Modified gas assisted plunger lift
The method and system with a piloted valve in a side pocket mandrel address operational challenges in plunger lift systems by ensuring adjustable gas injection and contingency measures, enhancing production efficiency and overcoming non-responsive valve issues.
Patent Information
- Application Number
- PCT/GB2025/051178
- Authority / Receiving Office
- WO · WO
- Patent Type
- Applications
- Current Assignee / Owner
- Priority Date
- 2024-05-30
- Filing Date
- 2025-05-30
- Publication Date
- 2025-12-04
AI Technical Summary
Plunger lift systems do not consider conditions affecting production rates of associated wells, and existing gas lift systems face operational challenges due to non-responsive valves and fluid accumulation hindering insert installation.
A method and system that includes a piloted valve installed in a side pocket mandrel, with controlled gas lift operations, allowing for adjustable flow characteristics and contingency measures to ensure efficient gas injection and plunger lift operations, using a surface-controlled gas lift valve and a piloted valve with different flow characteristics.
Enhances production efficiency by enabling adjustable gas injection rates and contingency operations, overcoming non-responsive valve issues and fluid accumulation, thereby optimizing wellbore operations.
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Figure GB2025051178_04122025_PF_FP_ABST
Abstract
Description
Attorney Docket No.: 0000780.700048 (STL048 / PCT PCT PATENT APPLICATION MODIFIED GAS ASSISTED PLUNGER LIFTInventor: Joel David ShawCROSS-REFERENCE TO RELATED APPLICATIONS
[0001] This application claims priority to and the benefit of co-pending U.S. ProvisionalApplication Serial No.63 / 653,547, filed May 30, 2024, the full disclosure of which is incorporated by reference herein in its entirety and for all purposes. BACKGROUND OF THE INVENTION1. Field of Invention
[0002] The present disclosure relates to retrofitting a wellbore completion to perform gas assistedplunger lift.2. Description of Prior Art
[0003] A gas lift system is a type of artificial lift sometimes used for assisting with the productionof liquid from inside a wellbore. When the liquid being lifted is in production tubing installed in the wellbore, the lift gas is usually directed into an annulus between the production tubing and sidewalls of the well, and then routed into the production tubing through a gas lift valve. Conversely, when the liquid is in the annulus, the lift gas is injected into the tubing, and through the gas lift valve into the annulus. Gas lift is commonly employed when pressure in a formation surrounding the well is insufficient to urge fluids to surface that are inside of the production tubing. By injecting sufficient lift gas into the production tubing, static head pressure of fluid inside the production tubing is reduced to below the pressure in the formation, so that the formation pressure is sufficient to push the fluids inside the production tubing to surface. Fluids that are usually in the production tubing are hydrocarbon liquids and gases produced from the surrounding formation.
[0004] Plunger lift systems typically employ a plunger that is supported at a particular depth insidethe production tubing. Liquid hydrocarbons being produced from the well flow into the production tubing and upward around or through the plunger. A column of the liquid hydrocarbons accumulates above the plunger inside the production tubing. Periodically gas from surface is injected into the production tubing and below the plunger, which forces the plunger and the column of liquid hydrocarbons to a wellhead assembly on surface. From inside the wellhead assembly the liquid hydrocarbons flow into a production line, which directs the liquid hydrocarbons away from the wellsite for collection and / or processing. Shortcomings of the plunger lift systems is that their operations do not consider conditions affecting production rates of the associated wells.SUMMARY OF THE INVENTION
[0005] Disclosed is a method of wellbore operations that includes injecting lift gas into thewellbore through a piloted valve in a side pocket mandrel of production tubing installed in the wellbore and controlling operation of the piloted valve from surface. Controlling operation of the piloted valve optionally includes actuating a surface controlled gas lift valve that is in selective fluid communication with the piloted valve. In embodiments the method further includes conducting gas lift operations in the wellbore by actuating a surface controlled gas lift valve for a period of time prior to injecting the lift gas through the piloted valve, and installing the piloted valve in the side pocket mandrel. In alternatives the lift gas injected through the piloted valve mixes with fluid inside the production tubing to form a mixture that flows upward inside the production tubing to surface, and optionally the lift gas injected through the piloted valve is used for conducting gas assisted plunger lift operations in the wellbore. In one embodiment, a blind insert is installed in the side pocket mandrel while the gas lift operations are conducted in the wellbore by actuating the surface controlled gas lift valve.
