System for control and treatment in a well

The well system addresses chemical evaporation and clogging issues by using a directional valve and ICV to manage fluid flow, maintaining chemical levels and monitoring flowrates, thereby improving well performance and accuracy.

WO2025248255A1PCT designated stage Publication Date: 2025-12-04SILVERWELL TECH LTD
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Patent Information

Application Number
PCT/GB2025/051179
Authority / Receiving Office
WO · WO
Patent Type
Applications
Current Assignee / Owner
Priority Date
2024-05-30
Filing Date
2025-05-30
Publication Date
2025-12-04

AI Technical Summary

Technical Problem

Existing chemical injection systems in oil and gas wells face issues with chemical evaporation and clogging due to void formation in capillary tubes, leading to reduced well performance and inaccurate flowrate monitoring, especially when annulus pressure drops below hydrostatic pressure.

Method used

A well system with a tubular structure and control system that includes a directional valve and ICV, allowing selective routing of operating fluids to injection ports or isolating them, using a surface-controlled actuator to manage fluid flow and maintain chemical levels, and incorporating pressure sensors for diagnostic and positioning purposes.

Benefits of technology

The system effectively maintains chemical levels, prevents clogging, and accurately monitors flowrates, enhancing well performance by ensuring consistent injection and operation of inflow control valves.

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Abstract

A production string is installed in a well that includes production tubing and a control sub. In the control sub is a control system that controls both operation of an inflow control valve ("ICV") in the production string and chemical injection into the production string. The chemical injection is provided from surface through injection tubing installed in the well, which connects to a directional valve included with the control system. Positioning the directional valve diverts chemical injection to reposition the ICV between an open and closed configuration, or injects the chemical injection into the production string. A surface controlled actuator is used to operate the directional valve.
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Description

Attorney Docket No.: 0004159.700047 (STL0047) PCT PATENT APPLICATION SYSTEM FOR CONTROL AND TREATMENT IN A WELLInventor: Joel David ShawCROSS-REFERENCE TO RELATED APPLICATIONS

[0001] This application claims priority to and the benefit of co-pending U.S. ProvisionalApplication Serial No.63 / 653,536, filed May 30, 2024, the full disclosure of which is incorporated by reference herein in its entirety and for all purposes. BACKGROUND OF THE INVENTION1. Field of Invention

[0002] The present disclosure relates to wellbore operations, and more specifically to a systemthat controls devices in a well and provides treatment of the well.2. Description of Prior Art

[0003] Wells for extracting hydrocarbons from subterranean formations commonly include astring of production tubing deployed in the well for directing fluid to surface that is extracted from the formation. These wells are usually lined with casing, which is perforated at depths where the hydrocarbons are trapped within the formation. Packers are generally placed in an annulus between the tubing and casing proximate these depths to prevent the produced fluid from flowing uphole in the annulus. The fluid enters the production tubing through various types of valves, that include inflow control devices and inflow control valves. Gas lift valves are another type of valve that allow communication through the walls of the production tubing and between the annulus andproduction tubing bore. Gas lift valves are part of a gas lift system used for assisting with theproduction of liquid from inside a well having insufficient pressure to drive the liquid to surface.Gas lift systems inject lift into the annulus, and selectively inject the lift gas into a column of liquid69715834-1in the tubing to reduce static head pressure in the column, so that the formation pressure issufficient to push the liquid and other fluids inside the production tubing to surface.

[0004] Many oil and gas wells have production that can be aided with the addition of chemicals.Typical chemicals include foaming agents, corrosion inhibitors, viscosity reducers, and chemicalsfor generally improving production. Often these chemicals are added into the wells through asmall diameter capillary tube that extends from the surface down to the injection point. When designing a chemical injection system, it is advisable that chemical level never drops below the surface into the capillary tube so that a void or vacuum to liquid interface does not form in the capillary tube. If there for any amount of time, many chemicals will evaporate and leave particulates. This in turn clogs the capillary tube and the system will no longer function. Check valves on a capillary tube exit are not fully effective since check valves cannot maintain a fluid column in the capillary tube when annulus pressure drops below hydrostatic pressure in the capillary tube, while relief valves increase injection pump head requirements and can leak over time. Maintaining a chemical level in the capillary tube is also important so that flowrates of chemical additive can be accurately monitored. Because chemical additives are usually costly,amounts of chemical additive injected is generally low; and if not accurately monitored wellperformance can be reduced.69715834-1SUMMARY OF THE INVENTION

