WO2010005632A2 - Flow control in a well bore - Google Patents

Flow control in a well bore Download PDF

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Publication number
WO2010005632A2
WO2010005632A2 PCT/US2009/044531 US2009044531W WO2010005632A2 WO 2010005632 A2 WO2010005632 A2 WO 2010005632A2 US 2009044531 W US2009044531 W US 2009044531W WO 2010005632 A2 WO2010005632 A2 WO 2010005632A2
Authority
WO
WIPO (PCT)
Prior art keywords
control device
flow
flow control
state
tubular conduit
Prior art date
Application number
PCT/US2009/044531
Other languages
French (fr)
Other versions
WO2010005632A3 (en
Inventor
William Mark Richards
Original Assignee
Halliburton Energy Services, Inc.
Priority date (The priority date 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 date listed.)
Filing date
Publication date
Application filed by Halliburton Energy Services, Inc. filed Critical Halliburton Energy Services, Inc.
Publication of WO2010005632A2 publication Critical patent/WO2010005632A2/en
Publication of WO2010005632A3 publication Critical patent/WO2010005632A3/en

Links

Classifications

    • EFIXED CONSTRUCTIONS
    • E21EARTH DRILLING; MINING
    • E21BEARTH DRILLING, e.g. DEEP DRILLING; OBTAINING OIL, GAS, WATER, SOLUBLE OR MELTABLE MATERIALS OR A SLURRY OF MINERALS FROM WELLS
    • E21B43/00Methods or apparatus for obtaining oil, gas, water, soluble or meltable materials or a slurry of minerals from wells
    • E21B43/12Methods or apparatus for controlling the flow of the obtained fluid to or in wells
    • EFIXED CONSTRUCTIONS
    • E21EARTH DRILLING; MINING
    • E21BEARTH DRILLING, e.g. DEEP DRILLING; OBTAINING OIL, GAS, WATER, SOLUBLE OR MELTABLE MATERIALS OR A SLURRY OF MINERALS FROM WELLS
    • E21B34/00Valve arrangements for boreholes or wells
    • E21B34/06Valve arrangements for boreholes or wells in wells
    • E21B34/063Valve or closure with destructible element, e.g. frangible disc
    • EFIXED CONSTRUCTIONS
    • E21EARTH DRILLING; MINING
    • E21BEARTH DRILLING, e.g. DEEP DRILLING; OBTAINING OIL, GAS, WATER, SOLUBLE OR MELTABLE MATERIALS OR A SLURRY OF MINERALS FROM WELLS
    • E21B34/00Valve arrangements for boreholes or wells
    • E21B34/06Valve arrangements for boreholes or wells in wells
    • E21B34/10Valve arrangements for boreholes or wells in wells operated by control fluid supplied from outside the borehole
    • EFIXED CONSTRUCTIONS
    • E21EARTH DRILLING; MINING
    • E21BEARTH DRILLING, e.g. DEEP DRILLING; OBTAINING OIL, GAS, WATER, SOLUBLE OR MELTABLE MATERIALS OR A SLURRY OF MINERALS FROM WELLS
    • E21B34/00Valve arrangements for boreholes or wells
    • E21B34/06Valve arrangements for boreholes or wells in wells
    • E21B34/10Valve arrangements for boreholes or wells in wells operated by control fluid supplied from outside the borehole
    • E21B34/102Valve arrangements for boreholes or wells in wells operated by control fluid supplied from outside the borehole with means for locking the closing element in open or closed position
    • E21B34/103Valve arrangements for boreholes or wells in wells operated by control fluid supplied from outside the borehole with means for locking the closing element in open or closed position with a shear pin
    • EFIXED CONSTRUCTIONS
    • E21EARTH DRILLING; MINING
    • E21BEARTH DRILLING, e.g. DEEP DRILLING; OBTAINING OIL, GAS, WATER, SOLUBLE OR MELTABLE MATERIALS OR A SLURRY OF MINERALS FROM WELLS
    • E21B34/00Valve arrangements for boreholes or wells
    • E21B34/06Valve arrangements for boreholes or wells in wells
    • E21B34/14Valve arrangements for boreholes or wells in wells operated by movement of tools, e.g. sleeve valves operated by pistons or wire line tools
    • EFIXED CONSTRUCTIONS
    • E21EARTH DRILLING; MINING
    • E21BEARTH DRILLING, e.g. DEEP DRILLING; OBTAINING OIL, GAS, WATER, SOLUBLE OR MELTABLE MATERIALS OR A SLURRY OF MINERALS FROM WELLS
    • E21B43/00Methods or apparatus for obtaining oil, gas, water, soluble or meltable materials or a slurry of minerals from wells
    • E21B43/02Subsoil filtering
    • E21B43/08Screens or liners