[0006] Another method of wellbore operations is disclosed that includes for a period of time,injecting lift gas into the wellbore through a surface controlled gas lift valve that has an outlet port in communication with a side pocket mandrel in a string of production tubing in the wellbore, after the period of time, installing a piloted valve in the side pocket mandrel and in fluid communication with the surface controlled gas lift valve, and injecting lift gas into the wellbore through the piloted valve by activating the surface controlled gas lift valve. In alternatives, the lift gas injected through the piloted valve mixes with fluid inside the production tubing to form a mixture that flows upward inside the production tubing to surface, and optionally the lift gas injected through the piloted valve is used for conducting gas assisted plunger lift operations in the wellbore. The method further optionally includes removing an insert from the side pocket mandrel prior to installing the piloted valve. In an example, flow characteristics of the piloted valve are different from flow characteristics of the surface controlled gas lift valve. In an embodiment, the flow characteristics of the piloted valve are based on monitoring conditions in the wellbore. A cycle time of the piloted valve optionally differs from a cycle time of the surface controlled gas lift valve based on monitoring conditions in the wellbore. The method includes an alternative in which an open time of the piloted valve differs from an open time of the surface controlled gas lift valve based on monitoring conditions in the wellbore.
[0007] A system for use in wellbore operations is disclosed that includes a pilot operated valve(“POV”), where the POV includes a valve actuator, a POV inlet port in communication with an annulus circumscribing a production string in the wellbore, and a POV outlet port in communication with a bore in the production string. The system further includes a surface controlled gas lift valve (“SCGLV”) having a SCGLV inlet in communication with the annulus and a SCGLV outlet in communication with the actuator, the SCGLV having an open configuration in which the SCGLV inlet and outlet are in fluid communication and a closed configuration in which a flow barrier is between the SCGLV inlet and outlet, the SCGLV changeable into the open configuration when activated. The POV is optionally installed in a side pocket mandrel of the production string, and in an alternative, the SCGLV is coupled to the production string and a nipple connects the SCGLV outlet to the POV actuator. In one example the POV includes an elongated body, a chamber inside the body and a valve member selectively moveable in and out of a flow path between the POV inlet and outlet ports, and optionally the valve member is moveable out of the flow path when the SCGLV is activated.BRIEF DESCRIPTION OF DRAWINGS
[0008] Some of the features and benefits of the present invention having been stated, others willbecome apparent as the description proceeds when taken in conjunction with the accompanying drawings, in which:
[0009] FIG. 1A is a side partial sectional view of an example of a well having a surface controlledgas lift valve.
[0010] FIG. 1B is a side partial sectional view of an example of conducting a contingencyoperation on the surface controlled gas lift valve of FIG.1A.
[0011] FIG. 2 is a side sectional view of an example of the surface controlled gas lift valve of FIG.1A in a side pocket mandrel and injecting lift gas into production tubing.
[0012] FIG. 3 is a side sectional view of an example of the surface controlled gas lift valve of FIG.2 out of service.
[0013] FIG. 4A is a side sectional view of an example of a contingency insert for use when thesurface controlled gas lift valve of FIG.2 is out of service.
[0014] FIGS. 4B-4D are side sectional views of an example of installing the contingency insert ofFIG. 4A into the side pocket mandrel of FIG. 2.
[0015] FIG. 4E is a side sectional view of an example of operation of the contingency insert ofFIG.4A.
[0016] FIG. 5A is an elevational sectional view of the surface controlled gas lift valve installed inan alternate embodiment of a side pocket mandrel.
[0017] FIG. 5B is an axial sectional view of the side pocket mandrel of FIG. 5A and taken alonglines 5B-5B.
[0018] FIG. 5C is an elevational sectional view of a portion of the side pocket mandrel of FIG. 5Band taken along lines 5C-5C.
[0019] FIGS. 5D-5G are side sectional views of example embodiments of inserts for use in theside pocket mandrel of FIG.5A.
[0020] FIG. 6A is an elevational sectional view of a piloted valve installed in the side pocketmandrel of FIG. 5A.
[0021] FIG. 6B is an axial sectional view of the side pocket mandrel of FIG. 6A and taken alonglines 6B-6B.
[0022] FIG. 6C is an elevational sectional view of a portion of the side pocket mandrel of FIG. 6Band taken along lines 6C-6C.
[0023] FIGS. 6D and 6E are side sectional views of the piloted valve of FIG. 6A respectively inan closed and open configurations. FIG. 7 is a side partial sectional view of an example of a well system undergoing a GAPL operation.
[0024] While subject matter is described in connection with embodiments disclosed herein, it willbe understood that the scope of the present disclosure is not limited to any particular embodiment. On the contrary, it is intended to cover all alternatives, modifications, and equivalents thereof.DETAILED DESCRIPTION OF INVENTION
[0025] The method and system of the present disclosure will now be described more fullyhereinafter with reference to the accompanying drawings in which embodiments are shown. The method and system of the present disclosure may be in many different forms and should not be construed as limited to the illustrated embodiments set forth herein; rather, these embodiments are provided so that this disclosure will be thorough and complete, and will fully convey its scope to those skilled in the art. Like numbers refer to like elements throughout. In an embodiment, usageof the term “about” includes + / - 5% of a cited magnitude. In an embodiment, the term“substantially” includes + / - 5% of a cited magnitude, comparison, or description. In anembodiment, usage of the term “generally” includes + / - 10% of a cited magnitude.
