WO2014004143A1 - Actuating device and method - Google Patents
Actuating device and method Download PDFInfo
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- WO2014004143A1 WO2014004143A1 PCT/US2013/046105 US2013046105W WO2014004143A1 WO 2014004143 A1 WO2014004143 A1 WO 2014004143A1 US 2013046105 W US2013046105 W US 2013046105W WO 2014004143 A1 WO2014004143 A1 WO 2014004143A1
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- chamber
- tool operator
- tool
- pressure
- seal
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- E—FIXED CONSTRUCTIONS
- E21—EARTH OR ROCK DRILLING; MINING
- E21B—EARTH OR ROCK DRILLING; OBTAINING OIL, GAS, WATER, SOLUBLE OR MELTABLE MATERIALS OR A SLURRY OF MINERALS FROM WELLS
- E21B23/00—Apparatus for displacing, setting, locking, releasing or removing tools, packers or the like in boreholes or wells
- E21B23/04—Apparatus for displacing, setting, locking, releasing or removing tools, packers or the like in boreholes or wells operated by fluid means, e.g. actuated by explosion
- E21B23/0412—Apparatus for displacing, setting, locking, releasing or removing tools, packers or the like in boreholes or wells operated by fluid means, e.g. actuated by explosion characterised by pressure chambers, e.g. vacuum chambers
Definitions
- An example of a method of changing the state of a tool disposed in a well in accordance with an embodiment includes applying differential pressure cycles to an actuating device disposed in a wellbore, the actuating device comprising a tool operator having a first side open to a first chamber and a second side open to a second chamber; moving the tool operator to a first position in response to applying the differential pressure cycles; actuating the tool operator from the first position to a second position in response to depleting pressure in the second chamber; and changing the state of a tool element in response to actuating the tool operator to the second position.
- An example of an actuating device includes a tubular body comprising an axial bore and an annular region, a confined diameter container disposed within the annular region, a tool operator having a first side open to a first chamber and a second side open to a second chamber, the tool operator moveable from a first position to a second position in response to a pressure differential between the first chamber and the second chamber, a trigger valve having a valve piston operable from a closed position to an open position, an input pressure port in hydraulic communication with the first chamber and the second chamber through the trigger valve, and an exhaust port in hydraulic communication with the second chamber and the confined diameter container when the trigger valve piston is in the open position.
- An example of an actuating method includes applying an input pressure to a first side of a tool operator and to a second side of the tool operator; depleting the input pressure applied to the second side while maintaining the input pressure applied to the first side, moving the tool operator from a first position to a second position in response to depleting the input pressure applied to the second side, and changing the state of a tool element in response to moving the tool operator to the second position.
- Figure 1 illustrates an example system in which embodiments of the actuating device and method can be implemented.
- Figure 2 illustrates an example of an actuating device in accordance with one or more embodiments.
- Figure 3 illustrates an example of a tool that can implement embodiments of the actuating device and method.
- Figure 4 illustrates a sectional view of an actuating device along the line 4-4 of Figure 2 in accordance to one or more embodiments.
- Figure 5 illustrates an example of an actuating device in accordance with one or more embodiments.
- Figure 6 illustrates a sectional view of an actuating device along the line 6-6 of Figure 5 in accordance to one or more embodiments.
- Figure 7 illustrates an example of an actuating device tool operator in accordance to one or more embodiments.
- Figure 8 illustrates an example of an actuating device trigger valve according to one or more embodiments.
- Figure 9 schematically illustrates an example of an actuating device in a static position in accordance with one or more embodiments.
- Figure 10 schematically illustrates an example of an actuating device in a second position in accordance with one or more embodiments.
- Figure 11 schematically illustrates an example of a tool implementing an actuating device in accordance with an embodiment.
- Figure 12 illustrates a tool implementing an actuating device in accordance with an embodiment.
- Figure 13 illustrates an actuating device utilized with a tool in accordance with an embodiment.
- Figure 14 illustrates an expanded portion of a tool operator in isolation in accordance with an embodiment.
- first and second features are formed in direct contact
- additional features may be formed interposing the first and second features, such that the first and second features may not be in direct contact.
- the terms “up” and “down”; “upper” and “lower”; “top” and “bottom”; and other like terms indicating relative positions to a given point or element are utilized to more clearly describe some elements. Commonly, these terms relate to a reference point as the surface from which drilling operations are initiated as being the top point and the total depth of the well being the lowest point, wherein the well (e.g., wellbore, borehole) is vertical, horizontal or slanted relative to the surface.