[0005] Disclosed is an example of a well system for producing fluids from a wellbore that includesa tubular installed in the wellbore, a fluid line having an operating fluid, and a control system selectively changeable to a position in which operating fluid is routed to an injection port in the tubular and is selectively changeable to another position in which operating fluid is routed to a valve that is moveable in response to the operating fluid. The valve is optionally an inflow control valve (“ICV”). Embodiments of the tubular include a production string and wellbore casing. In examples the control system includes a directional valve having a body with multiple passages, in examples of which, moving the body into a first position directs operating fluid from the fluid line to move the ICV into an open configuration so that fluid in an annulus surrounding the production string flows into a bore in the production string. Optionally, the control system includes a surface controlled actuator connected to the directional valve and in an alternative, the ICV includes a sleeve that is slideable within the production string, and has an opening that selectively registers with an opening in the production tubing when in the open configuration. In embodiments, the body is selectively positioned so that operating fluid is directed to the injection port, in an alternative, the body is selectively positioned so that operating fluid in the fluid line is isolatedfrom the injection port, and in another alternative, the body is selectively positioned so thatoperating fluid from the fluid line to move the valve into a closed configuration so that fluid in an annulus surrounding the production string is isolated from a bore in the production string,. In oneembodiment, a seal is in the directional valve that is energized by a compressive force exerted bythe body. The well system optionally includes a pressure sensor in communication with the fluid line for use in one of diagnostic, verification, or positioning requirements.69715834-1

[0006] Also disclosed is a method of operating a well that includes receiving an operating fluid inthe well, treating the well by injecting the operating fluid into the well, and using the operating fluid for actuating a valve in the well. Examples of the operating fluid include a foaming agent, an anti-foaming agent, a biocide, a corrosion inhibitor, a scale inhibitor, an asphaltene inhibitor, an agent to prevent hydrate formation, an adsorbent, an emulsifier, an emulsion breaker, a viscosity reducer, any currently known or later developed agent injected into a well, and combinations. The valve optionally is an inflow control valve that is selectively changed into open and closed configurations by rerouting the operating fluid. The method further includes optionally operating a directional valve to reroute the operating fluid. In examples, the directional valve includes a spool with multiple passages formed within that move in and out of alignment with the fluid line by operating an actuator coupled with the spool. In an alternative, the method further includes automatically calibrating operation of the inflow control valve based on sensing conditions in the well. The method optionally further comprising using multiple stages each with a directional valve and flow control valve or a packer. The method alternatively further includes using multiple stages each with a directional valve and flow control valve or packer, and directing fluid into a single return line.69715834-1BRIEF DESCRIPTION OF DRAWINGS

[0007] Some of the features and benefits of the present invention having been stated, others willbecome apparent as the description proceeds when taken in conjunction with the accompanying drawings, in which:

[0008] FIG. 1A is a side partial sectional view of an example of a well having a surface controlledflow control device.

[0009] FIG. 1B is a side partial sectional view of the well of FIG. 1A having another surfacecontrolled flow control device in a deviated portion of the well.

[0010] FIGS. 2A and 2B are side sectional views of examples of a production string in a wellhaving a control and injection system.

