SEAL SYSTEM AND METHOD
A system includes a bridge seal assembly configured to form a seal within mineral extraction equipment. The bridge seal assembly includes an annular bridge seal having an accordion-shaped body portion with a plurality of folded portions. Each of the plurality of folded portions extends circumferentially about the annular bridge seal, and the plurality of folded portions are configured to enable the annular bridge seal to expand and contract with the mineral extraction equipment to maintain the seal. The bridge seal assembly also includes a reaction ring and one or more wedge rings configured to be inserted between the annular bridge seal and the reaction ring to actuate the annular bridge seal.
This application is a continuation of U.S. application Ser. No. 14/474,498, entitled “SEAL DELIVERY SYSTEM,” filed Sep. 2, 2014, which is hereby incorporated by reference in its entirety for all purposes.
BACKGROUNDThis section is intended to introduce the reader to various aspects of art that may be related to various aspects of the present invention, which are described and/or claimed below. This discussion is believed to be helpful in providing the reader with background information to facilitate a better understanding of the various aspects of the present invention. Accordingly, it should be understood that these statements are to be read in this light, and not as admissions of prior art.
Oil and natural gas is extracted from a variety of locations including subsea locations. In subsea environments, wells are drilled into the ocean floor enabling oil and natural gas to be extracted to the surface using a variety of pipes and connections. However, the high-pressures and cold temperatures in a subsea environment may facilitate formation of hydrates that can slow or block the flow of natural gas and oil. Accordingly, chemicals may be pumped into the pipes to reduce hydrate formation. Unfortunately, seals that enable chemical injection may wear allowing natural gas and oil to escape.
Various features, aspects, and advantages of the present invention will become better understood when the following detailed description is read with reference to the accompanying figures in which like characters represent like parts throughout the figures, wherein:
One or more specific embodiments of the present invention will be described below. These described embodiments are only exemplary of the present invention. Additionally, in an effort to provide a concise description of these exemplary embodiments, all features of an actual implementation may not be described in the specification. It should be appreciated that in the development of any such actual implementation, as in any engineering or design project, numerous implementation-specific decisions must be made to achieve the developers' specific goals, such as compliance with system-related and business-related constraints, which may vary from one implementation to another. Moreover, it should be appreciated that such a development effort might be complex and time consuming, but would nevertheless be a routine undertaking of design, fabrication, and manufacture for those of ordinary skill having the benefit of this disclosure.
When introducing elements of various embodiments of the present invention, the articles “a,” “an,” “the,” and “said” are intended to mean that there are one or more of the elements. The terms “comprising,” “including,” and “having” are intended to be inclusive and mean that there may be additional elements other than the listed elements. Moreover, the use of “top,” “bottom,” “above,” “below,” and variations of these terms is made for convenience, but does not require any particular orientation of the components.
The disclosed embodiments include a seal delivery system that enables sealing of a bore in a subsea environment without retrieving subsea equipment from the ocean floor. In operation, the seal delivery system delivers and actuates a bridge seal assembly in a bore to seal an interface between two components of a subsea mineral extraction system. The seal delivery system includes a mandrel that delivers the seal tool to a target bore within the subsea mineral extraction system. The seal delivery system may include a gear system that rotates the seal tool into alignment with the target bore and a piston assembly that actuates the bridge seal assembly. Specifically, the seal tool may include a piston assembly that actuates to form a seal with the bridge seal assembly.