- Figure 1 illustrates an example of a well 5 in which embodiments of an actuating device and method, generally denoted by the numeral 10, can be implemented.
- Actuating device 10 is operationally connected with a tool element 12 to form a tool 14.
- tool 14 is disposed downhole (i.e., subsurface) in wellbore 16 on a tubular string 18.
- tool 14 is described as a valve, for example a formation isolation valve, and tool element 12 is a controllable barrier across the axial bore of tool 14.
- tool element 12 may be a ball-type valve control element or a flapper-type valve control element.
- Other types of tool elements and valve control elements are contemplated and considered within the scope of the appended claims.
- Wellbore 16 is depicted extending from a surface 20 into the subterranean earthen formations 22. Wellbore 16 may or may not be cased, for example via a casing string 24. Although tool 14 is depicted as being disposed in a vertical wellbore 16, tool 14 may be disposed in a lateral or deviated section of wellbore 16 without departing from the scope of the disclosure.
- An annulus 26 is located between an exterior surface of the tool 14 and the interior surface of wellbore 16.
- the pressure in annulus 26 may be referred to in some embodiments as a casing pressure and the pressure in the bore 17 of tubular string 18 as tubing pressure.
- Casing pressure is associated with the hydrostatic column of the fluid in annulus 26 and the formation pressures communicated to annulus 26.
- the tubing pressure can be manipulated via pumps 28 located for example at surface 20.
- actuating device 10 operates tool element 12 for controlling the state, open or closed, of tool 14.
- Actuating device 10 is an interventionless apparatus facilitating remote actuation of tool element 12, for example from surface 20.
- a tool e.g., shifting tool
- a tool is conveyed downhole through bore 17 of tubular string 18 and through tool 14 to engage tool element 12 and actuate it to a different state.
- Figure 3 illustrates an example of a tool 14 with which embodiments of actuating device 10 may be implemented.
- tool 14 is a valve, such as a formation isolation valve, adapted to be connected within a tubular string and disposed in a wellbore.
- Tool 14 comprises actuating device 10, illustrated for example in Figures 2 and 5.
- an example of an actuating device 10 comprises a tubular body 30 having an axial bore 32; a confined diameter container 34 (i.e., atmospheric container); a tool operator 36 movable in response to a pressure differential between a first side 70 and a second side 72 of tool operator 36; and a hydraulic system 7 ( Figures 9, 10) to selectively actuate tool operator 36.
- hydraulic system 7 comprises a trigger valve, generally denoted by the numeral 38, which is moveable from a closed position to an open position. Hydraulic system 7 communicates pressure at input pressure port 40 to first side 70 and second side 72 of tool operator 36 via tubing compensator 48 and trigger valve 38.
- actuating device 10 includes a trigger 42 operationally connected to trigger valve 38 to selectively actuate trigger valve 38 from the closed position to the open position.
- a chamber 62 is defined between tool operator 36 and a housing generally denoted by the numeral 54.
- chamber 62 may be filled with hydraulic fluid 116 ( Figures 9, 10).
- a seal 64 is provided between tool operator 36 and housing 54, dividing chamber 62 into a first chamber 66 and a second chamber 68.
- First chamber 66 is in hydraulic communication with the first side 70 of tool operator 36.
- Second chamber 68 is in hydraulic communication with the second side 72 of tool operator 36.
- First side 70 is illustrated as an exterior surface of tool operator 36 on one side of seal 64 and second side 72 is illustrated as the exterior surface of tool operator 36 on the opposite side of seal 64 from first side 70.
- Tool operator 36 moves axially in response to a pressure differential between first side 70 and second side 72.
- a first passage 74 provides a flow path to first chamber 66 and first side 70.
- a second passage 76 provides a flow path to second chamber 68 and second side 72.
- Additional seals may be provided in actuating device 10.
- Tool operator 36 is operationally connected to tool element 12, such that movement of tool operator 36 causes tool element 12 to actuate thereby changing the state of tool element 12 and tool 14.
- tool operator 36 is operationally connected to tool element 12 ( Figures 1, 3) through a mechanical latch 44 ( Figure 3).
- movement of tool operator 36 from the first position to the second position causes ball-type tool element 12 to rotate from a closed position to an open position.
