WO2022015343A1 - Method and apparatus for installing infield flexible liner of downhole tubing - Google Patents
Method and apparatus for installing infield flexible liner of downhole tubing Download PDFInfo
- Publication number
- WO2022015343A1 WO2022015343A1 PCT/US2020/046941 US2020046941W WO2022015343A1 WO 2022015343 A1 WO2022015343 A1 WO 2022015343A1 US 2020046941 W US2020046941 W US 2020046941W WO 2022015343 A1 WO2022015343 A1 WO 2022015343A1
- Authority
- WO
- WIPO (PCT)
- Prior art keywords
- liner
- spoolable
- tube
- interior
- termination
- 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.)
- Ceased
Links
Classifications
-
- 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
- E21B43/02—Subsoil filtering
- E21B43/10—Setting of casings, screens, liners or the like in wells
-
- 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
- E21B17/00—Drilling rods or pipes; Flexible drill strings; Kellies; Drill collars; Sucker rods; Cables; Casings; Tubings
- E21B17/20—Flexible or articulated drilling pipes, e.g. flexible or articulated rods, pipes or cables
-
- 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
- E21B17/00—Drilling rods or pipes; Flexible drill strings; Kellies; Drill collars; Sucker rods; Cables; Casings; Tubings
- E21B17/10—Wear protectors; Centralising devices, e.g. stabilisers
- E21B17/1085—Wear protectors; Blast joints; Hard facing
-
- 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
- E21B43/02—Subsoil filtering
- E21B43/10—Setting of casings, screens, liners or the like in wells
- E21B43/103—Setting of casings, screens, liners or the like in wells of expandable casings, screens, liners, 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
- F16L—PIPES; JOINTS OR FITTINGS FOR PIPES; SUPPORTS FOR PIPES, CABLES OR PROTECTIVE TUBING; MEANS FOR THERMAL INSULATION IN GENERAL
- F16L55/00—Devices or appurtenances for use in, or in connection with, pipes or pipe systems
- F16L55/16—Devices for covering leaks in pipes or hoses, e.g. hose-menders
- F16L55/162—Devices for covering leaks in pipes or hoses, e.g. hose-menders from inside the pipe
- F16L55/165—Devices for covering leaks in pipes or hoses, e.g. hose-menders from inside the pipe a pipe or flexible liner being inserted in the damaged section
- F16L55/1652—Devices for covering leaks in pipes or hoses, e.g. hose-menders from inside the pipe a pipe or flexible liner being inserted in the damaged section the flexible liner being pulled into the damaged section
- F16L55/1654—Devices for covering leaks in pipes or hoses, e.g. hose-menders from inside the pipe a pipe or flexible liner being inserted in the damaged section the flexible liner being pulled into the damaged section and being inflated
-
- 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
- F16L55/00—Devices or appurtenances for use in, or in connection with, pipes or pipe systems
- F16L55/16—Devices for covering leaks in pipes or hoses, e.g. hose-menders
- F16L55/162—Devices for covering leaks in pipes or hoses, e.g. hose-menders from inside the pipe
- F16L55/165—Devices for covering leaks in pipes or hoses, e.g. hose-menders from inside the pipe a pipe or flexible liner being inserted in the damaged section
- F16L55/1656—Devices for covering leaks in pipes or hoses, e.g. hose-menders from inside the pipe a pipe or flexible liner being inserted in the damaged section materials for flexible liners
Definitions
- Tubulars are installed in wells to provide a conduit from the well to the surface and to support the wall of the well.
- corrosion of these tubulars becomes a concern.
- several methods are used, such as injecting chemical inhibitors into the well, lining the tubulars with protective coatings, and lining the tubulars with high grade alloys such as chromium or nickel based alloys.
- these methods are either inefficient or relatively expensive in terms of cost and logistics.
- Some embodiments describe a method of lining a tube using a spoolable liner. That method may include: connecting a connector to a distal end of the spoolable liner; inserting the connector and spoolable liner into the tube and advancing the connector to a tube engagement point at an interior of the tube; forming a distal connection between the spoolable liner and the tube by attaching the connector to an engagement mechanism at the tube engagement point; establishing a proximal end of the spoolable liner; forming a proximal connection between the proximal end of the spoolable liner and the tube; plugging the spoolable liner with a deployable plug in a vicinity of the distal end; plugging the spoolable liner with a termination in a vicinity of the proximal end; and filling an interior area defined by an interior of the spoolable liner, the termination, and the deployable plug with a fluid such that the fluid expands the spoolable line
- the spoolable liner may be liquid impermeable such that the spoolable liner corrosion protects the interior wall of the tube between the distal connection and the proximal connection.
- Some embodiments of the method also may include removing the deployable plug and the termination; and causing production to flow through the interior of the spoolable liner.
- Some embodiments of the method also may include removably connecting a conveyance device to the connector; using the conveyance device to advance the spoolable liner to the tube engagement point; releasing the conveyance device from the connector after the connector has been connected to the engagement mechanism; and removing the conveyance device from the tube.
- the conveyance device may be a tractor.
- Some embodiments of the method also may include leak-testing the spoolable liner, the distal connection, and the proximal connection by flowing a testing fluid through the interior of the spoolable liner.
- forming the proximal end of the spoolable liner may include cutting the spoolable liner in a vicinity of a proximal section of the tube.
- forming the proximal connection may include clamping the proximal end of the spoolable liner to a vicinity of the proximal section of the tube with a termination collar.
- the fluid may be at least one of air, nitrogen, oxygen, and argon.
- the deployable plug may be a removable stopper.
- plugging the spoolable liner in the vicinity of the distal end may include: inserting the removable stopper into the spoolable liner within the tube; and disposing the removable stopper in a vicinity of the distal end.
