WO2022032030A1 - Loss circulation treatment fluid injection into wells - Google Patents
Loss circulation treatment fluid injection into wells Download PDFInfo
- Publication number
- WO2022032030A1 WO2022032030A1 PCT/US2021/044842 US2021044842W WO2022032030A1 WO 2022032030 A1 WO2022032030 A1 WO 2022032030A1 US 2021044842 W US2021044842 W US 2021044842W WO 2022032030 A1 WO2022032030 A1 WO 2022032030A1
- Authority
- WO
- WIPO (PCT)
- Prior art keywords
- tubular
- metallic tubular
- adapter
- protective
- downhole
- 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
- E21B21/00—Methods or apparatus for flushing boreholes, e.g. by use of exhaust air from motor
- E21B21/003—Means for stopping loss of drilling fluid
-
- 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
- E21B17/18—Pipes provided with plural fluid passages
-
- 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
- E21B29/00—Cutting or destroying pipes, packers, plugs or wire lines, located in boreholes or wells, e.g. cutting of damaged pipes, of windows; Deforming of pipes in boreholes or wells; Reconditioning of well casings while in the ground
-
- E—FIXED CONSTRUCTIONS
- E21—EARTH OR ROCK DRILLING; MINING
- E21B—EARTH OR ROCK DRILLING; OBTAINING OIL, GAS, WATER, SOLUBLE OR MELTABLE MATERIALS OR A SLURRY OF MINERALS FROM WELLS
- E21B33/00—Sealing or packing boreholes or wells
- E21B33/10—Sealing or packing boreholes or wells in the borehole
- E21B33/12—Packers; Plugs
-
- E—FIXED CONSTRUCTIONS
- E21—EARTH OR ROCK DRILLING; MINING
- E21B—EARTH OR ROCK DRILLING; OBTAINING OIL, GAS, WATER, SOLUBLE OR MELTABLE MATERIALS OR A SLURRY OF MINERALS FROM WELLS
- E21B33/00—Sealing or packing boreholes or wells
- E21B33/10—Sealing or packing boreholes or wells in the borehole
- E21B33/13—Methods or devices for cementing, for plugging holes, crevices or the like
- E21B33/14—Methods or devices for cementing, for plugging holes, crevices or the like for cementing casings into boreholes
-
- 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
Definitions
- This disclosure relates to fluid injection into wells, and in particular, loss circulation treatment fluid injection into wells.
- lost circulation is an undesirable situation in which drilling fluid, also known as mud, flows into a subterranean formation instead of returning up to the surface.
- drilling fluid also known as mud
- partial lost circulation mud continues to flow to the surface with some loss of mud to the formation.
- total lost circulation all of the mud flows into the formation with no return to the surface.
- the consequences of lost circulation can range from a loss of drilling fluid to blowout or even loss of life.
- Prevention of lost circulation is desirable, but because lost circulation is such a common occurrence, remediation methods can help mitigate lost circulation when it has occurred.
- This disclosure describes a dual tubular device that can be used to flow lost circulation treatment fluid into a wellbore.
- the subject matter described in this disclosure can be implemented in particular implementations, so as to realize one or more of the following advantages.
- the use of the outer, protective tubular also allows for the deployment process (that is, running the apparatus downhole) to proceed independent of tripping speed limitations.
- a protective tubular is run downhole into a wellbore in a subterranean formation.
- a non-metallic tubular is disposed within the protective tubular.
- the non- metallic tubular includes an adapter at an uphole end of the non-metallic tubular.
- the adapter includes a spring-loaded latch, a ball seat, a shear pin, and a ball catcher.
- the shear pin holds a longitudinal position of the non-metallic tubular relative to the protective tubular while the shear pin is intact.
- a ball is flowed to the ball seat of the adapter, thereby shearing the shear pin of the adapter and allowing the non-metallic tubular to move longitudinally relative to the protective tubular.
- Pressure is applied to the ball to move the non-metallic tubular longitudinally relative to the protective tubular until an uphole end of the non-metallic tubular meets a downhole end of the protective tubular.
- the uphole end of the non-metallic tubular is coupled to the downhole end of the protective tubular using the spring-loaded latch of the adapter.
- Pressure is applied to the ball to shear the ball seat of the adapter, thereby allowing the ball to pass through the sheared ball seat and be received by the ball catcher of the adapter.
- a fluid is flowed into the non-metallic tubular through an opening defined by the adapter between the ball seat and the ball catcher.
