CONNECTOR FOR PIPELINES AND METHOD TO CONNECT THE CONNECTOR TO A PIPELINE
20220010900 ยท 2022-01-13
Inventors
- Gianluca Toso (San Donato Milanese, IT)
- Riccardo Mattarucco (San Donato Milanese, IT)
- Sebastiano Guadin (San Donato Milanese, IT)
Cpc classification
F16L2201/30
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16L23/167
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16L37/002
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16L58/08
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16L23/024
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16L23/036
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16L19/0218
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16L23/20
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16L1/26
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F16L23/16
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16L23/024
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16L23/036
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16L23/20
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16L58/08
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A connector for a pipeline, in particular for conveying hydrocarbons, extends along a longitudinal axis and has a gripping portion configured to be fitted around and clamped to the outer face; a sleeve portion, which is mounted in sliding manner to the gripping portion; a metal front gasket configured to be placed between the front end face and a face of the sleeve portion; and linear actuators connected with the gripping portion and the sleeve portion to axially compress the metal front gasket between the front end face of the pipeline and the face of the sleeve portion.
Claims
1-21: (canceled)
22: A pipeline connector comprising: a gripping portion configured to be fitted around and clamped to an outer face of a pipeline; a sleeve portion slidably mounted to the gripping portion and having a face facing a front end face of the pipeline when the gripping portion is fitted around the pipeline; a metal front gasket configured to be placed between the front end face of the pipeline and the face of the sleeve portion and comprising a face configured to form a spherical-shaped coupling with the face of the sleeve portion; and a linear actuator connected with the gripping portion and the sleeve portion and configured to axially compress the metal front gasket between the front end face of the pipeline and the face of the sleeve portion.
23: The pipeline connector of claim 22, wherein the metal front gasket comprises a front face configured to be placed in contact with the front end face of the pipeline.
24: The pipeline connector of claim 23, wherein the front face of the metal front gasket comprises, in succession, two flat surfaces that form a blunt angle between them.
25: The pipeline connector of claim 22, wherein the metal front gasket comprises a cylindrical inner face having a diameter no greater than an inner diameter of the pipeline.
26: The pipeline connector of claim 22, wherein the metal front gasket is made from a material selected from the group consisting of: carbon steel, and a corrosion-resistant alloy including Inconel, and Nickel with an anti-corrosion coating.
27: The pipeline connector of claim 22, further comprising a gripping mechanism and a support mechanism configured to respectively clamp the gripping portion to the pipeline and to apply radial forces directed towards a longitudinal axis to the outer face of the pipeline proximal the front end face of the pipeline.
28: The pipeline connector of claim 27, wherein the gripping mechanism and the support mechanism are configured to be operated by a plurality of linear actuators.
29: The pipeline connector of claim 28, wherein each linear actuator comprises an at least partially threaded tie rod and a nut configured to by operated by a hydraulically controlled device.
30: The pipeline connector of claim 27, wherein the gripping mechanism and the support mechanism are independently controlled by respective linear actuators.
31: The pipeline connector of claim 27, wherein the support mechanism comprises: a plurality of annular sections slidably mountable on the sleeve portion in the radial direction, a ring slidably mountable in the axial direction with respect to the sleeve portion and with respect to the annular sections along a respective inclined face of each annular sector, and a thrust ring movable in the axial direction and connected to the linear actuators.
32: The pipeline connector of claim 31, wherein the support mechanism comprises a radial gasket arranged between the ring and the thrust ring and configured to expand radially as a result of a compression between the ring and the thrust ring.
33: The pipeline connector of claim 22, further defining a channel extending through the sleeve portion from an annular space proximal the metal front gasket to an area outside of the connector.
34: The pipeline connector of claim 22, further comprising a shield having a cylindrical shape attached to the sleeve portion and configured to cover a portion of the pipeline and the metal front gasket.
35: The pipeline connector of claim 34, wherein the shield comprises a radial gasket configured to extend between a seat in the shield and an inner face of the pipeline.
36: The pipeline connector of claim 35, wherein the radial gasket is configured to expand in a radial direction.
37: A method of connecting a pipeline, the method comprising: fitting a gripping portion of a connector around an outer face of a free end of a pipeline extending along a longitudinal axis; clamping the gripping portion on the outer face of the pipeline; and compressing, in a direction parallel to the longitudinal axis, a metal front gasket between a front end face of the pipeline and a face of a sleeve portion of the connector that is slidably mounted, parallel to the longitudinal axis, to the gripping portion, wherein the metal front gasket comprises a face configured to form a spherical-shaped coupling with the face of the sleeve portion.