- the system may include: a hollow, flexible, spoolable liner having a distal end; a connector configured to be attached to the distal end of the spoolable liner and to engage with an engagement mechanism at a tube engagement point at an interior of the tube forming a distal connection; a deployable plug sized to seal the spoolable liner in a vicinity of the distal end; a termination sized to seal in a vicinity of a proximal end of the spoolable liner and configured to secure the proximal end of the spoolable liner to a proximal section of the tube forming a proximal connection, wherein the termination may include an aperture providing fluidic connection to an interior area defined by an interior of the spoolable tube, the deployable plug, and the termination; and a fluid source selectively engageable with the interior area via the aperture of the termination to expand the interior of the spoolable liner against
- the spoolable liner may be liquid impermeable such that the spoolable liner corrosion protects the interior wall of the tube between the distal connection and the proximal connection.
- the spoolable liner may include an inner liner, a core, and an outer layer.
- the inner liner may be at least one of polyvinylidene fluoride, polyvinylidene difluoride, and polyetheretherketone;
- the core may be tightly woven aramid fibers;
- the outer layer may be a thermoplastic polyurethane.
- the engagement mechanism may be a landing nipple.
- the connector may be a mandrel.
- the deployable plug may be a removable stopper.
- the termination may include a termination body and an orifice defined in the termination body for fluidly attaching a pump to the interior area.
- the proximal end of the spoolable liner may be attached in a vicinity of the proximal section of the tube by a termination collar.
- FIG. 1 depicts a schematic of an embodiment of a tube in a well lined by a spoolable liner.
- FIG. 2 depicts a schematic of an embodiment of a spoolable liner prepared to line a tube.
- FIG. 3 depicts a schematic of an embodiment of a spoolable liner prepared to line a tube.
- FIG. 4 depicts a schematic of an embodiment of a spoolable liner advanced into a tube.
- FIG. 5 depicts a schematic of an embodiment of a spoolable liner connected to a tube.
- FIG. 6 depicts a schematic of an embodiment of a spoolable liner connected to a tube.
- FIG. 7 depicts a schematic of an embodiment of a spoolable liner connected to a tube.
- FIG. 8 depicts a schematic of an embodiment of a spoolable liner within a tube partially plugged.
- FIG. 9 depicts a schematic of an embodiment of a spoolable liner within a tube fully plugged.
- FIG. 10 depicts a schematic of an embodiment of a spoolable liner within a tube connected to a pump.
- FIG. 11 depicts a schematic of an embodiment of a tube lined by a spoolable liner.
- FIG. 12 depicts a schematic of an embodiment of a spoolable liner for lining a tube.
- FIG. 13 depicts a schematic of an embodiment of a tube lined by a spoolable liner.
- FIG. 14 depicts a flow chart of an embodiment of a method for lining a tube with a spoolable liner.
- FIG. 1 shows an oil derrick 98 on a surface 94 atop a well 95.
- Well 95 includes casings 96, 97.
- a tube 90 Within inner casing 97 is a tube 90.
- Tube 90 may be an innermost casing, in some embodiments.
- Tube 90 includes an inner wall 92 of tube 90.
- tube 90 defines an interior 93 of tube 90 that extends from surface 94 to some terminus, such as the end of well 95 within a formation.
- a portion of tube 90 is lined with a spoolable liner 10.
- Tube 90 may have one or more engagement mechanisms installed during completion of well 95, for example at regular intervals along tube 90. These engagement mechanisms allow for various components (such as plugs, chokes, sensors, and others) to be removably installed within tube 90 after completion of well 95. In some instances, one or more engagement mechanism may be a landing nipple 70.
- Landing nipple 70 is located within tube 90 at a tube engagement point.
- tube engagement point is a tube engagement depth D.
- tube engagement depth D may include non- vertical lengths. Since, landing nipple 70 may be placed in tube 90 during completion of well 95, placement of landing nipple 70 may occur in advance (potentially well in advance) of the lining tube 90 as described here.
- tube 90 may include multiple landing nipples along the length, only landing nipple 70 is located at tube engagement depth D. To that end, additional landing nipples in tube 90 may be located upflow, downflow, or both of landing nipple 70.
- landing nipple 70 may be any type of landing nipple, including a no-go nipple, a selective-landing nipple, a ported nipple, or a safety- valve nipple.
- the engagement mechanism may be a collar (the space between the two tubing joints with accessible, conventional thread connections) or interior wall 92 of tube 90.
- the engagement mechanism may be any other engagement mechanism that may be included in tube 90 known in the art.
- the engagement mechanism may have an interlocking confirmation with a connector. To that end, mandrel 50 and landing nipple 70 as depicted in FIG. 1 have interlocking confirmations.
- the connector may be a mandrel 50, such as a lock mandrel (or locking mandrel), a slick lock, or a collar lock.
- the connector may be any other connector known in the art that is designed to interface with a known engagement mechanism included in tube 90.
- the engagement mechanism/connector pair may be used to connect various components to tube 90 after completion of well 95.
- the engagement mechanism may be landing nipple 70 and the connector may be mandrel 50 as depicted in FIG. 1.
- the engagement mechanism may be a collar and the connector may be a collar lock.
- the engagement mechanism may be interior wall 92 of tube 90 and the connector may be a slip lock.
- tube 90 is lined with spoolable liner 10 between a proximal connection 40 to a distal connection 60.
- Distal connection 60 is located below surface 94, while proximal connection 40 is located in a vicinity of surface 94 in this embodiment.
- Spoolable liner 10 defines an interior 14 within an interior wall 12 of spoolable liner 10.
