EP1817475B1 - A hybrid riser system - Google Patents
A hybrid riser system Download PDFInfo
- Publication number
- EP1817475B1 EP1817475B1 EP05823765.2A EP05823765A EP1817475B1 EP 1817475 B1 EP1817475 B1 EP 1817475B1 EP 05823765 A EP05823765 A EP 05823765A EP 1817475 B1 EP1817475 B1 EP 1817475B1
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- EP
- European Patent Office
- Prior art keywords
- riser system
- composite conduit
- end pipe
- sea
- sub
- Prior art date
- Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
- Expired - Lifetime
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- E—FIXED CONSTRUCTIONS
- E21—EARTH OR ROCK DRILLING; MINING
- E21B—EARTH OR ROCK DRILLING; OBTAINING OIL, GAS, WATER, SOLUBLE OR MELTABLE MATERIALS OR A SLURRY OF MINERALS FROM WELLS
- E21B17/00—Drilling rods or pipes; Flexible drill strings; Kellies; Drill collars; Sucker rods; Cables; Casings; Tubings
- E21B17/01—Risers
- E21B17/015—Non-vertical risers, e.g. articulated or catenary-type
Definitions
- the present invention concerns a hybrid riser system for connection between a floating unit, such as a floating vessel or a production unit for oil and gas production, and a sub-sea unit, such as a sub-sea well facility, located at the sea floor.
- a floating unit such as a floating vessel or a production unit for oil and gas production
- a sub-sea unit such as a sub-sea well facility, located at the sea floor.
- the expression “riser system” is intended to mean a pipe or a string adapted for transport of fluids, i.e. liquids and gases or mixtures thereof, and in particular hydrocarbons, such as oil and/or gas or injection fluids, such as methanol or water, between the floating and sub-sea units.
- Riser systems include a conduit through which various fluids are transported from a sub-sea facility located at the sea floor to a floating platform or vessel on the sea surface, such as a surface production and/or storage facility or vice versa.
- the vessel or floating platform is constantly exposed to movements, caused by waves, winds and surface and underwater currents, for example.
- the floating platform is therefore continuously subjected to forces causing it and the riser system connected thereto to movements.
- Riser systems must be able to withstand the forces exerted on them without failure due to fatigue or the like. If part of a riser undergoes fatigue or becomes damaged to the point of failure or possible failure, at least part of the riser system has to be replaced, which is both expensive and may be difficult and time consuming to accomplish.
- additional weight may be required added to the upper part of the riser that is connected to the floating platform or vessel to ensure that the pipe is in tension, however this additional weight compresses the riser, adversely affects fluid flow through the riser system and increases manufacturing and installation costs.
- US patent no. 5,639,187 discloses a marine riser system that combines rigid, steel catenary risers with flexible flow lines.
- catenary meaning the curve assumed by a cord of uniform density and cross section that is perfectly flexible but not capable of being stretched and that hangs freely from two fixed points.
- the steel catenary risers are curved upward through the water in a gentle catenary path to a large, submerged buoy, which, in turn, is moored to the sea bottom by tension leg tether lines at a depth below the turbulence zone of the water.
- the buoy maintains the rigid steel catenary risers in a substantially vertical position in the water.
- Flexible flow lines commonly called jumpers
- a disadvantage with such a system is that a large buoy and clamping means are needed to support the heavy steel risers. Mooring the buoy at a predetermined depth also requires careful planning and engineering, which makes the design and manufacture of the buoy complex, time consuming and expensive. Furthermore, the equipment required for mooring the buoy further increases manufacturing and installation costs.
- US patent no. 6,364,022 B1 discloses a hybrid pipe for deep water comprising a metallic rigid central part.
- An object of the present invention is to provide a hybrid riser system for connection between a floating unit, and a sub-sea unit that is located at the sea floor, which can withstand or accommodate forces exerted thereon due to movements, such as those caused by the movement of the floating unit.
- a riser system that includes a flexible composite conduit for transporting a fluid, i.e. liquid or gas, between said floating and sub-sea units.
