WO2014095836A1 - Pipe connector and method - Google Patents

Pipe connector and method Download PDF

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Publication number
WO2014095836A1
WO2014095836A1 PCT/EP2013/076868 EP2013076868W WO2014095836A1 WO 2014095836 A1 WO2014095836 A1 WO 2014095836A1 EP 2013076868 W EP2013076868 W EP 2013076868W WO 2014095836 A1 WO2014095836 A1 WO 2014095836A1
Authority
WO
WIPO (PCT)
Prior art keywords
coating
connector
contact surface
galling
galling resistant
Prior art date
Application number
PCT/EP2013/076868
Other languages
French (fr)
Inventor
Petrus Cornelis Kriesels
Egbert Jan Van Riet
Mark Michael SHUSTER
Djurre Hans Zijsling
Original Assignee
Shell Internationale Research Maatschappij B.V.
Shell Oil Company
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Application filed by Shell Internationale Research Maatschappij B.V., Shell Oil Company filed Critical Shell Internationale Research Maatschappij B.V.
Priority to EP13814876.2A priority Critical patent/EP2935651A1/en
Priority to US14/653,398 priority patent/US9677179B2/en
Publication of WO2014095836A1 publication Critical patent/WO2014095836A1/en

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Classifications

    • CCHEMISTRY; METALLURGY
    • C23COATING METALLIC MATERIAL; COATING MATERIAL WITH METALLIC MATERIAL; CHEMICAL SURFACE TREATMENT; DIFFUSION TREATMENT OF METALLIC MATERIAL; COATING BY VACUUM EVAPORATION, BY SPUTTERING, BY ION IMPLANTATION OR BY CHEMICAL VAPOUR DEPOSITION, IN GENERAL; INHIBITING CORROSION OF METALLIC MATERIAL OR INCRUSTATION IN GENERAL
    • C23CCOATING METALLIC MATERIAL; COATING MATERIAL WITH METALLIC MATERIAL; SURFACE TREATMENT OF METALLIC MATERIAL BY DIFFUSION INTO THE SURFACE, BY CHEMICAL CONVERSION OR SUBSTITUTION; COATING BY VACUUM EVAPORATION, BY SPUTTERING, BY ION IMPLANTATION OR BY CHEMICAL VAPOUR DEPOSITION, IN GENERAL
    • C23C24/00Coating starting from inorganic powder
    • C23C24/08Coating starting from inorganic powder by application of heat or pressure and heat
    • C23C24/10Coating starting from inorganic powder by application of heat or pressure and heat with intermediate formation of a liquid phase in the layer
    • C23C24/103Coating with metallic material, i.e. metals or metal alloys, optionally comprising hard particles, e.g. oxides, carbides or nitrides
    • C23C24/106Coating with metal alloys or metal elements only
    • CCHEMISTRY; METALLURGY
    • C23COATING METALLIC MATERIAL; COATING MATERIAL WITH METALLIC MATERIAL; CHEMICAL SURFACE TREATMENT; DIFFUSION TREATMENT OF METALLIC MATERIAL; COATING BY VACUUM EVAPORATION, BY SPUTTERING, BY ION IMPLANTATION OR BY CHEMICAL VAPOUR DEPOSITION, IN GENERAL; INHIBITING CORROSION OF METALLIC MATERIAL OR INCRUSTATION IN GENERAL
    • C23CCOATING METALLIC MATERIAL; COATING MATERIAL WITH METALLIC MATERIAL; SURFACE TREATMENT OF METALLIC MATERIAL BY DIFFUSION INTO THE SURFACE, BY CHEMICAL CONVERSION OR SUBSTITUTION; COATING BY VACUUM EVAPORATION, BY SPUTTERING, BY ION IMPLANTATION OR BY CHEMICAL VAPOUR DEPOSITION, IN GENERAL
    • C23C4/00Coating by spraying the coating material in the molten state, e.g. by flame, plasma or electric discharge
    • C23C4/18After-treatment
    • CCHEMISTRY; METALLURGY
    • C25ELECTROLYTIC OR ELECTROPHORETIC PROCESSES; APPARATUS THEREFOR
    • C25DPROCESSES FOR THE ELECTROLYTIC OR ELECTROPHORETIC PRODUCTION OF COATINGS; ELECTROFORMING; APPARATUS THEREFOR
    • C25D15/00Electrolytic or electrophoretic production of coatings containing embedded materials, e.g. particles, whiskers, wires
    • CCHEMISTRY; METALLURGY
    • C25ELECTROLYTIC OR ELECTROPHORETIC PROCESSES; APPARATUS THEREFOR
    • C25DPROCESSES FOR THE ELECTROLYTIC OR ELECTROPHORETIC PRODUCTION OF COATINGS; ELECTROFORMING; APPARATUS THEREFOR
    • C25D5/00Electroplating characterised by the process; Pretreatment or after-treatment of workpieces
    • C25D5/48After-treatment of electroplated surfaces
    • C25D5/50After-treatment of electroplated surfaces by heat-treatment
    • C25D5/505After-treatment of electroplated surfaces by heat-treatment of electroplated tin coatings, e.g. by melting
    • CCHEMISTRY; METALLURGY
    • C25ELECTROLYTIC OR ELECTROPHORETIC PROCESSES; APPARATUS THEREFOR
    • C25DPROCESSES FOR THE ELECTROLYTIC OR ELECTROPHORETIC PRODUCTION OF COATINGS; ELECTROFORMING; APPARATUS THEREFOR
    • C25D7/00Electroplating characterised by the article coated
    • C25D7/04Tubes; Rings; Hollow bodies
    • EFIXED CONSTRUCTIONS
    • E21EARTH OR ROCK DRILLING; MINING
    • E21BEARTH OR ROCK DRILLING; OBTAINING OIL, GAS, WATER, SOLUBLE OR MELTABLE MATERIALS OR A SLURRY OF MINERALS FROM WELLS
    • E21B17/00Drilling rods or pipes; Flexible drill strings; Kellies; Drill collars; Sucker rods; Cables; Casings; Tubings
    • E21B17/02Couplings; joints
    • E21B17/04Couplings; joints between rod or the like and bit or between rod and rod or the like
    • E21B17/042Threaded
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F16ENGINEERING ELEMENTS AND UNITS; GENERAL MEASURES FOR PRODUCING AND MAINTAINING EFFECTIVE FUNCTIONING OF MACHINES OR INSTALLATIONS; THERMAL INSULATION IN GENERAL
    • F16BDEVICES FOR FASTENING OR SECURING CONSTRUCTIONAL ELEMENTS OR MACHINE PARTS TOGETHER, e.g. NAILS, BOLTS, CIRCLIPS, CLAMPS, CLIPS OR WEDGES; JOINTS OR JOINTING
    • F16B33/00Features common to bolt and nut
    • F16B33/06Surface treatment of parts furnished with screw-thread, e.g. for preventing seizure or fretting