- Distal connection 60 is formed between a distal end 16 of spoolable liner 10, the connector, and the engagement mechanism.
- the connector takes the form of mandrel 50 and the engagement mechanism takes the form of landing nipple 70.
- distal connection 60 includes distal end 16 of spoolable liner 10, mandrel 50, and landing nipple 70.
- mandrel 50 and landing nipple 70 have a locking confirmation.
- mandrel 50 is configured to connect to distal end 16 of spoolable liner 10.
- Proximal connection 40 is formed between a proximal end 18 of spoolable liner 10, a proximal section 91 of tube 90, and a termination.
- Proximal section 91 of tube 90 is defined as the portion of tube 90 near where proximal connection 40 is to be formed.
- proximal section 91 of tube 90 is near surface 94.
- the termination includes a termination collar 30. Termination collar 30 secures proximal end 18 of spoolable liner 10 to proximal section 91 tube 90. Securing proximal end 18 of spoolable liner 10 to termination collar 30 and termination collar 30 to proximal section 91 of tube 90 may be performed by any joining method known in the art, such as adhesive, clamping, or interlocking confirmation.
- the termination may be any direct or indirect connection between proximal end 18 of spoolable liner 10 and proximal section 91 of tube 90. In one or more embodiments, the termination may be a direct connection between proximal end 18 of spoolable liner 10 and proximal section 91 of tube 90. In one or more embodiments, the termination may be an indirect connection between proximal end 18 of spoolable liner 10 and proximal section 91 of tube 90, for example between proximal end 18 of spoolable liner 10 and surface 94 near tube 90 or between proximal end 18 of spoolable liner 10 and a wellhead (not depicted) atop tube 90. Proximal end 18 of spoolable liner 10 may be connected directly to tube 90 or to an intermediate component such as termination collar 30 (as in FIG. 1) by any joining method known in the art, such as adhesive clamping, or interlocking confirmation.
- termination collar 30 may clamp proximal end 18 of spoolable liner 10 to proximal section 91 of tube 90.
- proximal connection 40 may be formed by cutting spoolable liner 10 in a vicinity of proximal section 91 of tube 90 to form proximal end 18 of spoolable liner 10; close fitting proximal end 18 of spoolable liner 10 to proximal section 91 of tube 90; and engaging termination collar 30 to clamp proximal end 18 of spoolable liner 10 to proximal section 91 of tube 90.
- spoolable liner 10 is disposed against interior wall 92 of tube 90.
- spoolable liner 10 may have a tight fit against interior wall 92 of tube 90 between proximal connection 40 and distal connection 60.
- spoolable liner 10 may be radially disposed against additional engagement mechanisms upflow from landing nipple 70.
- spoolable liner 10 may serve as a liner for tube 90 interior 93 between proximal connection 40 and distal connection 60.
- proximal connection 40 and distal connection 60 Between proximal connection 40 and distal connection 60, fluids (like production fluid) flow through interior 14 of spoolable liner 10 within tube 90 instead of directly through interior 93 of tube 90. Therefore, these fluids does not contact interior wall 92 of tube 90 between proximal connection 40 and distal connection 60. Thus, interior wall 92 of tube 90 is corrosion protected from these fluids between proximal connection 40 and distal connection 60 by spoolable liner 10.
- FIGs. 2-11 depict an embodiment of the method for lining tube 90 with spoolable liner 10 as depicted in the embodiment shown in FIG. 1.
- FIG. 2 shows spoolable liner 10 on a spool 11. Additionally, mandrel 50 is connected to distal end 16 of spoolable liner 10. This connection between mandrel 50 and distal end 16 of spoolable liner 10 may be formed by any joining method known in the art, such as adhesive, clamping, or interlocking confirmation.
- FIG. 3 depicts mandrel 50 and distal end 16 of spoolable liner 10 removably connected to a conveyance device.
- the conveyance device includes a tractor 80 attached to a slickline 84.
- Slickline 84 is depicted as extending within interior wall 12 of spoolable liner 10, however in some embodiments, slickline 84 may not extend through spoolable liner 10. In some embodiments, the slickline 84 may extend inside of tube 90 and outside of spoolable liner 10.
- the conveyance device in FIG. 3 is a tractor 80 with four wheels 82a, 82b, 82c, 82d on slickline 84.
- Tractor 80 may take any shape or form known in the art and may have any number and placement of wheels 82a, 82b, 82c, 82d.
- Tractor 80 may lack wheels in favor of another means of conveyance within tube 80.
- the conveyance device may be a weight on a line, a robot, or any other means of conveying mandrel 50 within tube 90.
- tractor 80, mandrel 50, and distal end 16 of spoolable liner 10 have been inserted into tube 90 and are advancing down tube 90 as indicated by an arrow 1.
- Tractor 80 is still connected to mandrel 50 and distal end 16 of spoolable liner 10 as in FIG. 3.
- Spoolable liner 10 extends between distal end 16 within interior 93 of tube 90 and onto spool 11. Spool 11 is located on surface 94 near proximal end 91 of tube 90. Thus, spoolable liner 10 extends between distal end 16 connected to mandrel 50 within tube 90 and spool 11 on surface 94.
- Tractor 80 advances mandrel 50 and distal end 16 of spoolable liner 10 within interior 93 of tube 90. Tractor 80 advances mandrel 50 to landing nipple 70 at tube engagement depth D. Specifically, tractor 80 is directly advancing mandrel 50 and indirectly advancing distal end 16 of spoolable liner 10. As tractor 80 moves towards landing nipple 70, additional length of spoolable liner 10 is removed from spool 11.
- Tractor 80 is physically connected via slickline 84 to an appropriate apparatus (not depicted) above surface 94.
