SUBSEA METHANE HYDRATE PRODUCTION
20180298702 ยท 2018-10-18
Assignee
Inventors
- Anders Billington (Lommedalen, NO)
- Neil Ryan (Holmestrand, NO)
- Alexander Paul LAZELL (Olso, NO)
- Jan Herland (Nesbru, NO)
- Edin Pita (Drammen, NO)
Cpc classification
E21B19/24
FIXED CONSTRUCTIONS
E21B41/0021
FIXED CONSTRUCTIONS
E21B43/01
FIXED CONSTRUCTIONS
International classification
E21B19/00
FIXED CONSTRUCTIONS
E21B43/013
FIXED CONSTRUCTIONS
E21B19/24
FIXED CONSTRUCTIONS
Abstract
An offshore methane hydrate production assembly (1), having a tubing (41) extending into a subsea well (5) that extends down to a methane hydrate formation (7) below the seabed (3). A submersible pump (45) is arranged in the tubing (41). A methane conduit (35,35) extends down from a surface installation (49). A well control package (15) landed on a wellhead (13) is positioned at the upper end of the subsea well (5). Moreover, an emergency disconnection package (25) is arranged between the methane conduit (35,135) and the well control package (15). The tubing (41) is suspended from the well control package (15). Other aspects of the invention are also disclosed.
Claims
1. An offshore methane hydrate production assembly comprising: a tubing extending into a subsea well, the subsea well extending down to a methane hydrate formation below the seabed; a submersible pump arranged in the tubing; a methane conduit extending down from a surface installation; a well control package landed on a wellhead which is positioned at the upper end of the subsea well; an emergency disconnection package arranged between the methane conduit and the well control package; wherein the tubing is suspended from the well control package.
2. The offshore methane hydrate production assembly according to claim 1, wherein the methane conduit is a rigid riser string.
3. The offshore methane hydrate production assembly according to claim 1, wherein the methane conduit is a flexible umbilical.
4. The offshore methane hydrate production assembly according to claim 1, wherein a surface flow tree is arranged on the upper end of the methane conduit, and the surface flow tree is positioned below the drill floor.
5. The offshore methane hydrate production assembly according to claim 1, wherein a flexible hose extends from the surface down to an annulus bore of the emergency disconnection package, wherein the annulus bore of the emergency disconnection package communicates with the annulus bore of the well control package, and wherein the annulus bore of the well control package communicates with the tubing.
6. The offshore methane hydrate production assembly according to claim 1, wherein the well control package main bore is in direct fluid communication with the annulus outside the tubing, along the entire length of the tubing.
7. The offshore methane hydrate production assembly according to claim 2, wherein the well control package comprises a well control package main bore in fluid communication with the rigid riser string, and a well control package annulus bore in fluid communication with an annulus hose, wherein the tubing is connected to the well control package annulus bore.
8. The offshore methane hydrate production assembly according to claim 1, wherein the well control package annulus bore is in direct fluid communication with the annulus outside the tubing, along the entire length of the tubing.
9. The offshore methane hydrate production assembly according to claim 1, wherein the tubing is connected to a part of the well control package by means of a connector.
10. A method of providing a methane hydrate production string extending between a subsea methane hydrate formation and a surface installation, wherein a drilled well extends between the methane hydrate formation and the seabed, the method comprising: a) joining tubing pipe segments into a tubing string, and arranging a submersible pump as a part of the tubing string; b) suspending the tubing string from the surface installation; c) connecting a lower end of a landing string to an emergency disconnection package which is arranged above a well control package; d) landing and connecting the well control package on top of the tubing string, while the tubing string is suspended from the surface installation; e) on the landing string, lowering the tubing string into the well, until the well control package lands on a wellhead on top of said well; and wherein step e) comprises lowering the tubing string in open water.
11. The method according to claim 10, wherein the landing string used to lower the tubing string in step e), is a riser string which is maintained as a part of the methane hydrate production string when the tubing string is installed in the well.
12. The method according to claim 10, wherein the landing string used to lower the tubing string in step e), is a landing wire.
13. The method according to claim 11, wherein: step c) comprises connecting the lower end of the riser string to an emergency disconnection package main bore; and step d) comprises connecting the tubing string to a well control package annulus bore.
