An integrated tooling system for metal tube processing, forming and polishing

By designing an integrated tooling system for metal pipe processing, forming and polishing, which integrates the functions of loading, forming, bolting and polishing, automated assembly line production is achieved, which solves the problem of numerous metal pipe processing procedures, improves work efficiency and reduces labor costs.

CN118875727BActive Publication Date: 2025-09-05ANHUI ZHONGDING KEUMAH AUTO HOSE & PIPE ASSEMBLY
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Patent Information

Application Number
CN202411070446.1
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2024-08-06
Publication Date
2025-09-05
Estimated Expiration
2044-08-06

AI Technical Summary

Technical Problem

Existing metal pipe processing procedures are complicated, require a lot of manpower, and are not conducive to industrial production.

Method used

Design an integrated tooling system for metal tube processing, forming and polishing, integrating feeding, forming, bolting, shaping and polishing functions to realize automated assembly line production.

Benefits of technology

It simplifies the metal pipe processing process, improves work efficiency and reduces labor costs.

✦ Generated by Eureka AI based on patent content.

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Abstract

The present invention discloses an integrated tooling system for metal pipe processing, forming, and polishing, which relates to the technical field of metal pipe processing and includes a loading assembly, a forming assembly 1, a material transfer assembly, an upper bolt assembly, a forming assembly 2, a blanking assembly, and a polishing assembly. The loading assembly pushes the metal pipe into the forming assembly 1 for the first forming process, and the upper bolt assembly loads the bolts. After the first forming process is completed, the metal pipe is transferred by the material transfer assembly to the upper bolt assembly and the forming assembly 2 for bolt assembly and second forming. After the assembly and forming process is completed, the material transfer assembly transfers the pipe to the blanking assembly, and the blanking assembly transfers the pipe to the polishing assembly for polishing. This device integrates two-step forming, automatic bolting, and polishing, uses dual-station material transfer, has a sophisticated process, high work efficiency, and greatly reduces labor costs.
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Description

Technical Field

[0001] The invention belongs to the technical field of metal pipe processing, and in particular relates to an integrated tooling system for metal pipe processing, forming and polishing. Background Art

[0002] A metal fuel line used in automobiles is made from ordinary metal pipes with nodes formed at both ends. Bolts pass through the pipe, and one end requires polishing. Manufacturing the pipe requires four steps: primary node formation, bolt insertion, secondary node formation, and polishing. This multi-step process requires a lot of labor and is not conducive to industrial production. Therefore, a tooling system is urgently needed to address these issues. Summary of the Invention

[0003] In view of the problems mentioned in the background technology, the purpose of the present invention is to provide an integrated tooling system for metal tube processing, forming and polishing to solve the problems mentioned in the background technology.

[0004] The above technical objectives of the present invention are achieved through the following technical solutions:

[0005] A metal tube processing, forming and polishing integrated tooling system includes a loading assembly, a forming assembly 1, a material transfer assembly, an upper bolt assembly, a forming assembly 2, a blanking assembly and a grinding assembly; the metal tube is pushed by the loading assembly into the forming assembly 1 for the first forming, the upper bolt assembly loads the bolts, and after the first forming is completed, the metal tube is transferred by the material transfer assembly to the upper bolt assembly and the forming assembly 2 station for bolt assembly and a second forming, and after the assembly and forming are completed, the material transfer assembly transfers the tube to the blanking assembly, and the blanking assembly transfers the tube to the grinding assembly for grinding.

[0006] As an optimal technical solution, the loading assembly includes a support frame 1, on which a accommodating cavity is installed. The support frame 1 is equipped with a V-shaped groove and a cylinder 4 away from the placement end. The output shaft of the cylinder 4 is directed toward the forming assembly 2 and the output shaft pushes the metal tube to move along the inner wall of the V-shaped groove.

[0007] As an optimal technical solution, the material transfer assembly includes a linear drive 1, a slide rail 1, a clamp assembly, a mobile clamp 1, a mobile clamp 2 and a frame. The linear drive 1 and the slide rail 1 are installed on the frame. The mobile clamp 1 and the mobile clamp 2 are both installed on the output end of the linear drive 1. The mobile clamp 1 and the mobile clamp 2 are both slidably connected to the slide rail 1. The clamp assembly is installed between the support frame 1 and the forming assembly 1.

