsert 28 and theplug 26 permits relaxed tolerances during the manufacture of theinsert 28 while maintaining theinsert 28's capability to matingly engage theplug 26 so that an effective seal is maintained therebetween. - In some embodiments, the engagement of the
boot 72 with theinlet segment 34'sprojection 102 and/or theoutlet segment 36's projection (which is analogous to the projection 102) mitigates any shifting, turning, or rotation of theinsert 28 relative to thevalve body 12. In some embodiments, the engagement of theboot 72 with theinlet segment 34'sprojection 102 and/or theoutlet segment 36's projection (which is analogous to the projection 102) prevents, or at least reduces, misalignment between the inlet and 40 and 44 of theoutlet openings insert 28 and the inlet and 78 and 80 of theoutlet passages valve body 12. In some embodiments, the engagement of theboot 72 with theinlet segment 34'sprojection 102 and/or theoutlet segment 36's projection (which is analogous to the projection 102) prevents, or at least reduces, wear, erosion, or complete wash-out of theplug 26, theinsert 28, and/or thevalve body 12. - In some embodiments, the engagement of the
boot 72 with theinlet segment 34'sprojection 102 and/or theoutlet segment 36's projection (which is analogous to the projection 102) makes possible the manufacture of an effective and reliable “large bore”plug valve 10 in which thefluid passage 32 of theplug 26 has an inner diameter of: about 5⅛ inches, greater than about 5⅛ inches, ranging from about 5⅛ inches to about 7 1/16 inches, about 7 1/16 inches, or greater than about 7 1/16 inches. - Turning to
FIG. 17 , with continuing reference toFIGS. 1-16 , a hydraulic fracturing system, generally referred to by thereference numeral 114, is illustrated. Thehydraulic fracturing system 114 includes aflow iron section 116 positioned between ahydraulic fracturing pump 118 and awellhead 120. Theflow iron section 116 includes one or more of: apressurization manifold 122 connected to thehydraulic fracturing pump 118, ahydraulic fracturing tree 124 connected to thewellhead 120, and adistribution manifold 126 connected between thepressurization manifold 122 and thehydraulic fracturing tree 124. Thepressurization manifold 122 includes alow pressure section 128 connected between afluid source 130 and thehydraulic fracturing pump 118, and ahigh pressure section 132 connected between thehydraulic fracturing pump 118 and thedistribution manifold 126. In addition to, or instead of, thehydraulic fracturing pump 118, thehydraulic fracturing system 114 may include other hydraulic fracturing pump(s) (not shown) to facilitate pressurization of the hydraulic fracturing fluid from thelow pressure section 128 and communication of the pressurized hydraulic fracturing fluid to thehigh pressure section 132. Thewellhead 120 is located at the top or head of an oil and gas wellbore (not shown), which penetrates one or more subterranean formations (not shown). In addition to, or instead of the, wellhead to which the fracturing tree is connected, thehydraulic fracturing system 114 may also include one or more wellheads (not shown) to which fracturing trees (not shown) are connected; thedistribution manifold 126 facilitates communication of the pressurized hydraulic fracturing fluid to such wellhead(s) via the corresponding fracturing tree(s). - In operation, the hydraulic fracturing fluid is communicated from the
hydraulic fracturing pump 118 to thewellhead 120 via at least theflow iron section 116 to thereby facilitate hydraulic fracturing of the subterranean formation(s). More particularly, the hydraulic fracturing fluid is communicated from thefluid source 130 to thelow pressure section 128 of thepressurization manifold 122. Thehydraulic fracturing pump 118 receives the hydraulic fracturing fluid from thelow pressure section 128, pressurizes the hydraulic fracturing fluid, and communicates the pressurized hydraulic fracturing fluid to thehigh pressure section 132. Thehigh pressure section 132 communicates the pressurized hydraulic fracturing fluid from thehydraulic fracturing pump 118 to thedistribution manifold 126. Thedistribution manifold 126 communicates the pressurized hydraulic fracturing fluid from thehigh pressure section 132 of thepressurization manifold 122 to thehydraulic fracturing tree 124 connected to thewellhead 120. - Turning to
FIG. 18 , with continuing reference toFIG. 17 , it can be seen that theflange 86 of thevalve body 12 is connected to the flow-line component 134, and theflange 88 of thevalve body 12 is connected to the flow-line component 136. The flow-line component 134 is connected to, or part of, theflow iron section 116, including one or more of thepressurization manifold 122 connected to thehydraulic fracturing pump 118, thehydraulic fracturing tree 124 connected to thewellhead 120, and thedistribution manifold 126 connected between thepressurization manifold 122 and thehydraulic fracturing tree 124. Likewise, the flow-line component 134 is connected to, or part of, theflow iron section 116, including one or more of thepressurization manifold 122, thehydraulic fracturing tree 124, and thedistribution manifold 126. The connection of thevalve body 12 between the flow- 134 and 136 incorporates theline components plug valve 10 into thehydraulic fracturing system 114 so that, during the operation of thehydraulic fracturing system 114 to facilitate hydraulic fracturing of the subterranean formation(s), theplug 26 is rotatable within thevalve body 12 to selectively permit communication of the hydraulic fracturing fluid from thehydraulic fracturing pump 118 to thewellhead 120 via at least theflow iron section 116 and thefluid passage 32 of theplug 26. - The flow-
134 and 136 to which theline components plug valve 10 is connected are illustrated inFIG. 18 as a pair of spools; however, the flow- 134 and 136 may each be, include, or be part of, a variety of flow-line components including, but not limited to, a valve, a spool, a flow block, a swivel block, another flow-line component, or any combination thereof. In addition, depending upon the particular characteristics of theline components flow iron section 116 to which theplug valve 10 is connected, the flow- 134 and 136 and theline components plug valve 10 may be oriented differently than the orientation illustrated inFIG. 18 (i.e., horizontally, vertically, diagonally, etc.). - It is understood that variations may be made in the foregoing without departing from the scope of the present disclosure.
