SYSTEM AND METHOD FOR LAYING A PIPE WITH A LARGE RADIUS OF CURVATURE AND LOW WEIGHT ON THE SEABED
20220153392 · 2022-05-19
Assignee
Inventors
Cpc classification
F16L1/19
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16L1/235
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
Abstract
This invention provides a system for laying a high bending radius and low weight pipeline on the seabed comprising a subsea pipe-laying vessel comprising a moonpool and at least one coil with at least one pipeline segment to be installed wrapped around it, in which the moonpool comprises an internal baffle element adapted to smooth out the pipeline bend due to the of the pipe-laying vessel movement regarding the seabed, current, and catenary angle, where the system comprises at least one supporting element to support at least one coil allowing it to rotate to unwind the pipeline and where at least one supporting element comprises a handling system allowing the movement of at least one supporting element and at least one coil in at least one axis. A method of laying a pipeline on the seabed is also provided, performed using the described system.
Claims
1. A pipeline installation system with a high bending radius and low seabed weight comprising a launching vessel of subsea pipelines comprising a moonpool and at least one coil with at least one pipeline segment to be installed wrapped around it, the system being characterized by the moonpool comprising an internal baffle element adapted to smooth the pipeline bend due to the installation vessel movement regarding the seabed, to prevent the minimum bend radius supported by the pipeline from being breached, where the system comprises at least one supporting element to support at least one coil, allowing it to rotate to unwind the pipeline, where at least one supporting element comprises a handling system allowing the movement of at least one supporting element and at least one coil in at least one axis.
2. The system, according to claim 1, characterized by the fact that the movement system of at least one supporting element is used to allow the movement of at least one supporting element on at least two coplanar axes, being a longitudinal axis and a transverse axis.
3. The system, according to claim 1, characterized by the movement system of the supporting element comprising one of each: a rail system; a curler system, and a magnetic moving system.
4. The A system, according to claim 1, characterized in that the deflector comprises convex bent walls adapted to attenuate the pipeline bend when passing through the moonpool.
5. The system, according to claim 1, characterized by the deflector comprising an upper and a lower opening, where the lower opening comprises a diameter larger than the upper opening.
6. The system, according to claim 1, characterized by comprising a main coil positioned closest to the moonpool and at least one charging coil farther away from the moonpool, where the main coil comprises a longitudinal handling system, while at least one charging coil comprises a transversal translation system and also a traction system.
7. The system, according to claim 1, characterized by comprising a supporting platform adapted to support one end of the first pipeline already installed, in order to connect the starting end of a second pipeline to be installed.
8. The system which, according to claim 1, is characterized for comprising a distance sensor system on the lower edge of the moonpool.
9. The system which, according to claim 1, is characterized by comprising a control system powered by at least one sensor, wherein the control system is adapted to move the system elements in response to the installation vessel movements or in response to elements in the system itself.
10. The system which, according to claim 1, is characterized for comprising a second deflector at the stern of the installation vessel adapted to assist in the installation of very large diameter elements that cannot be installed through the moonpool.
11. The system, according to claim 1, is characterized by the baffle element being removable from the moonpool.
12. An installation method of a high bending radius and low weight pipeline on the seabed comprising the use of subsea pipelines laying vessel comprising a moonpool and at least one coil with at least one pipeline segment to be installed wrapped around it, characterized by comprising the stages of: positioning at least one coil in an installation position regarding the moonpool where the installation position is a point at which the pipeline is freely inserted into a moonpool top opening; rotate at least the coil to unwind the pipeline and allow it to be inserted into the moonpool; smooth out the pipeline bend due to the installation vessel movement regarding the seabed, current, and catenary angle, through the use of a deflector; and move at least one coil in at least one axis.
13. The method which, according to claim 12, is characterized for comprising the step of moving at least one supporting element on at least two coplanar axes, being a longitudinal axis and a transverse axis.
14. The method which, according to claim 12, is characterized by the fact that upon completion of the pipeline installation of a given coil, a starting end of the pipeline from the coil subsequently is connected to one end of the coil newly installed pipeline.