[0008] As an optimal technical solution, the clamping assembly includes a linear drive 2 installed between the loading assembly and the forming assembly 1, the output end of the linear drive 2 faces the frame, the output shaft of the linear drive 2 is installed with a cylinder 5, the output end of the cylinder 5 is installed with a clamping jaw 1, and the clamping jaw 1 is installed between the support frame 1 and the forming assembly 1.

[0009] As an optimal technical solution, the movable clamp includes a slide plate 1 installed on the output end of the linear drive 1, the slide plate 1 is slidably connected to the slide rail 1, the slide plate 1 is installed with a motor 2, the output shaft of the motor 2 is installed with a screw rod 2, and the output end of the screw rod 2 is close to one end of the clamp assembly and the clamp 2 is installed.

[0010] As an optimal technical solution, the movable clamping jaw 2 includes a slide plate 2 installed on the output end of a linear drive 1, the slide plate 2 is slidably connected to a slide rail 1, a motor 3 is installed on the slide plate 2, a screw rod 3 is installed on the output shaft of the motor 3, a lifting cylinder 1 is installed on the output end of the screw rod 3 away from the clamping jaw assembly, a pushing cylinder is installed on the output end of the lifting cylinder 1, and the output shaft of the pushing cylinder faces the blanking assembly and is installed with the clamping jaw 3.

[0011] As an optimal technical solution, the upper bolt assembly includes a vibrating plate, a material stopper, a material storage assembly and a fixing assembly. The material stopper and the fixing assembly are respectively installed on both sides of the outlet end of the vibrating plate, and the fixing assembly is located on the side of the forming assembly 2 close to the material moving assembly. The output end of the material storage assembly moves at the bottom end of the vibrating plate and the fixing assembly.

[0012] As an optimal technical solution, the material blocking member includes a material blocking cylinder and a material blocking plate. The material blocking plate is installed on the output end of the material blocking cylinder and the output end of the material blocking cylinder faces the outlet end of the vibration disk. The material blocking plate is L-shaped, the bottom end of the material blocking plate is lower than the outlet end of the vibration disk and the distance from the material blocking plate to the outlet end of the vibration disk is not greater than the height of the nut.

[0013] As an optimal technical solution, the material storage component includes a material storage cylinder 1 with its output end facing the forming component 2, a material storage cylinder 2 is installed on the output end of the material storage cylinder 1, a material storage plate is installed on the output end of the material storage cylinder 2, a receiving groove for accommodating a nut is opened in the middle of the top of the material storage plate, and the material storage plate is located below the outlet end of the vibration disk, and the fixed component includes a fixed cylinder with its output end facing downward, a fixed plate is installed on the output end of the fixed cylinder, and the fixed plate is identical and symmetrical to the material storage plate.

[0014] As an optimal technical solution, the second molding component includes a second molding machine. The second molding cavity of the second molding machine is located at the end of the fixed component away from the material moving component. The end of the molding cavity away from the material moving component is equipped with a second shift plate.

[0015] Beneficial effects

[0016] This device integrates two-step forming, automatic bolting and grinding, and double-station material transfer. It has sophisticated procedures and high work efficiency, greatly reducing labor costs.

[0017] Additional aspects and advantages of the present invention will be set forth in part in the description which follows and, in part, will be obvious from the description which follows, or may be learned by practice of the present invention. BRIEF DESCRIPTION OF THE DRAWINGS

[0018] Figure 1 This is a three-dimensional structural diagram of a metal tube processing, forming and polishing integrated tooling system proposed by the present invention;

[0019] Figure 2 This is a three-dimensional structural diagram of the feeding assembly of the present invention;

[0020] Figure 3 This is a three-dimensional structural diagram of the molding component 1 of the present invention;

[0021] Figure 4 For the present invention Figure 3 A magnified view of point A;

[0022] Figure 5 The three-dimensional structure of the double-station transfer component and the molding component of the present invention Figure 1 ;

[0023] Figure 6 The three-dimensional structure of the double-station transfer component and the molding component of the present invention Figure 2 ;

[0024] Figure 7 For the present invention Figure 6 An enlarged view of point B;

[0025] Figure 8 For the present invention Figure 6 The enlarged view of point C;

[0026] Figure 9 It is a three-dimensional structural diagram of the blanking assembly of the present invention.