- the conveyance device may be physically connected to surface 94 by slickline 84, a wireline, or some other tether. In some embodiments, the conveyance device may not be physically connected to any structure out of tube 90.
- Tractor 80 is also communicatively connected via slickline 84 to a controller (not depicted) above surface 94.
- This controller controls tractor 80, mandrel 50, and distal end 16 of spoolable liner 10 within tube 90.
- this controller may be a computer.
- the conveyance device may be remotely controlled by a controller (not depicted) via wire (for example, slickline 84) or wirelessly (for example, WiFi, Bluetooth, and other).
- wire for example, slickline 84
- wirelessly for example, WiFi, Bluetooth, and other.
- FIG. 5 depicts distal connection 60, which includes distal end 16 of spoolable liner 10, mandrel 50, and landing nipple 70 at interior 93 of tube 90.
- mandrel 50 is connected to landing nipple 70. Furthermore, as previously detailed, mandrel 50 is connected to distal end 16 of spoolable liner 10 and landing nipple 70 is located at interior 93 of tube 90. Thus, distal connection 60 indirectly connects distal end 16 of spoolable liner 10 to interior 93 of tube 90.
- Mandrel 50 and landing nipple 70 are configured such that tractor 80 can remotely engage and attach mandrel 50 to landing nipple 70.
- a controller located on surface 94 controls the actions and movement of tractor 80 via slickline 84.
- tractor 80 is used to attach mandrel 50 to landing nipple 70.
- tractor 80, mandrel 50, and landing nipple 70 that allow mandrel 50 and landing nipple 70 to be remotely engaged and locked by tractor 80 within tube 90, potentially far below surface 94.
- tractor 80 may be remotely controlled by a controller to engage and attach mandrel 50 to landing nipple 70 within tube 90.
- the conveyance device may be capable of remotely engaging and joining the connector to the engagement mechanism.
- tractor 80 may be released from mandrel 50.
- tractor 80 is depicted suspended on slickline 84 slightly downflow from mandrel 50 and landing nipple 70, as may be the case after mandrel 50 and landing nipple 70 are connected.
- FIG. 6 depicts establishing proximal end 18 of spoolable liner 10 and forming proximal connection 40.
- Proximal end 18 of spoolable liner 10 may be formed by cutting spoolable liner 10 in a vicinity of proximal section 91 of tube 90. This cutting may be performed using any method known in the art, including mechanical cutting, thermal cutting, or others.
- the length of spoolable liner 10 on spool 11 may be particularly sized for a known tube engagement depth D.
- establishing proximal end 18 of spoolable liner 10 may involve removing proximal end 18 of spoolable liner 10 from spool 11.
- spool 11 may be moved away from tube 90. After being separated from spoolable liner 10 in tube 90, spool 11 and any unused spoolable liner material may be now be used in another location.
- Proximal connection 40 is formed between proximal end 18 of spoolable liner 10, proximal section 91 of tube 90, and termination collar 30, as previously detailed. Thus, proximal connection 40 indirectly connects proximal end 18 of spoolable liner 10 to proximal section 91 of tube 90.
- FIG. 7 shows tractor 80 being removed from tube 90 via slickline 84, as indicated with arrow 3. The removal of tractor 80 from tube 90 may be termed pull out of hole (POOH).
- wheels 82a, 82b, 82c, 82d are relocated on tractor 80. This relocation of wheels 82a, 82b, 82c, 82d around tractor 80 reduces the width of tractor 80 is reduced.
- Such mechanisms for streamlining tractor 80 for removal from tube 80 are well known in the art.
- the conveyance device may be removed from within tube 90 after the placement of the engagement mechanism such as via a line (such as by slickline 84 attached to tractor 80 or by a removable weight), by dissolving (as a dissolvable weight), or by any other means.
- a line such as by slickline 84 attached to tractor 80 or by a removable weight
- dissolving as a dissolvable weight
- FIG. 8 depicts interior 14 of spoolable liner 10 plugged with a deployable plug in a vicinity of distal end 16.
- the deployable plug has the form of a removable stopper 86.
- Arrow 5 depicts the direction a tether 88 is deployed to insert and place removable stopper 86 within spoolable liner 10.
- removable stopper 86 abuts landing nipple 70 within spoolable liner 10. Additionally, removable stopper 86 plugs interior 14 of spoolable liner 10 in the vicinity of distal end 16 of spoolable liner 10. To that end, removable stopper 86 is sized to seal distal end 16 of spoolable liner 10 at landing nipple 70.
- Removable stopper 86 is attached to tether 88.
- removable stopper 86 is largely brought into position via gravity.
- tether 88 is used to control the descent and placement of removable stopper 86 within interior 14 of spoolable liner 10 from surface 94.
- Tether 88 may physically connect removable stopper 86 to an appropriate apparatus (not depicted) above surface 94.
- tether 88 may communicably connect removable stopper 86 to a controller (not depicted) above surface 94.
- tether 88 may be a cable, a wireline, or a slickline.
- deployable plug may be neither physically, communicably, nor both connected to apparatus(es) (not depicted) above surface 94.
- tube 90 may include multiple landing nipples at various depths.
- removable stopper 86 may need to change shape or confirmation in order to be deployed past additional landing nipple(s) before reaching landing nipple 70.
- removable stopper 86 may be fully deployed.
- removable stopper 86 may change shape by inflation or mechanically actuation when at a vicinity of distal end 16 of spoolable liner 10. Such change, in some embodiments, may be controlled via the controller (not depicted) located at surface 94 and communicably connected to removable stopper 86 via tether 88.