Definitions

  • API American Petroleum Institute
  • API connectors which include several types of threaded connectors.
  • API connectors conform to
  • the process of laser treatment may provide fully melted or just sintered metal. In the latter case the coating will have some residual porosity which can be an additional source of ductility thereby providing enhanced sealing during assembly of the connector members.
  • a selected one of the connector members can be provided with said galling resistant coating which is arranged so as to contact the base metal of the other connector member when the connector members are interconnected, wherein said galling resistant coating and said base metal have tribological compatible contact surfaces.
  • the term 'base metal' refers to the metal the connector member is made of, excluding the coating (s) .
  • the selected connector member suitably is the box member. This would be particularly attractive for coupled connections whereby two pipe sections are provided with respective pin members that are inserted into a box member at opposite ends thereof.
  • box member is also referred to as 'coupling'. Only the coupling would have to be provided with the coating, which simplifies logistics.
  • the pin member 6 has an end portion 20 with an outer contact surface 22 which tapers slightly radially inward in axial direction toward the end of the pin member 6.
  • the box member 10 is provided with a corresponding inner contact surface 24 that is in sealing contact with the outer contact surface 22 when the pin member 6 and the box member 10 are interconnected.
  • the pipe connector can be made-up and broken-out multiple times without the occurrence of galling of the contact surfaces, therefore carbon steel can be used for the base material of the connector rather than a high grade steel. Consequently the costs of the connector are significantly reduced compared to prior art premium connectors. Furthermore, the coating applied on the contact surface (s) of a connection cut on a carbon steel tubular provides the connection with corrosion resistant properties .
  • interference pressure in the sealing section to be accurately controlled as it is governed by the yield strength of the base material of the sealing section.
  • this enables the manufacturing tolerances of the sealing areas of the connection to be relaxed and thus costs to be reduced.
  • Suitable galling resistant metals or metal alloys for use in the method of the invention are listed in the following table (wherein all products are referred to by their Trade Mark names) :
  • Inconel 625 Ni-22Cr-8Mo-3Nb-5Fe composition
  • Hastelloy C 276 or Diamalloy 1008 run against hybrid coatings. For instance WOKA 3602 on top of Metco 51 or Inconel 625.
  • the present invention may also provide a method for coating an inner surface of a pipe, in particular an OCTG (oil country tubular goods) pipe, with a hardened coating. Coating the inner surface allows the use of relatively cheap pipe, made from relatively low-cost steel, which is subsequently provided with a suitable coating layer, as described above.

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  • Chemical & Material Sciences (AREA)
  • Engineering & Computer Science (AREA)
  • Chemical Kinetics & Catalysis (AREA)
  • Materials Engineering (AREA)
  • Metallurgy (AREA)
  • Organic Chemistry (AREA)
  • Mechanical Engineering (AREA)
  • Electrochemistry (AREA)
  • Life Sciences & Earth Sciences (AREA)
  • Geology (AREA)
  • Mining & Mineral Resources (AREA)
  • General Engineering & Computer Science (AREA)
  • Physics & Mathematics (AREA)
  • Environmental & Geological Engineering (AREA)
  • Fluid Mechanics (AREA)
  • General Life Sciences & Earth Sciences (AREA)
  • Geochemistry & Mineralogy (AREA)
  • Plasma & Fusion (AREA)
  • Other Surface Treatments For Metallic Materials (AREA)

Abstract

A method is provided of creating a pipe connector including a first connector member and a second connector member, said connector members being adapted to be connected and disconnected multiple times, the method comprising: a) providing at least one of the connector members with a contact surface; b) depositing particles of a galling resistant metal on each said contact surface; c) at least partially melting the particles of the galling resistant metal by subjecting the particles to a quantity of heat; and d) allowing the molten galling resistant metal to solidify thereby forming a galling resistant metal coating which is metallurgically bonded to the contact surface. The heat may be provided in the form of radiant energy, using a laser beam.

