WO2014013326A2 - Hot-wire consumable to provide self-lubricating weld or clad - Google Patents
Hot-wire consumable to provide self-lubricating weld or clad Download PDFInfo
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- WO2014013326A2 WO2014013326A2 PCT/IB2013/001573 IB2013001573W WO2014013326A2 WO 2014013326 A2 WO2014013326 A2 WO 2014013326A2 IB 2013001573 W IB2013001573 W IB 2013001573W WO 2014013326 A2 WO2014013326 A2 WO 2014013326A2
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- WIPO (PCT)
- Prior art keywords
- self
- consumable
- lubricating
- wire
- particles
- Prior art date
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Classifications
-
- B—PERFORMING OPERATIONS; TRANSPORTING
- B23—MACHINE TOOLS; METAL-WORKING NOT OTHERWISE PROVIDED FOR
- B23K—SOLDERING OR UNSOLDERING; WELDING; CLADDING OR PLATING BY SOLDERING OR WELDING; CUTTING BY APPLYING HEAT LOCALLY, e.g. FLAME CUTTING; WORKING BY LASER BEAM
- B23K35/00—Rods, electrodes, materials, or media, for use in soldering, welding, or cutting
- B23K35/22—Rods, electrodes, materials, or media, for use in soldering, welding, or cutting characterised by the composition or nature of the material
- B23K35/36—Selection of non-metallic compositions, e.g. coatings or fluxes; Selection of soldering or welding materials, conjoint with selection of non-metallic compositions, both selections being of interest
-
- B—PERFORMING OPERATIONS; TRANSPORTING
- B23—MACHINE TOOLS; METAL-WORKING NOT OTHERWISE PROVIDED FOR
- B23K—SOLDERING OR UNSOLDERING; WELDING; CLADDING OR PLATING BY SOLDERING OR WELDING; CUTTING BY APPLYING HEAT LOCALLY, e.g. FLAME CUTTING; WORKING BY LASER BEAM
- B23K35/00—Rods, electrodes, materials, or media, for use in soldering, welding, or cutting
- B23K35/22—Rods, electrodes, materials, or media, for use in soldering, welding, or cutting characterised by the composition or nature of the material
- B23K35/36—Selection of non-metallic compositions, e.g. coatings or fluxes; Selection of soldering or welding materials, conjoint with selection of non-metallic compositions, both selections being of interest
- B23K35/365—Selection of non-metallic compositions of coating materials either alone or conjoint with selection of soldering or welding materials
-
- B—PERFORMING OPERATIONS; TRANSPORTING
- B23—MACHINE TOOLS; METAL-WORKING NOT OTHERWISE PROVIDED FOR
- B23K—SOLDERING OR UNSOLDERING; WELDING; CLADDING OR PLATING BY SOLDERING OR WELDING; CUTTING BY APPLYING HEAT LOCALLY, e.g. FLAME CUTTING; WORKING BY LASER BEAM
- B23K9/00—Arc welding or cutting
- B23K9/24—Features related to electrodes
-
- B—PERFORMING OPERATIONS; TRANSPORTING
- B23—MACHINE TOOLS; METAL-WORKING NOT OTHERWISE PROVIDED FOR
- B23K—SOLDERING OR UNSOLDERING; WELDING; CLADDING OR PLATING BY SOLDERING OR WELDING; CUTTING BY APPLYING HEAT LOCALLY, e.g. FLAME CUTTING; WORKING BY LASER BEAM
- B23K35/00—Rods, electrodes, materials, or media, for use in soldering, welding, or cutting
- B23K35/22—Rods, electrodes, materials, or media, for use in soldering, welding, or cutting characterised by the composition or nature of the material
-
- B—PERFORMING OPERATIONS; TRANSPORTING
- B23—MACHINE TOOLS; METAL-WORKING NOT OTHERWISE PROVIDED FOR
- B23K—SOLDERING OR UNSOLDERING; WELDING; CLADDING OR PLATING BY SOLDERING OR WELDING; CUTTING BY APPLYING HEAT LOCALLY, e.g. FLAME CUTTING; WORKING BY LASER BEAM
- B23K35/00—Rods, electrodes, materials, or media, for use in soldering, welding, or cutting
- B23K35/22—Rods, electrodes, materials, or media, for use in soldering, welding, or cutting characterised by the composition or nature of the material
- B23K35/24—Selection of soldering or welding materials proper
-
- B—PERFORMING OPERATIONS; TRANSPORTING
- B23—MACHINE TOOLS; METAL-WORKING NOT OTHERWISE PROVIDED FOR
- B23K—SOLDERING OR UNSOLDERING; WELDING; CLADDING OR PLATING BY SOLDERING OR WELDING; CUTTING BY APPLYING HEAT LOCALLY, e.g. FLAME CUTTING; WORKING BY LASER BEAM
- B23K35/00—Rods, electrodes, materials, or media, for use in soldering, welding, or cutting
- B23K35/22—Rods, electrodes, materials, or media, for use in soldering, welding, or cutting characterised by the composition or nature of the material
- B23K35/36—Selection of non-metallic compositions, e.g. coatings or fluxes; Selection of soldering or welding materials, conjoint with selection of non-metallic compositions, both selections being of interest
- B23K35/368—Selection of non-metallic compositions of core materials either alone or conjoint with selection of soldering or welding materials
Definitions
- the invention is related to a filler wire (consumable) used in any of brazing, cladding, building up, filling, hard-facing overlaying, welding, and joining applications according to claim 1. More particularly, certain embodiments relate to a system and method that uses a filler wire to deposit self-lubricating material in a system for any of brazing, cladding, building up, filling, hard-facing overlaying, joining, and welding applications.