[0027] Figure numerals: 1. feeding assembly; 11. support frame 1; 12. accommodating chamber; 13. cylinder 1; 14. push plate 1; 15. cylinder 2; 16. push plate 2; 17. cylinder 3; 18. give way plate; 19. V-shaped groove; 10. cylinder 4; 2. forming assembly 1; 21. forming machine 1; 211. forming chamber 1; 22. shift plate 1; 23. lifting cylinder; 24. lifting rod; 3. material moving assembly; 31. linear drive 1; 311. motor 1; 312. screw rod 1; 32. slide rail 1; 33. clamping jaw assembly; 331. linear drive 2; 332. cylinder 5; 333. clamping jaw 1; 34. moving clamping jaw 1; 341. motor 2; 342. synchronizer; 343. screw rod 2; 344. clamping jaw 2; 345. slide plate 1; 35. moving clamping jaw 2 ;351. Motor three;352. Screw rod three;353. Lifting cylinder one;354. Pushing cylinder;355. Clamp three;356. Slide plate two;36. Frame;4. Upper bolt assembly;41. Vibrating plate;42. Material stop;421. Material stop cylinder;422. Material stop plate;43. Material storage assembly;431. Material storage cylinder one;432. Material storage cylinder two;433. Material storage plate;44. Fixing assembly;441. Fixing cylinder;442. Fixing plate;5. Molding assembly two;51. Molding machine two;511. Molding cavity two;52. Shift plate two;6. Unloading assembly;61. Support frame two;62. Unloading cylinder;63. Mounting plate;64. Slide rail two;65. Lifting cylinder two;66. Rack lifting plate;67. Rack mounting plate;7. Grinding assembly. DETAILED DESCRIPTION

[0028] The following describes embodiments of the present invention in detail. Examples of the embodiments are shown in the accompanying drawings, wherein the same or similar symbols throughout represent the same or similar elements or elements having the same or similar functions. The embodiments described below with reference to the accompanying drawings are exemplary and are intended only to explain the present invention, and are not to be construed as limiting the present invention.

[0029] Example 1

[0030] refer to Figures 1 to 9 The metal tube processing, forming and polishing integrated tooling system described in this embodiment includes a loading component 1, a forming component 2, a moving component 3, an upper bolt component 4, a forming component 5, a blanking component 6 and a grinding component 7; the metal tube is pushed into the forming component 2 by the loading component 1 for the first forming, and the upper bolt assembly 4 loads the bolts. After the first forming is completed, the metal tube is transferred by the moving component 3 to the upper bolt assembly 4 and the forming component 2 5 station for bolt assembly and second forming. After the assembly and forming are completed, the moving component 3 transfers the pipe to the blanking component 6, and the blanking component 6 transfers the pipe to the grinding component 7 for grinding.

[0031] The loading component 1 includes a support frame 11, on which a stepped accommodating chamber 12 is installed. Cylinder 13 and cylinder 2 15 are installed in sequence on the support frame 11 below the accommodating chamber 12, away from the placement end. A push plate 14 is installed on the output end of cylinder 13, and a push plate 2 16 is installed on the output end of cylinder 2 15. The top ends of push plates 14 and 16 are intermittently inserted into the slots on the accommodating chamber 12. A V-groove 19 and a cylinder 4 10 are installed on the support frame 11 away from the placement end. The output shaft of cylinder 4 10 faces forming component 2 5 and a push plate is installed on the output shaft. The push plate moves along the inner wall of the V-groove 19. A cylinder 3 17 with its output shaft facing downward is installed on the upper end of the support frame 11. A clearance plate 18 is installed on the output shaft of cylinder 3 17, and the clearance plate 18 is in contact with and connected to the V-groove 19.

[0032] Place the metal tube into the accommodating cavity 12, cylinder one 13 pushes push plate one 14 to insert into the accommodating cavity 12 and push the metal tube onto the step of the accommodating cavity, cylinder three 17 drives the give way plate 18 upward to give way, cylinder two 15 pushes push plate two 16 to insert into the accommodating cavity 12 and push the metal tube into the V-shaped groove 19, and cylinder four 10 pushes the metal tube in the V-shaped groove 19 into the forming component one 2 through the push plate.

