Deburring Tools
The deburring tool for FSW addresses precision and overcutting issues by using a protrusion to control burr removal and a floating mechanism, ensuring accurate and efficient burr removal with adjustable protrusions and coatings.
Patent Information
- Application Number
- JP2022052442
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Filing Date
- 2022-03-28
- Publication Date
- 2025-09-30
- Estimated Expiration
- 2042-03-28
AI Technical Summary
Existing deburring tools for friction stir welding (FSW) either result in overcutting or fail to achieve high precision due to interference from chamfer amount adjustment stoppers, making it difficult to effectively remove burrs generated at the joint.
A deburring tool with a protrusion on the tool center portion that controls burr removal, allowing the cutting edge to contact the burr without interference, and a floating mechanism to adjust for varying bead depths, ensuring precise burr removal.
The tool achieves high-precision burr removal by preventing overcutting and residue, accommodating varying joint shapes, and extending tool life through suitable coatings and adjustable protrusions.
Smart Images

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Abstract
Description
[Technical Field]
[0001] The present invention relates to a technique for removing burrs generated by friction stir welding. [Background technology]
[0002] Friction stir welding (hereinafter referred to as "FSW") is a well-known method for joining two components, in which the joint between the two components is softened and stirred by frictional heat. FSW is performed by rotating a tool (pin) while pressing it firmly against the joint. As a result, parts of the joined components that have undergone plastic flow solidify, leaving so-called "burrs" at the joint (bead). Burrs can mar the appearance of the product, become a source of corrosion, and can even cause cuts to workers and users, so a burr removal process is essential in FSW.
[0003] Conventionally, deburring processes are classified into two types: those performed during joining (e.g., Patent Document 1) and those performed after joining. While the deburring during joining type is advantageous from the perspective of improving productivity because it allows deburring to be performed simultaneously with FSW, it tends to result in overcutting or residual burrs, and often does not achieve satisfactory burr removal accuracy. On the other hand, the post-joining type is disadvantageous from the perspective of productivity because deburring must be performed as a post-joining process, but it can be expected to achieve high deburring accuracy. The present invention aims to further improve the deburring accuracy of this post-joining type. Patent Document 2 discloses a chamfering tool that is not limited to deburring, and this may be applicable to deburring in post-FSW processes. In Patent Document 2, a chamfering amount adjustment stopper 16 that determines the chamfer depth is provided on the outer periphery of the tool, i.e., outside the cutting edge 12. By moving the tool over the joint while the deburring amount adjustment stopper 16 functions as a tracing part, chamfering without overcutting can be performed. [Prior art documents] [Patent documents]
[0004] [Patent Document 1] Japanese Patent Application Laid-Open No. 2001-47262 [Patent Document 2] Japanese Utility Model Application Publication No. 61-105513 Summary of the Invention [Problem to be solved by the invention]
[0005] However, in the case of FSW, burrs are generated at the edge of the bead. Therefore, if a chamfer amount adjustment stopper is provided on the outside of the cutting edge as in Patent Document 2, the chamfer amount adjustment stopper will interfere with the burr. Therefore, if FSW burrs are to be removed using a tool such as that disclosed in Patent Document 2, the only option is to have the cutting edge contact the burr without the chamfer amount adjustment stopper functioning as a copy section, i.e., to have the chamfer amount adjustment stopper raised above the bead, and then move the tool along the bead in that state. This inevitably leaves burrs behind, making it impossible to achieve high-precision deburring.