- composite conduit refers to a bonded pipe having an inner liner and an outer protective sheath and optionally at least one reinforcing layer, such as the one described in international application WO 99/67561 .
- WO 99/67561 describes a flexible riser comprising composite material.
- the riser comprises an inner liner of thermoplastic material, an intermediate reinforced polymer multi layer component and an outer thermoplastic liner.
- the inner liner is continuously bonded to the intermediate, multi layer component, which is in turn continuously bonded to the outer liner.
- the inventive riser system also comprises at least one end pipe section that is adapted to be connected between the floating and/or the subsea unit and the composite conduit.
- Said at least one end pipe section comprises a metallic pipe, i.e. a pipe made of or containing metal, or a non-bonded flexible pipe.
- the riser system is adapted to assume a compliant flexible configuration when installed.
- non-bonded is intended to mean a pipe consisting of a plurality of layers, comprising a metal or polymer for example, which are not bonded to each other and therefore free to move independently of one another.
- a non-bonded flexible pipe or a metallic pipe provides an end pipe section of increased strength and weight which will not be deflected and bent like a composite conduit and thus eliminates the need for providing the riser system with additional weight.
- a hybrid riser system for connection between a floating unit and a sub-sea unit as described in claim 1.
- the hybrid riser system according to the invention has a light and almost buoyant composite conduit section, which implies less load impact on the floating unit.
- At least one end of the riser system i.e. the end that is connected to the floating unit and/or the end that is connected to the sub-sea unit, is provided with an end pipe section that can better withstand or accommodate the forces exerted on the riser system in the vicinity of the floating and/or sub-sea unit where the riser is deflected and bent the most.
- the inventive riser system reduces top tension, touchdown curvature, touchdown compression and hold-back tension and is suitable for use at high hydrostatic pressures in deep and ultra deep water.
- said at least one end pipe section is arranged to be negatively buoyant.
- the composite conduit is constituted by a single, continuous conduit, i.e. the composite conduit is connected to at least one end pipe section but there are no other connections along the length of the riser.
- the riser system has a light and almost buoyant composite conduit section so as to assume a neutral or slightly negative buoyancy.
- the riser is adapted to assume a compliant configuration when installed e.g. free hanging (catenary), Lazy S or wave, or Steep S or wave.
- the composite conduit further comprises an outer protective sheath, and optionally at least one reinforcing layer.
- the upper and/or lower ends of the composite conduit section are terminated in a composite-metallic interface connector.
- the composite conduit is flexible enough to be spooled onto a reel with a hub radius of about 4500-8500 mm.
- the composite conduit and said at least one end pipe section have an internal diameter in the range of about 10-40 cm (4-16 inches).
- the length of the end pipe section that is connected to the floating unit is approximately 50-600 m. According to another embodiment of the invention the length of the end pipe section that is connected to the subsea unit is approximately 50-100 m.
- the length of the composite conduit is about 1000-1500 m or longer.
- the floating unit is a production or storage unit or a platform or vessel
- the sub-sea unit is a sub-sea well facility
- the riser system is adapted for transport of fluids, in particular hydrocarbons, such as oil and/or gas, or injection fluids, such as methanol or water, between the floating and subsea units.
- FIG. 1 shows a riser system 10 for connection between a floating unit 12 and a sub-sea unit 14 located on the sea floor 18.
- the floating unit 12 is, in the illustrated example, a floating production unit for processing well fluid, by removing gas and water for example, from a sub-sea well assembly 14, and conveying the fluid to an export pipeline or offloading to another vessel, such as an oil tanker, whereby the riser system 10 transports fluid from the sub-sea unit 14 to the floating unit 12.
- the floating production unit 12 may alternatively, or also, have equipment for injecting water or gas into a sub-sea well 14 for production purposes, whereby the riser 10 transports fluid from the floating unit 12 to the sub-sea unit 14.
- a riser 10 comprises an upper metallic end pipe section 20, a central composite section 22, and a lower metallic end pipe section 24.
- Upper end pipe section 20 has a length of about 50 to 600 m and is negatively buoyant. According to the invention, all of upper end pipe section 20 and the lower end pipe section 24 are formed from a non-bonded flexible pipe.
