In the oilfield industry for example, a plurality of control lines are typically run through downhole structures in a well bore. In general, control lines provide conduits for a variety of communication media, including hydraulic fluid, electrical conductors, fiber optic cables, and the like, that may be used to power, control and otherwise communicate with one or more downhole tools placed in the well. For example, a flow control valve installed downhole in a completion may be operated via hydraulic fluid pressure and/or pressure pulses communicated from the surface via the control line to an actuator mechanism of the valve. In addition, a fiber optic cable may be run through a control line and used, for example, to measure the temperature profile of the well or to communicate an operational command to a downhole tool.
With the growing popularity of multi-zone intelligent completions and the increased need for reservoir monitoring, the demand for increasing the number of control lines being utilized in a completion has grown. At the same time, the ability to run these control lines through limited space and the typically tight tolerances existing between structures in downhole completions and in well components has become a challenge. In addition, existing wellheads may have a limited number of penetrations, thus rendering it impractical to increase the number of control lines in order to add functionality to the completion. Increasing the number of control lines also presents difficulties at downhole locations where the control lines pass through completion components, such as tools or seals (e.g., packers, for example). Providing penetrations through a component through which the control lines can pass increases the complexity of a tool and compromises its ability to provide a seal. Reducing the number of control lines passing through a component would aid in improving the reliability and robustness of a well system.
In accordance with one embodiment of the disclosure, a hybrid junction assembly may comprise a junction body to sealingly couple to a first control line and a second control line. In addition, the assembly may comprise a hybrid control line sealingly coupled to the junction body. The hybrid control line may contain a first passageway and a second passageway. The first control line is coupled to the first passageway to establish a first pathway through the junction body, and the second control line is coupled to the second passageway to establish a second pathway through the junction body.
In accordance with another embodiment of the disclosure, a method may be provided for reducing the number of control lines deployed through a downhole completion component. The method may include coupling a first control line and a second control line to a first junction body and coupling a hybrid control line to the first junction body. In addition, the method may further include establishing a first communication pathway through the first junction body between the first control line and the hybrid control line, and establishing a second communication pathway through the first junction body between the second control line and the hybrid control line.
Other or alternative features will become apparent from the following description, from the drawings, and from the claims.
Certain embodiments of the disclosure will hereafter be described with reference to the accompanying drawings, wherein like reference numerals denote like elements. It should be understood, however, that the accompanying drawings illustrate only the various implementations described herein and are not meant to limit the scope of various technologies described herein. The drawings are as follows:
In the following description, numerous details are set forth to provide an understanding of the present disclosure. However, it will be understood by those skilled in the art that embodiments of the present disclosure may be practiced without these details and that numerous variations or modifications from the described embodiments may be possible.
In the specification and appended claims: the terms “connect”, “connection”, “connected”, “in connection with”, and “connecting” are used to mean “in direct connection with” or “in connection with via one or more elements”; and the term “set” is used to mean “one element” or “more than one element”. Further, the terms “couple”, “coupling”, “coupled”, “coupled together”, and “coupled with” are used to mean “directly coupled together” or “coupled together via one or more elements”. As used herein, the terms “up” and “down”, “upper” and “lower”, “upwardly” and downwardly”, “upstream” and “downstream”; “above” and “below”; and other like terms indicating relative positions above or below a given point or element are used in this description to more clearly describe some embodiments of the invention.
Embodiments of the disclosure utilize one or more control line management devices, referred to as hybrid junction assemblies, to combine power, actuation, monitoring, and other communication signals from multiple individual control lines into a single hybrid control line. The hybrid control line may then be deployed across a completion component to be bypassed (e.g. a packer, valve, mandrel, tool, wellhead, among others) or in an area with limited annulus space. Once downstream of the completion component, another hybrid junction assembly may be used in a reversed configuration to break out the various communication signals from a single hybrid line back into multiple separate control lines. The use of the hybrid junction assemblies in this manner may reduce the overall requirement for the number of control line penetrations through a specific completion component or completion section.
Variations of exemplary embodiments of hybrid junction assemblies may allow for a wide selection of the types of control lines that can be combined for penetration across the completion component. Accordingly, embodiments may include combinations of communication media commonly used with control lines, e.g., hydraulic, electrical, and optical. Embodiments may also offer such options as the ability to combine multiple hydraulic lines into a single hybrid hydraulic line, hydraulic and electric lines into a single hybrid electro-hydraulic line, hydraulic and optic lines into a single hybrid opto-hydraulic line, or electric and optic lines into a single hybrid electro-optic line. Of course, this listing is to illustrate some of the potential combinations and is not intended to be limiting, and other combinations or variations are considered to be within the scope of the disclosure.
Referring generally now to
In Coupler Mode, two control lines (e.g., which may be any combination of electric, optic, or hydraulic lines) may be combined within the hybrid junction assembly 100 into the single hybrid control line 106 containing the communication elements (e.g., hydraulic/optic/electric elements) of the two incoming control lines 102, 104. Generally, the incoming control lines 102, 104 may have outside diameters of ¼ inch, ⅜ inch, or ½ inch, for example. The single hybrid control line 106 may then be deployed across the completion component, for example. The use of a hybrid junction assembly 100 in Coupler Mode thus reduces the number of control line penetrations across the completion component by at least one. In addition, a reduction in the number of control line penetrations may result in a decrease in the number of potential leak paths across the completion component while still maintaining the ability to individually control components located even further downhole.
