Method for manufacturing fastening structure
The method enhances the ductility of the first member by pre-heating and supporting it with a thick-walled recess and central support, effectively preventing cracking during self-piercing rivet joining.
Patent Information
- Application Number
- JP2023042410
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Filing Date
- 2023-03-16
- Publication Date
- 2025-09-02
- Estimated Expiration
- 2043-03-16
AI Technical Summary
Existing self-piercing rivet techniques cause cracking in the lower plate-shaped member during the joining process.
A method involving a first member with a thick-walled protruding portion and a support member that heats and supports the first member before driving a self-piercing rivet, using a thick-walled recess and central support to enhance ductility and suppress cracking.
The method effectively suppresses cracking in the first member by increasing its ductility through pre-heating and strategic support, ensuring a robust fastening structure.
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Abstract
Description
[Technical Field]
[0001] The present invention relates to a method for manufacturing a fastening structure. [Background technology]
[0002] Patent Document 1 listed below discloses a technique for joining (fastening) a pair of overlapping plate materials to be joined using a self-piercing rivet. To briefly explain this prior art, a self-piercing rivet joins a pair of plate materials to be joined by drilling holes in the pair of plate materials with its hollow legs. [Prior art documents] [Patent documents]
[0003] [Patent Document 1] Japanese Patent Application Laid-Open No. 2010-188383 Summary of the Invention [Problem to be solved by the invention]
[0004] However, in such a technique, it is necessary to suppress cracks in the lower plate-shaped member caused by driving the self-piercing rivet.
[0005] In consideration of the above, an object of the present invention is to provide a method for manufacturing a fastening structure that can suppress cracking of a lower plate-shaped member caused by driving a self-piercing rivet. [Means for solving the problem]
[0006] The method for manufacturing a fastened structure of the present invention as set forth in claim 1 is a method for manufacturing a fastened structure in which a plate-shaped first member and a plate-shaped second member are fastened together with a self-piercing rivet, wherein the first member has a thick-walled portion that has a protruding portion that is protruding on one side in a plate thickness direction and is set to be thicker than other portions, and at least a portion of the second member is overlapped with the portion of the first member that includes the thick-walled portion from the other side in the plate thickness direction of the first member, and the self-piercing rivet is driven from the second member side into a fastening overlap portion that is a portion where the thick-walled portion and the second member overlap, thereby fastening the first member and the second member. a support member that supports the first member from the side opposite to the side where the self-piercing rivet is driven; a thick-walled corresponding recess that is recessed in the direction of driving the self-piercing rivet and is formed in an annular shape when viewed in the driving direction, and that comes into contact with the deformed part of the thick-walled portion when the thick-walled portion is deformed by driving the self-piercing rivet; and a thick-walled central support portion that supports the center of the top surface of the protrusion of the thick-walled portion, and before the step of driving the self-piercing rivet into the fastening overlap portion, the thick-walled portion is heated from the thick-walled central support portion while the center of the top surface of the protrusion of the thick-walled portion is supported by the thick-walled central support portion. .
[0007] According to the above configuration, the first member has a thick-walled portion that is thicker than other portions by having a protrusion that protrudes on one side in the thickness direction, and at least a portion of the second member is overlapped from the other side in the thickness direction of the first member onto the portion of the first member that includes the thick-walled portion. Next, a self-piercing rivet is driven from the second member into a fastening overlap portion, which is the portion where the thick-walled portion and the second member overlap, to fasten the first member and the second member together. Therefore, when the self-piercing rivet has been driven into the first and second members, the portion of the first member that covers the tip of the self-piercing rivet can be made thicker than in a comparative example in which no thick portion was present, making it possible to suppress cracking in the first member caused by driving the self-piercing rivet. Furthermore, the support member that supports the first member from the side opposite to the side where the self-piercing rivet is driven is formed with a thick-walled corresponding recess that is recessed in the direction of driving the self-piercing rivet and is annular when viewed in the driving direction, and that comes into contact with the thick-walled portion when the deformed portion is deformed by driving the self-piercing rivet, and a thick-walled central support portion that supports the center of the top surface of the convex portion of the thick-walled portion, and before the step of driving the self-piercing rivet into the fastening overlap portion, the thick-walled portion is heated from the thick-walled central support portion while the center of the top surface of the convex portion of the thick-walled portion is supported by the thick-walled central support portion. As a result, when the self-piercing rivet is driven into the fastening overlap portion, the thick-walled portion, and particularly the convex portion, are in a state where they are more ductile than at room temperature, thereby suppressing cracking of the first member.
