A CONNECTION AND PROTECTIVE RING THEREFOR
20170321494 · 2017-11-09
Assignee
Inventors
Cpc classification
F16L58/182
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16L15/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F16L15/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
E21B41/02
FIXED CONSTRUCTIONS
Abstract
Disclosed is a connection comprising first and second lined tubular members having a coincident bore and a protective ring. The first lined tubular member has a pin end and the second lined tubular member has a box end. Each lined tubular member includes a tubular body, an annular liner, and a mortar filled annulus therebetween. The mortar filled annulus has an annular recess therein at at least one of the pin end and box end for receiving a part of the protective ring. The part received may be a flange on the ring.
Claims
1. A connection comprising: first and second lined tubular members having a coincident bore and a protective ring, the first lined tubular member having a pin end and the second lined tubular member having a box end, each lined tubular member comprising a tubular body having an internal surface of constant diameter, an annular liner and a mortar filled annulus therebetween; wherein said mortar filled annulus has an annular recess therein at at least one of the pin end and box end configured to receive a part of the protective ring upon connection of the first and second tubular members.
2. A connection as claimed in claim 1, wherein the annular recess is defined by said annular liner, said tubular member and said mortar.
3. A connection as claimed in claim 1, wherein the annular recess is defined by said annular liner, said tubular member and an O-ring.
4. A connection as claimed in claim 1, wherein the protective ring comprises a flange received in said annular recess.
5. A connection as claimed in claim 4, wherein the depth of the flange is substantially equal to the thickness of the mortar filled annulus.
6. A connection as claimed in claim 4, wherein the flange has a pointed distal end.
7. A connection as claimed in claim 1, wherein said annular recess (111) is located in said pin end and a further annular recess is located in said box end.
8. A connection as claimed in claim 7, wherein the protective ring comprises a flange received in said annular recess and a further flange received in said further annular recess.
9. A connection as claimed in claim 8, wherein said further flange is adhered or has a friction fit in said further annular recess.
10. A connection as claimed in claim 4, wherein said protective ring comprises a ring body with said flange extending from a side thereof, said ring body having an inner surface which is coincident with the liners.
11. A connection as claimed in claim 1, wherein the box end has at least one thread and the pin end has a corresponding thread arranged along a first diameter, the box end having at least one sealing surface and the pin end having a corresponding sealing surface.
12. A connection comprising first and second lined tubular members having a coincident bore and a protective ring, the first lined tubular member having a pin end and the second lined tubular member having a box end each lined tubular member comprising a tubular body, an annular liner and a mortar filled annukus therebetween, said mortar filled annulus has an annular recess therein at at least one of the pin end and box end, said protective ring has a body having a side and a flange extending therefrom, the flange having a depth substantially equal to the thickness of said mortar filled annulus the flange received in said annular recess.
13. A connection as claimed in claim 12, wherein the body has an inner surface substantially coincident with an inner surface of said liner.
14. A connection as claimed in claim 12, wherein a further flange extends from an opposing side of said body.
15. A lined tubular member comprising: an annular liner; a tubular body; annular liner arranged in a tubular body the tubular body of constant diameter along the length of the liner a box end; the annular liner arranged in the tubular body, the tubular body of constant diameter along the length of the liner, a mortar filled annulus between the annular liner and the tubular body; wherein said mortar filled annulus comprises an annular recess; and a protective ring comprising a body and a flange and a further flange, the further flange being disposed, in said annular recess.
16. A method for connecting lined first and second tubular members, the first lined tubular member having a pin end and the second lined tubular member having a box end, the first and second lined tubular members each further comprising a tubular body having an internal surface of constant diameter, an annular liner and a mortar filled annulus therebetween, wherein said mortar filled annulus at the pin end comprises an annular recess, and wherein the box end comprises a protective ring, the method comprising: stabbing the pin end into the box end; spinning at least one lined tubular member whereupon a part of the protective ring inserts into the annular recess and a connection is made between the first and second tubular members; and torqueing the connection.