[0026] It is to be further understood that the scope of the present disclosure is not limited to theexact details of construction, operation, exact materials, or embodiments shown and described, asmodifications and equivalents will be apparent to one skilled in the art. In the drawings andspecification, there have been disclosed illustrative embodiments and, although specific terms are employed, they are used in a generic and descriptive sense only and not for the purpose of limitation.
[0027] Shown in a side sectional view in FIG. 1 is an example of a well system 10, which includesa string of production tubing 12 installed within a wellbore 14 that intersects a subterranean formation 16. The wellbore 14 is lined with casing 18 that has a number of perforations 20 shownprojecting radially outward from the wellbore 14 into the surrounding formation 16. In thisexample, the perforations 20 provide a pathway for fluid F to flow into the wellbore 14 from theformation 16. In the example shown the fluid F is made up primarily of liquid with some smallbubbles of gas G mixed within. A packer 22 circumscribes a downhole end of tubing 12 to blockthe fluid F from flowing into an annulus 24 between the tubing 12 and casing 18, and instead directs the fluid F to a bore 25 in the production tubing 12.
[0028] The well system 10 includes a lift gas system 26 for assisting the flow of the fluid F upholewithin the bore 25 of production tubing 12. An example of a lift gas source 28 is shown on thesurface, embodiments of which include an adjacent well, a pipeline, or a vessel. Lift gas source28 provides lift gas 30, which is shown being injected into the annulus 24 through an injection line32. Lift gas 30 inside injection line 32 is at a designated pressure so that the lift gas 30 is forceddownhole within annulus 24 to a surface controlled gas lift valve (“SCGLV”) 34 shown mounted on an outer surface of the production tubing 12. SCGLV 34 is intermittently opened to allow thelift gas 30 into the bore 25 of production tubing 12, once in the bore 25, bubbles 35 of lift gas 30are formed inside the fluid F. The lower density bubbles 35 reduce the density of the fluid F toassist the flow of fluid F uphole inside bore 25 and to a wellhead assembly 36 shown mountedover the wellbore 14 and connected to an end of production tubing 12. Inside wellhead assembly36, the fluid F is directed to a production line 38 shown attached to a lateral side of wellheadassembly 36. Inside production line 38, fluid F is carried to a location that is offsite fortransportation or to a processing facility (not shown). In the example of FIG. 1A, a controller 40is schematically illustrated outside of wellbore 14 and in signal communication with the SCGLV34 via communication means 41. Examples of communication means 41 include electricallyconducting wire, fiber optics, hydraulics, and wireless, such as telemetry. Further optionallyincluded are sensors 44 that are in temperature and pressure communication with annulus 24 and / orbore 25, and which transmit downhole conditions to controller 40 via communication means 41. In alternatives, the SCGLV 34 is actuated in response to signals delivered to SCGLV 34 from controller 40 or manually from operations personnel. Examples of actuation include the SCGLV34 being fully open to allow lift gas 30 injection into the bore 25, fully closed to block lift gas 30injection into the bore 25, or partially opened to allow a less than full flow of lift gas 30 into the bore 25.
[0029] Shown in a side sectional view in FIG. 2 is an example of the production tubing 12 withthe SCGLV 34 connected to a side pocket mandrel 46 of the production tubing 12; which is anenlarged diameter portion of tubing 12. Axial ends of the side pocket mandrel 46 extend obliquelyfrom an outer surface of tubing 12 and are angled towards one another. In the example shown,SCGLV 34 connects to a downhole end of the side pocket mandrel 46. Inside the side pocketmandrel 46 is a skirt 48 shown extending along a path that is generally parallel with an axis A12 ofproduction tubing 12, a downhole end of skirt 48 attaches to the downhole end of side pocket mandrel 46, and an uphole end of skirt 48 is proximate a mid-portion of side pocket mandrel 46. Lateral edges of skirt 48 attach to inner sidewalls of side pocket mandrel 46 at angularly spacedapart locations. A cylinder 50 is defined between skirt 48 and inner sidewalls of the side pocketmandrel 46. An inlet port 52 is formed through the downhole end of side pocket mandrel 46, anipple 53 connects port 52 to an outlet of SCGLV 34, which provides communication betweenSCGLV 34 and cylinder 50. A side port 54 is formed radially through the skirt 48, and whichprovides a pathway of lift gas 30 within the cylinder 50 to flow into the bore 25.
[0030] In the side pocket mandrel 46 of FIG. 2, a contingency port 56 is formed radially throughan outer side wall of side pocket mandrel 46, which as described in more detail below, providesan inlet for a contingency flow of lift gas 30 when and if the SCGLV 34 is a non-operational state.An example of the SCGLV 34 being in a non-operational state is that the SCGLV 34 remains in afully open / closed or partially open / closed configuration, and is not responsive to command signals,such as from surface via communication means 41 (FIG. 1A). Another example of a non-operational state of SCGLV 34 is a blockage 57 in port 52 or nipple 53 that forms a barrier to fluidflow therethrough. In a non-limiting example of operation during which SCGLV 34 is in anoperational state, communication from annulus 24 to inside of cylinder 50 through the port 56 isblocked by an insert 58 shown installed within the cylinder 50. An example of SCGLV 34 beingin an operational state, is that the SCGLV 34 is selectively opened and closed in response tocommand signals from surface transmitted via communication means 41 (FIG. 1A) to inject liftgas 30 into bore 25. In the example of FIG. 2, insert 58 is elongated and substantially solid. O- ring seals 60, 62 are shown circumscribing the insert 58 at spaced apart locations, and which respectively form barriers to fluid flow from contingency port 56 to side port 54 and an opening of cylinder 50.