Definitions

  • the present disclosure relates to well systems, and more particularly to controlling flow in well systems.
  • ICD Inflow control devices
  • a flow control device is changeable from a first state to a second state, and a control unit is coupled to the flow control device to change the flow control device between the first and second states.
  • a system for installation in a well bore includes the flow control device and the control unit coupled to the flow control device.
  • the flow control device is changeable from a first state to a second state.
  • the first state corresponds to a first mode of fluid communication between an interior of a tubular conduit of a completion string and an annulus between the tubular conduit and a wall of the well bore.
  • the second state corresponds to a second, different mode of fluid communication between the interior of the tubular conduit and the annulus.
  • the control unit is coupled to the flow control device to change the flow control device between the first and second states.
  • the control unit is actuated to change the flow control device in response to pressure in the well bore.
  • a method of reconfiguring production inflow comprises producing fluids from an annulus about a completion string through a sand screen and into an interior of the completion string via a flow path, and the flow path is reconfigured in response to a hydraulic signal.
  • pressure is applied in a wellbore.
  • a state of the flow control device in a completion string installed in the wellbore is changed from a first state to a second state.
  • the first state corresponds to a first mode of fluid communication between an interior of the tubular conduit and the annulus between the tubular conduit and a wall of the well bore.
  • the second state corresponds to a second, different mode of fluid communication between the interior of the tubular conduit and the annulus.
  • One or more embodiments may include one or more of the following features, alone or in combination.
  • the control unit is actuated to change the flow control device in response to pressure in the tubular conduit exceeding a specified pressure.
  • the control unit is actuated to change the flow control device in response to pressure in the tubular conduit below a specified pressure.
  • the control unit includes a hydraulic chamber in communication with the interior of the tubular conduit.
  • the control unit includes a piston in communication with the hydraulic chamber and coupled to the flow control device. Pressure in the hydraulic chamber moves the piston and moving the piston changes the flow control device from the first state to the second state. Rupturing of a rupture disk between the hydraulic chamber and the interior of the tubular conduit allows fluid from the interior of tubular conduit into the hydrostatic chamber when the pressure in the tubular conduit exceeds the specified pressure.
  • the first state of the flow control device allows fluid from the annulus to flow along a first flow path of the flow control device into the tubular conduit.
  • the first state of the flow control device allows fluid from the tubular conduit to flow along a first flow path of the flow control device into the annulus.
  • the second state of the flow control device allows fluid from the annulus to flow along a second flow path into the tubular conduit.
  • the second flow path is less flow restrictive than the first flow path.
  • the second flow path is more flow restrictive than the first flow path.
  • the first state of the flow control device prevents fluid flow from the annulus into the tubular conduit and the second state of the flow control device allows fluid flow from the annulus into the tubular conduit.
  • An additional flow control device is changeable between a plurality of states and provides one or more flow paths between the annulus and the interior of the tubular conduit.
  • the control unit is coupled to the additional flow control device to change the additional flow control device between the states in response to pressure in the tubular conduit exceeding a specified pressure.
  • a second flow control device and a second control unit are included.
  • the second control unit is coupled to the second flow control device to change the second flow control device between a first and a second state.
  • the second control unit is actuated to change the second flow control device in response to pressure in the tubular conduit exceeding a second specified pressure that is higher than the first mentioned specified pressure.
  • the control unit resides below a packer of the completion string.
  • the flow control device includes a sand screen. The sand screen filters particulates in the annulus from entering the tubular conduit.
  • the flow control device includes a check valve.
  • the check valve allows fluid to flow from the annulus into the tubular conduit and prevents a flow of fluid from the tubular conduit into the annulus.
  • Changing the state of the flow control device includes communicating a volume of fluid to the flow control device. Changing the state of the flow control device is prevented prior to rupturing a rupture disk, and the rupture disk is configured to rupture in response to the specified pressure.
  • the first state of the flow control device seals against flow of fluid through the flow control device between the interior of the tubular conduit and the annulus.
  • a second pressure is applied in an interior of the tubular conduit of the completion string. The second pressure exceeds a second specified pressure that is higher than the first specified pressure.
  • a state of a second flow control device in the completion string is changed from a first state to a second state when the pressure in the interior of the tubular conduit exceeds the second specified pressure.
  • the flow path is reconfigured without well intervention.
  • FIG. 1 is a diagram illustrating a well system in accordance with some aspects of the present disclosure.
  • FIGS. 2 A and 2B are diagrams illustrating a flow control device in accordance with some aspects of the present disclosure.
  • FIGS. 3 A and 3B are diagrams illustrating a flow control device in accordance with some aspects of the present disclosure.
  • FIGS. 4 A and 4B are diagrams illustrating a control unit in accordance with some aspects of the present disclosure.
  • FIGS. 5 A and 5B are diagrams illustrating flow control systems in accordance with some aspects of the present disclosure.
  • FIG. 6 is a diagram illustrating a flow control device in accordance with some aspects of the present disclosure.
  • FIGS. 7A, 7B and 7C are diagrams illustrating flow control systems in accordance with some aspects of the present disclosure.
  • FIG. 8 is a flow chart illustrating a process for controlling fluid flow in a well system in accordance with some aspects of the present disclosure.
  • FIG. 9 is a diagram illustrating a flow control device in accordance with some aspects of the present disclosure.
  • the ability to reconfigure components of a well system without well intervention may simplify and/or reduce the cost of producing resources from the well system. For example, it may be desirable, in some circumstances, to change the rate of fluid flow into one or more sections of a completion string of a well system by opening, closing, or otherwise reconfiguring flow paths between the interior of the completion string and an annulus region (i.e. the region between the completion string and the wall of a well bore). Reconfiguring flow paths by well intervention may require the use of expensive equipment and the consumption of valuable resources (e.g. time and money).
  • a flow control system reconfigures components of a well system reducing or eliminating the need for well intervention.
  • the flow control system may be used to improve the production performance of the well system and/or reduce costs associated with reconfiguring (e.g. opening, closing, and/or otherwise modifying) flow paths into the completion string of the well system.
  • some configurations of the flow control system of the present disclosure may be used, for example, to open or close bypass valves, to open or close inflow control devices (ICDs), or to modify flow rates through ICDs.
  • changes to the flow control system may be implemented without the use of control lines extending up to the well head.
  • Example orientations include inclined, inverted, horizontal, vertical, and others.
  • the concepts of this patent application are not limited to any of the example embodiments disclosed herein.
  • Directional terms are used to describe the example embodiments.
  • Example directional terms include “above,” “below,” “upper,” “lower,” and others.
  • the terms “above,” “upper,” and “upward” may refer to a direction toward the earth's surface along a well bore.
  • the terms “below,” “lower,” and “downward” may refer to a direction away from the earth's surface along a well bore.
  • FIG. 1 is a diagram illustrating an example well system 100.
  • the well system 100 includes a completion string 102 and one or more production packers 104 (three shown) installed in a well bore 106.
  • the completion string 102 is an assembly of equipment that includes a tubular conduit and extends through all or a portion of the well bore 106.
  • the completion string 102 may be separate from or anchored to a casing 105 of the well bore 106.
  • the completion string 102 is permanently or semi-permanently installed in the well bore 106, and is the primary equipment used to produce the well over its expected life.
  • the packers 104 seal or substantially seal against passage of fluids between a wall of the well bore 106 and the completion string 102, and thus isolate portions of the well bore 106 from other portions of the well bore 106.
  • FIG. 1 shows a completion string 102 having a flow control system with one control unit 108 and one flow control device 112.
  • the control unit 108 is communicably connected to the flow control device 112 by a control line 110.
  • the flow control system can include more than one control unit 108 and/or more than one flow control device 112.
  • one control unit 108 can be communicably connected to multiple flow control devices 112.
  • the flow control device 112 may be a device that provides one or more flow paths between the interior region 116 of the completion string 102 and the annulus 114 between the completion string 102 and the wall of the well bore 106.
  • the flow control device 112 may be changeable between a plurality of states, where each state corresponds to a mode of fluid communication between the interior region 116 and the annulus 114.
  • a state of the flow control device 112 corresponds to one or more particular flow paths through the flow control device 112 being open, one or more particular flow paths through the flow control device 112 being closed and/or one or more particular flow paths through the flow control device 112 being restricted (i.e. allowing less flow than when open).
  • the control unit 108 may be used to change the flow control device 112 from one of the plurality of states to a different one of the plurality of states.
  • the control unit 108 and the flow control device 112 may communicate over the control line 110.
  • the control line 110 may, for example, be a hydraulic control line that communicates fluid between the control unit 108 and the flow control device 112 in order to change the state of the flow control device 112.
  • FIGS. 2 A, 2B, 3A, 3B, and 6 are diagrams illustrating example flow control devices 112 in accordance with some aspects of the present disclosure.
  • the flow control device 112 is not limited to any of the particular features or arrangement of features included in the illustrated examples.
  • a particular state of the flow control device allows fluid from the annulus 114 to flow along a flow path of the flow control device into the tubular conduit. In some cases, a particular state of the flow control device allows fluid from the tubular conduit to flow along a flow path of the flow control device into the annulus 114.
  • control unit 108 and the flow control device 112 may be implemented in separate housings, at different positions along the completion string 102. Alternately, the control unit 108 and the flow control device 112 may be integrated in a single shared housing.
  • Control units 108 and/or flow control devices 112 may be positioned in isolated portions of the well bore 106 and/or in continuous portions of the well bore 106 (i.e. portions that are not isolated by production packers 104).
  • a control unit 108 positioned in an isolated portion of the well bore 106 may communicate with one or more flow control devices 112 positioned in the same isolated portion (as illustrated in FIG. 1) or another isolated portion of the well bore 106.
  • a control unit 108 can communicate with multiple flow control devices 112 in different isolated portions of the well bore 106.
  • the flow control device 112 may be in a first state when installed in the well system 100, and subsequently changed to a second, different state.
  • the first and the second state may each correspond to a different mode of fluid communication between the interior region 116 and the annulus 114.
  • the well system 100 may produce resources for a period of time with the flow control device 112 being in the first state.
  • the first state of the flow control device may correspond to a restricted flow path of an ICD in the flow control device 112 being open.
  • the composition of resources produced by the well system 100 may begin to change (e.g.
  • the well system 100 may begin to produce significant amounts of water after three years of production), and it may be desirable to produce the well system 100 to completion by allowing inflow through a less restrictive bypass valve rather than through a restricted flow path.
  • the control units 108 may be used to change the state of the flow control device 112 to a second state, where the second state corresponds to a bypass valve in the flow control device 112 being open.
  • FIGS. 4A and 4B are diagrams illustrating a control unit 108 in accordance with some aspects of the present disclosure.
  • the control unit 108 is not limited to any of the particular features or arrangement of features included in the illustrated example.
  • a rupture disk 404 of the control unit 108 when a rupture disk 404 of the control unit 108 is ruptured, the flow of fluid from the interior region 116 of the completion string 102 into a hydrostatic chamber 402 of the control unit 108 causes hydraulic fluid 220 from a hydraulic chamber 410 to be communicated to the flow control device 112, for example through the control line 110.
  • the hydraulic fluid 220 communicated into the flow control device 112 may change the flow control device 112 from one of the plurality of states to a different one of the plurality of states, for example by changing the position of a control valve.
  • the rupture disk 404 may be configured to rupture when the pressure across the rupture disk 404 exceeds a specified threshold value.
  • one or more control units may be installed in the well system 100 with the rupture disks 404 intact, blocking flow from the interior region 116 of the completion string 102 into the hydrostatic chamber 402 of the control unit 108, and the well system 100 may produce resources for a period of time with the rupture disks 404 intact. After the period of time, it may be desirable to change the state of one or more flow control devices 112, and pressure may be applied to fluids in the interior region 116 of the completion string 102. When the applied pressure exceeds the specified threshold value, the rupture disk may rupture, which may cause hydraulic fluid 220 to be communicated to the flow control device 112, which may change the state of the flow control device 112.
  • a flow control system may include a collection of control units 108, control lines 110, and flow control devices 112.
  • FIGS. 5A, 5B, 7A, 7B, and 7C illustrate exemplary flow control systems in accordance with some aspects of the present disclosure.
  • a single control unit 108 may communicate with multiple flow control devices 112.
  • a single control unit 108 may be used to change the state of multiple flow control devices 112.
  • multiple control units 108 may communicate with a single flow control device 112.
  • a first control unit 108 may be used to change the flow control device 112 from a first state to a second state
  • a second control unit 108 may be used to change the flow control device 112 to yet another state or back to the first state.
  • control units 108 may have rupture disks of different specified rupture pressures.
  • the control units 108 can be separately controlled by controlling the pressure in the interior region 116 of the completion string 102.
  • the well system 100 includes a horizontally oriented well bore 106.
  • the illustrated well system 100 is only a representative example of one well system in which the principles of the present disclosure may be beneficially utilized.
  • the principles of the present disclosure may be implemented in well bores of various configurations and orientations (e.g. inclined, inverted, horizontal, vertical, etc.).
  • the illustrated implementations are merely representative examples of useful applications of the principles of the present disclosure, and the principles of the present disclosure are not limited to any specific details of the illustrated implementations.
  • the well bore 106 may be cased or open-hole. In some implementations, gravel packs may be provided about any or all of the flow control devices 112. A variety of additional well equipment (such as valves, sensors, pumps, control and actuation devices, etc.) may also be provided in the well system 100.
  • the well bore 106 may be used to extract resources (e.g. oil, water, natural gas, or other resource) from a subterranean formation, such as a petroleum-bearing formation (e.g. sandstone, Austin chalk, or other type of formation).
  • resources e.g. oil, water, natural gas, or other resource
  • a subterranean formation such as a petroleum-bearing formation (e.g. sandstone, Austin chalk, or other type of formation).
  • the illustrated example flow control device 112 includes a control valve chamber 202 and a control valve gate 204.
  • FIG. 2 A the illustrated example flow control device 112 includes a control valve chamber 202 and a control valve gate 204.
  • control valve gate 204 is illustrated in a first position in the control valve chamber 202.
  • control valve gate 204 is illustrated in a second position in the control valve chamber 202.
  • first gate position fluid may flow from the annulus 114 to the interior region 116.
  • second gate position the gate 204 may prevent fluid flow between the interior region 116 and the annulus 114.
  • the control valve gate 204 in general, may be in any position in the control valve chamber 202.
  • the first gate position refers to any position of the control valve gate 204 that allows fluid to flow between the control valve chamber 202 and the interior region 116 through a port 212.
  • the second gate position refers to any position of the control valve gate 204 that substantially impedes fluid flow through the port 212.
  • the first position may be the position of the gate 204 when the flow control device 112 is first installed in the well system 100.
  • the first gate position may correspond to a first state of the flow control device 112.
  • the second gate position may correspond to a second state of the flow control device 112.
  • the gate 204 may be moved to the second gate position, for example, by hydraulic fluid communicated from the control line 110 into the control valve chamber 202 at some time after the flow control device 112 has been installed in the well system 100.
  • the illustrated flow control device 112 also includes a check valve 206 that may allow fluid to flow from the annulus 114 to the interior region 116 when the control valve gate 204 is in the first gate position.
  • the check valve 206 may prevent fluid flow from the interior region 116 into the annulus 114.
  • the check valve 206 includes a stopper 207.
  • a sand screen 208 in the flow path between the annulus 114 and the check valve 206 prevents particulates (e.g. sand and/or rock) from entering the interior region 116 from the annulus 114.
  • the sand screen 208 may be any type of filtration device, such as a wire or mesh sand screen, perforated or slotted tubing, and/or other filtration device.
  • An inflow control device (ICD) 210 positioned in the flow path between the check valve 206 and control valve chamber 202 may control the rate of fluid flow from the annulus 114 into the interior region 116.
  • the ICD 210 may be any annular device that controls a flow rate through the device for a given pressure across the device.
  • the ICD 210 may be a tube, nozzle, orifice, helical channel or any other type of inflow control device.
  • the port 212 provides a flow path between the control valve chamber 202 and the interior region 116.
  • the arrows 214 illustrate a flow path between the annulus 114 and the interior region
  • fluids e.g. oil, water, natural gas, and/or others
  • fluids may flow from the annulus 114 through the sand screen 208, through the check valve 206, through the ICD 210, through the control valve chamber 202, through the port 212, and into the interior region 116.
  • the check valve 206 may prevent fluid from traversing the inverse path (i.e. from the interior region 116 into the annulus 114).
  • the check valve may allow fluid to flow from the annulus 114 into the tubular conduit and reduce (or prevent) a flow of fluid from the tubular conduit into the annulus 114.
  • the control line 110 may be in fluid communication with the control valve chamber 202.
  • the control line 110 may contain hydraulic fluid 220.
