WO2016166842A1 - 金属部材の製造方法 - Google Patents
金属部材の製造方法 Download PDFInfo
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- WO2016166842A1 WO2016166842A1 PCT/JP2015/061592 JP2015061592W WO2016166842A1 WO 2016166842 A1 WO2016166842 A1 WO 2016166842A1 JP 2015061592 W JP2015061592 W JP 2015061592W WO 2016166842 A1 WO2016166842 A1 WO 2016166842A1
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- Prior art keywords
- metal
- recess
- manufacturing
- heating
- cavity
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Classifications
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- 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
- B23K20/00—Non-electric welding by applying impact or other pressure, with or without the application of heat, e.g. cladding or plating
- B23K20/12—Non-electric welding by applying impact or other pressure, with or without the application of heat, e.g. cladding or plating the heat being generated by friction; Friction welding
-
- 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
- B23K20/00—Non-electric welding by applying impact or other pressure, with or without the application of heat, e.g. cladding or plating
- B23K20/12—Non-electric welding by applying impact or other pressure, with or without the application of heat, e.g. cladding or plating the heat being generated by friction; Friction welding
- B23K20/129—Non-electric welding by applying impact or other pressure, with or without the application of heat, e.g. cladding or plating the heat being generated by friction; Friction welding specially adapted for particular articles or work
-
- 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
- B23K20/00—Non-electric welding by applying impact or other pressure, with or without the application of heat, e.g. cladding or plating
- B23K20/22—Non-electric welding by applying impact or other pressure, with or without the application of heat, e.g. cladding or plating taking account of the properties of the materials to be welded
-
- 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
- B23K20/00—Non-electric welding by applying impact or other pressure, with or without the application of heat, e.g. cladding or plating
- B23K20/26—Auxiliary equipment
-
- 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
- B23K2103/00—Materials to be soldered, welded or cut
- B23K2103/18—Dissimilar materials
- B23K2103/22—Ferrous alloys and copper or alloys thereof
Definitions
- the present invention relates to a method for manufacturing a metal member, and more specifically to a method for manufacturing a metal member having a structure in which members made of different metals are joined to each other.
- a metal member having a structure in which members made of different metals are fixed to each other may be employed as a machine part.
- a piston shoe for a hydraulic pump or a hydraulic motor is known in which a sliding portion made of a copper alloy is fixed to a base portion made of steel.
- a sliding portion is caulked and fixed to a base portion.
- the present invention provides a method for producing a metal member having a structure in which members made of different metals are joined to each other via a joining layer.
- the method of manufacturing a metal member according to the present invention includes a step of preparing a first member made of a first metal, a second member made of a second metal, and a third member made of a third metal, and the first member and the second member. Joining a member via a third member.
- the step of joining the first member and the second member includes stacking the first member, the third member, and the second member in this order, pressing the first member against the third member, and relative to the second member and the third member. Heating the first member, the second member, and the third member by relatively rotating around the rotation axis without changing the relative positional relationship, and the heated first member, second member, and third Cooling the member in a stacked state.
- the first member, the third member, and the second member are stacked in this order, the first member is pressed against the third member, and the relative position with respect to the second member and the third member is determined.
- the first member, the second member, and the third member are heated by relatively rotating around the rotation axis without changing the relationship.
- the 1st member and the 2nd member are joined via the 3rd member by cooling in the state where the heated 1st member, the 2nd member, and the 3rd member were accumulated.
- a metal member having a structure in which members made of different metals are bonded to each other via the third member which is a bonding layer (intermediate layer) is manufactured. Can do.
- the second metal and the third metal may have a deformation resistance smaller than that of the first metal.
- the second member and the third member may be disposed in the cavity of the mold.
- the second member and the third member are deformed in the cavity of the mold and come into contact with the wall surface defining the cavity. .
- transformation is also suppressed. Therefore, the heat generated by the friction between the first member and the third member is suppressed from being released from the cavity. As a result, the process of heating the first member, the second member, and the third member can be efficiently performed.
- the mold may include a cavity bottom wall that defines the cavity and a cavity sidewall that defines the cavity and extends in a direction intersecting the cavity bottom wall.
- a third contact surface that is a surface that contacts the first member in the third member is surrounded by the cavity side wall. Also good. By doing so, the deformation of the second member and the third member can be limited by the cavity side wall.
- the mold in the step of heating the first member, the second member, and the third member, the mold may be fixed and the first member may be rotated. By doing in this way, the manufacturing method of the said metal member can be implemented easily.
- the second metal and the third metal may have a deformation resistance smaller than that of the first metal.
- a recess may be formed in the first member.