Description

PIPE CONNECTOR AND METHOD
The present invention relates to a method of creating a pipe connector including a first connector member and a second connector member. The first and second connector members can be, for example, a pin member and a box member, wherein the pin member has a threaded outer surface and the box member has a corresponding threaded inner surface to allow the pin member to be screwed into the box member to form a screwed joint.
Pipe connectors of this type are generally used in oilfield applications, for instance to connect sections of casing or production tubing. Often, oilfield
applications require the connectors to provide liquid tight and/or gas-tight sealing. Also, the connectors preferably have a strength approximately equal to the body strength of the pipe sections to be connected by the connectors .
Commonly used connectors are API (American Petroleum Institute) connectors, which include several types of threaded connectors. API connectors conform to
specifications as set by the American Petroleum
Institute. API connectors generally provide satisfactory performance at relatively low cost. However these connectors may lack reliable fluid-tightness, for example in applications involving high pressure, high temperature or deep wellbores. In such difficult applications, premium connectors can be applied which provide enhanced performance but are also more expensive.
An important qualification requirement for a premium connector is the ability to be made-up and broken-out at least three times without diminished sealing capability. One problem to be overcome in designing a premium connector is the phenomenon of galling ('cold welding') of the contact surfaces . Due to the stringent sealing requirements for a premium connector, the contact surfaces of the pin and box members slide along each other at high compressive stress during make-up and break-out. This may lead to galling of the contact surfaces which results in significant damage.
US patent 4,468,309 discloses a method of resisting galling of threaded members of a connector whereby a material film is deposited by high energy ion plating of at least one member for providing a thin mechanically insulating film on the metal-to-metal surfaces having a low shear stress value in order to separate the metal-to- metal surfaces from each other for preventing galling.
It is a drawback of the known method that the high energy ion plating process occurs in a vacuum chamber, which is impractical for use with oilfield tubulars .
Furthermore, there is a need to provide a pipe connector that can be made-up and broken-out multiple times without the occurrence of galling and without diminished fluid- tightness .
It is an object of the invention to provide an improved method of creating a pipe connector which overcomes the drawbacks of the prior art.
In accordance with the invention there is provided a method of creating a pipe connector including a first connector member and a second connector member, said connector members being adapted to be connected and disconnected multiple times, the method comprising:
a) providing at least one of the connector members with a contact surface;
b) depositing particles of a galling resistant metal on each said contact surface; c) at least partially melting the particles of the galling resistant metal by subjecting the particles to a quantity of heat; and
d) allowing the molten galling resistant metal to solidify thereby forming a galling resistant metal coating which is metallurgically bonded to the contact surface .
In applications whereby the particles are only partially melted the process may be referred to as
' sintering' .
The invention also relates to a pipe connector obtained with the method of the invention.
By melting or sintering the galling resistant metal on each contact surface followed by solidification of the molten metal, it is achieved that a metallurgical bonding between the galling resistant metal coating and the base metal of the contact surface is obtained. In view thereof higher contact stresses can be allowed between the connector members than in the prior art, and therefore the design of the connector members can be optimised whereby the contact stresses are less of a limiting factor. Moreover, an inherent advantage of higher contact stresses between the ductile metal surfaces of the connector members relates to improved sealing capability between the connector members due to plastic deformation of local asperities at the ductile metal surfaces.
Furthermore the molten metal spreads along the contact surface so that after solidification of the metal, the coating has a smooth surface .
In order to effectively melt or sinter the galling resistant metal without affecting the microstructure of the underlying base metal, suitably said quantity of heat is provided in the form of radiant energy. The heat may be particularly focused to the galling resistant metal if said quantity of radiant energy is induced by a laser beam. In this way metallurgical bonding of the coating is achieved without deep
penetration of heat into the base metal and without undesired microstructure changes of the base metal. The process of laser treatment may provide fully melted or just sintered metal. In the latter case the coating will have some residual porosity which can be an additional source of ductility thereby providing enhanced sealing during assembly of the connector members.
The laser beam may comprise a point laser beam. In such application, the point laser beam can be moved relative to the contact surface so as to cover the entire contact surface. For example, if the contact surface extends in circumferential direction of the connector member, such movement can be achieved by fast rotation of the connector member relative to the point laser beam. Alternatively, the connector member may be moved relative to the laser beam.
To achieve a uniform distribution of the radiant energy across the contact surface with galling resistant metal, suitably the laser beam comprises a linear laser beam. A linear laser beam herein implies a laser beam that provides not only a dot of light but rather a line on the contact surface. In other words, the laser beam provides a two-dimensional line on the work piece (e.g. the connector member) as opposed to the usual one- dimensional point of light as typically provided by a laser beam. Patent application WO-2012/032116-Al
discloses an example of an apparatus for generating a linear laser beam. In an embodiment of the method of the invention, the connector member has a central longitudinal axis and the contact surface is of substantially circular cross- sectional shape, and wherein one of the connector member and the laser beam is rotated relative to the other of the connector member and the laser beam about said central longitudinal axis during step (c) . Also, the linear laser beam can be provided to have a circular cross-sectional shape whereby the laser beam radiates along a circular line on the contact surface. In that case the linear laser beam can be translated in axial direction of the connector member while no relative rotation between the connector member and the laser beam is needed.