  • the control valve gate 204 may move to a different position in the control valve chamber 202.
  • the hydraulic fluid 220 may be communicated from the control line 110, for example, due to the communication of hydraulic fluid into the control line 110 from the control unit 108 (of FIG. 1).
  • the control valve gate 204 includes seals 205 which may prevent hydraulic fluid 220 from substantially leaking past the control valve gate 204.
  • FIG. 2B illustrates the control valve gate 202 in the second gate position, blocking flow through the port 212, and a portion of the control valve chamber 202 is filled with hydraulic fluid 220.
  • the flow control device 112 of FIGS. 2 A and 2B may, in some implementations, provide an ICD 210 (e.g. which may be used to produce resources at a certain flow rate for some amount of time) that can be closed without well intervention, for example, using the control unit 108.
  • FIG. 3 A illustrates a portion of the flow control device 112 in accordance with some aspects of the present disclosure.
  • the flow control device 112 includes the control valve chamber 202, a control valve gate 302, and the port 212.
  • the flow control device 112 also includes the control line 110 in fluid communication with the control valve chamber 202.
  • the illustrated control valve gate 302 includes a port 304.
  • the flow control device 112 of FIG. 3 A may include any or all of the other features of the flow control device 112 illustrated in FIG. 2 A.
  • the flow control device 112 of FIG. 3 A may also include additional features not illustrated in FIG 2 A.
  • a flow control device 112 need not include features such as a sand screen, an ICD, or a check valve; a flow control device 112 may include additional chambers, sensors, valves, screws, pins, seals, ports, and other features that are not illustrated in the figures.
  • the control valve gate 302 of FIG. 3 A is different from the control valve gate 204 of FIG. 2A.
  • the control valve gate 302 in a first gate position prevents fluid flow through the port 212.
  • the gate 302 is in a second gate position (as illustrated in FIG. 3B)
  • the gate 302 allows fluid flow between the interior region 116 and the control valve chamber 202 through the ports 212 and 304.
  • the first position may be the position of the gate 302 when the flow control device 112 is first installed in the well system 100.
  • the first gate position may correspond to a first state of the flow control device 112.
  • the second gate position may correspond to a second state of the flow control device 112.
  • the gate 304 may be moved to the second gate position, for example, by the control unit 108 after the flow control device 112 has been installed in the well system 100.
  • FIG. 3B illustrates the control valve gate 302 in the second gate position, allowing flow through the ports 212 and 304, and a portion of the control valve chamber 202 is filled with hydraulic fluid 220.
  • the flow control device 112 of FIGS. 3 A and 3B may, in some implementations, provide an bypass valve or an ICD that can be opened without well intervention (e.g. using the control unit 108) after installation in the well system 100.
  • FIG. 9 illustrates a portion of the flow control device 112 in accordance with some aspects of the present disclosure. The flow control device 112 illustrated in FIG.
  • the flow control device 112 also includes the control line 110 in fluid communication with the control valve chamber 202.
  • the illustrated control valve gate 302 includes an ICD 210b.
  • the control valve gate 302 in a first gate position (as illustrated in FIG. 9) allows fluid flow through the port 212 and the ICD 210a at a rate determined at least partially by the specifications of the ICD 210a.
  • the gate 302 In a second gate position (not illustrated), when the gate 302 abuts the ICD 210a, the gate 302 allows fluid flow through port 212, the ICD 210b, and the ICD 210a at a rate determined at least partially by the specifications of the ICD 210a and/or the specifications of the ICD 210b.
  • changing the state of the device 112 changes a flow rate through the device 112.
  • the second state of the flow control device 112 may allow fluid to flow along a first flow path
  • the second state of the flow control device 112 may allow fluid to flow along a second flow path.
  • the first flow path is more flow restrictive than the second flow path.
  • the first flow path is less flow restrictive than the second flow path.
  • the ICD 210a may include the same, different, additional, or fewer features with respect to the ICD 210b.
  • FIG 4A illustrates a control unit 108 in accordance with some aspects of the present disclosure.
  • the control unit 108 includes a piston 406.
  • the piston 406 may be in a first piston position or a second piston position.
  • the piston 406 is illustrated in the first and second piston positions in FIGS. 4A and 4B, respectively.
  • the piston 406 may be installed in multiple sections.
  • the piston 406 (or each section of the piston 406) may be held in the first piston position by a shear pin 414 and/or a shear screw 416.
  • a control unit 108 may include additional features not illustrated in the figures, or a control unit 108 may exclude some of the features illustrated in the figures.
  • a control unit 108 may include additional chambers, sensors, valves, screws, pins, seals, ports, and other features that are not illustrated in the figures.
  • a control unit 108 may include some or all of the features in any arrangement suitable for changing the state of a flow control device 112.
  • a hydraulic fluid chamber 410 is illustrated in fluid communication with the control line 110 through a hydraulic channel 412. When the piston 406 moves from the first piston position to the second piston position, hydraulic fluid 220 may be communicated into the control line 110. Consequently, the volume of fluid may be communicated to the flow control device 112. The volume of fluid may be sufficient to change the state of the flow control device 112, for example by displacing the control valve gate 204 of FIG. 2A (or the control valve gate 302 of FIG. 3A) from the first gate position to the second gate position.
  • the control unit 108 illustrated in FIG. 4A includes a hydrostatic chamber 402.
  • a port 418 may provide a flow path between the interior region 116 and the hydrostatic chamber 402.
  • the flow of a volume of fluid e.g. a volume of fluid greater than the volume of the hydrostatic chamber 410
  • the rupture disk 404 may prevent fluid from flowing through the port 418.
  • the hydrostatic chamber 402 may be at an atmospheric pressure (e.g. 15 psi), and the pressure in the interior region 116 may significantly exceed the atmospheric pressure (e.g. 500 psi), such that the differential pressure across the rupture disk 404 is essentially the absolute pressure of the interior region 116.
  • the rupture disk 404 may be ruptured, for example, when the pressure of fluids in the interior region 116 of the completion string 102 exceeds a certain threshold pressure. After the rupture disk 404 has ruptured, fluid may flow from the interior region 116 into the hydrostatic chamber 402. The flow of fluid in to the hydrostatic chamber 402 may displace the piston 406 from the first piston position to the second piston position. The displacement of the piston 406 from the first piston position to the second piston position may communicate fluid from the hydraulic chamber 410 through the hydraulic channel 412, into the control line 110.
  • FIG 4B illustrates the control unit 108 of FIG. 4A with the piston 406 in the second piston position, for example, after the rupture disk 404 (not illustrated in FIG. 4B) has ruptured.
  • control unit 108 is actuated to change the flow control device 112 (e.g., from a first state to a second state) in response to pressure in the well bore 106.
  • the pressure in the well bore 106 that actuates the control unit 108 can be a high pressure, a low pressure, a pressure cycle, a pressure spike, a pressure plateau, a pressure differential across a boundary, or another type of pressure of fluid in the well bore 106.
  • the control unit 108 may be actuated to change the flow control device 112 in response to pressure in the tubular conduit exceeding a specified pressure.
  • the control unit 108 is actuated to change the flow control device 112 in response to pressure in the tubular conduit being less than a specified pressure.
  • the illustrated example control unit 108 in FIG. 4A is actuated when the differential pressure in the interior region 116, as compared to the pressure in the chamber 402, exceeds a specified pressure.
  • a person of ordinary skill in the art will understand how to modify the example control unit 108 to be actuated by different types of pressures in the well bore 106.
  • the chamber 402 could be a high pressure chamber
  • the control unit 108 could be actuated when the differential pressure in the interior region 116, as compared to the pressure in the chamber 402, is less than a specified value.
  • the control unit 108 illustrated in FIGS. 4A and 4B may be used to change the state of one or more flow control devices 112, for example, those illustrated in FIGS.
  • the control unit 108 may be installed below a production packer 104 of the well system 100, and the rupture disk 404 may be ruptured without well intervention.
  • the control unit 108 may be installed and operated without the use of control lines extending to the ground surface.
  • FIG 5 A illustrates a plurality of control units 108a, 108b, and 108c in fluid communication with a common control line 110. While only three control units 108 are illustrated, any number of control units 108 may be in fluid communication with a common control line 110 according to the present disclosure.
  • the control line 110 may also be in fluid communication with one or more flow control devices 112 (which are not illustrated in FIG. 5A).
  • each of the one or more of the control devices may include a rupture disk 404, where each rupture disk 404 is configured to rupture at a different pressure.
  • control line 110 may be in fluid communication with a flow control device 112 that has four states.
  • Control unit 108a may include a rupture disk 404 configured to rupture at a pressure of 1000 pounds per square inch (psi)
  • control unit 108b may include a rupture disk 404 configured to rupture at 1050 psi
  • control unit 108c may include a rupture disk 404 configured to rupture at 1100 psi.
  • the flow control device 112 may be in a first state when it is installed in the well system 100. After the flow control device 112 is installed, a pressure exceeding 1000 psi and less than 1050 psi may be applied to fluids in the interior region 116 of the tubular conduit 102, rupturing the rupture disk 404 of control unit 108a and changing the flow control device 112 from the first state to a second state.
  • a pressure between 1050 psi and 1100 psi may be applied to fluids in the interior region 116 of the tubular conduit 102, rupturing the rupture disk 404 of control unit 108b and changing the flow control device 112 from the second state to a third state.
  • a pressure exceeding 1100 psi may be applied to fluids in the interior region 116 of the tubular conduit 102, rupturing the rupture disk 404 of control unit 108c and changing the flow control device 112 from the third state to a fourth state.
  • the flow control device 112 having four states may be useful for controlling the flow of fluid into the completion string 102 at various stages in the production lifetime of the well system 100.
  • the first state of the flow control device 112 may be a closed state that does not allow fluid to flow into the completion string 102 through the flow control device 112.
  • the second state of the flow control device 112 may provide a flow path comprising an open bypass valve between the interior region 116 and the annulus 114.
  • the open bypass valve may be used to gravel pack to well.
  • the third state of the flow control device may close the bypass valve and provide a flow path comprising an ICD between the interior region 116 and the annulus 114. Resources may be produced from the well system through the open ICD for example, over a number of years.
  • the fourth state of the flow control device may increase the rate of fluid flow from the annulus 114 into the interior region 116 by providing a shorter open path through the ICD than is provided by the third state.
  • FIG 5B illustrates a plurality of control units 108a, 108b, and 108c in fluid communication with control lines 110a, 110b, and 110c, respectively. While only three control units 108 are illustrated, any number of flow control units 108 may be in fluid communication with separate control lines 110 according to the present disclosure. Each control line 110 may also be in fluid communication with one or more flow control devices 112 (which are not illustrated in FIG. 5B). In some implementations, each of the one or more of the control devices may include a rupture disk 404, where each rupture disk 404 is configured to rupture at a different pressure. In some implementations, one or more of the rupture disks 404 may be configured to rupture at the same pressure. All of the control lines 110 may be in fluid communication with different flow control devices 112.
  • control lines 110 may be in fluid communication with the same flow control device 112.
  • all of the control lines 110 may be in fluid communication with a first control device 112, while only control lines 110a and 110b are in fluid communication with a second flow control device 112.
  • FIG 6 illustrates an example flow control device 112 that has four states, where three of the four states provide a different flow path between the annulus 114 and the interior region 116.
  • Flow control device 112 may be in fluid communication with a first control unit 108 and a second control unit 108 through control lines HOa and HOb, respectively.
  • Control lines 110a and 110b may be distinct control lines, for example, as illustrated in FIG 5B.
  • the flow control device 112 provides two flow paths between the annulus 114 and the interior region 116.
  • Flow path A (illustrated by arrow A) includes the sand screen 208, the ICD 210, the control valve chamber 202a, and the ports 304a and 212a.
  • Flow path B (illustrated by arrow B) includes the sand screen 208, the control valve chamber 202b, and the ports 304b and 212b. Either or both of the flow paths A and B may include additional features that are not illustrated for purposes of clarity (e.g. ports, valves, chambers, seals, ICDs, etc).
  • the flow control device 112 is illustrated in FIG. 6 in a first state, which includes the control valve gate 302a in a first gate 302a position and the control valve gate 302b in a first gate 302b position. The first state of the flow control device 112 prevents fluid flow along both paths A and B. Second, third, and fourth states of the flow control device 112 may allow fluid flow along path A and/or path B.
  • a second state may correspond to control valve gate 302a in a second gate 302a position and the control valve gate 302b in the first gate 302b position, allowing fluid to flow from the annulus 114 into the interior region 116 along path A.
  • a third state may correspond to control valve gate 302a in the first gate 302a position and the control valve gate 302b in a second gate 302b position, allowing fluid to flow from the annulus 114 into the interior region 116 along path B.
  • a fourth state may correspond to both control valve gates 302a and 302b in their respective second gate positions, allowing fluid to flow from the annulus 114 into the interior region 116 along both paths A and B.
  • the flow control device 112 may be installed in the well system 100 in the first state, as illustrated. Hydraulic fluid 220 communicated into the control valve chamber 202a from control line 110a may move the control valve gate 302a from the first gate 302a position to a second gate 302a position in order to allow fluid to flow along path A, through port 304a. Additionally or alternatively, hydraulic fluid 220 communicated into the control valve chamber 202b from control line HOb may move the control valve gate 302b from the first gate 302b position to a second gate 302b position in order to allow fluid to flow along path B, through port 304b.
  • FIGS 7 A, 7B, and 7C are diagrams schematically illustrating three different configurations of a flow control system.
  • FIG. 7A illustrates a "one control unit to n flow control device" (1: «) configuration.
  • a single control unit 108 is in fluid communication with n flow control devices 112a-l 12x.
  • the (1 : ⁇ ) configuration may be useful for simultaneously changing the state of/? flow control devices 112.
  • FIG. 7B illustrates an "n control unit to one flow control device" (n: 1) configuration.
  • n control unit 112 is in fluid communication with n control units 108a-108x.
  • the (n:l) configuration may be useful for selecting a particular state of a flow control device 112, where the flow control device 112 has n states.
  • FIG. 7C illustrates a particular example of an "n control unit to m flow control device" (n:m) configuration.
  • m flow control devices 112 are in fluid communication with n control units 108.
  • both of two control units 108d and 108e are in fluid communication with each of three flow control devices 112d, 112e, and 112f.
  • the (n:m) configuration may be useful for simultaneously selecting a particular state of m flow control devices 112, where each of the m flow control devices 112 has n states.
  • the well system 100 may implement one or more of the three configurations or any hybrid version of the three configurations illustrated in FIGS. 7 A, 7B, and 7C. While the flow control systems are illustrated with control units 108 on the left and flow control devices 112 on the right, the various components of a flow control system may be installed in the well system 100 in any order according to the present disclosure. For example, the control unit 108 may be installed on either side of (or above or below) the flow control device 112.
  • FIG 8 is a flow chart illustrating a process 800 for controlling flow in a well system in accordance with some aspects of the present disclosure.
  • the process 800 may be used to open, close, or otherwise reconfigure flow paths between an annulus of a well bore into a tubular conduit installed in the well bore, where the annulus is the region between the tubular conduit and a wall of the well bore.
  • the process 800 may be used to control a flow of fluid into the completion string 102 of the well system 100 of FIG. 1.
  • Some or all of the functionality of the process 800 may be implemented without well intervention and/or without the use of control lines that extend to the ground surface.
  • a flow control device and a control unit are installed in a well system.
  • the flow control device may be in a first state, which allows fluid to enter a tubular conduit at a certain rate (e.g. using an ICD).
  • the flow control device in the first state may be used for some amount of time to produce resources from the well system.
  • the well system may produce with the flow control device in the firsts state as long as the well system produces resources having a certain composition (e.g. primarily oil and/or gas).
  • the composition of the resources produced by the well system may begin to change (e.g. the well system may begin to produce large amounts of water).
  • Changing the state of the flow control device may, for example, include opening a bypass valve or increasing a flow rate through an ICD.
  • the flow control device may be installed in a closed state, meaning that no fluid can flow into the tubular conduit from the annulus through the flow control device. After installation, it may be desirable to change the state of the flow control device to a state that provides an open flow path between the annulus and the tubular conduit.
  • a rupture disk of the control unit is ruptured.
  • the rupture disk may be configured to rupture when the pressure across the rupture disk exceeds a certain threshold pressure (e.g. 900 psi, 1000 psi, or 1100 psi).
  • the rupture disk may be ruptured by applying a pressure exceeding the threshold pressure to fluids in the tubular conduit.
  • fluid is allowed to flow from an interior of a tubular conduit into a hydrostatic chamber of the control unit.
  • the volume of fluid may exceed the initial volume of the hydrostatic chamber, causing the hydrostatic chamber to increase its volume, therein displacing a piston.
  • fluid is communicated into a hydraulic control line from the control unit.
  • the fluid may be communicated into the hydraulic control line when a piston is displaced.
  • the displacement of the piston may decrease the volume of a hydraulic chamber of the control unit.
  • the state of the flow control device is changed.
  • the state of the flow control device may be changed when a volume of hydraulic fluid is communicated into a chamber of the flow control device from the control line.
  • the volume of hydraulic fluid may be sufficient to open or close a valve of the flow control device.
  • Changing the state of the flow control device may include opening or closing an ICD, opening or closing a bypass valve, and/or increasing or decreasing a flow rate through an ICD.
  • the state of the flow control device is changed when fluid is communicated directly into the chamber of the flow control device from the control unit.
  • the operation (820) of communicating fluid into a hydraulic control line may be omitted.
  • the process 800 may perform any of the functions 805-825 and/or additional functions any number of times, according the present disclosure. For example, multiple flow control devices and/or control units may be installed in the well bore, and multiple rupture disks may be rupture in sequence or simultaneously. Furthermore, the process 800 may omit one or more of the functions 805-825.