[0031] Shown in a side sectional view in FIG. 3 is an example in which the SCGLV 34 of FIG. 2is in a non-operational state, and a blind insert 64 is disposed in cylinder 50 in an example attemptto block lift gas 30 in the annulus 24 from reaching the bore 25 through the SCGLV 34 or ports54, 56 in the side pocket mandrel 46. In this example, the blind insert 64 is inserted into thecylinder 50 after the insert 58 (FIG. 2) has been removed from within cylinder 50. A problemencountered is that the presence of fluid F, which is not fully compressible, remains within cylinder50 and so that blind insert 64 is prevented from being inserted within cylinder 50 to a location such that an O-ring seal 66 circumscribing insert 64 remains adjacent side port 54, and cannot isolate inlet 54 from SCGLV 34.
[0032] Shown in a side sectional view in FIG. 4A is an example of a contingency insert 68equipped to compensate for the incompressible fluid problem illustrated in FIG. 3. Contingencyinsert 68 includes a body 70 having an uphole end 72 profiled similar to what is commonly knownas a fishing neck. Adjacent the uphole end 72 is a recess along an outer surface of body 70 and in which a spring 74 is installed, spring 74 is part of a latching mechanism for retrieving the insert68. A chamber 76 is formed within a mid-portion of body 70, chamber 76 has an outer diameterthat transitions radially inward to form an uphole-facing shoulder 78, the outer diameter transitionsradially outward a distance away from shoulder 78 to form a downhole-facing shoulder 80. Avalve member 82 is shown in chamber 76 having a downhole end that is rounded and in contactwith shoulder 78, an uphole end of valve member 82 is generally planar and shown attached to adownhole end of bellows 84. An uphole end of bellows 84 is mounted to an uphole end of chamber76. Another valve member 86 is inside chamber 76 shown abutting shoulder 80. Valve member 86 is shown as a generally spherical member and biased against shoulder 80 by a spring 88, an endof spring 88 opposite valve member 86 abuts an end wall 90, which defines a downhole end ofchamber 76. In the example shown, chamber 76 is isolated from the surrounding environment bythe bellows 84. An inlet port 92 is formed radially into the body 70, which extends into chamber 76 and adjacent a lateral surface of valve member 82. An exit port 94 extends radially into body70 and intersects chamber 76 at a location adjacent valve member 86. The combination of thevalve members 82, 86, ports 92, 94, chamber 76, and bellows 84 is configured to operatesubstantially the same as an injection pressure operated (“IPO”) valve. An example of an IPO valve is found in Shaw, U.S. Patent No.11,441,401, which is assigned to the assignee of the presentapplication and incorporated by reference herein in its entirety and for all purposes. A receptacle96 is shown formed into an end of body 70 opposite from uphole end 72, in the example shownreceptacle 96 is a generally cylindrical void having an uphole end that is spaced away locationdownhole of end wall 90. A bleed plug 98 is shown having a shaft 100 that inserts into the receptacle 96. Bleed plug 98 includes a nose portion 102 shown with an outer diameter exceedingshaft 100, nose portion 102 attaches to an end of shaft 100 outside of receptacle 96. A passage104 extends axially through the bleed plug 98 and along a path substantially parallel with axis A68of insert 68. Inside shaft 100 are ducts 106 that project radially outward from passage 104, in theexample of FIG. 4A ducts 106 are registered with bleed ports 107 that extend radially from thereceptacle 96 to an outer surface of body 70. An O-ring 108 circumscribes an outer surface of the nose portion 102, and O-rings 110, 112 circumscribe shaft 100 on opposing sides of the ducts 106.O-rings 114 are also shown circumscribing body 70 at an axial location between shoulders 78, 80.
[0033] Shown in FIGS. 4B and 4C is insertion of the contingency insert 68 into the cylinder 50and how the fluid within cylinder 50 is vented through the bleed plug 98, which allows for insertionof the contingency insert 68 to a designated location within the cylinder 50. More specifically, inFIG. 4B the nose plug 98 is shown having been inserted to a bottom portion of cylinder 50, andthe fluid pooled in the bottom portion of cylinder 50 being ported into the passage 104 and exitinginto the bleed port 107 via the ducts 106, and where it escapes from the cylinder 50 through theside port 54. Referring back to FIG. 4A, shown is a shear pin 116 that extends radially throughshaft 100 and body 70, and which retains shaft 100 in a fixed location and so that ducts 106 andport 107 remain in registration with one another. A retaining pin 118 projects radially through theside wall of body 70 and into a recess 120 that extends axially along an outer surface of shaft 100.The retaining pin 118 limits axial reciprocating motion of shaft 100 within the receptacle 96.