38: The method of claim 37, wherein the metal front gasket comprises a front face configured to be placed in contact with the front end face of the pipeline and further comprising penetrating the metal front gasket into the pipeline along the front end face of the pipeline.
39: The method of claim 37, wherein the metal front gasket comprises a cylindrical inner face having a diameter no greater than a diameter of the pipeline.
40: The method of claim 37, wherein the metal front gasket is made of a material selected from the group consisting of: carbon steel, and a corrosion-resistant alloy including Inconel, and Nickel with an anti-corrosion coating.
41: The method of claim 37, further comprising applying a radial force directed towards the longitudinal axis along an outer face of the pipeline proximal to the front end face.
42: The method of claim 41, wherein clamping the gripping portion on the outer face of the pipeline comprises compressing the metal front gasket and simultaneously applying the radial force.
43: The method of claim 41, wherein applying the radial force occurs independent of clamping the gripping portion on the outer face of the pipeline and compressing the metal front gasket.
44: The method of claim 37, further comprising detecting a presence of fluid in an annular chamber arranged around the metal front gasket.
Description
BRIEF DESCRIPTION OF THE FIGURES
[0039] Further characteristics and advantages of this disclosure will become clear from the following description of non-limiting embodiments thereof, with reference to the figures in the accompanying drawings, wherein:
[0040]
[0041]
[0042]
[0043]
[0044]
[0045]
[0046]
[0047]
DETAILED DESCRIPTION
[0048] In
[0049] With reference to
[0050] The pipeline 3 is cylindrical with a substantially circular transverse section and has an inner face 4, an outer face 5, and a front end face 6 extending from the inner face 4 to the outer face 5.
[0051] The pipeline 3 is made of steel and has a coating R that defines the inner face 4 and is made of metal alloys designed to withstand corrosive agents and joined to the wall with a metallurgical bond (cladding) or a mechanical bond (lining).
[0052] The connector 1 comprises a gripping portion 7 configured to fit around the outer face 5 of the pipeline 3; a sleeve portion 8, which is mounted in sliding manner with respect to the gripping portion 7, and has substantially the same inner diameter as the pipeline 3 and a face 9 facing the front end face 6, when the gripping portion 7 is fitted around the pipeline 2; and a metal front gasket 10 configured to be placed and compressed between the front end face 6 and the face 9 of the sleeve portion 8.
[0053] The gripping portion 7 comprises a gripping mechanism 11 configured to clamp the pipeline 3 and is connected to a guiding device 12, which is placed on the opposite side of the sleeve portion 8 and has the function of guiding the connector 1 along the pipeline 3 and centring the connector 1 on the pipeline 3.
[0054] The gripping portion 7 comprises a tubular frame 13, which is fixed to the guiding device 12; and the gripping mechanism 11, which is housed inside the tubular frame 13. In the case shown, the gripping mechanism 11 comprises a plurality of jaws 14, which are radially and axially guided to be selectively clamped to the pipeline 3. Each jaw 14 has, on the opposite side to the longitudinal axis A1, inclined faces alternated with annular faces.
[0055] The gripping mechanism 11 also comprises a tubular body 15, which has a succession of inclined faces and annular faces along the inner part, and is mounted in sliding manner along the tubular frame 13 so that the sliding of the tubular body 15 towards the sleeve portion 8 determines the tightening of the jaws 14 around the pipeline 3.
[0056] The sleeve portion 8 comprises a sleeve 16 with structural and dimensional features, at least as far as the internal diameter is concerned, substantially equal to that of the pipeline 3; the flange 2; and an annular body 17, which is coupled in an axially sliding way with the tubular frame 13.
[0057] The connector 1 comprises a plurality of linear actuators 18 uniformly distributed around the longitudinal axis A1 which are engaged with the gripping portion 7 and the sleeve portion 8 to bring the gripping portion 7 and the sleeve portion 8 axially closer together so as to compress the metal front gasket 10 between the front end face 6 of the pipeline 3 and the face 9 of the sleeve 10. This compression action of the metal front gasket 10 implies that the gripping portion 7 is clamped to the pipeline 2.