- running the protective tubular downhole into the wellbore includes running a drill pipe downhole into the wellbore with the protective tubular disposed at a downhole end of the drill pipe.
- the non-metallic tubular includes at least one of plastic, rubber, or ceramic.
- the protective tubular includes a metal.
- the fluid is a lost circulation treatment fluid that includes bridging material, rapid-setting cement, thixotropic cement, lightweight cement, or a combination of these.
- the fluid is allowed to set within the wellbore.
- the non-metallic tubular is drilled after the fluid has set.
- the protective tubular and the non-metallic tubular are retrieved from the wellbore.
- the non-metallic tubular is re-disposed within the protective tubular.
- the protective tubular is run downhole into a second wellbore, for example, in the subterranean formation.
- Certain aspects of the subject matter described can be implemented as a method.
- a drill pipe is run downhole into a wellbore in a subterranean formation.
- a non-metallic tubular is run downhole through the drill pipe.
- the non-metallic tubular includes an adapter at an uphole end of the non-metallic tubular.
- the adapter includes a spring-loaded latch.
- At least a portion of the non-metallic tubular is exposed from a downhole end of the drill pipe.
- the uphole end of the non-metallic tubular is coupled to the downhole end of the drill pipe using the spring-loaded latch of the adapter.
- a fluid is flowed within the non-metallic tubular to the subterranean formation through an opening defined by the non-metallic tubular.
- the downhole end of the drill pipe includes a hanging sub.
- coupling the uphole end of the non-metallic tubular to the downhole end of the drill pipe includes coupling the uphole end of the non-metallic tubular to the hanging sub of the drill pipe using the spring-loaded latch of the adapter.
- running the non-metallic tubular downhole through the drill pipe includes running the non-metallic tubular downhole through the drill pipe using a slick line.
- the slick line is over pulled to release the slick line from the adapter of the non-metallic tubular before flowing the fluid.
- the fluid is a lost circulation treatment fluid that includes bridging material, rapid-setting cement, thixotropic cement, lightweight cement, or a combination of these.
- the fluid is allowed to set within the wellbore.
- the non-metallic tubular is drilled after the fluid has set.
- the drill pipe and the non-metallic tubular are retrieved from the wellbore.
- the drill pipe is run downhole into a second wellbore, for example, in the subterranean formation.
- the non-metallic tubular is run downhole through the drill pipe within the second wellbore.
- at least a portion of the non-metallic tubular is exposed from the downhole end of the drill pipe within the second wellbore.
- the uphole end of the non-metallic tubular is coupled to the downhole end of the drill pipe (within the second wellbore) using the spring-loaded latch of the adapter.
- the non-metallic tubular includes at least one of plastic, rubber, or ceramic.
- the apparatus includes a protective tubular, a non-metallic tubular, and an adapter.
- the protective tubular is configured to be run downhole into a subterranean formation.
- the protective tubular includes a downhole end that is configured to receive a latch at an inner circumference of the downhole end.
- the non-metallic tubular is disposed within the protective tubular.
- the non-metallic tubular has an outer diameter that is less than an inner diameter of the protective tubular.
- the adapter is at an uphole end of the non-metallic tubular.
- the adapter includes a shear pin and the latch.
- the shear pin is configured to hold a relative longitudinal position of the non-metallic tubular relative to the protective tubular while the shear pin is intact.
- the shear pin protrudes radially outward from the non-metallic tubular and is in contact with an inner circumferential wall of the protective tubular.
- the latch is a spring-loaded latch that is configured to couple the uphole end of the non-metallic tubular to the downhole end of the protective tubular in response to the uphole end of the non-metallic tubular meeting the downhole end of the protective tubular.
- the adapter includes a ball seat and a ball catcher.
- the ball seat is at an uphole end of the adapter and is configured to receive a ball.
- the shear pin is configured to be sheared in response to the ball seat receiving the ball, thereby allowing the non-metallic tubular to move longitudinally relative to the protective tubular.
- the ball catcher is positioned at or near a downhole end of the adapter.
- the ball seat is configured to be sheared in response to the spring-loaded latch coupling the uphole end of the non-metallic tubular to the downhole end of the protective tubular, thereby allowing the ball to pass through the sheared ball seat and be received by the call catcher.
- the adapter defines an opening between the ball seat and the ball catcher for flowing fluid into the non- metallic tubular.
- FIG. 1 is a schematic diagram of an example well.
