2-SLOT INLINE BLOCK MANIFOLD SYSTEM
20210215263 ยท 2021-07-15
Inventors
Cpc classification
E21B43/017
FIXED CONSTRUCTIONS
E21B43/013
FIXED CONSTRUCTIONS
F16K27/003
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F16K27/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
E21B43/013
FIXED CONSTRUCTIONS
Abstract
The present invention relates to a hub block (2) with two hubs (3a, 3b), each configured for connection with a branch pipe from a well. The two hubs are in line with each other. A flowline bore (12) extends between flowline inlet and exit ports (5, 10). The flowline bore (12) is intersecting and in fluid connection with two branch bores (23a, 23b) extending from the flowline bore (12) and to the hubs (3a, 3b). Two valve bores (11a, lib) extend across the branch bores (23a, 23b). Furthermore the invention relates to a 2-slot inline block (1) with a hub block (2) and a manifold assembly of a plurality of 2-slot inline blocks (1).
Claims
1. An inline block manifold system including a plurality of hub blocks (2) each comprising: a first hub (3a) configured for connection with a branch pipe from a first well and a second hub (3b) configured for connection with a branch pipe from a second well, in line with and in an opposite direction of the first hub (3a); a flowline bore (12), extending between a flowline inlet port (5) and a flowline exit port (10), intersecting and in fluid connection with a first branch bore (23a) extending from the flowline bore (12) and to the first hub (3a) and a second branch bore (23b) extending from the flowline bore (12) and to the second hub (3b); a first valve bore (11a) extending across the first branch bore (23a); and a second valve bore (11b) extending across the second branch bore (23b); and wherein the flowline bore (12) of each of the plurality of hub blocks (2) are inline.
2. The inline block manifold system of claim 1, wherein a centreline through the flowline bore (12) in each of the plurality of 2-slot inline blocks (1), a centreline through each of the plurality of flowline spacer pipes (6), and a centreline through a portion of the flowline (20) at each end of the mud mat (15) is located in one single plane.
3. The inline block manifold system of claim 1 wherein each hub block (2), is made of one single block of metal.
4. The inline block manifold system of claim 1 wherein each hub block (2), further include a flowline alignment geometry (9) surrounding the flowline inlet port (5) and the flowline exit port (10), whereby a flowline is aligned with the hub block (2) while the flowline is welded to the hub block (2).
5. The inline block manifold system of claim 1 wherein, in each of the hub blocks (1), the first valve bore (11a) is perpendicular to the first branch bore (23a); and the second valve bore (11b) is perpendicular to second branch bore (23b).
6. A 2-slot inline block manifold (1) in the inline block manifold system of claim 1, further including a cut-off valve (7) in each of the first valve bore (11a) and the second valve bore (11b).
7. An assembly of a plurality of 2-slot inline block manifolds (1) of claim 6, wherein a first end of a first flowline spacer pipe (6) of a plurality of flowline spacer pipes (6) is welded to the flowline exit port (10) of a first of the plurality of 2-slot inline blocks (1); and a second end of the first flowline spacer pipe (6) is welded to the flowline inlet port (5) of a second of the plurality of 2-slot inline blocks (1).
8. An inline block manifold system with an assembly of claim 7, wherein each of the plurality of 2-slot inline blocks (1) is secured to a carrier element (20) forming a centre section of a mud mat (15) whereby the plurality of 2-slot inline blocks (1) are in line with each other and include one 2-slot inline block (1) at a first end of the line and a second 2-slot inline block (1) at a second end of the line; wherein the inlet port (5) of the 2-slot inline block (1) at the first end of the line and the exit port (10) of the 2-slot inline block (1) at the second end of the line are in fluid connection with a flowline (12).
9. The inline block manifold system of claim 7, wherein the mud mat (15) includes at least two mud mat parts, each hinged to the carrier element (20) forming the centre section of the mud mat (15); wherein the mud mat (15) includes an installation configuration where the at least two mud mat parts are folded and each carrier surface define separate carrier planes; and wherein the mud mat (15) includes a deployed configuration where the at least two mud mat parts are unfolded and each carrier surface defines a single plane, and wherein the mud mat (15) includes a number of telescopic arms (24) retractable for installation and extendable for stabilising the mud mat (15) when the mud mat (15) is unfolded.