- the third member is disposed in the recess, and the second member is pressed relatively to the third member with at least a portion entering the recess.
- the first member, the second member, and the third member may be heated by rotating while rotating.
- the second member and the third member are deformed in the concave portion of the first member to contact the wall surface defining the concave portion. To do.
- the deformation of the second member and the third member is limited by the wall surface that defines the recess of the first member. Therefore, the heat generated by the friction between the first member and the third member is suppressed from being released from the recess. As a result, the process of heating the first member, the second member, and the third member can be efficiently performed.
- the first member may include a concave bottom surface that defines the concave portion, and a concave side surface that defines the concave portion and extends in a direction intersecting the concave bottom surface.
- the second member may rotate while being relatively pressed against the third member disposed in contact with the bottom surface of the recess of the first member.
- the second member in the step of heating the first member, the second member, and the third member, the second member may be deformed to contact the side surface of the recess. In this way, the side surface of the recess restricts the deformation of the second member, whereby the method for manufacturing the metal member can be easily performed.
- the manufacturing method of the metal member may further include a step of processing the first member so that the side surface of the recess is removed in a state where the first member and the second member are joined.
- the first member in the step of heating the first member, the second member, and the third member, the first member may be fixed and the second member may be rotated. By doing in this way, the manufacturing method of the said metal member can be implemented easily.
- the third member may relieve stress generated between the first member and the second member in a state where the first member and the second member are joined. By doing in this way, generation
- the deformation resistance of the second metal and the third metal in a state where the temperature is increased in the step of heating the first member, the second member, and the third member is compared with the deformation resistance of the first metal. And may be 10% or less.
- a metal member having a structure in which members made of different metals are joined to each other via a joining layer can be produced.
- FIG. 2 is a schematic cross-sectional view showing a structure of a metal member according to Embodiment 1.
- FIG. It is a flowchart which shows the outline of the manufacturing method of a metal member. It is the schematic which shows the structure of the manufacturing apparatus of a metal member.
- FIG. 3 is a schematic cross-sectional view showing the operation of the metal member manufacturing apparatus according to the first embodiment. It is a schematic plan view which shows the structure of a metal mold
- die. 6 is a schematic cross-sectional view showing a structure of a metal member according to Embodiment 2.
- FIG. FIG. 10 is a schematic cross-sectional view showing the operation of the metal member manufacturing apparatus of the second embodiment.
- FIG. 6 is a schematic cross-sectional view showing a structure of a metal member according to Embodiment 3.
- FIG. FIG. 6 is a schematic diagram showing the structure of a metal member manufacturing apparatus according to a third embodiment.
- FIG. 10 is a schematic cross-sectional view showing the operation of the metal member manufacturing apparatus of the third embodiment.
- FIG. 10 is a schematic cross-sectional view for illustrating the method for manufacturing the metal member according to the third embodiment.
- FIG. 10 is a schematic cross-sectional view for illustrating the method for manufacturing the metal member according to the third embodiment. It is an optical microscope photograph which shows the state of a junction part vicinity.
- FIG. 1 is a schematic cross-sectional view showing the structure of a metal member (mechanical part) that can be manufactured by the metal member manufacturing method of the present embodiment.
- a metal member 1 has a structure in which a first member 10 made of a first metal and a second member 20 made of a second metal are joined via a third member 30 made of a third metal. Have.
- the first member 10 has a cylindrical shape. One end surface 11 of the first member 10 is a bonding surface.
- the second member 20 has a cylindrical shape (disc shape). One end surface 21 of the second member 20 is a bonding surface.
- the third member 30 has a disk shape. The third member 30 is a bonding layer (intermediate layer) interposed between the first member 10 and the second member 20.
- the third member 30 is arranged on one end surface 21 of the second member 20 so as to be in contact with the end surface 30B.
- the first member 10 is arranged on the end surface 30 ⁇ / b> A of the third member 30 so as to contact at one end surface 11.
- the second metal constituting the second member 20 and the third metal constituting the third member 30 have a lower deformation resistance than the first metal constituting the first member 10.
- the first metal for example, tempered (quenched and tempered) steel (for example, alloy steel for mechanical structure such as JIS standard SCM440 or carbon steel for mechanical structure) is adopted. Is done.
- a copper alloy for example, high-strength brass
- Copper is adopted as the third metal.
- the third member 30 relieves stress generated between the first member 10 and the second member 20 in a state where the first member 10 and the second member 20 are joined.
- Such a metal member 1 can be manufactured by the following metal member manufacturing method according to the present embodiment.
- FIG. 2 is a flowchart showing an outline of a method for manufacturing a metal member.