[0010] Claim 2 The method for manufacturing a fastening structure of the present invention described in claim 1 to In the above-described configuration, when the self-piercing rivet is driven into the fastening overlap portion, Kiseki A portion of the first member that overlaps with the second member is heated from the support member.
[0011] According to the above configuration, when the self-piercing rivet is driven into the fastening overlap portion, the portion of the first member that overlaps the second member is heated by the heat from the support member. Therefore, when the self-piercing rivet is driven, the portion of the first member that overlaps the second member becomes more ductile than at room temperature, thereby suppressing cracking of the first member. Furthermore, because the first member is heated from the support member, heating to suppress cracking of the first member can be performed efficiently.
[0012] Claim 3 The method for manufacturing a fastening structure of the present invention described in claim 2 In the configuration described in ,before When the self-piercing rivet is driven into the fastening overlap portion, the first member is heated from the thick-walled corresponding recess.
[0013] According to the above configuration, when the self-piercing rivet is driven into the fastening overlap portion, the thick-walled portion deforms, and the deformed portion comes into contact with the thick-walled corresponding recess and is heated. Therefore, when the self-piercing rivet is driven, the ductility of the deformed portion of the first member below the tip of the self-piercing rivet, i.e., the portion where cracking is likely to occur, can be effectively increased. As a result, cracking of the first member is effectively suppressed. [Effects of the Invention]
[0014] As described above, according to the method for manufacturing a fastening structure of the present invention, it is possible to suppress cracking of the first member (lower plate-shaped member) caused by driving in the self-piercing rivet. [Brief explanation of the drawings]
[0015] [Figure 1] 1 is a cross-sectional view showing a first member, a second member, and a self-pierce rivet used in a manufacturing method of a fastening structure according to one embodiment. FIG. [Figure 2] 2 is a cross-sectional view showing a state in which a first member and a second member are fastened together by the self-piercing rivet of FIG. 1. FIG. [Figure 3]1 is a cross-sectional view showing an example of a fastening device used in a manufacturing method of a fastened structure according to one embodiment, together with a first member, a second member, and a self-piercing rivet. FIG. DETAILED DESCRIPTION OF THE INVENTION
[0016] A method for manufacturing a fastening structure according to one embodiment of the present invention will be described with reference to FIGS.
[0017] 1 shows a cross-sectional view of a first member 12, a second member 14, and a self-piercing rivet 16 used in the method for manufacturing a fastened structure according to this embodiment. The method for manufacturing a fastened structure according to this embodiment is a method for manufacturing a fastened structure 10 shown in FIG. 2 by fastening a plate-shaped first member 12 and a plate-shaped second member 14 together with the self-piercing rivet 16.
[0018] The first member 12 and the second member 14 shown in FIG. 1 are both made of metal. More specifically, the first member 12 is made of aluminum die-cast, for example, and the second member 14 is made of steel, for example. The first member 12 and the second member 14 are, for example, panels for a vehicle. The first member 12 is formed with a thick portion 12B. The thick portion 12B has a protruding portion 12C that is protruding on one side in the thickness direction of the first member 12, and is thereby set to have a thickness greater than that of the general portion 12A, which is the remaining portion.
[0019] For example, the protruding portion 12C is formed in a truncated cone shape. For example, the protruding amount of the protruding portion 12C is set to be smaller than the thickness of the general portion 12A. For example, the top surface 12T, which is the tip surface of the protruding portion 12C, is formed to have a size equivalent to (approximately the same as) the size of the head portion 16A of the self-piercing rivet 16 in a plan view, when viewed in the thickness direction of the first member 12.
[0020] The self-piercing rivet 16 is made of special steel such as chrome-molybdenum steel and includes a head 16A and a leg 16B that extends cylindrically from the head 16A. The inner diameter of the tip of the leg 16B gradually increases toward the tip, making it easier to deform the tip of the leg 16B in the direction that expands the diameter when the self-piercing rivet 16 is driven into members. Note that arrow A in Figure 1 indicates the direction in which the self-piercing rivet 16 is driven into the second member 14 and the first member 12.
[0021] Next, an example of a fastening device used in a manufacturing method of the fastening structure 10 (see FIG. 2) will be described with reference to FIG.
[0022] As shown in FIG. 3 , the fastening device 20 includes a die 22 as a support member that supports the first member 12 from the side opposite to the side where the self-piercing rivet 16 is driven. The die 22 is made of, for example, steel, and has a general support surface 22A that supports the general portion 12A of the first member 12 from below. The die 22 is formed with a thick-walled corresponding recess 22B that comes into contact with the deformed portion of the thick-walled portion 12B when the thick-walled portion 12B is deformed by driving the self-piercing rivet 16. The thick-walled corresponding recess 22B is recessed relative to the general support surface 22A and is formed in an annular shape in plan view. The die 22 also has a thick-walled central support portion 22C that supports the central portion of the thick-walled portion 12B of the first member 12 from below.