- removable stopper 86 may be deployed in any location in the vicinity of distal end 16 of spoolable liner 10, including proximate to, upflow, or downflow of landing nipple 70, mandrel 50, or both. Alternatively, removable stopper 86 may be deployed in any location downflow from landing nipple 70 and mandrel 50.
- removable stopper 86 may be moved to a vicinity of distal end 16 of spoolable liner 10 via conveyance device (like tractor 80) as opposed to a separate means (such as gravity).
- the conveyance device may itself serve as the deployable plug.
- a conveyance device (such as tractor 80) may advance the deployable plug along with the connector (such as mandrel 50) and distal end 16 of spoolable liner 10.
- the conveyance device (such as tractor 80) may not be separately withdrawn from tube 90 as depicted in FIG. 7, and instead may stay within tube 90 until the deployable plug is removed, as will be described further.
- a conveyance device may be used twice. First, to advance and lock mandrel 50 to landing nipple 70 as discussed previously and, second, to advance and place removable stopper 86 in a vicinity of distal end 16 of spoolable liner 10.
- Deployable plug may be formed of any substance that may be selectively deployable and removable.
- deployable plug may not be a physical object such as removable stopper 86 that needs particular placement. Instead, in some embodiments, deployable plug may be an intentional clog formed by a chemical reaction or by a physical buildup.
- deployable plug may be a feature within other downhole components, such as mandrel 50, landing nipple 70, or others.
- FIG. 9 depicts interior 14 of spoolable liner 10 plugged in a vicinity of proximal end 18 with a termination ⁇ Thus, the termination is sized to seal spoolable liner 10 in a vicinity of proximal end 18.
- the termination includes termination body 35 and termination gasket 30, where termination body 35 has a conformal shape to termination collar 30.
- termination body 35 and termination collar 30 are configured to connect and sized to seal spoolable liner 10 in a vicinity of proximal end 18.
- an interior area 15 is defined by interior wall 12 of spoolable liner 10, termination body 35, and removable stopper 86.
- FIG. 10 depicts a pump 46 connected to interior area 15.
- aperture 42 in termination body 35 provides fluidic connection into interior area 15.
- pump 46 is connected to interior area 15 of spoolable liner 10 via a hose 44 connected to an aperture 42 in termination body 35.
- aperture 42 may be used to selectively employ a fluid source to fill interior area 15 with a fluid.
- pump 46 is the source of air that serves as a fluid to fill interior area 15. Pump 46 gathers air from the ambient environment via an intake vent and fills interior area 15 with that air.
- the fluid used to fill interior area 15 may be a liquid (such as water, drilling fluid, ocean water, or a combination), a gas (such as air, nitrogen, oxygen, argon, or a combination), or a combination.
- pump 46 may be a gas pump or a liquid pump.
- Pump 46 may be connected to any appropriate fluid source.
- the fluid source may be a defined reservoir (such as a gas or liquid tank) or an intake vent/hose (such as an air vent or an ocean water intake hose).
- the fluid may be directed into interior area 15 with or without additional pressurization.
- FIG. 11 shows spoolable liner 10 fit tightly against interior wall 92 of tube 90 from proximal connection 40 to distal connection 60.
- Termination body 35 has been removed from proximal section 91 of tube 90 prior to FIG. 11.
- Termination collar 30 remains to connect spoolable liner 10 to tube 90.
- Termination collar 30 does not block fluid flow from interior 93 of tube 10, through interior 14 of spoolable liner 10, and out above surface 94. Thus, the termination no longer plugs interior 14 of spoolable liner 10 near proximal end 18.
- removable stopper 86 is removed from tube 90 via tether 88, as depicted by arrow 7.
- the removal of removable stopper 86 from tube 90 may be termed POOH.
- deployable plug may be removed by other means, such as by dissolving, chemically etching, deflating, melting, drilling, or retracting a plug deployed from another downhole component (like mandrel 50 or landing nipple 70).
- FIG. 1 depicts tube 90 after removal of termination body 35 and removable stopper 86.
- interior 14 of spoolable liner 10 is fluidly connected to interior 93 of tube 90 and to surface 94.
- interior wall 92 of tube 90 has been tightly lined with spoolable liner 90 from proximal connection 40 to distal connection 60.
- FIG. 12 depicts spoolable liner 10 with interior wall 12 and an exterior wall 13 indicated.
- Spoolable liner 10 is a hollow tube formed from a flexible material.
- spoolable liner 10 may be a layered polymer composite. As depicted here, spoolable liner 10 may include an inner liner 106 (toward interior wall 12), a core 104, and an outer layer 102 (toward exterior wall 13).
- inner liner 106 may be at least one of polyvinylidene fluoride, polyvinylidene difluoride, and polyetheretherketone.
- core 104 may comprise tightly woven aramid fibers.
- outer layer 102 may be a thermoplastic polyurethane.
- spoolable liner 10 may be essentially liquid impermeable, gas impermeable, or both.
- spoolable liner 10 may be formed of one or more materials particular selected to resist corrosion, reaction, degradation, or other adverse reactions when exposed to a specific fluid or fluid mixture, such as production fluids.
- spoolable liner 10 may be chemically resistant to corrosion, reaction, degradation, or other adverse reactions caused by production fluids.
- FIG. 13 depicts an alternative embodiment where tube 90 is not within a well (FIG. 1), but instead extends roughly horizontal along surface 94. Tube 90 rests on legs 110.
- FIG. 13 depicts an embodiment where proximal connection 40 is not adjacent to opening 114 of tube 90. Instead, proximal connection 40 is formed between proximal section 91 of tube 90, proximal end 18 of spoolable liner 10, and a termination connector 112.