[0058] In the case shown, each linear actuator 18 comprises a tie rod 19, which is supported, so it can rotate, by the annular body 17 of the sleeve portion 8, and is engaged with the tubular body 15 of the gripping portion 7. Each linear actuator 18 comprises a respective nut 20, which is placed so it abuts against the annular body 17 and is engaged on one end of the tie rod 19, which is, at least in part, threaded. The nuts are driven in rotation by respective hydraulic wrenches or jacks configured to turn nuts. The driving of the linear actuators 18 determines the movement of the tubular body 15 towards the sleeve portion 8, the radial movement of the jaws 15 towards the pipeline 3 (that determines the clamping of the gripping portion on the pipeline 3), and the movement of the jaws 15 towards the sleeve portion 8. In the last step of the movement, the jaws 15 push the sleeve portion 8 towards the pipe 3, and the metal front seal 10 is compressed between the front end face 6 of the pipeline 3 and the face 9 of the sleeve portion 8.
[0059] Each jaw 14 is subjected to a traction force in the axial direction towards the guiding device 12 by a corresponding elastic mechanism 21 mounted on the tubular frame 13.
[0060] In practice, the linear actuators 18 determine both the clamping of the connector to the pipeline 3 and the compression of the metal front gasket 10.
[0061] With reference to
[0062]
[0063] With reference to
[0064] The connector 1 comprises a plurality of linear actuators 27 uniformly distributed around the longitudinal axis A1 to operate the support mechanism 22. In the case shown, each linear actuator 27 comprises a tie rod 28, which is supported, so it can rotate, by the annular body 17 and is gripped by the thrust ring 26. Each linear actuator 27 comprises a corresponding nut 29, which is arranged so it abuts against the annular body 17 and is engaged with the tie rod 28 to determine the traction of the tie rod 28.
[0065] The mechanism 22 comprises a radial gasket 30, which is arranged in a housing delimited by the thrust ring 26, the ring 25, and the pipeline 3, and is expanded in a radial direction as a result of the compression between the thrust ring 26 and the ring 25.
[0066] The housing of annular sections 24 and the ring 25 is in communication with the outside of the connector 1 through a channel 31 in the annular body 17.
[0067] With reference to
[0068] In this illustrated embodiment, the front face 32 is formed from two flat portions that follow one another in a radial direction and form a blunt angle between them.
[0069] The face 33 of the metal front gasket 10 and the face 9 of the sleeve portion 8 form a spherical coupling.
[0070] The metal front gasket 10 is made of one of the following materials: carbon steel, Inconel, Nickel with anti-corrosion coating. The choice of the material of the metal front gasket 10 is determined by the material of the pipeline 3 and the material to make the connector 1.
[0071] The hardness of the metal front gasket 10 can be greater or less than that of the pipeline 3 so that, during the compression of the metal front gasket 10 on the end face of the pipeline 3, there is always a local plasticization of the pipeline 3 or of the metal front gasket 10.
[0072] In use, the connector 1 is fitted around the end of a pipeline 3 until the metal front gasket 10 abuts against the front end face 6 of the pipeline 3 as shown in
[0073] Then the linear actuators 18 are activated to clamp the connector 1 to the pipeline 3 by the gripping mechanism 11; other linear actuators 28 are activated to check the circularity of the free end of the pipeline 3 by the support mechanism 22; and the first linear actuators 18 are activated again to compress the front metal gasket 10 against the front end face 6 of the pipeline 3 until the front metal gasket 10 slightly penetrates into the front end face 6 of the pipeline 3 so as to locally, plastically deform the latter.
[0074] The plastic deformation can affect either the metal front gasket 10 or the pipeline 2 and depends on the respective hardness.
[0075] The tightening force applied by the linear actuators 18 and 27 can be modulated according to the maximum supply pressure of the corresponding hydraulic wrenches 20 and 29.
[0076] During the tightening step, the metal front gasket 10 adapts its position by virtue of the spherical coupling between the metal front gasket 10 and the annular body 10.
[0077] Once tightened, the pipeline 3 is filled with a pressurized fluid to test the tightness of the metal front gasket 10. If the pressurized fluid leaks through the metal front gasket 10, the liquid seeps through and is conveyed via the channel 31 and can be detected at the outlet of the channel 31 along the connector 1.
[0078] In accordance with the variant shown in
[0079] In accordance with the variant in
[0080] With reference to the variant in
[0081] The present disclosure extends to additional variants which are not explicitly described and which fall within the scope of protection of the claims. That is, the present disclosure also covers embodiments that are not described in the detailed description above as well as equivalent embodiments that are part of the scope of protection set forth in the claims. Accordingly, various changes and modifications to the presently disclosed embodiments will be apparent to those skilled in the art.