A FLOW BASE SYSTEM FOR SUBSEA WELLS
20190323325 ยท 2019-10-24
Inventors
- Steinar Lindermann HESTETUN (Sandvika, NO)
- Kare TOLO (Sandvika, NO)
- Craig Wilson JOHNSTONE (Aberdeen, GB)
- Paul William WHITE (Aberdeen, GB)
- Mohammad Hasan ALI (Sandvika, NO)
- Tor Alexander FJELDLY (Sandvika, NO)
Cpc classification
E21B43/017
FIXED CONSTRUCTIONS
E21B41/04
FIXED CONSTRUCTIONS
International classification
E21B41/08
FIXED CONSTRUCTIONS
E21B41/04
FIXED CONSTRUCTIONS
Abstract
A flow base system (1) for subsea wells is disclosed, the flow base system comprising a header pipe (2) for production fluid extended through the flow base system, wherein from opposite sides of the header pipe (3) a set of flow base modules (2), respectively, is connected for supply of production fluid to the header pipe (3) via individual branch pipes (10) connecting the header pipe (3) with a Christmas tree (XT) interface (11) arranged for vertical connection to an XT respectively. The flow base system (1) is installed in a well template structure (18), wherein a flow base module (2) respectively is inserted into each well slot (S1-S4) formed in the well template structure (18).
Claims
1. A flow base system (1) for subsea wells comprising a template structure (18) with a header pipe (3) and a number of flow base structures (2), each flow base structure comprising a XT interface (11) connectable to a XT and wellhead, a set of flow base structures (2) being arranged on each side of the header pipe, each flow base structure being connected to the header pipe (3) via individual branch pipes, the flow base structures (2) being fixed to the well template structure (18).
2. The flow base system of claim 1, wherein the piping of the flow base system (1) is fixed to the template structure (18).
3. The flow base system of claim 1, wherein the piping of the flow base system is partly fixed to the flow base structures (2).
4. The flow base system of claim 1, wherein the valves of the system are removable.
5. The flow base system of claim 1, comprising two or more header pipes.
6. The flow base system of claim 1, wherein the flow base modules (2) are essentially identical and the flow base modules on one side of the at least one header pipe (3) are turned 180 in relation to the orientation of the flow base modules on the other side of the at least one header pipe.
7. The flow base system of claim 1, wherein each flow base module (2) comprises a well insert (14) in fixed relation to guiding means (15) arranged for guidance of an XT during landing and installation.
8. The flow base system of claim 4, wherein the guiding means (15) is realized as guide posts/pillars or as funnel-equipped tubes rising from a flow base support (13), in which the branch pipes (10) and valves as well as XT interfaces (11, 38) are supported.
9. The flow base system of claim 1, wherein a singular isolation valve (12) on each branch pipe (10) is controllable for opening the branch pipe for flow of production fluid into the one or more header pipes (3).
10. The flow base system of claim 1, wherein coupling means (7) is arranged in an end (4) of one or more header pipes (3) for connecting to external subsea equipment.
11. The flow base system of claim 10, wherein an isolation valve (6) in said end (4) of the one or more header pipes (3) is controllable for through flow of production fluid from external equipment.
12. The flow base system of claim 1, wherein a valve control interface (29) is installed for intervention by a remotely operated vehicle (ROV) or diver.
13. The flow base system of claim 1, wherein a well intervention system (35) is installed essentially in parallel with the production fluid pipework.
14. The flow base system of claim 13, wherein the well intervention system (35) comprises at least one header pipe (36) with branch pipes (37) extended to each flow base module (2).
15. The flow base system of claim 13, wherein the fluid of the well intervention system is supplied via an umbilical (32) to an umbilical termination assembly (33) associated with the flow base system.
16. The flow base system of claim 1, wherein a flow base module (2) comprises an extension (16) for connecting to an external supply of production fluid via a jumper pipe.
Description
SHORT DESCRIPTION OF THE DRAWINGS
[0035] Embodiments of the invention will be further explained below with reference made to the drawings. In the drawings:
[0036]
[0037]
[0038]
[0039]
DETAILED DESCRIPTION OF PREFERRED EMBODIMENTS
[0040] With reference made primarily to
[0041] A header isolation valve 6 is arranged in the first end of the header pipe, which also in the same end carries coupling means 7 for connecting to an external supplier of production fluid or to other subsea equipment. These external units can be another flow base system, a standalone satellite well or interconnected daisy-chain wells, or a pigging launcher/receiver e.g. In the discharge end 5, the header pipe carries coupling means 8, such as a flange coupling e.g., arranged for connecting the flow base system to a pipeline, a jumper pipe or to other downstream equipment for fluid transport. The header pipe 3 further comprises a number of pipe joints 9, especially T-couplings 9 through which the flow base modules 2 are connected to the header pipe 3 at mutually spaced locations along the header pipe.