In a further embodiment, said at least one connector member is integrally formed with a pipe and said metal is corrosion resistant, wherein the method further comprises depositing said particles on the inner surface of the pipe, at least partially melting the particles on said inner surface by subjecting the particles to the laser beam, and allowing the molten metal on said inner surface to solidify so as to form a corrosion resistant metal coating bonded to the inner surface of the pipe. Suitably the galling resistant metal coating on the contact surface extends continuously to the corrosion resistant metal coating on the inner surface of the pipe. In this manner the galling resistant coating on the contact surface and the corrosion resistant coating on the inner surface are formed as a single, continuous layer.
A selected one of the connector members can be provided with said galling resistant coating which is arranged so as to contact the base metal of the other connector member when the connector members are interconnected, wherein said galling resistant coating and said base metal have tribological compatible contact surfaces. Herein the term 'base metal' refers to the metal the connector member is made of, excluding the coating (s) . For example, if the connector members include one or more pin members and a box member, said selected connector member suitably is the box member. This would be particularly attractive for coupled connections whereby two pipe sections are provided with respective pin members that are inserted into a box member at opposite ends thereof. Such box member is also referred to as 'coupling'. Only the coupling would have to be provided with the coating, which simplifies logistics.
For enhanced galling resistance, suitably a first said galling resistant coating is provided to the first connector member and a second said galling resistant coating is provided to the second connector member, the first and second coatings being in contact with each other when the connector members are interconnected, and wherein the first and second coatings have tribological compatible contact surfaces.
Enhanced tribological compatibility of the coating surfaces is achieved if the hardness of the first galling resistant coating differs from the hardness of the second galling resistant coating. During make-up the softer coating will plastically deform to fill up the micro- asperities at the surface of the harder coating which improves the sealing performance of the connector.
For example, adequate tribological compatibility between the coatings is achieved if the first galling resistant metal comprises Inconel 625 (trade mark) and the second galling resistant metal comprises Hastelloy C 276 (trade mark) . It was found that enhanced resistance against galling is achieved if each coating of galling resistant metal has a positive hardness gradient in the depth direction of the coating. Herein the coating hardness increases with depth into the coating layer, typically from the outer surface of the coating towards the base metal of the connector member. This may be explained by
considering that after cold welding of local asperities at the contact surfaces, continued relative sliding of the contact surfaces leads to shearing-off of material with lowest hardness which is at the contact surface rather than deeper into the coating. Substantial damage to the coating is thereby prevented.
Such positive hardness gradient can be accomplished by a combination of optimum powder (i.e. metal particles) composition and energy source such as a linear laser. Since the linear laser beam can be precisely focused on the surface of the coating layer, the metal deeper into the coating layer is less affected by the heat from the laser than the metal at the surface of the coating layer, and therefore retains higher hardness than the metal at the surface of the coating layer. Suitably step (b) comprises depositing the particles of galling resistant metal on the contact surface by a method selected from thermal spraying, electroplating, brushing, and dipping the contact surface into the galling resistant metal. The thermal spraying method may be, for example, plasma spraying or high velocity oxy-fuel coating spraying (HVOF) .
The galling resistant metal advantageously comprises a corrosion resistant alloy. The invention will be described in more detail and by way of example with reference to the accompanying schematic drawings in which:
Fig. la shows, in longitudinal section, an embodiment of a pipe connector obtained with the method of the invention ;
Fig. lb shows a portion of the pipe connector of Fig. la in more detail;
Fig. 2a shows a perspective view of the connector of Fig. la with the box member partially cut away;
Fig. 2b shows detail A of Fig. 2a;
Fig. 2c shows detail B of Fig. 2b;
Figs. 3a-d show various stages during local galling of two contact surfaces;
Fig. 4a shows a side view of a pin member of the connector of Fig. la during melting of galling resistant metal ;
Fig. 4b shows a top view of the pin member during melting of galling resistant metal;
Fig. 4c shows an end view of the pin member during melting of galling resistant metal;
Fig. 5a shows, in longitudinal section, a portion of the box member provided with a galling resistant coating; and
Fig. 5b shows, in longitudinal section, a portion of the pin member provided with a galling resistant coating.
In the figures and the detailed description, like reference signs relate to like components.
Figs. la,b show, in longitudinal section, a tubular pipe connector 1 interconnecting a first pipe 2 and a second pipe 4 (Fig. la) . The pipe connector 1 comprises a first pin member 6 integrally formed with the first pipe 2, a second pin member 8 integrally formed with the second pipe 4, and a box member 10. Reference numeral 12 represents a central longitudinal axis of the pipe connector 1. The pipe connector is symmetrical relative to a transverse plane 14 represented here by dotted line 14. For ease of reference only the portion of the pipe connector left of the transverse plane 14 will be described, the other portion being identical albeit symmetrical thereto.
As shown in more detail in Fig. lb, the pin member 6 has a threaded outer surface 16 and the box member 10 has a threaded inner surface 18, whereby the respective threads of the threaded surfaces 16, 18 correspond to each other so as to allow the pin member 6 to be screwed into the box member 10. The threaded outer surface 16 of the pin member tapers from a relatively large diameter to a relatively small diameter and the threaded inner surface 18 of the box member tapers in corresponding manner .
The pin member 6 has an end portion 20 with an outer contact surface 22 which tapers slightly radially inward in axial direction toward the end of the pin member 6. The box member 10 is provided with a corresponding inner contact surface 24 that is in sealing contact with the outer contact surface 22 when the pin member 6 and the box member 10 are interconnected.
Figs . 2a-c show the pipe connector 1 with the pin member 6 connected to the box member 10 whereby the box member 10 is partially cut away. Fig. 2b shows detail A indicating the end portion 20 of the pin member 6, and Fig. 2c shows detail B indicating the outer contact surface 22 of the pin member 6 in sealing contact with the inner contact surface 24 of the box member 10. Figs . 3a-d schematically show various stages of the mechanism of local galling of two contact surfaces at a microscopic scale. After initial contact between two irregularities 30, 32 of the surfaces (Fig. 3a) relative sliding movement of the contact surfaces, indicated by reference sign 34, leads to plastic deformation of the irregularities 30, 32 (Fig. 3b). Continued relative movement induces high compressive stresses between the irregularities 30, 32 thus leading to cold welding of the irregularities. Upon further relative movement, the welded irregularities 30, 32 are sheared off the contact surfaces which implies that small portions of material are transferred from one contact surface to the other, thus leading to local damage of the contact surfaces.