Abstract

A system for installation in a well bore 106 includes a flow control device 112 and a control unit 108 coupled to the flow control device. The flow control device is changeable from a first state to a second state. The first state corresponds to a first mode of fluid communication between an interior 116 of a tubular conduit of a completion string 102 and an annulus 114 between the tubular conduit and a wall of the well bore. The second state corresponds to a second, different mode of fluid communication between the interior of the tubular conduit and the annulus. The control unit is coupled to the flow control device to change the flow control device between the first and second states. The control unit is actuated to change the flow control device in response to pressure in the well bore.

Description

FLOW CONTROL IN A WELL BORE REFERENCE TO RELATED APPLICATIONS
The present application claims the benefit of priority to U.S. Patent Application No. 12/123,682 filed on May 20, 2008, the entire contents of which are incorporated herein. BACKGROUND
The present disclosure relates to well systems, and more particularly to controlling flow in well systems.
It is often desirable to control fluid flow into the completion string of a well system, for example, to balance inflow of fluids along the length of the well. For instance, some horizontal wells have issues with the heel-toe effect, where gas or water cones in the heel of the well and causes a difference in fluid influx along the length of the well. The differences in fluid influx can lead to premature gas or water break through, significantly reducing the production from the reservoir. Inflow control devices (ICD) can be positioned in the completion string at heel of the well to stimulate inflow at the toe and balance fluid inflow along the length of the well. In another example, different zones of the formation accessed by the well can produce at different rates. ICDs can be placed in the completion string to reduce production from high producing zones, and thus stimulate production from low or non-producing zones. Finally, ICDs can be used in other circumstances to balance or otherwise control fluid inflow. SUMMARY
In a general aspect, a flow control device is changeable from a first state to a second state, and a control unit is coupled to the flow control device to change the flow control device between the first and second states.
In one aspect, a system for installation in a well bore includes the flow control device and the control unit coupled to the flow control device. The flow control device is changeable from a first state to a second state. The first state corresponds to a first mode of fluid communication between an interior of a tubular conduit of a completion string and an annulus between the tubular conduit and a wall of the well bore. The second state corresponds to a second, different mode of fluid communication between the interior of the tubular conduit and the annulus. The control unit is coupled to the flow control device to change the flow control device between the first and second states. The control unit is actuated to change the flow control device in response to pressure in the well bore.
In one aspect, a method of reconfiguring production inflow comprises producing fluids from an annulus about a completion string through a sand screen and into an interior of the completion string via a flow path, and the flow path is reconfigured in response to a hydraulic signal.
In one aspect, pressure is applied in a wellbore. In response to the applied pressure, a state of the flow control device in a completion string installed in the wellbore is changed from a first state to a second state. The first state corresponds to a first mode of fluid communication between an interior of the tubular conduit and the annulus between the tubular conduit and a wall of the well bore. The second state corresponds to a second, different mode of fluid communication between the interior of the tubular conduit and the annulus. One or more embodiments may include one or more of the following features, alone or in combination. The control unit is actuated to change the flow control device in response to pressure in the tubular conduit exceeding a specified pressure. The control unit is actuated to change the flow control device in response to pressure in the tubular conduit below a specified pressure. The control unit includes a hydraulic chamber in communication with the interior of the tubular conduit. The control unit includes a piston in communication with the hydraulic chamber and coupled to the flow control device. Pressure in the hydraulic chamber moves the piston and moving the piston changes the flow control device from the first state to the second state. Rupturing of a rupture disk between the hydraulic chamber and the interior of the tubular conduit allows fluid from the interior of tubular conduit into the hydrostatic chamber when the pressure in the tubular conduit exceeds the specified pressure. The first state of the flow control device allows fluid from the annulus to flow along a first flow path of the flow control device into the tubular conduit. The first state of the flow control device allows fluid from the tubular conduit to flow along a first flow path of the flow control device into the annulus. The second state of the flow control device allows fluid from the annulus to flow along a second flow path into the tubular conduit. The second flow path is less flow restrictive than the first flow path. The second flow path is more flow restrictive than the first flow path. The first state of the flow control device prevents fluid flow from the annulus into the tubular conduit and the second state of the flow control device allows fluid flow from the annulus into the tubular conduit. An additional flow control device is changeable between a plurality of states and provides one or more flow paths between the annulus and the interior of the tubular conduit. The control unit is coupled to the additional flow control device to change the additional flow control device between the states in response to pressure in the tubular conduit exceeding a specified pressure. In some cases, a second flow control device and a second control unit are included. The second control unit is coupled to the second flow control device to change the second flow control device between a first and a second state. The second control unit is actuated to change the second flow control device in response to pressure in the tubular conduit exceeding a second specified pressure that is higher than the first mentioned specified pressure. In some cases, the control unit resides below a packer of the completion string. The flow control device includes a sand screen. The sand screen filters particulates in the annulus from entering the tubular conduit. The flow control device includes a check valve. The check valve allows fluid to flow from the annulus into the tubular conduit and prevents a flow of fluid from the tubular conduit into the annulus. Changing the state of the flow control device includes communicating a volume of fluid to the flow control device. Changing the state of the flow control device is prevented prior to rupturing a rupture disk, and the rupture disk is configured to rupture in response to the specified pressure. The first state of the flow control device seals against flow of fluid through the flow control device between the interior of the tubular conduit and the annulus. A second pressure is applied in an interior of the tubular conduit of the completion string. The second pressure exceeds a second specified pressure that is higher than the first specified pressure. A state of a second flow control device in the completion string is changed from a first state to a second state when the pressure in the interior of the tubular conduit exceeds the second specified pressure. The flow path is reconfigured without well intervention.
The details of one or more embodiments of the invention are set forth in the accompa- nying drawings and the description below. Other features, objects, and advantages of the invention will be apparent from the description and drawings, and from the claims.
DESCRIPTION OF DRAWINGS
FIG. 1 is a diagram illustrating a well system in accordance with some aspects of the present disclosure. FIGS. 2 A and 2B are diagrams illustrating a flow control device in accordance with some aspects of the present disclosure.
FIGS. 3 A and 3B are diagrams illustrating a flow control device in accordance with some aspects of the present disclosure.
FIGS. 4 A and 4B are diagrams illustrating a control unit in accordance with some aspects of the present disclosure.
FIGS. 5 A and 5B are diagrams illustrating flow control systems in accordance with some aspects of the present disclosure.
FIG. 6 is a diagram illustrating a flow control device in accordance with some aspects of the present disclosure.
J FIGS. 7A, 7B and 7C are diagrams illustrating flow control systems in accordance with some aspects of the present disclosure.
FIG. 8 is a flow chart illustrating a process for controlling fluid flow in a well system in accordance with some aspects of the present disclosure. FIG. 9 is a diagram illustrating a flow control device in accordance with some aspects of the present disclosure.
Like reference symbols in the various drawings indicate like elements. DETAILED DESCRIPTION
The ability to reconfigure components of a well system without well intervention may simplify and/or reduce the cost of producing resources from the well system. For example, it may be desirable, in some circumstances, to change the rate of fluid flow into one or more sections of a completion string of a well system by opening, closing, or otherwise reconfiguring flow paths between the interior of the completion string and an annulus region (i.e. the region between the completion string and the wall of a well bore). Reconfiguring flow paths by well intervention may require the use of expensive equipment and the consumption of valuable resources (e.g. time and money).
According to the present disclosure, a flow control system reconfigures components of a well system reducing or eliminating the need for well intervention. In some instances, the flow control system may be used to improve the production performance of the well system and/or reduce costs associated with reconfiguring (e.g. opening, closing, and/or otherwise modifying) flow paths into the completion string of the well system. In particular, some configurations of the flow control system of the present disclosure may be used, for example, to open or close bypass valves, to open or close inflow control devices (ICDs), or to modify flow rates through ICDs. In some instances, changes to the flow control system may be implemented without the use of control lines extending up to the well head.
Various embodiments of the concepts disclosed herein may be utilized in various orientations and in various configurations. Example orientations include inclined, inverted, horizontal, vertical, and others. The concepts of this patent application are not limited to any of the example embodiments disclosed herein. Directional terms are used to describe the example embodiments. Example directional terms include "above," "below," "upper," "lower," and others. The terms "above," "upper," and "upward" may refer to a direction toward the earth's surface along a well bore. The terms "below," "lower," and "downward" may refer to a direction away from the earth's surface along a well bore. FIG. 1 is a diagram illustrating an example well system 100. At a high level, the well system 100 includes a completion string 102 and one or more production packers 104 (three shown) installed in a well bore 106. The completion string 102 is an assembly of equipment that includes a tubular conduit and extends through all or a portion of the well bore 106. The completion string 102 may be separate from or anchored to a casing 105 of the well bore 106. The completion string 102 is permanently or semi-permanently installed in the well bore 106, and is the primary equipment used to produce the well over its expected life. The packers 104 seal or substantially seal against passage of fluids between a wall of the well bore 106 and the completion string 102, and thus isolate portions of the well bore 106 from other portions of the well bore 106. FIG. 1 shows a completion string 102 having a flow control system with one control unit 108 and one flow control device 112. The control unit 108 is communicably connected to the flow control device 112 by a control line 110. In certain instances, the flow control system can include more than one control unit 108 and/or more than one flow control device 112. In certain instances, one control unit 108 can be communicably connected to multiple flow control devices 112.
The flow control device 112 may be a device that provides one or more flow paths between the interior region 116 of the completion string 102 and the annulus 114 between the completion string 102 and the wall of the well bore 106. The flow control device 112 may be changeable between a plurality of states, where each state corresponds to a mode of fluid communication between the interior region 116 and the annulus 114. In some examples, a state of the flow control device 112 corresponds to one or more particular flow paths through the flow control device 112 being open, one or more particular flow paths through the flow control device 112 being closed and/or one or more particular flow paths through the flow control device 112 being restricted (i.e. allowing less flow than when open). The control unit 108 may be used to change the flow control device 112 from one of the plurality of states to a different one of the plurality of states. The control unit 108 and the flow control device 112 may communicate over the control line 110. The control line 110 may, for example, be a hydraulic control line that communicates fluid between the control unit 108 and the flow control device 112 in order to change the state of the flow control device 112. FIGS. 2 A, 2B, 3A, 3B, and 6 are diagrams illustrating example flow control devices 112 in accordance with some aspects of the present disclosure. The flow control device 112 is not limited to any of the particular features or arrangement of features included in the illustrated examples.
In some cases, a particular state of the flow control device allows fluid from the annulus 114 to flow along a flow path of the flow control device into the tubular conduit. In some cases, a particular state of the flow control device allows fluid from the tubular conduit to flow along a flow path of the flow control device into the annulus 114.
As shown in FIG. 1, the control unit 108 and the flow control device 112 may be implemented in separate housings, at different positions along the completion string 102. Alternately, the control unit 108 and the flow control device 112 may be integrated in a single shared housing.
Control units 108 and/or flow control devices 112 may be positioned in isolated portions of the well bore 106 and/or in continuous portions of the well bore 106 (i.e. portions that are not isolated by production packers 104). A control unit 108 positioned in an isolated portion of the well bore 106 may communicate with one or more flow control devices 112 positioned in the same isolated portion (as illustrated in FIG. 1) or another isolated portion of the well bore 106. In some instances, a control unit 108 can communicate with multiple flow control devices 112 in different isolated portions of the well bore 106.