[0011] While subject matter is described in connection with embodiments disclosed herein, it willbe understood that the scope of the present disclosure is not limited to any particular embodiment. On the contrary, it is intended to cover all alternatives, modifications, and equivalents thereof.69715834-1DETAILED DESCRIPTION OF INVENTION

[0012] The method and system of the present disclosure will now be described more fullyhereinafter with reference to the accompanying drawings in which embodiments are shown. The method and system of the present disclosure may be in many different forms and should not be construed as limited to the illustrated embodiments set forth herein; rather, these embodiments are provided so that this disclosure will be thorough and complete, and will fully convey its scope to those skilled in the art. Like numbers refer to like elements throughout. In an embodiment, usageof the term “about” includes + / - 5% of a cited magnitude. In an embodiment, the term“substantially” includes + / - 5% of a cited magnitude, comparison, or description. In anembodiment, usage of the term “generally” includes + / - 10% of a cited magnitude.

[0013] It is to be further understood that the scope of the present disclosure is not limited to theexact details of construction, operation, exact materials, or embodiments shown and described, asmodifications and equivalents will be apparent to one skilled in the art. In the drawings andspecification, there have been disclosed illustrative embodiments and, although specific terms are employed, they are used in a generic and descriptive sense only and not for the purpose of limitation.

[0014] Shown in a side sectional view in FIG. 1 is an example of a well system 10, which includesa production string 12 installed within a wellbore 14 that intersects a subterranean formation 16.The wellbore 14 is lined with casing 18 that has perforations 20 shown projecting radially outwardfrom the wellbore 14 into the surrounding formation 16. In this example, the perforations 20provide a pathway for fluid F to flow into the wellbore 14 from the formation 16. In the exampleshown the fluid F is made up primarily of liquid with some small bubbles of gas G mixed within.A packer 22 circumscribes a downhole end of string 12 to block the fluid F from flowing into anannulus 24 between the string 12 and casing 18, and instead directs the fluid F to a bore 25 in theproduction tubing 12.

[0015] The well system 10 includes a lift gas system 26 for assisting the flow of the fluid F upholewithin the bore 25 of production tubing 12. An example of a lift gas source 28 is shown on thesurface, embodiments of which include an adjacent well, a pipeline, or a vessel. Lift gas source28 provides lift gas 30, which is shown being injected into the wellbore 14 through an injectionline 32. Lift gas 30 inside injection line 32 is at a designated pressure so that the lift gas 30 is69715834-1forced downhole within annulus 24 to a surface controlled flow control valve (“SCFCV”) 341shown mounted on an outer surface of the production tubing 12. SCFCV 341 is intermittentlyopened to allow the lift gas 30 into the bore 25 of production tubing 12, once in the bore 25, bubbles35 of lift gas 30 are formed inside the fluid F. The lower density bubbles 35 reduce the density ofthe fluid F to assist the flow of fluid F uphole inside bore 25 and to a wellhead assembly 36 shownmounted over the wellbore 14 and connected to an end of production tubing 12. Inside wellheadassembly 36, the fluid F is directed to a production line 38 shown attached to a lateral side ofwellhead assembly 36. Inside production line 38, fluid F is carried to a location that is offsite fortransportation or to a processing facility (not shown). In the example of FIG. 1A, a controller 40is schematically illustrated outside of wellbore 14 and in signal communication with the SCFCV 341via communication means 42. Examples of communication means 42 include electricallyconducting wire, fiber optics, and wireless, such as telemetry. Further optionally included aresensors 44 that are in temperature and pressure communication with annulus 24 and / or bore 25,and which transmit downhole conditions to controller 40 via communication means 42. A specificexample of SCFCV 341 is what is commonly referred to as a gas lift valve, one example of which unit is described in Wygnanski, U.S. Patent No.8,925,638, and which is incorporated by reference herein its entirety and for all purposes.

[0016] Another example of a surface controlled flow control valve 342 is shown in a side sectionalview in FIG. 1B. In this example, the valve 342is in a deviated or horizontal section of wellbore14 and mounted in a sidewall of the production string 12, and in a section of the string 12 havingan eccentric portion. In an example shown, the valve 342operates in response to command signals received that have been transmitted from surface via communication means 42. In response to the command signals, the SCFCV 342 is moved into an opened and / or closed configuration to allow or block fluid communication between the annulus 24 and bore 25. Specific examples of SCFCV 342include an interval control valve and / or a circulation valve.