17. A lined tubular member as claimed in claim 15, wherein said further flange is adhered in said annular recess.
18. A lined tubular member as claimed in claim 15, wherein said further flange is friction fitted in said annular recess
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0037] For a better understanding of the present disclosure, reference will now be made, by way of example only, to the accompanying drawings, in which:
[0038]
[0039]
[0040]
[0041]
[0042]
[0043]
[0044]
[0045]
DETAILED DESCRIPTION OF DISCLOSED EXEMPLARY EMBODIMENTS
[0046] Referring to
[0047] The threaded pin end 2 has a tip in the form of a planar nose 6 with an internal chamfer 7. A frusto-conical sealing surface 8 extends from an outer edge of the planar nose 6. A first end plane cylindrical surface 9 extends from a top of the frusto-conical sealing surface 8 to a start of a first male thread 10. The first thread 10 may be a parallel thread or very slightly wedged. The first thread 10 extends along the pin end 2 to finish at a step 11. A central plane cylindrical surface 12 extends from said step 11 to a start of a second male thread 13. It should be noted that the step 11 provides a step increase in thickness from thickness B to thickness A. The second thread 13 may be a parallel thread or very slightly wedged. A further step 19 is provided to allow for a further change in depth. The second thread 13 extends along pin end 2 to a step 14. The steps 11 and 14 may be substantially the same height as the depth of the respective thread 10, 13. A second end plane cylindrical surface 15 extends from a top of the step 14 to a shoulder 16 which has an angled frusto-conical surface 17 forming a mouth 18.
[0048] The threaded box end 4 has an internal shoulder 20 with an internal chamfer 21. A frusto-conical sealing surface 22 extends from an outer edge of the internal shoulder 20. A first end plane cylindrical surface 23 extends from a top of the frusto-conical sealing surface 22 to a start of a first female thread 24. The first female thread 10 may be a parallel thread or very slightly wedged. The first female thread 24 extends along the box end 2 to finish at a step 25. A further step 19′ is provided to allow for a further change in depth. A central plane cylindrical surface 26 extends from said step 25 to a start of a second female thread 27. It should be noted that the step 25 and step 19′ provides a step decrease in thickness from thickness C to thickness D. The combination of large thicknesses A and C with small thicknesses B and D provide a strong connection suitable for both internal and external high pressures. The second female thread 27 may be a parallel thread or very slightly wedged. The second female thread 27 extends along box end 4 to a step 28. A second end plane cylindrical surface 29 extends from a top of the step 28 to a nose 30 which has an angled frusto-conical surface 31 forming a beak 32.
[0049] In use, an apparatus such as an iron roughneck 33 is used to make or break connections. The second tubular member 5 is held in a spider (not shown) in a well W. The first tubular member 3 is handled with a pipe handler (not shown) to insert the pin end 2 into the box end 4 of the second tubular member 5. The iron roughneck 33 is offered up to the first and second tubular members 3 and 5 using a selectively extendible arms 34. A back-up tong 35 grips the box end 4 of the second tubular member 5 to inhibit rotation. The first tubular member 3 is rotated with a spinner 36 to thread the pin end 2 into the box end 4. As the pin end 2 moves into the box end 4, the beak 32 fits into the mouth 18. A power tong 37 is then used to torque the connection. The frusto-conical surface 31 of the nose 30 slides along the corresponding frusto-conical surface 17 of the mouth 30, pulling the mouth 30 of the box end 4 to the body of the pin end 2. Frusto-conical surface 8 of the pin end 2 rides along corresponding frusto-conical surface 22 of the box end 4 providing a metal-to-metal seal. A small gap is provided between the plane cylindrical surfaces 9, 12, 15 of the pin end 2 and corresponding plane cylindrical surfaces 23, 26, 28 of the box end 4. A small gap 7′ may also provided between nose 6 of pin end 2 and shoulder 20 of the box end 4 to allow the frusto-conical surface 8 of the pin end 2 to ride along corresponding frusto-conical surface 22 of the box end 4 to properly form a metal-to-metal seal.
[0050]
[0051] Before the connection is made, the box end 4 of second tubular 5 has a circumferential groove 43 machined therein at a foot of the frusto-conical surface 22. The nose 6 of the pin end 2 is also milled to remove a few millimetres therefrom and provided with a planar nose. A first and second GRE (Glass Reinforced Epoxy) liner 44 and 45 is slid into bores 3′ and 5′ of respective first and second tubular members 3 and 5 and a mortar 46 and 47 injected therebetween to fix the liners 44 and 45 in respective bores 3′ and 5′. New bores 48 and 49 provide a corrosion resistant flow path for corrosive fluids. The thickness of mortar 46 and 47 used is approximately 2 mm. The thickness of the liner 44 and 45 is approximately 2 mm. A ring 50 comprises a T-shape ring 51 and flared rings 52 and 53 arranged either side. The T-shaped ring 51 is made from PTFE 25% glass-fill and is compressible, which prevents corrosive fluids from reaching the seal formed between pin end sealing surface 8 and box end sealing surface 22.
[0052] In use, the ring 50 is offered up to the groove 43 through the mouth of the box end 4 and pushed into the groove 43. The position of the groove 43 and the width of the ring 50 is such that the upon the connection being made, the nose 6 of the pin end 2 contacts the flared ring 53 to hold the ring 50 in place.