[0023] The die 22 also has a built-in heater 24, which is provided, for example, at a position corresponding to the thick-walled recess 22B and the thick-walled central support portion 22C. The heater 24 is shown schematically in the drawing. The heater 24 may also be arranged along the thick-walled recess 22B and the thick-walled central support portion 22C. The heater 24 is connected to a power source (not shown) and is capable of increasing its temperature by energizing it. The heater 24 is configured to be energizable by user operation or automatic control.
[0024] The fastening device 20 also includes a cylinder 26 and a punch 28. The cylinder 26 is cylindrical and allows the self-piercing rivet 16 to be inserted therein. The cylinder 26 is disposed to correspond to the outer periphery of the thick-walled recess 22B, and presses the first member 12 and the second member 14 supported by the die 22 toward the die 22. The punch 28 is a cylindrical member that can be moved axially within the cylinder 26 by a driving device (not shown), and is configured to press the self-piercing rivet 16 inserted into the cylinder 26 from above. In the drawing, the direction in which the punch 28 presses the self-piercing rivet 16 is indicated by arrow P.
[0025] Next, a method for manufacturing a fastened structure using the fastening device 20 will be described.
[0026] First, as shown in Fig. 3, the general portion 12A of the first member 12 is supported on the general support surface 22A of the die 22, and the convex portion 12C of the first member 12 is placed opposite the thick-walled corresponding recess 22B of the die 22. In this state, the center of the top surface 12T of the convex portion 12C of the first member 12 is supported by the thick-walled central support portion 22C of the die 22. In addition, the second member 14 is placed on top of the portion of the first member 12 that includes the thick-walled portion 12B. Next, the first member 12 and the second member 14 are sandwiched between the lower end surface of the cylinder 26 and the general support surface 22A of the die 22.
[0027] Next, the heater 24 is energized to generate heat, thereby heating the die 22. Note that the timing at which energization of the heater 24 begins may be before the first member 12 and the second member 14 are sandwiched between the lower end surface of the cylinder 26 and the general support surface 22A of the die 22. Next, the self-pierce rivet 16 inside the cylinder 26 is pressed from above with the punch 28.
[0028] As a result, self-piercing rivet 16 descends, leg portion 16B of self-piercing rivet 16 penetrates second member 14, and first member 12, pressed by self-piercing rivet 16 and second member 14, deforms toward thick-walled corresponding recess 22B. Thereafter, when the portion of first member 12 that was previously convex portion 12C reaches thick-walled corresponding recess 22B, first member 12 deforms along thick-walled corresponding recess 22B, and the tip side of leg portion 16B of self-piercing rivet 16 deforms in diameter and bites into first member 12. As a result, fastening structure 10 shown in FIG. 2 is manufactured.
[0029] To summarize the above, in the method for manufacturing a fastened structure of this embodiment, at least a portion of second member 14 is overlapped from the upper side (the other side in the plate thickness direction) of first member 12 onto a portion including thick portion 12B of first member 12 shown in Fig. 3, and self-piercing rivet 16 is driven from the second member 14 side into fastening overlapping portion 30, which is the portion where thick portion 12B and second member 14 overlap, to fasten first member 12 and second member 14. Therefore, in a state in which self-piercing rivet 16 has been driven into first member 12 and second member 14 as shown in Fig. 2, the thickness of the portion of first member 12 covering the tip end of leg portion 16B of self-piercing rivet 16 can be made thicker than in a comparative example in which thick portion 12B (see Fig. 3) was not present, making it possible to suppress cracking of the first member 12 side caused by driving self-piercing rivet 16.
[0030] 3 is driven into the fastening overlap portion 30, the portion of the first member 12 that overlaps with the second member 14 is heated from the die 22. Therefore, when the self-piercing rivet 16 is driven, the portion of the first member 12 that overlaps with the second member 14 becomes more ductile than at room temperature, thereby suppressing cracking of the first member 12. Furthermore, because the first member 12 is heated from the die 22, heating to suppress cracking of the first member 12 can be performed efficiently.
[0031] To explain heating more specifically, when the self-piercing rivet 16 is driven into the fastening overlap portion 30, the first member 12 is heated from the thick-walled central support portion 22C and the thick-walled corresponding recess 22B.