Figs. 4a-c respectively show a side view (Fig. 4a), a top view (Fig. 4b) and an end view (Fig. 4c) of the pin member 6 whereby the contact surface 22 is subjected to a linear laser beam 36 emitted by a laser apparatus 38. The linear laser beam 36 induces a laser line as opposed to the more general laser point, and has sufficient energy to induce melting of the galling resistant metal on the contact surface 22.
Figs. 5a, b show the end portion 20 of the pin member 6, whereby the outer contact surface 22 has been provided with a galling resistant coating 40 in
accordance with the method of the invention (Fig. 5a) . Similarly, the inner contact surface 24 of the box member 10 has been provided with a galling resistant coating 42 in accordance with the method of the invention (Fig. 5b) . Each coating 40, 42 has a thickness of about 10-1000 μηι, preferably between 50-100 μηι.
During normal operation with the method of the invention, the pin and box members 6, 10 are machined in conventional manner whereby the pin member is provided with the threaded outer surface 16 and the outer contact surface 22, and the box member 10 is provided with the threaded inner surface 18 and the inner contact surface 24. The contact surfaces 22, 24 are to be machined to a diameter such that the pin member 6 and the box member 10 can be adequately interconnected when the galling resistant coatings 40, 42 is provided to the respective contact surfaces. Thus, depending on geometrical
characteristics, it may be required to machine the outer contact surface 22 to a slightly smaller diameter than conventionally, i.e. if coating 40 is absent. Similarly it may be required to machine the inner contact surface 22 to a slightly larger diameter than conventionally.
In a next step, the contact surfaces 22, 24 are thoroughly cleaned and particles of galling resistant metal are applied to the contact surface 22, 24. This can be done in any suitable manner provided the metal particles adhere to the respective contact surfaces. For example, the particles can be applied by thermal
spraying, electroplating, or brushing. Also the galling resistant metal can be applied to the contact surfaces using a spatula or by dipping the contact surfaces into the galling resistant metal. Various suitable galling resistant metals can be used for the particles. In the present example, the metal of the particles applied to one of the contact surfaces is Inconel 625 (trade mark), and the metal of the particles applied to the other contact surface is Hastelloy C 276. It has been found that these materials show adequate galling resistant performance when in sliding contact with each other.
In a subsequent step the contact surface 22 with the galling resistant metal is subjected to the linear laser beam 36 emitted by laser apparatus 38. Simultaneously the pin member is rotated about its central longitudinal axis 12, as illustrated by reference sign 44. The galling resistant metal along the entire circumference of the contact surface 22 is thereby subjected to the linear laser beam. The high radiation energy of the laser beam causes melting of the galling resistant metal whereby the molten galling resistant metal flows along the contact surface 22 to form a uniform layer of molten galling resistant metal. The linear laser beam is focussed on the galling resistant metal, without causing significant metallurgical changes in the base metal of the pin member 6 below the contact surface 22.
The metal particles on the contact surface 24 of the box member 10 are molten in similar manner, whereby the linear laser beam is directed to the contact surface 24 and the box member 10 is rotated simultaneously about its central longitudinal axis.
In a further step, the laser apparatus 38 is
deactivated to allow the molten galling resistant to solidify so as to form the respective galling resistant coatings 40, 42. In view of the intensive contact between the molten galling resistant metal with the underlying contact surfaces 22, 24, a metallurgical bond occurs between the coatings 40, 42 and the respective contact surfaces 22, 24. Furthermore, since the galling resistant metal is allowed to flow along the contact surfaces when in molten stage, each coating 40, 42 is of uniform thickness and has a very smooth outer surface.
Thereafter the pin member 6 and the box member 10 are interconnected whereby the threaded surfaces 16, 18 engage and whereby the galling resistant coatings 40, 42 slide along each other without any significant galling. After the pin and box members 6, 10 have been assembled, the galling resistant coatings 40, 42 are in sealing contact with each other .
In this manner it is achieved that the pipe connector can be made-up and broken-out multiple times without the occurrence of galling of the contact surfaces, therefore carbon steel can be used for the base material of the connector rather than a high grade steel. Consequently the costs of the connector are significantly reduced compared to prior art premium connectors. Furthermore, the coating applied on the contact surface (s) of a connection cut on a carbon steel tubular provides the connection with corrosion resistant properties .
Instead of providing each contact surface with a single galling resistant coating, multiple galling resistant coatings can be provided on the contact surface whereby the various coatings are arranged on top of each other. For example, a first top coating can be applied to provide maximum ductility, a second coating for superior sealing properties, and a third coating - bonded to the base metal of the connector member - for improved stress distribution in the base metal.
In a practical embodiment, thickness of the coating layer is in the order of 20 μηι to 2 mm. Thickness of the coating is preferably in the order of 100 to 300 urn . The galling resistant coating may have a hardness in the range of 100 to 1200 HV(120kg) . Hardness of the coating may for instance be above 200 HV and/or below 600 HV. Hardness gradient of the coating may increase from its outer surface towards the base metal of the connector member (e.g. pin or box) . The hardness may for instance increase in the order of 10 to 25% from the hardness value at its outer surface compared to the hardness value near the base metal.
In an exemplary embodiment, an unthreaded first contact surface on the first connector member was provided with a first coating comprising Hastelloy C 276.
Hardness of the first coating was about 248 HV. Thickness of the first coating was about 20 to 50 μηι.
A corresponding unthreaded second contact surface on the second connector member may be provided with a second coating. Said second coating may have multiple layers, wherein each layer having an increasing hardness in the comprising Inconel 625. Hardness of the second coating was about 400-450 HV at the surface. Hardness of the second coating was about 500-550 HV near the base metal of the connector member. Thickness of the second coating, in total was about 300 μηι. Thickness of the softer surface layer of the second coating was about 60 to 70 μπι. The hardness (Vickers Hardness) near the base metal was about 15% more than the hardness at the outer surface of the coating.
The connector was able to withstand at least 10 times making up the connector and breaking it apart again .