[0033] The molding component 2 5 includes a molding machine 21, on which a shift plate 22 is installed. The shift plate 22 and the V-shaped groove 19 are located on both sides of a molding cavity 211 of the molding machine 21. A lifting cylinder 23 is also installed on the molding machine 21, and a lifting rod 24 is installed on the output shaft of the lifting cylinder 23. The lifting rod 24 is located between the shift plate 22 and the molding cavity 211.

[0034] The metal tube is pushed into the molding cavity 211 through the V-groove 19 for the first molding. To ensure the consistency of the molding position, one end of the metal tube contacts the shift plate 22. At this time, the lifting rod 24 is located below the metal tube. After the first molding is completed, the lifting cylinder 23 starts to push the lifting rod 24 up, and the lifting rod 24 pushes the metal tube to be demolded.

[0035] The material transfer assembly 3 includes a linear drive 1 31, a slide rail 1 32, a clamping assembly 33, a mobile clamping jaw 1 34, a mobile clamping jaw 2 35 and a frame 36. The linear drive 1 31 and the slide rail 1 32 are installed on the frame 36. The mobile clamping jaw 1 34 and the mobile clamping jaw 2 35 are both installed on the output end of the linear drive 1 31. The mobile clamping jaw 1 34 and the mobile clamping jaw 2 35 are both slidably connected to the slide rail 1 32. The clamping assembly 33 is installed between the support frame 11 and the molding machine 1 21.

[0036] The linear drive 31 includes a motor 311 and a screw 312 mounted on the frame 36 , and the screw 312 is fixedly connected to the output shaft of the motor 311 .

[0037] The clamping jaw assembly 33 includes a linear drive 2 331 installed on the support frame 11 or the forming machine 1 21, and the output end of the linear drive 2 331 faces the frame 36. The output shaft of the linear drive 2 331 is installed with a cylinder 5 332, and the output end of the cylinder 5 332 is installed with a clamping jaw 1 333. The clamping jaw 1 333 and the shift plate 1 22 are located at both ends of the metal tube.

[0038] The movable clamping jaw 34 includes a slide 1 345 installed on the output end of the screw rod 1 312. The slide 1 345 is slidably connected to the slide rail 1 32. The slide 1 345 is installed with a motor 2 341. The output shaft of the motor 2 341 is fixedly connected to the active end of the synchronizer 342. The driven end of the synchronizer 342 is installed with a screw rod 2 343. The output end of the screw rod 2 343 is close to the end of the clamping jaw 1 333 and the clamping jaw 2 344 is installed.

[0039] The movable clamping jaw 2 35 includes a slide 2 356 installed on the output end of the screw rod 1 312. The slide 2 356 is slidably connected to the slide rail 1 32. The slide 2 356 is installed with a motor 351. The output shaft of the motor 351 is installed with a screw rod 352. The output end of the screw rod 352 is away from the clamping jaw 1 333 and is installed with a lifting cylinder 1 353. The output end of the lifting cylinder 1 353 is installed with a pushing cylinder 354. The output shaft of the pushing cylinder 354 is directed toward the blanking component 6 and is installed with the clamping jaw 355.

[0040] The upper bolt assembly 4 includes a vibration plate 41, a material stopper 42, a material storage assembly 43 and a fixing assembly 44. The material stopper 42 and the fixing assembly 44 are respectively installed on both sides of the outlet end of the vibration plate 41, and the fixing assembly 44 is located on the side of the forming assembly 2 5 close to the material moving assembly 3. The output end of the material storage assembly 43 moves at the bottom end of the vibration plate 41 and the fixing assembly 44.

[0041] The material blocking member 42 includes a material blocking cylinder 421 and a material blocking plate 422. The material blocking plate 422 is installed on the output end of the material blocking cylinder 421 and the output end of the material blocking cylinder 421 faces the outlet end of the vibration disk 41. The material blocking plate 422 is L-shaped, and the bottom end of the material blocking plate 422 is lower than the outlet end of the vibration disk 41 and the distance from the material blocking plate 422 to the outlet end of the vibration disk 41 is not greater than the height of the nut.