[0032] Here, thick central support portion 22C heats thick portion 12B from the top surface 12T side of protrusion 12C before the process of driving self-piercing rivet 16 into fastening overlap portion 30. Therefore, thick portion 12B, and particularly protrusion 12C, are in a state of higher ductility than at room temperature when self-piercing rivet 16 is driven. R Therefore, it is possible to contribute to suppressing cracking of the first member 12.
[0033] Furthermore, when the self-piercing rivet 16 is driven, the heat applied to the first member 12 from the thick-wall corresponding recess 22B effectively heats the deformed portion of the first member 12 below the tip of the leg 16B of the self-piercing rivet 16, i.e., the portion prone to cracking, and effectively increases the ductility of that portion. As a result, cracking of the first member 12 is effectively suppressed.
[0034] As described above, according to the method for manufacturing a fastening structure of the present embodiment, it is possible to suppress cracking of the first member 12 caused by driving the self-piercing rivet 16.
[0035] In the above embodiment, the portion of the first member 12 that overlaps with the second member 14 is heated from the die 22 that incorporates the heater 24. Reference Example Not an Embodiment of the Invention Alternatively, before the step of driving the self-piercing rivet 16 into the fastening overlap portion 30, the thick portion 12B may be directly heated from the top surface 12T of the protrusion 12C using, for example, an iron or a heating iron. Reference example In this case, the thick portion 12B, especially the protruding portion 12C, is driven with the self-piercing rivet 16 in a state where the ductility is higher than that at room temperature, so cracking of the first member 12 is suppressed. ExamplesAlternatively, the fastening overlap portion (30) may be heated directly or indirectly via the die (22) by hot air from a hot air blower (dryer). The configuration in which the fastening overlap portion (30) is directly heated by hot air from a hot air blower (dryer) is not an embodiment of the present invention but is a reference example.
[0036] Also, Reference Example Not an Embodiment of the Invention Alternatively, the self-piercing rivet (16) may be driven into the fastening overlap portion (30) without heating the portion of the first member (12) that overlaps with the second member (14).
[0037] Furthermore, as a modification of the above embodiment, In addition to the configuration of the above embodiment Alternatively, a heater 24 may be provided near the general support surface 22A of the die 22, and the portion of the first member 12 that overlaps with the second member 14 may be heated from the general support surface 22A of the die 22, thereby driving the self-piercing rivet 16 into the fastening overlap portion 30.
[0038] Also, Reference Example Not an Embodiment of the Invention Alternatively, the first member (12) may be supported by a support member that does not have a thick central support portion (22C), and the self-piercing rivet (16) may be driven into the fastening overlap portion (30).
[0039] The above-described embodiment and the above-described modifications can be implemented in appropriate combinations.
[0040] The above describes one example of the present invention, but the present invention is not limited to the above, and it goes without saying that the present invention can be implemented in various modified forms within the scope of the gist of the present invention. [Explanation of symbols]
[0041] 10 Fastening structure 12 First member 12A General Section (Other Sections) 12B Thick wall part 12C convex part 12T Top of the convex part 14 Second member 16 Self-piercing rivets 22 Die (support member) 22B Thick-walled recess 22C thick center support 30 Fastening overlap
Claims
1. A method for manufacturing a fastening structure in which a plate-shaped first member and a plate-shaped second member are fastened together with a self-piercing rivet, The first member has a thick-walled portion formed thereon that has a convex portion that is convex on one side in a plate thickness direction, and the plate thickness is set to be thicker than other portions, overlapping at least a portion of the second member with a portion of the first member including the thick portion from the other side in the plate thickness direction of the first member; driving the self-piercing rivet from the second member side into a fastening overlap portion, which is a portion where the thick portion and the second member overlap, to fasten the first member and the second member; a support member that supports the first member from the side opposite to the side where the self-piercing rivet is driven is formed with a thick-walled corresponding recess that is recessed in the direction of driving the self-piercing rivet and is formed in an annular shape when viewed in the driving direction, the thick-walled portion coming into contact with a deformed portion of the thick-walled portion when the thick-walled portion is deformed by driving the self-piercing rivet, and a thick-walled central support portion that supports a central portion of the top surface of the protruding portion of the thick-walled portion, a step of driving the self-piercing rivet into the fastening overlap portion, the step of supporting the center of the top surface of the convex portion in the thick-walled portion by the thick-walled central support portion, and then heating the thick-walled portion from the thick-walled central support portion.
2. 2. The method for manufacturing a fastened structure according to claim 1, wherein the portion of the first member that overlaps with the second member is heated from the support member when the self-piercing rivet is driven into the fastening overlap portion.
3. A method for manufacturing a fastening structure as described in claim 2, wherein the first member is heated from the thick-walled corresponding recess when the self-piercing rivet is driven into the fastening overlap portion.
Citation Information
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