[0042] Each flow base module 2 comprises a branch pipe 10 connecting the header pipe with an XT tree interface 11. An isolation valve 12 on the branch pipe is controllable for opening the branch pipe for flow of production fluid into the header pipe.
[0043] The isolation valves 6 and 12 are on/off valves, and can be realized as gate valves e.g.
[0044] The isolation valves 6, 12 are releasably connected to the pipe joints or T-branches 9 and branch pipes 10. If necessary, the isolation valves 6, 12 can be removed and replaced. The piping of the flow base system and surrounding structures is permanent and will not be removable. This is possible, since all valves are retrievable.
[0045] The XT interface 11 is supported on a flow base support 13 which also carries a well insert 14 in fixed relation to an array of guides 15, the guides 15 are arranged for guidance of an XT when lowered to the flow base module during installation. The XT interface 11 faces upwards for vertical or upright connection to the XT. The XT itself is not part of the invention and is omitted from the drawings for reasons of clarity.
[0046] In the shown embodiment, the flow base modules 2 on one side of the header pipe 3 are turned horizontally through 180 in relation to the orientation of the flow base modules 2 on the other side of the header pipe 3.
[0047] In one embodiment the flow base module is supplementary equipped with an extension and on/off valve for tying-in an external well and supplier of production fluid. In this embodiment a satellite well can e.g. be connected directly to the XT interface 11, if appropriate.
[0048] With reference to
[0049] Guide funnels 22 in the ends of the side-bays provide guidance for mating with the foundation, particularly in case piling is required for anchoring of the frame structure 18.
[0050] Each side bay 19, 20 is a rectangular structure composed of longitudinal beams 23 and transverse beams 24. The beams 23 and 24 define the individual slots S1-S4, which are four in the shown embodiment, and in which a flow base module 2, respectively, is arranged to ensure that the well insert 14 is placed in register with a corresponding well. In mounted position the branch pipes 10 reach into the mid-section for connecting with the header pipe 3, which is suspended in the mid-section 21 to extend substantially through the frame structure 18. Thus, with respect to design and function, the frame structure 18 is essentially similar to a production well template and can be referred to as such.
[0051] In this connection it should be pointed out that the modular design of the flow base system permits implementation in templates of other size than the one illustrated, such as 2-, 6- or even 8-slot templates, if appropriate.
[0052] The flow base system 1 is protected under a top cover 25 which is supported by a superstructure comprising horizontal or lying beams 26 and vertical or upright struts 27. Over the bays 19 and 20, the top cover 25 comprises hatches 28 respectively which are installed above each slot after installation of the XTs.
[0053] The flow base components in the mid-section 21 are covered and protected below a portion of the top cover comprising a valve control interface 29. The valve control interface 29 is supported by a separate superstructure 30, this way building an integrated part of the top cover 25. The valve control interface 29 comprises handles and connections 31 for manual control of the valves of the flow base system by means of an ROV or a diver.
[0054] In normal operation, XTs are monitored and controlled from topside management via an umbilical 32 connecting to the XTs via an umbilical termination assembly (UTA) 33. The UTA 33 distributes the control of the XTs via hydraulic and electric flying leads/cables.
[0055] The UTA 33 further distributes well intervention fluid via a well intervention pipework 35. The well intervention pipework 35 comprises a header pipe 36 from which a branch pipe 37 respectively extends to each flow base module 2 for termination in a second XT interface 38, likewise arranged for connection to the XT. In the shown embodiment, there is a vertical or upright connection to the XT. Isolation valves 39 on the branch pipes 37 are controllable for regulating the supply of well intervention fluid to the wells. The well intervention pipework 35 can be used for supply of all kinds of well intervention fluid as is commonly known in the art and used in hydrocarbon production from subsea wells, such as gas for enhanced lift of the production fluid, injection water, or chemical products for wax and hydrate prevention, etc. An isolation valve 40 may be arranged in the downstream end of the header pipe 36 to permit supply of injection water to the well intervention pipework from external source, such as from a subsea water well, if appropriate.
[0056] The flow base system as disclosed provides a compact, cost-effective and fabrication friendly solution. The main features of the flow base modules, i.e. the flow base support, XT interfaces and pipework, permits the use of a standard satellite XT into a template system. In other words, the same XT can be used both as satellite and template XT. The system also permits connecting a step-out well from a well slot in case that is required. The tolerance loop between the manifold piping and XT is significantly simplified by the present flow base system since the pipework can be non-retrievable. Thus, no fabrication jigs or precision welding will be required, all tolerances can be taken care of by machining of a limited number of components in the XT flow base.
[0057] In shallow water applications, the present flow base system uses diver replaceable valves instead of fully retrievable manifold modules. Also, the pipework is simplified as all control tubing is removed and replaced by hydraulic flying leads (HFL) and electric flying leads (EFL) which are connected directly from UTA, or via a subsea distribution unit (SDU) if appropriate. The overall simplification results in reduced total weight, which in turn permits using a smaller installation vessel.