Thus, with the method of the invention a premium threaded connector is provided of which the mating surfaces of pin and box members are provided with a metallic coating which is bonded to the base material by a laser melting or sintering technology. This technology enables a wide range of metallic coatings to be applied with different chemical composition, mechanical and tribological properties. The coating can be applied to the contact surfaces forming the metal-to-metal seal and/or the threaded section (s) of the pin member and/or the box member .
For instance, the threaded sections of the pin and box of a relatively inexpensive threaded API connection may be provided with corresponding unthreaded sealing sections. Such sealing sections may be machined for instance at one or both ends of the threaded section. One or both of said contact surfaces may subsequently be provided with a coating, using the method according to the present invention. The resulting connector may provide fluid tightness, and preferably also gas tightness, comparable to a premium connector, while still being relatively inexpensive.
If the galling resistant coating is provided to the sealing section of the connector member (s), the sealing section can be designed for a higher interference pressure resulting in improved sealing performance. Such sealing section can have a minimal length and reduced thickness of the sealing lip of the pin member and box member. This enables the critical cross-sectional area of the
connector to be increased so that the mechanical
performance properties are enhanced. Also the galling resistant coating can be provided to the threaded section of each connector member. This allows the threaded section to be designed for improved mechanical performance and for increased contact stresses thus enabling a reduction of e.g. thread height and consequently an increase of the critical cross-section of the connector. A further improvement is achieved if the metallic coating has lubricating properties to minimize or eliminate the use of dope during make-up. This has HSE advantages and avoids problems associated with over-doping of connectors.
Furthermore, if the galling resistant coating is provided to the sealing section of the connector member (s), the sealing section can be designed to deform plastically during the first make-up of the connector members. The sealing section can be, for example, a sealing lip of the pin member or the box member. This enables the
interference pressure in the sealing section to be accurately controlled as it is governed by the yield strength of the base material of the sealing section. In addition this enables the manufacturing tolerances of the sealing areas of the connection to be relaxed and thus costs to be reduced.
Suitable galling resistant metals or metal alloys for use in the method of the invention are listed in the following table (wherein all products are referred to by their Trade Mark names) :
Metallic base Product
Nickel base Diamalloy; Hastelloy; Inconel
Cobalt base Tribolloy, ULTIMET
Molybdenum base Metco; AMDRY
Tungsten carbide WOKA
base
Some of the best test results were obtained with the following specific compositions (Trade Mark names):
Metallic base Product
Nickel base Diamalloy 1005; Hastelloy C276;
Inconel 625
Cobalt base Tribolloy 400, 800, 45 CNS, ULTIMET
Molybdenum base Metco 63NS; AMDRY 313X
Tungsten carbide WOKA 7203, 7207, 6352
base - li lt was found that metals with nickel base chemistry provide best anti-corrosive performance, metals with cobalt and molybdenum base provide best galling
resistance, and tungsten carbide base coatings provide highest hardness and corresponding sliding wear
resistance .
Materials of different coatings were tested for galling resistance against hardened mating surfaces.
Combinations of different coatings were tested and run against each other.
The galling resistant metal advantageously comprises a corrosion resistant alloy.
Good results after multiple times testing (minimum friction, maximum galling resistance) were obtained using various combinations of different coatings. Multiple times testing herein indicates, for instance, a cycle of three or more times make-up and break-up of the connections. One sample comprised Diamalloy 1008 or Hastelloy C 276 running against hybrid layers comprising thermo sprayed aluminum bronze (Metco 51 powder), then spray tungsten carbon nickel, cobalt (WOKA 3602 powder) . Another sample
comprised a triple layer combination comprising Inconel 625, aluminum bronze and tungsten carbide. After laser melting due to penetration of the low melting temperature, aluminum bronze alloy provided a clean surface having a relatively low friction copper film. The sample included a hard tungsten carbide layer on a fully metallurgically bonded aluminum bronze or inconel 625 layer.
Cross-sections of the pin or box members with spray coating before laser melting and after showed a tungsten carbide coating on top of an aluminum bronze coating. After laser heating, the aluminum bronze with low melting temperature spread out through the cross section of the spray coating and occurred on top of the deposited layer. The cross-section showed penetration of the copper all the way up to top of the surface of the multi-layer coating.
Another sample included three layers, for isntance Inconel 625, then aluminum bronze, and then tungsten carbide on top. The combination of the different
characteristics (hardness, ductility, corrosion
resistance, wear resistance, friction coefficient, strength, galling resistance, etc.) enabled to tune and optimize the properties for the multi-layered, for instance tribological, coating system for use as a metal- to-metal seal area.
Multiple tribological tests indicate that good galling resistance characteristics (minimum friction coefficient and maximum scuffing load) are provided by the following coatings (applied by thermo spray followed by laser melting) :
- Hastelloy C 276 (Ni-15Cr-16Mo-5W-4Fe composition) ;
- Amperit 529 (WC - Ni Mo Cr Fe 85/15 composition); - Amdry 313 (99.5% molybdenum composition);
- Diamalloy 1008 (17Cr 11Mo 3Ni 3Cu 3Si 4B
composition) ;
- Hybrid coating : WOKA 3602 (WC 9Co 5Cr lNi
composition) on top of aluminum bronze Metco 51 powder (Cu 9.5 Al lFe composition);
- Hybrid coating: WOKA 3602 (WC 9Co 5Cr lNi
composition) on top of Inconel 625 (Ni-22Cr-8Mo-3Nb-5Fe composition) .
The testing of the different coatings indicates that very good results are obtained using combinations of
Hastelloy C 276 or Diamalloy 1008 run against hybrid coatings. For instance WOKA 3602 on top of Metco 51 or Inconel 625. The present invention may also provide a method for coating an inner surface of a pipe, in particular an OCTG (oil country tubular goods) pipe, with a hardened coating. Coating the inner surface allows the use of relatively cheap pipe, made from relatively low-cost steel, which is subsequently provided with a suitable coating layer, as described above.
Laser melting of the applied coating layer may be challenging when the entire inner surface of an OCTG pipe section has to be treated. Herein, one pipe section typically has a length in the order of 10 meters. The entire inside surface of a pipe section may be laser treated, using for instance a method or system as
described in WO-2013/117754. Other suitable laser systems may for instance described in WO-2012156230, WO-201295422,
WO-201232116, and WO-201276651. Any combination of these laser systems may also be used.
The present invention is not limited to the
embodiments thereof as described above, wherein many modifications are conceivable within the scope of the appended claims. Features of respective embodiments may for instance be combined.