- a filler wire may be used to deposit material into the joint using a high temperature arc. Heat from the arc melts the filler wire and the melted filler wire droplets are added to the weld puddle.
- the composition of the filler wire can be limited as certain materials and compositions do not transfer easily, or at all, with the use of an arc. This can be due to a number of reasons, including the high temperature of the arc or due to the arc/plasma dynamics present in the arc.
- Embodiments of the present invention comprise a system and method to use at least one filler wire (consumable) to deposit self-lubricating material in a system for any of brazing, cladding, building up, filling, hard-facing overlaying, welding, and joining applications.
- the filler wire is composed of a base filler material consistent with commonly known consumable compositions used in various brazing, cladding, building up, filling, hard-facing overlaying, welding, and joining applications.
- the base filler material can comprise standard materials such as iron, carbon, silicon, nickel, chromium, copper, sulfur, etc., used in many standard mild steel solid wires such as, for example, ER70S-6.
- the consumable of the present invention includes self-lubricating materials.
- the self-lubricating materials include at least one of graphite particles and graphite powder, or other materials that can decrease the surface friction of a weld joint or cladding layer as it wears, including but not limited to copper, tin or molybdenum disulfide.
- the system includes a high intensity energy source which heats at least one workpiece at least while using a laser or a hot-wire power supply to heat at least one filler wire (consumable) that is consistent with the present invention.
- the method includes applying energy from a high intensity energy source to at least one work- piece to heat the at least one workpiece at least while using a laser or a hot-wire power supply to heat at least one filler wire (consumable) that is consistent with the present invention.
- the high intensity energy source may include at least one of a laser device, a plasma arc welding (PAW) device, a gas tungsten arc welding (GTAW) device, a gas metal arc welding (GMAW) device, a flux cored arc welding (FCAW) device, and a submerged arc welding (SAW) device.
- PAW plasma arc welding
- GTAW gas tungsten arc welding
- GMAW gas metal arc welding
- FCAW flux cored arc welding
- SAW submerged arc welding
- FIG. 1 illustrates a functional schematic block diagram of an exemplary embodiment of a combination filler wire feeder and energy source system for any of brazing, cladding, building up, filling, hard-facing overlaying, welding, and joining applications;
- FIGS. 2A-B illustrate exemplary embodiments of filler wires that can be used in the system of Figure 1 ;
- FIGS. 3A-B illustrate exemplary embodiments of filler wires that can be used in the system of Figure 1 ;
- FIG. 4 illustrates an exemplary embodiment of a filler wire that can be used in the system of Figure 1 ;
- FIG. 5A illustrates a cross-sectional view of an exemplary weld that can be formed using the exemplary embodiments of filler wires illustrated in Figures 2A and 3A;
- FIG. 5B illustrates a cross-sectional view of an exemplary weld that can be formed using the filler wires illustrated in Figures 2B and 3B;
- FIG. 6 illustrates a cross-sectional view of an exemplary weld that can be formed using the filler wires illustrated in Figure 4;
- FIG. 7 illustrates a functional schematic block diagram of an exemplary embodiment of a combination filler wire feeder and energy source system for any of brazing, cladding, building up, filling, hard-facing overlaying, welding, and joining applications;
- FIGs. 8A and 8B depict exemplary cladding layers depicting use of embodiments of the present invention.
- self-lubricating refers to a material or materials that reduces the surface friction of a weld joint or cladding layer as the weld or cladding layer wears.
- Welding/joining operations typically join multiple workpieces together in a welding operation where a filler metal is combined with at least some of the work- piece metal to form a joint.
