SEA WATER INTAKE RISER SYSTEM
20220144404 · 2022-05-12
Inventors
- Xiaoqiang BIAN (Bât. Aigue Marine, MC)
- Peimin CAO (Bât. Aigue Marine, MC)
- Chen XIANG (Bât. Aigue Marine, MC)
- Qing LI (Bât. Aigue Marine, MC)
Cpc classification
B63B75/00
PERFORMING OPERATIONS; TRANSPORTING
B63J2002/005
PERFORMING OPERATIONS; TRANSPORTING
Y02T70/00
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
B63B13/00
PERFORMING OPERATIONS; TRANSPORTING
B63B2035/442
PERFORMING OPERATIONS; TRANSPORTING
International classification
Abstract
A sea water intake riser system for a floating production unit, including a caisson having a through-opening in a bottom side and being connectable to an upper end of a riser pipe; a lift pump inside the caisson and having an inlet at a vertical distance with a predetermined minimum submergence for pumping cold water from the caisson up to the floating production unit for use as cooling medium, wherein the sea water intake riser system includes at least two caissons, having a height substantially equal to a vertical height of a hull of the floating production unit and including an open top side; each caisson extending from a predetermined minimum distance from the bottom side of the hull up to at least the water-line during use and wherein a sump tank is located between the bottom side of the hull and the at least two caissons.
Claims
1. A sea water intake riser system for a floating production unit, comprising: at least two caissons, wherein the height of each caisson is substantially equal to a vertical height of a hull of the floating production unit and extends, when mounted to the hull of the floating production unit, from a predetermined minimum distance from the bottom side of the hull up to at least the water-line during use, each caisson comprising an open top side and a through-opening in a bottom side; a lift pump arranged inside each of the caissons and having an inlet at a vertical distance with a predetermined minimum submergence and adapted for pumping cold water from the caisson up to the floating production unit suitable for use as cooling medium by production equipment of the floating production unit; and a sump tank, attached to the bottom side of each of the caissons such that each through-opening thereof is in fluid communication with a volume inside the sump tank, the sump tank being located between the bottom side of the hull and the at least two caissons when mounted and having a through-opening in a bottom side and being connectable to an upper end of a riser pipe.
2. The sea water intake raiser system according to claim 1, wherein the caisson and sump tank are provided with mounting elements for mounting the caissons and sump tank externally to and at a predetermined distance from the hull, the sump tank having a bottom side substantially near the bottom side of the hull.
3. The sea water intake riser system according to claim 1, wherein a riser pipe is removably mounted into the through-opening of the sump tank with an upper end, the riser pipe having a free opposite lower end, which is provided with a strainer water-inlet, the riser pipe being adapted for transporting water from the water-inlet into the sump tank.
4. The sea water intake riser system according to claim 1, wherein the riser pipe is at least 300 m long.
5. The sea water intake riser system according to claim 1, wherein the sea water intake riser pipe is a substantially flexible riser pipe, being provided with a ballast at the lower end.
6. The sea water intake riser system according to claim 5, wherein the sea water intake riser pipe comprises at least one reinforced pipe which is with a first end fitted into the through-opening of the caisson, and a string of main body standard pipes which is with a first end connected to a second end of the reinforced pipe, which length of the string is configured to have a large self-support length.
7. The sea water intake riser system according to claim 6, wherein the string of main body standard pipes comprises a material with a high specific strength belonging to a group of polymers.
8. A floating production unit comprising a sea water intake riser system as defined in claim 1.
9. The floating production unit according to claim 8, wherein the floating production unit is a semi-submersible production unit.
10. The floating production unit according to claim 8, wherein the floating production unit is equipped with a crane for installing pipe pieces from a top deck of the floating production unit through the caisson onto one another to form or elongate the sea water intake riser.
11. A method of manufacturing a caisson for a sea water intake system for a floating production unit according to claim 1.
12. The sea water intake riser system according to claim 2, wherein a riser pipe is removably mounted into the through-opening of the sump tank with an upper end, the riser pipe having a free opposite lower end, which is provided with a strainer water-inlet, the riser pipe being adapted for transporting water from the water-inlet into the sump tank.
13. The sea water intake riser system according to claim 2, wherein the riser pipe is at least 300 m long.
14. The sea water intake riser system according to claim 3, wherein the riser pipe is at least 300 m long.
15. The sea water intake riser system according to claim 2, wherein the sea water intake riser pipe is a substantially flexible riser pipe, being provided with a ballast at the lower end.
16. The sea water intake riser system according to claim 3, wherein the sea water intake riser pipe is a substantially flexible riser pipe, being provided with a ballast at the lower end.
17. The sea water intake riser system according to claim 4, wherein the sea water intake riser pipe is a substantially flexible riser pipe, being provided with a ballast at the lower end.
18. A floating production unit comprising a sea water intake riser system as defined in claim 2.
19. A floating production unit comprising a sea water intake riser system as defined in claim 3.
20. A floating production unit comprising a sea water intake riser system as defined in claim 4.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0028] The present invention will be discussed in more detail below, with reference to the attached drawings, in which
[0029]
[0030]
[0031]
[0032]
DESCRIPTION OF THE PREFERRED EMBODIMENTS
[0033]
[0034] The SWIR system 100 comprises a caisson 120, a sump tank 125 and a sea water intake riser 150 with a strainer water-inlet 160. The caisson 120 is a longitudinal structure which is mounted with the longitudinal length in the vertical direction to one of the columns 5 of the FPU 1 and with a bottom side connected to sump tank 125 located at the bottom side of the column 5.
