This disclosure relates in general to a threaded box and pin connection between offshore well riser pipes, the connection having a rotatable collar that forces cantilevered fingers of the box into engagement with grooves on the pin when the collar is rotated relative to the box and pin.
Risers are used in offshore drilling and production to connect a surface platform to subsea equipment of a well. Drilling risers are used during drilling operations. Production risers are normally used to convey production fluids from the subsea well to the platform. One type of a production riser comprises pipes having threaded ends that connect together.
The length of a production riser may be thousands of feet, and the diameter can be fairly large. As the riser string is being made up and run into the sea, a new pipe or joint being added to the upper end of the riser string will be rotated to make up the threads. Rotating the new joint while avoiding cross-threading can be difficult.
In U.S. Pat. No. 9,145,745, the new joint is added without requiring rotation. A collar with internal threads is rotated relative to both the box and the pin. The box has deflectable fingers with internal grooves that mesh with external grooves on the pin as the collar rotates. A collet ring is located between the fingers and the collar, and has external threads that engage the internal threads of the collar. By requiring a collet ring, the connector of U.S. Pat. No. 9,145,745 has more elements over other types of connectors.
A pipe connection comprises a pin having circumferentially extending external grooves. A box has an annular base and cantilevered fingers joining the base and extending from the base in a first direction. The cantilevered fingers are spaced around the axis and have free ends. Each of the fingers has circumferentially extending internal grooves and an external thread. A collar has an internal thread that engages the external thread. The box and the pin have a stab-in position in which the internal grooves are spaced radially outward from full engagement with the external grooves. Rotating the collar relative to the pin and the box in a locking direction from the stab-in position to a locked position deflects the internal grooves of the fingers inward into full mating engagement with the external grooves.
In the embodiment show, each of the crests of the internal thread faces toward the axis and in the second direction. A stop shoulder engages the collar while the collar is in the stab-in position and also in the locked position. The stop shoulder prevents any axial movement of the collar relative to the box and the pin while rotating the collar from the stab-in position to the locked position.
While the pin and the box are in the stab-in position, the crests of the external thread are located in roots of the internal thread and the crests of the internal thread are located in roots of the external thread. While the pin and the box are in the locked position, the crests of the internal thread are abutting the crests of the external thread.
In the embodiment shown, the internal thread has a first flank and a second flank separated by one of the crests of the internal thread, the second flank being closer to the base than the first flank and having a lesser depth than the first flank.
In one embodiment, each of the crests of the internal threads increase in diameter from turn to turn in a second direction from the free ends toward the base.
A release ring may be mounted to an inner side of the collar, the release ring having a conical portion that engages an inner side of each of the fingers adjacent the free ends. The box and the pin have a released position that is achieved in response to rotation of the collar relative to the pin and the box in a releasing direction from the locked position. The rotation of the collar in the releasing direction causes the collar and the release ring to move axially in the second direction and deflects the fingers and the internal grooves outward from full mating engagement with the external grooves.
In one embodiment, a tangent line at a midpoint of each of the internal thread crests intersects the axis at an acute angle, the acute angle decreasing from turn to turn in the second direction.
External sides of the cantilevered fingers circumscribe a cylindrical surface in the embodiment shown. The external thread is formed in a plurality of turns on the cylindrical surface. A radial distance from each turn of the external thread to the axis is the same for all of the turns.
The external grooves are located on a conical surface of the pin. The internal grooves are located on a conical surface of the box. The external thread is located on a cylindrical surface of each of the fingers. The internal thread is located on a cylindrical surface of the collar.
So that the manner in which the features, advantages and objects of the disclosure, as well as others which will become apparent, are attained and can be understood in more detail, more particular description of the disclosure briefly summarized above may be had by reference to the embodiment thereof which is illustrated in the appended drawings, which drawings form a part of this specification. It is to be noted, however, that the drawings illustrate only a preferred embodiment of the disclosure and is therefore not to be considered limiting of its scope as the disclosure may admit to other equally effective embodiments.
The methods and systems of the present disclosure will now be described more fully hereinafter with reference to the accompanying drawings in which embodiments are shown. The methods and systems of the present disclosure may be in many different forms and should not be construed as limited to the illustrated embodiments set forth herein; rather, these embodiments are provided so that this disclosure will be thorough and complete, and will fully convey its scope to those skilled in the art. Like numbers refer to like elements throughout.
Referring to
Connector 11 includes a box 23 in which pin 13 stabs and connects. Box 23 is typically welded to another pipe (not shown). Box 23 is has a bore 24 to receive pin 13, bore 24 having an internal upward facing shoulder 25. In this example, pin nose 21 forms a metal-to-metal seal with bore 24 near shoulder 25. Alternately, a separate seal could be employed between pin nose 21 and shoulder 25.
Box 23 has an annular base 27 on its lower end that is a solid, non-expansible ring. A plurality of cantilevered segments or fingers 29 are integrally formed with base 27 and extend upward. As shown the not-to-scale schematic of
Fingers 29 are configured to bend about their lower portions and deflect radially inward in a curved path from the unlocked, stab-in position shown in
A set of internal grooves 39 is formed on a conical portion 38 of bore 24 above reduced thickness portion 37. The taper angle relative to axis 33 of box conical portion 38 is approximately the same as the taper angle of pin conical portion 16 while box conical portion 38 is in the stab-in position of
In this embodiment, a radial gap between internal grooves 39 and external grooves 17 while in the stab-in position is substantially constant from the lower end to the upper end of the conical portions 16, 38. At the upper end of pin conical portion 16, in this example, external grooves 17 diminish in depth where the pin conical portion 16 transitions to a cylindrical surface. Similarly, at the upper end of the box conical portion 38, the taper angle may change, resulting in a diminished depth of internal grooves 39.