- FIG. 2A is a schematic diagram of an example apparatus that can be implemented in the well of FIG. 1.
- FIG. 2B is a schematic diagram of an example apparatus that can be implemented in the well of FIG. 1.
- FIG. 3A is a flow chart of an example method that can be implemented by the apparatus of FIG. 2A.
- FIG. 3B is a flow chart of an example method that can be implemented by the apparatus of FIG. 2B.
- This disclosure describes a dual tubular device that can be used to flow lost circulation treatment fluid into a wellbore.
- the inner tubular is non-metallic, and the outer tubular protects the inner tubular as the device is run into the hole to the desired location.
- quick-setting lost circulation treatment fluids are needed to remedy lost circulation in a well.
- Such cases carry risk of flash setting of the treatment fluid, which can result in a string getting stuck in the wellbore.
- the inner tubular can be easily drilled out if necessary.
- the inner tubular can be purposely broken and left in the wellbore as a sacrificial tubular that is later drilled out with cement utilizing normal clean out or drilling operations that do not incur additional time or costs.
- the inner tubular after the lost circulation treatment fluid has been flowed into the wellbore, the inner tubular can be retrieved back into the outer tubular, transported to another location (for example, to a different well), and be reused.
- FIG. 1 depicts an example well 100 constructed in accordance with the concepts herein.
- the well 100 extends from the surface 106 through the Earth 108 to one more subterranean zones of interest 110 (one shown).
- the well 100 enables access to the subterranean zones of interest 110 to allow recovery (that is, production) of fluids to the surface 106 (represented by flow arrows in FIG. 1) and, in some implementations, additionally or alternatively allows fluids to be placed in the Earth 108.
- the subterranean zone 110 is a formation within the Earth 108 defining a reservoir, but in other instances, the zone 110 can be multiple formations or a portion of a formation.
- the subterranean zone can include, for example, a formation, a portion of a formation, or multiple formations in a hydrocarbon-beanng reservoir from which recovery operations can be practiced to recover trapped hydrocarbons.
- the subterranean zone includes an underground formation of naturally fractured or porous rock containing hydrocarbons (for example, oil, gas, or both).
- the well can intersect other suitable types of formations, including reservoirs that are not naturally fractured.
- the well 100 is shown as a vertical well, but in other instances, the well 100 can be a deviated well with a wellbore deviated from vertical (for example, horizontal or slanted), the well 100 can include multiple bores forming a multilateral well (that is, a well having multiple lateral wells branching off another well or wells), or both.
- the well 100 is a gas well that is used in producing hydrocarbon gas (such as natural gas) from the subterranean zones of interest 110 to the surface 106. While termed a “gas well,” the well need not produce only dry gas, and may incidentally or in much smaller quantities, produce liquid including oil, water, or both. In some implementations, the well 100 is an oil well that is used in producing hydrocarbon liquid (such as crude oil) from the subterranean zones of interest 110 to the surface 106. While termed an “oil well,” the well not need produce only hydrocarbon liquid, and may incidentally or in much smaller quantities, produce gas, water, or both. In some implementations, the production from the well 100 can be multiphase in any ratio.
- hydrocarbon gas such as natural gas
- the production from the well 100 can be multiphase in any ratio.
- the production from the well 100 can produce mostly or entirely liquid at certain times and mostly or entirely gas at other times.
- the concepts herein, though, are not limited in applicability to gas wells, oil wells, or even production wells, and could be used in wells for producing other gas or liquid resources or could be used in injection wells, disposal wells, or other types of wells used in placing fluids into the Earth.
- the wellbore of the well 100 is typically, although not necessarily, cylindrical.
- FIG. 2 A is a schematic diagram of an implementation of the apparatus 200a that can be implemented in the well 100.
- the apparatus 200a includes a non- metallic tubular 201 and an adapter 203.
- the non-metallic tubular 201 is configured to be disposed within a protective tubular 250 while the non-metallic tubular 201 is run downhole to a subterranean zone (for example, the zone 110).
- the adapter 203 is located at an uphole end 201a of the non-metallic tubular 201.
- the protective tubular 250 is a drill pipe.
- the drill pipe is run downhole with the non-metallic tubular 201 disposed within the drill pipe.
- the protective tubular 250 includes a downhole end 250b that is configured to receive a latch (for example, the spring-loaded latch 205 described in more detail later) at an inner circumference of the downhole end 250b.
