BALL JOINT FOR PIPE CONNECTION AND PIPE CONNECTION
20210285583 ยท 2021-09-16
Inventors
Cpc classification
F16L37/52
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16L37/20
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16L37/002
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16L37/62
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F16L37/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16L37/20
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16L37/52
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
Disclosed is a ball joint for connecting two floating pipes, the joint including an inner shell part, an outer shell part and a clamp with segments that are moveable in a common plane between an open position in which at least one of the shell parts is moveable into and out of the clamp, and a clamping position in which movement of both shell parts along the longitudinal centre lines is prevented. The ball joint is provided with a remote controlled actuator for driving movement of the segments between the open and closed position, without requiring nearby personnel to keep the shell parts aligned. Also disclosed is such a clamp and to a method of connecting such a ball joint to two pipes.
Claims
1. A ball joint (1) for a floating pipe connection, comprising: an inner shell part (20) and an outer shell part (30) which each define a respective longitudinal centre line (L1, L2) and are rotatable in relation to one another between an aligned position in which the longitudinal centre lines coincide, and a rotated position in which the longitudinal centre lines are at an angle to each other which differs from zero, wherein said outer shell part is adapted for surrounding said inner shell part in a sealing manner with the inner shell part (20) and outer shell part (30) together enclosing a passage which extends from an opening in the inner shell part at one side of the ball joint to an opening in the outer shell part at another side of the ball joint; a clamp (50) comprising two or more substantially rigid segments (60, 70, 80) moveable between a clamping position in which they clamp the inner and outer shell part such that movement of the inner shell part (20) relative to the outer shell part (30) along either longitudinal centre line is substantially prevented while allowing said rotation of the inner shell part (20) relative to outer shell part (30), and an open position in which one of said shell parts (20, 30) is moveable along its longitudinal centre line (L1, L2) into and out of the clamp (50); wherein said two or more segments are pivotably connected in series, said series comprising a first segment (60) and an different last segment (80), wherein said segments (60, 70, 80) are moveable relative to each other in a common plane (C) between the open and the clamping position; wherein the inner shell part (20) has a spherical outer surface (21) for abutting against a matching inner surface (31) of the outer shell part (30), each of said segments (60,70,80) comprising a further matching inner surface (71,81) for abutting against the spherical outer surface (21) of the inner shell part, wherein said matching inner surface and said further matching inner surfaces are adapted for allowing rotation of the inner shell part relative thereto when the segments are in the clamping position while preventing axial movement of the inner shell part along its longitudinal centre line (L1), wherein each of the segments (60,70,80) is provided on its inner side with a guide surface (69,79,89) for guiding the inner shell part into the clamp, wherein said guide surface slopes from a free distal end of the segment towards the centre axis (B) of the clamp and is completely spaced apart from the segment's inner surface (71,81) that is adapted for abutting against the spherical outer surface (21), wherein the free distal ends of two segments, along a line through the centre axis (B) of the clamp and when the clamp is in the clamping position, are at a distance from each other which is greater than a maximum outer diameter (d1) of spherical outer surface; and wherein said ball joint is further provided with a remote controlled actuator (40) arranged for driving movement of the two or more segments (60, 70, 80) within said common plane (C) between said clamping position and said open position.
2. Ball joint according to claim 1, wherein the inner shell part is provided with a flange (27) having a circumferential edge (28) for abutting a stop surface (82) of one of said segments when the inner shell part is in a position of maximum rotation with respect to the outer shell part, wherein the stop surface (82) extends between the segment's guide surface (89) and a distal edge (87) of the segment's inner surface (81).
3. Ball joint according to claim 2, wherein the guide surfaces are adapted for spacing the insertion end of the inner shell part, i.e. the distal end of the inner shell part opposite to the flange, apart from the stop surface and distal edge as the inner shell part is inserted into the outer shell part along a direction parallel to the centre axis of the clamp.
4. Ball joint according to claim 1, wherein the guide surfaces of the segments comprise or are made from an elastic material.
5. Ball joint according to claim 4, wherein said elastic material comprises or consists of an elastomer having a Shore A hardness in the range of 70 to 100.
6. Ball joint according to claim 1, wherein each guide surface, when seen in cross-sectional view through a plane parallel to an through the centre axis (B) of the clamp, has a maximum thickness in a plane normal to said centre axis (B) which is two times or more a maximum thickness of the inner shell part along any plane normal to the longitudinal axis of said inner shell part.
7. Ball joint according to claim 1, wherein each guide surface, when seen in cross-sectional view through a plane parallel to and through the centre axis (B) of the clamp, increases in thickness in a direction away from the free end of the corresponding segment.
8. In an embodiment, the guide surfaces each have a length along the centre axis of the clamp that is at least one third of the length of the inner shell part along its longitudinal axis.
9. Ball joint according to claim 1, wherein said two or more segments comprise an intermediate segment (70) that is pivotably connected on one end to the first segment (60) and pivotably connected at an opposite end to the last segment (80).
