AN ASSEMBLY COMPRISING AN END-FITTING AND AN UNBONDED FLEXIBLE PIPE
20170299092 · 2017-10-19
Inventors
Cpc classification
F16L33/01
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16L53/38
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16L11/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B23P19/047
PERFORMING OPERATIONS; TRANSPORTING
F16L53/34
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16L25/01
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F16L11/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B23P19/04
PERFORMING OPERATIONS; TRANSPORTING
F16L33/01
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16L25/01
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16L53/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
The present invention relates to an assembly including an end-fitting and an unbonded flexible pipe, which end-fitting is adapted for connecting the unbonded flexible pipe to a connector. The end-fitting has a through-going opening with a centerline and a front end and a rear end, and the end-fitting further includes means for establishing an electrical connection to a least one electrical heating system in the unbonded flexible pipe. Moreover, the end-fitting includes at least one first metallic part having a first surface contacting a second surface of at least one second part in the end-fitting, wherein the first surface of the first metallic part, at least in the vicinity of the through-going opening, includes a coating having a high electrically resistivity. The invention also relates to a method for providing an end-fitting having good properties in respect of reducing galvanic corrosion.
Claims
1-26. (canceled)
27. An assembly comprising an end-fitting and an unbonded flexible pipe, said end-fitting being adapted for connecting the unbonded flexible pipe to a connector, said end-fitting having a through-going opening with a centerline and a front end and a rear end, said end-fitting further comprises means for establishing an electrical connection to a least one electrical heating system in said unbonded flexible pipe, said end-fitting comprises at least one first metallic part having a first surface contacting a second surface of at least one second part in the end-fitting, wherein the first surface of the first metallic part, at least in the vicinity of the through-going opening, comprises a coating having a high electrically resistivity, wherein said coating has an electrically resistivity of at least 10.sup.7 Ω.Math.m.
28. An assembly according to claim 27, wherein the second part is a metallic part and said second surface comprises a coating having a high electrically resistivity.
29. An assembly according to claim 27, wherein at least a part of the coating comprises a bushing.
30. An assembly according to claim 27, wherein the second part is a non-metallic part.
31. An assembly according to claim 27, wherein the second part is an electrical insulating part.
32. An assembly according to claim 27, wherein the metallic surfaces in the through-going opening comprises a coating having a high electrically resistivity.
33. An assembly according to claim 27, wherein the surfaces of metallic parts in the end-fitting comprise a coating having a high electrically resistivity.
34. An assembly according to claim 27, wherein the electrical heating system comprises one or more armour layers selected among carcass, tensile armour and pressure armour.
35. An assembly according to claim 27, wherein the electrical heating system comprises one or more wires.
36. An assembly according to claim 27, wherein the coating is selected from an epoxy coating, a polyurethane coating, a polytetrafluoroethylene coating, a fluorinated ethylene propylene coating, a polyvinyl chloride coating, an enamel coating, a ceramic coating, a glass coating and combinations thereof.
37 An assembly according to claim 27, wherein the coating is applied with a thickness from about 0,05 mm to about 5 mm.
38. An assembly according to claim 27, wherein the end-fitting comprises further parts comprising insulating material.
39. An assembly according to claim 27, wherein the end-fitting comprises an insulating coating on the outer surface.
40. An assembly according to claim 27, wherein the end-fitting comprises a protective sleeve.
41. An assembly according to claim 27, wherein the end-fitting is housed in an electrical insulating housing.
42. A method for reducing the risk of galvanic corrosion in an end-fitting for connecting an unbonded flexible pipe comprising electrical heating means to a connector, said method comprises: providing an end-fitting having a through-going opening with a centerline and a front end and a rear end, and comprising means for establishing an electrical connection to the heating means in said unbonded flexible pipe, said end-fitting comprises at least one first metallic part having a first surface adapted for contacting a second surface of at least one second part in the end-fitting; subjecting the first surface of the first metallic part for a treatment to obtain a substantially clean surface; applying a coating having a high electrical resistance to the cleaned first surface; and curing the applied coating to obtain a coating having a high electrically resistivity, wherein said coating is an electrically insulating coating having an electrically resistivity of at least 10.sup.7 Ω.Math.m.
43. A method according to claim 42, wherein the second surface of the second part is subjected to a treatment to obtain a substantially clean second surface and applying the clean second surface with a coating having a high electrical resistance.