[0034] Referring now to FIG. 4C, further axial urging of the insert 68 into the cylinder 50 fracturesshear pin 116 allowing relative movement between the bleed plug 98 and body 70, which movesthe port 106 and duct 107 out of registration with one another. As illustrated in FIG.4D, continued axial urging of the insert 68 into the cylinder 50 urges bleed plug 98 deeper into receptacle 96 andfurther compressing a spring 122 shown within receptacle 96 and abutting an end of shaft 100opposite the nose portion 102. The combination of the O-ring seals 108, 114, 110 and 112 and the non-registration of ports and ducts 106, 107 block fluid communication between port 52 and bore25. Though a path P for lift gas 30 within annulus 24 to be selectively injected into bore 25 isshown in FIG. 4E. In the example of FIG. 4E, the contingency insert 68 operates as an IPO valve,and the lift gas 30 within annulus 24 enters port 56 due to a pressure differential between annulus 24 and bore 25. The path P extends through port 56, across the interfaces between valve elements82, 86 and shoulders 78, 80, between body 70 and skirt 48, and through port 54 into bore 25. Inan alternate embodiment, contingency insert operates as a production pressure valve and responsive to pressure inside the bore 25.
[0035] Shown in FIGS. 5A through 5C is an alternate example of a side pocket mandrel 42Aformed on a portion of production tubing 12A. In this example, the inlet port 52A, which is in communication with the SCGLV 34A, is formed through a side wall of the side pocket mandrel 42A and spaced away from its downhole end. Further, the skirt 48A is also spaced away from the downhole end of the side pocket mandrel 42A, and so that fluid cannot collect to hinder full insertion of an insert into cylinder 50A as discussed above in FIG.3. Shown in an axial sectionalview in FIG. 5B, and taken along the lines 5B-5B of FIG. 5A, is that the side pocket mandrel 42Aincludes a lead port 124A (which similar to the inlet port 52 of FIG. 2) that provides an inlet forlift gas from the SCGLV 34A to make its way into the bore 25A of production tubing 12A. Leadport 124A extends generally axially within a manifold 126A formed in the side pocket mandrel42A. And shown in FIG. 5C, which is taken along lines 5C-5C of FIG. 5B, is that inlet port 52Aprovides communication from lead port 124A and into cylinder 50A, where lift gas iscommunicated through side port 54A into the bore 25A of production tubing 12A (FIG. 5B).
[0036] In FIGS. 5D – 5G are alternate examples of inserts for installation in cylinder 50A of FIGS.5A-5C. In the example of FIG. 5D an outer sleeve 128D is provided on a downhole end of theinsert 58D, which in alternatives is formed from a material that will not degrade, or degrade to alesser degree when particles or other abrasive material is suspended within the lift gas. In FIG. 5Eis another embodiment of an insert 58E which is dimensioned to fit within cylinder 50A and havingstrategically located O-ring seals on its outer surface to provide selective isolation to prevent anyleakage or flow that may occur through a SCGLV 34A being in a non-operational state. Shownin a side sectional view in FIG. 5F is an alternate embodiment of an insert 58F shown having valvemembers 82F, 86F, shoulders 78F, 80F, chamber 76F, inlet port 92F, exit port 94F, and to provideoperation similar to the IPO valve discussed above with regard to FIG. 4B and FIG. 4E. In anotheralternative, shown in a side sectional view in FIG. 5G, is an example of an insert 58G whichincludes a side port 130G formed in its body 70G that intersects chamber 76G within body 70G,within chamber 76G is a valve element 86G that in this example is largely spherical, and a spring88G is provided to bias valve element 86G into abutting contact with shoulders 78G. The valveelement 86G and spring 88G in combination with ports 92G, 94G operate similar to a check valveto allow for lift gas flow through the insert 58G.
[0037] Referring now to FIG. 1B, shown is an example of operation in which the SCGLV 34 is ina non-operational state, and unable to inject lift gas 30 from the annulus 24 into the production tubing 12. In an embodiment, the non-operational state of the SCGLV 34 is detected by monitoringoutput signals from the sensors 44 or other sensors (not shown), or diagnostic software withincontroller 40. To remediate the non-operational state of the SCGLV 34, insert 58 (FIG. 2) isreplaced with a contingency insert, such as contingency insert 68 of FIG. 4A. In this example, akickover tool 132 is shown deployed within the production tubing 12 and suspended on a line 134.An optional lubricator 136 is mounted on an upper end of wellhead assembly 36, which providespressure control for the line 134. Examples of the line 134 include wireline, slickline, coiledtubing, braided wire, and any other means for deploying a device within a well. A deploymentmeans 138 is schematically shown attached to an end of line opposite kickover tool 132; examples of deployment means 138 include an injector, such as when dealing with coiled tubing, or a winch of when dealing with wireline or slickline. Further in the example, the kickover tool 132 is shown deployed at a depth adjacent to the side pocket mandrel 46 and for handling of the insert 58 and contingency insert 68. After installation of the contingency insert 68, lift gas 30 is selectively injected into the bore 25 by pressurizing lift gas 30 in annulus 24, which as shown in FIG. 4E, injects lift gas 30 into bore 25 and forms bubbles 35 of lift gas 30.
