Hydrocarbon fluids, e.g. oil and natural gas, are obtained from a subterranean geologic formation, referred to as a reservoir, by drilling a well that penetrates the hydrocarbon-bearing formation. Once a wellbore is drilled, various forms of well completion components may be installed to control and enhance the efficiency of producing fluids from the reservoir. One piece of equipment which may be installed is a flow control valve. Flow control valves function to choke flow from a well annulus into a tubing in the case of a production valve and from an interior of the tubing to the surrounding annulus in the case of an injection valve. A motor may be used to shift a valve mechanism toward a closed or open position to achieve the desired fluid flow through the flow control valve. Pressure differentials act against the valve mechanism, and sufficiently high pressure differentials sometimes created during fluid flow can limit the ability of the motor to shift the flow control valve to the desired position.
In general, a system and methodology are provided for controlling fluid flow via a flow control assembly. The flow control assembly is disposed along a tubing string and comprises a flow control valve and a motor to control the operational position of the flow control valve. The flow control valve has a plunger and in some applications comprises a seal system to provide a seal between the plunger and a surrounding structure. Additionally, the flow control valve comprises a pressure balanced system. The pressure balanced system serves to balance pressure acting on the plunger such that the motor is able to move the plunger by simply overcoming limited friction, e.g. friction associated with the seal system, without overcoming a pressure differential otherwise acting on the plunger.
Certain embodiments of the invention will hereafter be described with reference to the accompanying drawings, wherein like reference numerals denote like elements, and:
In the following description, numerous details are set forth to provide an understanding of the present invention. However, it will be understood by those of ordinary skill in the art that the present invention may be practiced without these details and that numerous variations or modifications from the described embodiments may be possible.
The disclosure herein generally relates to a system and methodology for controlling fluid flow, e.g. fluid flow in a wellbore. For example, a flow control assembly may be disposed along a tubing string, e.g. a production and/or injection tubing string, deployed along the wellbore. The flow control assembly comprises a flow control valve and an actuator mechanism, e.g. a motor, to control the operational position of the flow control valve. The flow control valve has a plunger which may be selectively moved by the actuator mechanism toward the closed or open positions. In at least some embodiments, the flow control valve also comprises a seal system to provide a seal between the plunger and a surrounding structure. Additionally, the flow control valve comprises a pressure balanced system. The pressure balanced system serves to balance pressure acting on the plunger such that the actuator mechanism is able to move the plunger by simply overcoming limited friction, e.g. friction associated with the seal system, without overcoming a pressure differential otherwise acting on the plunger. Movement of the plunger may be used to selectively open or close a tubing string port so as to control flow of fluid into or out of the tubing string via the tubing string port.
In some embodiments, the actuator mechanism may be controlled to enable incremental displacement of the plunger to selectively control the amount of fluid flow allowed by the flow control valve into or out of the tubing string. During, for example, injection or production operations, displacement of the plunger may be used to increase or decrease the injection or production flow rates of fluids into or out of a surrounding reservoir. With multiple flow control valve assemblies located along the well tubing string, the flow rate of fluids into or out of multiple well zones may be independently controlled by controlling individual actuation mechanisms and corresponding plungers via a suitable control system.
Referring generally to
Referring generally to
In the embodiment illustrated, the flow control valve 30 comprises a piston, e.g. plunger, 52 which is slidably received within a corresponding cylinder 54 formed by side housing 38. The plunger 52 may be sealed with respect to the corresponding cylinder 54 via a plurality of seals 56. Additionally, a choke seal or seals 58 may be located along the corresponding cylinder 54 to suitably engage an outer surface of the plunger 52 when the flow control valve 30 is in a closed position with respect to tubing string port(s) 44, as illustrated in
The piston/plunger 52 may be coupled with actuator mechanism 32 via a suitable rod 60 or other linkage mechanism. By way of example, the actuator mechanism 32 may comprise a motor, e.g. a screw motor or linear motor, controllable by surface controller 37 or other suitable controller to move plunger 52 via rod 60 linearly along corresponding cylinder 54. As illustrated, an internal plunger passage 62 extends longitudinally through the plunger 52 including through a first end 64 of the plunger 52 on the actuator side and through a second end 66 on the opposite side of plunger 52. The internal plunger passage 62 serves as part of an overall pressure balanced system 68 which balances pressure acting against the first end 64 and the second end 66 of plunger 52, thus enabling shifting of plunger 52 without having to overcome a pressure differential.
Depending on the application, the flow control valve 30 may comprise various other components. By way of example, the flow control valve 30 may comprise an insert 70 coupled into plunger 52 at plunger end 66. The insert 70 may be formed of a durable material, e.g. carbide, to protect the plunger 52 against erosion from fluid flow and against damage from contact with other components. For example, the insert 70 may be positioned to engage a spring-loaded, protective sleeve 72.