In some implementations, the flow control device 112 may be in a first state when installed in the well system 100, and subsequently changed to a second, different state. The first and the second state may each correspond to a different mode of fluid communication between the interior region 116 and the annulus 114. For example, after installing the flow control device 112, the well system 100 may produce resources for a period of time with the flow control device 112 being in the first state. For example, the first state of the flow control device may correspond to a restricted flow path of an ICD in the flow control device 112 being open. After a period of time (e.g. 1 to 5 years), the composition of resources produced by the well system 100 may begin to change (e.g. the well system 100 may begin to produce significant amounts of water after three years of production), and it may be desirable to produce the well system 100 to completion by allowing inflow through a less restrictive bypass valve rather than through a restricted flow path. In the example, the control units 108 may be used to change the state of the flow control device 112 to a second state, where the second state corresponds to a bypass valve in the flow control device 112 being open.
FIGS. 4A and 4B are diagrams illustrating a control unit 108 in accordance with some aspects of the present disclosure. The control unit 108 is not limited to any of the particular features or arrangement of features included in the illustrated example. In some implementations, when a rupture disk 404 of the control unit 108 is ruptured, the flow of fluid from the interior region 116 of the completion string 102 into a hydrostatic chamber 402 of the control unit 108 causes hydraulic fluid 220 from a hydraulic chamber 410 to be communicated to the flow control device 112, for example through the control line 110. The hydraulic fluid 220 communicated into the flow control device 112 may change the flow control device 112 from one of the plurality of states to a different one of the plurality of states, for example by changing the position of a control valve. The rupture disk 404 may be configured to rupture when the pressure across the rupture disk 404 exceeds a specified threshold value.
In some implementations, one or more control units may be installed in the well system 100 with the rupture disks 404 intact, blocking flow from the interior region 116 of the completion string 102 into the hydrostatic chamber 402 of the control unit 108, and the well system 100 may produce resources for a period of time with the rupture disks 404 intact. After the period of time, it may be desirable to change the state of one or more flow control devices 112, and pressure may be applied to fluids in the interior region 116 of the completion string 102. When the applied pressure exceeds the specified threshold value, the rupture disk may rupture, which may cause hydraulic fluid 220 to be communicated to the flow control device 112, which may change the state of the flow control device 112. A flow control system may include a collection of control units 108, control lines 110, and flow control devices 112. FIGS. 5A, 5B, 7A, 7B, and 7C illustrate exemplary flow control systems in accordance with some aspects of the present disclosure. In some implementations a single control unit 108 may communicate with multiple flow control devices 112. For example, a single control unit 108 may be used to change the state of multiple flow control devices 112. In some implementations, multiple control units 108 may communicate with a single flow control device 112. For example, a first control unit 108 may be used to change the flow control device 112 from a first state to a second state, and a second control unit 108 may be used to change the flow control device 112 to yet another state or back to the first state. In a configuration with multiple control units 108, one or more of the different control units 108 may have rupture disks of different specified rupture pressures. Thus, as is discussed in more detail below, the control units 108 can be separately controlled by controlling the pressure in the interior region 116 of the completion string 102.
Returning now to FIG. 1, the well system 100 includes a horizontally oriented well bore 106. However, the illustrated well system 100 is only a representative example of one well system in which the principles of the present disclosure may be beneficially utilized. The principles of the present disclosure may be implemented in well bores of various configurations and orientations (e.g. inclined, inverted, horizontal, vertical, etc.). Indeed, with regard to all figures, the illustrated implementations are merely representative examples of useful applications of the principles of the present disclosure, and the principles of the present disclosure are not limited to any specific details of the illustrated implementations.
The well bore 106 may be cased or open-hole. In some implementations, gravel packs may be provided about any or all of the flow control devices 112. A variety of additional well equipment (such as valves, sensors, pumps, control and actuation devices, etc.) may also be provided in the well system 100. The well bore 106 may be used to extract resources (e.g. oil, water, natural gas, or other resource) from a subterranean formation, such as a petroleum-bearing formation (e.g. sandstone, Austin chalk, or other type of formation). Referring to FIG. 2 A, the illustrated example flow control device 112 includes a control valve chamber 202 and a control valve gate 204. In FIG. 2 A, the control valve gate 204 is illustrated in a first position in the control valve chamber 202. In FIG 2B, the control valve gate 204 is illustrated in a second position in the control valve chamber 202. When the control valve gate 204 is in the first gate position, fluid may flow from the annulus 114 to the interior region 116. When the control valve gate 204 is in the second gate position, the gate 204 may prevent fluid flow between the interior region 116 and the annulus 114.
While the illustrations are described with regard to a first gate position and a second gate position, the control valve gate 204, in general, may be in any position in the control valve chamber 202. The first gate position refers to any position of the control valve gate 204 that allows fluid to flow between the control valve chamber 202 and the interior region 116 through a port 212. The second gate position refers to any position of the control valve gate 204 that substantially impedes fluid flow through the port 212. In some implementations, the first position may be the position of the gate 204 when the flow control device 112 is first installed in the well system 100. The first gate position may correspond to a first state of the flow control device 112. The second gate position may correspond to a second state of the flow control device 112. The gate 204 may be moved to the second gate position, for example, by hydraulic fluid communicated from the control line 110 into the control valve chamber 202 at some time after the flow control device 112 has been installed in the well system 100.
The illustrated flow control device 112 also includes a check valve 206 that may allow fluid to flow from the annulus 114 to the interior region 116 when the control valve gate 204 is in the first gate position. The check valve 206 may prevent fluid flow from the interior region 116 into the annulus 114. The check valve 206 includes a stopper 207. A sand screen 208 in the flow path between the annulus 114 and the check valve 206 prevents particulates (e.g. sand and/or rock) from entering the interior region 116 from the annulus 114. The sand screen 208 may be any type of filtration device, such as a wire or mesh sand screen, perforated or slotted tubing, and/or other filtration device.
An inflow control device (ICD) 210 positioned in the flow path between the check valve 206 and control valve chamber 202 may control the rate of fluid flow from the annulus 114 into the interior region 116. The ICD 210 may be any annular device that controls a flow rate through the device for a given pressure across the device. For example, the ICD 210 may be a tube, nozzle, orifice, helical channel or any other type of inflow control device. The port 212 provides a flow path between the control valve chamber 202 and the interior region 116. The arrows 214 illustrate a flow path between the annulus 114 and the interior region
116. When the control valve gate 204 is in the first gate position, fluids (e.g. oil, water, natural gas, and/or others) may flow from the annulus 114 through the sand screen 208, through the check valve 206, through the ICD 210, through the control valve chamber 202, through the port 212, and into the interior region 116. However, the check valve 206 may prevent fluid from traversing the inverse path (i.e. from the interior region 116 into the annulus 114). For example, the check valve may allow fluid to flow from the annulus 114 into the tubular conduit and reduce (or prevent) a flow of fluid from the tubular conduit into the annulus 114.
The control line 110 may be in fluid communication with the control valve chamber 202. The control line 110 may contain hydraulic fluid 220. When hydraulic fluid 220 is communicated into the control valve chamber 202, the control valve gate 204 may move to a different position in the control valve chamber 202. The hydraulic fluid 220 may be communicated from the control line 110, for example, due to the communication of hydraulic fluid into the control line 110 from the control unit 108 (of FIG. 1). The control valve gate 204 includes seals 205 which may prevent hydraulic fluid 220 from substantially leaking past the control valve gate 204.
When a sufficient amount of hydraulic fluid 220 is communicated into the control valve chamber 202, the control valve gate 204 may be moved to the second gate position. FIG. 2B illustrates the control valve gate 202 in the second gate position, blocking flow through the port 212, and a portion of the control valve chamber 202 is filled with hydraulic fluid 220. The flow control device 112 of FIGS. 2 A and 2B may, in some implementations, provide an ICD 210 (e.g. which may be used to produce resources at a certain flow rate for some amount of time) that can be closed without well intervention, for example, using the control unit 108. FIG. 3 A illustrates a portion of the flow control device 112 in accordance with some aspects of the present disclosure. The flow control device 112 illustrated in FIG. 3 A includes the control valve chamber 202, a control valve gate 302, and the port 212. The flow control device 112 also includes the control line 110 in fluid communication with the control valve chamber 202. The illustrated control valve gate 302 includes a port 304. The flow control device 112 of FIG. 3 A may include any or all of the other features of the flow control device 112 illustrated in FIG. 2 A. The flow control device 112 of FIG. 3 A may also include additional features not illustrated in FIG 2 A. For example, a flow control device 112 need not include features such as a sand screen, an ICD, or a check valve; a flow control device 112 may include additional chambers, sensors, valves, screws, pins, seals, ports, and other features that are not illustrated in the figures.
The control valve gate 302 of FIG. 3 A is different from the control valve gate 204 of FIG. 2A. In particular, the control valve gate 302 in a first gate position (as illustrated in FIG. 3A) prevents fluid flow through the port 212. When the gate 302 is in a second gate position (as illustrated in FIG. 3B), the gate 302 allows fluid flow between the interior region 116 and the control valve chamber 202 through the ports 212 and 304. In some implementations, the first position may be the position of the gate 302 when the flow control device 112 is first installed in the well system 100. The first gate position may correspond to a first state of the flow control device 112. The second gate position may correspond to a second state of the flow control device 112. The gate 304 may be moved to the second gate position, for example, by the control unit 108 after the flow control device 112 has been installed in the well system 100.
When a sufficient amount of hydraulic fluid 220 is communicated into the control valve chamber 202, the control valve gate 302 may be moved to the second gate position. FIG. 3B illustrates the control valve gate 302 in the second gate position, allowing flow through the ports 212 and 304, and a portion of the control valve chamber 202 is filled with hydraulic fluid 220. The flow control device 112 of FIGS. 3 A and 3B may, in some implementations, provide an bypass valve or an ICD that can be opened without well intervention (e.g. using the control unit 108) after installation in the well system 100. FIG. 9 illustrates a portion of the flow control device 112 in accordance with some aspects of the present disclosure. The flow control device 112 illustrated in FIG. 9 includes the control valve chamber 202, a control valve gate 302, the port 212, and an ICD 210a. The flow control device 112 also includes the control line 110 in fluid communication with the control valve chamber 202. The illustrated control valve gate 302 includes an ICD 210b. The control valve gate 302 in a first gate position (as illustrated in FIG. 9) allows fluid flow through the port 212 and the ICD 210a at a rate determined at least partially by the specifications of the ICD 210a. In a second gate position (not illustrated), when the gate 302 abuts the ICD 210a, the gate 302 allows fluid flow through port 212, the ICD 210b, and the ICD 210a at a rate determined at least partially by the specifications of the ICD 210a and/or the specifications of the ICD 210b. In some implementations, changing the state of the device 112 changes a flow rate through the device 112. For example, the second state of the flow control device 112 may allow fluid to flow along a first flow path, and the second state of the flow control device 112 may allow fluid to flow along a second flow path. In some cases the first flow path is more flow restrictive than the second flow path. In other cases the first flow path is less flow restrictive than the second flow path. The ICD 210a may include the same, different, additional, or fewer features with respect to the ICD 210b.
FIG 4A illustrates a control unit 108 in accordance with some aspects of the present disclosure. The control unit 108 includes a piston 406. The piston 406 may be in a first piston position or a second piston position. The piston 406 is illustrated in the first and second piston positions in FIGS. 4A and 4B, respectively. The piston 406 may be installed in multiple sections. The piston 406 (or each section of the piston 406) may be held in the first piston position by a shear pin 414 and/or a shear screw 416. Generally, a control unit 108 may include additional features not illustrated in the figures, or a control unit 108 may exclude some of the features illustrated in the figures. For example, a control unit 108 may include additional chambers, sensors, valves, screws, pins, seals, ports, and other features that are not illustrated in the figures. In addition, a control unit 108 may include some or all of the features in any arrangement suitable for changing the state of a flow control device 112. A hydraulic fluid chamber 410 is illustrated in fluid communication with the control line 110 through a hydraulic channel 412. When the piston 406 moves from the first piston position to the second piston position, hydraulic fluid 220 may be communicated into the control line 110. Consequently, the volume of fluid may be communicated to the flow control device 112. The volume of fluid may be sufficient to change the state of the flow control device 112, for example by displacing the control valve gate 204 of FIG. 2A (or the control valve gate 302 of FIG. 3A) from the first gate position to the second gate position.
The control unit 108 illustrated in FIG. 4A includes a hydrostatic chamber 402. A port 418 may provide a flow path between the interior region 116 and the hydrostatic chamber 402. In some implementations, the flow of a volume of fluid (e.g. a volume of fluid greater than the volume of the hydrostatic chamber 410) from the interior region 116 into the hydrostatic chamber 402 displaces the piston 406 from the first piston position to the second piston position. The rupture disk 404 may prevent fluid from flowing through the port 418. In some implementations, when the rupture disk 404 is intact, the hydrostatic chamber 402 may be at an atmospheric pressure (e.g. 15 psi), and the pressure in the interior region 116 may significantly exceed the atmospheric pressure (e.g. 500 psi), such that the differential pressure across the rupture disk 404 is essentially the absolute pressure of the interior region 116.
