WO2025006334A1 - Methods and systems for differentiating different types of fluids in a fluid stream - Google Patents
Methods and systems for differentiating different types of fluids in a fluid stream Download PDFInfo
- Publication number
- WO2025006334A1 WO2025006334A1 PCT/US2024/034983 US2024034983W WO2025006334A1 WO 2025006334 A1 WO2025006334 A1 WO 2025006334A1 US 2024034983 W US2024034983 W US 2024034983W WO 2025006334 A1 WO2025006334 A1 WO 2025006334A1
- Authority
- WO
- WIPO (PCT)
- Prior art keywords
- inflow control
- cavity
- fluid stream
- autonomous inflow
- well fluids
- 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
- E21B34/00—Valve arrangements for boreholes or wells
- E21B34/06—Valve arrangements for boreholes or wells in wells
- E21B34/08—Valve arrangements for boreholes or wells in wells responsive to flow or pressure of the fluid obtained
-
- 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
- E21B43/12—Methods or apparatus for controlling the flow of the obtained fluid to or in wells
-
- B—PERFORMING OPERATIONS; TRANSPORTING
- B01—PHYSICAL OR CHEMICAL PROCESSES OR APPARATUS IN GENERAL
- B01D—SEPARATION
- B01D17/00—Separation of liquids, not provided for elsewhere, e.g. by thermal diffusion
- B01D17/02—Separation of non-miscible liquids
-
- 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
- E21B34/00—Valve arrangements for boreholes or wells
- E21B34/06—Valve arrangements for boreholes or wells 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
- 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
- E21B43/08—Screens or liners
Definitions
- fluids are typically produced from a reservoir in a formation by drilling a wellbore into the formation, establishing a flow path between the reservoir and the wellbore, and conveying the fluids from the reservoir to the surface through the wellbore.
- a production tubing is disposed in the wellbore to carry the fluids to the surface.
- the produced fluids may include hydrocarbons (e.g., oil and/or gas) and water.
- hydrocarbons e.g., oil and/or gas
- water e.g., a ratio of hydrocarbons (e.g., oil and/or gas) to water may vary throughout the lifetime of the well.
- one or more density devices in the production tubing may be used to detect the fluid types.
- a float of the one or more density devices may change in position based on the density of the fluids.
- the float has many drawbacks. For example, a position of the float changes with tool inclination and/or with respect to gravity, and thus, it may be necessary to orientate the one or more density devices on deployment or to modify and tailor the design to each application. Additionally, the sensitivity to differentiate fluids becomes difficult when hydrocarbon and water densities are almost identical. Further, resulting buoyancy forces on the float may be small, particularly when hydrocarbon and water densities are almost identical (therefore, generating low forces to operate linkages).
- the detection response may be sudden and binary such that the float either floats or sinks.
- the one or more density devices instead of the float, includes a flapper that may change in position based on a viscosity of the fluids.
- the flapper has increasingly difficult differentiating fluids as the fluid properties become similar.
- Other conventional methods may include centrifugally rotating a float chamber of the one or more density devices to introduce a radial acceleration vector that is larger than the gravity vector on the float. Additionally, a rotation mechanism is required to operate this centrifugal design, which must continuously run.
- the rotation mechanism provides many disadvantages such as long-term durability and wear, debris intolerance and sensitivity to grit, and increased complexity and cost.
- embodiments disclosed herein relate to a method for fluid production in a wellbore having an autonomous inflow control device in a tubular string therein.
- the method may include directing well fluids, containing water and hydrocarbons, as a fluid stream into the autonomous inflow control device; deflecting the fluid stream off a deflection surface in a cavity of the autonomous inflow control device based on a predetermined fluid property range; closing or opening, with the deflected fluid stream, an actuation device in the cavity to cover or expose an influx outlet in fluid communication with the cavity; and exiting the fluid stream out of the cavity via an outlet in fluid communication with the tubular string.