- Actuating device 10 may be connected within tubular string 18 ( Figure 1), for example at end 46, such that bore 17 of tubular string 18 and bore 32 of tool 14 form a substantially continuous axial bore.
- Input pressure port 40 is provided by compensator 48 (e.g., tubing compensator).
- Input pressure port 40 is illustrated as being opened to bore 32, thereby hydraulically communicating tubing pressure, which may be provided by pump 28 ( Figure 1) for example, to trigger valve 38 and first side 70 and second side 72 of tool operator 36. Pressure across tool operator 36 is independent of the reservoir pressure (i.e., pressure of the formation 22 penetrated by the wellbore).
- first side 70 i.e., the pressure in first chamber 66
- second side 72 i.e., the pressure in second chamber 68
- a sequence of pressure differentials are created by increasing the tubing pressure over the annulus 26 pressure and the sequence of pressure differentials are applied to trigger 42 to actuate trigger valve 38 to the open position.
- trigger valve 38 opens a pressure differential is created across tool operator 36 by the transfer of hydraulic fluid from second chamber 68 to confined diameter container 34 through open trigger valve 38.
- the input hydraulic pressure applied to tool operator 36 prior to the trigger differential pressure sequence is maintained on first side 70 when trigger valve 38 is actuated to the open position.
- the differential pressure created across tool operator 36 by bleeding pressure from second side 72 causes tool operator 36 to move axially from the first position.
- actuating device 10 When actuating device 10 is suspended in the wellbore, the out of balance pressure situation exists in trigger 42 and not across tool operator 36 which may provide for longer suspension times than available with conventional actuating devices. Locating the pressure differential (i.e., the energy to actuate tool operator 36) in trigger 42 may reduce the seal area utilized at tool operator 36 relative to some contemporary actuating devices thereby reducing the leakage across the seals and increasing the available suspension time of the tool in the wellbore relative to the suspension time of some contemporary wellbore tools.
- Tubular body 30 forms an annular region 50 between a mandrel 52 defining a portion of axial bore 32 and a housing 54.
- confined diameter container 34 and trigger valve 38 are disposed in annular region 50 as illustrated for example in Figures 4 and 6.
- confined diameter container 34 is illustrated as a helical coil that is concentrically disposed about mandrel 52.
- confined diameter container 34 is depicted as a bottle, e.g., a sample bottle.
- Confined diameter container 34 is initially set at atmospheric pressure, for example the pressure at surface 20, and evacuated to provide a reservoir into which hydraulic fluid from the second side of tool operator 36 is transferred when trigger valve 38 is operated to the open position creating hydraulic communication between the second side of tool operator 36 and confined diameter container 34.
- the pressure differential between the internal volume of confined diameter container 34 and the wellbore is located in trigger valve 38 across first seal 84 and second seal 88 and not across the seal 64 of tool operator 36.
- actuating device 10 is adapted for use in high pressure wells.
- Confined diameter container 34 is at atmospheric pressure internally and high external pressure acts on the exterior surface of confined diameter container 34, thus confined diameter container 34 is configured with a small internal diameter and corresponding small external surface area to resist crushing in high pressure environments.
- the internal diameter and the external surface area of confined diameter container 34 is smaller than the respective internal diameter of annular region 50 and the external surface area of tubular body 30 in which confined diameter container 34 is disposed. It is noted that when actuating device 10 is disposed in a wellbore, annular region 50 may be in hydraulic communication with the wellbore and not subject to a differential pressure.
- Figure 4 illustrates a sectional view of device 10 along the line 4-4 of Figure 2 and Figure 6 illustrates a sectional view of actuating device 10 along the line 6-6 of Figure 5.
- Annular region 50 is formed between housing 54 and mandrel 52 of tubular body 30.
- Confined diameter container 34 is located in annular region 50.
- the volume of confined diameter container 34 can be modified to accommodate the volume of hydraulic fluid 116 ( Figures 9, 10) that is to be transferred from the second side 72 to allow tool operator 36 to move to the second position and change the state of tool element 12.
- the length of confined diameter container 34 i.e., helical coil
- the number of turns around mandrel 52 may be varied to accommodate the desired volume of hydraulic fluid.
- the length of confined diameter container 34 and/or the number of confined diameter containers 34 (i.e., bottles) utilized can be varied to accommodate the desired volume of hydraulic fluid for tool operator 36 to shift.