- the filler material may not be of the exact composition as the workpieces. Accordingly, it is not uncommon for the joint to have properties that are different as compared to the rest of the workpiece. For example, the surface friction of the joint may be very high, whereas the surface friction of the workpiece is very low. In such cases, it would be desirable to have the joint composed of self-lubricating materials (for example, graphite) that produce a surface friction that is inline with the workpiece.
- self-lubricating materials for example, graphite
- the weld joint and/or the surfacing or cladding may be beneficial to use to provide a reduced friction surface, regardless of the surface friction of the workpiece.
- the traditional methods use an arc to transfer the filler material, the ability to add such self-lubricating materials to the filler material may be limited as the self-lubricating materials may get consumed in the arc, rather than being deposited in the weld puddle.
- exemplary embodiments of the present invention can deposit self-lubricating materials into the weld and provide significant advantages over existing welding technologies.
- FIG. 1 illustrates a functional schematic block diagram of an exemplary embodiment of a combination filler wire feeder and energy source system 100 for performing any of brazing, cladding, building up, filling, hard-facing overlaying, and joining/welding applications.
- the system 100 includes a high energy heat source capable of heating the workpiece 115 to form a weld puddle 145.
- the high energy heat source can be a laser subsystem 130/120 that includes a laser device 120 and a laser power supply 130 operatively connected to each other.
- the laser 120 is capable of focusing a laser beam 110 onto the workpiece 115 and the power supply 130 provides the power to operate the laser device 120.
- the laser subsystem 130/120 can be any type of high energy laser source, including but not limited to carbon dioxide, Nd:YAG, Yb-disk, YB-fiber, fiber delivered, or direct diode laser systems. Further, even white light or quartz laser type systems can be used if they have sufficient energy. For example, a high intensity energy source can provide at least 500 W/cm 2 . [0023] The following specification will repeatedly refer to the laser subsystem 130/120, beam 110 and laser power supply 130, however, it should be understood that this reference is exemplary as any high intensity energy source may be used.
- the high energy heat source may include at least one of an electron beam, a plasma arc welding subsystem, a gas tungsten arc welding subsystem, a gas metal arc welding subsystem, a flux cored arc welding subsystem, and a submerged arc welding subsystem.
- the high intensity energy sources such as the laser device 120 discussed herein, should be of a type having sufficient power to provide the necessary energy density for the desired welding operation. That is, the laser device 120 should have a capability to modify the energy from the laser power supply (or other source) to create and maintain a stable weld puddle throughout the welding process, and also reach the desired weld penetration.
- lasers should have the ability to "keyhole" into the workpieces being welded. This means that the laser should have sufficient power to penetrate (fully or partially) into the workpiece, while maintaining that level of penetration as the laser travels along the workpiece.
- Exemplary lasers should have power capabilities in the range of 1 to 20kW, and may have a power capability in the range of 5 to 20kW. In other exemplary embodiments, the power density can be in the range of 10 5 to 10 8 watts/cm 2 . Higher power lasers can be utilized, but can become very costly.
- the system 100 also includes a hot filler wire feeder subsystem capable of providing at least one resistive filler wire 140 to make contact with the work- piece 115 in the vicinity of the laser beam 1 0.
- a hot filler wire feeder subsystem capable of providing at least one resistive filler wire 140 to make contact with the work- piece 115 in the vicinity of the laser beam 1 0.
- the molten puddle i.e., weld puddle 145
- the hot filler wire feeder subsystem includes a filler wire feeder 150, a contact tube 160, and a hot wire power supply 170.
- the hot wire welding power supply 170 is a direct current (DC) power supply (that can be pulsed, for example), although alternating current (AC) or other types of power supplies are possi- ble as well.
- the wire 140 is fed from the filler wire feeder 150 through the contact tube 160 toward the workpiece 115 and extends beyond the tube 160.
- the extension portion of the filler wire 140 is resistance-heated by an electrical current from the hot wire welding power supply 170, which is operatively connected between the contact tube 160 and the workpiece 115.
- the extension portion of the wire 140 may be resistance-heated such that the extension portion approaches or reaches the melting point before contacting the weld puddle 145 on the workpiece 115. Because the filler wire 140 is heated to at or near its melting point, its presence in the weld puddle 145 will not appreciably cool or solidify the puddle 145 and the wire 140 is quickly consumed into the weld puddle 145.
- the laser beam 110 (or other energy source) serves to melt some of the base metal of the workpiece 115 to form the weld puddle 145 and complete the melting of the wire 140 onto the workpiece 115.
