CONFIGURABLE BLOCK MANIFOLD SYSTEM
20220373120 · 2022-11-24
Inventors
Cpc classification
E21B43/017
FIXED CONSTRUCTIONS
E21B33/035
FIXED CONSTRUCTIONS
F16L41/03
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F16L41/03
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
E21B43/017
FIXED CONSTRUCTIONS
Abstract
The present invention relates to a header configuration block for a hydrocarbon well comprising a header configuration block housing having a plurality of transversal bores each in fluid connec-tion with a discrete longitudinal main bore. At least one cut off valve is located in each transversal bore. A first connecting surface is parallel to and similar with a second connecting surface, whereby the first connecting surface and the second connecting surface are adapted to be connected to at least one further similar header configuration block. The invention also relates to a manifold branch configura-tion block and a well fluid manifold assembled of header configuration blocks, branch configuration blocks and flow line configuration blocks.
Claims
1-15. (canceled)
16. A manifold header configuration block comprising a header configuration block housing having a plurality of transversal main bores each in fluid connection with a discrete longitudinal main bore; at least one cut off valve in each transversal main bore; a connection surface with fluid ports for the transversal main bores adapted for coupling the transversal main bores to a well; wherein the longitudinal main bores extend through the header configuration block housing, forming a first flow port and a second flow port aligned with the first flow port for each longitudinal main bore; a first, plane, connecting surface surrounding the first flow ports; a second, plane, connecting surface surrounding the second flow ports; wherein the first connecting surface is parallel to and similar with the second connecting surface, and wherein the flow ports of the longitudinal main bores are located symmetrically about an axis of symmetry, whereby the first connecting surface and the second connecting surface are adapted to be connected to at least one further similar header configuration block.
17. The manifold header configuration block of claim 16, wherein the housing is formed as one unitary metal block, whereby the longitudinal main bores and the transversal main bores terminating in the longitudinal main bore form T-shaped bores inside the unitary metal block.
18. The manifold header configuration block of claim 16 further including connection bolt bores surrounding the longitudinal main bores.
19. The manifold header configuration block of claim 16 including cut off valves in the transversal main bores.
20. The manifold header configuration block of claim 16 wherein the header longitudinal main bores are uniform and have an internal diameter in the range from 8-16″ and the transversal main bores have an internal diameter in the range from 5-8″.
21. A manifold branch configuration block comprising a connector hub with at least one flow port, a manifold header configuration block connecting surface with a plurality of flow ports facing away from the connector hub, and a plurality of fluid bores connecting the at least one flow port of the connector hub and the plurality of flow ports.
22. The manifold branch configuration block of claim 21, wherein at least two of the plurality of fluid bores join and form a single bore exiting the connector hub.
23. The manifold branch configuration block of claim 22, further including a branch isolation valve in in a single bore exiting the connector hub providing a double failsafe barrier.
24. The manifold branch configuration block of claim 21, wherein the connector hub includes a service line port in addition to the at least one flow port of the connector hub.
25. The manifold branch configuration block of claim 21, wherein manifold header configuration block connecting surface is plane and includes sealing ring recesses and sealing rings surrounding each of the plurality of flow ports.
26. The manifold branch configuration block of claim 21, wherein the connector hub is adapted to hold a ROV-tool actuated clamp connector, connecting the branch configuration block and the header configuration block to a jumper from a well.
27. The manifold branch configuration block of claim 21, including a main monolithic metal housing, and wherein the connector hub and the header configuration block connecting surface is a part of the housing.