- the lower end pipe section 24 connects to a sub-sea facility 14 on the sub-sea floor 18, such as a manifold or production/injection tree, at a location horizontally offset from production vessel 12.
- the riser 10 is constructed to assume a compliant configuration when installed. As shown in Fig. 1 , the installed riser 10 assumes a Lazy wave configuration.
- Movement of the floating unit is accommodated by the flexibility of the upper end pipe section, i.e. the metallic non-bonded flexible pipe.
- Tensioning means are not required to maintain tension in the riser 10.
- Tension is obtained through the upper end pipe section 20 and buoyancy is optionally applied to the central composite conduit section 22 in order to avoid compression in the riser string 10.
- Central composite conduit section 22 constitutes most of the length of the riser 10, and is much longer than upper end pipe section 20 or the lower end pipe section 24.
- the distance from vessel 12 to sub-sea facility 14 could be 2,000 meters with the central composite conduit section 22 being 1,500 meters or more in length.
- Central composite conduit section 22 is preferably neutral or slightly negative in buoyancy.
- Lower end pipe section 24 is utilized in environments where flexibility is required to connect the lower end of riser 10 to a sub-sea facility 14 or where touch down compression may occur.
- Lower end pipe section 24 may include a metal tapered stress joint if necessary.
- Lower end pipe section 24 comprises non-bonded flexible pipe of a type described above. As shown in Fig. 1 , since riser 10 has a compliant configuration, a portion of lower end pipe section 24 will likely lie on the sea floor 18.
- Lower end pipe section 24 is also much shorter than the length of central composite conduit section 22. For example, lower section 24 is preferably from about 50 to 100 meters in length.
- each, end pipe section 20, 24 can be connected to the composite conduit 22 onshore and stored on a reel for installation purposes or the end pipe section(s) could be wound on a separate reel and connected to the composite conduit during installation.
- the latter method would be more suitable when the end pipe section(s) comprise(s) a metallic pipe.
- Figure 2 shows a flange-type connector 26, made of metal for example, for connecting a composite conduit 22 to an upper end pipe section 20 and/or a lower end pipe section 24.
- the connector 26 is secured by a plurality of bolts 28.
- the flange-type connector 26 could be a standard API.
- Upper end pipe section 20 has a conventional floater connection, for example, which couples the riser 10 to the floating production unit 12.
- the floater connection could include a flex joint or a flange connection with a bend stiffener.
- Figure 3 shows a cross section of the central composite conduit section of the riser system (outer protective sheath not shown).
- the conduit 22 has a fluid impervious inner liner 30, having an inner diameter typically ranging from about 15-30 cm (6-12 inches), which is continuous and extends from its upper end 20 to its lower end 24.
- Inner liner 30 may be formed from a conventional thermoplastic material, such as polyamides, polyvinylidene fluoride (PVDF), polyphenylene sulfide (PPS) or polyether ether ketone (PEEK), preferably having a thickness between 4-7 mm.
- a thermoplastic fibre reinforced tape 32 such as carbon fibre or glass fibre, is wrapped around liner 30 in various angles depending on loads and environment.
- thermoplastic fibre reinforced tape 32 is then bonded to the liner 30 or tape substrate, by heating for example, which forms a high strength, lightweight tubular member.
- the upper and/or lower ends of the composite conduit section 22 are terminated in a composite-metallic interface connector 26.
- At least one reinforcing layer can be added which are built up of unidirectional continuous fibres of carbon, glass, or aramid, which are embedded in thermoplastic resins.
- Typical thermoplastic resins are the following: polyamides (PA, PPA) polysulphone (PSU), polyether imide (PEI) and polyether sulphone (PES)or polyether ether ketone (PEEK).