- the power supply 170 provides the energy needed to resistance-heat the filler wire 140 to or near a molten temperature.
- the system 100 also includes sensing and control unit 195.
- the sensing and control unit 195 can be operatively connected to the power supply 170, the wire feeder 150, and/or the laser power supply 130 to control the welding process in system 100.
- US Patent Application No. 13/212,025, titled "Method And System To Start And Use Combination Filler Wire Feed And High Intensity Energy Source For Welding" is incorporated by reference in its entirety, provides exemplary startup and post-startup control algorithms that may be incorporated in sensing and control unit 195 for operating system 100.
- the present invention melts the filler wire 140 into the weld puddle 145 rather than using a welding arc to heat, melt and transfer the filler wire 140 into the weld puddle 145.
- the filler wire can include materials that normally would be consumed in, or interact with the arc in such a manner as to not exist in the puddle following solidification.
- the filler wire 140 may include self-lubricating materials, such as graphite, in order to reduce the surface friction of the weld. These structures, due to heating or chemical activity in the arc, may change their structure, composition, and/or properties.
- self-lubricating is intended to mean materials or compositions that generally have a low friction level and are typically used to reduce the level of friction between mechanical components, including but not limited to graphite. Accordingly, the following description also uses the term “low friction” to describe the particles described herein. In either case these terms are intended to describe a material having a friction level less than that of either the workpiece and/or the solidified puddle 145.
- the self- lubricating material is composed of small graphite particles.
- the filler wire 140 is composed of the base filler material 141, which can be any standard filler material that is appropriate for the weld process.
- the base filler material 141 can comprise standard materials such as iron, carbon, silicon, nickel, chromium, copper, sulfur, etc., used in many standard mild steel solid wires such as, for example, ER70S-6.
- the consumable of the present invention includes self-lubricating materials.
- graphite particles 142 embedded in the base filler material 141 are graphite particles 142 that can have a nominal diameter of, for example, in the range of 5 microns to 200 microns, in other embodiments the particles are larger and can have a nominal diameter in the range of 200 to 400 microns.
- other particle sizes can be used without departing from the scope of the present invention, so long as the particles can be deposited and provide the desired performance.
- the graphite particles are large enough such that they do not react/mix with the puddle matrix too quickly. For example, in some instances the graphite will react with oxides (such as iron oxide) and give off CO, which can be disadvantageous.
- the density of the graphite particles 142 in filler material 141 will depend on environment that the workpiece will see. For example, the density of graphite particles 142 in filler material 141 will be higher for a workpiece that is exposed to an environment where other objects or materials are sliding on its surface than for a workpiece that is in a less abrasive environment.
- the volume percent of graphite particles in the wire 140 will be in the range of 5%-30%, while in other embodiments the range can be 5 to 50%. However, embodiments have a different density depending on the environment for the completed workpiece.
- graphite powder 143 is mixed with the filler material 141 to produce the filler wire 140.
- the graphite powder 143 is finer then the graphite particles 142 and the graphite powder 143 can have a nominal diameter in the range of 5 to 200 microns, and in other embodiments have a nominal diameter in the range of 20 to 100 microns.
- the volume percentage of graphite powder in the wire 140 can be in the range of 5% to 50%.
- the filler wire 140 may include a combination of graphite particles 142 and graphite powder 143 and the combined volume percentage being in the range of 5% to 50%. It is noted that the previously stated ranges are the same regardless of the self-lubricating materials used, for example, copper, tin or molybdenum disulfide, or other materials.
- the filler wire 140 with the embedded graphite particles 142 and/or graphite powder 143, may be manufactured using known methods such as combining the graphite particles or graphite powder with filler metal powder and then sintering them. It should be noted that although the following discussion often refers to "graphite" this is merely intended to be exemplary as other low friction materials can be used, such as those referenced previously. Additionally, a mixture of self-lubricating materials can be used. For example, the consumable may use a combination of different types of self-lubricating materials, including two or more of any of graphite, copper, tin, or molybdenum disulfide, or other low friction materials.
- the combinations can use any ratio of the different materials, for example the materials can have a 1 to 1 ratio such that 50% of the self lubricating materials is of one type and the other 50% is of a another type.
- embodiments can use other ratios, and can include any mixture of particle and powder size for each respective material utilized.
- the combined volume percentage should remain in the range of 5 to 50% as discussed above.
- the graphite particles 142 and/or graphite powder 143 are mixed or embedded in the base filler material 141 composition and manufactured similar to that of a solid-type filler wire.
- the filler wire is cored.
- filler material 141 forms a sheath around a core filled with flux 144.