- Figure 6 illustrates two confined diameter containers 34, in the form of bottles, disposed in annular region 50.
- the configuration of the confined diameter container 34 may be selected for operational characteristics. For example, the actuation of tool operator 36 may be controlled differently by a coiled embodiment of confined diameter container 34 relative to the same internal volume bottle embodiment of a confined diameter container 34.
- a bottle configuration of confined diameter container 34 may provide an accelerated transfer of hydraulic fluid 116 from second chamber 68 and corresponding accelerated actuation of tool operator 36 upon opening of trigger valve 38 relative to a same volume helical coil embodiment.
- the curvature of the coil governs the centrifugal force and the pitch (e.g., helix angle) influences the torsion to which the hydraulic fluid 116 is subjected while flowing.
- the pitch e.g., helix angle
- the force is distributed over a longer period of time in the helical coil configuration which may create a longer duration axial movement of tool operator 36 and corresponding longer duration pull on tool element 12.
- a longer duration actuation may be beneficial in opening a tool element 12 that is stuck relative to a more instantaneous actuation force which may be provided with a bottle configuration.
- FIGs 4 and 6 illustrate trigger valve 38 disposed in annular region 50.
- depicted trigger valve 38 comprises a first side port 58 in hydraulic communication with first side 70 of tool operator 36 via first passage 74 ( Figures 9, 10) and a second side port 60 in hydraulic communication with the second side of tool operator 36 via second passage 76 ( Figures 9, 10).
- FIG. 8 illustrates an example of a trigger valve 38 in accordance to one or more embodiments this disclosure.
- Trigger valve 38 comprises a valve body 78 having a cylinder 80, a valve piston 82 disposed in cylinder 80, and ports providing hydraulic communication to cylinder 80.
- an inlet port 92 is located proximate to a first end 77 of valve body 78.
- First side port 58 and second side port 60 are located proximate to a second end 79 of valve body 78.
- An exhaust port 94 is formed through valve body 78 between first end 77 and second end 79.
- Valve piston 82 comprises a first seal 84 spaced apart from a second seal 88 to form a sealed section 96.
- Valve piston 82 has a first seal surface 86 proximate first seal 84 upon which hydraulic pressure acts and a second seal surface 90 proximate second seal 88 upon which hydraulic pressure acts.
- first seal surface 86 has a larger surface area than second seal surface 90.
- Valve piston 82 and trigger valve 38 are illustrated in Figure 8 in the closed position, or static position, as further described below.
- valve piston 82 blocks hydraulic communication between confined diameter container 34 and second side 72 of tool operator 36.
- Valve piston 82 is held by trigger 42 to prevent movement of valve piston 82 from the closed position to the open position until trigger 42 is actuated to release valve piston 82 for movement.
- actuating trigger valve 38 to the open position may include actuating trigger 42 to release valve piston 82 for movement.
- Trigger 42 is illustrated in Figure 8 as a counter mechanism in accordance with one or more embodiments.
- trigger 42 is actuated to release valve piston 82 in response to a pressure differential, or force differential, created a determined number of times across trigger 42.
- the pressure differential across trigger 42 is created by applying an input pressure (e.g., tubing pressure) via tubing compensator 48 to trigger 42 that exceeds the opposing casing pressure applied to trigger 42 via annulus compensator 106.
- the depicted trigger 42 includes a cycling piston 98 that is in fluid communication with input pressure port 40 via tubing compensator 48 ( Figures 2, 5). Cycling piston 98 is connected through a mechanical indexer 100 to a rod 102 which is connected to valve piston 82 via holding collet 104. Trigger 42 includes an annulus compensator 106 that has an input pressure port 108 in hydraulic communication with annulus 26 ( Figure 1). Annulus compensator 106 communicates the reference pressure, casing pressure in this embodiment, from annulus 26 to cycling piston 98.
- Cycling piston 98 is cycled up and down in response to cycling the tubing pressure which is applied to cycling piston 98 through tubing compensator 48.
- Tubing pressure is communicated through tubing compensator 48 and port 110 urging cycling piston 98 downward and against the counter-force of the annulus 26 pressure communicated to cycling piston 98 via annulus compensator 106 and, in this embodiment, the force of spring 112.
- indexing mechanism 100 reaches a position that permits rod 102 to move upward disconnecting from collet 104 thereby releasing valve piston 82 so that it can move from the closed position to the open position as further described below with reference to Figures 9 and 10.