[0017] Referring now to FIG. 2A, shown in a side sectional view is an example of a productionstring 210 in the well 14, which includes a control sub 211 equipped with a control system 212.The production string 210 further includes production tubing 214 connected to ends of the controlsub 211. In a non-limiting example, the structure and operation of production string 210 is thesame or similar to that of string 12 of FIG. 1A, and has an upper end in communication with wellhead assembly 36 and a lower end receiving fluid produced from the surrounding formation 769715834-116. A fluid line 216 is shown extending from surface into the well 14 and with a lower end thatconnects into the sub 211. In the example of FIG. 2A an operating fluid is delivered into the well14 through the fluid line 216. Embodiments of the operating fluid include a motive fluid foractuating devices downhole and a chemical injection or additive for insertion into the production string 210. Examples of the chemical injection or additive include a foaming agent (to maintain gas bubble size), an anti-foaming agent, a biocide, a corrosion inhibitor, a scale inhibitor, an asphaltene inhibitor, an agent to prevent hydrate formation, an adsorbent, an emulsifier, anemulsion breaker, a viscosity reducer, any currently known or later developed agent injected intoa well, and combinations thereof. In this example, chemical injection or additive is from a chemical additive / injection source (not shown), examples of the chemical additive / injection source include a vessel, a pipeline, a tank, a truck, and the like. In this example, injecting the chemical injection or additive into the wellbore 14, such as into the annulus 24 or the production string 210, is for treatment of the wellbore 14, casing 18, string 210, components within the string 210, and / or fluid within the wellbore 14 or string 210. An example of chemical injection is found in Shaw, U.S. Patent Application No. 17 / 987,613, which is assigned to the assignee of the present application, and is incorporated by referenced herein in its entirety and for all purposes. Alternative, the operating fluid is a hydraulic fluid or other fluid useful for actuating devices in the well 14, such as by obtaining a mechanical advantage. Examples exist in which the operating fluid is pressurized, either on surface or by a downhole pump (not shown). Included with the control system 212 is a directional valve 218 shown disposed in the sub 211 and connected to the end of the fluid line 216. Slidably disposed in sub 211 is a sleeve-like inflow control valve (“ICV”) 220,which selectively provides communication between an annulus 222 surrounding string 210 andbore 224 of string 210. Directional valve 218 includes a surface controlled actuator 226 and spoolvalve 228 shown coupled with an end of actuator 226. An injection line 230 connects betweendirectional valve 218 and an injection port 231 formed through a sidewall of production tubing 214. An optional check valve 232 is provided in injection line 230. Control lines 234, 236 areshown each having an end connected to the directional valve 218. Opposite ends of the lines 234,236 each connect to an annular cylinder 238 formed in sub 211 where bore 224 has an increaseddiameter. The ends of lines 234, 236 connect to the cylinder 238 at axially spaced apart locations. For the purposes of discussion herein, fluid line 216, lines 230, 234, 236, and valves 218, 232 forma flow circuit 239. A mid-portion of ICV 220 has an increased diameter to define a piston 240 that69715834-1is slidable within cylinder 238 between the locations where lines 234, 236 connect to cylinder 238.Openings 242, 244 are formed radially through ICV 220 and sub 211, annulus 222 and bore 224are in communication when the openings 242, 244 are registered with one another.