- FIG. 3 is a schematic view showing the structure of a metal member manufacturing apparatus.
- FIG. 4 is a schematic cross-sectional view showing the operation of the metal member manufacturing apparatus.
- FIG. 5 is a schematic plan view showing the structure of a mold included in the metal member manufacturing apparatus.
- a forming member preparation step is performed as a step (S10).
- step (S10) referring to FIG. 1, for example, a cylindrical first member 10 made of tempered alloy steel for machine structure, a disk-shaped second member 20 made of high-strength brass, A disk-shaped or foil-shaped third member 30 made of copper is prepared.
- One end surface 11 of the first member 10 is a first member contact surface which is a flat surface to be a bonding surface.
- One end surface 21 of the second member 20 is a second member contact surface that is a flat surface to be a bonding surface.
- a cleaning step is performed as a step (S20).
- the first member 10, the second member 20, and the third member 30 prepared in the step (S10) are cleaned.
- the first member 10, the second member 20, and the third member 30 are cleaned using a liquid such as methanol, ethanol, and acetone.
- a liquid such as methanol, ethanol, and acetone.
- foreign matters and the like attached to the first member 10, the second member 20, and the third member 30 are removed in processes such as cutting and processing for preparing the first member 10, the second member 20, and the third member 30. Is done.
- the precise finishing process with respect to the end surface of the 2nd member 20 and the 3rd member 30 can be abbreviate
- the end surfaces of the second member 20 and the third member 30 may remain in a cut state.
- the closed friction joining process includes a joining preparation process, a friction process, and a cooling process.
- a metal member manufacturing apparatus that manufactures the metal member 1 by performing closed friction welding will be described.
- a closed friction welding apparatus 9 as a metal member manufacturing apparatus includes a main shaft 95 that can rotate around an axis ⁇ , and a base that is spaced from the main shaft 95 in the direction of the axis ⁇ .
- a drive unit 97 that adjusts the distance between the main shaft 95 and the base unit 98 by driving the main shaft 95 in the direction of the axis ⁇ , and a frame 90 that supports the main shaft 95 and the base unit 98.
- a shaft 90 ⁇ / b> A extending in parallel with the axis ⁇ is installed in the frame 90.
- the shaft 90A supports a main shaft support portion 90C that supports the main shaft 95 so as to be movable along the extending direction of the shaft 90A.
- a main shaft moving motor 90B for driving the shaft 90A is connected to the shaft 90A.
- the shaft 90A is driven by the main shaft moving motor 90B, the main shaft 95 supported by the main shaft support portion 90C moves in the axis ⁇ direction. Thereby, the space
- the shaft 90 ⁇ / b> A, the spindle support part 90 ⁇ / b> C, and the spindle movement motor 90 ⁇ / b> B constitute a drive part 97.
- the cavity side wall 93C defining the cavity 93A is formed.
- the rotation side chuck 94 and the mold 93 are arranged so as to surround the outer periphery of one end face 30A as a third contact surface that is a surface that contacts the first member 10 in the third member 30. Referring to FIG. 4, the height of cavity side wall 93 ⁇ / b> C in the direction of axis ⁇ is larger than the total thickness of second member 20 and third member 30.
- the main shaft 95 is provided with a rotation side chuck 94 as a first holding portion that holds the first member 10 so as to face the base portion 98.
- the main shaft 95 is connected to a main shaft motor 95B that rotates the main shaft 95 about the axis ⁇ .
- a load sensor 96 that detects a contact load between the first member 10 and the third member 30 is installed on the main shaft 95.
- the load sensor 96 detects the contact load between the first member 10 and the third member 30 from the magnitude of the reaction force between the first member 10 and the third member 30 applied to the rotation side chuck 94.
- the load sensor 96 is not an essential component in the closed friction welding apparatus 9, by installing this, it becomes easy to adjust the contact load between the first member 10 and the third member 30 to an appropriate range. .
- a mold 93 as a second holding portion that holds the second member 20 is disposed on the base portion 98 so as to face the rotation side chuck.
- base portion 98 includes a base body 91, a mold holder 92, and a mold 93.
- the base body 91 is installed on the frame 90.
- the mold holder 92 is fixed on the base body 91.
- the mold 93 is fitted in a mold holding portion which is a recess formed in the mold holder 92 and is fixed by a radial chuck surface 92B.
- the mold 93 can be separated into two parts 99, 99 as shown in FIG.
- the mold 93 includes a cavity bottom wall 93B that is a circular plane, and a cavity sidewall that extends from the cavity bottom wall 93B in a direction (vertical direction) intersecting the cavity bottom wall 93B. 93C.