Claims

C L A I M S
1. A method of creating a pipe connector including a first connector member and a second connector member, said connector members being adapted to be connected and disconnected multiple times, the method comprising:
a) providing at least one of the connector members with a contact surface;
b) depositing particles of a galling resistant metal on each said contact surface;
c) at least partially melting the particles of the galling resistant metal by subjecting the particles to a quantity of heat; and
d) allowing the molten galling resistant metal to solidify thereby forming a galling resistant metal coating which is metallurgically bonded to the contact surface .
2. The method of claim 1, wherein said quantity of heat is provided in the form of radiant energy.
3. The method of claim 2, wherein said radiant energy is induced by a laser beam.
4. The method of claim 3, wherein the laser beam is a point laser beam.
5. The method of claim 3, wherein the laser beam is a linear laser beam.
6. The method of any one of claims 3-5, wherein the connector member has a central longitudinal axis and the contact surface is of substantially circular cross- sectional shape, and wherein one of the connector member and the laser beam is rotated relative to the other of the connector member and the laser beam about said central longitudinal axis during step (c).
7. The method of any one of claims 3-6, including the steps of:
integrally forming said at least one connector member on an end of a pipe;
depositing particles of said metal on an inner surface of said pipe, wherein said metal is corrosion resistant ;
at least partially melting the particles on said inner surface by subjecting the particles to a laser beam; and
allowing the molten metal on said inner surface to solidify thereby forming a corrosion resistant metal coating on the inner surface of the pipe.
8. The method of claim 7, wherein the galling resistant metal coating on the contact surface extends continuously to the corrosion resistant metal coating on the inner surface of the pipe.
9. The method of any one of claims 1-8, wherein one of the connector members is provided with said galling resistant coating;
the method including the step of contacting a base metal of the other one of the connector members with the galling resistant coating when the connector members are interconnected .
10. The method of claim 9, wherein the connector members include a pin member and a box member, and wherein said selected connector member is the box member.
11. The method of claim 1, including the steps of:
providing a first galling resistant coating to the first connector member;
providing a second galling resistant coating to the second connector member; and interconnecting the first and second connector members, wherein the first and second coatings contact each other.
12. The method of claim 11, wherein the first galling resistant coating and the second galling resistant coating have contact surfaces which are tribologically compatible to each other.
13. The method of claim 11 or 12, wherein a first hardness of the first galling resistant coating differs from a second hardness of the second galling resistant coating .
14. The method of claim 11, wherein the first galling resistant coating comprises Inconel 625 (trade mark) and the second galling resistant coating comprises Hastelloy C 276 (trade mark) .
15. The method of claim 1, including the steps of:
providing the first connector member with a first tapering threaded surface;
providing the second connector member with a second tapering threaded surface corresponding to the first treaded surface;
machining an unthreaded first contact surface on the first tapering threaded surface;
machining an unthreaded second contact surface, corresponding to the first contact surface, on the second tapering threaded surface; and
providing at least one of the first contact surface and the second contact surface with the galling resistant metal coating.
16. The method of claim 15, wherein the first tapering threaded surface and the second tapering threaded surface comprise threads according to an API standard.
17. The method of any one of claims 1-16, wherein each coating of galling resistant metal has a positive hardness gradient in a direction from the outer surface of the coating towards the base metal of the respective connector member.
18. The method of any one of claims 1-17, wherein step (b) comprises depositing the galling resistant metal on the contact surface by a method selected from thermal spraying, electroplating, brushing, and dipping the contact surface into a bath of the galling resistant metal .
19. The method of claim 18, wherein said thermal spraying includes one of plasma spraying and high velocity oxy- fuel coating spraying (HVOF) .
20. The method of any one of claims 1-19, wherein said contact surface is formed on a sealing portion of the respective connector member,
the method comprising the step of:
plastically deforming said sealing portion when the connector members are interconnected.
21. A pipe connector obtained with the method according to any one of claims 1-20.
PCT/EP2013/076868 2012-12-20 2013-12-17 Pipe connector and method WO2014095836A1 (en)

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EP12198537 2012-12-20

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Cited By (1)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
FR3101659A1 (en) * 2019-10-08 2021-04-09 Vallourec Oil And Gas France THREADED GASKET WITH WATERPROOFING REACHED BY ADDITIVE MANUFACTURING

Families Citing this family (5)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
WO2013124387A1 (en) 2012-02-23 2013-08-29 Shell Internationale Research Maatschappij B.V. Connector assembly
CN109667824B (en) * 2018-11-30 2020-12-04 河南航天精工制造有限公司 Aviation fastener
FR3105289B1 (en) * 2019-12-20 2022-02-25 Vallourec Oil & Gas France Integrated sensor connection
US11773656B2 (en) * 2022-09-01 2023-10-03 Joe Fox Lineable tubular
US20240191816A1 (en) * 2022-12-08 2024-06-13 Quantum Energy Technologies Llc Electrically insulated threaded connection

Citations (3)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US4468309A (en) * 1983-04-22 1984-08-28 White Engineering Corporation Method for resisting galling
US20100173172A1 (en) * 2009-01-08 2010-07-08 Eaton Corporation Wear-resistant coating system and method
CN101722403B (en) * 2008-10-29 2011-02-09 中国石油天然气集团公司 Method for manufacturing high steel grade sulfur resistant drill pipe by laser cladding