[0018] Spool valve 228 includes a cylindrical spool 246 (or spool body) within having a series offlow passages 2481, 2, 2501, 2, 2521, 2, 2541, 2 formed at different axial locations in the spool 246.Spool 246 is slidable to different positions along an axial direction as depicted by arrow A.Selective positioning of the spool 246, such as by operating actuator 226 from surface, puts fluidline 216 in communication with injection line 230 or lines 234, 236 through passages 2481, 2, 2501,2, 2521, 2, 2541, 2. In a non-limiting example of operation, the spool 246 is moved to a first position,which aligns an end of passage 2481 with fluid line 216, aligns an opposite end of passage 2481with line 236, aligns an end of passage 2482 with line 230, and aligns an opposite end of passage2482 with line 234. With spool 246 in the first position chemical injection fluid inside fluid line216 is allowed to flow through passage 2481 and through line 236 into cylinder 238. Directingpressurized chemical injection fluid into cylinder 238 from line 236 applies a force against piston240 to urge ICV 220 in a direction away from valve 218 to register openings 242, 244 and put ICV220 into its open configuration. When openings 242, 244 are in registration, annulus 222 and bore242 are in communication with one another through the registered openings 242, 244 so that fluidflows from within annulus 222 into bore 224 of production string 216. The fluid is directed tosurface once inside bore 224. With the valve spool 246 still in the first position, fluid insidecylinder 238, such as chemical injection fluid or other fluid, is urged into line 234, through passage2482, into line 230, across injection port 231, and into bore 224. Further in this example, the spool246 is selectively moved into a second position by operation of actuator 226. The configurationof FIG. 2A illustrates the valve spool 246 in the second position. In the second position, one endof passage 2501 aligns with fluid line 216 and an opposite end of passage 2501 aligns with line230. In this configuration fluid line 216 and line 230 are in communication with one anotherthrough passage 2501, which provides for direct introduction of chemical injection inside fluid line216 into bore 224. When the valve spool 246 is in the second position, lines 234, 236 are incommunication with one another via passage 2502. Urging valve spool 246 towards actuator 226from its second position to a third position (not shown) aligns an end of passage 2522 with line 234and an opposing end with line 236, which puts line 234 in communication with line 236 via passage2522. When in the third position, opposing ends of passage 2521align with line 216 and line 230,69715834-1but as a mid portion of passage 2521is blocked, there is no communication between fluid line 216and any of lines 230, 234, 236. Putting the valve spool 246 in the third position isolates lines 234,236 and cylinder 238 from pressurized fluid in line 216, and removes pressurized fluid in line 216as a source of a motive force to reposition ICV 220. Moving spool 246 further towards actuatorfrom its third position to a fourth position aligns an end of passage 2541 with fluid line 216 and anopposing end of passage 2541 with line 234 and aligns an end of passage 2542 with line 230 andan opposing end of passage 2542 with line 236. When the valve spool 246 is in the fourth position,pressurized chemical injection fluid within fluid line 216 is flowable through passage 2541,through line 234, and into cylinder 238 on a side of piston 240 opposite valve 218. The pressurizedfluid applies a force onto piston 240 urging ICV 220 towards valve 218 to move ports 242, 244out of registration with one another and change ICV 220 into the closed configuration shown inFIG. 2A. Moving the ICV 220 into the closed configuration while valve spool 246 is in the fourthposition forces fluid in cylinder 238 between piston 240 and valve 218 into line 236, throughpassage 2542, into line 230, and then into bore 224 through injection port 231. An advantage ofthe present disclosure includes using a single fluids carrying line for controlling a downhole valve and also for injecting fluid downhole, which reduces the number of lines in a well. A furtheradvantage is that selective repositioning of a single valve spool 246 controls operation of the ICV220 as well as fluid injection into the production string 212. In alternatives, fluid inside the flowcircuit 239 is a chemical injection fluid, a treatment fluid, a hydraulic fluid, or combinations. Further optionally, fluid inside circuit 239 is replaced by a different fluid by providing the different fluid from surface in line 216 and at a pressure adequate to urge fluid within circuit through check valve 232 and into bore 224. Fluid in lines 234236 and cylinder 238 is replaced by selectivelyshifting the valve spool 246 into the different positions.