[0038] FIG. 6A is a side sectional view of an example of a piloted valve 210H mounted within thecylinder 50H of side pocket mandrel 46H. In this example, SCGLV 34 remains functional andused to actuate piloted valve 210H for injection of list gas 30. Optionally, piloted valve 210H hasdifferent flow characteristics than the SCGLV 34. Examples of different flow characteristicsinclude a different time required to reach full open or having a flow rate versus time after actuation, so that while under the same temperature and pressure conditions in the well 12, a different amount of lift gas is injected through the piloted valve 210H at time (t) after actuation than is injected through SCGLV 34 at time (t). In a non-limiting example, piloted valve 210H has a flow characteristic so that more mass or volume of lift gas 30 is injected through piloted valve 210Hsooner than is injected through SCGLV 34H. Injecting more lift gas 30 faster creates a greater“inrush” of lift gas 30 into bore 25H. As explained in more detail below, piloted valve 210H isactuated by operation of SCGLV 34H for injecting lift gas 30 (FIG. 1A) in the annulus 24H intothe bore 25H of tubing 12H. In examples, the lift gas 30 mixes with fluid inside bore 25H as described above in conjunction with FIG. 1A, and alternatively the lift gas 30 is to conduct gas assisted plunger lift (“GAPL”) operations, in which lift gas in annulus 24H is diverted into bore 25H of tubing 12H. A plunger and a column of liquid on top of plunger (not shown) that are withinbore 25H and uphole of side pocket mandrel 24H are lifted to surface by injecting the lift gas intothe bore 25H. In a non-limiting example, piloted valve 210H is inserted into cylinder 50H after removing insert 58 using kickover tool 132 (FIG. 1B) in a manner the same as or similar to thatdescribed above, and at a point in time after initial operation of well system 10. An example ofsuch a point in time is when pressure in the surrounding formation 16 has diminished and the feasibility of continued production from the well system 10 dictates assisted lift. Examples ofGAPL operation are found in Watson, U.S. Patent No. 11,459,862 (“Watson ‘862”) and Shaw, U.S. Patent No.11,401,788, both of which are assigned to the assignee of the present application and are incorporated by reference herein in their entireties and for all purposes.
[0039] Illustrated in a side sectional view in FIG. 6C is the side pocket mandrel 42H, and in FIGS.6D and 6E are examples of the piloted valve 210H shown respectively in closed and openconfigurations. For the purposes of reference, X-Y-Z axes are included in FIG. 6C. In FIGS. 6Dand 6E the valve 210H is shown by itself, but aligned along the Y axis with its position wheninstalled in cylinder 50H. In the example shown, valve 210H includes an elongated body 212Hhaving a bore 214H extending lengthwise along axis A210H. Inside bore 214H is a valve member216H made up of a plug 218H, a stem 220H, and piston 222H. Plug 218H is shown as a generally spherical member and mounted onto an end of stem 220H, which is elongate and generally aligned with axis A210H. Piston 222H is a disk-like member having a rectangular cross section, and shownformed on an end of stem 220H opposite from plug 218H and with its planar surfaces substantiallytransverse to axis A210H. Piston 222H is disposed in an enlarged diameter portion of bore 214H,which forms a chamber 224H in which piston 222H is axially moveable within. A spring 226H isalso in chamber 224H, and in biasing contact with a side of piston 224H opposite its attachmentto stem 220H. The biasing effect of spring 226H urges plug 218H into abutting contact with a valve seat 228H, which is formed in bore 214H where the diameter of bore 214H changes abruptlyto form an annular shoulder shown facing downhole and in the direction of piston 222H. A port230H is shown formed radially through a sidewall of body 214H, port 230H providescommunication between a portion of chamber 224H uphole of piston 222H and outside of body214H. When piloted valve 210H of FIG.6D is inside cylinder 50H of side pocket mandrel 42H,port 230H registers with inlet port 52H in the side pocket mandrel 42H, and port 230H is incommunication with both the lead port 124H and an outlet of SCGLV 34H (FIG. 6A). Another port 232H extends radially through the sidewall of body 212H on a side of plug 218H opposite valve seat 228H, port 232H registers with contingency port 56H, and is in communication with annulus 24H via port 56H. In the example of FIG. 6D, piloted valve 210H is in a closed configuration, which blocks fluid communication between annulus 24H and bore 25H.