[0042] The material storage component 43 includes a material storage cylinder 1 431 whose output end faces the forming component 2 5, and a material storage cylinder 2 432 is installed on the output end of the material storage cylinder 1 431, and a material storage plate 433 is installed on the output end of the material storage cylinder 2 432. A receiving groove for accommodating a nut is opened in the middle of the top of the material storage plate 433, and the material storage plate 433 is located below the outlet end of the vibration disk 41.

[0043] The fixing assembly 44 includes a fixing cylinder 441 with an output end facing downward. A fixing plate 442 is installed on the output end of the fixing cylinder 441 . The fixing plate 442 is identical to and symmetrical to the material storage plate 433 .

[0044] The second molding assembly 5 includes a second molding machine 51 . The second molding chamber 511 of the second molding machine 51 is located at the end of the fixed cylinder 441 away from the frame 36 . A second shift plate 52 is installed at the end of the second molding chamber 511 away from the frame 36 .

[0045] After the first molding is completed, the lifting rod 24 and the clamping jaw 1 333 are demolded together, the clamping jaw 1 333 clamps the metal tube, the cylinder 5 332 drives the clamping jaw 1 333 to rise, and the linear drive 2 331 pushes the cylinder 5 332 to place the metal tube on the clamping jaw 2 344. The motor 1 311 drives the screw rod 1 312 to rotate, thereby driving the slide plate 1 345 and the slide plate 2 356 to move toward the blanking assembly 6 until the clamping claw 2 344 moves to the molding cavity 2 511. At the same time, the material blocking cylinder 421 drives the material blocking plate 422 to give way, and the material storage cylinder 2 432 pushes the material storage plate 433 to rise. The bolt falls from the outlet of the vibration disk 41 into the receiving groove on the material storage plate 433. At the same time, the material storage cylinder 2 432 drives the material storage plate 433 to descend, and the material blocking cylinder 421 pushes the material blocking plate 422 to block the vibration disk 41 outlet again. The material storage cylinder 1 431 pushes the material storage cylinder 2 432 to move between the molding cavity 2 511 and the clamping claw 2 344. The fixed cylinder 441 pushes the fixed plate 442 to descend so that the fixed plate 442 and the material storage plate 433 are fixed. The bolt is locked, and the bolt hole is coaxial with the forming cavity 2 511. The motor 2 341 drives the screw rod 2 343 to rotate through the synchronous part 342, driving the clamp 2 344 to approach the forming machine 2 51, so that the metal tube on the clamp 2 344 passes through the bolt and enters the forming cavity 2 511. The clamp 2 344 is loosened while the forming cavity 2 511 forms the metal tube for the second time. The motor 1 311 drives in the reverse direction to reset the clamp 2 344. After the second forming, the clamp 355 clamps the metal tube, and the lifting cylinder 1 3531 and the storage cylinder 2 432 rise to demold the metal tube. The motor 351 drives the screw rod 352 to rotate, so that the metal tube is away from the forming machine 2 51. The motor 1 311 drives the screw rod 1 312 to make the slide plate 2 356 close to the blanking component 6.

[0046] The unloading component 6 includes a support frame 61, on which a unloading cylinder 62 with an output shaft moving direction consistent with the length direction of the screw rod 312 is installed. A mounting plate 63 is installed on the output end of the unloading cylinder 62. The mounting plate 63 is slidably connected to the slide rail 64 installed on the support frame 61. A lifting cylinder 65 with an upward output shaft is installed on the mounting plate 63. A rack lifting plate 66 is installed on the output shaft of the lifting cylinder 65. A group of rack mounting plates 67 are respectively installed on both sides of the top of the support frame 61, and the serrations of the rack lifting plate 66 and the rack mounting plate 67 are consistent.

[0047] The pushing cylinder 3532 pushes the clamping jaw 355 so that the metal tube is located on the rack mounting plate 67. The clamping jaw 355 places the metal tube into a set of serrated grooves closest to itself. The unloading cylinder 62 and the lifting cylinder 2 65 are started at the same time, so that the rack lifting plate 66 is close to the spacing of an adjacent tooth groove of the grinding assembly 7. The lifting cylinder 2 65 descends so that the metal tube falls into the adjacent serrated groove close to the grinding assembly 7. This process is repeated until the metal tube enters the grinding assembly for grinding.