- FIG. 9 schematically illustrates an example of an actuating device 10 in a static position in accordance with one or more embodiments.
- Hydraulic system 7 comprises hydraulic fluid 116 disposed in first passage 74, second passage 76, first chamber 66, and second chamber 68.
- trigger valve 38 In the static position, trigger valve 38 is in the closed position and tool operator 36 is in the first position.
- Actuating device 10 can be conveyed downhole into a wellbore 16 as illustrated in Figure 1 , and remain in the static position until trigger 42 is operated to free valve piston 82 to move from the closed position. In the static position, the pressure across tool operator 36 is balanced.
- FIG. 10 schematically illustrates actuating device 10 in a second position in accordance with one or more embodiments of the disclosure.
- valve piston 82 of trigger valve 38 is released to move from the closed position of Figure 9 to the open position illustrated in Figure 10.
- input pressure from tubular string 18 is communicated via tubing compensator 48 to act on first seal surface 86 of valve piston 82 which communicates the same pressure to both first side 70 and second side 72 of tool operator 36 via hydraulic fluid 116 in first passage 74 and second passage 76 being in communication with second seal surface 90.
- Valve piston 82 moves downward, shifting from the closed position to the open position in response to the downward force on valve piston 82 overcoming the upward force on valve piston 82.
- First seal surface 86 has a larger surface area than the surface area of second seal surface 90 to provide the force differential for movement of valve piston 82 in response to an equal hydraulic pressure on both sides of valve piston 82. Movement of valve piston 82 to the open position opens hydraulic communication between second side 72 and confined diameter container 34 permitting the flow of hydraulic fluid 116 from second chamber 68 to confined diameter container 34.
- sealed section 96 is positioned across second side port 60 and exhaust port 94 opening the flow path between passage 95 and second passage 76. Input pressure is maintained on first side 70 of tool operator 36 while tool operator 36 moves toward the second position and hydraulic fluid 116 is bled from second chamber 68 into confined diameter container 34.
- Actuating method 10 comprises applying an input pressure to first side 70 and to second side 72 when tool operator is in a first position; depleting the input pressure applied to second side 72 while maintaining the input pressure applied to first side 70; moving the tool operator 36 from the first position to the second position in response to depleting the input pressure applied to second side 72; and changing the state of tool element 12 in response to moving tool operator 36 to the second position.
- Depleting the input pressure applied to second side 72 may comprise transferring hydraulic fluid 116 from the second side 72 to an atmospheric container such as confined diameter container 34.
- Actuating device 10 comprises a tool operator 36 that is axially moveable in response to a pressure differential between a first chamber 66 and a second chamber 68.
- actuating device 10 is operationally connected to a tool element 12, for example via a latch 44, to actuate and change the state of tool element 12 in response to movement of tool operator 36 from a first position to a second position.
- latch 44 comprises an operator connector 122 of tool operator 36 and a latch connector 123.
- actuating device 10 is selectively operated from the first position to the second position by a time counter depleting a hydraulic pressure applied to the second chamber 68.
- actuating device 10 is implemented in a tool 14 connected to a tubular string 18.
- Actuating device 10 comprises a tubular body 30 having an axial bore 32 and an annular region 50 defined between a mandrel 52 and a housing 54.
- a tubing compensator 48 and annulus compensator 106 are disposed in annular region 50.
- Input pressure port 40 is in communication with co-axial bores 17, 32 and tubing compensator 48.
- Annulus compensator 106 is in hydraulic communication with annulus 26 of Figure 1 through input pressure port 108.
- Tool operator 36 is movably positioned within a housing 54 and an axial bore 32 extends through tool operator 36.
- First chamber 66 is defined between an exterior surface of tool operator 36 and housing 54 and between a first seal 117 and a second seal 119.
- the second chamber 68 is defined between the exterior surface of tool operator 36 and housing 54 and between a third seal 118 and a fourth seal 120.
- a third chamber 124 referred to herein as a vacuum chamber, is defined between second seal 119 and third seal 118 and between the exterior surface of tool operator 36 and housing 54.
- the exterior surface of tool operator 36 that is open to first chamber 66 is referred to as the first side 70 of tool operator 36.
- first passage 74 is depicted extending through housing 54 to first chamber 66 and a second passage 76 extending through housing 54 to second chamber 68.