- an autonomous inflow control device may include a body defining a cavity; an inlet in fluid communication with the cavity, the inlet receives well fluids; a deflection surface within the cavity, the well fluids deflect off the deflection surface at an angle based on a predetermined fluid property range of the well fluids; an influx outlet in fluid communication with the cavity; an actuation device disposed in the cavity, wherein based on the angle the well fluids deflect off the deflection surface, the actuation device moves between an open position and a closed position, wherein when the actuation device is in the closed position, the actuation device covers the influx outlet, wherein when the actuation device is in the open position, the actuation device exposes the influx outlet to direct a volume of water from the well fluids out of the cavity; and an outlet in fluid communication with the cavity, wherein the outlet directs the well fluids out of the cavity.
- embodiments disclosed herein relate to a system that may include a tubing string disposed within a wellbore to be in fluid communication with a reservoir; one or more autonomous inflow control tools providing the tubing string to receive well fluids produced from the reservoir, wherein the one or more autonomous inflow control tools comprise a chamber in fluid communion with the tubing string; an autonomous inflow control device disposed in the chamber of the one or more autonomous inflow control tools, wherein the autonomous inflow control device is configured to regulate a flow of the well fluids entering the tubing string based on a ratio of hydrocarbons to water.
- the autonomous inflow control device comprises a body defining a cavity; an inlet in fluid communication with the cavity to receive the well fluid from the chamber; a deflection surface within the cavity, wherein the well fluids deflect off the deflection surface at an angle based on the ratio of hydrocarbons to water; an actuation device disposed in the cavity, wherein based on the angle the well fluids deflect off the deflection surface, the actuation device moves between an open position and a closed position, wherein when the actuation device is in the open position, the actuation device exposes the influx outlet to direct a volume of water from the well fluids out of the cavity and back into the chamber, and wherein when the actuation device is in the closed position, the actuation device covers the influx outlet; and an outlet in fluid communication with the cavity, wherein the outlet directs the well fluids into a bore of the one or more autonomous inflow control tools.
- FIG. 1 illustrates a schematic diagram of a completion well system according to one or more embodiments of the present disclosure.
- FIG. 2 illustrates a close-up diagram of the dotted box 2 from FIG. 1 according to one or more embodiments of the present disclosure.
- FIGs. 3A-5B illustrate a close-up diagram of the dotted box 3 from FIG. 2 according to one or more embodiments of the present disclosure.
- FIG. 6 illustrate a profile of an autonomous inflow control device according to one or more embodiments of the present disclosure.
- FIG. 7 illustrates a flowchart according to one or more embodiments of the present disclosure.
- embodiments disclosed herein are described with terms designating a rig site in reference to a land rig, but any terms designating rig type should not be deemed to limit the scope of the disclosure.
- embodiments of the disclosure may be used on an offshore rig and various rig sites, such as land/drilling rig and drilling vessel.
- the various embodiments described herein may be used in various stages of a well, such as rig site preparation, drilling, completion, abandonment etc., and in other environments, such as work-over rigs, fracking installation, well-testing installation, and oil and gas production installation, without departing from the scope of the present disclosure.
- the embodiments are described merely as examples of useful applications, which are not limited to any specific details of the embodiments herein.
- the present disclosure may be directed to systems and methods to autonomously differentiating different types of fluids within a stream fluid.
- embodiments disclosed herein are directed to one or more autonomous inflow control devices in a wellbore to differentiate different types of fluids in a fluid steam of well fluids.
- These autonomous inflow control devices differentiate the composition of well fluids based on a deflection of the fluid stream flowing within the one or more inflow control devices. For example, the fluid stream flows over a curved portion within the one or more autonomous inflow control devices, and a shape of the curved portion causes the fluid stream to deflect based on fluid properties of the well fluids.
- the fluid properties may be a density and/or viscosity of the well fluids change based on a volume of water and hydrocarbons in the well fluids.
- the one or more autonomous inflow control devices further directs the fluid stream into a production tubing based on hydrocarbons therein. Accordingly, the autonomous one or more inflow control devices maintains a predetermined volume of hydrocarbons in fluids produced to a surface from the wellbore.