- Termination connector 112 may be any intermediate structure within interior 94 of tube 10 that may serve as a connection point between proximal section 91 of tube 90 and proximal end 18 of spoolable liner 10.
- termination connector 112 may be a second landing nipple or a second mandrel connected to a second landing nipple, or any other appropriate structure.
- termination connector 112 may be a direct connection between proximal section 91 of tube 90 and proximal end 18 of spoolable liner 10, such as with an adhesive.
- Landing nipple 70 within tube 90 is again at a tube engagement point.
- tube engagement point is a tube engagement length L away from proximal connection 40 and proximal section 91 of tube 90.
- an active conveyance device such as tractor 80
- deployable plug such as removable stopper 86
- FIG. 14 is a flowchart depicting a method for lining tube 90 with spoolable liner 10. Not all depicted steps may be performed in all embodiments of this method.
- Step SI is connecting connector (like mandrel 50) to distal end 16 of spoolable liner 10. Such connection may be formed as discussed previously. An embodiment of step SI may be seen in FIG. 2.
- Step S2 is removably connecting conveyance device (like tractor 80) to connector (like mandrel 50). Consequently, conveyance device (like tractor 80) is indirectly attached to distal end 16 of spoolable liner 10.
- conveyance device like tractor 80
- FIG. 3 Some embodiments may not utilize a conveyance device, thus step S2 may not be performed in some embodiments.
- Some embodiments of the method may not include step S2, such as those without a conveyance device.
- Step S3 is inserting connector (like mandrel 50) and distal end 16 of spoolable liner 10 into proximal section 91 of interior 93 of tube 90.
- connector (like mandrel 50) and distal end 16 of spoolable liner 10 are connected to conveyance device (like tractor 80).
- conveyance device (like tractor 80), connector (like mandrel 50), and distal end 16 of spoolable liner 10 are all inserted into proximal section 91 of interior 93 of tube 90.
- FIG. 4 may depict the results of one such embodiment of step S3.
- Step S4 is advancing connector (like mandrel 50) within tube 80 to the tube engagement point.
- the tube engagement point may be tube engagement depth D (FIG. 1) or tube engagement length L (FIG. 13).
- connector (like mandrel 50) and distal end 16 of spoolable liner 10 are connected to conveyance device (like tractor 80).
- conveyance device like tractor 80
- conveyance device may be used to advance connector (like mandrel 50) and distal end 16 of spoolable liner 10 to the tube engagement point.
- step S4 may be seen in FIG. 4.
- Step S5 is forming distal connection 60 between distal end 16 of spoolable liner 10 and tube 90 by connecting connector (like mandrel 50) to engagement mechanism (like landing nipple 70) at tube engagement point (like tube engagement depth D or tube engagement length L).
- connector like mandrel 50
- engagement mechanism like landing nipple 70
- tube engagement point like tube engagement depth D or tube engagement length L.
- Step S6 is releasing conveyance device (like tractor 80) from connector (like mandrel 50).
- conveyance device like tractor 80
- connector like mandrel 50
- FIG. 5 One such an embodiment of step S6 just after the release of tractor 80 from mandrel 50 may be seen in FIG. 5.
- step S6 may occur after connector (like mandrel 50) has been connected to the engagement mechanism (like landing nipple 70).
- Some embodiments of the method may not include step S6, such as those without a conveyance device.
- Step S7 is establishing proximal end 18 of spoolable liner 10.
- establishing proximal end 18 of spoolable liner 10 may involve locating an existing proximal end 18 on spool 11 as discussed previously.
- establishing the proximal end may involve cutting spoolable liner 10 in a vicinity of proximal section 91 of tube 90.
- Step S8 is to form proximal connection 40 between proximal end 18 of spoolable liner 10 and tube 10.
- Proximal connection 40 may take multiple forms as discussed previously and
- FIG. 6 depicts an embodiment of step S8 where proximal connection 40 involves proximal section 91 of tube 10, proximal end 18 of spoolable liner 10, and termination collar 30.
- proximal connection 40 may be formed when termination collar 30 indirectly connect proximal section 91 of tube 10 to proximal end 18 of spoolable liner 10.
- proximal connection 40 may include joining proximal end 18 of spoolable liner 10 to another component, including a wellhead (not depicted), surface 94, proximal section 91 of tube 10, or terminal connector 112 (not located adjacent to opening 114 of tube 90).
- Some embodiments of the method may include step S9.
- Step S9 may be removing conveyance device (like tractor 80) from tube 90.
- An embodiment of step S9 may be seen in FIG. 7. Here, tractor 80 is being withdrawn using slickline 84.
- Some embodiments of the method may not include step S9, such as those without a conveyance device.
- step S9 involving the removal of conveyance device may occur later in the method.
- conveyance device (like tractor 80) advances both connector (such as mandrel 50) and deployable plug (such as removable stopper 86).
- conveyance device (like tractor 80) may serve as deployable plug.
- step S9 may occur later, such as after step S14 (discussed further).
- Step S10 may be inserting deployable plug (such as removable stopper 86) into tube 10.
- FIG. 8 depicts an embodiment where step S10 has occurred. Here, removable stopper 86 was inserted using tether 88.
- Some embodiments of the method may not include step S10. As discussed previously, some embodiments of the method may not require inserting an additional component to serve as a deployable plug, such as when deployable plug is a component within tractor 80, mandrel 50, or landing nipple 70 or when deployable plug is carried by tractor 80.
- Step Sll may be to dispose deployable plug (such as removable stopper 86) in a vicinity of or downflow from distal end 16 of spoolable liner 10.
- An embodiment of step Sll may be seen in FIG. 8. Here, removable stopper 86 is being positioned using tether 88.