- Hydraulic pressure in first chamber 66 acts on first side 70, urging tool operator 36 down in this embodiment against the counter force of the hydraulic pressure in second chamber 68 acting on second side 72.
- Additional seals, generally denoted by the numeral 3 may be provided in actuating device 10.
- first passage 74, first chamber 66, second passage 76, and second chamber 68 may contain hydraulic fluid 116.
- actuating device 10 comprises a hydraulic system 7 to selectively actuate tool operator 36 and tool element 12.
- Hydraulic system 7 comprises tubing compensator 48, annulus compensator 106, and a trigger valve, generally denoted by the numeral 38.
- Hydraulic system 7 forms a closed loop of clean hydraulic fluid 116 with first chamber 66 and second chamber 68.
- trigger valve 38 comprises a first check valve 128 permitting one-way flow of hydraulic fluid 116 from tubing compensator 48 to second chamber 68, a second check valve 130 permitting one-way flow of hydraulic fluid 116 from annulus compensator 106 to tubing compensator 48, and a flow restrictor 126 providing hydraulic communication between second chamber 68 and first chamber 66.
- Flow restrictor 126 can act as a time counter with respect to actuating tool element 12 in response to actuation of tool operator 36 from the first position to the second position.
- Flow restrictor 126 can be sized to control the flow of hydraulic fluid 116 from the second chamber 68 in accordance with a desired time delay for movement of tool operator 36 from the first position to the second position.
- Tool 14 illustrated as a downhole wellbore tool, is disposed in wellbore 16 on tubular string 18 where it can remain in a static position until it is desired to operate tool element 12 of tool 14 to a different state.
- tool element 12 may comprise a valve moveable between an open state and a closed state blocking the continuous axial bore formed through tubular string 18 and tool 14.
- casing pressure acts through input pressure port 108 on floating piston 114 of annulus compensator 106 communicating annulus 26 pressure via first passage 74 to first chamber 66 and first side 70 of tool operator 36.
- Tubing pressure acts on the floating piston 114 of tubing compensator 48 and is communicated via second passage 76 to second chamber 68 and second side 72.
- a differential pressure cycle includes applying a first tubing pressure in excess of the casing pressure, for example by operation of pump 28, and then reducing the tubing pressure back below the annulus 26 pressure.
- the upward force on tubular operator 36 from second side 72 overcomes the downward force from first side 70 causing tool operator 36 to move uphole as hydraulic fluid 116 is pumped into second chamber 68.
- a vacuum may be created in third chamber 124 between second seal 119 and third seal 118 as tool operator 36 is urged upward.
- seals 117, 118, 119 and 120 are high pressure seals.
- Tool operator 36 is subsequently actuated from the first position to the second position in response to depleting the pressure in second chamber 68.
- Annulus 26 pressure acts on first side 70 when the pressure in second chamber 68 is depleted.
- the vacuum created in third chamber 124 may act on tool operator 36, urging it downward from the first position toward the second position. Actuation of tool operator 36 from the first position to the second position changes the state of operationally coupled tool element 12.
- Tool operator 36 may be located in substantially the same location when it is in the static position and when it is in the second position.
- Each differential pressure cycle creates an incremental upward movement, or stroke, of tool operator 36 when the tubing pressure exceeds the casing pressure.
- the reduction of tubing pressure below the casing pressure portion of the differential pressure cycle facilitates the next differential pressure induced incremental upward stroke.
- hydraulic fluid 116 and pressure are communicated from tubing compensator 48 through second passage 76 and first check valve 128 into second chamber 68 increasing the volume of second chamber 68.
- First check valve 128 blocks the backflow of hydraulic fluid 116 from second chamber 68 to tubing compensator 48 and second check valve 130 blocks the flow of hydraulic fluid 116 from tubing compensator 48 into annulus compensator 106.
- the volume and pressure of second chamber 68 remains substantially unchanged during the second portion of the differential pressure cycle when the casing pressure exceeds the tubing pressure and hydraulic fluid 116 can flow from annulus compensator 106 to tubing compensator 48 through second check valve 130.
- tool operator 36 is actuated to the second position, for example downhole, through the controlled leakage of the pressure build-up in second chamber 68 as hydraulic fluid 116 flows from second chamber 68 through flow restrictor 126 to first chamber 66.
- Flow restrictor 126 serves as a time counter for actuation of tool operator 36 from the first position to the second position.