- the one or more autonomous inflow control devices as described herein may reduce product engineering, reduction of assembly time, hardware cost reduction, and weight and envelope reduction.
- the one or more embodiments of a method of using the autonomous one or more inflow control devices results in achieving well production targets without the need for operators to frequently visit and testing the well and reduction in operational costs associated with conventional production operations.
- FIG. 1 in one or more embodiments, an example of a completion well site 1 is illustrated.
- Well fluids are produced from a reservoir 11 in a formation 12 by drilling a wellbore 13 into the formation 12, establishing a flow path between the reservoir 11 and the wellbore 13, and conveying the fluids from the reservoir 11 to a surface 14 through the wellbore 13.
- the wellbore 13 may include a vertical section to reach the reservoir 11 and a horizontal section extending into the reservoir 11.
- a casing 15 may be installed in the wellbore 13.
- the casing 15 may be perforated to have perforations 16 into the reservoir 11 to allow a flow of the well fluids to enter the wellbore 13.
- a production tubing 17 is disposed in the wellbore 13 to carry the fluids to the surface 14.
- the production tubing 17 hangs from a wellhead 18 at the surface 14 and forms an annulus 19 between the production tubing 17 and the wellbore 13.
- the production tubing 17 may extend horizontally into the reservoir 11, thereby forming a flow conduit from the reservoir 11 to surface 14.
- the fluids are transports, via a production flow line, to a production storage, transport, or facility.
- a Christmas tree may be disposed on top of the wellhead 18 for fluid transportation.
- the well fluids flow into the annulus 19.
- the well fluids may contain water, a ratio of hydrocarbons (e.g., oil and/or gas) to water may vary throughout the lifetime of the well.
- one or more autonomous inflow control devices 100 may be provided in the production tubing 17. As the well fluids flow in the annulus 19, the produced well fluids may flow from the annulus 19 and into the production tubing 17 via the one or more autonomous inflow control devices 100.
- a close-up view of the dotted box 2 in FIG. 1 illustrates a cross-sectional view of the produced well fluids flowing into the one or more autonomous inflow control tools 100 according to one or more embodiments of the present disclosure.
- the autonomous inflow control downhole tool 100 includes a body 101 defining a bore 102 extending axially along an axis A from a first end 103 to a second end 104.
- the first end 103 and the second end 104 may be connection ends to couple the autonomous inflow control downhole tool 100 to a production tubing.
- the first end 103 may be a female threaded connection and the second end 104 may be a male threaded connection to couple to tubulars of a production tubing.
- a housing 107 Adjacent to the screen 105, a housing 107 covers an opening 108 in the body 101 which is fluid communication with the bore 102. Additionally, the housing 107 includes a chamber 109 to receive the well fluids from the space 106. The well fluids flow (see block arrow F”) from the space 106 and into the chamber 109. In the chamber 109, the well fluids may enter the bore 102 via the opening 108. Once in the bore 102, the well fluids may proceed to flow (see block arrow F” ’) out of the autonomous inflow control downhole tool 100 and into the production tubing 17 to go up to the surface (14).
- a close-up view of the dotted box 3 in FIG. 2 illustrates a cross-sectional view of the autonomous inflow control device 200 according to one or more embodiments.
- the autonomous inflow control device 200 includes a body having a top portion 201 and a bottom portion 202.
- the top portion 201 includes a shoulder 203 to land on the body 101.
- the bottom portion 202 includes a connection surface 204 to couple to a wall 108a forming the opening 108.
- the connection surface 204 may include threads to be threadly coupled to threads on the wall 108a.
- the fluid stream is directed into a cavity 206 defined by the body of the autonomous inflow control device 200.
- the cavity 206 includes a straight-line profile 207 over a length LS from the orifice 205.
- the length LS may be based on a length required to reduce a turbulence in the fluid stream to form a steady stream.
- geometric features such as strakes or other similar geometric features, may also be added the straight-line profile 207 to reduce turbulence to form a steady stream.