- Step S12 may be plugging interior 14 of spoolable liner 10 with deployable plug (such as removable stopper 86) in a vicinity of or downflow from distal end 16. An embodiment of step S12 is shown in FIG. 8 with spoolable liner 10 plugged with removable stopper 86 adjacent to landing nipple 70.
- step S12 may include positioning a removable stopper 86, activating another component (like tractor 80, mandrel 50, or landing nipple 70), inflating an inflatable stopper, causing a chemical reaction, or chemically or physically plugging spoolable liner 10 in some other manner in a vicinity of or downflow from distal end 16.
- a removable stopper 86 activating another component (like tractor 80, mandrel 50, or landing nipple 70), inflating an inflatable stopper, causing a chemical reaction, or chemically or physically plugging spoolable liner 10 in some other manner in a vicinity of or downflow from distal end 16.
- Step S13 may be plugging interior 14 of spoolable liner 10 with a termination in a vicinity of proximal end 18.
- step S13 An embodiment of step S13 is shown in FIG. 9.
- the termination includes termination body 35 and termination collar 30. Together, termination body 35 and termination collar 30 plug spoolable liner 10 in a vicinity of proximal end 18.
- Step S14 may be filling interior area 15 with fluid to expand spoolable liner 10 against interior wall 92 of tube 90.
- FIG. 10 depicts an embodiment just prior to step S14, while FIG. 11 depicts an embodiment after step S14.
- pump 46 supplies the fluid to interior area 15. Further, the ambient environment serves as a fluid source. Specifically, pump 46 pumps air through hose 44 and aperture 42 in termination body 35. Aperture 42 provides selective access to interior area 15 for the air. In interior area 15, the air expands spoolable liner 10 against interior wall 92 of tube 90. Thus, spoolable liner 10 may fit tightly against interior wall 92 of tube 90 from proximal connection 40 to distal connection 60.
- step SI 4 alternative fluids and fluid sources may be employed in one or more embodiments of step SI 4.
- Step S15 may be removal of deployable plug and termination.
- FIG. 11 depicts after termination body 35 has been removed according to step S15. However, termination collar 30 is maintained to connect spoolable liner 10 to tube 90. Termination collar 30does not block fluid flow from interior 93 of tube 10, through interior 14 of spoolable liner 10, and out above surface 94. Thus, the termination no longer plugs interior 14 of spoolable liner 10 near proximal end 18.
- FIG. 11 depicts an embodiment of step S15 where removable stopper 86 is removed using tether 88.
- removal of deployable plug may take alternative forms such as by dissolving, chemically etching, deflating, melting, drilling, or retracting a plug deployed from another downhole component (like mandrel 50 or landing nipple 70) in one or more embodiments.
- removal of deployable plug may also be removal of conveyance device (like tractor 80) as discussed previously.
- Step S16 may be leak testing spoolable liner 10, distal connection 60, and proximal connection 40.
- spoolable liner 10 after lining tube 90 with spoolable liner 10, spoolable liner 10, proximal connection 40, and distal connection 60 may be leak tested. Such leak testing may be performed by flowing a testing fluid through interior 14 of spoolable liner 10, and checking for leaks of the test fluid.
- leak testing may preceded production flow through interior 14 of spoolable liner 10.
- Step S17 may be causing production to flow through interior 14 of spoolable liner 10.
- production may production may originate downflow from distal connection 60, flowing from interior 93 of tube 90, through distal connection 60, interior 14 of spoolable liner 10, and proximal connection 40, and exit tube 90 above surface 94 to be collected as well known in the art and as disclosed elsewhere.
- production may originate downflow from distal connection 60, flowing from interior 93 of tube 90, through distal connection 60, interior 14 of spoolable liner 10, and proximal connection 40, and continue through interior 93 of tube 90 upflow from proximal connection 40.
- production may instead flow from proximal connection 40 toward distal connection 60.
- interior wall 12 of tube 90 may be corrosion protected.
- spoolable liner 10 may be deployed to protect interior wall 12 of tube 90 from corrosion caused by production fluids or other corrosive fluids.
- the method described here may be performed on tube 90 that has or has not been previously exposed to production fluids.
- production flow through tube 90 may need to be stopped or significantly limited prior to being lined with spoolable liner 10 according to this method. Stopping or limiting production flow through tube 90 may be performed according to methods well known in the art and documented elsewhere.
- tube 90 may be lined with spoolable liner 10 to remediate corrosion damage to interior wall 92 of tube 90.
- spoolable liner 10 may be deployed to prevent additional corrosion damage to interior wall 92 of tube 90 in some embodiments.