28. A hydrocarbon well fluid manifold assembled of a plurality of manifold header configuration blocks, including at least a first and a second manifold header configuration block, each comprising a header configuration block housing having a plurality of transversal bores including transversal main bores and at least one each terminating in a discrete longitudinal bore perpendicular to and in fluid connection with the transversal bores; at least one cut off valve in each transversal bore; a branch configuration block with a connector hub with at least one flow port with a connection adapted for coupling the transversal bores to a well, a manifold header configuration block connecting surface, and a plurality of fluid bores connecting the at least one flow port of the connector hub and the plurality of fluid ports of the transversal bores; wherein each longitudinal bore extending through the header configuration block housing form a first flow port and a second flow port aligned with the first flow port; a first, plane, connecting surface surrounding the first flow ports; a second, plane, connecting surface surrounding the second flow ports; wherein the first connecting surface is parallel to and similar with the second connecting surface, and wherein the flow ports of the longitudinal bores are located symmetrically about an axis of symmetry; wherein the first, plane, connecting surface of at least the first manifold header configuration block is in sealing contact with the first, plane, connecting surface of the second manifold header configuration block; and wherein a flowline configuration block is in sealing contact with a second, plane, connecting surface of the first manifold header configuration block.
29. The hydrocarbon well fluid manifold of claim 28, wherein the plurality of hydrocarbon manifold header configuration blocks are identical and staggered.
30. The hydrocarbon well fluid manifold of claim 28, wherein flowline configuration block includes a main bore sealing blanking surface.
Description
BRIEF DESCRIPTION OF THE DRAWINGS:
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DETAILED DESCRIPTION
[0046] Detailed description of embodiments of the invention with reference to the drawings:
[0047] Similar reference numerals refer to similar parts throughout this detailed description
[0048] The figures show the same embodiment of a header configuration block of the invention, and the different figures are disclosed to show different aspects of this block.
[0049] The figures show two embodiments of branch configuration blocks. One embodiment includes a separate cut-off valve to provide a double barrier if required. The other embodiment omits the additional cut-off valve. The configurable manifold blocks may include different internal ducting.
[0050] The figures show four embodiments of flowline configuration blocks. Two embodiment includes connection hubs for all the bores. A third embodiment includes a blinding portion forming a permanent barrier for one of the bores. A fourth embodiment includes both a blinding portion forming a permanent barrier for one of the bores and a cut-off valve for a service line.
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[0052] The header configuration block 1 is formed as a header configuration block housing 9 forming a standard block with standardised dimensions and connections, enabling the assembly of a modular system. The header configuration block housing 9 is formed as a rectangular block (with one bevelled side) with right angled sides and includes a header first main bore 3a being a longitudinal first main bore, a header second main bore 3b being a longitudinal second main bore and a header main service bore 3c being a longitudinal service bore. A header first branch bore or transversal main bore 6a first cut off valve 2a, a header second branch bore or second transversal main bore 6b second cut off valve 2b, and a header service branch bore 6c cut off valve 2c are located on top of the configuration block housing 9. A tool connector/torque tool bucket 20 on each valve includes a connection for a tool on an ROV to actuate each valve independently. The valves are typically gate valves. The header configuration block housing 9 includes five module connection holes 4 for installation of suitable bolts or other mechanical fasteners to connect the header configuration block to other similar header configuration blocks or to a flowline configuration block.
[0053] The header first main bore 3a, the header second main bore 3b and the header service bore 3c form ports at each side of the header configuration block housing 9. The ports are surrounded by metal seals in recesses 18, and are located symmetrically about an axis of symmetry allowing the ports to align with ports of a similar housing at both sides. The symmetrical configuration enables two identical header configuration blocks to the assembled in opposite directions or staggered with branch configuration block connecting surfaces 12 in opposite directions. The header configuration blocks may be arranged alternating, each providing bore openings to opposite sides of the final manifold block assembly. This alternating or staggered arrangement ensure sufficient space between the hubs arranged on header configuration blocks having the same direction i related to the manifold block assembly.
[0054] One cut off valve 2a-2c for each main branch bore 6a-6b or service bore 6c, provides a single barrier system without any redundant valve and torque tool bucket assemblies. The header configuration block housing 9 includes a branch port for each of a header first main branch bore 6a, a header second main branch bore 6b and a header service branch bore 6c, also surrounded by a metal seal in a recess 18 for each bore.