- a latch for example, the spring-loaded latch 205 described in more detail later
- the construction of the protective tubular 250 is configured to withstand the impacts, scraping, and other physical challenges the apparatus 200a will encounter while being passed hundreds of feet/meters or even multiple miles/kilometers into and out of the well 100.
- the apparatus 200a can be disposed in the well 100 at a depth of up to 20,000 feet (6,096 meters). Beyond just a rugged exterior, this encompasses having certain portions of any electronics being ruggedized to be shock resistant and remain fluid tight during such physical challenges and during operation.
- the protective tubular 250 is configured to withstand and operate for extended periods of time (for example, multiple weeks, months or years) at the pressures and temperatures experienced in the well 100, which temperatures can exceed 400 degrees Fahrenheit (°F) / 205 degrees Celsius (°C) and pressures over 2,000 pounds per square inch gauge (psig), and while submerged in the well fluids (gas, water, or oil as examples).
- the protective tubular 250 is made of metal, for example, stainless steel.
- the apparatus 200a can operate in a variety of downhole conditions of the well 100.
- the initial pressure within the well 100 can vary based on the type of well, depth of the well 100, and production flow from the perforations into the well 100.
- the pressure in the well 100 proximate a bottomhole location is sub-atmospheric, where the pressure in the well 100 is at or below about 14.7 pounds per square inch absolute (psia), or about 101.3 kiloPascal (kPa).
- the apparatus 200a can operate in sub-atmospheric well pressures, for example, at well pressure between 2 psia (13.8 kPa) and 14.7 psia (101.3 kPa).
- the pressure in the well 100 proximate a bottomhole location is much higher than atmospheric, where the pressure in the well 100 is above about 14.7 pounds per square inch absolute (psia), or about 101.3 kiloPascal (kPa).
- the apparatus 200a can operate in above atmospheric well pressures.
- the non-metallic tubular 201 has an outer diameter that is less than an inner diameter of the protective tubular 250, such that the entire non-metallic tubular 201 can be disposed within the protective tubular 250.
- the non-metalhc tubular 201 is made of a material that can be milled or drilled through without exerting more force than is typical for drilling through cement in a wellbore.
- the non- metalhc tubular 201 is made of a non-metalhc material, such as plastic, rubber, ceramic, or a combination of these.
- a lost circulation treatment fluid can be injected through the non-metalhc tubular 201.
- the lost circulation treatment fluid includes bridging material, rapid-setting cement, thixotropic cement, lightweight cement, or a combination of these.
- the non-metalhc tubular 201 can be more easily drilled in comparison to tubulars made of stronger material (such as metal).
- the non- metalhc tubular 201 is protected by the protective tubular 250 while the non-metalhc tubular 201 is run downhole.
- the protective tubular 250 prevents potential slack off on the non-metalhc tubular 201 as it is being run downhole.
- the non-metalhc tubular 201 reaches a desired location in the well 100 (for example, the zone 110), the non- metalhc tubular 201 can be exposed from the protective tubular 250, and the lost circulation treatment fluid can be injected through the non-metalhc tubular 201 to the zone 110 to remedy the lost circulation.
- the adapter 203 includes a spring-loaded latch 205.
- the spring-loaded latch 205 includes a spring and a latch that protrudes radially outward with respect to the body of the adapter 203.
- the spring of the spring-loaded latch 205 biases the latch in a radially outward direction with respect to the body of the adapter 203.
- the spring-loaded latch 205 is configured to couple the uphole end 201a of the non-metalhc tubular 201 to a downhole end 250b of the protective tubular 250 (drill pipe).
- the spring-loaded latch fixes the position of the non-metalhc tubular relative to the protective tubular 250.
- the protective tubular 250 includes a hanging sub 251 at the downhole end 250b of the protective tubular 250.
- the spring-loaded latch 205 of the adapter 203 is configured to couple the uphole end 201a of the non-metallic tubular 201 to the hanging sub 251 of the protective tubular 250.
- the adapter 203 is configured to couple to a slick line, such that the non-metalhc tubular 201 is configured to be run downhole to the subterranean zone 110 through the drill pipe by the slick line.
- the adapter 203 is configured to release the non-metallic tubular 201 from the slick line in response to over pull of the slick line in an uphole direction exceeding an over pull threshold of the adapter 203.
- the drill pipe (protective tubular 250) is run downhole into the well 100.