[0053]
[0054] The first lined tubular member 101 has the GRE liner 103 extending through pin end 2 terminating at an end 105 in line with the nose 6. The GRE liner 103 is held in place by a mortar 107. An O-ring 109 is arranged at the end of the mortar 107 and is set back from the end 105 by a flange length distance to form an annular recess 111. The second lined tubular member 102 has GRE liner 104 extending through the tubular member 102 terminating at an end 106 at a predetermined distance from the internal shoulder 20 of the box end 4 and is held in place with mortar 108. An O-ring 110 is arranged at the end of the mortar 107 and is set back from the end 106 by a flange length distance to form an annular recess 112. The mortar 107 and 108 is approximately 1 to 5 mm thick in some embodiments and 2 mm thick in other embodiments. The GRE liner 103 and 104 is approximately 2 mm thick, although may be between 1 mm to 10 mm thick and thus does not significantly change the size of bores 113 and 114.
[0055] A protective ring 115 comprises a central body 116 having a thickness approximately equal to the combined thickness of the liner 103 and mortar 107. The central body 116 has a smooth plane cylindrical internal surface 117. Opposing flanges 118 and 119 extend from either side of the central body 116. Each flange 118 and 119 has a plane cylindrical internal surface 122 and 123 meeting each side defining a shoulder 120 and 121. The depth of the shoulder is substantially equal to the thickness of the liner 103. An outer surface 124 of the flanges 118 and 119 is planar with the outer surface of the central body 116. The protective ring 115 has an overall length of approximately one inch (25.4 mm), although may be between 15 mm and 54 mm in length. The flanges 118 and 119 have a depth which is substantially equal to the mortar thickness 107. The flanges 118 and 119 have pointed distal ends 125 and 126, the pointed distal ends 125 and 126 being substantially central between the internal surfaces 122 and 123 and the outer surface 124. The flanges 118 and 119 have a length of approximately 9 mm, tapering approximately half way therealong. The predetermined distance referred to above from the internal shoulder 20 of the box end 4 to the end 106 of the liner 104 is substantially the same as the width of the central body 116, and may be 6 mm in some embodiments and may be between 2 mm and 20 mm in other instances.
[0056] The absolute measurements stated above are suitable for use in a 7 inch liner having a Two Thread Premium connection.
[0057] In an embodiment, the protective ring 115 is made from a plastics material such as a thermoplastic and formed by injection moulding in a single unitary piece.
[0058] The lined first and second tubular members 101 and 102 are lined with liners 103 and 104 using the following process, described with reference to a tubular member 3 having a pin end 2 at one end and a box end (not shown, but like box end 4) at the other. The tubular member 3 is laid at a slight incline with the pin end 2 at the lower end. An injection head (not shown) is attached to the lower pin end 2. Liner 103 is inserted through the upper box end 4 and slid into the bore 3′ until the end 105 abuts the injection head. A cement based mortar is pumped through the injection head into an annulus formed between the liner 107 and an interior wall 3″ of the first tubular member 3. Pumping ceases when the cement based mortar exits the annulus at the box end 4. The end 106 of the liner 103 is trimmed using a trimming tool (not shown) at a predetermined distance from the shoulder 20 of the box end 4. The O-ring 110 is then pushed into the wet cement based mortar in the annulus a flange length distance to form annular recess 112. The O-ring 110 may be pushed in with an O-ring insertion tool comprising an open cylindrical end having an outer diameter approximately equal to the diameter of the bore 5′ and having a wall thickness of approximately 2 mm.
[0059] The injection head is disconnected from the pin end 2. The liner 103 is trimmed to be flush with the nose 6. The O-ring 109 is pushed into the wet cement based mortar 107 a flange length distance to form annular recess 111 using the O-ring insertion tool.
[0060] In use, the protective ring 115 is installed in the lined tubular member 102. The protective ring 115 is offered up to annular recess 112 through mouth 130 of box end 4. The flange 119 enters annular recess 112 until the shoulder 121 abuts the end 106 of the liner 104, as shown in
[0061] Fluid, such as corrosive sea water may then flow through bores 113 and 114 of the lined tubular members 101 and 102. The fluid may be sealed from or seep through a tortuous path between the GRE liners 103 and 104 and the protective ring 115, and across pointed distal ends 125 and 126, which may embed themselves into O-rings 109 and 110 providing a further seal or continue the tortuous path to inhibit egress of corrosive fluids from within the bore to the opening 7′.
[0062] A further embodiment of a connection in accordance with the present disclosure is shown in
[0063] Alternatively, an annular recess 212 in box end 4 may not be pre-formed. The protective ring 215 may simply be inserted and displacing the wet cement 208 until the central body abuts the end of liner 204.