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- Environmental & Geological Engineering (AREA)
- Fluid Mechanics (AREA)
- Mechanical Engineering (AREA)
- General Life Sciences & Earth Sciences (AREA)
- Geochemistry & Mineralogy (AREA)
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- Rigid Pipes And Flexible Pipes (AREA)
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Description
- The present invention concerns a hybrid riser system for connection between a floating unit, such as a floating vessel or a production unit for oil and gas production, and a sub-sea unit, such as a sub-sea well facility, located at the sea floor. The expression "riser system" is intended to mean a pipe or a string adapted for transport of fluids, i.e. liquids and gases or mixtures thereof, and in particular hydrocarbons, such as oil and/or gas or injection fluids, such as methanol or water, between the floating and sub-sea units.
- Riser systems include a conduit through which various fluids are transported from a sub-sea facility located at the sea floor to a floating platform or vessel on the sea surface, such as a surface production and/or storage facility or vice versa. The vessel or floating platform is constantly exposed to movements, caused by waves, winds and surface and underwater currents, for example. The floating platform is therefore continuously subjected to forces causing it and the riser system connected thereto to movements. Riser systems must be able to withstand the forces exerted on them without failure due to fatigue or the like. If part of a riser undergoes fatigue or becomes damaged to the point of failure or possible failure, at least part of the riser system has to be replaced, which is both expensive and may be difficult and time consuming to accomplish. When using light weight riser pipes e.g. composite, additional weight may be required added to the upper part of the riser that is connected to the floating platform or vessel to ensure that the pipe is in tension, however this additional weight compresses the riser, adversely affects fluid flow through the riser system and increases manufacturing and installation costs.
-
US patent no. 5,639,187 discloses a marine riser system that combines rigid, steel catenary risers with flexible flow lines. The expression "catenary" meaning the curve assumed by a cord of uniform density and cross section that is perfectly flexible but not capable of being stretched and that hangs freely from two fixed points. The steel catenary risers are curved upward through the water in a gentle catenary path to a large, submerged buoy, which, in turn, is moored to the sea bottom by tension leg tether lines at a depth below the turbulence zone of the water. The buoy maintains the rigid steel catenary risers in a substantially vertical position in the water. Flexible flow lines (commonly called jumpers) are fluidly connected to the steel catenary risers at the buoy and extend upward through the turbulence zone to the surface. - A disadvantage with such a system is that a large buoy and clamping means are needed to support the heavy steel risers. Mooring the buoy at a predetermined depth also requires careful planning and engineering, which makes the design and manufacture of the buoy complex, time consuming and expensive. Furthermore, the equipment required for mooring the buoy further increases manufacturing and installation costs.
-
US patent no. 6,364,022 B1 discloses a hybrid pipe for deep water comprising a metallic rigid central part. - An object of the present invention is to provide a hybrid riser system for connection between a floating unit, and a sub-sea unit that is located at the sea floor, which can withstand or accommodate forces exerted thereon due to movements, such as those caused by the movement of the floating unit.
- This object is achieved by a riser system that includes a flexible composite conduit for transporting a fluid, i.e. liquid or gas, between said floating and sub-sea units. The term "composite conduit" refers to a bonded pipe having an inner liner and an outer protective sheath and optionally at least one reinforcing layer, such as the one described in international application
.WO 99/67561 describes a flexible riser comprising composite material. The riser comprises an inner liner of thermoplastic material, an intermediate reinforced polymer multi layer component and an outer thermoplastic liner. The inner liner is continuously bonded to the intermediate, multi layer component, which is in turn continuously bonded to the outer liner. The inventive riser system also comprises at least one end pipe section that is adapted to be connected between the floating and/or the subsea unit and the composite conduit. Said at least one end pipe section comprises a metallic pipe, i.e. a pipe made of or containing metal, or a non-bonded flexible pipe. The riser system is adapted to assume a compliant flexible configuration when installed.WO 99/67561 - The term "non-bonded" is intended to mean a pipe consisting of a plurality of layers, comprising a metal or polymer for example, which are not bonded to each other and therefore free to move independently of one another. A non-bonded flexible pipe or a metallic pipe provides an end pipe section of increased strength and weight which will not be deflected and bent like a composite conduit and thus eliminates the need for providing the riser system with additional weight.