- Cavity bottom wall 93B and cavity side wall 93C define cavity 93A.
- the cavity side wall 93C is connected to the outer periphery of the cavity bottom wall 93B having a circular shape, and has a cylindrical surface shape having the same diameter as the cavity bottom wall 93B.
- step (S ⁇ b> 30) the first member 10 is held by the rotation side chuck 94 on the outer peripheral surface.
- the second member 20 and the third member 30 are set in the cavity 93 ⁇ / b> A of the mold 93.
- the second member 20 is arranged so as to contact the cavity bottom wall 93B defining the cavity 93A at the end face.
- the third member 30 is stacked and arranged so as to come into contact with one end surface 21 of the second member 20 at one end surface.
- One end surface 11 of the first member 10 and one end surface 30A of the third member 30 face each other, and the central axes of the first member 10, the second member 20, and the third member 30 are the rotation axis ⁇ of the rotation side chuck.
- the first member 10, the second member 20, and the third member 30 are arranged so as to match.
- a mold release agent is introduced into the cavity 93A. Accordingly, the first member 10, the second member 20, and the third member 30 are heated in a state in which the release agent is present in the cavity 93A in a step (S40) described later.
- the introduction of the release agent is not an indispensable procedure. However, by introducing the release agent, the first member 10 and the second member 20 are joined via the third member 30 in the step (S50) described later. It becomes easy to remove the structure constituted by the mold 93.
- the release agent may be liquid or powder.
- a friction process is performed as a process (S40).
- the main shaft 95 is driven by the main shaft motor 95B to rotate around the axis ⁇ and is driven by the main shaft moving motor 90B to approach the base portion 98.
- the rotation-side chuck 94 approaches the mold 93 while rotating around the axis ⁇ .
- the first member 10 contacts the third member 30, the first member 10, the third member 30, and the second member 20 are stacked in this order.
- the first member 10 rotates relative to the rotation axis without changing the relative positional relationship with respect to the second member 20 and the third member 30 while being pressed against the third member 30.
- the temperature of the contact portion between the first member 10 and the third member 30 rises due to frictional heat.
- the first member 10, the second member 20, and the third member 30 are heated by this frictional heat.
- the temperature of the 2nd member 20 rises to the temperature below the melting point of the 2nd metal which comprises the 2nd member 20, for example, and below melting
- the temperature of the third member 30 rises to, for example, a temperature that is equal to or higher than the softening point of the third metal constituting the third member 30 and is lower than the melting point.
- the deformation resistance of the second member 20 and the third member 30 is smaller than the deformation resistance of the first member 10.
- the heated second member 20 and third member 30 are softened and deformed, and come into contact with the cavity side wall 93 ⁇ / b> C of the mold 93.
- further deformation is also controlled. Therefore, further heat is generated by the friction between the first member 10 and the third member 30, and the generated heat is suppressed from being released from the cavity 93A.
- a cooling step is performed as a step (S50).
- step (S50) first, the rotational speed of the main shaft 95 is reduced and stopped. Thereafter, the pressing load detected by the load sensor 96 is reduced. During this time, the first member 10, the second member 20, and the third member 30 are cooled while maintaining the state in which the first member 10 and the second member 20 are pressed against each other with the third member 30 interposed therebetween. The first member 10, the second member 20, and the third member 30 are cooled in a stacked state. Thereby, the first member 10 and the second member 20 are joined via the third member 30.
- the metal member 1 which is a structure configured by joining the first member 10 and the second member 20 via the third member 30, is taken out from the closing friction joining device 9.
- the closed friction joining process is completed by the above procedure.
- a machining process is performed as a process (S60).
- machining is performed on the metal member 1 obtained in the step (S50).
- burrs formed by deforming the second member 20 in the step (S40) are removed.
- a gas soft nitriding step is performed as a step (S70).
- a gas soft nitriding treatment is performed on the metal member 1 obtained by performing the machining in the step (S60). Specifically, by being heated to a temperature of A less than 1 transformation point of the steel constituting the first member 10 in an atmosphere containing ammonia gas, nitride layer is formed on the surface portion of the first member 10. Thereafter, a finishing process is performed as necessary, and the metal member 1 of the present embodiment is completed.
- the first member 10 made of the first metal and the second metal having a deformation resistance smaller than that of the first metal. It is possible to manufacture the metal member 1 having a structure in which the second member 20 made of is joined via the third member 30 made of the third metal having a deformation resistance smaller than that of the first metal.
- the metal member 1 having a structure in which the first member 10 and the second member 20 made of different metals are bonded to each other via the third member 30 that is a bonding layer can be manufactured.