[0040] Referring now to FIG. 6E, plug 218H is spaced axially away from valve seat 228H so thatthe portion of bore 214H upstream of valve seat 228H is in communication with port 232H. Activating SCGLV 34H (FIG.6A), such as from surface as described above, opens SCGLV 34H,which as described below, actuates piloted valve 210H to put piloted valve 210H into an openconfiguration so that lift gas 30 flows from the annulus 24H into the bore 25H. Opening SCGLV34H allows lift gas 30 to flow from the annulus 24H, through the SCGLV 34H, nipple 53H, andinlet port 52H (FIG. 6C) into chamber 224H via port 230H. A pressure of the lift gas 30 inside chamber 224H generates a force on piston 222H that urges valve member 216H into compressiveengagement with spring 224H and spaces plug 218H away from valve seat 228H allowing fluidcommunication between annulus 24H and bore 25 via contingency port 56H (FIG.6C) port 232H,and bore 214H. For the purposes of discussion herein, the port 230H, valve member 216H, andspring 226H are referred to as a valve actuator 241H for the piloted valve 210H. In theconfiguration shown in FIG. 6E, piloted valve 210H is shown in an open configuration, and a flowpath exists between annulus 24H to bore 25H through piloted valve 210H. In examples, the dimensions of flow path and pressure differential between the annulus 24H and bore 25H are of appropriate quantities for a gas flow into bore 25H with adequate flow rate and conditions to lift aplunger and a column of liquid above the plunger, where the liquid has particular properties andthe column has a particular height.
[0041] Still referring to FIGS. 6D and 6E, an optional check valve assembly 234H is shown inbore 214H uphole of valve seat 228H. Check valve assembly 234H permits flow inside bore 214Hin a direction uphole (i.e., towards piston 222H from check valve assembly 234H), and preventsflow downhole within bore 214H (i.e., towards check valve assembly 234H from piston 222H).Check valve assembly 234H includes a ball 236H that is urged against an uphole facing shoulder238H by a spring 240H when piloted valve 210H is in the closed configuration and fluid is not flowing inside the bore 214H. In an embodiment, a spring constant of spring 240H is designatedso that when piloted valve 210H is in the open configuration and flow is directed uphole inside thebore 214H, spring 240H compresses when exposed to forces exerted on ball 236H generated by a differential pressure between annulus 24H and bore 25H. Without the biasing effect of the spring 240H, ball 236H is urged away from shoulder 238H in response to fluid flowing inside bore 214H.
[0042] Shown in a side partial sectional view in FIG. 7 is an example of a well system 10Aundergoing a GAPL operation, in which a plunger 242 is raised within the bore 25 of production tubing 12 by injecting lift gas 30 into bore 25 to lift a column of liquid CL to production line 38. As noted above, GAPL operations typically do not occur early in the life of a well, but at a pointin time when pressure in the surrounding formation 16 has been depleted and is no longer adequatefor raising the liquid L from within the well 14 to surface. When well system 10A was initially constructed it included side pocket mandrel 46 and SCGLV 34 attached to side pocket mandrel46, such as that shown in FIGS. 2 and 3. In this example, at the point in time when pressure in theformation 16 in no longer adequate for hydrocarbon production, operations the same or similar tothose described above in conjunction with FIG. 1B were performed to install piloted valve 210Hin the side pocket mandrel 46. A spring 244 is shown mounted inside tubing 12, which in this example supports plunger 242 as liquid L accumulates above plunger 242 to form the column ofliquid CL. In alternatives, spring 244 is included within tubing 12 when the well system 10A isinitially constructed, or at a later point in time. In a non-limiting example of the present GAPLoperation, plunger 242 is lowered onto spring 244 so that liquid L accumulates on the upholesurface of plunger 242 to form a column of liquid CL on the plunger 242. When a designatedamount of liquid L has accumulated above plunger 242, SCGLV 34 is actuated so that piloted valve 210H is put into an open configuration (FIG.6E) to inject lift gas 30 into the bore 25. Thelift gas 30 is injected below the plunger 242 and column of liquid CL, and the density of the liftgas 30 is sufficiently lower than that of the plunger 242 and liquid L making up the column of liquid CL to generate and exert a buoyancy force to raise the plunger 242 and column of liquid CL within the bore 25 to the wellhead assembly 36. Continued upward urging of the plunger 242forces the column of liquid CL into the production line 38 for transmission offsite. It is within thecapabilities of one skilled in the art to determine a designated amount of liquid L accumulation on a plunger, and to identify when the designated amount of liquid L has accumulated on the plunger, such as by monitoring pressure within well 14 based on signals emitted from sensors 44. After thecolumn of liquid CL is forced into production line 38, the injection of gas lift 30 into the bore 24is suspended by deactivating the SCGLV 34 to close the piloted valve 210H. Without thebuoyancy force provided by the low density lift gas 30 inside the bore 25, gravitational forcescause the plunger 242 to fall within the bore 25 and land on the spring 244. Hydrocarbon production from the well 14 continues by repeating the steps of accumulating, lifting, and falling. As noted above, an advantage of the well system 10A of FIG. 7 is that a wider range of differentlift gas injection flow rates and flow characteristics are achievable by injecting lift gas through thedisclosed piloted valve 210H rather than the SCGLV 34, and using the SCGLV 34 for actuatingthe piloted valve 210H enables creating a greater inrush of lift gas into the bore 25. . Examplesof designated flow characteristics include a cycle time of pilot valve actuation, such as, thefrequency of operation, a time between when the valve is kept in a closed configuration and a time span when the valve is kept in the open configuration. An example of when well production can be increased occurs when conditions in the well 14 have changed (such as evidenced by monitoring with the sensors 44). Based on the monitoring, adjustments to the flow rate of lift gas injection are made to increase production.