- the non-metallic tubular 201 is run downhole via slick line through the drill pipe (protective tubular 250). Because the non-metallic tubular 201 is run through the protective tubular 250, the non-metallic tubular 201 is protected as it is being run downhole. Once the non-metallic tubular 201 reaches the desired depth within the well 100 (for example, the zone 110), the non-metallic tubular 201 is exposed from the downhole end 250b of the protective tubular 250 (drill pipe).
- the spring-loaded latch 205 of the adapter 203 couples the uphole end 201a of the non-metallic tubular 201 to the downhole end 250b of the protective tubular 250.
- Lost circulation treatment fluid is then injected through the non-metallic tubular 201 to the zone 110 to remedy the lost circulation.
- the apparatus 200a can then be pulled out of hole, and in some cases, be reused in another well.
- an aggressive cement or a rapid-setting cement is used as the lost circulation treatment fluid, after the lost circulation treatment fluid has been given enough time to change properties (for example, set), the non-metallic tubular 201 is drilled, and drilling operations can continue.
- FIG. 2B is a schematic diagram of another implementation of the apparatus 200b that can be implemented in the well 100.
- the apparatus 200b shown in FIG. 2B includes similar features as the apparatus 200a shown in FIG. 2A.
- the apparatus 200b includes a protective tubular 250, a non-metallic tubular 201, and an adapter 203.
- the protective tubular 250 is configured to be run downhole into a subterranean formation (for example, into the well 100 to the zone 110).
- the non- metallic tubular 201 is disposed within the protective tubular 250.
- the adapter 203 is at an uphole end 201a of the non-metallic tubular 201.
- the construction of the external components of the apparatus 200b are configured to withstand the impacts, scraping, and other physical challenges the apparatus 200b will encounter while being passed hundreds of feet/meters or even multiple miles/kilometers into and out of the well 100.
- the apparatus 200b can be disposed in the well 100 at a depth of up to 20,000 feet (6,096 meters). Beyond just a rugged exterior, this encompasses having certain portions of any electronics being ruggedized to be shock resistant and remain fluid tight during such physical challenges and during operation.
- the protective tubular is configured to withstand and operate for extended periods of time (for example, multiple weeks, months or years) at the pressures and temperatures experienced in the well 100, which temperatures can exceed 400 degrees Fahrenheit (°F) / 205 degrees Celsius (°C) and pressures over 2,000 pounds per square inch gauge (psig), and while submerged in the well fluids (gas, water, or oil as examples).
- the apparatus 200b can operate in a variety of downhole conditions of the well 100.
- the initial pressure within the well 100 can vary based on the type of well, depth of the well 100, and production flow from the perforations into the well 100.
- the pressure in the well 100 proximate a bottomhole location is sub-atmospheric, where the pressure in the well 100 is at or below about 14.7 pounds per square inch absolute (psia), or about 101.3 kiloPascal (kPa).
- the apparatus 200a can operate in sub-atmospheric well pressures, for example, at well pressure between 2 psia (13.8 kPa) and 14.7 psia (101.3 kPa).
- the pressure in the well 100 proximate a bottomhole location is much higher than atmospheric, where the pressure in the well 100 is above about 14.7 pounds per square inch absolute (psia), or about 101.3 kiloPascal (kPa).
- the apparatus 200a can operate in above atmospheric well pressures.
- the protective tubular 250 can be configured to interface with one or more of the common deployment systems, such as jointed tubing (that is, lengths of tubing joined end-to-end), a sucker rod, coiled tubing (that is, not- jointed tubing, but rather a continuous, unbroken and flexible tubing formed as a single piece of material), or wireline with an electrical conductor (that is, a monofilament or multifilament wire rope with one or more electrical conductors, sometimes called e-line) and thus have a corresponding connector (for example, a jointed tubing connector, coiled tubing connector, or wireline connector).
- the protective tubular 250 interfaces with a downhole end of a drill pipe, and the drill pipe is run downhole into the well 100 to deploy the apparatus 200.
- a portion of the adapter 203 resides in an inner volume of the non-metallic tubular 201.
- the adapter 203 and the non-metallic tubular 201 are fixed in position relative to each other. As such, the adapter 203 and the non- metallic tubular 201 do not move (radially or longitudinally) relative to one another.
- the adapter 203 includes the spring-loaded latch 205.
- the spring-loaded latch 205 is configured to couple the uphole end 201a of the non-metallic tubular 201 to a downhole end 250b of the protective tubular 250 in response to the uphole end 201a of the non-metallic tubular 201 meeting the downhole end 250b of the protective tubular 250.
