Riser top connector
10450810 · 2019-10-22
Assignee
Inventors
Cpc classification
E21B17/015
FIXED CONSTRUCTIONS
E21B19/004
FIXED CONSTRUCTIONS
E21B43/0107
FIXED CONSTRUCTIONS
International classification
F16L1/26
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16L1/16
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
E21B41/04
FIXED CONSTRUCTIONS
E21B43/013
FIXED CONSTRUCTIONS
E21B43/01
FIXED CONSTRUCTIONS
Abstract
A riser top connector assembly (20) is shown. The assembly (20) includes a first connector part (21) arranged on a flexible jumper prepared for connection with a second connector part (40) arranged on top of a marine riser tower assembly projecting from the seabed. The first connector part (21) is provided with suspension means adapted to engage with supporting means in order to be supported and be able to tilt in the marine riser tower assembly. The first connector part (21) includes a housing (22) that receives an extendable termination hub (23) having a clamp connector (24) attached thereto. The jumper termination hub (23) is alignable with a riser hub (44) on the second connector part (40) when the first connector part (21) is being tilted relative to the marine riser tower assembly.
Claims
1. A riser top connector assembly comprising: a first connector part arranged on a flexible jumper prepared for connection with a second connector part arranged on top of a marine riser tower assembly projecting from a seabed, said first connector part comprises a housing adapted to receive an extendable jumper termination hub having a connector attached thereto, said jumper termination hub is alignable with a freely projecting riser hub on the second connector part; an actuator adapted to act between the jumper termination hub and the housing to extend the jumper termination hub towards the second connector part; wherein the jumper termination hub is, when extended from the first connector part housing, prepared for connection with the riser hub via the connector; wherein the second connector part comprises a load carrying frame structure, said load carrying frame structure extends over respective hubs and is secured at the second connector part near each end of the hubs when said hubs are connected in order to remove bending moment between the hubs and route a load path away from the hubs and the riser top connector assembly; and wherein the first connector part comprises a journal and the second connector part comprises a cradle, the journal landed in the cradle to pivotally suspend the first connector part from the second connector part.
2. The riser top connector assembly according to claim 1, wherein the connector is a clamp connector, a collet connector or a dog type connector.
3. The riser top connector assembly according to claim 1, wherein the actuator, being able to extend the jumper termination hub from the first connector part housing, is either a stroke tool or a pulling tool.
4. The riser top connector assembly according to claim 1, wherein the jumper termination hub is externally designed with a first centralizing part in which centralizing takes place and being performed during an extending motion of the jumper termination hub within and relative to the first connector part housing.
5. The riser top connector assembly according to claim 1, wherein the first connector part housing is internally designed with a second centralizing part in which centralizing takes place and being performed during an extending motion of the jumper termination hub within and relative to the first connector part housing.
6. The riser top connector assembly according to claim 1, wherein the first connector part comprises a first projecting orienting part and the second connector part comprises a second projecting orienting part, said first and second projecting orienting parts are adapted to mate and engage during final relative motion between the first and second connector parts.
7. The riser top connector assembly according to claim 3, wherein the stroke tool is removably arranged on the first connector part housing and jumper termination hub.
8. The riser top connector assembly according to claim 1, wherein the connector is operable via a torque tool and an ROV.
9. The riser top connector assembly according to claim 1, wherein the first connector part housing is configured to omit an orienting part and is internally designed with a second centralizing part in which centralizing takes place and being performed during an extending motion of the jumper termination hub within and relative to the first connector part housing.
10. The riser top connector assembly according to claim 1, wherein the riser top connector assembly includes a locking arrangement for securely locking the respective connector parts to each other after landing of the first connector part into the second connector part.
11. The riser top connector assembly according to claim 1, wherein the load carrying frame and the housing are adapted to be connected in at least one releasable connection.
12. The riser top connector assembly according to claim 1, wherein the first connector part housing comprises guide pins adapted to mate with receptacles arranged on the second connector part.