- According to the present invention there is provided a hybrid riser system for connection between a floating unit and a sub-sea unit as described in claim 1. The hybrid riser system according to the invention has a light and almost buoyant composite conduit section, which implies less load impact on the floating unit. At least one end of the riser system, i.e. the end that is connected to the floating unit and/or the end that is connected to the sub-sea unit, is provided with an end pipe section that can better withstand or accommodate the forces exerted on the riser system in the vicinity of the floating and/or sub-sea unit where the riser is deflected and bent the most. The inventive riser system reduces top tension, touchdown curvature, touchdown compression and hold-back tension and is suitable for use at high hydrostatic pressures in deep and ultra deep water.
- According to an embodiment of the invention said at least one end pipe section is arranged to be negatively buoyant.
- According to another embodiment of the invention the composite conduit is constituted by a single, continuous conduit, i.e. the composite conduit is connected to at least one end pipe section but there are no other connections along the length of the riser.
- According to another embodiment of the invention the riser system has a light and almost buoyant composite conduit section so as to assume a neutral or slightly negative buoyancy.
- According to further embodiments of the invention the riser is adapted to assume a compliant configuration when installed e.g. free hanging (catenary), Lazy S or wave, or Steep S or wave.
- According to another embodiment of the invention the composite conduit further comprises an outer protective sheath, and optionally at least one reinforcing layer.
- According to another embodiment of the invention the upper and/or lower ends of the composite conduit section are terminated in a composite-metallic interface connector. According to a further embodiment of the invention the composite conduit is flexible enough to be spooled onto a reel with a hub radius of about 4500-8500 mm.
- According to an embodiment of the invention the composite conduit and said at least one end pipe section have an internal diameter in the range of about 10-40 cm (4-16 inches).
- According to an embodiment of the invention the length of the end pipe section that is connected to the floating unit is approximately 50-600 m. According to another embodiment of the invention the length of the end pipe section that is connected to the subsea unit is approximately 50-100 m.
- According to a further embodiment of the invention the length of the composite conduit is about 1000-1500 m or longer.
- According to a further embodiment of the invention the floating unit is a production or storage unit or a platform or vessel, the sub-sea unit is a sub-sea well facility, whereby the riser system is adapted for transport of fluids, in particular hydrocarbons, such as oil and/or gas, or injection fluids, such as methanol or water, between the floating and subsea units.
- The present invention will hereinafter be further explained by means of non-limiting examples with reference to the appended figures where:
- Fig. 1
- is a schematic view of a riser according to an embodiment of the invention connected between a production vessel and a sub-sea facility,
- Fig. 2
- shows a connector for connecting an end pipe section of a riser to the central composite conduit section of the riser,
- Fig. 3
- is a cross section of the central composite conduit section of a riser according to an embodiment of the invention, taken along the line A-A of
Fig. 2 . - It should be noted that the drawings have not been drawn to scale and that the dimensions of certain features have been exaggerated for the sake of clarity.