[0055] A branch configuration block connecting surface 12 is plane and surrounds the branch ports. Four branch configuration block connection holes 21 are provided to facilitate attachment of the branch configuration block.
[0056]
[0057] A branch configuration block distributes the production and includes a services line. A branch jumper connection hub is an integrated part of the branch block. A service line can either be connected in to the production flow or be routed to a dual jumper via the dual hub to a XT.
[0058] The branch configuration block includes a header connecting surface 7 with ports corresponding to the ports for the header first main branch bore 6a, the header second main branch bore 6b and the header service branch bore 6c. The header connecting surface 7 conforms with the branch configuration block connecting surface 12 of the header configuration block. Four header connection holes 23, one at each corner, conforming to the four branch configuration block connection holes 21 are included for attachment purposes in combination with mechanical fasteners. A connection hub 24 for a branch jumper provides a means of attachment to a clamp connector. The connection hub 24 includes both a port for a service line connection 8 and a port for a production line jumper connection 10. The branch jumper connection hub is an integrated part of the branch block. The port for a production line connection 10 leads to a branch to provide bores to the header first main branch bore 6a, and the header second main branch bore 6b. The branch configuration block 5 is formed as one single block of metal. In
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[0060] The flowline configuration blocks 25 include a header configuration connecting surface 26 with ports aligning with the ports of the header connecting surface. The embodiments on
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[0062] The
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[0065] A flowline configuration block 25 is attached to each of the two header bore ends.
[0066] The alternate positioning of the header configuration blocks face in opposite directions and away from each other provide room for the connections.
[0067] In
[0068] The manifold can be used both in an injection manifold and a production manifold, and the ports have therefore not been defined as inlet ports or outlet ports. In a production manifold, will however the branch port be an inlet port, and the produced fluid will exit through a header port. In an injection manifold, will however, the branch port be an exit port.
[0069] The header configuration block housings 9 include isolation valve cavities 28 for the isolation valves. The isolation valves are included to enable isolation of each hydrocarbon well connected to the manifold individually. The branch bores 6a-6c extends from the branch port, past the valve cavities 8 and into the header bores 3a-3c. The branch bores 6a-6c and the header bores 3a-3c form a T. The branch connection hub is formed in the extension of the branch bores 6a-6c. The housing is a one-piece housing formed as a unitary solid steel block that will be heat treated according to required specifications.
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[0071] The longitudinal main bore/header main bore typically has an internal diameter in the range from 8-16» and the transversal bore/branch holes have an internal diameter in the range from 5-8″. The header main bore typically has a diameter corresponding to the inner diameter of a flowline to be connected to the manifold to allow pigging.
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[0074] Alternatively could the valves include independent or common, permanently installed powered actuators.
[0075] Throughout this specification are the header configuration blocks 1 shown with three bores. The header configuration blocks could however be made with more than three bores and up to six bores seem realistic. More than six bores will make the modules unpractically large, and it will might be cumbersome and tight to fit a high number of valves. The branch configuration blocks will have a corresponding number of bores.
TABLE-US-00001 1 Header configuration block/Manifold module 2 Isolation valve stem extension 2a Header first branch bore valve 2b Header second branch bore valve 2c Header service branch bore valve 3a Header first main bore/main first longitudinal main bore 3b Header second main bore/main second longitudinal main bore 3c Header main service bore/longitudinal service bore 4 Module connection hole 5 Branch configuration block 6a Header first main branch bore/first transversal bore 6b Header second main branch bore/second transversal bore 6c Header service branch bore/transversal service bore 7 Header connecting surface 8 Service line connection in a dual bore configuration 9 Header configuration block housing 10 Production line connection in a dual bore configuration 12 Branch configuration block connecting surface 13 First connecting surface 14 Second connecting surface 15 Header isolation valve 16 Clamp connector 17 Module interface 18 Metal seal in metal seal recess 20 Tool connector 21 Branch configuration block connection holes 23 Header connection holes. 24 Connection hub 25 Flowline configuration block 27 Blanking surface 28 Isolation valve cavities