- the graphite particles 142 and/or graphite powder 143 can be mixed or embedded in the flux 144 instead of (or in addition to) the filler material 141.
- the flux 144 is not included in the wire 140A, and only the graphite particles 142 and/or the graphite powder 143 are present in the core material.
- the core material can be manufactured similar to flux materials used in arc welding cored electrodes.
- the core can be a granular flux having a composition similar to that of existing flux cored electrodes, except that the wear low friction particles and/or powder is also added to the flux material.
- the construction of the wire 140A is similar to that of a metal cored wire where each of the sheath 141 and the core are solid, but the core has a solid composition including the low friction particles (e.g., graphite) as described herein.
- exemplary embodiments of the present invention are not limited to the configurations shown in the figures, such that the flux with the low friction particles can be an outer layer of the wire 140 A which is deposited over a solid core portion.
- This construction is similar to that of self-shielding stick electrodes, which have a flux coated on an outer surface of a solid core.
- Figure 5A illustrates a cross-sectional view of a weld wire 140C with self-lubricating material that was deposited using the filler wires illustrated in Figures 2A or 3A.
- Figure 5B illustrates a cross-sectional view of a weld with self- lubricating material that was deposited using the filler wires illustrated in Figures 2B or 3B.
- the self-lubricating materials are found throughout the weld.
- the hot-wire consumable 140A-C is deposited into the weld puddle the low friction particles are distributed throughout the molten puddle and when the puddle solidifies the particles are distributed throughout.
- Figures 5A and 5B show a typical weld joint embodiments of the present invention are not limited in this regard as the wires can also be used for cladding/surfacing operations, and can be used in other weld joint types.
- These figures are intended to be exemplary.
- these figures depict exemplary weld joints and, of course, embodiments of the present invention can be used for cladding or overlaying operations without departing from the spirit or scope of the present invention.
- processes can be used such that the wire 140A-C is used at the end of the fill process such that only the top layer (i.e., the last pass of the weld bead) or layers will include the low friction materials.
- the self-lubricating or low friction materials e.g., graphite
- the filler material need not be included in the same filler wire 140A-C.
- the wire 140 is intended to be inclusive of all of the embodiments, e.g., 140A/C, of the wire disclosed herein.
- the feeder subsystem 150 can be configured to simultaneously provide more than one wire to the puddle at the same time, in accordance with certain other embodiments of the present invention.
- a first wire may be used for depositing the self-lubricating materials (e.g., the graphite particles 142 or graphite powder 143) to the workpiece 115, and a second wire may be used to add structure to the workpiece.
- the first or second wire (or additional wires) may also be used for hard-facing and/or providing corrosion resistance to the workpiece 115.
- the overall deposition rate of the weld process can be significantly increased without a significant increase in heat input.
- open root weld joints can be filled in a single weld pass.
- one of the wires can deposit the matrix of the weld joint while any additional wires adds the wear resistant particles as described herein.
- Such embodiments can provide the ability to customize or tailor the bead profile or chemistry to provide a desired performance for specific conditions.
- the filler wire 140 (140A) is melted into the weld puddle 145 without an arc.
- the wire 140 (140A) does not experience the extreme heat of the arc, which can be as high as 8,000° F.
- the melting temperature of the filler wire 140 (140A) will vary depending on the size and chemistry of the wire 140 (140A) and can exceed 1 ,500° F.
- the low friction particles are to have a melting/burning temperature higher than that of the remaining filler wire composition.
- the burning temperature can be the vaporization or boiling temperature of the material. This aids in ensuring that the wire melts before the integrity of the low friction particles is compromised.
- the low friction materials are included in a filler wire having a melting temperature higher than that of the particles (or the puddle temperature will be higher than the melting/burning temperature of the particles) the particles within the filler wire 140A/C may need to be protected based on the melting temperature of the filler wire 140A C.
- some exemplary embodiments discussed above use graphite as the wear resistant material.
- Graphite can burn in the presence of oxygen and form carbon dioxide. In air, which is about 21 % oxygen, graphite will burn at about 1 ,550° F. Accordingly, in situations where the temperature of the weld puddle 145 and/or the melting point of the wire 140 exceeds the temperature at which graphite bums, care must be taken to not expose the graphite in the filler wire 140 (140A) to oxygen.
- the filler wire 140 can include a flux that protects the weld area from oxidation.
- the flux may form a protective slag over the weld area to shield the weld area from the atmosphere and/or form carbon dioxide to protect the weld area.
- a flux coating is generally known and often used with self-shielding electrodes.
- the flux is a coating (not shown) on the filler wire.