14. The method according to claim 10, wherein: step b) comprises: i) suspending the tubing string in an installation skid at a lower deck; step c) comprises: ii) joining riser joints at an upper deck or preparing a landing wire; iii) moving the installation skid out of a well center position below the upper deck; iv) moving a stack comprising the well control package and the emergency disconnection package into the well center position below the upper deck; v) connecting the landing string to the emergency disconnection package and suspending the stack on the landing string; and step d) comprises: vi) moving the installation skid back into the well center position; and vii) landing the stack onto the installation skid.
15. The method according to claim 14, wherein step d) comprises one of the following steps: viii) by means of an elevation arrangement on the installation skid, engaging a lower portion of the well control package with a connector on the tubing string; and ix) by means of the derrick winch, lowering the well control package, while suspended on the landing string, onto a connector on the tubing string.
16. A method of providing a methane hydrate production assembly between a surface installation and a methane hydrate formation, wherein a subsea well extends down to the methane hydrate formation running a tubing and a riser string in one single run.
17. A method of landing a tubing in a subsea well extending down to a methane hydrate formation, the method comprising landing a stack comprising the tubing, a well control package from which the tubing is suspended, and an emergency disconnection package, on a landing wire by means of a winch.
18. An installation skid having a base structure, wherein: the base structure comprises a cutout; and a C-plate is arranged in the cutout.
19. The installation skid according to claim 18, wherein the C-plate is adapted to be removably supported in the cutout.
20. The installation skid according to claim 18, comprising support posts which have support platforms, wherein the support platforms are adapted to be locked to the support posts in different vertical positions.
21. The installation skid according to claim 20, wherein the support platforms are functionally connected to hydraulic pistons, by means of which the vertical elevation of the support platforms are adjustable.
22. The installation skid according to claim 18, wherein the installation skid is arranged on a moon pool deck of a surface installation, below a drill floor.
Description
EXAMPLE OF EMBODIMENT
[0051] While the various aspects of the invention have been discussed in general terms above, some detailed examples of embodiments are given in the following with reference to the drawings, in which
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[0063] An assembly of conductor pipe 9 and casing 11 extends from a wellhead 13 at the seabed 3 and down to the formation 7.
[0064] A well control package 15 is landed above the wellhead 13. The well control package (WCP) 15 has a WCP main bore 17 and a WCP annulus bore 19. In the main bore 17 there are two main bore valves 21. In the annulus bore 19 there are two annulus bore valves 23. Advantageously, neither the main bore valves 21, nor the annulus bore valves 23, have cutting capabilities. Compared to other known well control packages, these valves and the WCP itself may thus be lighter than WCP's that have cutting valves.
[0065] An emergency disconnection package (EDP) 25 is landed on top of and secured to the WCP 15. The EDP 25 has an EDP main bore 27 that aligns with the WCP main bore 17. Within the EDP main bore 27 there is arranged a main bore retainer valve 29. Also within the EDP 25 is an EDP annulus bore 31 which aligns with the WCP annulus bore 19.
[0066] Between the EDP 25 and the sea surface 33 extends a riser string 35. The riser string 35 is suspended to a surface installation. In this embodiment, the surface installation is a floating installation (The surface installation is not shown in
[0067] Also extending between the EDP 25 and the surface installation is an annulus hose 39. Although not shown in
[0068] Hanging down from the WCP 15 is a tubing 41. The tubing 41 extends down to the methane hydrate formation 7.
[0069] The tubing 41 is connected to the WCP annulus bore 19. As a result, the annulus 47, between the tubing 41 and the casing 11, is in fluid communication with the WCP main bore 17 and hence the riser string 35 (through the EDP main bore 27). This is in contrast to workover operations known from the field of common oil and gas wells, where the tubing connects to the main bore and the annulus communicates with the annulus bore.
[0070] Some distance above the lower end of the tubing 41, an electrical submersible pump (ESP) 45 is arranged in the string of tubing 41. Instead of an electrical pump, one could also use another type of pump, for instance a hydraulically operated pump.