[0006] In view of the above problems, the present invention aims to provide a technique that is advantageous for increasing the precision of removing burrs generated by friction stir welding. [Means for solving the problem]
[0007] According to one aspect of the present invention, there is provided a deburring tool for cutting burrs that occur when components are joined by friction stir welding, the deburring tool comprising: a tool center portion that contacts the joint; and a blade portion that is formed on the outer periphery of the tool center portion and cuts the burr, wherein the tool center portion has a protrusion that protrudes downward from the ridge line of the blade portion so as to control the amount of burr removal. [Effects of the Invention]
[0008] According to the present invention, it is possible to provide a technique that is advantageous for increasing the precision of removing burrs generated by friction stir welding. [Brief explanation of the drawings]
[0009] [Figure 1] FIG. [Figure 2] FIG. 1 is a diagram showing an example of the configuration of a deburring system. [Figure 3] FIG. 2 is a diagram showing an example of the configuration of the periphery of a cutting portion of a deburring tool. [Figure 4] 4A and 4B are diagrams illustrating examples of cross-sectional shapes of blade portions of a deburring tool. [Figure 5] A diagram explaining the advantages of deburring tools. [Figure 6] 10A and 10B are diagrams showing an example of a floating mechanism of a deburring tool. [Figure 7] 10A and 10B are diagrams showing examples of fixing a protrusion with a bolt. [Figure 8] 10A to 10C are diagrams showing an example of a method for adjusting the protrusion amount of a protrusion portion. [Figure 9] 10A and 10B are diagrams showing examples of shapes of a connecting portion between a tool center portion and a cutting portion. DETAILED DESCRIPTION OF THE INVENTION
[0010] Hereinafter, the embodiments will be described in detail with reference to the accompanying drawings. Note that the following embodiments do not limit the scope of the invention as claimed, and not all combinations of features described in the embodiments are necessarily essential to the invention. Two or more of the features described in the embodiments may be arbitrarily combined. Furthermore, the same reference numerals are used for the same or similar components, and redundant explanations will be omitted.
[0011] In this specification and drawings, directions are indicated in an XYZ coordinate system with the horizontal plane as the XY plane. Hereinafter, the directions parallel to the X-axis, Y-axis, and Z-axis in the XYZ coordinate system will be referred to as the X-direction, Y-direction, and Z-direction, respectively.
[0012] FIG. 1(a) shows how members are joined by friction stir welding (FSW). Here, a first member K1 and a second member K2 are joined. The first member K1 and the second member K2 may be made of the same material or different materials. For example, the first member K1 and the second member K2 may be made of different types of metal. Alternatively, one of the first member K1 and the second member K2 may be made of metal, and the other may be made of a material other than metal (e.g., resin). The first member K1 and the second member K2 are adjacent to each other along the X direction, and their butt surfaces extend in the Y direction.
[0013] FSW is performed by rotating the probe 101 of the FSW tool 100 in the rotation direction (θz direction) around the Z axis indicated by arrow D1 while pressing its tip against the joint between the first member K1 and the second member K2 and moving it in the Y direction (direction indicated by arrow D2) along which the joint extends. By pressing the tip of the probe 101 against the joint while rotating, frictional heat causes the first member K1 and the second member K2 around the joint to soften and plastically flow. This integrates the two members, achieving joining.
[0014] In such FSW, as shown in Fig. 1(b), parts of the plastically flowed materials remain as burrs B along both ends of the joint (bead). The deburring tool of this embodiment successfully removes burrs B remaining due to the FSW.
[0015] FIG. 2 shows an example of the configuration of a deburring system 20 according to an embodiment. The deburring system 20 includes a robot 21. The robot 21 includes a multi-joint arm 22 that can be driven about, for example, six axes. A deburring tool T is supported at the tip of the arm 22 via a hand H. A rotary motor M is attached to the upper end of the deburring tool T for rotating a blade 23 attached to the lower end of the deburring tool T in the θz direction indicated by arrow D1. A first member K1 and a second member K2 joined by FSW are fixed to a stage S (surface plate) via a chuck C as workpieces. The robot 21 (and its control unit, not shown) controls the arm 22 to move the deburring tool T over the bead, thereby performing deburring. Note that, although the robot 21 is described here as a serial link robot using a multi-joint arm, it may also be a parallel link robot that operates an object via a parallel link mechanism composed of multiple arms.