[0035] The sump tank 125 is a water volume tank with a top being connected to the bottom of caisson 120 and extending to the bottom side of the column 100 and connecting an upper end of the sea water intake riser 150 to a through-opening at the bottom of sump tank 125.
[0036] The sea water intake riser 150 is connected with an upper end to a through-opening in a bottom side of the sump tank 125. At the opposing, lower end of the sea water intake riser 150 a strainer water-inlet 160 is attached which is arranged to enable the sea water intake riser 150 transporting filtered water, thus water without for example debris and sea animals, up into the caisson. The sea water intake riser has a length h such that the strainer water-inlet 160 is at about 300 m or more below the water-level WL. The caisson 120, the sump tank 125 and the sea water intake riser 150 is discussed in more detail in reference to
[0037]
[0038] In an alternative embodiment, the SWIR 100 may comprise a different number of caissons, i.e., at least two caissons.
[0039] Each caisson 120 has a through-opening in a bottom side 123 and an open top (not shown). In an embodiment, the caisson has the shape of a large diameter pipe. Inside each caisson 120, a lift pump 140 is arranged having an inlet at a vertical distance 141 from the bottom side 128 of the sump tank. This vertical distance 141 between the inlet of the lift pump 140 and the bottom side 128 is smaller than a vertical distance 101 between the bottom side 128 and the water-line WL during use of the SWIR system. Preferably, a distance between the waterline WL and the inlet of each lift pump 140 is at least 10 m, ensuring the inlets of the lift pumps 140 remain submerged as much as possible throughout various sea motions. Each lift pump 140 is with an outlet connected to a conduit which extends between the lift pump 140 and the process facilities on deck (not shown here) and adapted for pumping water from inside the caisson 120 up to the floating production unit for use as cooling medium by production equipment of the FPU or cooling equipment of the FPU.
[0040] The caissons are arranged adjacent to each other extending from a predetermined minimum distance 126 from the bottom side of the hull upwards, but at least up to the water-line WL during use of the caisson. Each caisson 120 is arranged with an individual tank space around the associated lift pump, having a relatively narrow width, preventing a possible large displacement of water within the caisson to a single side due to vessel motions which could otherwise result in the lift pump 140 running dry.
[0041] At the lower end of the caisson 120, extending between the bottom side of the hull and the end of the caisson 123 at the predetermined minimum distance 126 therefrom, a space exists over the entire width of the three parallel caissons 120 which defines a sump volume or sump tank 125. The sump tank 125 acts as a buffer tank between the through-opening of the caisson and the partitioned volumes around the lift pumps 140.
[0042] The sea water intake riser 150 is removably attached to the caissons 120 at the through-opening in the bottom side of the sump tank 125, such that the through-opening of the sea water intake riser 150 is in open connection with the inside of the sump tank 125. The sea water intake riser pipe 150 is arranged as a substantially flexible riser and vertically hung-off from column 100 with a length of at least 100 meter, preferably at least 300 meter, into deep water, allowing the sea water intake riser pipe 150 to move with the FPU motions under the sea environment to some extent. The top of the sea water intake riser 150 comprises one or two reinforced pipes with the first pipe section 151 and second pipe section 152. The first pipe (section) 151 is fitted into the through-opening of the bottom side 128 of the sump tank 125 by means of a riser seat and head, ensuring water can only enter the caisson via the sea water intake riser. The two reinforced pipes 151 and 152 have a sufficient axial strength to carry the entire sea water intake riser system weight and the additional dynamic loads due to FPU motions under the sea environment. The reinforced pipes are either flexible hose type or stress joint type to minimize the large bending moment being transferred between FPU and the string of main body standard pipes 153.
[0043] The string of main body standard pipes 153 is made up from High Density Polyethylene (HDPE) standard pipe, having a length to reach down a significant depth from the caisson, preferably up to at least 300 meters down into deep sea water, and which string of main body standard pipes 153 is with a first end connected to a second end of the second pipe 152. The sea water intake riser pipe 150 is provided with a ballast in or near the strainer water-inlet 160 shown in
[0044] The caisson 120 can be a large rectangular tank with internal partition walls comprising of metal plates which are welded together, forming individual caissons therein.
[0045] The removable attachment of the riser seat and head allows the sea water intake riser pipe being installed and removed offshore in a relatively simple procedure, which may be performed using on-board lifting equipment of the FPU.
[0046]
[0047] Alternatively to building up the entire length of sea water intake riser piping offshore, the HDPE string of main body standard pipes may be manufactured as a single length pipe onshore and transported to the FPU's offshore location. The first end of the HDPE string of main body standard pipes is then pulled through the through-hole in the bottom side of the caisson 120 into the hang-off tool 121 using the on-board crane 7 for fitting the first and second pipes and the head thereto in a manner similarly to described for
[0048] The present invention has been described above with reference to a number of exemplary embodiments as shown in the drawings. Modifications and alternative implementations of some parts or elements are possible, and are included in the scope of protection as defined by the appended claims.