[0048] This device integrates two-step forming, automatic bolting and grinding, and double-station material transfer. It has sophisticated procedures and high work efficiency, greatly reducing labor costs.

[0049] It should be understood that the terms "center", "longitudinal", "lateral", "length", "width", "thickness", "up", "down", "front", "back", "left", "right", "vertical", "horizontal", "top", "bottom", "inside", "outside", "clockwise", "counterclockwise", "axial", "radial", "circumferential" and the like, indicating orientations or positional relationships, are based on the orientations or positional relationships shown in the accompanying drawings, and are only for the convenience of describing the present invention and simplifying the description, and do not indicate or imply that the device or element referred to must have a specific orientation, be constructed and operate in a specific orientation, and therefore should not be understood as limiting the present invention.

[0050] Furthermore, the terms "first" and "second" are used for descriptive purposes only and should not be construed as indicating or implying relative importance or implicitly specifying the number of the technical features being referred to. Thus, a feature defined as "first" or "second" may explicitly or implicitly include at least one such feature. In the description of the present invention, "plurality" means at least two, such as two, three, etc., unless otherwise specifically defined.

[0051] In the present invention, unless otherwise specified or limited, the terms "installed," "connected," "connect," "fixed," etc. should be understood in a broad sense. For example, they can refer to fixed connection, detachable connection, or integration; mechanical connection, electrical connection, or communication; direct connection or indirect connection through an intermediate medium; internal communication between two elements or interaction between two elements, unless otherwise specified. Those skilled in the art will understand the specific meanings of the above terms in the present invention based on specific circumstances.

[0052] In the present invention, unless otherwise expressly specified or limited, when a first feature is "above" or "below" a second feature, it may mean that the first and second features are in direct contact, or that the first and second features are in indirect contact through an intermediary. Furthermore, when a first feature is "above," "above," or "above" a second feature, it may mean that the first feature is directly above or diagonally above the second feature, or simply means that the first feature is at a higher level than the second feature. When a first feature is "below," "below," or "below" a second feature, it may mean that the first feature is directly below or diagonally below the second feature, or simply means that the first feature is at a lower level than the second feature.

[0053] The above description is only a preferred specific embodiment of the present invention, but the scope of protection of the present invention is not limited thereto. Any technician familiar with the technical field, within the technical scope disclosed by the present invention, who makes equivalent replacements or changes based on the technical solution and inventive concept of the present invention, should be covered by the scope of protection of the present invention.

Claims

1. A metal tube processing, forming and polishing integrated tooling system, characterized by: The invention comprises a feeding component (1), a forming component 1 (2), a material moving component (3), an upper bolt component (4), a forming component 2 (5), a material cutting component (6) and a grinding component (7); the metal pipe is pushed by the feeding component (1) to the forming component 1 (2) for the first forming, the upper bolt component (4) loads the bolts, and after the first forming is completed, the metal pipe is transferred by the material moving component (3) to the upper bolt component (4) and the forming component 2 (5) to assemble the bolts and perform the second forming, and after the assembly forming is completed, the material moving component (3) transfers the pipe to the material cutting component (6), and the material cutting component (6) transfers the pipe to the grinding component (7) for grinding; The upper bolt assembly (4) includes a vibration plate (41), a material stopper (42), a material storage assembly (43) and a fixing assembly (44). The material stopper (42) and the fixing assembly (44) are respectively installed on both sides of the outlet end of the vibration plate (41), and the fixing assembly (44) is located on the side of the second forming assembly (5) close to the material moving assembly (3). The output end of the material storage assembly (43) moves at the bottom end of the vibration plate (41) and the fixing assembly (44). The material blocking member (42) includes a material blocking cylinder (421) and a material blocking plate (422). The material blocking plate (422) is installed on the output end of the material blocking cylinder (421), and the output end of the material blocking cylinder (421) faces the outlet end of the vibration disk (41). The material blocking plate (422) is L-shaped, and the bottom end of the material blocking plate (422) is lower than the outlet end of the vibration disk (41). The distance from the material blocking plate (422) to the outlet end of the vibration disk (41) is not greater than the height of the nut. The material storage component (43) includes a material storage cylinder (431) with its output end facing the second forming component (5), a material storage cylinder (432) is installed on the output end of the material storage cylinder (431), a material storage plate (433) is installed on the output end of the material storage cylinder (432), a receiving groove for receiving a nut is opened in the middle of the top end of the material storage plate (433), and the material storage plate (433) is located below the outlet end of the vibration plate (41), and the fixing component (44) includes a fixing cylinder (441) with its output end facing downward, a fixing plate (442) is installed on the output end of the fixing cylinder (441), and the fixing plate (442) is identical and symmetrical to the material storage plate (433).