- Annulus 26 pressure acts on first side 66 urging tool operator 36 toward the second position against the upward force of tubular string 18 pressure acting on second side 68.
- the vacuum created in third chamber 124 may act to urge tool operator toward the second position.
- actuating device 10 and tool element 12 are operationally connected, or coupled, to permit movement of tool operator 36 from the static position to the first position without changing the state of tool element 12 and to translate movement of tool operator 36 from the first position to the second position to change the state of tool element 12.
- Actuating device 10 is illustrated in the static position in Figure 11-13, with operator connector 122 of tool operator 36 located below latch connector 123.
- Operator connector 122 is positioned below latch connector 123 a distance 140 when actuating device 10 is in the static position.
- operator latch 122 may be located in substantially the same location, generally denoted by the numeral 152 in Figure 13, when actuating device 10 is in the static position and when actuating device 10 is in the second position.
- operator latch 122 When actuating device 10 is in the first position, operator latch 122 is positioned above latch connector 123 at a location generally denoted by the numeral 150 in Figure 13.
- operator connector 122 may comprise collet fingers.
- operator connector 122 As tool operator 36 moves uphole from the static position to the first position, operator connector 122 travels substantially the distance 140 and then engages latch connector 123 and carries latch connector 123 uphole to an intermediate position generally denoted by the numeral 132.
- Distance 140 is described as the distance operator connector 122 extends below latch connector 123 in the static position.
- a pocket 134 having a shoulder 136 is formed in housing 54 proximate to intermediate position 132.
- latch connector 123 may expand outward at pocket 134 and hang on shoulder 136 when released from operator connector 122. It is repeated that the movement of latch connector 123 from the static position to intermediate position 132 does not actuate the tool element in this embodiment.
- operator connector 122 contacts latch connector 123 and pushes latch 44 downhole until tool operator 36 is in the second position. In the second position, tool connector 122 is located proximate to location 152 and latch connector 123 is located below tool connector 122.
- latch connector 123 is be positioned approximately the distance 140 below where latch connector
- Tool element 12 is actuated to change states in response to movement of tool operator 36 from the first position to the second position.
- Method 10 in accordance with one or more embodiments, comprises applying differential pressure cycles to an actuating device 10 disposed in a wellbore 16, the actuating device 10 comprising a tool operator 36 having a first side 70 open to a first chamber 66 and a second side 72 open to a second chamber 68; moving the tool operator 36 to a first position in response to applying the differential pressure cycles; actuating the tool operator from the first position to a second position in response to depleting pressure in the second chamber 68 of the tool operator 36; and changing the state of a tool element 12 in response to actuating the tool operator 36 to the second position.
- Tool operator 36 may be moved to the first position, for example from a static position, by increasing the volume of the second chamber 68.
- the pressure may be depleted from second chamber 68 by communicating hydraulic fluid 116 from second chamber 68 to first chamber 66.
- hydraulic fluid 116 may flow from second chamber 68 through a flow restrictor 126 to first chamber 66.
- first chamber 66 is defined between tool operator 36 and housing 54 and between first seal 117 and second seal 119; second chamber 68 is defined between tool operator 36 and housing 54 and between third seal 118 and forth seal 120, and a third chamber 124 is defined between tool operator 36 and housing 54 and between second seal 119 and third seal 118.
- a vacuum may be created in third chamber 124 in response to moving tool operator 36 to the first position. The created vacuum may urge tool operator 36 toward the second position from the first position.
- actuating device 10 may comprise a first compensator 106 in communication with the first chamber 66 through a first passage 74 containing hydraulic fluid 116, wherein the first compensator 106 is acted on by a first well pressure; a second compensator 48 in communication in with the second chamber 68 via a second passage 76 containing hydraulic fluid 116, wherein the second compensator 48 is acted on by a second well pressure; a first one-way valve 128 permitting flow of the hydraulic fluid 116 from the second compensator 48 to the second chamber 68; and a flow restrictor 126 communicating hydraulic fluid 116 from the second chamber 68 to the first chamber 66.
- the first well pressure may be one of a tubing pressure or a casing pressure for example, and the second well pressure the other of the tubing pressure and the casing pressure.
- the first well pressure is described as annulus 26 pressure and the second well pressure is described as the pressure in tubular string 18.