- the 1st member 10, the 2nd member 20, and the 3rd member 30 can be joined simultaneously.
- the thermal expansion coefficient of copper which is the third metal constituting the third member 30, is larger than the thermal expansion coefficient of steel, which is the first metal constituting the first member 10, and the second member 20 constitutes the second member 20. It is smaller than the thermal expansion coefficient of brass which is two metals. Therefore, the third member 30 can relieve the stress between the first member 10 and the second member 20 generated due to the difference in thermal expansion coefficient due to the heat treatment performed in the step (S70). By interposing the third member 30 between the first member 10 and the second member 20, it is possible to suppress the occurrence of cracks due to the stress generated due to the difference in thermal expansion coefficient.
- Embodiment 2 which is another embodiment of the present invention will be described.
- the metal member manufactured in the second embodiment basically has the same structure as that in the first embodiment.
- the metal member 1 of the second embodiment is different from that of the first embodiment in that the third member 30 has an annular shape.
- the third member 30 in the second embodiment has an annular shape.
- the third member 30 has an annular shape in which a through hole is formed in a region including the central axis. In the region corresponding to the through hole of the third member 30, the first member 10 and the second member 20 are directly joined.
- Such a metal member 1 can be manufactured by the following metal member manufacturing method according to the second embodiment.
- the manufacturing method of the metal member in the second embodiment is basically performed in the same manner as in the first embodiment, and has the same effect.
- the metal member manufacturing method according to the second embodiment is different from the first embodiment in that an annular third member 30 is used.
- an annular third member 30 is prepared. Then, by performing the closed friction joining process using the annular third member 30, the softened second member 20 enters the through hole of the third member 30, and the metal member 1 of the present embodiment is can get.
- the stress generated due to the difference in thermal expansion coefficient increases as the outer peripheral surface of the metal member 1 is approached.
- the third member 30 between the first member 10 and the second member 20 in the region including the outer peripheral surface of the metal member 1 the stress can be effectively relaxed in the region where the stress is large.
- FIG. 8 is a schematic cross-sectional view showing the structure of a metal member (mechanical part) that can be manufactured by the metal member manufacturing method of the third embodiment.
- the metal member 1 has a structure in which a first member 10 made of a first metal and a second member 20 made of a second metal are joined via a third member 30 made of a third metal. Have.
- the first member 10 has a cylindrical shape (disc shape). One end surface 11 of the first member 10 is a bonding surface.
- the second member 20 has a cylindrical shape. One end surface 21 of the second member 20 is a bonding surface.
- the third member 30 has a disk shape. The third member 30 is a bonding layer (intermediate layer) interposed between the first member 10 and the second member 20.
- first metal, the second metal, and the third metal the same metals as those in the first embodiment are employed.
- the third member 30 is arranged on one end surface 21 of the second member 20 so as to come into contact with one end surface 30A.
- the first member 10 is arranged on the other end surface 30 ⁇ / b> B of the third member 30 so as to come into contact with one end surface 11.
- the third member 30 relieves stress generated between the first member 10 and the second member 20 in a state where the first member 10 and the second member 20 are joined.
- Such a metal member 1 can be manufactured by the following metal member manufacturing method according to the present embodiment.
- FIG. 2 is a flowchart showing an outline of a method for manufacturing a metal member.
- FIG. 9 is a schematic view showing the structure of a metal member manufacturing apparatus.
- FIG. 10 is a schematic cross-sectional view showing the operation of the metal member manufacturing apparatus.
- 11 and 12 are schematic cross-sectional views for explaining a method for manufacturing a metal member.
- a forming member preparation step is performed as a step (S10).
- a first member 10 made of tempered alloy steel for machine structure a second member 20 made of high-strength brass, and a third member made of copper. 30 is prepared.
- the second member 20 has a cylindrical shape.
- the third member 30 has a disk shape or a foil shape.
- the first member 10 has a cylindrical shape (disk shape).
- the first member 10 has a recess 10A.
- the recess 10 ⁇ / b> A is formed so as to include the central axis of the first member 10.
- the recess 10A has a cylindrical shape.
- the central axis of the first member 10 coincides with the central axis of the recess 10A.
- the first member 10 includes a concave bottom surface 11 that defines the concave portion 10 ⁇ / b> A, and a concave side surface 12 that defines the concave portion 10 ⁇ / b> A and extends in a direction intersecting the concave bottom surface 11.
- the recess bottom surface 11 of the first member 10 is a first member contact surface that is a flat surface to be joined to the second member 20 via the third member 30.