- the flux is disposed in the core of the filler wire as illustrated in Figures 3A and 3B. The compositions of such fluxes are generally known and will not be discussed herein.
- the system 100 can include a shielding gas system which delivers a shielding gas to the puddle 145 during the operation to shield the operation from the atmosphere.
- the shielding gas can be an inert gas, such as argon, and can generally use known shielding gases that do not contain oxygen.
- the low friction particles 142 may be coated to isolate the particles from any oxygen that may be present, or to isolate the particle from the heat of the puddle 145 and/or heating of the wire.
- the powder 143 can also be coated.
- the particles 142 are coated or encapsulated using an appropriate coating 146.
- the coating 146 may be a metal alloy such as nickel or a nickel alloy.
- the coating thickness can be in the range of 1 to 30 microns, and in another exemplary embodiment be in the range of 5 to 30 microns, and the thickness can depend on the size of the particles being coated.
- the present invention can include coating thicknesses that fall outside this range.
- the coating 146 is selected that its melting temperature is above the melting temperature of the filler material 141 and/or the weld puddle 145. Accordingly, because the coating 146 will not melt in these embodiments, the particles 142 will not be exposed to the atmosphere during the welding process. Alternatively, in other embodiments, the coating 146 will melt only after the filler wire 140 (140A) makes contact with the weld puddle 145, which is maintained at a temperature that is above the melting point of the coating 146. Because the particles 142 are already in the weld puddle 145 before the coating 146 melts, the exposure to the atmosphere and thus any burning of the graphite is limited. Of course, flux and inert gas may also be used to further limit the particles' exposure to the atmosphere by displacing or consuming any oxygen around the weld puddle 145.
- the coating acts as a thermal barrier to inhibit heat from the puddle 145 and the heating of the wire from reaching the particles.
- the coating 145 can be a material and a thickness which provides a thermal barrier that protects the low friction particles. That is, in some embodiments the coating 146 can be a composition that resists the transfer of heat such that the puddle cools and solidifies before the particles are destroyed by the heat. Further, the coating 146 can be of a thickness and composition such that least some of the coating 146 melts and is absorbed into weld puddle, but at least some of the coating 146 remains on the particles as the puddle cools.
- the coating 146 can be of a composition that is compatible with the puddle 145 but also inhibits the heat from the puddle and in the wire 140 from destroying the low friction particles.
- a material can be nickel or a nickel alloy which is deposited onto the particles before the particles are combined with the wire 140.
- Various manufacturing methods can be used to coat the particles, including using vapor deposition, or other similar coating methods.
- Figure 6 illustrates a cross-sectional view of a weld with coated low friction material that was deposited using the filler wire illustrated in Figure 4.
- a system 1400 includes a thermal sensor 1410 that is utilized to monitor the temperature of the wire 140 (140A, 140C).
- the system 1400 is similar to the system 100 and, for brevity, only the relevant differences will be discussed.
- the thermal sensor 1410 can be of any known type capable of detecting the temperature of the wire 140 (140A).
- the sensor 1410 can make contact with the wire 140 (140A) or can be coupled to the tip of contact tube 160 so as to detect the temperature of the wire.
- the senor 1410 is a type which uses a laser or infrared beam which is capable of detecting the temperature of a small object - such as the diameter of a filler wire - without contacting the wire 140 (140A).
- the sensor 1410 is positioned such that the temperature of the wire 140 (140 A) can be detected at the stick out of the wire 140 (140A) - that is at some point between the end of the tip of contact tube 160 and the weld puddle 145.
- the sensor 1410 should also be positioned such that the sensor 1410 for the wire 140 (140 A) does not sense the temperature of weld puddle 145.
- the sensor 1410 is coupled to a sensing and control unit 195 such that temperature feed back information can be provided to the power supply 170, the laser power supply 130, and/or wire feeder 150 so that the control of the system 1400 can be optimized.
- the power or current output of the power supply 170 can be adjusted based on at least the feedback from the sensor 1410.
- either the user can input a desired temperature setting (for a given weld and/or wire 140 (140A)) or the sensing and control unit 195 can set a desired temperature based on other user input data (type of self-lubricating material, coating of self-lubricating material, wire feed speed, electrode type, etc.) and then the sensing and control unit 195 would control at least the power supply 170, laser power supply 130, and/or wire feeder 150 to maintain that desired temperature.
- a desired temperature setting for a given weld and/or wire 140 (140A)
- the sensing and control unit 195 can set a desired temperature based on other user input data (type of self-lubricating material, coating of self-lubricating material, wire feed speed, electrode type, etc.) and then the sensing and control unit 195 would control at least the power supply 170, laser power supply 130, and/or wire feeder 150 to maintain that desired temperature.