Below the bypass point, the hybrid junction assembly may be used in a reversed configuration (i.e., Splitter Mode) in order to break out the constituent elements of the hybrid control line. The hybrid control line may then be split into two separate control lines functionally connected to the incoming control lines previously combined together in Coupler Mode. As shown, the hybrid control line in this illustrative example may comprise either an electric or fiber optic conductor in combination with a hydraulic line. Of course, many variations and combinations of electric, optic, and hydraulic (or other communication medium) lines may be combined within a hybrid control line depending upon the particular application.
Returning again to
In some embodiments, the transfer conduit 118 may have an outer diameter that is the same size (or even larger) than the incoming control line 102. In other embodiments, the outer diameter of the transfer conduit 118 may be smaller than the inner diameter of the incoming control line 102. However, the outer diameter of the transfer conduit 118 is smaller than the inner diameter of the hybrid control line 106. This configuration allows the transfer conduit 118 to be received within the interior of conduit 116 (
The hybrid junction assembly 100 further includes a junction body 136 that may be internally ported for combining the constituent elements of the control lines 102, 104 into the hybrid control line 106. In the example shown in
The junction body 136 includes an internal passageway or port 144 that allows a hydraulic line (i.e., control line 104) to be communicatively combined with a second hydraulic line or an electric or fiber optic line (i.e., control line 102/transfer conduit 118) via the hybrid control line 106. This combination may accomplished by positioning at least a portion of the transfer conduit 118 within the conduit 116 of the hybrid control line 106 such that an annulus 122 is formed there between. The hydraulic fluid conveyed in the control line 104 may then be communicative coupled through the port 144 and together with the annular space 122.
In embodiments in which two or more electric or fiber optic control lines, or combinations, thereof, are combined in the hybrid control line 106, the hybrid junction assembly 100 may include two splice chambers 126 above the junction body 136 in order to accommodate two electric/two optic splices. In such embodiments, port 144 may be used to direct an electrical conductor or fiber optic cable into the annular space 122 (
Turning now to
The exemplary configuration shown in
Referring now to
It should be understood that while
Still further, while the exemplary embodiment shown in
In some embodiments, hybrid junction assemblies may be deployed in stages to combine more than two control lines for penetration across the completion component. The use of stages may allow the deployment of a large number of control lines across the bypassed completion component while reducing the impact of tolerance or space restrictions imposed by the completion design and operational environments.
For instance, turning now to
Incoming control line 198, which also is a hydraulic control line in this illustrative example, is sealingly coupled to the junction body 204 via a seal 210. On the other side of seal 210, the control line 198 is coupled to the hybrid control line 106 through a port 212 that directs fluid from the control line 198 into the annulus 122 (
After second hybrid control line 220 is routed through a completion component, for example, a reverse process may be used to separate hybrid control line 220 back into three respective control lines. With each combination, care must be taken to ensure that the proper volume exists within each of the various sections (e.g., such as the annulus between concentric conduits) of the hybrid control lines 106, 220 to ensure adequate communication pathways are provided for the proper functioning of the respective communication medium (e.g., hydraulic, electric, and/or fiber optic).
Referring directly to
Moreover, a hybrid control line may have even a greater number of passageways, and the concept may be extended to an N-into-one configuration with N-1 hybrid junction assembly stages used in Coupler Mode above the completion component. A corresponding number of N-1 hybrid junction assembly stages may be used in Splitter Mode below the completion component. N may be a number limited by the maximum outer diameter of the Nth hybrid control line that can extend through a component penetration, the control line pressure rating requirements (which will dictate the minimum volume of the passageways), among other limitations.
Referring now to
While this type of embodiment may allow the single stage deployment of even greater number of control line reduction configurations (including for example, four-into-two, five-into-three, and five-into-two, among others), the junction body size gets progressively larger with every additional control line managed through the junction body. Additional inserts, such as insert 242, may also be required at the junction body 246 to support the cable seals (e.g., seal 244) at each transition to a progressively larger diameter hybrid control line.
As in the embodiments previously described, incoming control line 236 may be connected to the transfer conduit 118 via a butt weld 248. The transfer conduit 118 may be sealingly coupled to the junction body 246 via a seal 250. A seal 252 is positioned in the body 246 to support and seal the circumference of hybrid control line 106. A communication path between the incoming control line 238 and the hybrid control line 106 is provided via a port 254 which directs the communication medium from the incoming control line 238 to the annulus 122 (
Turning now to
Elements of the embodiments have been introduced with either the articles “a” or “an.” The articles are intended to mean that there are one or more of the elements. The terms “including” and “having” are intended to be inclusive such that there may be additional elements other than the elements listed. The term “or” when used with a list of at least two elements is intended to mean any element or combination of elements.
In the foregoing description, numerous details are set forth to provide an understanding of the present invention. However, it will be understood by those skilled in the art that the present invention may be practiced without these details. While the invention has been disclosed with respect to a limited number of embodiments, those skilled in the art will appreciate numerous modifications and variations therefrom. It is intended that the appended claims cover such modifications and variations as fall within the true spirit and scope of the invention.
This application claims the benefit under 35 U.S.C. §119(e) of U.S. Provisional Application Ser. No. 61/151,823 entitled “Control Line Hybrid Junction Assemblies,” filed Feb. 11, 2009, which is hereby incorporated by reference.
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