-
Figure 1 shows ariser system 10 for connection between afloating unit 12 and asub-sea unit 14 located on thesea floor 18. Thefloating unit 12 is, in the illustrated example, a floating production unit for processing well fluid, by removing gas and water for example, from asub-sea well assembly 14, and conveying the fluid to an export pipeline or offloading to another vessel, such as an oil tanker, whereby theriser system 10 transports fluid from thesub-sea unit 14 to thefloating unit 12. Thefloating production unit 12 may alternatively, or also, have equipment for injecting water or gas into a sub-sea well 14 for production purposes, whereby theriser 10 transports fluid from thefloating unit 12 to thesub-sea unit 14. - A
riser 10 comprises an upper metallicend pipe section 20, acentral composite section 22, and a lower metallicend pipe section 24. Upperend pipe section 20 has a length of about 50 to 600 m and is negatively buoyant. According to the invention, all of upperend pipe section 20 and the lowerend pipe section 24 are formed from a non-bonded flexible pipe. The lowerend pipe section 24 connects to asub-sea facility 14 on thesub-sea floor 18, such as a manifold or production/injection tree, at a location horizontally offset fromproduction vessel 12. Theriser 10 is constructed to assume a compliant configuration when installed. As shown inFig. 1 , the installedriser 10 assumes a Lazy wave configuration. Movement of the floating unit is accommodated by the flexibility of the upper end pipe section, i.e. the metallic non-bonded flexible pipe. Tensioning means are not required to maintain tension in theriser 10. Tension is obtained through the upperend pipe section 20 and buoyancy is optionally applied to the centralcomposite conduit section 22 in order to avoid compression in theriser string 10. - Central
composite conduit section 22 constitutes most of the length of theriser 10, and is much longer than upperend pipe section 20 or the lowerend pipe section 24. For example, the distance fromvessel 12 tosub-sea facility 14 could be 2,000 meters with the centralcomposite conduit section 22 being 1,500 meters or more in length. Centralcomposite conduit section 22 is preferably neutral or slightly negative in buoyancy. - Lower
end pipe section 24 is utilized in environments where flexibility is required to connect the lower end ofriser 10 to asub-sea facility 14 or where touch down compression may occur. Lowerend pipe section 24 may include a metal tapered stress joint if necessary. Lowerend pipe section 24 comprises non-bonded flexible pipe of a type described above. As shown inFig. 1 , sinceriser 10 has a compliant configuration, a portion of lowerend pipe section 24 will likely lie on thesea floor 18. Lowerend pipe section 24 is also much shorter than the length of centralcomposite conduit section 22. For example,lower section 24 is preferably from about 50 to 100 meters in length. - The, or each,
20, 24 can be connected to theend pipe section composite conduit 22 onshore and stored on a reel for installation purposes or the end pipe section(s) could be wound on a separate reel and connected to the composite conduit during installation. The latter method would be more suitable when the end pipe section(s) comprise(s) a metallic pipe. -
Figure 2 shows a flange-type connector 26, made of metal for example, for connecting acomposite conduit 22 to an upperend pipe section 20 and/or a lowerend pipe section 24. Theconnector 26 is secured by a plurality ofbolts 28. The flange-type connector 26 could be a standard API. - Alternatively, a more compact flange could be used, but also a flex joint depending on the environment. Upper
end pipe section 20 has a conventional floater connection, for example, which couples theriser 10 to the floatingproduction unit 12. The floater connection could include a flex joint or a flange connection with a bend stiffener. -
Figure 3 shows a cross section of the central composite conduit section of the riser system (outer protective sheath not shown). According to an embodiment of the invention theconduit 22 has a fluid imperviousinner liner 30, having an inner diameter typically ranging from about 15-30 cm (6-12 inches), which is continuous and extends from itsupper end 20 to itslower end 24.Inner liner 30 may be formed from a conventional thermoplastic material, such as polyamides, polyvinylidene fluoride (PVDF), polyphenylene sulfide (PPS) or polyether ether ketone (PEEK), preferably having a thickness between 4-7 mm. A thermoplastic fibre reinforcedtape 32, such as carbon fibre or glass fibre, is wrapped aroundliner 30 in various angles depending on loads and environment. The thermoplastic fibre reinforcedtape 32 is then bonded to theliner 30 or tape substrate, by heating for example, which forms a high strength, lightweight tubular member. The upper and/or lower ends of thecomposite conduit section 22 are terminated in a composite-metallic interface connector 26. - At least one reinforcing layer can be added which are built up of unidirectional continuous fibres of carbon, glass, or aramid, which are embedded in thermoplastic resins. Typical thermoplastic resins are the following: polyamides (PA, PPA) polysulphone (PSU), polyether imide (PEI) and polyether sulphone (PES)or polyether ether ketone (PEEK).
- The invention is of course not in any way restricted to the preferred embodiments described above. On the contrary, many possibilities to modifications thereof will be apparent to a person with ordinary skill in the art without departing from the basic idea of the invention as defined in the appended claims.