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- Engineering & Computer Science (AREA)
- Life Sciences & Earth Sciences (AREA)
- Geology (AREA)
- Mining & Mineral Resources (AREA)
- General Engineering & Computer Science (AREA)
- Mechanical Engineering (AREA)
- Physics & Mathematics (AREA)
- Environmental & Geological Engineering (AREA)
- Fluid Mechanics (AREA)
- General Life Sciences & Earth Sciences (AREA)
- Geochemistry & Mineralogy (AREA)
- Lining Or Joining Of Plastics Or The Like (AREA)
Abstract
Description
Claims
Priority Applications (1)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| SA523442193A SA523442193B1 (en) | 2020-07-16 | 2023-01-16 | Method and apparatus for installing a flexible liner inside the field of a downhole pipe |
Applications Claiming Priority (2)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| US16/931,238 US11371324B2 (en) | 2020-07-16 | 2020-07-16 | Method and apparatus for installing infield flexible liner of downhole tubing |
| US16/931,238 | 2020-07-16 |
Publications (1)
| Publication Number | Publication Date |
|---|---|
| WO2022015343A1 true WO2022015343A1 (en) | 2022-01-20 |
Family
ID=72291143
Family Applications (1)
| Application Number | Title | Priority Date | Filing Date |
|---|---|---|---|
| PCT/US2020/046941 Ceased WO2022015343A1 (en) | 2020-07-16 | 2020-08-19 | Method and apparatus for installing infield flexible liner of downhole tubing |
Country Status (3)
| Country | Link |
|---|---|
| US (1) | US11371324B2 (en) |
| SA (1) | SA523442193B1 (en) |
| WO (1) | WO2022015343A1 (en) |
Citations (3)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| US6024910A (en) * | 1996-06-06 | 2000-02-15 | Shonan Gosei-Jushi Seisakusho K.K. | Method for lining a tubular conduit |
| EP1798370A1 (en) * | 2005-12-14 | 2007-06-20 | Services Petroliers Schlumberger | Methods and apparatus for well construction |
| US20200103065A1 (en) * | 2018-08-22 | 2020-04-02 | DCF Holding GmbH | Method and device for the reconstruction of a pipe section of a pipeline system |
Family Cites Families (20)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| JPH0692121B2 (en) | 1987-10-05 | 1994-11-16 | 東京瓦斯株式会社 | Pipe liner and manufacturing method thereof |
| US5320388A (en) | 1988-02-25 | 1994-06-14 | Miller Pipeline Service Corporation | Well tubing liner system |
| US4998871A (en) | 1989-01-19 | 1991-03-12 | Pipe Liners, Inc. | Apparatus for deforming plastic tubing for lining pipe |
| US5205886A (en) | 1990-05-02 | 1993-04-27 | Du Pont Canada Inc. | Method of lining metallic pipe using concentric tubes of thermoplastic polymer and tear resistant material |
| FR2683260B1 (en) | 1991-11-05 | 1995-10-20 | Aerospatiale | TUBE OF COMPOSITE MATERIAL FOR DRILLING AND / OR TRANSPORT OF LIQUID OR GASEOUS PRODUCTS, PARTICULARLY FOR OIL EXPLOITATION AT SEA AND METHOD FOR MANUFACTURING SUCH A TUBE. |
| EP0584381B1 (en) | 1992-08-20 | 1998-06-17 | Ivan C. Mandich | Method for installing plastic liners in a pipe |
| SE505517C2 (en) | 1996-01-11 | 1997-09-08 | Uponor Bv | Procedure for the renovation of grounded pipes where the lining pipes were successfully fused |
| US5921285A (en) | 1995-09-28 | 1999-07-13 | Fiberspar Spoolable Products, Inc. | Composite spoolable tube |
| US5803666A (en) * | 1996-12-19 | 1998-09-08 | Keller; Carl E. | Horizontal drilling method and apparatus |
| GB9819712D0 (en) | 1998-09-11 | 1998-11-04 | Burley Colin G | Method of lining pipes |
| CA2382454A1 (en) | 2000-06-23 | 2002-01-03 | James Fenwick Mason | Thermoplastic pipeline-liner not requiring venting of the annulus between the liner and the host pipe |
| FR2837898B1 (en) | 2002-03-28 | 2004-07-16 | Coflexip | FLEXIBLE TUBULAR PIPE WITH POLYMERIC SHEATH IN ELASTOMERIC THERMOPLASTIC POLYMER |
| EP1443257A1 (en) | 2003-02-03 | 2004-08-04 | NordiTube Technologies AB | Lining material for pipelines |
| US7281422B2 (en) * | 2003-09-04 | 2007-10-16 | Keller Carl E | Method for borehole conductivity profiling |
| US7926578B2 (en) * | 2007-10-03 | 2011-04-19 | Tesco Corporation | Liner drilling system and method of liner drilling with retrievable bottom hole assembly |
| US9008971B2 (en) * | 2010-12-30 | 2015-04-14 | Carl E. Keller | Measurement of hydraulic head profile in geologic media |
| WO2014026190A1 (en) | 2012-08-10 | 2014-02-13 | National Oilwell Varco, L.P. | Composite coiled tubing connectors |
| US9534477B2 (en) * | 2013-03-14 | 2017-01-03 | Carl E. Keller | Method of installation of flexible borehole liner under artesian conditions |
| GB2541430B (en) * | 2015-08-19 | 2020-01-15 | Pioneer Lining Tech Limited | Improved Pipe Lining Leak Testing Methods and Apparatus |
| BR112020013437A2 (en) * | 2018-01-10 | 2021-02-17 | Shell Internationale Research Maatschappij B.V. | system and method of forming a tube assembly |
-
2020
- 2020-07-16 US US16/931,238 patent/US11371324B2/en active Active
- 2020-08-19 WO PCT/US2020/046941 patent/WO2022015343A1/en not_active Ceased
-
2023
- 2023-01-16 SA SA523442193A patent/SA523442193B1/en unknown
Patent Citations (3)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| US6024910A (en) * | 1996-06-06 | 2000-02-15 | Shonan Gosei-Jushi Seisakusho K.K. | Method for lining a tubular conduit |
| EP1798370A1 (en) * | 2005-12-14 | 2007-06-20 | Services Petroliers Schlumberger | Methods and apparatus for well construction |
| US20200103065A1 (en) * | 2018-08-22 | 2020-04-02 | DCF Holding GmbH | Method and device for the reconstruction of a pipe section of a pipeline system |
Also Published As
| Publication number | Publication date |
|---|---|
| SA523442193B1 (en) | 2024-10-27 |
| US20220018223A1 (en) | 2022-01-20 |
| US11371324B2 (en) | 2022-06-28 |
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