44. A method according to claim 42, wherein the coating is selected from an epoxy coating, a polyurethane coating, a polytetrafluoroethylene coating, a fluorinated ethylene propylene coating, an enamel coating and combinations thereof.
45. A method according to claim 42, wherein treatment of the surface is a sand blasting, a mechanical cleaning, a chemical etching, an electro polishing or a combination of two or more of the mentioned treatments.
46. A method according to claim 42, comprising the further step of applying an adhesive layer to the cleaned surface.
Description
DETAILED DESCRIPTION OF THE INVENTION
[0062] The invention will now be described in further details with reference to embodiments shown in the drawing in which:
[0063]
[0064]
[0065]
[0066] The figures are not accurate in every detail but only sketches intended to the show the principles of the invention. Details which are not a part of the invention may have been omitted. In the figures the same reference signs are used for the same parts.
[0067]
[0068] The internal pressure sheath 3 defines the bore of the pipe with the axis 9. The internal pressure sheath 3 is an extruded layer made from a polyethylene (PE) or a polyvinylidene fluoride (PVDF) material. The insulating layer 5 is also a fluid-tight layer made from polyethylene (PE) or polyvinylidene fluoride (PVDF) material. The outer sheath 8 is a fluid-tight layer, which should protect the pipe from e.g. ingress of water into the armour layers. The outer sheath is made from polyethylene or polypropylene (PP)
[0069] The carcass 2, the pressure armour 4 and the tensile armour layers 6, 7 are made from a metallic material which are electrically conductive, such as stainless steel.
[0070]
[0071]
[0072] The end-fitting 10 has a rear end 12 comprising a flange with holes 14 adapted for receiving bolts which may attach the end-fitting 10 to a connector. The end-fitting further comprise an inner casing 13 and an outer casing 15.
[0073] The flexible unbonded pipe 1 enters the end-fitting 10 at the front end 11 and the carcass 2 and the internal pressure sheath 3 continue into the though-going opening 17 until the carcass 2 is terminated at the carcass ring 18. The carcass ring 18 is embedded in an insulating member 19 made from rubber material. The insulating member 19 is also adjacent to the termination of the internal pressure sheath 3. The carcass ring 18 fixates the carcass 2 in the end-fitting by means of lock-nuts (not visible).
[0074] The internal pressure sheath 3 is fixed in the end-fitting 10 by means of a ring-shaped member 20 and a further device 21 which is pressed into the surface of the internal pressure sheath 3.
[0075] The pressure armour 4 and the electrically insulating layer 5 are terminated adjacent to the ring-shaped member 20 and the further device 21. The pressure armour 4 and the electrically insulating layer 5 are held by a ring-shaped fixing device 22
[0076] The tensile armours 6 and 7 are terminated in a cavity 23 formed between the inner casing 13 and the outer casing 15. The cavity 23 is filled with epoxy which fixes the tensile armours 6 and 7, but also functions as insulating material.
[0077] The outer sheath 8 is terminated in a recess in the outer casing 15. The end-fitting 10 is equipped with electric wiring. One electric wire 24 connects the carcass ring 18 with a contact point on the surface of the end-fitting. A second electric wire 25 connects the tensile armour 6, 7 with a contact point on the surface of the end-fitting. The two contact points 24 and 25 may be connected to a power source, or alternatively the two contact points 24 and 25 may be mutually connected. The wiring and the contact points are properly insulated by use of suitable insulating material.
[0078] The dotted line 9 indicates the center line of the through-going opening 17 and the radius of the through-going opening is indicated by letter R. Thus,
[0079] In the particular embodiment of the end-fitting 1 the inner casing 13 and the outer casing 15 are made from metallic material. Moreover, the parts 20 and 22 are made from a metallic material. The surface 26 of the inner casing 13 facing the through-going opening 17 is coated with a coating 27 having a high electrically resistivity. Also the surface 28 of the outer casing 15 facing the through-going opening 17 is coated with a coating 29 having a high electrically resistivity. Moreover, the surfaces of the 20 and 22 are coated with a coating 30 having a high electrically resistivity. In this embodiment, the coating having a high electrically resistivity is an epoxy coating having an electrically resistivity of more than 10.sup.10 Ω.Math.m and applied with a thickness of approximately 1 mm.
[0080] In the embodiment depicted in