- One end surface 21 of the second member 20 is a second member contact surface that is a flat surface to be joined to the first member 10 via the third member 30.
- a cleaning step is performed as a step (S20).
- This step (S20) is performed in the same manner as in the first embodiment.
- FIG. One end surface 21 of the second member 20 may be in a cut state.
- the closed friction joining process includes a joining preparation process, a friction process, and a cooling process.
- a metal member manufacturing apparatus that manufactures the metal member 1 by performing closed friction welding will be described.
- the closed friction welding apparatus 9 which is a metal member manufacturing apparatus in the third embodiment basically has the same structure as that in the first embodiment and operates in the same manner. Hereinafter, differences from the first embodiment will be described.
- the main shaft 95 is provided with a rotation side chuck 94 that holds the second member 20 so as to face the base portion 98.
- a fixed side chuck 92 that holds the first member 10 is disposed on the base portion 98 so as to face the rotation side chuck 94.
- the base portion 98 includes a base body 91 and a fixed side chuck 92.
- the fixed side chuck 92 is fixed on the base body 91.
- the stationary chuck 92 includes a bottom surface 92A that holds the first member 10 in the axial direction, and a radial chuck surface 92B that holds the first member 10 in the radial direction.
- step (S30) second member 20 is held by rotation-side chuck 94 on the outer peripheral surface. Further, the first member 10 is held by the fixed side chuck 92 on the outer peripheral surface.
- the third member 30 is disposed in the recess 10 ⁇ / b> A of the first member 10. The concave bottom surface 11 and the end surface of the third member 30 are in contact with each other.
- the first member 10, the second member 20, and the third member 30 are arranged so that the central axis of the member 30 coincides with the rotation axis ⁇ of the rotation side chuck 94.
- a friction process is performed as a process (S40).
- the main shaft 95 is driven by the main shaft motor 95B to rotate around the axis ⁇ and is driven by the main shaft moving motor 90B to approach the base portion 98.
- the rotation-side chuck 94 approaches the fixed-side chuck 92 while rotating around the axis ⁇ .
- the second member 20 has a relative position with respect to the first member 10 and the third member 30 in a state where at least a part (a region including one end surface 21) enters the recess 10 ⁇ / b> A.
- the third member 30 rotates relatively while being pressed with a predetermined load.
- the second member 20 rotates while being relatively pressed against one end surface 30A of the third member 30. Thereby, the temperature of the 1st member 10, the 2nd member 20, and the 3rd member 30 rises by friction heat.
- a gap is formed between the outer peripheral surface 22 of the second member 20 and the concave side surface 12 of the first member 10.
- the outer peripheral surface 22 of the second member 20 and the recess side surface 12 of the first member 10 do not contact each other.
- the deformation resistance of the second member 20 is smaller than the deformation resistance of the first member 10.
- heated second member 20 is softened and deformed, and comes into contact with concave side surface 12.
- the deformation of the second member 20 is limited by the wall surfaces (the concave bottom surface 11 and the concave side surface 12) that define the concave portion 10A of the first member 10. Therefore, the heat generated by the friction is suppressed from being released from the inside of the recess 10A.
- the recess 10A is filled with the softened second member 20 and third member 30. As the second member 20 is deformed, a burr 29 is formed.
- the temperature of the 2nd member 20 rises to the temperature below the melting point of the 2nd metal which comprises the 2nd member 20, for example, and below melting
- the temperature of the third member 30 rises to, for example, a temperature that is equal to or higher than the softening point of the third metal constituting the third member 30 and is lower than the melting point.
- a cooling step is performed as a step (S50).
- step (S50) first, the rotational speed of the main shaft 95 is reduced and stopped. Thereafter, the pressing load detected by the load sensor 96 is reduced. During this time, the first member 10, the second member 20, and the third member 30 are cooled while maintaining the state in which the first member 10 and the second member 20 are pressed against each other with the third member 30 interposed therebetween. The first member 10, the second member 20, and the third member 30 are cooled in a stacked state. Thereby, the first member 10 and the second member 20 are joined via the third member 30.
- the metal member 1 which is a structure formed by joining the first member 10 and the second member 20 via the third member 30, is taken out from the closing friction welding device 9 ( (See FIG. 12).
- the closed friction joining process is completed by the above procedure.
- step (S60) machining such as cutting is performed on the metal member 1 obtained in step (S50).
- step (S60) burrs 29 formed by deforming second member 20 in step (S40) while first member 10 and second member 20 are joined are removed.
- step (S ⁇ b> 60) first member 10 is further removed such that concave side surface 12 is removed while first member 10 and second member 20 are joined via third member 30. Is processed.