[0016] FIG. 3(a) shows a cross-sectional view of the main part around the cutting portion 23 of the deburring tool T, and FIG. 3(b) shows a plan view of the cutting portion 23 as seen from below.
[0017] A rotary shaft 27, coaxially connected to the output shaft of the rotary motor M, is disposed in the center of the interior of the tool body 26. The rotary shaft 27 extends in the Z direction and can be rotated in the θz direction indicated by the arrow D1 by the driving force of the rotary motor M. A tool center portion 24 is fixed to the tip (lower end) of the rotary shaft 27. A cutting portion 23 is formed on the outer periphery of the tool center portion 24. The tool center portion 24 is the base end (root) of the cutting portion 23. The tool center portion 24 and the cutting portion 23 may be integrally formed or may be formed separately (separably). The tool body 26 forms a housing that accommodates the rotary shaft 27. However, as shown in FIG. 3(a), the lower end of the tool body 26 and the tip end of the cutting portion 23 may be fixed or integrally formed. In this manner, the tool body 26 can also function as a support member to prevent chipping of the cutting portion 23. In this case, the tool body 26 rotates in conjunction with the rotation of the rotary shaft 27 (i.e., the blade portion 23). However, the lower end of the tool body 26 and the tip of the blade portion 23 may not be connected. In such a case, the tool body 26 does not rotate in conjunction with the rotation of the rotary shaft 27 (i.e., the blade portion 23). In FIG. 3(b), the blade portion 23 has 12 blades, but the present invention is not limited to a specific number of blades. The number of blades can be appropriately selected depending on the feed speed of the deburring tool T, the rotation speed of the blade portion 23, the materials of the first and second members, and the like. As described above, the tool center portion 24 and the blade portion 23 may be formed separately, or the tool body 25 and the blade portion 23 may be formed separately. Therefore, the blade portion 23, the tool center portion 24, the tool body 26, and the protrusion 25 described below may each be formed separately or integrally.
[0018] The tool center portion 24 has a protrusion 25 at its rotation center. The protrusion 25 has a convex shape that protrudes downward relative to the ridge line of the cutting edge portion 23 so as to control the amount of burr removal. In the deburring process, the robot 21 controls the arm 22 to position the deburring tool T so that the protrusion 25 abuts against the joint (bead). Then, the deburring tool T is moved along the bead while the protrusion 25 abuts against the bead, thereby removing the burr. In other words, the protrusion 25 functions as a profiling portion in the profiling process for deburring. The presence of this profiling portion prevents overcutting.
[0019] In FSW, when the probe 101 is rotated in the D1 direction as shown in Figure 1(a), burrs B tend to occur in large numbers on the left side of the direction of progress of the welding (the D2 direction (Y direction) in Figure 1), as shown in Figure 1(b). In order to prevent burrs from remaining on the bead, it is advisable to set the rotation direction of the deburring tool T (blade portion 23) to the D1 direction, which is the same as the rotation direction of the FSW tool 100 (probe 101), and to set the movement direction of the deburring tool T to the D2 direction, which is the same as the direction of progress of the welding, as shown in Figures 3(a) and 5(a).
[0020] The protrusion 25 functions as a copying portion, thereby making it possible to appropriately control the amount of descent of the deburring tool T. This makes it possible to reduce overcutting and burr residue, and also makes it possible to control the amount of descent regardless of the shape of the workpiece.
[0021] Furthermore, the chamfering tool disclosed in Japanese Utility Model Laid-Open Publication No. 61-105513 (Patent Document 2) has a chamfering amount adjustment stopper, which is a tracing portion, located on the outside of the cutting edge. Therefore, when this chamfering tool is moved along the FSW bead, the chamfering amount adjustment stopper interferes with the burr, making it impossible to remove the burr. Furthermore, Figure 4 of Japanese Patent No. 6846075 discloses a configuration in which the blade is positioned along the surface of the workpiece and driven in a direction perpendicular to the cutting direction. With this configuration, if there is a hole 51 or boss 52 near the bead, as shown in Figure 5(b), the blade will interfere with them, making it impossible to remove the burr at that location.
