The present disclosure regards a seal ring for use in conduit connections, pressure vessels or the like.
In subsea pressure piping and equipment systems several methods exist for providing sufficient sealing for their conduit connections.
When connecting adjacent sections of fluid flow conduits or vessels, seal rings are typically interposed at the interface of adjacent connecting flanged conduits or vessel portions which are then bolted or clamped together. The seal ring is typically metallic, the seal being affected by elastic or plastic deformation of a sealing surface of the seal ring against sealing portions of the ranged portions.
These systems are intended to resist leakage in conduit connections from internal pressures, external pressures or both; bi-directional pressure. Typically, these annular sealing systems are inserted into pre-machined tapered grooves of which the conduit sealing function is accomplished as a combination of geometry, smooth surface finish and high contact stress between annular seal rings and conduit grooves.
Annular sealing systems as described above can be divided into two different sealing principles:
Load Controlled Seals, Often Called Gaskets
The ring is permanently deformed due to high forces applied to the top and bottom of the ring transferred via the seal groove contact faces. The gasket material is softer than the ring groove material. This leads to a reliable metal to metal barrier, provided the force on the gasket is high enough to achieve the required contact pressure to seal for the fluid in question. However these seals have very little spring back and the sealing ability is hence quickly lost under separating loads. The load controlled gaskets are not suitable under dynamic loads because they allow movement between the mating parts.
Deformation Controlled Metal Seals
The deformation-controlled seals have their contact force with the seats defined by the given displacement of the seats, radially, axially or combined, and the stiffness of the seal defined by its geometry and material properties. The obtained seal contact force during the assembly of the connection under normal design conditions is not affected by the loads transmitted through the connection. Such seals are also often denoted “non-load bearing seals”.
The geometry of such annular seals is of critical importance, as they are designed to provide sufficient contact force between the conduit seal groove and the annular seal to accomplish a reliable metal to metal seal. However, some annular seal designs, often referred to as “self-energized” or “pressure assisted” seals, make use of a specific annular seal geometry and the fluid or gas pressure from inside the conduit, the externally or both, from which the pressure(s) enhances the conduit connection's sealing capabilities.
A prior art for such a non-load bearing self-energized annular seal is exemplified by US20010045709A1, which demonstrates an H shaped seal in a groove like the one used in this disclosure, formed by a conduit joint. The seal consists of two pairs of seal lips connected through a web. The inner sealing portion, outer sealing portion and web are all made integrally from one homogenous material.
Current seal designs fail to provide sufficient bi-directional sealing in conduit joints, should there be pressure imbalance either internally or externally, where either an increased pressure from one side or the other may create a pressure breach either radially inside or outside the conduit joint, compromising the system's overall sealing capabilities.
The object of the present disclosure is to provide a non-load bearing self-energized metal to metal annular seal ring assembly for conduit connections that provides a barrier against leakage from both internal pressures, external pressures or combined, intended for use in, but not limited to, subsea environments.
Said objects are achieved in a conduit connector and seal ring as defined in the appended claims.
Devices of the present disclosure will require less bolt/clamp force to energize the annular sealing system during assembly than prior art. The annular sealing system comprising of at least two individual annular portions designed as a system, and which under certain conditions the annular portions will work independently and under other conditions will work as one seal with interacting portions.
Certain features and functions of the present disclosure will be described with reference to the following appended figures in which:
The annular seal ring consists of at least two independent annular sealing portions which are manufactured independently and joined together to a system prior to assembly. A possible assembly method is to shrink the inner annular seal portion 3a relative to the outer annular seal portion 3b.
When the seal ring is mounted into the conduit connector, the portions 3a, b become separated by the wedging action provided by tapered sidewalls 5a, b and act as independent sealing portions under normal load-conditions, as shown in
If the internal fluid pressure in the connector is substantially higher than the external pressure, the internal pressure will only affect the inner annular portion 3a. As the seal ring 3a, b is in two-part form the forces exerted on the inner annular portion 3a will not be transferred to the outer annular portion 3b.
Conversely, if the external fluid pressure in the connector is substantially higher than the internal pressure, the external pressure will only affect the outer annular portion 3b. As the seal ring 3a, b is in two-part form the forces exerted on the external annular portion 3b will not be transferred to the outer annular portion 3a.
The inner annular portion 3a and the outer annular portion 3b may be produced from different materials such as different metals or metal alloys, different polymers or combinations of the above. The use of different materials in the annular portions will give different properties and behavior when exposed to pressure and temperature to accommodate the different conditions on the inside and the outside of the seal ring.
Alternatively, the rib 10 may be on the outer sealing portion 3b and the groove 11 may be on the inner sealing portion 3a as illustrated in
The expression ‘conduit connector’, as used in this description, is not limited to mean only connectors connecting tubular elements. In addition the seal ring may find applications wherever two bodies are to be joined through a sealed connection, such as connecting different parts of a pressure vessel.
Number | Date | Country | Kind |
---|---|---|---|
20200110 | Jan 2020 | NO | national |
Filing Document | Filing Date | Country | Kind |
---|---|---|---|
PCT/NO2021/050018 | 1/25/2021 | WO |
Publishing Document | Publishing Date | Country | Kind |
---|---|---|---|
WO2021/154085 | 8/5/2021 | WO | A |
Number | Name | Date | Kind |
---|---|---|---|
1821866 | Wilson | Sep 1931 | A |
1873855 | Wilson | Aug 1932 | A |
3215442 | Papenguth | Nov 1965 | A |
5570911 | Galle | Nov 1996 | A |
20010045709 | Stobbart | Nov 2001 | A1 |
20050242519 | Koleilat | Nov 2005 | A1 |
20110266797 | Stobbart | Nov 2011 | A1 |
20110316239 | Holliday | Dec 2011 | A1 |
20120193874 | Melancon | Aug 2012 | A1 |
20150176744 | Glassman | Jun 2015 | A1 |
20160186905 | Askestad | Jun 2016 | A1 |
20190301609 | Schneider | Oct 2019 | A1 |
20220221057 | Mckay | Jul 2022 | A1 |
Number | Date | Country |
---|---|---|
2552698 | Feb 2019 | GB |
9318331 | Sep 1993 | WO |
Entry |
---|
International Search Report and Written Opinion of the International Searching Authority from the European Patent Office, in PCT/NO2021/050018 dated Apr. 13, 2021, which is an international application corresponding to this U.S. application. |
Norwegian Search Report from the Norwegian Patent Office, in Patent Application No. 20200110 dated Aug. 28, 2020, which is a foreign counterpart application corresponding to this U.S. Patent Application, to which this application claims priority. |
Number | Date | Country | |
---|---|---|---|
20230043216 A1 | Feb 2023 | US |