Regardless of the inclusion of insert 70, the protective sleeve 72 may be positioned to slide and cover choke seal(s) 58 when plunger 52 is actuated to an open flow position, as illustrated in
When the flow control valve 30 is closed, as illustrated in
When the flow control valve 30 is open to flow through tubing string port 44, as illustrated in
Because the plunger 52 does not have to be moved against differential pressures between the reservoir pressure 50 and the tubing pressure 48, the flow control valve 30 may be utilized in higher differential pressure environments with a relatively lower force motor 32 or other lower force actuator mechanisms. Additionally, a higher flow rate can be achieved, because erosion is reduced across the piston plunger 52 in the fully open condition, as illustrated in
Referring generally to
In this embodiment, the plunger 52 serves in part as a linkage coupled with ball 78 to pivot ball 78 between a closed position, as illustrated in
Depending on the application, this embodiment of flow control valve 30 may comprise various other components. By way of example, the flow control valve 30 may comprise a ball valve seat 84 positioned for sliding and sealing engagement with an outer surface of ball 78. The ball valve seat 84 may be part of a sleeve 86 which is spring biased against ball 78 via a spring member 88, e.g. a coil spring or other suitable spring member. The spring member 88 may be trapped between a ridge 90 on sleeve 86 and member 76. In some applications, the ball valve seat 84 also may comprise a seal member 92, such as a choke seal. The seal member 92 seals against the outer surface of ball 78 when the ball is rotated to the closed position of
As with other embodiments described herein, the interior 46 of side housing 38 may be placed in communication with an annulus surrounding tubing string 24 within wellbore 22. Thus, flow control valve 30 may be selectively opened to allow fluid communication between the annulus of wellbore 22 and the internal flow passage 42 of the tubing string 24. The control valve 30 also may be selectively closed to block fluid communication between the wellbore annulus and the internal flow passage 42. In injection applications, the control valve 30 may be selectively actuated to block or allow outward flow of injection fluid.
When the flow control valve 30 is closed, as illustrated in
Additionally, this latter embodiment also enables achievement of a higher flow rate because erosion is reduced across the piston plunger 52 when in the fully open condition, as illustrated in
Referring generally to
In this example, the plunger 52 further comprises a yoke 100 coupled between plunger sleeve 96 and ball 78. The plunger sleeve 96 and the yoke 100 are assembled such that once the stroke of the plunger sleeve 96 reaches a certain position, an engagement feature 102, e.g. a catch, couples the plunger sleeve 96 and the yoke 100. Once yoke 100 is engaged with feature 102 of plunger sleeve 96, continued movement of the plunger sleeve 96 in, for example, a pulling direction causes the ball 78 to rotate towards a closed position. As the ball is rotated to the closed position, fluid flow from the annulus surrounding flow control valve 30 to the interior flow passage 42 of primary tubing 40 is choked.
Upon receipt of an opening control signal from control system 37, the motor/actuator mechanism 32 causes rod 60 and plunger 52 to shift the ball 78 to an open position. For example, the plunger sleeve 96 may be moved through a certain stroke length until an abutment 104 engages the yoke 100 and pushes the yoke 100 in a direction which rotates ball 78 towards an open position. When ball 78 is in the open position, the plunger sleeve 96 may be positioned such that fluid is allowed to flow from the surrounding annulus, through the flow control valve 30, and into interior flow passage 42 of the primary tubing 40.
As with other embodiments, the pressure balanced system 68 and its internal plunger passage 62 provide pressure balancing across the plunger 52. The pressure balancing enables use of a relatively lower force motor 32 or other actuator mechanism because the motor 32 does not have to overcome detrimental pressure differentials. Similar to other embodiments described herein, a higher flow rate can again be achieved with this type of embodiment because erosion is reduced across the plunger 52 when in the open condition. The system illustrated in
Depending on the application, the components of flow control valve assemblies 28 and of the overall well system 20 can be adjusted to accommodate a variety of structural, operational, and/or environmental parameters. For example, various types of motors or other actuator mechanisms 32 may be used to drive the plunger 52. Similarly, a variety of surface control systems 37, e.g. computer-based control systems, or other control systems may be employed for providing control signals to individual motor/actuator mechanisms 32 of a plurality of the control valve assemblies 28 located along the tubing string 24. The configuration of the plunger 52 and the pressure balanced system 68 also may be adjusted according to the parameters of a given application. For example, the passage 62 of pressure balanced system 68 may comprise a plurality of passages disposed along various routes through the plunger 52.
Additionally, the number and arrangement of flow control valve assemblies 28 can vary substantially from one well application to another. The flow control valve assemblies 28 may be utilized in both lateral and vertical wellbores to achieve the desired flow control over fluid flows from surrounding well zones and/or into surrounding well zones. The flow control valve assemblies 28 also may be used with many types of completions strings or other well strings in production operations and/or other types of operations.
Although a few embodiments of the present invention have been described in detail above, those of ordinary skill in the art will readily appreciate that many modifications are possible without materially departing from the teachings of this invention. Accordingly, such modifications are intended to be included within the scope of this invention as defined in the claims.