[0022] In contrast to these, in this embodiment, the protrusion 25, which is the tracing portion, is located inside the cutting edge 23, so the protrusion 25 does not interfere with the burr, and the cutting edge 23 and protrusion 25 do not interfere with the holes or bosses near the bead, allowing for reliable deburring.
[0023] As described above, deburring is performed by moving the deburring tool T along the bead while the protrusions 25 are in contact with the joint (bead). Therefore, the protrusions 25 function as a tracing part. Therefore, it is possible to handle not only flat joint surfaces, but also joint surfaces with uneven profiles in the height direction. That is, even if the joint surface extending in the Y direction has different heights at different positions in the Y direction, the protrusions 25 trace and contact the joint surface, allowing deburring with the same accuracy at any position. Furthermore, the bead depth at each point in the traveling direction may not be constant and may vary. The deburring tool T may be equipped with a floating mechanism to absorb such variations in bead depth.
[0024] FIG. 6 shows an example of a floating mechanism. The tool body 26 is housed in a housing 60 so that the blade 23 and protrusion 25 attached to its lower end are exposed. The tool body 26 is movable (slidable) in the Z direction along the inner wall of the housing 60. A compression spring 61 is attached between the upper surface of the tool body 26 and the opposing inner wall of the upper surface of the housing 60, and the compression spring 61 biases the tool body 26 toward its distal end (lower end). A buffer member 62, such as a rubber bushing, may be disposed between the periphery of the inner wall of an opening formed in the bottom of the housing 60 and the head of the tool body 26. For simplicity, FIG. 6 omits the rotating shaft 27 (see FIG. 3(a)) inserted into the compression spring 61 and its extension / retraction mechanism. The compression spring 61 may be replaced with another elastic member, such as an air spring.
[0025] The deburring tool T moves in the direction of travel while the compression spring 61 expands and contracts in response to variations in the bead depth. Therefore, even if the deburring tool T is moved in the direction of travel at a constant height, the height of the cutting portion 23 can be changed in accordance with variations in the bead depth, thereby achieving highly accurate deburring.
[0026] During copying, the protrusions 25 move while rotating on the bead, and therefore sliding friction between the protrusions 25 and the bead is unavoidable. Therefore, for example, if the first member K1 and / or the second member K2 contains aluminum, there is a possibility that aluminum may adhere to the protrusions 25 that come into contact with the bead. Therefore, in one example, the convex shape of the protrusions 25 is formed in an arc-like shape that protrudes downward from the ridgeline of the cutting edge 23. By forming the protrusions 25 in an arc-like shape, the contact between the protrusions 25 and the bead approaches point contact, improving sliding properties and making it possible to prevent or reduce the above-mentioned adhesion of aluminum.
[0027] Figure 4 shows an example of the cross-sectional shape of a bead created by FSW and the corresponding cross-sectional shape of the blade portion 23. As shown in Figure 4, a bead created by FSW typically has a shape with a recessed center due to solidification shrinkage. The protrusion 25 comes into contact with this recessed position in the center of the bead, and the blade portion 23 cuts off burrs B that have occurred at the end of the bead. The blade portion 23 has a tip angle that corresponds to the cross-sectional shape of this bead.
[0028] In this embodiment, the cutting portion 23 has a shape in which the tip angle (taper angle) decreases toward the outer periphery in the radial direction, as shown in Fig. 4. For example, if the tip angle of a first region on the inner periphery close to the tool center portion 24 of the cutting portion 23 is θ1, the tip angle of a second region on the outer periphery of the first region is θ2, and the tip angle of a third region on the outer periphery of the second region is θ3, the relationship between the respective tip angles is as follows: θ1>θ2>θ3
[0029] By gradually decreasing the point angle toward the outer periphery in this manner, it is possible to prevent the workpiece portion located outside the burr B generated at the bead end from being scraped.