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Abstract
Description
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Priority Applications (2)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| BR112014026519A BR112014026519A2 (en) | 2012-06-28 | 2013-06-17 | actuation method, actuation device, and method of changing the state of a tool disposed in a well |
| AU2013280882A AU2013280882A1 (en) | 2012-06-28 | 2013-06-17 | Actuating device and method |
Applications Claiming Priority (2)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| US13/536,611 US20140000908A1 (en) | 2012-06-28 | 2012-06-28 | Actuating device and method |
| US13/536,611 | 2012-06-28 |
Publications (1)
| Publication Number | Publication Date |
|---|---|
| WO2014004143A1 true WO2014004143A1 (en) | 2014-01-03 |
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Family Applications (1)
| Application Number | Title | Priority Date | Filing Date |
|---|---|---|---|
| PCT/US2013/046105 Ceased WO2014004143A1 (en) | 2012-06-28 | 2013-06-17 | Actuating device and method |
Country Status (4)
| Country | Link |
|---|---|
| US (1) | US20140000908A1 (en) |
| AU (1) | AU2013280882A1 (en) |
| BR (1) | BR112014026519A2 (en) |
| WO (1) | WO2014004143A1 (en) |
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| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| CN109252831B (en) * | 2018-11-13 | 2024-01-30 | 唐山渤海冶金智能装备有限公司 | Balancing device for hydraulic pumping unit and application method thereof |
| US11299945B2 (en) * | 2020-03-03 | 2022-04-12 | Baker Hughes Oilfield Operations Llc | Counter and system with counter |
| WO2024129973A1 (en) * | 2022-12-14 | 2024-06-20 | Schlumberger Technology Corporation | Compensator assembly for downhole tool articulation systems and methods |
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| US20030048197A1 (en) * | 2000-02-22 | 2003-03-13 | Purkis Daniel G. | Sequential hydraulic control system for use in a subterranean well |
| US20060090900A1 (en) * | 2004-11-03 | 2006-05-04 | Mullen Bryon D | Fracturing/gravel packing tool with variable direction and exposure exit ports |
| US20100038093A1 (en) * | 2008-08-15 | 2010-02-18 | Schlumberger Technology Corporation | Flow control valve platform |
| US20100175871A1 (en) * | 2009-01-13 | 2010-07-15 | Halliburton Energy Services, Inc. | Multi-Position Hydraulic Actuator |
| US20110061875A1 (en) * | 2007-01-25 | 2011-03-17 | Welldynamics, Inc. | Casing valves system for selective well stimulation and control |
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| Publication number | Priority date | Publication date | Assignee | Title |
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| JPH0741362B2 (en) * | 1992-12-29 | 1995-05-10 | オプトエンジニアリング株式会社 | Blind rivet continuous caulking method and continuous riveter |
| US9127528B2 (en) * | 2009-12-08 | 2015-09-08 | Schlumberger Technology Corporation | Multi-position tool actuation system |
-
2012
- 2012-06-28 US US13/536,611 patent/US20140000908A1/en not_active Abandoned
-
2013
- 2013-06-17 WO PCT/US2013/046105 patent/WO2014004143A1/en not_active Ceased
- 2013-06-17 AU AU2013280882A patent/AU2013280882A1/en not_active Abandoned
- 2013-06-17 BR BR112014026519A patent/BR112014026519A2/en not_active IP Right Cessation
Patent Citations (5)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| US20030048197A1 (en) * | 2000-02-22 | 2003-03-13 | Purkis Daniel G. | Sequential hydraulic control system for use in a subterranean well |
| US20060090900A1 (en) * | 2004-11-03 | 2006-05-04 | Mullen Bryon D | Fracturing/gravel packing tool with variable direction and exposure exit ports |
| US20110061875A1 (en) * | 2007-01-25 | 2011-03-17 | Welldynamics, Inc. | Casing valves system for selective well stimulation and control |
| US20100038093A1 (en) * | 2008-08-15 | 2010-02-18 | Schlumberger Technology Corporation | Flow control valve platform |
| US20100175871A1 (en) * | 2009-01-13 | 2010-07-15 | Halliburton Energy Services, Inc. | Multi-Position Hydraulic Actuator |
Also Published As
| Publication number | Publication date |
|---|---|
| BR112014026519A2 (en) | 2017-06-27 |
| AU2013280882A1 (en) | 2014-10-02 |
| US20140000908A1 (en) | 2014-01-02 |
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