Family Cites Families (47)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US1859311A (en) 1926-06-01 1932-05-24 Jr Joseph H Mcevoy Pipe joint
US1875708A (en) 1930-01-28 1932-09-06 William G Couhig Method and means for sealing threaded pipe joints
US2127943A (en) 1934-01-30 1938-08-23 Titeflex Metal Hose Co Method of making corrugated flexible tubes
GB465538A (en) 1935-02-19 1937-05-10 Spang Chalfant And Co Inc Improvements in or relating to joints for securing together tubular members and to method of making the same
US2136458A (en) 1935-04-16 1938-11-15 Illinois Tool Works Tapping screw
US2140467A (en) 1937-12-01 1938-12-13 George E Failing Supply Compan Threaded joint
US2539056A (en) 1944-09-02 1951-01-23 Chicago Pneumatic Tool Co Method of assembling tool joints
US3822902A (en) 1972-12-13 1974-07-09 Exxon Production Research Co Connection for pipe joints
CH557499A (en) 1974-01-18 1974-12-31 Paveg Anstalt Plastomeric pipe joint seal - using plastic coating on the threads of coupling, e.g. sleeve or nipple
JPS60205091A (en) * 1984-03-29 1985-10-16 住友金属工業株式会社 Pipe joint for oil well pipe
US4688832A (en) 1984-08-13 1987-08-25 Hydril Company Well pipe joint
DE3679196D1 (en) * 1986-05-02 1991-06-13 Sumitomo Metal Ind CONNECTION FOR OILFIELD PIPES AND METHOD FOR THE PRODUCTION THEREOF.
US4962579A (en) 1988-09-02 1990-10-16 Exxon Production Research Company Torque position make-up of tubular connections
US5212885A (en) 1992-01-21 1993-05-25 Exxon Production Research Company High gas sealibility makeup for API buttress connections
US5398975A (en) 1992-03-13 1995-03-21 Centron Corporation Composite threaded pipe connectors and method
US5895079A (en) * 1996-02-21 1999-04-20 Kenneth J. Carstensen Threaded connections utilizing composite materials
US6047997A (en) 1996-05-15 2000-04-11 Iberia Threading, Inc. Threaded connection with radiused surfaces
GB2320946B (en) 1997-01-06 2001-01-24 Caterpillar Inc Multi-component metallic fuel injector housing for a fluid
TW548334B (en) 1997-08-20 2003-08-21 Jgc Corp Heating furnace and method of manufacturing the same
JP3815864B2 (en) 1997-08-21 2006-08-30 株式会社杉浦製作所 Female thread member
US6417147B2 (en) 2000-02-29 2002-07-09 Showa Denko K.K. Cleaning agent composition, method for cleaning and use thereof
MY124816A (en) 2000-03-29 2006-07-31 Shell Int Research Method of joining metal oilfield tubulars and well provided therewith
US6592154B2 (en) 2000-05-18 2003-07-15 Daido Tokushuko Kabushiki Kaisha Metal-pipe bonded body, pipe expansion method of metal-pipe bonded body, and method for inspecting metal-pipe bonded body
JP3931564B2 (en) 2001-01-25 2007-06-20 住友金属工業株式会社 Threaded joint for steel pipes with excellent seizure resistance and rust resistance
EP2154406B1 (en) 2001-04-11 2013-07-31 Nippon Steel & Sumitomo Metal Corporation Threaded joint for steel pipes and process for the surface treatment thereof
US6767035B2 (en) 2002-03-11 2004-07-27 Weatherford/Lamb, Inc. High torque modified profile threaded tubular connection
GB0215668D0 (en) 2002-07-06 2002-08-14 Weatherford Lamb Coupling tubulars
US6817816B2 (en) 2002-08-13 2004-11-16 Nd Industries, Inc. Tapping assist fastening element and method
GB0221220D0 (en) 2002-09-13 2002-10-23 Weatherford Lamb Expanding coupling
US6905149B2 (en) 2003-01-02 2005-06-14 Grant Prideco, L.P. Pressure relieved thread connection
JP2007506922A (en) 2003-07-17 2007-03-22 シュナイダー ハラルド Screw connection element and its protective cover
US20050093250A1 (en) 2003-11-05 2005-05-05 Santi Nestor J. High-strength sealed connection for expandable tubulars
CA2552722C (en) 2004-01-12 2012-08-07 Shell Oil Company Expandable connection
DE102005036343A1 (en) 2005-07-29 2007-02-01 Viega Gmbh & Co. Kg Connecting element for producing a fluid-tight screw connection and method for its production
US7562911B2 (en) 2006-01-24 2009-07-21 Hydril Usa Manufacturing Llc Wedge thread with sealing metal
JP5028923B2 (en) * 2006-09-14 2012-09-19 住友金属工業株式会社 Threaded joints for steel pipes
CA2577734C (en) 2007-02-09 2014-12-02 Extreme Engineering Ltd. Electrical isolation connector for electromagnetic gap sub
US20110308798A1 (en) 2009-01-16 2011-12-22 Jemei Chang Systems and methods for producing oil and/or gas
FR2950667B1 (en) * 2009-09-30 2011-12-16 Vallourec Mannesmann Oil & Gas TRIPULATIVE TUBULAR THREADED COMPONENT AND METHOD FOR COATING SUCH COMPONENT
DE102010044875A1 (en) 2010-09-09 2012-03-15 Limo Patentverwaltung Gmbh & Co. Kg Illumination device for producing a linear intensity distribution in a working plane
DE102010053781B4 (en) 2010-12-08 2018-03-01 LIMO GmbH Device for converting laser radiation into laser radiation with an M profile
DE102011008192A1 (en) 2011-01-10 2012-07-12 Limo Patentverwaltung Gmbh & Co. Kg Device for converting laser radiation into laser beam with an M profile
US20130220636A1 (en) 2011-01-26 2013-08-29 Longyear Tm, Inc. Drill string components resistant to jamming
DE102011119565A1 (en) 2011-05-16 2012-11-22 Limo Patentverwaltung Gmbh & Co. Kg lighting device
US9194515B2 (en) 2012-01-19 2015-11-24 Nippon Steel & Sumitomo Metal Corporation Threaded joint for pipes
EP2812147A1 (en) 2012-02-10 2014-12-17 LIMO Patentverwaltung GmbH & Co. KG Device for the laser processing of a surface of a workpiece or for the post-treatment of a coating on the outside or the inside of a workpiece
WO2013124387A1 (en) 2012-02-23 2013-08-29 Shell Internationale Research Maatschappij B.V. Connector assembly

Patent Citations (3)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US4468309A (en) * 1983-04-22 1984-08-28 White Engineering Corporation Method for resisting galling
CN101722403B (en) * 2008-10-29 2011-02-09 中国石油天然气集团公司 Method for manufacturing high steel grade sulfur resistant drill pipe by laser cladding
US20100173172A1 (en) * 2009-01-08 2010-07-08 Eaton Corporation Wear-resistant coating system and method

Cited By (2)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
FR3101659A1 (en) * 2019-10-08 2021-04-09 Vallourec Oil And Gas France THREADED GASKET WITH WATERPROOFING REACHED BY ADDITIVE MANUFACTURING
WO2021069402A1 (en) * 2019-10-08 2021-04-15 Vallourec Oil And Gas France Threaded joint with a sealing seat produced by additive manufacture

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