- the fluid stream flows from the straight-line profile 207 and is directed over a deflection surface 208.
- a profile of the deflection surface 208 causes the fluid stream to deflect (see block arrow S’).
- the profile of the deflection surface 208 may have a predetermined geometry to deflect the fluid stream at an angle A determined from a predetermined fluid property range of the fluid stream.
- the profile of the deflection surface 208 may be a convex curve with a radius r designed to deflect (see block arrow S’) the fluid stream at the angle A.
- the deflection angle A of the fluid stream measurably changes when a density and/or viscosity of this fluid stream changes.
- the radius r or curvature of the deflection surface 208 may be chosen to maintain laminar or consistent fluid flow over a portion of the deflection surface 208.
- a nozzle divergence angle of under 20 degrees is typically used in a venturi nozzle to ensure the fluid stream does not break away from the wall.
- a NACA duct and de Laval nozzle have carefully controlled wall surface geometries to prevent cavitation, turbulence or eddies, and ensure smooth flow.
- a curvature or radius may then be tightened at a particular distance along the deflection surface 208 to set the approximate location where the fluid stream breaks free from the deflection surface 208 and travels to an actuation device (209).
- the valve 209 may be a spring-loaded valve such that the predetermined pressure matches a required pressure to overcome a spring load and compress a spring of the valve 209 thereby closing the valve 209.
- the valve 209 may be a reed valve such that the predetermined pressure matches a required pressure to move a pedal or retainer to cover influx outlet 210 thereby closing the valve 209.
- One skilled in the art will appreciate how the valve 209 may operate in an analog method, adjusting a bulk influx of well fluid in proportion to the fluid stream deflection angle A. This gives a proportioning effect, throttling flow in proportion to water fraction in the cavity 206.
- the fluid stream when the fluid stream deflects the angle A and has the predetermined pressure to close valve 209, the fluid stream has the predetermined fluid property range, and the fluid stream exits (see block arrow S”) the cavity 206 via an outlet 211.
- the outlet 211 is in fluid communication with the bore 102 so that the fluid stream flows into the bore 102 from the cavity 206. From the bore 102, the fluid stream may travel up a production tubing.
- FIG. 3B an example of the fluid stream having a water influx is illustrated.
- the fluid stream flowing (see block arrow S’) over the deflection surface 208 deflects at a second angle A’ different from the angle A shown in FIG. 3A.
- the second angle A’ may be smaller than the angle A thereby signaling a change in a density and/or viscosity of this fluid stream.
- an opening and closing of the valve 209 causes a flow or pressure change in the influx outlet 210. This can actuate any suitable mechanism or system to then close primary ports in the tubing.
- the inflow control device 200 acts as a continuously operating pilot valve, sensing fluid properties. For example, when the inflow control device 200 senses water, the valve 209 closes the primary (much larger) ports (i.e., the outlet 211) to prevent water inflow from the well.
- valves 209 When the inflow control device 200 senses oil, the valves 209 opens the primary ports (i.e., the outlet 211) and oil can flow into the wellbore to surface.
- the valve 209 may be a lever, piston, diaphragm or any similar device to magnify the relatively modest force/pressure change into a suitably large force to open or close ports (e.g., the outlet 211 and influx outlet 210).
- hysteresis may be introduced to the autonomous inflow control device 200, to prevent the valve 209 from fluttering.
- a predetermined threshold to close the valve 209 may be a 70% water-cut in the well fluids. If the water-cut increases to 71% or more, the deflection of the fluid stream may match the first angle A to move the valve 209 to the closed position, as shown in FIG. 3A. However, if the water-cut drops to 69% or less, the deflection of the fluid stream may match the second angle A’ to move the valve 209 to the open position, as shown in FIG. 3B.
- the deflection of the fluid stream may match the second angle A’ to move the valve 209 to the open position, as shown in FIG. 3B.
- apprentice how introducing hysteresis may widen this range and allows for more stability in the autonomous inflow control device 200.
- the autonomous inflow control device 200 may be adjusted while in situ without needing to recover the autonomous inflow control device 200 to surface.