- the outer peripheral region including the concave side surface 12 and the burr 29 are removed.
- the removal of the outer peripheral region including the concave side surface 12 and the removal of the burr 29 may be performed continuously as one process, or may be performed as a separate process with time.
- a gas soft nitriding step is performed as a step (S70) as in the case of the first embodiment.
- a finishing process etc. are implemented as needed and the metal member 1 is completed.
- the first member 10 made of the first metal and the second metal having a deformation resistance smaller than that of the first metal. It is possible to manufacture the metal member 1 having a structure in which the second member 20 made of is joined via the third member 30 made of the third metal having a deformation resistance smaller than that of the first metal.
- the metal member 1 having a structure in which the first member 10 and the second member 20 made of different metals are bonded to each other via the third member 30 that is a bonding layer can be manufactured.
- the 1st member 10, the 2nd member 20, and the 3rd member 30 can be joined simultaneously.
- the thermal expansion coefficient of copper which is the third metal constituting the third member 30, is larger than the thermal expansion coefficient of steel, which is the first metal constituting the first member 10, and the second member 20 constitutes the second member 20. It is smaller than the thermal expansion coefficient of brass which is two metals. Therefore, the third member 30 can relieve the stress between the first member 10 and the second member 20 generated due to the difference in thermal expansion coefficient due to the heat treatment performed in the step (S70). By interposing the third member 30 between the first member 10 and the second member 20, it is possible to suppress the occurrence of cracks due to the stress generated due to the difference in thermal expansion coefficient.
- the deformation resistance of the second member 20 (second metal) and the third member 30 (third metal) when the temperature is increased is the first member 10 (
- the deformation resistance of the first metal) is preferably 10% or more, more preferably 50% or less, and still more preferably 80% or more.
- the deformation resistance of the second member 20 (second metal) and the third member 30 (third metal) is smaller than that of the first member 10 (first metal), as in the present embodiment.
- the first member 10 and the second member 20 can be joined via the third member 30.
- the difference between the deformation resistance of the first member 10 and the deformation resistance of the second member 20 and the third member 30 is small, not only the second member 20 and the third member 30 but also the first member 10 in the step (S40). May also be deformed.
- step (S40) it is necessary to strictly control the temperatures of the first member 10, the second member 20, and the third member 30.
- step (S40) it is easy to achieve good bonding by setting the deformation resistance of the second metal and the third metal in a state where the temperature is increased to be 10% or more smaller than the deformation resistance of the first metal.
- steel is adopted as the metal (first metal) constituting the first member
- brass is adopted as the metal (second metal) constituting the second member
- the third Although the case where copper is employed as the metal (third metal) constituting the member is exemplified, the metals that can be employed in the present invention are not limited thereto.
- An example of a combination of metals that can be used is shown in Table 1.