In order to control the flow of natural resources from the Christmas trees 20, the manifold 22 may include one or more valve block assemblies 28 (e.g., 1, 2, 3, 4, 5, or more). For example, there may be one valve block assembly 28 for each well 12 that couples to the manifold 22. In operation, the valve block assemblies 28 enable the mineral extraction system 10 to control the flow of natural resources through the manifold 22 to the extraction point 16. The valve block assemblies 28 may also aid in the extraction of resources through the resource extraction system 10 by enabling chemical injection. For example, the valve block assembly 28 may enable chemical injection to block the formation of hydrates within the mineral extraction system 10. Hydrates may potentially form in natural gas processing when liquid water condenses trapping methane gas in a crystalline lattice structure. Hydrates typically do not form during normal extraction operations because the temperature of the natural gas is high enough to prevent condensation of water. However, if the mineral extraction system 10 shuts down then the temperature of the surrounding water may cool components in the mineral extraction system 10 allowing the formation of hydrates. In order to block the formation of hydrates either during operation or during shutdown, the mineral extraction system may inject chemicals (e.g., ethylene glycol, methanol) that slow or block hydrate formation by lowering the temperature at which water condenses. Unfortunately, seals on the valve block assembly 28 that enable chemical injection may wear or degrade over time.
As explained above, the valve block assembly 28 enables chemical injection into the mineral extraction system 10 to block or reduce the formation of hydrates. In order to inject chemicals, the valve block assembly 28 includes a chemical injection system 64. The chemical injection system 64 includes a chemical injection block 66 that couples to the valve block 50 and a chemical injection valve 68. The chemical injection system 64 receives chemicals from an external source that couples to a chemical injection bore 70 on the chemical injection block 66. In operation, the chemical injection valve 66 open and closes enabling chemicals (e.g., methanol) from the external source to pass through the chemical injection block 66 and into the valve block 50. Specifically, the chemicals pass through the interface 72 between the valve block 50 and the chemical injection block 66 where the chemicals enter a chemical injection passageway 74 in the valve block 50. As illustrated, the chemical injection bore 74 fluidly couples to the second bore 56 that carries natural resources through the manifold 22. In order to block natural resources from escaping between the chemical injection block 66 and the valve block 50, the valve block assembly 50 includes a seal 76 (e.g., annular seal) that rests within a groove 78 (e.g., annular groove) at the interface 72. Unfortunately, the seal 76 may wear, requiring maintenance of the valve block assembly 28 in a subsea environment.
To facilitate operation, the seal delivery system 100 may include multiple seals. For example, the seal delivery system 100 may include seals 214 and 216 (e.g., annular seals) that rest within grooves 218 and 220 (e.g., annular grooves) on the low-pressure cylinder 194, which form a seal between the mandrel 120 and the low-pressure cylinder 194. The seal delivery system 100 may also include seals 222 and 224 (e.g., annular seals) that rest within grooves 226 and 228 (e.g., annular grooves) on an outer surface 229 of a seal block 200. The seals 222 and 224 form a seal between the low-pressure cylinder 194 and the seal block 200. To block fluid flow from exiting the low-pressure cylinder 194 between the piston 198 and the seal block 200, the seal block 200 may include seals 230 and 232 (e.g., annular seals) that rest within grooves 234 and 236 (e.g., annular grooves). Finally, the seal delivery system 100 may include a seal 238 (e.g., annular seal) within a groove 240 (e.g., annular groove) that blocks fluid from leaking between the piston 198 and the low-pressure cylinder 194.
As illustrated, the bridge seal assembly 190 couples to the piston assembly 192 enabling the piston 198 to axially move the bridge seal assembly 190 into position. Once in position, the piston assembly 192 activates the bridge seal assembly 190 enabling the bridge seal assembly 190 to form a seal at the interface 72 between valve block 50 and the chemical injection block 66. The piston assembly 192 includes the piston 198, the head 262, and a high-pressure cylinder 266, that rests within a counterbore 268 of the piston flange 210. As illustrated, the high-pressure cylinder 266 surrounds the piston 198 forming a chamber 270. Within the chamber 270, the piston assembly 192 includes first and second annular rings 272 and 274. In operation, the annular rings 272 and 274 enable high-pressure fluid entering the high-pressure cylinder 66 to drive the high-pressure cylinder 266 in axial direction 202 and the piston 198 in direction 204. As will be explained in more detail below, as the piston 198 moves in direction 204 and the high-pressure cylinder 266 moves in axial direction 202, the piston assembly 192 compresses the bridge seal assembly 190 between the high-pressure cylinder 266 and the head 262 driving a bridge seal 276 radially outward forming a seal about the interface 72.