- the adapter 203 includes a ball seat 207.
- the ball seat 207 is configured to receive a ball 290.
- the ball 290 can be flowed (for example, with a fluid) to the ball seat 207.
- the adapter 203 includes a shear pin 209.
- the shear pin 209 is configured to hold a relative longitudinal position of the non-metallic tubular 201 relative to the protective tubular 250 while the shear pin 209 is intact.
- the shear pin 209 protrudes radially outward from the non- metallic tubular 201 and is in contact with an inner circumferential wall of the protective tubular 250 when the shear pin 209 is intact.
- the shear pin 209 holds the relative longitudinal position of the non-metallic tubular 201 relative to the protective tubular 250 as the apparatus 200 is run downhole to the zone 110.
- the shear pin 209 In response to the ball seat 207 receiving the ball 290, the shear pin 209 is configured to be sheared (for example, broken), thereby allowing the non-metallic tubular 201 to move longitudinally relative to the protective tubular 250.
- the shear pin 209 When the shear pin 209 is broken, the shear pin 209 loses contact with the inner circumferential wall of the protective tubular 250, and the non-metallic tubular 201 is free to move longitudinally relative to the protective tubular 250.
- the spring-loaded latch 205 couples the uphole end 201a of the non-metallic tubular 201 to the downhole end 250b of the protective tubular 250.
- the adapter 203 includes a ball catcher 211 that is positioned at or near a downhole end of the adapter 203.
- the ball seat 207 is configured to be sheared in response to the spring-loaded latch 205 coupling the uphole end 201a of the non-metallic tubular 201 to the downhole end 250b of the protective tubular 250, thereby allowing the ball 290 to pass through the sheared ball seat 207 and be received by the ball catcher 211.
- the adapter 203 defines an opening 213 between the ball seat 207 and the ball catcher 211 through which fluid can flow into the non-metallic tubular 201. The fluid can then flow out of the non-metallic tubular 201 and into the zone 110.
- the non-metallic tubular 201 is disposed within the protective tubular 250.
- the protective tubular 250 is coupled to a downhole end of a drill pipe.
- the drill pipe (with the protective tubular 250 and non-metallic tubular 201) is run downhole into the well 100. Because the non-metallic tubular 201 is disposed within the protective tubular 250, the non-metallic tubular 201 is protected as it is being run downhole. Once the non-metallic tubular 201 reaches the desired depth within the well 100 (for example, the zone 110), the ball 290 is flowed (for example, with a fluid) to the ball seat 207.
- the ball 290 received by the ball seat 207 shears the shear pin 209, which frees the non- metallic tubular 201 to move longitudinally relative to the protective tubular 250.
- the non-metallic tubular 201 is exposed from the downhole end 250b of the protective tubular 250.
- the spring-loaded latch 205 of the adapter 203 couples the uphole end 201a of the non-metallic tubular 201 to the downhole end 250b of the protective tubular 250.
- the ball 290 shears the ball seat 207 and passes through the ball seat 207 to be received by the ball catcher 211.
- the ball 290 shearing and passing through the ball seat 207 exposes the opening 213 which allows for fluid communication between upstream of the apparatus 200b and the inner volume of the non-metallic tubular 201.
- Lost circulation treatment fluid is then injected through the non-metallic tubular 201 to the zone 110 to remedy the lost circulation.
- the apparatus 200b can then be pulled out of hole, and in some cases, be reused in another well. In cases where an aggressive cement or a rapid-setting cement is used as the lost circulation treatment fluid, after the lost circulation treatment fluid has been given enough time to change properties (for example, set), the non-metallic tubular 201 is drilled, and drilling operations can continue.
- FIG. 3A is a flow chart of an example method 300a that can be implemented, for example, by the apparatus 200a.
- a drill pipe is run downhole into a wellbore in a subterranean formation (for example, the wellbore of the well 100).
- a non-metallic tubular (for example, the non-metallic tubular 201) is run through the drill pipe.
- the non-metallic tubular 201 includes an adapter 203 at an uphole end 201a of the non-metallic tubular 201, and the adapter 203 includes a spring-loaded latch 205.
- the adapter 203 can be coupled to a slick line, and the slick line can be used to run the non-metallic tubular 201 through the drill pipe at step 304.