[0043] The present invention described herein, therefore, is well adapted to carry out the objectsand attain the ends and advantages mentioned, as well as others inherent therein. While a presently preferred embodiment of the invention has been given for purposes of disclosure, numerous changes exist in the details of procedures for accomplishing the desired results. Embodiments of the surface controlled flow valves include other types of flow control valves for controlling flowin a wellbore, such as inflow control valves and / or circulation valves. Alternatives exist in whicha piloted valve is installed in a side pocket mandrel of production tubing at the time a well is constructed, and lift gas is injected through the piloted valve at a time when the well beginsoperation – optionally, the piloted valve is replaced with a different piloted valve having the sameor different flow characteristics. These and other similar modifications will readily suggest themselves to those skilled in the art, and are intended to be encompassed within the spirit of the present invention disclosed herein and the scope of the appended claims.
Claims
CLAIMS What is claimed is.
1. A method of wellbore operations comprising:injecting lift gas into the wellbore through a piloted valve in a side pocket mandrel of production tubing installed in the wellbore; and controlling operation of the piloted valve from surface.
2. The method of Claim 1, wherein the step of controlling operation of the piloted valvecomprises actuating a surface controlled gas lift valve that is in selective fluid communication withthe piloted valve.
3. The method of Claim 1, further comprising conducting gas lift operations in the wellboreby actuating a surface controlled gas lift valve for a period of time prior to injecting the lift gasthrough the piloted valve, and installing the piloted valve in the side pocket mandrel.
4. The method of Claim 3, wherein the lift gas injected through the piloted valve mixes withfluid inside the production tubing to form a mixture that flows upward inside the production tubing to surface.
5. The method of Claim 3, wherein the lift gas injected through the piloted valve is used forconducting gas assisted plunger lift operations in the wellbore.
6. The method of Claim 3, wherein a blind insert is installed in the side pocket mandrel whilethe gas lift operations are conducted in the wellbore by actuating the surface controlled gas lift valve.
7. A method of wellbore operations comprising:for a period of time, injecting lift gas into the wellbore through a surface controlled gas lift valve that has an outlet port in communication with a side pocket mandrel in a string of production tubing in the wellbore; after the period of time, installing a piloted valve in the side pocket mandrel and in fluidcommunication with the surface controlled gas lift valve; andinjecting lift gas into the wellbore through the piloted valve by activating the surface controlled gas lift valve.
8. The method of Claim 7, wherein the lift gas injected through the piloted valve mixes withfluid inside the production tubing to form a mixture that flows upward inside the production tubing to surface.
9. The method of Claim 7, wherein the lift gas injected through the piloted valve is used forconducting gas assisted plunger lift operations in the wellbore.
10. The method of Claim 7, further comprising removing an insert from the side pocketmandrel prior to installing the piloted valve.
11. The method of Claim 7, wherein flow characteristics of the piloted valve are different fromflow characteristics of the surface controlled gas lift valve.
12. The method of Claim 11, wherein the flow characteristics of the piloted valve are based onmonitoring conditions in the wellbore.
13. The method of Claim 10, wherein a cycle time of the piloted valve differs from a cycletime of the surface controlled gas lift valve based on monitoring conditions in the wellbore.
14. The method of Claim 10, wherein an open time of the piloted valve differs from an opentime of the surface controlled gas lift valve based on monitoring conditions in the wellbore.
15. A system for use in wellbore operations comprising:a pilot operated valve (“POV”) comprising a valve actuator, aPOV inlet port in communication with an annulus circumscribing a productionstring in the wellbore, and aPOV outlet port in communication with a bore in the production string;a surface controlled gas lift valve (“SCGLV”) having a SCGLV inlet in communicationwith the annulus and a SCGLV outlet in communication with the actuator, the SCGLV having anopen configuration in which the SCGLV inlet and outlet are in fluid communication and a closedconfiguration in which a flow barrier is between the SCGLV inlet and outlet, the SCGLVchangeable into the open configuration when activated.
16. The system of Claim 15, wherein the POV is installed in a side pocket mandrel of theproduction string.
17. The system of Claim 15, wherein the SCGLV is coupled to the production string andwherein a nipple connects the SCGLV outlet to the POV actuator.
18. The system of Claim 15, wherein the POV comprises an elongated body, a chamber insidethe body and a valve member selectively moveable in and out of a flow path between the POVinlet and outlet ports.
19. The system of Claim 18, wherein the valve member is moveable out of the flow path whenthe SCGLV is activated.
Citation Information
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