[0019] In FIG. 2B is an embodiment of the production string 210A in which communicationbetween valve 218 and check valve 232 is via line 2301 and line 2302. An end of line 2301 is inselective communication with passages in spool 246 depending on its positioning within valve218. An opposite end of line 2301connects to an end of line 2302, which has an opposite endconnecting to check valve 232. An optional seal 256 is schematically represented at the connectionbetween lines 2301, 2302. In alternatives seal 256 is energized by stroking spool 246 of spool valve228 to a particular position or positions. Energizing seal 256 forms a fluid flow barrier to injectionfluid in line 2301 having leaked between spool 246 and valve housing 258, so that the fluid does69715834-1not flow into line 2302. Some directional valves rely on a spool valve that uses close tolerance to resist flow rather than thermoplastic or elastomeric materials to provide a positive seal. In such cases, some fluid can leak over time. This does not pose a problem when pistons are actively being shifted. However, in some configurations it could allow fluid to slowly leak from the chemicalinjection line. In those situations, in which this becomes a problem, a valve with a positive sealcan be added in series to the directional valve. This positive seal would block all flow and have a zero leak rate. In one embodiment, the zero leak valve would be placed at the end of the directional valve via a spring. When the end of the stroke is reached and communication is allowed betweeneach side of the ICV 220 and from line 216 to 230, further stroking the actuator 226 couldpositively block flow to outlet 231. In another example, the zero leak valve could be placedbetween the actuator 226 and the spool valve 228. Stroking the directional valve spool and all theway to the right would provide an extra seal meant only to block the chemical flow in line 216. Depending on the directional valve details and seal designs, the separate zero leak valve may or may not be necessary.

[0020] In some cases. ICV 220 has flow characteristics that are adjustable and based on position.In this example, a pressure compensated constant flow device (not shown), such as the Flosertdevice that is commercially available from the Lee Company (https: / / www.theleeco.com / ) is addedto line 234 and / or line 236 to make the ICV 220 move at a constant rate. Then the change inposition can be determined based on the amount of time the directional valve 218 allows flow of the operating fluid. Optional locations for monitoring fluid pressure include when entering orleaving the directional or in the line - which would offer information such as when the valve isopened and when it reaches the end of the stroke. This in turn would provide the time to fully open the valve (essentially can be calibrated in place). To move a portion of that distance, the directional valve could be opened for a proportional amount of time. In alternatives, this analysis is conducted from the surface, which introduces a time delay in pressure changes downhole versus at the surface through long lengths of small diameter tubing. In examples, based on signals received fromsensors 44, controller 40 (FIG. 1A) calibrates internal commands and / or algorithms so that ashifting behavior of the ICV 220 is adjusted. In examples, the calibration is automatic using one or more of conventional techniques, machine learning, and artificial intelligence.

[0021] In a non-limiting example of operation, pressure is monitored in one or more of lines 216,234, 236, or any other relevant line in the circuit. This monitored pressure(s) is used to determine69715834-1the length of time required to stroke the ICV 220, and that information is used for the purpose ofpositioning ICV 220. This can optionally be used in conjunction with the above mentioned Flosertpressure compensated constant flow device from the Lee Company. Pressure measurements in thevarious lines can also be used for diagnostic purposes.

[0022] Optionally, the operating fluid is not limited to a chemical injectant, and includes any otheroperating fluid or fluids. More than one stage can be utilized, for example, the techniques andsystems disclosed herein are useful for controlling flow into tubing from one or more zones in asubterranean reservoir. In the example of multiple zones, a packer or other flow barrier isoptionally employed between zones. Embodiments of these cases include one or more stages eachwith a directional valve and flow control valve, and in which flow from each zone is controlledusing a single control line with an optional return line. This could also apply to gas or fluidinjection into zones. Further optionally, circulation valves (not shown) are included for circulatingout fluid after installation of a completion to a fluid of different weight or chemistry. Aftercirculating out the fluid in flow circuit 239, the ICV 220 can be closed. Components of the flowcircuit 239 allow for a circulating fluid functionality as well as a surface controlled chemicalinjection. Yet another application of the production string 210 includes setting a packer (notshown) using a common line. Hydraulic set packers typically utilize tubing pressure to set the packer, which presents difficulties from both a planning and operational perspective. From a planning perspective, all of the other equipment in the well is subjected to the packer setting and test pressures, and the tubing is plugged below the packer to build up pressure. From an operational perspective, there is little feedback as to whether or not a packer has set. The present disclosure allows a hydraulically set packer to be actuated with pressure from the same hydraulic (or chemicalinjection) line as the completion components in the well.