The rupture disk 404 may be ruptured, for example, when the pressure of fluids in the interior region 116 of the completion string 102 exceeds a certain threshold pressure. After the rupture disk 404 has ruptured, fluid may flow from the interior region 116 into the hydrostatic chamber 402. The flow of fluid in to the hydrostatic chamber 402 may displace the piston 406 from the first piston position to the second piston position. The displacement of the piston 406 from the first piston position to the second piston position may communicate fluid from the hydraulic chamber 410 through the hydraulic channel 412, into the control line 110. FIG 4B illustrates the control unit 108 of FIG. 4A with the piston 406 in the second piston position, for example, after the rupture disk 404 (not illustrated in FIG. 4B) has ruptured.
In some implementations, the control unit 108 is actuated to change the flow control device 112 (e.g., from a first state to a second state) in response to pressure in the well bore 106. The pressure in the well bore 106 that actuates the control unit 108 can be a high pressure, a low pressure, a pressure cycle, a pressure spike, a pressure plateau, a pressure differential across a boundary, or another type of pressure of fluid in the well bore 106. For example, the control unit 108 may be actuated to change the flow control device 112 in response to pressure in the tubular conduit exceeding a specified pressure. In another example, the control unit 108 is actuated to change the flow control device 112 in response to pressure in the tubular conduit being less than a specified pressure. The illustrated example control unit 108 in FIG. 4A is actuated when the differential pressure in the interior region 116, as compared to the pressure in the chamber 402, exceeds a specified pressure. A person of ordinary skill in the art will understand how to modify the example control unit 108 to be actuated by different types of pressures in the well bore 106. For example, in FIG. 4A, the chamber 402 could be a high pressure chamber, and the control unit 108 could be actuated when the differential pressure in the interior region 116, as compared to the pressure in the chamber 402, is less than a specified value. The control unit 108 illustrated in FIGS. 4A and 4B may be used to change the state of one or more flow control devices 112, for example, those illustrated in FIGS. 2A, 2B, 3A, 3B, and 6. The control unit 108 may be installed below a production packer 104 of the well system 100, and the rupture disk 404 may be ruptured without well intervention. The control unit 108 may be installed and operated without the use of control lines extending to the ground surface.
FIG 5 A illustrates a plurality of control units 108a, 108b, and 108c in fluid communication with a common control line 110. While only three control units 108 are illustrated, any number of control units 108 may be in fluid communication with a common control line 110 according to the present disclosure. The control line 110 may also be in fluid communication with one or more flow control devices 112 (which are not illustrated in FIG. 5A). In some implementations, each of the one or more of the control devices may include a rupture disk 404, where each rupture disk 404 is configured to rupture at a different pressure. For example, control line 110 may be in fluid communication with a flow control device 112 that has four states. Control unit 108a may include a rupture disk 404 configured to rupture at a pressure of 1000 pounds per square inch (psi), control unit 108b may include a rupture disk 404 configured to rupture at 1050 psi, and control unit 108c may include a rupture disk 404 configured to rupture at 1100 psi. In this example, the flow control device 112 may be in a first state when it is installed in the well system 100. After the flow control device 112 is installed, a pressure exceeding 1000 psi and less than 1050 psi may be applied to fluids in the interior region 116 of the tubular conduit 102, rupturing the rupture disk 404 of control unit 108a and changing the flow control device 112 from the first state to a second state. When the flow control device is in the second state, a pressure between 1050 psi and 1100 psi may be applied to fluids in the interior region 116 of the tubular conduit 102, rupturing the rupture disk 404 of control unit 108b and changing the flow control device 112 from the second state to a third state. When the flow control device is in the third state, a pressure exceeding 1100 psi may be applied to fluids in the interior region 116 of the tubular conduit 102, rupturing the rupture disk 404 of control unit 108c and changing the flow control device 112 from the third state to a fourth state. This example system (i.e. the flow control device 112 having four states) may be useful for controlling the flow of fluid into the completion string 102 at various stages in the production lifetime of the well system 100. For example, the first state of the flow control device 112 may be a closed state that does not allow fluid to flow into the completion string 102 through the flow control device 112. The second state of the flow control device 112 may provide a flow path comprising an open bypass valve between the interior region 116 and the annulus 114. The open bypass valve may be used to gravel pack to well. The third state of the flow control device may close the bypass valve and provide a flow path comprising an ICD between the interior region 116 and the annulus 114. Resources may be produced from the well system through the open ICD for example, over a number of years. The fourth state of the flow control device may increase the rate of fluid flow from the annulus 114 into the interior region 116 by providing a shorter open path through the ICD than is provided by the third state.
FIG 5B illustrates a plurality of control units 108a, 108b, and 108c in fluid communication with control lines 110a, 110b, and 110c, respectively. While only three control units 108 are illustrated, any number of flow control units 108 may be in fluid communication with separate control lines 110 according to the present disclosure. Each control line 110 may also be in fluid communication with one or more flow control devices 112 (which are not illustrated in FIG. 5B). In some implementations, each of the one or more of the control devices may include a rupture disk 404, where each rupture disk 404 is configured to rupture at a different pressure. In some implementations, one or more of the rupture disks 404 may be configured to rupture at the same pressure. All of the control lines 110 may be in fluid communication with different flow control devices 112. Alternatively, one or more of the control lines 110 may be in fluid communication with the same flow control device 112. In some implementations, for example, all of the control lines 110 may be in fluid communication with a first control device 112, while only control lines 110a and 110b are in fluid communication with a second flow control device 112.
FIG 6 illustrates an example flow control device 112 that has four states, where three of the four states provide a different flow path between the annulus 114 and the interior region 116. Flow control device 112 may be in fluid communication with a first control unit 108 and a second control unit 108 through control lines HOa and HOb, respectively. Control lines 110a and 110b may be distinct control lines, for example, as illustrated in FIG 5B. The flow control device 112 provides two flow paths between the annulus 114 and the interior region 116. Flow path A (illustrated by arrow A) includes the sand screen 208, the ICD 210, the control valve chamber 202a, and the ports 304a and 212a. Flow path B (illustrated by arrow B) includes the sand screen 208, the control valve chamber 202b, and the ports 304b and 212b. Either or both of the flow paths A and B may include additional features that are not illustrated for purposes of clarity (e.g. ports, valves, chambers, seals, ICDs, etc). The flow control device 112 is illustrated in FIG. 6 in a first state, which includes the control valve gate 302a in a first gate 302a position and the control valve gate 302b in a first gate 302b position. The first state of the flow control device 112 prevents fluid flow along both paths A and B. Second, third, and fourth states of the flow control device 112 may allow fluid flow along path A and/or path B. For example, a second state may correspond to control valve gate 302a in a second gate 302a position and the control valve gate 302b in the first gate 302b position, allowing fluid to flow from the annulus 114 into the interior region 116 along path A. Similarly, a third state may correspond to control valve gate 302a in the first gate 302a position and the control valve gate 302b in a second gate 302b position, allowing fluid to flow from the annulus 114 into the interior region 116 along path B. A fourth state may correspond to both control valve gates 302a and 302b in their respective second gate positions, allowing fluid to flow from the annulus 114 into the interior region 116 along both paths A and B.
The flow control device 112 may be installed in the well system 100 in the first state, as illustrated. Hydraulic fluid 220 communicated into the control valve chamber 202a from control line 110a may move the control valve gate 302a from the first gate 302a position to a second gate 302a position in order to allow fluid to flow along path A, through port 304a. Additionally or alternatively, hydraulic fluid 220 communicated into the control valve chamber 202b from control line HOb may move the control valve gate 302b from the first gate 302b position to a second gate 302b position in order to allow fluid to flow along path B, through port 304b.
FIGS 7 A, 7B, and 7C are diagrams schematically illustrating three different configurations of a flow control system. FIG. 7A illustrates a "one control unit to n flow control device" (1:«) configuration. In a (1 :«) configuration, a single control unit 108 is in fluid communication with n flow control devices 112a-l 12x. The (1 :ή) configuration may be useful for simultaneously changing the state of/? flow control devices 112. FIG. 7B illustrates an "n control unit to one flow control device" (n: 1) configuration. In an (n: 1) configuration, a single flow control device 112 is in fluid communication with n control units 108a-108x. The (n:l) configuration may be useful for selecting a particular state of a flow control device 112, where the flow control device 112 has n states. FIG. 7C illustrates a particular example of an "n control unit to m flow control device" (n:m) configuration. In an (n:m) configuration, m flow control devices 112 are in fluid communication with n control units 108. In the illustrated example (m=3, n=2), both of two control units 108d and 108e are in fluid communication with each of three flow control devices 112d, 112e, and 112f. The (n:m) configuration may be useful for simultaneously selecting a particular state of m flow control devices 112, where each of the m flow control devices 112 has n states. The well system 100 may implement one or more of the three configurations or any hybrid version of the three configurations illustrated in FIGS. 7 A, 7B, and 7C. While the flow control systems are illustrated with control units 108 on the left and flow control devices 112 on the right, the various components of a flow control system may be installed in the well system 100 in any order according to the present disclosure. For example, the control unit 108 may be installed on either side of (or above or below) the flow control device 112.
FIG 8 is a flow chart illustrating a process 800 for controlling flow in a well system in accordance with some aspects of the present disclosure. In general, the process 800 may be used to open, close, or otherwise reconfigure flow paths between an annulus of a well bore into a tubular conduit installed in the well bore, where the annulus is the region between the tubular conduit and a wall of the well bore. In particular, the process 800 may be used to control a flow of fluid into the completion string 102 of the well system 100 of FIG. 1. Some or all of the functionality of the process 800 may be implemented without well intervention and/or without the use of control lines that extend to the ground surface.
At 805, a flow control device and a control unit are installed in a well system. As an example, the flow control device may be in a first state, which allows fluid to enter a tubular conduit at a certain rate (e.g. using an ICD). The flow control device in the first state may be used for some amount of time to produce resources from the well system. In this example, the well system may produce with the flow control device in the firsts state as long as the well system produces resources having a certain composition (e.g. primarily oil and/or gas). After some amount of time has elapsed (e.g. 3 years), the composition of the resources produced by the well system may begin to change (e.g. the well system may begin to produce large amounts of water). When the composition begins to change, it may be desirable to change the state of the flow control device. Changing the state of the flow control device may, for example, include opening a bypass valve or increasing a flow rate through an ICD.
As a different example, the flow control device may be installed in a closed state, meaning that no fluid can flow into the tubular conduit from the annulus through the flow control device. After installation, it may be desirable to change the state of the flow control device to a state that provides an open flow path between the annulus and the tubular conduit.
At 810, a rupture disk of the control unit is ruptured. The rupture disk may be configured to rupture when the pressure across the rupture disk exceeds a certain threshold pressure (e.g. 900 psi, 1000 psi, or 1100 psi). The rupture disk may be ruptured by applying a pressure exceeding the threshold pressure to fluids in the tubular conduit.
At 815, fluid is allowed to flow from an interior of a tubular conduit into a hydrostatic chamber of the control unit. The volume of fluid may exceed the initial volume of the hydrostatic chamber, causing the hydrostatic chamber to increase its volume, therein displacing a piston.
At 820, fluid is communicated into a hydraulic control line from the control unit. The fluid may be communicated into the hydraulic control line when a piston is displaced. The displacement of the piston may decrease the volume of a hydraulic chamber of the control unit.
At 825, the state of the flow control device is changed. The state of the flow control device may be changed when a volume of hydraulic fluid is communicated into a chamber of the flow control device from the control line. The volume of hydraulic fluid may be sufficient to open or close a valve of the flow control device. Changing the state of the flow control device may include opening or closing an ICD, opening or closing a bypass valve, and/or increasing or decreasing a flow rate through an ICD.
In some cases, at 825, the state of the flow control device is changed when fluid is communicated directly into the chamber of the flow control device from the control unit. For example, when the control unit and the flow control device are implemented in a shared housing, the operation (820) of communicating fluid into a hydraulic control line may be omitted.
The process 800 may perform any of the functions 805-825 and/or additional functions any number of times, according the present disclosure. For example, multiple flow control devices and/or control units may be installed in the well bore, and multiple rupture disks may be rupture in sequence or simultaneously. Furthermore, the process 800 may omit one or more of the functions 805-825.
A number of embodiments of the invention have been described. Nevertheless, it will be understood that various modifications may be made without departing from the spirit and scope of the disclosure. Accordingly, other embodiments are within the scope of the following claims.