Claims (15)
- A hybrid riser system (10) for connection between a floating unit (12) and a sub-sea unit (14) that is located at the sea floor (18), the system comprising:a flexible composite conduit (22) for transporting a fluid between said floating unit (12) and sub-sea unit (14)
whereby said composite conduit comprises a bonded pipe having an inner liner (30);an end pipe section (20) connected to the composite conduit, said end pipe section (20) being adapted to be connected between the floating unit (12) and the composite conduit; anda further end pipe section (24) connected to the composite conduit, said end pipe section (24) being adapted to be connected between the sub-sea unit (14) and the composite conduit (22),whereby said end pipe sections (20, 24) comprise a metallic non-bonded flexible pipe, the metallic non-bonded flexible pipe comprising a plurality of metallic layers, which are not bonded to each other and are free to move independently of one another, and
wherein the riser system is adapted to assume a compliant flexible configuration when installed. - A riser system according to claim 1, characterized in that said end pipe sections (20, 24) are arranged to be negatively buoyant.
- A riser system according to claim 1 or 2, characterized in that the composite conduit (22) is constituted by a single, continuous composite conduit.
- A riser system according to any of claims 1-3, characterized in that the composite conduit section (22) is neutral or negatively buoyant.
- A riser system according to claim 1, characterized in that said compliant configuration is a free hanging configuration.
- A riser system according to claim 1, characterized in that said compliant configuration is a Lazy S or Lazy wave configuration.
- A riser system according to claim 1, characterized in that said compliant configuration is a Steep S or Steep wave configuration.
- A riser system according to any of the preceding claims, characterized in that the composite conduit (22) further comprises an outer protective sheath, and optionally at least one reinforcing layer (32).
- A riser system according to any of the preceding claims, characterized in that the upper and/or lower ends of the composite conduit section (22) are terminated in a composite-metallic interface connector (26).
- A riser system according to any of the preceding claims, characterized in that the composite conduit (22) is flexible enough to be spooled onto a reel with a hub radius of about 4500-8500 mm.
- A riser system according to any of the preceding claims, characterized in that the composite conduit (22) and said end pipe sections (20, 24) have an internal diameter in the range of about 10-40 cm.
- A riser system according to any of the preceding claims, characterized in that the length of the end pipe section (20) that is adapted to be connected between the floating unit and the composite conduit (12) is approximately 50-600 m.
- A riser system according to any of the preceding claims, characterized in that the length of the end pipe section (24) that is adapted to be connected between the sub-sea unit and the composite conduit is approximately 50-100 m.
- A riser system according to any of the preceding claims, characterized in that the length of the composite conduit (22) is about 1000-1500 m or longer.
- A riser system according to any of the preceding claims, characterized in that the floating unit (12) is a production or storage unit or a platform or vessel, and the sub-sea unit (14) is a sub-sea well facility, wherein the riser system (10) is adapted for transport of fluids, in particular hydrocarbons, such as oil and/or gas, or injection fluids, such as methanol or water, between the floating (12) and sub-sea (14) units.
Applications Claiming Priority (2)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| US63224504P | 2004-12-01 | 2004-12-01 | |
| PCT/IB2005/003638 WO2006059220A2 (en) | 2004-12-01 | 2005-12-01 | A hybrid riser system |