10. The inline block manifold system of claim 7, further including a flowline (20) stress concentration reducing cocoon (16) connected to each end of the carrier element (20); wherein a first flowline bend (22) connects the inlet port (5) of the 2-slot inline block (1) at the first end of the line and the flowline; and wherein a second flowline bend (22) connects the exit port of (10) of the 2-slot inline block (1) at the second end of the line and the flowline (12).
11. A hub block (2) comprising a first hub (3a) configured for connection with a branch pipe from a first well and a second hub (3b) configured for connection with a branch pipe from a second well, in line with and in an opposite direction of the first hub (3a); a flowline bore (12), extending between a flowline inlet port (5) and a flowline exit port (10), intersecting and in fluid connection with a first branch bore (23a) extending from the flowline bore (12) and to the first hub (3a) and a second branch bore (23b) extending from the flowline bore (12) and to the second hub (3b); a first valve bore (11a) extending across the first branch bore (23a); and a second valve bore (11b) extending across the second branch bore (23b).
Description
SHORT DESCRIPTION OF THE ENCLOSED DRAWINGS
[0020]
[0021]
[0022]
[0023]
[0024]
[0025]
[0026]
[0027]
[0028]
[0029]
[0030]
[0031]
[0032] The hinged mud mat 15 is secured to the flowline 14 through flowline reducing cocoons 16 at each side, interconnected by a carrier pipe 20. The flowline reducing cocoons 16 are in-line with the carrier pipe 20 while the flowline exits the carrier pipe 20 through two flowline manifold bends 22, connecting the flow line 14 with the manifolds 1. The carrier pipe 20 maintains the axial loads in the flow line 14 and the reducing cocoons 16 distributes the loads on the flowline 14 and prevent stress concentrations and buckling.
[0033] Temporary mud mat locking pins 21 are provided to hold the two, hinged mud mat halves of the mud mat 15 in a folded position prior to installation on a seabed. A clamp connector 13 (six in total) is located on each integrated hub 3 to provide a connection for each jumper. During installation a number of telescopic arms 24 perpendicular to the flowline axis are in a retracted position between the upright mud mat elements. When the mud mat is unfolded, the telescopic arms 24 are extended forming a locking mechanism maintaining the mud mat in an unfolded position on the seabed.
[0034] A transponder bucket 17 is installed allowing position measurement during and after installation. A ROV remove the instrument after final measurement.
[0035] A metrology receptacle is secured to the carrier pipe 20 to be used for jumper metrology.
[0036] The flowline bores of the three 2-slot inline blocks 1 are inline and produce a straight flow through the manifold, at least when the valves are closed. The flows from the jumper ports are channeled through the centre of the manifold 1 and further to the flowline 14. Accordingly, the manifolds provide a favourable flow pattern and a low pressure drop across the manifolds. The two flows from the opposing branch ports 4 meet inside the flowline bore of the manifold 1.
[0037]
[0038]
[0039]
[0040] The configuration of the manifolds in line with each other, and with the jumpers entering the manifold from two opposite directions into the flow line, enables a plurality of manifolds to be installed in-line without any practical limit in the number of manifolds. The distance between each manifold is only limited by the size of the clamp connectors, and the allowable length of each section on the pipe laying ship. This results in a compact and flexible manifold configuration.
TABLE-US-00001 1 2-slot inline block manifold 2 Hub block 3a First integrated hub 3b Second integrated hub 4 Jumper port 5 Flowline inlet port 6 Flowline valve spacer pipe 7 Valve 8 Torque tool bucket 9 Flowline alignment geometry 10 Exit port 11a First valve bore 11b Second valve bore 12 Flowline bore 13 Clamp connector 14 Flow line 15 Hinged mud mat 16 Reducing cocoon 17 Transponder bucket 18 Metrology receptacle 20 Carrier pipe/carrier element 21 Temporary mudmat locking pins 22 Flowline valve bend 23a First branch bore 23b Second branch bore 24 Telescopic arms