Description
EXAMPLE OF EMBODIMENT
(1) Having described the invention in general terms above, a more detailed example of an embodiment will be given in the following with reference to the drawings in which
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(15) It is preferable and beneficial that the flexible jumper 9 hangs in a catenary way between the FPSO and the riser tower assembly 7, and in such a way that the jumper connects to the riser end in an inclined position. If this was a more vertical position, the jumper would have been needed to be much longer, or a substantially higher load would have been experienced in the transition between the riser and the jumper. Similarly, if the jumper had extended more horizontally, after the connector, a corresponding load would have been experienced, but in opposite direction.
(16) A riser top connector 11 connects a jumper termination structure 13 to the riser tower assembly 7. At an end section of the flexible jumper 9, it is connected to a bend stiffener 15, which restricts the bending of the flexible jumper 9 in the proximity of the jumper termination structure 13. The bend stiffener 15 connects to the jumper termination structure 13 along a jumper termination axis 6 along which the flow path of the jumper end section follows.
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(18) The previous jumper termination structure 13 is now termed a first connector part 21, which include a first connector part housing 22 that receives an extendable jumper termination hub 23 and a clamp connector 24 attached to the termination hub 23. A flange 25 is shown in the lower end the termination hub 23, to which the jumper (not shown) extending to the FPSO is to be secured.
(19) An actuator, here shown as a stroke tool 26, is designed to act between the first connector part housing 22 and the jumper termination hub 23 in order to enable extension of the termination hub 23 out of the first connector part housing 22. Such stroke tool could be of any conceivable nature, preferably hydraulically operated.
(20) A tool adapter 27 is arranged on the clamp connector 24. The tool adapter 27 is normally operated by a torque tool (not shown) carried by an ROV when in use and submerged. The tool adapter 27 is connected to a screw 28, which, when turned, is able to reduce the opening diameter of the clamp connector 24 in order to pull the respective hubs to engagement.
(21) The first connector part housing 22 includes a pair of diametrically located and projecting journals 29 designed to pivotally suspend the first connector part 21 in a second connector part 40.
(22) The first connector part housing 22 also includes a pair of upwards projecting guide pins 30 designed to mate with receptacles 41 in the second connector part 40. In a second embodiment, as illustrated in
(23) The riser top connector assembly 20 includes the second connector part 40 that initially is separate from the first connector part 21. Together the first and second connector part 21, 40 constitute the riser top connector assembly 20.
(24) The second connector part 40 includes supporting means in the form of cradles 42 able to receive the projecting journals 29 arranged on the first connector part housing 22.
(25) The second connector part 40 further includes receiving means 43 enabling guiding of the first connector part 21 into correct positioning and engagement with the second connector part 40 as illustrated in
(26) The second connector part 40 has a frame structure 45 which also have the material function to remove the bending moment between the hubs 23, 44 and have them transferred to the frame structure 45. The riser hub 44 is the termination end of the riser 5 that in this end portion extends like a gooseneck section 46. This end portion is axially retained to the frame structure 45 near the riser hub 44. The riser hub 44 is freely projecting from the frame structure 45.
(27) Further,
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(29) Such rotation may be performed by either moving the installation vessel a little, or pulling in some jumper length into the installation vessel. In this way the termination hub will tilt and finally lock as described in more detail with reference to
(30) As shown in
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(32) A locking arrangement is also clearly shown in
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(37) The
(38) The concept shown in
(39) For both solutions it is imperative that the riser hub 44 (upper) is retained to the frame structure 45 in axial direction, but is allowed to move in radially direction. The riser hub 44 is also allowed to twist a little relative to nominal axial direction. In this way the riser hub 44 will give in when the bending moment from the flexible jumper 9 is received, and the jumper end is moving until resistance is received from the termination hub 23 or the guide pins. A great part of the bending moment and the shear force is thus taken up by this contact instead of being transferred through the hubs and the connector to the riser. All this is provided that the gooseneck and the upper part of the riser have some certain flexibility. This is solved in that a certain length is present from the riser hub to where the riser is supported.