- the first member made of the first metal As shown in Table 1, in the metal member manufacturing method of the present invention, the first member made of the first metal, the second member made of the second metal having a smaller deformation resistance than the first metal, and the first metal Various combinations of the third member made of the third metal having a lower deformation resistance than the above can be adopted.
- the said stress may be relieve
- the method for producing a metal member of the present invention can be particularly advantageously applied to the production of a metal member having a structure in which members made of different metals are joined to each other via a joining layer.
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Abstract
Description
図1は、本実施の形態の金属部材の製造方法により製造可能な金属部材(機械部品)の構造を示す概略断面図である。図1を参照して、金属部材1は、第1金属からなる第1部材10と第2金属からなる第2部材20とが第3金属からなる第3部材30を介して接合された構造を有している。
次に、本発明の他の実施の形態である実施の形態2について説明する。実施の形態2において製造される金属部材は、基本的には実施の形態1の場合と同様の構造を有する。しかし、実施の形態2の金属部材1は、第3部材30が環状の形状を有している点において実施の形態1の場合とは異なっている。
次に、本発明のさらに他の実施の形態である実施の形態3について説明する。図8は、実施の形態3の金属部材の製造方法により製造可能な金属部材(機械部品)の構造を示す概略断面図である。図8を参照して、金属部材1は、第1金属からなる第1部材10と第2金属からなる第2部材20とが第3金属からなる第3部材30を介して接合された構造を有している。
Claims (13)
- 第1金属からなる第1部材、第2金属からなる第2部材および第3金属からなる第3部材を準備する工程と、
前記第1部材と前記第2部材とを前記第3部材を介して接合する工程と、を備え、
前記第1部材と前記第2部材とを接合する工程は、
前記第1部材、前記第3部材および前記第2部材をこの順で積み重ね、前記第1部材を前記第3部材に押し付け、前記第2部材および前記第3部材に対する相対的な位置関係を変えることなく回転軸周りに相対的に回転させることにより、前記第1部材、前記第2部材および前記第3部材を加熱する工程と、
加熱された前記第1部材、前記第2部材および前記第3部材を積み重ねた状態で冷却する工程と、を含む、金属部材の製造方法。 - 前記第2金属および前記第3金属は前記第1金属よりも変形抵抗が小さく、
前記第1部材、前記第2部材および前記第3部材を加熱する工程では、金型のキャビティ内に前記第2部材および前記第3部材が配置される、請求項1に記載の金属部材の製造方法。 - 前記金型は、
前記キャビティを規定するキャビティ底壁と、
前記キャビティを規定し、前記キャビティ底壁に交差する方向に延在するキャビティ側壁と、を含む、請求項2に記載の金属部材の製造方法。 - 前記第1部材、前記第2部材および前記第3部材を加熱する工程では、前記第3部材において前記第1部材に接触する面である第3接触面が、前記キャビティ側壁に取り囲まれる、請求項3に記載の金属部材の製造方法。
- 前記第1部材、前記第2部材および前記第3部材を加熱する工程では、前記金型を固定し、前記第1部材を回転させる、請求項2~4のいずれか1項に記載の金属部材の製造方法。
- 前記第2金属および前記第3金属は前記第1金属よりも変形抵抗が小さく、
前記第1部材には凹部が形成されており、
前記第1部材、前記第2部材および前記第3部材を加熱する工程では、前記凹部内に前記第3部材を配置し、前記第2部材を、少なくとも一部が前記凹部に進入する状態で前記第3部材に相対的に押し付けつつ回転させることにより、前記第1部材、前記第2部材および前記第3部材を加熱する、請求項1に記載の金属部材の製造方法。 - 前記第1部材は、
前記凹部を規定する凹部底面と、
前記凹部を規定し、前記凹部底面に交差する方向に延びる凹部側面と、を含み、
前記第1部材、前記第2部材および前記第3部材を加熱する工程では、前記第1部材の前記凹部底面に接触して配置された前記第3部材に前記第2部材が相対的に押し付けられつつ回転する、請求項6に記載の金属部材の製造方法。 - 前記第1部材、前記第2部材および前記第3部材を加熱する工程では、前記第2部材が変形することにより前記凹部側面に接触する、請求項6または7に記載の金属部材の製造方法。
- 前記第1部材と前記第2部材とが接合した状態で前記凹部側面が除去されるように前記第1部材が加工される工程をさらに備える、請求項6~8のいずれか1項に記載の金属部材の製造方法。
- 前記第1部材、前記第2部材および前記第3部材を加熱する工程では、前記第1部材を固定し、前記第2部材を回転させる、請求項6~9のいずれか1項に記載の金属部材の製造方法。
- 前記第1部材と前記第2部材とが接合した状態で、前記第1部材、前記第2部材および前記第3部材を加熱する工程において前記第2部材が変形して形成されたバリを除去する工程をさらに備える、請求項1~10のいずれか1項に記載の金属部材の製造方法。
- 前記第3部材は、前記第1部材と前記第2部材とが接合された状態において前記第1部材と前記第2部材との間に生じる応力を緩和する、請求項1~11のいずれか1項に記載の金属部材の製造方法。
- 前記第1部材、前記第2部材および前記第3部材を加熱する工程において、温度が上昇した状態における前記第2金属および前記第3金属の変形抵抗は前記第1金属の変形抵抗に比べて10%以上小さい、請求項1~12のいずれか1項に記載の金属部材の製造方法。
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| JP2017512126A JP6449444B2 (ja) | 2015-04-15 | 2015-04-15 | 金属部材の製造方法 |
| DE112015006448.6T DE112015006448T5 (de) | 2015-04-15 | 2015-04-15 | Verfahren zum Herstellen eines Metallelementes |
| US15/560,353 US10583518B2 (en) | 2015-04-15 | 2015-04-15 | Method for producing metal member |
| PCT/JP2015/061592 WO2016166842A1 (ja) | 2015-04-15 | 2015-04-15 | 金属部材の製造方法 |
| CN201580078828.1A CN107530821B (zh) | 2015-04-15 | 2015-04-15 | 金属部件的制造方法 |
| KR1020177029306A KR101965734B1 (ko) | 2015-04-15 | 2015-04-15 | 금속 부재의 제조 방법 |
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| US20180071859A1 (en) | 2018-03-15 |
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| JP6449444B2 (ja) | 2019-01-09 |
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| US10583518B2 (en) | 2020-03-10 |
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