- the temperature of the wire 140 (140A) can be controlled only via power supply 170 by controlling the current in the wire 140 (140A).
- at least some of the heating of the wire 140 (140 A) can come from the laser beam 110 impinging on at least a part of the wire 140 (140A).
- the current or power from the power supply 170 alone may not be representative of the temperature of the wire 140 (140A).
- utilization of the sensor 1410 can aid in regulating the temperature of the wire 140 (140A) through control of the power supply 170, the laser power supply 130 and/or wire feeder 150.
- a temperature sensor 1420 is directed to sense the temperature of the weld puddle 145.
- the temperature of the weld puddle 145 is also coupled to the sensing and control unit 195.
- the sensor 1420 can be coupled directly to the laser power supply 130. Feedback from the sensor 1420 can be used to control output from laser power supply 130/laser 120. That is, the energy density of the laser beam 110 can be modified to ensure that the desired weld puddle temperature is achieved.
- Figures 8A and 8B depict exemplary cladding layers that can be created with embodiments of the present invention.
- Figure 8A shows a cladding layer on a workpiece with the particles distributed throughout the matrix. As shown, as the cladding layer is worn new particles are continuously exposed such that the cladding layer can provide lubrication throughout the entire thickness of the cladding layer.
- Figure 8B shows a similar clad layer where the particles are covered by the particle protective layer (as described herein), and as the clad surface and protective layers are worn away the particles become exposed.
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Description
Claims
Priority Applications (5)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| JP2015600054U JP3198728U (en) | 2012-07-19 | 2013-07-19 | Hot wire consumables that provide self-lubricating welds or cladding |
| KR20157003440A KR20150028358A (en) | 2012-07-19 | 2013-07-19 | Hotwire consumable to provide selflubricating weld or clad |
| BR112015001245A BR112015001245A2 (en) | 2012-07-19 | 2013-07-19 | hot wire consumable |
| DE212013000162.2U DE212013000162U1 (en) | 2012-07-19 | 2013-07-19 | Hot wire consumables for making a self-lubricating weld or plating |
| CN201380038406.2A CN104470673A (en) | 2012-07-19 | 2013-07-19 | Hot-wire consumable to provide self-lubricating weld or clad |
Applications Claiming Priority (4)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| US201261673562P | 2012-07-19 | 2012-07-19 | |
| US61/673,562 | 2013-02-12 | ||
| US13/790,202 | 2013-03-08 | ||
| US13/790,202 US9272358B2 (en) | 2012-07-19 | 2013-03-08 | Hot-wire consumable to provide self-lubricating weld or clad |
Publications (2)
| Publication Number | Publication Date |
|---|---|
| WO2014013326A2 true WO2014013326A2 (en) | 2014-01-23 |
| WO2014013326A3 WO2014013326A3 (en) | 2014-03-20 |
Family
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Family Applications (1)
| Application Number | Title | Priority Date | Filing Date |
|---|---|---|---|
| PCT/IB2013/001573 Ceased WO2014013326A2 (en) | 2012-07-19 | 2013-07-19 | Hot-wire consumable to provide self-lubricating weld or clad |
Country Status (7)
| Country | Link |
|---|---|
| US (1) | US9272358B2 (en) |
| JP (1) | JP3198728U (en) |
| KR (1) | KR20150028358A (en) |
| CN (1) | CN104470673A (en) |
| BR (1) | BR112015001245A2 (en) |
| DE (1) | DE212013000162U1 (en) |
| WO (1) | WO2014013326A2 (en) |
Cited By (1)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| WO2014091290A1 (en) * | 2012-12-10 | 2014-06-19 | Lincoln Global, Inc. | Electrodes incorporating metallic coated particles and methods of hard surfacing therewith |
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| US10086477B2 (en) * | 2014-11-24 | 2018-10-02 | Lincoln Global, Inc. | Flux-cored brazing preform |
| EP3342523B1 (en) * | 2015-08-25 | 2023-05-03 | Daihen Corporation | Welding methods and arc welding device |
| US10675699B2 (en) | 2015-12-10 | 2020-06-09 | Illinois Tool Works Inc. | Systems, methods, and apparatus to preheat welding wire |
| US12194579B2 (en) | 2015-12-10 | 2025-01-14 | Illinois Tool Works Inc. | Systems, methods, and apparatus to preheat welding wire |