- a coiled-tubing operated a shifting-tool might be deployed into the wellbore (13) to adjust the autonomous inflow control device 200.
- the shifting -tool may enter the cavity 206 via the outlet 211. Once in the cavity 206, the shifting-tool may adjust the position of the valve 209 to set a new preset position thereby adjusting threshold ranges and water sensitivity. It is further envisioned that the shifting-tool may be used to adjust the deflection surface 208.
- FIGs. 4A and 4B another embodiment of the autonomous inflow control device 200 according to embodiments herein is illustrated, where like numerals represent like parts.
- the embodiment of FIGs. 4A and 4B is similar to that of the embodiment of FIGs. 3A and 3B.
- the actuation device is a lever, linkage, or switch 409 to be actuated based on the fluid stream deflection angle A to open or close the influx outlet 210.
- the lever, linkage, or switch 409 extends from a first end 409a to a second end 409b to cover (closed position) or expose (open position) the influx outlet 210.
- the fluid stream deflects at the angle A matching the predetermined angle based on the predetermined fluid property range of the fluid stream.
- This angle A correlates with the fluid stream deflecting and providing a predetermined pressure to the first end 409a of the lever, linkage, or switch 409 to cover the influx outlet 210.
- the fluid stream flowing see block arrow S’
- the fluid stream flowing over the deflection surface 208 deflects at the second angle A’ to apply a pressure to the second end 409b of the lever, linkage, or switch 409.
- the pressure on the second end 409b, the lever, linkage, or switch 409 rotates to move to the open position and exposes the influx outlet 210.
- FIGs. 5A and 5B another embodiment of the autonomous inflow control device 200 according to embodiments herein is illustrated, where like numerals represent like parts.
- the embodiment of FIGs. 5 A and 5B is similar to that of the embodiment of FIGs. 3A and 3B.
- the actuation device is a piston or plunger 509 which axially move based on the fluid stream deflection angle A to cover (closed position) or expose (open position) the influx outlet 210.
- the fluid stream deflects at the angle A matching the predetermined angle based on the predetermined fluid property range of the fluid stream.
- This angle A correlates with the fluid stream deflecting and providing a predetermined pressure to the piston or plunger 509 to axially move upward and cover the influx outlet 210.
- the fluid stream flowing see block arrow S’
- the fluid stream flowing over the deflection surface 208 deflects at the second angle A’ to apply less pressure to the piston or plunger 509.
- the piston or plunger 509 With less pressure than the predetermined pressure on the piston or plunger 509, the piston or plunger 509 axially moves downward to the open position and exposes the influx outlet 210.
- the autonomous inflow control device 200 may have an arc or ring profile.
- the autonomous inflow control device 200 may be easily packaged within the chamber (109) of the autonomous inflow control devices (100). Additionally, the arc or ring profile increases the insensitive of flow within the autonomous inflow control device 200 based on an orientation when deployed downhole. Further, the arc or ring profile advantageously also packages the cavity (206) in a periphery of the chamber (109) and leaves the bore (102) of the autonomous inflow control devices (100) unobstructed.
- FIG. 7 is a flowchart showing a method of a fluid production using the autonomous inflow control device 200 of FIGS. 2-6.
- One or more steps in FIG. 7 may be performed by one or more components as described in FIGs. 2-6.
- a non-transitory computer readable medium may store instructions on a memory coupled to a processor such that the instructions include functionality for operating the autonomous inflow control downhole tool 100. While the various steps in FIG. 7 are presented and described sequentially, one of ordinary skill in the art will appreciate that some or all of the steps may be executed in different orders, may be combined or omitted, and some or all of the steps may be executed in parallel. Furthermore, the steps may be performed actively or passively.
- Step 700 the well is placed in production mode to produce fluids from the reservoir.
- fluids such as hydrocarbons
- the well fluids flow in an annulus between the wellbore and the production tubing.
- Step 701 from the annulus, the well fluids flow into the autonomous inflow control device of the production tubing.