15. The method which, according to claim 12, is characterized by the fact that after launching a coil pipeline, the end side of the first pipeline will be supported on a supporting platform, then, a starting end of the coil pipeline subsequently is connected to the final end of the coil initial pipeline, where after the two ends are connected, the supporting platform is removed and the pipeline is continued.
Description
BRIEF DESCRIPTION OF THE FIGURES
[0021] The detailed description presented below refers to the attached figures and their respective reference numbers.
[0022]
[0023]
[0024]
[0025]
[0026]
[0027]
[0028]
[0029]
DETAILED INVENTION DESCRIPTION
[0030] Preliminarily, it is emphasized that the description that follows will start from a preferred embodiment of the invention. As it will be clear to anyone skilled in the art, however, the invention is not limited to this particular implementation.
[0031] For the purposes of this description, the installation of composite pipelines will be considered as an example of this invention's use. However, it is emphasized that this invention is by no means restricted to composite pipelines, since it can be used in any pipelines having a high bending radius and low submerged weight. For the sake of clarity, pipelines having a minimum bend radius greater than 4 meters are considered to be pipelines having a high bend radius. Additionally, pipelines with a low submerged weight are considered to be pipelines having a submerged weight of less than 70kgf per meter.
[0032] The
[0033] According to this more general configuration, the system for installing a composite pipeline 1 on the seabed comprises a subsea pipeline installation vessel 4, which in turn comprises a moonpool 5, and at least one reel 2 with at least one segment of composite pipeline 1 to be installed wound onto it.
[0034] In an innovative way, the invention further provides that the moonpool 5 comprises an internal deflector element 6 adapted to smooth out the curvature of the pipeline 1 bend due to the installation vessel 4 movement relative to the seabed.
[0035] At this point, it is important to point out that baffle element 6 represents the last contact point between the composite pipeline 1 and the installation vessel 4.
[0036] Optionally, the baffle element 6 is removable from the moonpool 5, allowing some structures to pass through the interior of moonpool 5.
[0037] In addition to that, it is also provided that a support element 3 is used to support at least one reel 2, wherein at least one supporting element 3 allows the reel 2 to rotate in order to unwind the composite pipeline 1.
[0038] At least one supporting element 3 further comprises a movement system 7 that enables the movement of at least one supporting element 3 and the at least one coil 2 in at least one axis (preferably longitudinal and/or transverse).
[0039] It is noted that this invention's system is shown to be extremely simplified and easy to operate, in that the entire weight of coil 2 and the pipeline 1 is fully supported by the supporting element 3 of coil 2.
[0040] Thus, similarly, the invention also provides a method of installing a composite pipeline 1 on the seabed comprising the use of a subsea pipeline installation vessel 4, comprising a moonpool 5, and at least one coil 2 having at least one segment of composite pipeline 1 to be installed wound thereon, wherein the method initially comprises a step of positioning at least one coil 2 in an installation position regarding the moonpool 5, wherein the installation position is a point at which the composite pipeline 1 is freely inserted into a top opening of moonpool 5.
[0041] Next, the step of rotating at least one coil 2 is envisaged to unwind the composite pipeline 1 and allow the composite pipeline 1 to be inserted into the moonpool 5.
[0042] In order to avoid the composite pipeline 1 from being damaged, a step is provided to smooth the composite pipeline 1 bend the due to the installation vessel 4 movement relative to the seabed, through the use of a deflector 6. Besides, the baffle element 6 prevents the minimum bend radius supported by the composite pipeline 1 from being breached.
[0043] In addition, a step of moving at least one coil 2 in at least one axis is also foreseen.
[0044]
[0045]
[0046] According to a preferred setup of this invention, as illustrated in
[0047] With these two movement axes of the supporting element 3, the invention ensures that the coil 2 is moved both transversely and longitudinally, so that the composite pipeline 1 is always inserted into the moonpool 5 with reduced friction, even as the vessel 4 moves.
[0048] According to this invention, the moving system 7 of the supporting element 3 may comprise any currently known option, or one to be developed in the future. For example, the movement system 7 may comprise a rail system, a curler system, a magnetic movement system 7, among others.
