METHOD FOR WELDING OF INSULATED PIPE
20180093353 · 2018-04-05
Inventors
Cpc classification
B23K26/40
PERFORMING OPERATIONS; TRANSPORTING
F16L13/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16L59/143
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16L7/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16L7/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B23K9/23
PERFORMING OPERATIONS; TRANSPORTING
E21B17/00
FIXED CONSTRUCTIONS
International classification
F16L13/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B23K26/40
PERFORMING OPERATIONS; TRANSPORTING
B23K9/23
PERFORMING OPERATIONS; TRANSPORTING
Abstract
A welding method, to reduce tension due to pipe stretching, for a downhole double-walled insulated pipe is disclosed. The pipe comprises an inner tube, an outer tube, steel spacer rings and insulated material fitted filling the annular space. Special welding links the ends of inner and outer tubes, forming a flexible metallic joint, achieved through the use of filler metal with specific chemical composition during the welding process. The inner tube is heated and extended before the tube welding is performed. The welded joint is strong enough to keep the inner tube in place when it cools down, creating a tension inwards in the tube. This way, when steam flows through the tubing during the operation, the heat stretches the inner tube until the tension direction is outwards, then the tension now becomes about half of the normal tension applied to the tube welded joint with the usual welding process.
Claims
1-16. (canceled)
17. An assembly for joining metal tubes to form a double-walled pipe having an outer tube, an inner tube of smaller diameter than the outer tube, and an annulus between the tubes, the assembly comprising: a) a first non-threaded steel tube serving as the outer tube; b) a second non-threaded steel tube serving as the inner tube, dimensioned with a diameter and length so as to fit entirely within the outer tube, and wherein the inner tube is positioned within the outer tube creating an annular space between the tubes; c) a plurality of metal laser-cut spacer rings located in the annular space, each ring comprising two semi-circular pieces and having an inner diameter equal to an outer diameter of the inner tube and a chamfer (10) on both edges, in a manner to allow the ring and the inner tube to be arc welded together, with rings equidistant spaced 1.5 meters from each other, keeping the inner tube and the outer tube concentric; d) a welding material for joining ends of the inner tube and the outer tube, using a deflection ring (5) to guide welding; and e) an insulation material applied within the annular space between the inner tube and the outer tube, wherein the assembly is completed by mechanical engagement of the inner tube and the spacer rings, welding of the inner tube and the outer tube, and application of the insulation material.
18. The assembly of claim 17 in which the metal laser-cut spacer rings are of a nonmetallic material.
19. The assembly of claim 17 in which the length of the inner tube is within a range of 95% to 98.5% of the full length of the outer tube.
20. The assembly of claim 17 wherein the outer tube is selected from the group consisting of: seamless pipes and welded pipes.
21. The assembly of claim 17 in which one of the tubes is of a nonmetallic material.
22. The assembly of claim 17 in which the metal laser-cut spacer ring pieces are held together with an epoxy bonding material.
23. The assembly of claim 17 in which the mechanical and thermal properties of the insulation material are manipulated by a special manufacturing process selected from the group consisting of: vacuum, and injection of additive.
24. The assembly of claim 23, wherein the injected additive comprises black coal particles.
25. A method for joining metal tubes to form a double-walled pipe having an outer tube, an inner tube of smaller diameter than the outer tube, and an annulus between the tubes, the method comprising: (a) fabricating a plurality of metal laser cut spacer rings, each ring comprising two semi-circular pieces, having an inner diameter equal to an outside diameter of the inner tube and a chamfer (10) on both edges, wherein the chamfer serves to arc weld the pieces together; (b) positioning the spacer rings encircling the inner tube with the rings equidistant and located 1.5 meters apart, keeping the inner tube and the outer tube concentric, and subsequently arc welding the spacer rings and the inner tube together; (c) positioning the outer tube about the inner tube, in a manner to locate the inner tube is lengthwise centrally located within the outer tube, and ensuring that the spacer rings keep the tubes concentric; (d) heating the inner tube until the inner tube expands about 2% in size; (e) arc welding the inner tube to the outer tube using a deflection ring (5) to guide the welding and link the tubes; (f) heating and cooling a welded area at a controlled pace; (g) drilling two holes into the outer tube for application of an insulation material; (h) vacuuming the insulation material through the holes, filling the entirety of the annular space; (i) sealing the holes on the outer tube; and (j) threading the outer tube.
26. The method of claim 25 wherein the inner tube is heated until expansion lengthwise within a range of 1.5% to 4% of the full tube length occurs.
27. The method of claim 25 wherein the metal laser-cut spacer rings are of a nonmetallic material.
28. The method of claim 25 wherein the metal laser-cut spacer rings are held together with an epoxy bonding material.
29. The method of claim 25 wherein the outer tube is selected from the group consisting of: seamless pipes or welded pipes.
30. The method of claim 25 wherein at least one of the tubes is of a nonmetallic material.
31. The method of claim 25 wherein the joining of the tubes occurs via a flexible joint, using a filler metal comprising up to 10% less manganese than the tube having less manganese, and wherein the filler metal also contains up to 10% more carbon than the tube having the highest carbon percentage, creating a joint with a higher tensile yield strength
Description
BRIEF DESCRIPTION OF DRAWINGS
[0011] [
[0012] [
[0013] [
[0014] [
[0015] [
[0016] [
DESCRIPTION OF EMBODIMENTS
[0017] Referring to
[0018] The spacer ring (8) is a steel laser-cut ring-shaped band having an outer diameter less than the inner diameter of the outer pipe (2), such that a portion of its collar (11) fits within the annular space (3) of each section of the double-walled steel pipe (4). The steel spacer ring (8), by itself, is able to withstand the radial and tangential stress components of a pressurized pipe without bowing or distorting, so it does not have to interface with the outer pipe (2). The spacer ring (8) may be fabricated from carbon steel or any other nonmetallic material capable of withstand the applied loads.
[0019] The complete procedure for joining the two pipes may be best understood by referring to
[0020] After the welding step is complete, the pipe goes through a thermal treatment which is done by heating the welded area and then cooling it down in a controlled pace, according to tested curves. The pipe is now ready to be insulated, which is done by drilling holes on both ends of the pipe's outer pipe (2) and using vacuum to fill it with insulation material. These holes are sealed after the operation is complete. With all these steps done, all that is left is threading the tube, according to the necessities specified by the project.