- the uphole end 201a of the non-metallic tubular 201 is coupled to the downhole end of the drill pipe using the spring-loaded latch 205 of the adapter 203.
- the downhole end of the drill pipe can include a hanging sub.
- coupling the uphole end 201a of the non-metallic tubular 201 to the downhole end of the drill pipe at step 308 includes coupling the uphole end 201a of the non-metallic tubular 201 to the hanging sub of the drill pipe using the spring-loaded latch 205 of the adapter 203.
- a fluid is flowed from within the non-metallic tubular 201 to the subterranean formation through an opening defined by the non-metallic tubular 201.
- the slick line is over pulled to release the slick line from the adapter 203 before flowing the fluid at step 310.
- the fluid flowed at step 310 is a lost circulation treatment fluid that includes bridging material, rapid-setting cement, thixotropic cement, lightweight cement, or a combination of these.
- the fluid is allowed to set within the wellbore.
- the non-metallic tubular 201 is drilled after the fluid has set.
- FIG. 3B is a flow chart of an example method 300b that can be implemented, for example, by the apparatus 200b.
- a protective tubular for example, the protective tubular 250
- running the protective tubular 250 into the wellbore at step 312 includes running a drill pipe downhole into the wellbore with the protective tubular 250 disposed at a downhole end of the drill pipe.
- a non-metallic tubular (for example, the non-metallic tubular 201) is disposed within the protective tubular 250 during step 312.
- the non-metallic tubular 201 includes an adapter 203 at an uphole end 201a of the non- metallic tubular 201.
- the adapter 203 includes a spring-loaded latch 205, a ball seat 207, a shear pin 209, and a ball catcher 211.
- the shear pin 209 holds a longitudinal position of the non-metallic tubular 201 relative to the protective tubular 250 while the shear pin 209 is intact.
- a ball for example, the ball 290
- a ball is flowed to the ball seat 207 of the adapter 203, thereby shearing the shear pin 209 of the adapter 203. Shearing the shear pin 209 allows the non-metallic tubular 201 to move longitudinally relative to the protective tubular 250.
- step 316 pressure is applied to the ball 290 to move the non-metallic tubular 201 longitudinally relative to the protective tubular 250 until an uphole end 201a of the non-metallic tubular 201 meets a downhole end 250b of the protective tubular 250.
- the uphole end 201a of the non-metallic tubular 201 is coupled to the downhole end 250b of the protective tubular 250 using the spring-loaded latch 205 of the adapter 203.
- step 320 pressure is applied to the ball 290 to shear the ball seat 207 of the adapter 203, thereby allowing the ball 290 to pass through the sheared ball seat 207 and be received by the ball catcher 211 of the adapter 203.
- a fluid is flowed into the non-metallic tubular 201 through an opening defined by the adapter 203 between the ball seat 207 and the ball catcher 211 (for example, the opening 213).
- the fluid flowed at step 322 is a lost circulation treatment fluid that includes bridging material, rapid-setting cement, thixotropic cement, lightweight cement, or a combination of these.
- the fluid is allowed to set within the wellbore.
- the non-metallic tubular 201 is drilled after the fluid has set.
- the terms “a,” “an,” or “the” are used to include one or more than one unless the context clearly dictates otherwise.
- the term “or” is used to refer to a nonexclusive “or” unless otherwise indicated.
- the statement “at least one of A and B” has the same meaning as “A, B, or A and B.”
- the phraseology or terminology employed in this disclosure, and not otherwise defined is for the purpose of description only and not of limitation. Any use of section headings is intended to aid reading of the document and is not to be interpreted as limiting; information that is relevant to a section heading may occur within or outside of that particular section.
- the term “about” or “approximately” can allow for a degree of variability in a value or range, for example, within 10%, within 5%, or within 1% of a stated value or of a stated limit of a range.
- the term “substantially” refers to a majority of, or mostly, as in at least about 50%, 60%, 70%, 80%, 90%, 95%, 96%, 97%, 98%, 99%, 99.5%, 99.9%, 99.99%, or at least about 99.999% or more.