2. The metal tube processing, forming and polishing integrated tooling system according to claim 1, characterized in that: The loading assembly (1) includes a support frame (11), a receiving cavity (12) is installed on the support frame (11), a V-shaped groove (19) and a cylinder (10) are installed on the support frame (11) away from the placement end, and the output shaft of the cylinder (10) is directed toward the forming assembly (5) and the output shaft pushes the metal tube to move along the inner wall of the V-shaped groove (19).

3. The metal tube processing, forming and polishing integrated tooling system according to claim 1, characterized in that: The material moving assembly (3) comprises a linear drive 1 (31), a slide rail 1 (32), a clamping assembly (33), a movable clamping assembly 1 (34), a movable clamping assembly 2 (35) and a frame (36). The linear drive 1 (31) and the slide rail 1 (32) are mounted on the frame (36). The movable clamping assembly 1 (34) and the movable clamping assembly 2 (35) are both mounted on the output end of the linear drive 1 (31). The movable clamping assembly 1 (34) and the movable clamping assembly 2 (35) are both slidably connected to the slide rail 1 (32). The clamping assembly (33) is mounted between the support frame 1 (11) and the forming assembly 1 (2).

4. The metal tube processing, forming and polishing integrated tooling system according to claim 3, characterized in that: The clamping jaw assembly (33) includes a linear drive 2 (331) installed between the feeding assembly (1) and the forming assembly 1 (2), the output end of the linear drive 2 (331) faces the frame (36), the output shaft of the linear drive 2 (331) is installed with a cylinder 5 (332), the output end of the cylinder 5 (332) is installed with a clamping jaw 1 (333), and the clamping jaw 1 (333) is installed between the support frame 1 (11) and the forming assembly 1 (2).

5. The metal tube processing, forming and polishing integrated tooling system according to claim 3, characterized in that: The movable clamping jaw 1 (34) includes a slide plate 1 (345) installed on the output end of the linear drive 1 (31), the slide plate 1 (345) is slidably connected to the slide rail 1 (32), the slide plate 1 (345) is installed with a motor 2 (341), the output shaft of the motor 2 (341) is installed with a screw rod 2 (343), and the output end of the screw rod 2 (343) is close to one end of the clamping jaw assembly (33) and is installed with a clamping jaw 2 (344).

6. The metal tube processing, forming and polishing integrated tooling system according to claim 3, characterized in that: The movable clamping jaw 2 (35) includes a slide plate 2 (356) installed on the output end of the linear drive 1 (31), the slide plate 2 (356) is slidably connected to the slide rail 1 (32), the slide plate 2 (356) is installed with a motor 3 (351), the output shaft of the motor 3 (351) is installed with a screw rod 3 (352), the output end of the screw rod 3 (352) away from the end of the clamping jaw assembly (33) is installed with a lifting cylinder 1 (353), the output end of the lifting cylinder 1 (353) is installed with a pushing cylinder (354), the output shaft of the pushing cylinder (354) is directed toward the blanking assembly (6) and is installed with the clamping jaw 3 (355).

7. The metal tube processing, forming and polishing integrated tooling system according to claim 6, characterized in that: The second molding assembly (5) includes a second molding machine (51). The second molding cavity (511) of the second molding machine (51) is located at one end of the fixing assembly (44) away from the material moving assembly (3). The second molding cavity (511) is installed at one end away from the material moving assembly (3) with a second shift plate (52).

Citation Information

Patent Citations

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