After passing through the axial aperture 316, the fluid 298 reaches a split 320 that divides the fluid 298 so that some of the fluid enters the chamber 270 below the annular ring 274 and some of the fluid 298 enters the chamber 270 above the annular ring 272. In other words, some of the high-pressure fluid 298 enters a chamber 320 formed between the annular ring 274 and the piston 198, and some of the high-pressure fluid 298 enters a chamber 322 formed between the annular ring 272 and the high-pressure cylinder 266. As the high-pressure fluid 298 enters these chambers 320 and 322, the high-pressure fluid 298 moves the annular rings 272 and 274 and by extension the piston 198 and the high-pressure cylinder 266. For example, the annular rings 272 and 274 include respective connector rings 324 and 326 that respectively couple the annular rings 272, 274 to the piston 198 and the high-pressure cylinder 266. Accordingly, during operation, the high-pressure fluid 298 entering the chambers 320 and 322 is able to drive the piston 198 in axial direction 204 and the high-pressure cylinder 266 in direction 202. As the piston 198 moves in direction 204 and the high-pressure cylinder 266 moves in axial direction 202, the piston assembly 192 compresses the bridge seal assembly 190 between the high-pressure cylinder 266 and the head 262 driving a bridge seal 276 radially outward forming a seal about the interface 72.
In order maintain pressure within the chambers 320 and 322, the annular rings 272 and 274, as well as the piston 198 may include multiple seals. For example, the annular ring 272 may include seals 328 and 330 (e.g., annular seals) that rest within grooves 332 and 334 which form respective seals with the high-pressure hydraulic cylinder 266 and the piston 198. The annular ring 274 may also include seals 336 and 338 (e.g., annular seals) that rest within grooves 340 and 342 which form respective seals with the high-pressure hydraulic cylinder 266 and the piston 198. Moreover, the cylinder 266 may include a seal 344 within a groove 346, and the piston 198 may include a seal 348 (e.g., annular) within a groove 350. In operation, the seals 328 and 330 on the annular ring 272 work with the seal 344 to contain the high-pressure fluid 298 within the chamber 322. Likewise, the seals 336 and 338 on the annular ring 274 work with the seal 348 to contain the high-pressure fluid 298 within the chamber 320.
While the invention may be susceptible to various modifications and alternative forms, specific embodiments have been shown by way of example in the drawings and have been described in detail herein. However, it should be understood that the invention is not intended to be limited to the particular forms disclosed. Rather, the invention is to cover all modifications, equivalents, and alternatives falling within the spirit and scope of the invention as defined by the following appended claims.
Claims
1. A system, comprising:
- a bridge seal assembly configured to form a seal within mineral extraction equipment, comprising: an annular bridge seal comprising an accordion-shaped body portion comprising a plurality of folded portions, wherein each of the plurality of folded portions extends circumferentially about the annular bridge seal, and the plurality of folded portions are configured to enable the annular bridge seal to expand and contract with the mineral extraction equipment to maintain the seal; a reaction ring; and one or more wedge rings configured to be inserted between the annular bridge seal and the reaction ring to actuate the annular bridge seal.
2. The system of claim 1, wherein the annular bridge seal is coupled to the reaction ring via engagement between a radially-inwardly extending protrusion of the annular bridge seal and a corresponding groove of the reaction ring.
3. The system of claim 1, wherein the bridge seal assembly comprises an annular gasket positioned between radially-outwardly extending protrusions of the annular bridge seal along an axial axis of the annular bridge seal.
4. The system of claim 1, wherein the annular bridge seal comprises a first radially-outwardly extending protrusion supporting a first annular gasket and a second radially-outwardly protrusion supporting a second annular gasket.