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- Engineering & Computer Science (AREA)
- Life Sciences & Earth Sciences (AREA)
- Geology (AREA)
- Mining & Mineral Resources (AREA)
- Physics & Mathematics (AREA)
- Environmental & Geological Engineering (AREA)
- Fluid Mechanics (AREA)
- General Life Sciences & Earth Sciences (AREA)
- Geochemistry & Mineralogy (AREA)
- Mechanical Engineering (AREA)
- Earth Drilling (AREA)
- Quick-Acting Or Multi-Walled Pipe Joints (AREA)
Abstract
Description
Claims
Priority Applications (1)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| SA523442436A SA523442436B1 (en) | 2020-08-07 | 2023-02-04 | Injection of loss of circulation treatment fluid into wells |
Applications Claiming Priority (2)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| US16/988,399 | 2020-08-07 | ||
| US16/988,399 US11313187B2 (en) | 2020-08-07 | 2020-08-07 | Loss circulation treatment fluid injection into wells |
Publications (1)
| Publication Number | Publication Date |
|---|---|
| WO2022032030A1 true WO2022032030A1 (en) | 2022-02-10 |
Family
ID=77519857
Family Applications (1)
| Application Number | Title | Priority Date | Filing Date |
|---|---|---|---|
| PCT/US2021/044842 Ceased WO2022032030A1 (en) | 2020-08-07 | 2021-08-05 | Loss circulation treatment fluid injection into wells |
Country Status (3)
| Country | Link |
|---|---|
| US (2) | US11313187B2 (en) |
| SA (1) | SA523442436B1 (en) |
| WO (1) | WO2022032030A1 (en) |
Citations (4)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| US20130068481A1 (en) * | 2011-09-20 | 2013-03-21 | Saudi Arabian Oil Company | A Bottom Hole Assembly For Deploying An Expandable Liner In a Wellbore |
| US20180187492A1 (en) * | 2017-01-05 | 2018-07-05 | Saudi Arabian Oil Company | Drilling bottom hole assembly for loss circulation mitigation |
| US20180274312A1 (en) * | 2017-03-27 | 2018-09-27 | Saudi Arabian Oil Company | Lost circulation zone isolating liner |
| US20190257162A1 (en) * | 2017-05-26 | 2019-08-22 | Saudi Arabian Oil Company | Mitigating drilling circulation loss |
Family Cites Families (7)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| US403195A (en) | 1889-05-14 | Apparatus for operating railway-switches | ||
| US4031957A (en) * | 1976-07-23 | 1977-06-28 | Lawrence Sanford | Method and apparatus for testing and treating well formations |
| US4287949A (en) * | 1980-01-07 | 1981-09-08 | Mwl Tool And Supply Company | Setting tools and liner hanger assembly |
| GB9217537D0 (en) | 1992-08-18 | 1992-09-30 | Nodeco Ltd | Improvements in or relating to protective arrangements |
| US6557640B1 (en) | 1998-12-07 | 2003-05-06 | Shell Oil Company | Lubrication and self-cleaning system for expansion mandrel |
| CA2761004C (en) * | 2009-05-07 | 2019-03-05 | Churchill Drilling Tools Limited | Downhole material delivery |
| US8453724B2 (en) | 2010-11-12 | 2013-06-04 | Saudi Arabian Oil Company | Tool for recovering junk and debris from a wellbore of a well |
-
2020
- 2020-08-07 US US16/988,399 patent/US11313187B2/en active Active
-
2021
- 2021-08-05 WO PCT/US2021/044842 patent/WO2022032030A1/en not_active Ceased
-
2022
- 2022-03-24 US US17/703,488 patent/US11613944B2/en active Active
-
2023
- 2023-02-04 SA SA523442436A patent/SA523442436B1/en unknown
Patent Citations (4)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| US20130068481A1 (en) * | 2011-09-20 | 2013-03-21 | Saudi Arabian Oil Company | A Bottom Hole Assembly For Deploying An Expandable Liner In a Wellbore |
| US20180187492A1 (en) * | 2017-01-05 | 2018-07-05 | Saudi Arabian Oil Company | Drilling bottom hole assembly for loss circulation mitigation |
| US20180274312A1 (en) * | 2017-03-27 | 2018-09-27 | Saudi Arabian Oil Company | Lost circulation zone isolating liner |
| US20190257162A1 (en) * | 2017-05-26 | 2019-08-22 | Saudi Arabian Oil Company | Mitigating drilling circulation loss |
Also Published As
| Publication number | Publication date |
|---|---|
| US11313187B2 (en) | 2022-04-26 |
| US20220213742A1 (en) | 2022-07-07 |
| SA523442436B1 (en) | 2024-11-06 |
| US11613944B2 (en) | 2023-03-28 |
| US20220042383A1 (en) | 2022-02-10 |
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