[0071] The ESP 45 is used to pump fluid upwards through the tubing 41. This lowers the pressure in the formation, making the methane hydrate dissolve into water and methane. In addition to the pumping function, the ESP 45 also exhibits a separation means. With the separation means, the ESP 45 separates water and methane. Thus, the ESP 45 is able to pump the water up through the tubing 41. Separated methane will rise up through the annulus 47. Consequently, methane is transported towards the surface flow tree 37 through the annulus 47, the WCP main bore 17, the EDP main bore 27 and the riser string 35. The water is transported towards the surface installation through the tubing 41, the WCP annulus bore 19, the EDP annulus bore 31, and the annulus hose 39. The ESP 45 may typically constitute some tens of meters of the tubing string 41.
[0072] At the position of the methane hydrate formation 7, a perforated pipe 8 is arranged in the well 5. The perforated pipe 8 maintains the integrity of the well 5, while letting water and methane pass through it, to enter the wellbore from the formation 7.
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[0074] The surface installation 49 has an upper deck 51 and a lower deck 53. In this embodiment, the upper deck is a drill floor 51 and the lower deck is a moon pool deck 53. Other applicable surface installations may have other types of upper and lower decks.
[0075] In the situation shown in
[0076] In this situation, the tubing 41 hangs from the drill floor 51, through the moon pool deck 53 and for example about 300 meters down into the sea. The tubing 41 is supported at the drill floor 51 by means of a pipe hang-off arrangement 43. On the lower deck, or the moon pool deck 53, the EDP 25 is installed on top of the WCP 15, resting on a well control package skid (WCP skid) 55. The WCP skid 55 is supported on a first cart 57. The first cart 57 may typically be a BOP cart (blowout preventer cart).
[0077] On the moon pool deck 53 there is also a second cart 59. The second cart 59 supports an installation skid 61.
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[0079] The base frame 63 comprises an open slot 69. The open slot 69 is laterally accessible from one side of the base frame 63. Moreover, a C-plate 71 is arranged in the open slot 69 and is adapted to receive and carry the weight of the tubing 41. The tubing 41 may enter the open slot 69 and the C-plate 71 laterally, by being moved into the open slot 69. Preferably, the C-plate 71 is a separate part which can be releasably fixed in the open slot 69. Thus, the operator may elect a C-plate 71 which fits to the dimension of the tubing 41. As the skilled person will appreciate, the second cart 59 must also be able to receive the tubing 41, with an open slot or void (not shown).
[0080] In the situation shown in
[0081] In
[0082] Still referring to
[0083] After the tubing 41 has landed in the installation skid 61, the operator can start building the riser string 35 in the derrick, i.e. at the drill floor 51.
[0084] Referring now to
[0085] As shown in
[0086] After the connection has been made, the entire string comprising the tubing 41, WCP 15, EDP 25 and the lower part of the riser string 35 can be lifted off the installation skid 61, as shown in
[0087] As shown in
[0088] When the lower end of the tubing 41 reaches the upper end of the well 5, the well is open and filled with water. Thus, after ensuring that the lower end of the tubing 41 is inserted into the well, i.e. the wellhead 13, the operator continues to lower the string until the WCP 15 lands on the wellhead 13. Typically, a remotely operated vehicle (ROV) may be used to monitor and to guide the tubing into the wellhead 13.
[0089] When the WCP 15 has landed on the wellhead 13, it is secured to the wellhead 13 and seals are activated in order to make a confined fluid path between the tubing annulus 47 and the WCP main bore 17. This situation is schematically depicted in
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[0091] A pup joint 77, which forms a lower part of the WCP 15, is about to enter the upper end of the tubing 41, namely a connector 79 directly above the hang off shoulder 73. The hang off shoulder 73 rests on a receiving profile of the C-plate 71.
[0092] Notably, the pup joint 77 is connected to the annulus bore 19 of the well control package 15. The annulus hose 39 connects to the annulus bore 31 of the emergency disconnection package 25.
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[0094] In the embodiment shown in
[0095] To ensure stability to the flexible umbilical 135, it is clamped to a pod wire 137 which is extended between the surface installation 49 and the EDP 25.
[0096] The embodiment shown in
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