| US10766092B2 (en) | 2017-04-18 | 2020-09-08 | Illinois Tool Works Inc. | Systems, methods, and apparatus to provide preheat voltage feedback loss protection |
| US10870164B2 (en) | 2017-05-16 | 2020-12-22 | Illinois Tool Works Inc. | Systems, methods, and apparatus to preheat welding wire |
| US11247290B2 (en) | 2017-06-09 | 2022-02-15 | Illinois Tool Works Inc. | Systems, methods, and apparatus to preheat welding wire |
| US11524354B2 (en) | 2017-06-09 | 2022-12-13 | Illinois Tool Works Inc. | Systems, methods, and apparatus to control weld current in a preheating system |
| EP3634684B1 (en) | 2017-06-09 | 2022-10-05 | Illinois Tool Works Inc. | Welding torch with a first contact tip to preheat welding wire and a second contact tip |
| CA3066677C (en) | 2017-06-09 | 2023-04-04 | Illinois Tool Works Inc. | Welding assembly for a welding torch, with two contact tips and a cooling body to cool and conduct current |
| CA3066666C (en) | 2017-06-09 | 2024-10-01 | Illinois Tool Works Inc. | Contact tips with screw threads and head to enable unthreading of the screw threads comprising longitudinal slots for gas flow; welding torch with contact tips |
| DE102017120611B4 (en) * | 2017-09-07 | 2020-06-25 | Wisco Tailored Blanks Gmbh | Method and device for fusion welding one or more steel sheets made of press-hardenable steel |
| US11020813B2 (en) | 2017-09-13 | 2021-06-01 | Illinois Tool Works Inc. | Systems, methods, and apparatus to reduce cast in a welding wire |
| JP7297279B2 (en) * | 2018-06-20 | 2023-06-26 | 大阪富士工業株式会社 | Overlay layer, machine component having overlay layer, and method for forming overlay layer |
| EP3843933B1 (en) | 2018-08-31 | 2026-01-14 | Illinois Tool Works, Inc. | Submerged arc welding system and submerged arc welding torch to resistively preheat electrode wire |
| US11014185B2 (en) | 2018-09-27 | 2021-05-25 | Illinois Tool Works Inc. | Systems, methods, and apparatus for control of wire preheating in welding-type systems |
| EP3898055A2 (en) | 2018-12-19 | 2021-10-27 | Illinois Tool Works, Inc. | Contact tip, wire preheating assembly, contact tip assembly and consumable electrode-fed welding type system |
| US12583048B2 (en) | 2019-03-29 | 2026-03-24 | Illinois Tool Works Inc. | Methods and apparatus to convert welding-type power to welding-type power and resistive preheating power |
| US12103121B2 (en) | 2019-04-30 | 2024-10-01 | Illinois Tool Works Inc. | Methods and apparatus to control welding power and preheating power |
| US11772182B2 (en) | 2019-12-20 | 2023-10-03 | Illinois Tool Works Inc. | Systems and methods for gas control during welding wire pretreatments |
| DE102021200684A1 (en) | 2021-01-26 | 2022-07-28 | Trumpf Laser- Und Systemtechnik Gmbh | Process for laser welding of sheet metal parts and laser welding system |
| CN116571914B (en) * | 2023-06-21 | 2025-10-21 | 西安阳和新材料有限公司 | Self-lubricating wear-resistant surfacing flux-cored welding wire and preparation method thereof |
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-
2013
- 2013-03-08 US US13/790,202 patent/US9272358B2/en active Active
- 2013-07-19 WO PCT/IB2013/001573 patent/WO2014013326A2/en not_active Ceased
- 2013-07-19 BR BR112015001245A patent/BR112015001245A2/en not_active IP Right Cessation
- 2013-07-19 JP JP2015600054U patent/JP3198728U/en not_active Expired - Fee Related
- 2013-07-19 CN CN201380038406.2A patent/CN104470673A/en active Pending
- 2013-07-19 KR KR20157003440A patent/KR20150028358A/en not_active Ceased
- 2013-07-19 DE DE212013000162.2U patent/DE212013000162U1/en not_active Expired - Lifetime
Cited By (1)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| WO2014091290A1 (en) * | 2012-12-10 | 2014-06-19 | Lincoln Global, Inc. | Electrodes incorporating metallic coated particles and methods of hard surfacing therewith |
Also Published As
| Publication number | Publication date |
|---|---|
| JP3198728U (en) | 2015-07-23 |
| CN104470673A (en) | 2015-03-25 |
| KR20150028358A (en) | 2015-03-13 |
| DE212013000162U1 (en) | 2015-05-13 |
| BR112015001245A2 (en) | 2017-07-04 |
| US20140021186A1 (en) | 2014-01-23 |
| US9272358B2 (en) | 2016-03-01 |
| WO2014013326A3 (en) | 2014-03-20 |
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