Claims

WHAT IS CLAIMED IS:
1. A system for installation in a well bore, the system comprising: a flow control device changeable from a first state to a second state, the first state corresponding to a first mode of fluid communication between an interior of a tubular conduit of a completion string and an annulus between the tubular conduit and a wall of the well bore and the second state corresponding to a second, different mode of fluid communication between the interior of the tubular conduit and the annulus; and a control unit coupled to the flow control device to change the flow control device between the first and second states, the control unit actuated to change the flow control device in response to pressure in the wellbore.
2. The system of claim 1, wherein the control unit comprises: a hydraulic chamber in communication with the interior of the tubular conduit; and a piston in communication with the hydraulic chamber and coupled to the flow control device, pressure in the hydraulic chamber moves the piston and moving the piston changes the flow control device from the first state to the second state.
3. The system of claim 2, further comprising a rupture disk between the hydraulic chamber and the interior of the tubular conduit, the rupture disk rupturing to allow fluid from the interior of tubular conduit into the hydrostatic chamber when the pressure in the tubular conduit exceeds a specified pressure.
4. The system of claim 1, wherein the first state of the flow control device allows fluid from the tubular conduit to flow along a first flow path of the flow control device into the annulus.
5. The system of claim 1, wherein the first state of the flow control device allows fluid from the annulus to flow along a first flow path of the flow control device into the tubular conduit.
6. The system of claim 5, wherein the second state of the flow control device allows fluid from the annulus to flow along a second flow path into the tubular conduit, the second flow path being less flow restrictive than the first flow path.
7. The system of claim 5, wherein the second state of the flow control device allows fluid from the annulus to flow along a second flow path into the tubular conduit, the second flow path being more flow restrictive than the first flow path.
8. The system of claim 1, wherein the first state of the flow control device prevents fluid flow between the annulus and the tubular conduit and the second state of the flow control device allows fluid flow between the annulus and the tubular conduit.
9. The system of claim 1, further comprising an additional flow control device changeable between a plurality of states and providing one or more flow paths between the annulus and the interior of the tubular conduit, the control unit coupled to the additional flow control device to change the additional flow control device between the states in response to pressure in the wellbore..
10. The system of claim 1, further comprising a second control unit coupled to the flow control device to change the flow control device between a third state and at least one of the first state or the second state, the second control unit actuated to change the flow control device in response to a second pressure in the wellbore..
11. The system of claim 1 , wherein the control unit resides below a packer of the completion string.
12. The system of claim 1, the flow control device further comprising a sand screen, the sand screen filtering particulates in the annulus from entering the tubular conduit.
13. The system of claim 1, the flow control device further comprising a check valve that allows fluid to flow from the annulus into the tubular conduit and prevents a flow of fluid from the tubular conduit into the annulus.
14. The system of claim 1, wherein the control unit is actuated to change the flow control device in response to pressure in the tubular conduit exceeding a specified pressure.
15. A method comprising: applying pressure in a wellbore; and in response to the applied pressure, changing a state of a flow control device in a completion string installed in the wellbore from a first state to a second state, the first state corresponding to a first mode of fluid communication between an interior of the tubular conduit and the annulus between the tubular conduit and a wall of the well bore and the second state corresponding to a second, different mode of fluid communication between the interior of the tubular conduit and the annulus.
16. The method of claim 15, wherein changing the state of the flow control device comprises communicating a volume of fluid to the flow control device.
17. The method of claim 15, wherein changing the state of the flow control device is prevented prior to rupturing a rupture disk, the rupture disk configured to rupture in response to a specified pressure in the wellbore.
18. The method of claim 15, wherein the first state of the flow control device allows fluid to flow along a first flow path of the flow control device between the interior of the tubular conduit and the annulus and the second state of the flow control device allows fluid to flow along a second flow path of the flow control device between the interior of the tubular conduit and the annulus that is less restrictive to fluid flow than the first flow path.
19. The method of claim 15, wherein the first state of the flow control device allows fluid to flow along a first flow path of the flow control device between the interior of the tubular conduit and the annulus and the second state of the flow control device allows fluid to flow along a second flow path of the flow control device between the interior of the tubular conduit and the annulus that is more restrictive to fluid flow than the first flow path.
20. The method of claim 15, wherein the first state of the flow control device is sealing against flow of fluid through the flow control device between the interior of the tubular conduit and the annulus.
21. The method of claim 15, further comprising: applying a second pressure in the wellbore;; and in response to the applied second pressure, changing a state of a second flow control device in the completion string from a first state to a second state.
22. The method of claim 15, wherein the flow control device comprises a sand screen in communication with an inflow control device.
23. A method of reconfiguring production inflow, comprising: producing fluids from an annulus about a completion string through a sand screen and into an interior of the completion string via a flow path; and reconfiguring the flow path in response to a hydraulic signal.
24. The method of claim 23, wherein the flow path is reconfigured without well intervention.
25. The method of claim 23, wherein the flow path is reconfigured to be less restrictive to fluid flow.
26. The method of claim 23, wherein the flow path is reconfigured to be more restrictive to fluid flow.
27. The method of claim 23, wherein the flow path is reconfigured to seal against fluid flow into the interior of the completion string.
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Families Citing this family (48)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US7836961B2 (en) * 2008-03-05 2010-11-23 Schlumberger Technology Corporation Integrated hydraulic setting and hydrostatic setting mechanism
EP2224233B1 (en) * 2009-02-26 2018-04-11 Services Petroliers Schlumberger A water fraction measuring sensor and method
US9109423B2 (en) 2009-08-18 2015-08-18 Halliburton Energy Services, Inc. Apparatus for autonomous downhole fluid selection with pathway dependent resistance system
US8443901B2 (en) * 2009-09-22 2013-05-21 Schlumberger Technology Corporation Inflow control device and methods for using same
US9121255B2 (en) 2009-11-13 2015-09-01 Packers Plus Energy Services Inc. Stage tool for wellbore cementing
US8708050B2 (en) 2010-04-29 2014-04-29 Halliburton Energy Services, Inc. Method and apparatus for controlling fluid flow using movable flow diverter assembly
US20120061093A1 (en) * 2010-09-09 2012-03-15 Baker Hughes Incorporated Multiple in-flow control devices and methods for using same
US9109441B2 (en) * 2010-12-30 2015-08-18 Baker Hughes Incorporated Method and apparatus for controlling fluid flow into a wellbore
US8752631B2 (en) * 2011-04-07 2014-06-17 Baker Hughes Incorporated Annular circulation valve and methods of using same
US9074466B2 (en) * 2011-04-26 2015-07-07 Halliburton Energy Services, Inc. Controlled production and injection
US8833466B2 (en) 2011-09-16 2014-09-16 Saudi Arabian Oil Company Self-controlled inflow control device
GB2495502B (en) 2011-10-11 2017-09-27 Halliburton Mfg & Services Ltd Valve actuating apparatus
GB2495504B (en) 2011-10-11 2018-05-23 Halliburton Mfg & Services Limited Downhole valve assembly
GB2497506B (en) 2011-10-11 2017-10-11 Halliburton Mfg & Services Ltd Downhole contingency apparatus
GB2497913B (en) * 2011-10-11 2017-09-20 Halliburton Mfg & Services Ltd Valve actuating apparatus
US8981957B2 (en) 2012-02-13 2015-03-17 Halliburton Energy Services, Inc. Method and apparatus for remotely controlling downhole tools using untethered mobile devices
WO2013138896A1 (en) * 2012-03-22 2013-09-26 Packers Plus Energy Services Inc. Stage tool for wellbore cementing
CN104246119A (en) * 2012-04-18 2014-12-24 哈利伯顿能源服务公司 Apparatus, systems and methods for bypassing a flow control device
AU2012377411B8 (en) * 2012-04-18 2016-07-07 Halliburton Energy Services, Inc. Apparatus, systems and methods for a flow control device
IN2014DN09608A (en) * 2012-06-08 2015-07-31 Halliburton Energy Services Inc
EP3578752B1 (en) * 2012-09-26 2020-12-23 Halliburton Energy Services, Inc. Multiple zone integrated intelligent well completion
US9163488B2 (en) * 2012-09-26 2015-10-20 Halliburton Energy Services, Inc. Multiple zone integrated intelligent well completion
US8960316B2 (en) * 2012-10-24 2015-02-24 Halliburton Energy Services, Inc. Interventionless adjustable flow control device using inflatables
WO2014074093A1 (en) * 2012-11-07 2014-05-15 Halliburton Energy Services, Inc. Time delay well flow control
US9695654B2 (en) 2012-12-03 2017-07-04 Halliburton Energy Services, Inc. Wellhead flowback control system and method
US9127526B2 (en) 2012-12-03 2015-09-08 Halliburton Energy Services, Inc. Fast pressure protection system and method
WO2014098859A1 (en) * 2012-12-20 2014-06-26 Halliburton Energy Services, Inc. Rotational motion-inducing flow control devices and methods of use
EP2917473B1 (en) * 2013-01-28 2019-08-14 Halliburton Energy Services, Inc. Downhole control system having a versatile manifold and method for use of same
US20140218207A1 (en) * 2013-02-04 2014-08-07 Halliburton Energy Services, Inc. Method and apparatus for remotely controlling downhole tools using untethered mobile devices
US10830028B2 (en) 2013-02-07 2020-11-10 Baker Hughes Holdings Llc Frac optimization using ICD technology
BR112015015588B1 (en) * 2013-02-08 2020-12-15 Halliburton Energy Services, Inc. WIRELESS DRIVE SYSTEM
AU2013378127A1 (en) 2013-02-15 2015-07-02 Halliburton Energy Services, Inc. Ball check valve integration to ICD
BR112015018227A2 (en) * 2013-03-21 2017-07-18 Halliburton Energy Services Inc pipeline pressure operated downhole fluid flow control system
US9447679B2 (en) * 2013-07-19 2016-09-20 Saudi Arabian Oil Company Inflow control valve and device producing distinct acoustic signal
BR112015030004B1 (en) 2013-08-16 2021-09-08 Halliburton Energy Services, Inc WELL BOTTOM SET FOR A WELL
NO338579B1 (en) * 2014-06-25 2016-09-12 Aadnoey Bernt Sigve Autonomous well valve
US10424916B2 (en) * 2016-05-12 2019-09-24 Baker Hughes, A Ge Company, Llc Downhole component communication and power management
CN106567689A (en) * 2016-11-18 2017-04-19 中国石油天然气股份有限公司 Underground automatic water control valve and automatic water control valve element
US10370946B2 (en) 2016-12-21 2019-08-06 Baker Hughes, A Ge Company, Llc Intake screen assembly for submersible well pump
CA3043306C (en) * 2016-12-27 2021-10-19 Halliburton Energy Services, Inc. Flow control devices with pressure-balanced pistons
US10648303B2 (en) * 2017-04-28 2020-05-12 Exxonmobil Upstream Research Company Wireline-deployed solid state pump for removing fluids from a subterranean well
US11401780B2 (en) * 2018-07-19 2022-08-02 Halliburton Energy Services, Inc. Electronic flow control node to aid gravel pack and eliminate wash pipe
NO345065B1 (en) * 2018-11-13 2020-09-14 Flowpro Control As A device and method for flow control for use in a tubular pipe in an oil and gas well.
GB201903843D0 (en) 2019-03-20 2019-05-01 Metrol Tech Ltd Rapture apparatus
US11725477B2 (en) 2019-07-25 2023-08-15 Odessa Separator, Inc. Chemical filter bypass tool and associated methods
US11143003B2 (en) * 2019-09-24 2021-10-12 Halliburton Energy Services, Inc. Methods to dehydrate gravel pack and to temporarily increase a flow rate of fluid flowing from a wellbore into a conveyance
US11208850B1 (en) 2020-06-30 2021-12-28 Baker Hughes Oilfield Operations Llc Downhole tubular system, downhole tubular and method of forming a control line passageway at a tubular
GB2616519A (en) * 2020-12-18 2023-09-13 Halliburton Energy Services Inc Fluid flow control system with a wide range of flow