Box 23 has an external thread 41 machined on its outer diameter, which is cylindrical in the embodiment. External thread 41 may be a single, continuous helical thread form extending along the outer sides of fingers 29. Each turn of external thread 41 has a crest 43 with roots 45 above and below, the configuration of which will be discussed in more detail subsequently.
A collar or sleeve 47 fits around box 23 and may be rotated a selected amount relative to box 23 and pin 13. Collar 47 has an internal thread 49 that engages external thread 41. Internal thread 49 is a single, continuous thread machined on the cylindrical inner diameter surface of collar 47. Each turn of internal thread 49 has a crest 51 with roots 53 above and below.
Collar 47 has an upward facing internal shoulder 55 near its lower end. Box 23 has an external shoulder 57 that is abutted by internal shoulder 55 while connector 11 is in the stab-in position of
A release ring 59 is secured in an internal recess 61 in collar 47. Release ring 59 is a solid, annular member with a tapered or conical lower portion 63 that faces downward and outward. While in the stab-in position of
Upper seals 65 seal between the inner diameter of collar 47 and pin external shoulder 19 near the upper end of collar 47. Lower seals 67 seal between the inner diameter of collar 47 to the exterior of box 23 near the lower end of collar 47.
Briefly, to make up connector 11, collar 47 will be positioned in the stab-in position. Crests 43 of external thread 49 are located in roots 53 of internal thread 49. A radial gap will exist between full engagement of pin external grooves 17 with box internal grooves 39. The operator inserts pin 13 into box 23 until the lower side of shoulder 19 abuts release ring 59. Pin nose 21 will sealingly engage bore 24.
Then the operator rotates collar 47 in a locking direction, normally clockwise, relative to pin 13 and box 23. This rotation cannot move collar 47 upward relative to pin 13 and box 23 because of the engagement of shoulders 55, 57. As a result, the rotation causes internal thread crests 51 to gradually move in a curved path into engagement with external thread crests 43 to flex fingers 29 inward. Fingers 29 flex like cantilevered beams. This deflection of fingers 29 causes internal grooves 39 to fully engage with external grooves 17, as shown in
To disconnect connector 11, the operator rotates collar 47 in the reverse direction from the locked position shown in
Also, in this example, cutting insert 68 is moved radially outward from axis 33 (
In addition to the radial outward movement of cutting insert 68 in this example, cutting insert 68 is controlled to move downward along initial thread cut 49′ at a slightly less pitch than the pitch of initial thread cut 49′. That is, the axial distance from cutting insert 68 while in the dotted line position to the solid line position is slightly less than the axial distance between internal threads 49 adjacent the dotted line position of cutting insert 68 and the solid line position of cutting insert 68. As a result, a gradually steeper portion, relative to axis 33 (
The example of
Base fingers 29 may be machined so that the stab-in position (
Box finger external thread 41 has an upward facing flank 73 at each turn. Upward facing flank 73 inclines downward and outward relative to axis 33. Box finger external thread 41 has at each turn a downward facing flank 75 separated from upward facing flank 73 by root 45. In this example, downward facing flank 75 inclines downward at a lesser angle relative to axis 33 than upward facing flank 73. Crest 43 joins the outer ends of flanks 73, 75 to each other. Crest 43 may be slightly convex or rounded in an outward direction relative to axis 33. The corners between flanks 73, 75 and crest 43 are rounded. The corner between downward facing flank 75 and crest 43 is slightly farther from axis 33 than the corner between upward facing flank 73 and the same crest 43. A tangent line (not shown) of a midpoint of crest 43 intersects axis 33 at an acute angle. Roots 45 are also slightly tapered, rather than being cylindrical. A radial distance 76 from a midpoint of each root 45 to axis 33 may be the same for all of the roots 45. The radial depths 77 of all of the crests 43 from a root 45 to a crest midpoint are the same.
A center point 87 for the radius of each curved crest 51 is in a direction between downward and inward toward axis 33. As mentioned above, each curved crest 51 gradually becomes less steep relative to axis 33 in a downward direction. Thus, the axial distance that each center point 87 is below its crest 51 become less in a downward direction, from crest 51 to crest 51. A radial distance 89 from a midpoint of each crest 51 to axis 33 increases from turn-to-turn in a downward direction. That is, radial distance 89 for crest 51 of turn 78a is less than radial distance 89 for crest 51 of turn 78b. Similarly, radial distance 89 for crest 51 of turn 78b is less than radial distance 89 for crest 51 of turn 87c. In this example, the pitch of internal threads 49 from one turn to another is constant and is the same as the pitch of external threads 41. The pitch of internal thread crests 51 is slightly less than the pitch of eternal thread crests 43.
In the stab-in position of
In the embodiment shown, pin grooves 17 do not interfere with box grooves 39 during stab-in. Alternately, connector 11 could be machined such that pin grooves 17 lightly engage box grooves 39 as pin 13 is stabbed into box 23. In that embodiment, a pin 13 lowers into box 23, a ratcheting action would occur, with fingers 29 flexing inward and outward.
It is to be understood that the scope of the present disclosure is not limited to the exact details of construction, operation, exact materials, or embodiments shown and described, as modifications and equivalents will be apparent to one skilled in the art. In the drawings and specification, there have been disclosed illustrative embodiments and, although specific terms are employed, they are used in a generic and descriptive sense only and not for the purpose of limitation. For example, the connector could be inverted are placed in other orientations from the orientation shown. The thread form of the internal thread could be placed on the outer sides of the fingers and the thread form of the external thread could be placed on the inner side of the collar.