[0030] In this embodiment, the cutting portion 23 and at least the protrusions 25, preferably the tool center portion 24 including the protrusions 25, may be coated with diamond-like carbon (DLC). The DLC films formed on the cutting portion 23 and the protrusions 25 may be made of the same material. In one example, the material of the DLC film may be hydrogen-free DLC.
[0031] The DLC film formed on the surface of the protrusion 25 ensures smooth sliding between the protrusion 25 and the bead, while the DLC film formed on the surface of the cutting edge 23 ensures high hardness against burrs B, which are the cutting target. Therefore, the materials for the DLC films may be different depending on the purpose. For example, aC (amorphous carbon), which has low friction (sliding resistance), may be selected for the DLC film formed on the surface of the protrusion 25, while ta-C (tetrahedral amorphous carbon), which has higher hardness than aC, may be selected for the DLC film formed on the surface of the cutting edge 23. In this case, the DLC film formed on the surface of the protrusion 25 has a lower coefficient of friction than the DLC film formed on the cutting edge 23. Furthermore, the DLC film formed on the cutting edge 23 has a higher hardness than the DLC film on the protrusion 25. While the above example describes the use of DLC as a coating material, the material is not limited to DLC. For example, titanium nitride (TiN), chromium nitride (CrN), etc. may be used as the coating material.
[0032] In this way, by using a coating that is suited to each part of the deburring tool T, the life of each part can be extended.
[0033] Even if the protrusions 25 are DLC coated as described above, the thermal load on the protrusions 25 is large, and aluminum deposition or the like may still occur. Therefore, the protrusions 25 and the cutting edge 23 may be configured separately. In this case, the protrusions 25 and the tool center 24 may also be configured separately. This allows only the protrusions 25, which are subject to a large thermal load, to be replaced, thereby reducing costs.
[0034] When the protrusion 25 and the tool center portion 24 are configured separately, it is preferable that the protrusion 25 be fixed to the surface of the tool body portion 26 by bolts 71 and 72, as shown in Fig. 7. This configuration allows the user to easily attach and detach the protrusion 25. Furthermore, the protrusion amount of the protrusion 25 relative to the ridge line of the cutting portion 23 may be adjusted depending on the tightening amount of the bolts 71 and / or 72.
[0035] 8(a) shows the protrusion 25 removed from the tool center portion 24. When attaching the protrusion 25, as shown in FIG. 8(b), one or more spacers or shims 81 may be inserted to adjust the amount of protrusion of the protrusion 25 relative to the ridge line of the cutting edge portion 23. By making the amount of protrusion adjustable in this way, the amount of adjustment of the protrusion 25 can be obtained according to the joining depth.
[0036] FIG. 9 shows an example of the shape of the connection between the tool center portion 24 and the cutting portion 23. In the example of FIG. 9, a groove 24a located between the flank 23b of the cutting edge of the cutting portion 23 and the cutting edge (rake face) 23a subsequent to the flank 23b is formed so as to extend to the outer periphery of the tool center portion 24. This groove 24a improves ventilation between the cutting edges, resulting in a heat dissipation effect. Furthermore, burrs are located away from the protrusions 25, and chips scattered by cutting are expelled to the outer periphery, so chips do not get into the dividing surface between the protrusions 25 and the tool center portion 24 (the dividing surface between the cutting portion 23 and the tool center portion 24 in the case where the cutting portion 23 and the tool center portion 24 are configured to be separated), preventing the dividing portion from becoming unremovable.
[0037] <Summary of the embodiment> The above embodiments disclose at least the following deburring tool embodiments.