5. The system of claim 4, wherein the first gasket is configured to contact a first component of the mineral extraction equipment and the second gasket is configured to contact a second component of the mineral extraction equipment when the annular bridge seal forms the seal across an interface between the first component and the second component.
6. The system of claim 1, comprising a piston assembly configured to support the bridge seal assembly and to drive the one or more wedge rings between the annular bridge seal and the reaction ring to actuate the annular bridge seal.
7. The system of claim 6, wherein the piston assembly comprises:
- a piston;
- a head portion coupled to the piston; and
- a first cylinder circumferentially surrounding a portion of the piston, wherein the head portion contacts a first wedge ring of the one or more wedge rings, and the first cylinder contacts a second wedge ring of the one or more wedge rings.
8. The system of claim 7, wherein the head portion and the first cylinder are configured to move toward one another to drive the first wedge ring and the second wedge ring between the annular bridge seal and the reaction ring to actuate the annular bridge seal.
9. A system, comprising:
- a bridge seal assembly configured to form a seal within mineral extraction equipment, comprising: an annular bridge seal; a reaction ring; and a first wedge ring and a second wedge ring configured to be inserted between the annular bridge seal and the reaction ring; and
- a piston assembly configured to support the bridge seal assembly and to drive the first wedge ring and the second wedge ring in opposite directions toward one another to actuate the annular bridge seal.
10. The system of claim 9, wherein the piston assembly is coupled to a mandrel and is configured to move from a contracted position to an extended position relative to the mandrel to deliver the bridge seal assembly to a seal region within a bore of the mineral extraction equipment.
11. The system of claim 9, wherein the piston assembly comprises:
- a piston;
- a head portion coupled to the piston; and
- a first cylinder circumferentially surrounding a portion of the piston, wherein the head portion contacts the first wedge ring and the first cylinder contacts the second wedge ring.
12. The system of claim 11, wherein the head portion is coupled to the first wedge ring via engagement between a protrusion and a corresponding groove.
13. The system of claim 11, wherein the head portion and the first cylinder are configured to move toward one another to drive the first wedge ring and the second wedge ring between the annular bridge seal and the reaction ring to actuate the annular bridge seal.
14. The system of claim 11, wherein the piston assembly comprises:
- a second cylinder circumferentially surrounding another portion of the piston; and
- a seal block, wherein the bridge seal assembly is positioned proximate to a first end of the piston and the seal block is positioned proximate to a second end of the piston, and a fluid within an annular chamber defined radially between the second cylinder and the piston is configured to block extension of the piston relative to the second cylinder.
15. The system of claim 14, wherein withdrawal of the fluid from the annular chamber enables another fluid to drive the piston to extend relative to the second cylinder to deliver the bridge seal assembly to a seal region within a bore of the mineral extraction system.
16. The system of claim 15, wherein the another fluid comprises seawater.
17. The system of claim 11, wherein the piston comprises a passageway configured to receive a fluid and to deliver the fluid to annular chambers defined radially between the piston and the first cylinder to drive the head portion and the first cylinder toward one another to actuate the annular bridge seal.
18. The system of claim 11, wherein the head portion comprises a groove that is configured to facilitate cracking along a shear joint as the piston is withdrawn from the mineral extraction equipment.
19. The system of claim 9, wherein the annular bridge seal comprises an accordion-shaped body portion comprising a plurality of folded portions that extend circumferentially about the annular bridge seal.
20. A method, comprising:
- inserting a seal tool into a component of a mineral extraction system;
- extending a piston assembly coupled to the seal tool to move a bridge seal assembly into a seal region within a bore of the component; and
- energizing the bridge seal assembly in the seal region by actuating the piston assembly.
Type: Application
Filed: Apr 21, 2017
Publication Date: Aug 10, 2017
Inventor: David H. Theiss (Houston, TX)
Application Number: 15/494,395