10. Ball joint according to claim 1, wherein said series of segments, when in the open position, is translatable in the common plane (C) and relative to the shell parts (20,30) when one or both of the shell parts are partially arranged within said plane (C).
11. Ball joint according to claim 1, wherein said two or more segments are pivotably connected in series by means of hinges (51, 52), each hinge connecting two segments in said series, wherein at least one of said hinges (51,52) is moveable in said plane (C) relative to said inner shell part (20) and/or said outer shell part (30) when the segments are in the open position and one or both of the shell parts are partially arranged within said plane (C).
12. Ball joint according to claim 1, wherein said actuator (40) is a fluid powered actuator comprising one or more ports (41, 42) for connection to a fluid supply, in particular a sea-water supply, for powering the actuator to rotate said segments between said clamping position and said open position.
13. Ball joint according to claim 1, wherein said actuator (40) is adapted to be controlled from a distance of at least 2 m from said clamp (50).
14. Ball joint according to claim 1 wherein said clamp (50) further comprises a latch (90) for keeping the segments (60, 70, 80) in the clamping position.
15. Ball joint according to claim 14, wherein said latch (90) comprises a first arm (91) and a second arm (92), wherein said first arm is pivotably connected at a first side (91a) to said first segment (60) and pivotably connected at a second side (91b) to a first side (92a) of said second arm (92), wherein said second arm (92) is pivotably connected at a second side (92b) to said last segment (80), and wherein said actuator (40) is arranged for rotating said first arm (91) relative to said second arm (92) to move the segments (60, 70, 80) between said clamping position and said open position.
16. Ball joint according to claim 1, wherein said actuator (40) is a detachable actuator, and the first and/or the last segment (60,80) is adapted for detachably connecting said actuator thereto.
17. Ball joint according to claim 1, wherein said inner shell part or said outer shell part is provided with a flange (33) and the segments (60,70,80) each comprise an accommodating section (73,83) for accommodating a portion of said flange (33) when the segments are in the clamping position to substantially prevent axial movement of the flange (33) relative to said accommodating sections, and wherein said segments comprise an abutment surface (74,84) adapted for abutting said flange (33) to prevent the flange, when arranged in the clamp, from moving past the accommodating sections when the segments (60, 70, 80) are in the open position.
18. Ball joint according to claim 17, wherein the clamp (50) is further provided with a limiting mechanism (39, 78,88) adapted for limiting movement of the segments to the open position in such a manner that in the open position the clamp cannot be moved past the flange.
19. Ball joint according to claim 18, wherein said limiting mechanism comprises a circumferential limiting surface (39) arranged around and attached to the inner or outer shell part, and further comprises one or more stop elements (78,88) attached to said segments and arranged in a same plane as said circumferential limiting surface (39), wherein movement of the segments to the open position is limited by said stop elements when said stop elements abut said circumferential limiting surface.
20. Ball joint according to claim 17, wherein said segments are substantially free to rotate around the flange when in the open position.
21. Clamp for a ball joint, wherein said ball joint comprises an inner shell part (20) and an outer shell part (30) which each define a respective longitudinal centre line (L1, L2) and are rotatable in relation to one another between an aligned position in which the longitudinal centre lines coincide, and a rotated position in which the longitudinal centre lines are at an angle to each other which differs from zero, wherein said outer shell part is adapted for surrounding said inner shell part in a sealing manner with the inner shell part (20) and outer shell part (30) together enclosing a passage which extends from an opening in the inner shell part at one side of the ball joint to an opening in the outer shell part at another side of the ball joint; said clamp (50) comprising two or more substantially rigid segments (60, 70, 80) connected in series, said series comprising a first segment (60) and an different last segment (80), wherein said segments (60, 70, 80) are moveable relative to each other in a common plane (C) between a clamping position in which movement of the inner shell part (20) relative to the outer shell part (30) along either longitudinal centre line is substantially prevented while allowing said rotation of the inner shell part (20) relative to the outer shell part (30), and an open position in which one of said shell parts (20, 30) is moveable along its longitudinal centre line (L1, L2) into and out of the clamp (50).
22. Method of connecting a ball joint according to claim 1 to a first pipe and a second pipe, said method comprising the steps of: moving the segments of the clamp to an open position in which both the inner shell part and the outer shell part can be inserted into the clamp; arranging said first pipe, with the outer shell part attached to an end thereof, such that said outer shell part is arranged in the clamp; arranging said second pipe, with the inner shell part attached to an end thereof, such that the inner shell part is arranged in the clamp, with an outer surface of the inner shell part contacting an inner surface of the outer shell part; and remote controlling the actuator to move the segments to the clamping position.
23. Method according to claim 22, wherein said remote controlling comprises supplying fluid to a port of said actuator, for moving said segments between the open and clamping position.
24. Method according to claim 22, wherein said supplying of fluid is performed by means of a pump that is spaced apart from the ball joint on a floating platform, such as a boat.