[0038] 1. The deburring tool of the above embodiment is a deburring tool (T) for cutting burrs generated when members are joined by friction stir welding, a tool center portion (24) that contacts the joint; a cutting edge (23) formed on the outer periphery of the tool center portion for cutting burrs, The tool center portion has a protrusion (25) that protrudes downward from the ridge line of the cutting edge so as to control the amount of burr removal. According to this embodiment, the amount of descent of the deburring tool can be appropriately controlled, overcutting and burr residue can be reduced, and the amount of descent can be controlled regardless of the shape of the workpiece.
[0039] 2. In the above embodiment, The protrusion has a shape that protrudes downward in an arc shape relative to the ridge line of the blade portion. According to this embodiment, the contact between the protrusion and the joint is closer to point contact, which improves the ease of sliding and makes it possible to prevent or reduce aluminum adhesion.
[0040] 3. In the above embodiment, The cutting edge has a shape in which the point angle decreases toward the outer periphery in the radial direction. According to this embodiment, it is possible to prevent the work portion outside the burr from being scraped off.
[0041] 4. In the above embodiment, a diamond-like carbon film is formed on the surface of each of the protrusion and the blade; The diamond-like carbon film on the protrusion has a lower coefficient of friction than the diamond-like carbon film on the cutting edge. According to this embodiment, a coating suited to each part of the deburring tool is used, thereby extending the life of each part.
[0042] 5. In the above embodiment, a diamond-like carbon film is formed on the surface of each of the protrusion and the blade; The diamond-like carbon film on the cutting edge has a higher hardness than the diamond-like carbon film on the protrusion. According to this embodiment, a coating suited to each part of the deburring tool is used, thereby extending the life of each part.
[0043] 6. In the above embodiment, The protrusion and the blade are configured as separate bodies. According to this embodiment, it is possible to replace only the protrusions that have a large thermal load, thereby reducing costs.
[0044] 7. In the above embodiment, The protrusion is configured so that the amount of protrusion from the ridge line of the blade is adjustable. According to this embodiment, it is possible to obtain an adjustment amount of the protrusion according to the bonding depth.
[0045] 8. In the above embodiment, A groove is formed on the outer periphery of the tool center, the groove being located between the flank of the cutting edge that constitutes the cutting portion and the cutting edge that follows the flank. According to this embodiment, the air permeability between the cutting edges is improved, and a heat dissipation effect is obtained. [Explanation of symbols]
[0046] B: burr, K1: first member, K2: second member, 23: cutting edge, 24: tool center, 25: protrusion
Claims
1. A deburring tool for removing burrs generated when members are joined by friction stir welding, a tool center portion that contacts the joint; a cutting edge formed on the outer periphery of the tool center portion for cutting burrs; Equipped with The tool center portion has a protrusion that protrudes downward from a ridge line of the cutting edge so as to control the amount of burr removal.
2. The deburring tool according to claim 1 , wherein the protrusion has a shape that protrudes downward in an arc shape relative to the ridge line of the cutting edge.
3. The deburring tool according to claim 1 , wherein the cutting edge has a shape in which a point angle decreases toward an outer periphery in the radial direction.
4. a diamond-like carbon film is formed on the surface of each of the protrusion and the blade; 2. The deburring tool according to claim 1, wherein the diamond-like carbon film on the protrusion has a lower coefficient of friction than the diamond-like carbon film on the cutting edge.
5. a diamond-like carbon film is formed on the surface of each of the protrusion and the blade; 2. The deburring tool according to claim 1, wherein the diamond-like carbon film on the cutting edge has a higher hardness than the diamond-like carbon film on the protrusion.
6. The deburring tool according to claim 1 , wherein the protrusion and the cutting edge are configured as separate pieces.
7. The deburring tool according to claim 6, wherein the protrusion is configured so that the amount of protrusion from the ridge line of the cutting edge is adjustable.
8. 8. The deburring tool according to claim 1, wherein a groove is formed on the outer periphery of the tool center portion, the groove being located between a flank of a cutting edge constituting the cutting portion and a cutting edge subsequent to the flank.
Citation Information
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