Citations (3)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
WO2003023185A1 (en) * 2001-09-07 2003-03-20 Shell Internationale Research Maatschappij B.V. Adjustable well screen assembly
WO2004072432A2 (en) * 2003-02-05 2004-08-26 Halliburton Energy Services Adjustable well screen assembly
EP1857633A2 (en) * 2004-12-16 2007-11-21 Weatherford/Lamb, Inc. Flow control apparatus for use in a wellbore

Family Cites Families (71)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US64332A (en) * 1867-04-30 Improved well-tube
US2046460A (en) * 1932-03-19 1936-07-07 Edward E Johnson Inc Metallically integrated well screen
US2567321A (en) * 1946-09-26 1951-09-11 Courter Leo Drill stem tester
US2925866A (en) * 1955-10-10 1960-02-23 Roy L Arterbury Well tools employable as bailers, fishing tools, jars, and the like, of the delayed action type
US3180419A (en) * 1962-06-27 1965-04-27 Cicero C Brown Hydrostatic pressure set well packer
US3358760A (en) * 1965-10-14 1967-12-19 Schlumberger Technology Corp Method and apparatus for lining wells
US3385364A (en) * 1966-06-13 1968-05-28 Schlumberger Technology Corp Formation fluid-sampling apparatus
US3396796A (en) * 1966-12-01 1968-08-13 Schlumberger Technology Corp Fluid-sampling apparatus
US4745971A (en) * 1983-04-29 1988-05-24 Ava International Corporation Multiple string well packer
US4535842A (en) * 1983-07-01 1985-08-20 Baker Oil Tools, Inc. Well tool setting assembly
US5434393A (en) * 1990-10-09 1995-07-18 Jurkofsky; Maryann Microwave cooking bag with extension as handling vehicle
US5058674A (en) * 1990-10-24 1991-10-22 Halliburton Company Wellbore fluid sampler and method
US5103906A (en) * 1990-10-24 1992-04-14 Halliburton Company Hydraulic timer for downhole tool
NO306127B1 (en) * 1992-09-18 1999-09-20 Norsk Hydro As Process and production piping for the production of oil or gas from an oil or gas reservoir
US5337808A (en) * 1992-11-20 1994-08-16 Natural Reserves Group, Inc. Technique and apparatus for selective multi-zone vertical and/or horizontal completions
US5431412A (en) * 1993-03-17 1995-07-11 Baker Hughes Incorporated Sealing element
US5549161A (en) * 1995-03-06 1996-08-27 Baker Hughes Incorporated Overpull shifting tool
NO954352D0 (en) * 1995-10-30 1995-10-30 Norsk Hydro As Device for flow control in a production pipe for production of oil or gas from an oil and / or gas reservoir
US5727632A (en) * 1996-03-25 1998-03-17 Baker Hughes Incorporated Top release retrievable bridge plug or packer and method of releasing and retrieving
US5896928A (en) * 1996-07-01 1999-04-27 Baker Hughes Incorporated Flow restriction device for use in producing wells
US5803179A (en) * 1996-12-31 1998-09-08 Halliburton Energy Services, Inc. Screened well drainage pipe structure with sealed, variable length labyrinth inlet flow control apparatus
US5918689A (en) 1997-05-06 1999-07-06 Houston Engineers, Inc. Jar enhancer
US6302208B1 (en) * 1998-05-15 2001-10-16 David Joseph Walker Gravel pack isolation system
US6659184B1 (en) * 1998-07-15 2003-12-09 Welldynamics, Inc. Multi-line back pressure control system
US6470970B1 (en) * 1998-08-13 2002-10-29 Welldynamics Inc. Multiplier digital-hydraulic well control system and method
US6567013B1 (en) * 1998-08-13 2003-05-20 Halliburton Energy Services, Inc. Digital hydraulic well control system
US6179052B1 (en) * 1998-08-13 2001-01-30 Halliburton Energy Services, Inc. Digital-hydraulic well control system
EP1283940B1 (en) * 2000-05-22 2006-07-12 WellDynamics Inc. Hydraulically operated fluid metering apparatus for use in a subterranean well
US6371210B1 (en) * 2000-10-10 2002-04-16 Weatherford/Lamb, Inc. Flow control apparatus for use in a wellbore
NO314701B3 (en) 2001-03-20 2007-10-08 Reslink As Flow control device for throttling flowing fluids in a well
US6644412B2 (en) * 2001-04-25 2003-11-11 Weatherford/Lamb, Inc. Flow control apparatus for use in a wellbore
US7096945B2 (en) * 2002-01-25 2006-08-29 Halliburton Energy Services, Inc. Sand control screen assembly and treatment method using the same
NO318165B1 (en) * 2002-08-26 2005-02-14 Reslink As Well injection string, method of fluid injection and use of flow control device in injection string
CA2440625C (en) * 2002-09-13 2010-11-02 Schlumberger Canada Limited Volume compensated shifting tool
US6886634B2 (en) * 2003-01-15 2005-05-03 Halliburton Energy Services, Inc. Sand control screen assembly having an internal isolation member and treatment method using the same
US6857476B2 (en) * 2003-01-15 2005-02-22 Halliburton Energy Services, Inc. Sand control screen assembly having an internal seal element and treatment method using the same
DE20305579U1 (en) * 2003-04-07 2004-08-26 Marantec Antriebs- Und Steuerungstechnik Gmbh & Co. Kg Garage door operator with light unit
US7013980B2 (en) * 2003-08-19 2006-03-21 Welldynamics, Inc. Hydraulically actuated control system for use in a subterranean well
US7604055B2 (en) 2004-04-12 2009-10-20 Baker Hughes Incorporated Completion method with telescoping perforation and fracturing tool
US7195070B2 (en) * 2004-07-15 2007-03-27 Weatherford/Lamb, Inc. Method and apparatus for downhole artificial lift system protection
US7191833B2 (en) * 2004-08-24 2007-03-20 Halliburton Energy Services, Inc. Sand control screen assembly having fluid loss control capability and method for use of same
CA2530995C (en) * 2004-12-21 2008-07-15 Schlumberger Canada Limited System and method for gas shut off in a subterranean well
US20060213671A1 (en) * 2005-03-11 2006-09-28 Li Liping J Erosion resistant crossover for fracturing/gravel packing
CA2604654C (en) * 2005-04-20 2011-08-30 Welldynamics, Inc. Direct proportional surface control system for downhole choke
WO2006124024A1 (en) * 2005-05-13 2006-11-23 Welldynamics, Inc. Single line control module for well tool actuation
WO2006135565A2 (en) * 2005-06-10 2006-12-21 Exxonmobile Upstream Research Company Thermal activation mechanisms for use in oilfield applications
US7325597B2 (en) * 2005-07-15 2008-02-05 Welldynamics, B.V. Safety valve apparatus for downhole pressure transmission systems
WO2007021274A1 (en) * 2005-08-15 2007-02-22 Welldynamics, Inc. Pulse width modulated downhole flow control
WO2007040737A2 (en) * 2005-09-30 2007-04-12 Exxon Mobil Upstream Research Company Wellbore apparatus and method for completion, production and injection
US7523787B2 (en) * 2005-11-18 2009-04-28 Halliburton Energy Services, Inc. Reverse out valve for well treatment operations
US7469743B2 (en) * 2006-04-24 2008-12-30 Halliburton Energy Services, Inc. Inflow control devices for sand control screens
US7802621B2 (en) * 2006-04-24 2010-09-28 Halliburton Energy Services, Inc. Inflow control devices for sand control screens
US20070246212A1 (en) * 2006-04-25 2007-10-25 Richards William M Well screens having distributed flow
US20080035330A1 (en) * 2006-08-10 2008-02-14 William Mark Richards Well screen apparatus and method of manufacture
US20080041580A1 (en) * 2006-08-21 2008-02-21 Rune Freyer Autonomous inflow restrictors for use in a subterranean well
US20080041588A1 (en) * 2006-08-21 2008-02-21 Richards William M Inflow Control Device with Fluid Loss and Gas Production Controls
US20080041581A1 (en) * 2006-08-21 2008-02-21 William Mark Richards Apparatus for controlling the inflow of production fluids from a subterranean well
US7775283B2 (en) 2006-11-13 2010-08-17 Baker Hughes Incorporated Valve for equalizer sand screens
US7681652B2 (en) * 2007-03-29 2010-03-23 Baker Hughes Incorporated Packer setting device for high-hydrostatic applications
US7644758B2 (en) * 2007-04-25 2010-01-12 Baker Hughes Incorporated Restrictor valve mounting for downhole screens
US7775284B2 (en) * 2007-09-28 2010-08-17 Halliburton Energy Services, Inc. Apparatus for adjustably controlling the inflow of production fluids from a subterranean well
US20090095468A1 (en) 2007-10-12 2009-04-16 Baker Hughes Incorporated Method and apparatus for determining a parameter at an inflow control device in a well
US8312931B2 (en) 2007-10-12 2012-11-20 Baker Hughes Incorporated Flow restriction device
GB2467248B (en) 2007-11-19 2012-06-27 Shell Int Research In-situ fluid compatibility testing using a wireline formation tester
EP2209966B1 (en) 2007-11-22 2011-05-11 Shell Internationale Research Maatschappij B.V. Method of radially expanding a tubular element
WO2009067021A2 (en) 2007-11-23 2009-05-28 Aker Well Service As Method and device for determination of fluid inflow to a well
GB0722995D0 (en) 2007-11-23 2008-01-02 Simonian Sam Completion arrangement
US7841398B2 (en) * 2007-11-26 2010-11-30 Schlumberger Technology Corporation Gravel packing apparatus utilizing diverter valves
US7918275B2 (en) * 2007-11-27 2011-04-05 Baker Hughes Incorporated Water sensitive adaptive inflow control using couette flow to actuate a valve
US8474535B2 (en) * 2007-12-18 2013-07-02 Halliburton Energy Services, Inc. Well screen inflow control device with check valve flow controls
US7597150B2 (en) * 2008-02-01 2009-10-06 Baker Hughes Incorporated Water sensitive adaptive inflow control using cavitations to actuate a valve

Patent Citations (3)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
WO2003023185A1 (en) * 2001-09-07 2003-03-20 Shell Internationale Research Maatschappij B.V. Adjustable well screen assembly
WO2004072432A2 (en) * 2003-02-05 2004-08-26 Halliburton Energy Services Adjustable well screen assembly
EP1857633A2 (en) * 2004-12-16 2007-11-21 Weatherford/Lamb, Inc. Flow control apparatus for use in a wellbore

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US7857061B2 (en) 2010-12-28
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US8074719B2 (en) 2011-12-13

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