25. Method according to claim 22, further comprising, just after arranging the first pipe such that the outer shell part is arranged in the clamp, attaching one or more stop elements to the segments of the clamp for limiting the extent to which the segments can open, such that the outer shell part cannot be moved out of the clamp.
26. Pipe connection assembly comprising a ball joint according to claim 1, further comprising: a first pipe with an end to which the inner shell part is attached; and a second pipe with an end to which the outer shell part is attached; wherein said inner shell part is arranged at least partially within the outer shell part, and wherein said clamp is arranged around said inner and outer shell part.
Description
[0040] The present invention will be discussed in more detail below, with reference to the attached drawings, in which:
[0041]
[0042]
[0043]
[0044]
[0045]
[0046]
[0047]
DESCRIPTION OF EMBODIMENTS
[0048]
[0049]
[0050]
[0051]
[0052] A circumferential flange 33 of outer shell part 30 is accommodated in accommodation sections of the segments 60, 70,80, so that in the clamping position of the segments shown, the outer shell part 30 cannot be moved out of the clamp. Though
[0053] When connecting two shell parts and pipes attached thereto to each other using the ball joint 1, it is highly preferable that that shell part which has the flange is inserted first into the clamp, and secured in a sufficient manner to ensure that the clamp cannot inadvertently fall off the shell part. To achieve this, the outer shell part 30 is provided with a limiting ring fixed 38 thereto and having an inner circumferential surface 39. When neither the inner shell part 20 nor the outer shell part 30 are arranged in the clamp, the actuator 40 is operated to move the segments 60,70,80 in the common plane C such that the flange 33 can be accommodated in the respective accommodation sections 73,83. Subsequently, the actuator 40 is operated such that the accommodation sections 73,83 prevent the flange from being moved out of the clamp, but without the segments 60,70,80 being in the clamping position. Stop elements 78,88 are then attached to the segments 60,70,80 for abutting the inner circumferential surface when the segments are in the open position. Once the stop elements have been installed, the segments can be moved between an open position in which the inner shell part can be moved into and out of the clamp, and a clamping position in which the inner shell part and the outer shell part are clamped by the segments such that relative movement of the shell parts along their longitudinal centre lines Li, L2 is blocked.
[0054] The stop elements may for instance be bolts that are screwed into corresponding threaded holes in each of the segments. When the segments are moved to the open position, the bolts are limited from moving radially outward, so that at any time the flange
[0055] When the segments 60,70,80 are in the open position and the inner shell part 20 has not yet been inserted into the clamp 50, it is preferable that the inner shell part 20 can be smoothly guided to position in the clamp where the clamp can subsequently be closed. To this end, the segments 60,70,80 are each on their inner sides provided with a guide surface 69,79,89 which slopes towards the centre axis A of the clamp. When the inner shell part 20 comes into contact with one of the guide surfaces 69,79,89 and is pushed substantially along its longitudinal centre line L1 towards the clamp, the spherical outer surface 21 of the inner shell part 22 will eventually come into contact with the matching inner surfaces 71,81 of the segments and with the matching inner surface 31 of the outer shell part 30.
[0056]
[0057] Though the inner shell part 20 and outer shell part 30 are shown with the longitudinal centrelines L1, L2 coinciding with the centre axis B of the clamp 50, the joint allows the inner shell part 20 to rotate with its longitudinal centre line L1 relative to said clamp and to the outer shell part around point R for an angle R in a range of about +15 to โ15 degrees.
[0058]
[0059] In
[0060]
[0061] The flange 27 comprises a circumferential edge 28 which, at least when the clamp is closed, faces a stop surface 82 of segments 80. It will be clear that segments 60 and 70 also comprise such a stop surface. The stop surface 82 extends between a distal edge 87 of the inner surface 81 and the guide surface 89 of the segment 80. When the clamp is closed and the inner shell part is rotated such that circumferential edge 28 abuts the stop surface 82, the edge cannot be moved beyond the stop surface, thus limiting rotation of the inner shell part relative to the outer shell part to the predetermined angle R. The guide surfaces are adapted for spacing the insertion end of the inner shell part, i.e. the distal end of the inner shell part opposite to the flange 27, apart from the stop surface 82 and distal edge 87 as the inner shell part is inserted into the outer shell part in a direction parallel to the clamp's centre axis B.
[0062] Once the segments have been moved to the clamping position, the operator 150 can safely move closer to the clamp to lock the segments in place, e.g. by locking the arms of the latch 90 in place using a pin 95 as described herein. Subsequently he may remove the actuator 40 from the ball joint 1 in case the actuator is detachably attached thereto. Next he can detach the conduits 121,122 from the actuator and move the vessel 101, fluid supply 120, and the actuator in case the actuator is detachable, elsewhere.
[0063] The present invention has been described above with reference to a number of exemplary embodiments as shown in the drawings. Modifications and alternative implementations of some parts or elements are possible, and are included in the scope of protection as defined in the appended claims.