Publications (3)
| Publication Number | Publication Date |
|---|---|
| EP1817475A2 EP1817475A2 (en) | 2007-08-15 |
| EP1817475A4 EP1817475A4 (en) | 2012-09-05 |
| EP1817475B1 true EP1817475B1 (en) | 2019-05-08 |
Family
ID=36565407
Family Applications (1)
| Application Number | Title | Priority Date | Filing Date |
|---|---|---|---|
| EP05823765.2A Expired - Lifetime EP1817475B1 (en) | 2004-12-01 | 2005-12-01 | A hybrid riser system |
Country Status (6)
| Country | Link |
|---|---|
| EP (1) | EP1817475B1 (en) |
| BR (1) | BRPI0520284B1 (en) |
| DK (1) | DK1817475T3 (en) |
| ES (1) | ES2729828T3 (en) |
| NO (1) | NO20072611L (en) |
| WO (1) | WO2006059220A2 (en) |
Families Citing this family (11)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| GB2461482B (en) * | 2007-04-17 | 2012-02-29 | Cs Technical Services Ltd | Tubular conduit |
| WO2010031844A1 (en) | 2008-09-19 | 2010-03-25 | Solvay Advanced Polymers, L.L.C. | Flexible pipes made of a polyaryletherketone / perfluoropolymer composition |
| GB0818500D0 (en) | 2008-10-09 | 2008-11-19 | Wellstream Int Ltd | Flexible pipe |
| GB201005035D0 (en) | 2010-03-25 | 2010-05-12 | Victrex Mfg Ltd | Pipe |
| DE102010003917A1 (en) * | 2010-04-13 | 2011-10-13 | Evonik Degussa Gmbh | Flexible tube with diffusion barrier |
| DE102010003920A1 (en) | 2010-04-13 | 2011-10-13 | Evonik Degussa Gmbh | Flexible tube with higher temperature resistance |
| BR112014030179B1 (en) | 2012-06-06 | 2020-11-17 | National Oilwell Varco Denmark I/S | riser tube to carry fluid between a superior installation and an underwater installation |
| GB2504065A (en) * | 2012-06-29 | 2014-01-22 | Statoil Petroleum As | Subsea flexible riser |
| AU2018296421B9 (en) * | 2017-07-03 | 2024-08-01 | Subsea 7 Norway As | Offloading hydrocarbons from subsea fields |
| MX2021007523A (en) | 2018-12-18 | 2021-10-13 | Eni Spa | Composite tubular element and relevant manufacturing method. |
| FR3124426B1 (en) | 2021-06-25 | 2023-06-09 | Technip N Power SAS | Thermoplastic composite pipe for the transport of fluid and flexible pipe comprising it |
Family Cites Families (6)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| FR2507672A1 (en) * | 1981-06-12 | 1982-12-17 | Inst Francais Du Petrole | UPLINK COLUMN FOR LARGE DEPTHS OF WATER |
| FR2616858B1 (en) * | 1987-06-18 | 1989-09-01 | Inst Francais Du Petrole | VARIABLE STRAIGHTENING ELEMENT FOR TRANSFER COLUMN BASE |
| NO981701D0 (en) * | 1998-04-16 | 1998-04-16 | Kvaerner Oilfield Prod As | Compound hybrid rises year |
| NO314958B1 (en) * | 1998-06-24 | 2003-06-16 | Wellstream Int Ltd | Flexible, polymeric, composite rudder such as a flexible riser |
| FR2790814B1 (en) * | 1999-03-09 | 2001-04-20 | Coflexip | HYBRID CONDUIT FOR LARGE DEPTH |
| NO312483B1 (en) * | 1999-05-14 | 2002-05-13 | Offtech Invest As | Flexible, lightweight composite pipe for high pressure oil and gas applications |
-
2005
- 2005-12-01 EP EP05823765.2A patent/EP1817475B1/en not_active Expired - Lifetime
- 2005-12-01 WO PCT/IB2005/003638 patent/WO2006059220A2/en not_active Ceased
- 2005-12-01 DK DK05823765.2T patent/DK1817475T3/en active
- 2005-12-01 ES ES05823765T patent/ES2729828T3/en not_active Expired - Lifetime
- 2005-12-01 BR BRPI0520284-1A patent/BRPI0520284B1/en active IP Right Grant
-
2007
- 2007-05-24 NO NO20072611A patent/NO20072611L/en not_active Application Discontinuation
Non-Patent Citations (1)
| Title |
|---|
| None * |
Also Published As
| Publication number | Publication date |
|---|---|
| NO20072611L (en) | 2007-08-30 |
| DK1817475T3 (en) | 2019-06-24 |
| EP1817475A2 (en) | 2007-08-15 |
| WO2006059220A2 (en) | 2006-06-08 |
| BRPI0520284A2 (en) | 2009-04-28 |
| EP1817475A4 (en) | 2012-09-05 |
| WO2006059220A3 (en) | 2006-07-27 |
| BRPI0520284B1 (en) | 2017-07-04 |
| WO2006059220B1 (en) | 2006-10-12 |
| ES2729828T3 (en) | 2019-11-06 |
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