[0023] The present invention described herein, therefore, is well adapted to carry out the objectsand attain the ends and advantages mentioned, as well as others inherent therein. While a presently preferred embodiment of the invention has been given for purposes of disclosure, numerous changes exist in the details of procedures for accomplishing the desired results. For example, the control system is useable on any tubular within a well, such as but not limited to wellbore casing, on valves other than ICV’s, and any device in a well responsive to a pressurized fluid. These and other similar modifications will readily suggest themselves to those skilled in the art, and are 69715834-1intended to be encompassed within the spirit of the present invention disclosed herein and the scope of the appended claims. 69715834-1

Claims

CLAIMS What is claimed is.

1. A well system for producing fluids from a wellbore comprising:a tubular installed in the wellbore;a fluid line having an operating fluid; and a control system selectively changeable to a position in which operating fluid is routed toan injection port in the tubular, and is selectively changeable to another position in which operatingfluid is routed to a valve that is moveable in response to the operating fluid.

2. The well system of Claim 1, wherein the valve comprises an inflow control valve (“ICV”).

3. The well system of Claim 1, wherein the tubular is selected from the group consisting of aproduction string and wellbore casing.

4. The well system of Claim 1, wherein the control system comprises a directional valvehaving a body with multiple passages.

5. The well system of Claim 4, wherein moving the body into a first position directs operatingfluid from the fluid line to move the ICV into an open configuration so that fluid in an annulus surrounding the production string flows into a bore in the production string.

6. The production string of Claim 5, wherein the control system comprises a surfacecontrolled actuator connected to the directional valve.

7. The well system of Claim 5, wherein the ICV comprises a sleeve that is slideable withinthe production string, and having an opening that selectively registers with an opening in the production tubing when in the open configuration.

8. The well system of Claim 4, wherein the body is selectively positioned so that operatingfluid is directed to the injection port.

9. The well system of Claim 4, wherein the body is selectively positioned so that operatingfluid in the fluid line is isolated from the injection port. 69715834-110. The well system of Claim 4, wherein the body is selectively positioned so that operatingfluid from the fluid line to move the valve into a closed configuration so that fluid in an annulussurrounding the production string is isolated from a bore in the production string.

11. The well system of Claim 4, further comprising a seal in the directional valve that isenergized by a compressive force exerted by the body.

12. The well system of Claim 1, further comprising a pressure sensor in communication withthe fluid line for use in one of diagnostic, verification, or positioning requirements.

13. A method of operating a well, comprising:receiving an operating fluid in the well;treating the well by injecting the operating fluid into the well; andusing the operating fluid for actuating a valve in the well.

14. The method of Claim 13, wherein the operating fluid is selected from the group consistingof a foaming agent, an anti-foaming agent, a biocide, a corrosion inhibitor, a scale inhibitor, an asphaltene inhibitor, an agent to prevent hydrate formation, an adsorbent, an emulsifier, an emulsion breaker, a viscosity reducer, any currently known or later developed agent injected into a well, and combinations thereof.

15. The method of Claim 13, wherein the valve comprises an inflow control valve that isselectively changed into open and closed configurations by rerouting the operating fluid.

16. The method of Claim 13, further comprising operating a directional valve to reroute theoperating fluid.

17. The method of Claim 14, wherein the directional valve comprises a spool with multiplepassages formed within that move in and out of alignment with the fluid line by operating an actuator coupled with the spool.

18. The method of Claim 15, further comprising automatically calibrating operation of theinflow control valve based on sensing conditions in the well.

19. The method of Claim 13, further comprising using multiple stages each with a directionalvalve and flow control valve or a packer.69715834-120. The method of Claim 13, further comprising using multiple stages each with a directionalvalve and flow control valve or packer, and directing fluid into a single return line.69715834-1

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