- the well fluids flow through the screen of the autonomous inflow control downhole tool.
- the screen filters the well fluids from debris and solids.
- the well fluids flow in the space between the screen and the body of the autonomous inflow control downhole tool. In the space, the well fluids flow into a chamber of a housing on the autonomous inflow control downhole tool.
- Step 702 from the chamber, the well fluids flow through the autonomous inflow control device in fluid communication as fluid stream.
- an orifice of the autonomous inflow control device receives the fluid stream from the chamber. Additionally, the orifice may mix the fluid stream to an average density and viscosity of the well fluids. For example, the fluid stream may be rotated in the orifice to the average density and viscosity of the well fluids. From the orifice, the fluid stream is directed over the deflection surface in the cavity of the autonomous inflow control device.
- Step 703 in the cavity, the fluid stream is deflected off the deflection surface in the autonomous inflow control device.
- a profile of the deflection surface causes the fluid stream to deflect an angle.
- the deflection angle is based on the curved profiled of the deflection surface and a predetermined fluid property range of the fluid stream.
- Step 704 a volume of water in the fluid stream determines the deflection angle off the deflection surface. If the volume of water does not surpass a predetermined threshold, the deflection angle is at the first angle to flow the fluid stream at a required velocity and pressure to close the valve in the cavity, as shown in Step 705. For example, the fluid stream provides a force great enough to close the valve thereby indicating the fluid stream is within the predetermined fluid property range.
- Step 706 with the valve closed, the fluid stream exits the autonomous inflow control device via an outlet in fluid communication with the cavity. From the outlet, the fluid stream enters the bore of the autonomous inflow control downhole tool.
- Step 707 the well fluids in the bore are transported to a surface via the production tubing. From the bore of the autonomous inflow control downhole tool, the well fluids flow into the production tubing and are pumped up the production tubing to the surface. From the surface, the well fluids may be transported to a production storage, transport, or facility.
- Step 704 if the volume of water does surpass a predetermined threshold, the deflection angle is at the second angle to flow the fluid stream at a velocity and pressure to open the valve in the cavity, as shown in Step 708. For example, the fluid stream does not provide enough force to close the valve thereby opening valve. The open valve indicates that there is water influx, and the fluid stream is not within the predetermined fluid property range.
- Step 709 the portion of the fluid stream with the water influx is exited out of the autonomous inflow control device.
- the influx outlet is exposed and in fluid communication with the cavity thereby allowing an exit for the portion of the fluid stream with the water influx.
- the portion of the fluid stream with the water influx flows through the influx outlet and back to the chamber of the autonomous inflow control downhole tool.
- Step 710 the remaining portion of the fluid stream is exited out of the autonomous inflow control device and into the production tubing.
- the remaining portion of the fluid stream exits the autonomous inflow control device via an outlet in fluid communication with the cavity. From the outlet, the fluid stream enters the bore of the autonomous inflow control downhole tool and into the production tubing.
- Step 711 the remaining portion of the fluid stream are transported to the surface via the production tubing. From the bore of the autonomous inflow control downhole tool, the remaining portion of the fluid stream flow into the production tubing and are pumped up the production tubing to the surface. From the surface, the well fluids may be transported to a production storage, transport, or facility.
- the flowchart of FIG. 7 allows for the autonomous inflow control device to differentiate between fluids in produced well fluids to avoid a water influx in the produced fluids and maintain a sufficient volume of hydrocarbons. Additionally, the flowchart of FIG. 7 allows for the autonomous inflow control device to be considered as a sensor for fluidic logic (i.e., the output changes with fluid type). Further, the autonomous inflow control device provides a mechanical method to determine the fluid properties and composition of produced well fluids based on a deflection angle.
- the autonomous inflow control device may improve an overall efficiency and performance at the well while reducing cost, well site safety, reduced risk of non-productive time (NPT), and many other advantages. Further, the autonomous inflow control device may provide further advantages such as not requiring external power, operating in any orientation and inclination, reducing the need for frequent well testing, and reducing or eliminating human interaction with well equipment to reduce human errors. It is noted that the autonomous inflow control device may be used for onshore and offshore oil and gas operations.