- In some embodiments, the elements and teachings of the various embodiments may be combined in whole or in part in some or all of the embodiments. In addition, one or more of the elements and teachings of the various embodiments may be omitted, at least in part, and/or combined, at least in part, with one or more of the other elements and teachings of the various embodiments.
- In some embodiments, while different steps, processes, and procedures are described as appearing as distinct acts, one or more of the steps, one or more of the processes, and/or one or more of the procedures may also be performed in different orders, simultaneously and/or sequentially. In some embodiments, the steps, processes and/or procedures may be merged into one or more steps, processes and/or procedures.
- In some embodiments, one or more of the operational steps in each embodiment may be omitted. Moreover, in some instances, some features of the present disclosure may be employed without a corresponding use of the other features. Moreover, one or more of the above-described embodiments and/or variations may be combined in whole or in part with any one or more of the other above-described embodiments and/or variations.
- In the foregoing description of certain embodiments, specific terminology has been resorted to for the sake of clarity. However, the disclosure is not intended to be limited to the specific terms so selected, and it is to be understood that each specific term includes other technical equivalents which operate in a similar manner to accomplish a similar technical purpose. Terms such as “left” and right”, “front” and “rear”, “above” and “below” and the like are used as words of convenience to provide reference points and are not to be construed as limiting terms.
- In this specification, the word “comprising” is to be understood in its “open” sense, that is, in the sense of “including”, and thus not limited to its “closed” sense, that is the sense of “consisting only of”. A corresponding meaning is to be attributed to the corresponding words “comprise”, “comprised” and “comprises” where they appear.
- Although some embodiments have been described in detail above, the embodiments described are illustrative only and are not limiting, and those skilled in the art will readily appreciate that many other modifications, changes and/or substitutions are possible in the embodiments without materially departing from the novel teachings and advantages of the present disclosure. Accordingly, all such modifications, changes, and/or substitutions are intended to be included within the scope of this disclosure as defined in the following claims. In the claims, any means-plus-function clauses are intended to cover the structures described herein as performing the recited function and not only structural equivalents, but also equivalent structures. Moreover, it is the express intention of the applicant not to invoke 35 U.S.C. §112, paragraph 6 for any limitations of any of the claims herein, except for those in which the claim expressly uses the word “means” together with an associated function.
Claims (20)
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| US16/864,448 US11530591B2 (en) | 2016-06-23 | 2020-05-01 | Large bore plug valve |
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| US17/061,209 Active US11421504B2 (en) | 2016-06-23 | 2020-10-01 | Hydraulic fracturing system, apparatus, and method |
| US17/217,690 Active US11448032B2 (en) | 2016-06-23 | 2021-03-30 | Adjustable fracturing system |
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Also Published As
| Publication number | Publication date |
|---|---|
| US10968717B2 (en) | 2021-04-06 |
| US10526862B2 (en) | 2020-01-07 |
| US11421504B2 (en) | 2022-08-23 |
| WO2017223463A1 (en) | 2017-12-28 |
| US20200115986A1 (en) | 2020-04-16 |
| CN112879587B (en) | 2023-06-02 |
| CN109312869B (en) | 2021-02-19 |
| US11149514B2 (en) | 2021-10-19 |
| WO2017223453A1 (en) | 2017-12-28 |
| US11448032B2 (en) | 2022-09-20 |
| US20190234171A1 (en) | 2019-08-01 |
| US20170370172A1 (en) | 2017-12-28 |
| US20210215014A1 (en) | 2021-07-15 |
| US11530591B2 (en) | 2022-12-20 |
| CA2971730A1 (en) | 2017-12-23 |
| US20210017830A1 (en) | 2021-01-21 |
| US20170370199A1 (en) | 2017-12-28 |
| CN109415935A (en) | 2019-03-01 |
| CA2971730C (en) | 2024-04-16 |
| CN112879587A (en) | 2021-06-01 |
| US20200256149A1 (en) | 2020-08-13 |
| CA3027993A1 (en) | 2017-12-28 |
| CA3027900C (en) | 2024-06-25 |
| CN109312869A (en) | 2019-02-05 |
| US10808488B2 (en) | 2020-10-20 |
| CA3027900A1 (en) | 2017-12-28 |
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