[0049]
[0050] In any of the shown setups, optionally, the baffle 6 can comprise convex bent walls to attenuate the bend of the composite pipeline 1 when passing through the moonpool 5. In alternative setups, the baffle 6 walls may comprise a conical parabolic shape, or any other shape that enables to attenuate the bend of the composite pipeline 1 when passing through moonpool 5.
[0051] Also optionally, the baffle 6 may comprise an upper opening and a lower opening where the lower opening comprises a diameter larger than the upper opening. This configuration, although preferential, is not a limiting factor, so other configurations can be used, varying from application to application.
[0052]
[0053] Optionally, coils 2p,2c can be positioned in an aligned manner so that when composite pipeline 1 of the first coil 2p is fully installed, the composite pipeline 1 of the second coil 2c is connected to the first one, continuing the installation process.
[0054]
[0055] Preferably, when more than one coil are used, the coil closest to moonpool 5 is set as the main coil 2p, and the remaining coils are set as loading coils 2c.
[0056] When the system having several coils 2p,2c is used only the main coil 2p can have a longitudinal movement system, while the loading coils 2c should comprise a transverse translation system and also a traction system. The main coil 2p then serves to offset the pipeline from the horizontal plane to the vertical plane and route the pipeline to moonpool 5. For this purpose the main coil 2p should be empty.
[0057] In that configuration, when completing the installation of composite pipeline 1 of a given 2p,2c coil (initially it will be the composite pipeline 1 of the main coil 2p), a leading end of composite pipeline 1 from the subsequent coil is connected to a trailing end of composite pipeline 1 of the newly installed coil, following the installation in a simple and fast way.
[0058] Similarly as described above, when all composite pipeline 1 of the first loading coil 2c has been installed, it should be connected to the composite pipeline 1 of the subsequent loading coil 2c to continue the installation. It is emphasized again that the total number of used 2p, 2c coils may vary from application to application.
[0059]
[0060] According to this optional setup, after launching a composite pipeline 1 from a coil 2p, the trailing end of the first pipeline is supported on a supporting platform 8, then a starting end of the composite pipeline 1 from the subsequent coil 2c is connected to the trailing end of the initial coil composite pipeline 1 (main 2p). After the two ends are connected, the supporting platform 8 is removed and the launching of composite pipeline 1 is continued.
[0061] Additionally, it is possible to include a distance sensor system in the lower edge of the moonpool 5 to ensure that the pipeline does not touch the lower moonpool 5 edge which could cause damage to the pipeline. In that configuration, when the distance sensor identifies that the composite pipeline 1 is in a risky position, at least one coil 2 can be moved in order to correct the pipeline 1 positioning.
[0062] It is important to point out that the this invention's system can be managed by a sensor-powered control system, so that its elements are moved and positioned automatically as a function of the installation vessel 4 movements due to the tide, wind, or any other factors. In that configuration, the system would be autonomous and even more secure.
[0063]
[0064] Thus, it is clear that the invention outlined in the preceding paragraphs provides innovative method and system for installing a composite pipeline 1 on the seabed, allowing to perform such operation in a very simplified, and consequently more agile and cheaper way, in comparison with the methods and systems currently known.
[0065] Moreover, the system of this invention, despite its simplicity of operation, demonstrates a great ability to adapt to high angles, a problem often faced in the installation of composite pipelines, due to the light weight of this type of pipeline.
[0066] In addition to that, the method described herein allows the installation of large diameter pipelines, which consequently have little bending capacity, i.e., which need large bending radii for storage and for the baffle 6, which in the case of the traditional system would lead to impractical dimensions for the installation system.
[0067] In the case of this invention, since the deflector 6 covers a reduced angle (typically)20°, it is possible to accommodate a high bending radius without having much impact on the overall dimensions. In the traditional case the deflector 6 covers a 180° angle.
[0068] Countless variations affecting the protection scope of this application are allowed. Thus, it is highlighted that this invention is not limited to the particular configurations/achievements described above.