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Abstract
Description
Claims
Priority Applications (1)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| EP24743948.2A EP4735731A1 (en) | 2023-06-30 | 2024-06-21 | Methods and systems for differentiating different types of fluids in a fluid stream |
Applications Claiming Priority (2)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| US18/217,101 US12460521B2 (en) | 2023-06-30 | 2023-06-30 | Methods and systems for differentiating different types of fluids in a fluid stream |
| US18/217,101 | 2023-06-30 |
Publications (1)
| Publication Number | Publication Date |
|---|---|
| WO2025006334A1 true WO2025006334A1 (en) | 2025-01-02 |
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| Application Number | Title | Priority Date | Filing Date |
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| PCT/US2024/034983 Ceased WO2025006334A1 (en) | 2023-06-30 | 2024-06-21 | Methods and systems for differentiating different types of fluids in a fluid stream |
Country Status (3)
| Country | Link |
|---|---|
| US (2) | US12460521B2 (en) |
| EP (1) | EP4735731A1 (en) |
| WO (1) | WO2025006334A1 (en) |
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| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| WO2025190977A1 (en) * | 2024-03-11 | 2025-09-18 | Swellfix Uk Limited | Downhole flow control system |
| US12553318B1 (en) * | 2024-12-12 | 2026-02-17 | Baker Hughes Oilfield Operations Llc | Pilot amplified autonomous flow control configuration, method, and system |
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| US9506320B2 (en) | 2011-11-07 | 2016-11-29 | Halliburton Energy Services, Inc. | Variable flow resistance for use with a subterranean well |
| US9234404B2 (en) | 2012-02-29 | 2016-01-12 | Halliburton Energy Services, Inc. | Downhole fluid flow control system and method having a fluidic module with a flow control turbine |
| GB201418062D0 (en) * | 2014-10-13 | 2014-11-26 | Flotech Holdings Bvi Ltd | Downhole flow control device |
| CN107939350B (en) | 2016-10-12 | 2020-03-31 | 中国石油化工股份有限公司 | Selective inflow controller and completion string incorporating same |
| US10060221B1 (en) | 2017-12-27 | 2018-08-28 | Floway, Inc. | Differential pressure switch operated downhole fluid flow control system |
-
2023
- 2023-06-30 US US18/217,101 patent/US12460521B2/en active Active
-
2024
- 2024-06-21 EP EP24743948.2A patent/EP4735731A1/en active Pending
- 2024-06-21 WO PCT/US2024/034983 patent/WO2025006334A1/en not_active Ceased
-
2025
- 2025-09-25 US US19/340,283 patent/US20260022625A1/en active Pending
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| EP2531692B1 (en) * | 2010-02-02 | 2015-12-30 | Statoil Petroleum AS | Flow control device and flow control method |
| EP2383430B1 (en) * | 2010-04-29 | 2017-07-05 | Halliburton Energy Services, Inc. | Method and apparatus for controlling fluid flow using moveable flow diverter assembly |
| EP2675994B1 (en) * | 2011-11-11 | 2018-04-25 | Halliburton Energy Services, Inc. | Autonomous fluid control assembly having a movable, density-driven diverter for directing fluid flow in a fluid control system |
| US11319774B2 (en) * | 2012-03-21 | 2022-05-03 | Inflow Control AS | Downhole fluid control system |
| US20150060084A1 (en) * | 2013-08-29 | 2015-03-05 | Schlumberger Technology Corporation | Autonomous flow control system and methodology |
| WO2022106156A1 (en) * | 2020-11-17 | 2022-05-27 | Inflowcontrol As | A flow control device and method |
Also Published As
| Publication number | Publication date |
|---|---|
| US20250003318A1 (en) | 2025-01-02 |
| US20260022625A1 (en) | 2026-01-22 |
| EP4735731A1 (en) | 2026-05-06 |
| US12460521B2 (en) | 2025-11-04 |
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