Aluminum profile machining tool

Through the relative movement of the fan-shaped disc and the buffer clamping mechanism, the problem of clamping force affecting plasticity during the processing process of aluminum profiles is solved, and stable processing of aluminum profiles of different sizes is achieved and damage rate is reduced.

CN223130486UActive Publication Date: 2025-07-22HUBEI CHUANGWEI MASCH EQUIP CO LTD
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Patent Information

Application Number
CN202422223213.2
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-09-11
Publication Date
2025-07-22
Estimated Expiration
2034-09-11

AI Technical Summary

Technical Problem

When existing aluminum profile processing tools are clamped and pushed, clamps with strong clamping force will lead to poor plasticity of aluminum profiles, affecting the processing effect.

Method used

The relative movement of two sector-shaped disks is adopted, and the aluminum profile is clamped together with the surface buffer pad. The docking is achieved through the accommodation groove, adapting to different sizes of aluminum profiles, and processing and transmission is achieved by the rotation of the threaded conveying rod.

Benefits of technology

The adaptability of processing tooling to aluminum profiles of different sizes is improved, and the damage rate of aluminum profiles is reduced.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses an aluminum profile machining tool, and relates to the technical field of aluminum profile machining, the aluminum profile machining tool comprises a tool table, the top surface of the tool table is in sliding connection with a pushing block capable of generating a stable pushing effect, and the top of the pushing block is provided with two fan-shaped discs which can generate clamping during pushing and cannot damage an aluminum profile. According to the aluminum profile clamping device, the two fan-shaped discs move relatively, the buffer pad on one side of the surface is used for clamping an aluminum profile together, and meanwhile, the two fan-shaped discs can be in butt joint through the containing grooves when moving relatively, so that the fan-shaped discs can adapt to aluminum profiles of different sizes, and the clamping effect is achieved; and finally, a threaded moving block is moved through rotation of a threaded conveying rod, so that the machining and conveying effects of the aluminum profiles are achieved, the machining tool can adapt to the aluminum profiles of different sizes, and the damage rate of the aluminum profiles can also be reduced during clamping.
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Description

Technical Field

[0001] The utility model relates to the technical field of aluminum profile processing, in particular to an aluminum profile processing tooling. Background Art

[0002] In recent years, due to its many advantages such as low density, light weight, strong corrosion resistance, good weather resistance, good processing performance, good radiation resistance, small elastic coefficient, no spark generation during impact, good heat conduction and electrical conductivity, and the surface being flat and smooth without any influence on desiccants, aluminum profiles have been widely used. Aluminum profiles are increasingly used in life. Therefore, when processing aluminum profiles, an aluminum profile processing tooling is required.

[0003] The applicant found through retrieval that the Chinese patent discloses "an aluminum profile processing tooling" with the publication number of "CN215747892U", which includes a T-shaped slide rail, a workbench and a sliding seat. The top of the T-shaped slide rail is connected with a workbench. One end of the T-shaped slide rail is movably connected with a sliding seat that cooperates with the workbench, and the other end of the T-shaped slide rail is fixedly connected with a connecting seat. The top of the sliding seat is connected with a fixed seat, and a side pushing mechanism is installed on the top of the fixed seat. Adjusting fingers that cooperate with each other are arranged on one side of the side pushing mechanism and the connecting seat. When the utility model is used, the tightening adjustment mechanism is used to facilitate the connection between the sliding seat and the T-shaped slide rail, so as to facilitate the adjustment of the distance between the two groups of adjusting fingers. Then, through the action of the adjusting fingers, the clamping points are adjustable, and then different specifications of aluminum profiles can be processed and clamped, greatly improving the overall work efficiency and reducing the labor cost and use cost.

[0004] However, when the existing tooling processes aluminum profiles, since the aluminum profile has weak plasticity when being pushed after heating, a fixture with a strong clamping force will make the plasticity of the aluminum profile worse when it is clamped and pushed, resulting in a worse working effect of the tooling. Summary of the Utility Model

[0005] The purpose of the utility model is to provide an aluminum profile processing tooling to solve the problem that when the existing tooling processes aluminum profiles, since the aluminum profile has weak plasticity when being pushed after heating, a fixture with a strong clamping force will make the plasticity of the aluminum profile worse when it is clamped and pushed, resulting in a worse working effect of the tooling as mentioned in the above background art.

[0006] To achieve the above object, the utility model provides the following technical solution: An aluminum profile processing tooling, including a tooling table, on the top surface of the tooling table is slidably connected a pushing block that can produce a stable pushing effect. On the top of the pushing block are provided two sector plates that can produce clamping during pushing and will not damage the aluminum profile. Inside the pushing block is opened a working cavity that can control the relative movement of the two sector plates to produce a clamping effect, and inside the tooling table is opened a pushing cavity that can control the pushing of the pushing block.

[0007] Preferably, the two sector plates are arranged on both sides of the top surface of the pushing block. At both ends of one side of the surface of the sector plate are fixedly connected with limiting sliding rails. On the opposite surfaces of the two limiting sliding rails is fixedly connected a separating block. Inside one of the sector plates is opened a receiving groove.

[0008] Preferably, on the opposite surfaces of the two limiting sliding rails is jointly slidably connected a bow-shaped block. On both sides of the opposite surfaces of the bow-shaped block and the separating block are jointly fixedly connected with buffer springs.

[0009] Preferably, on the opposite surfaces of the two limiting sliding rails are both provided with limiting blocks. On the surface of the bow-shaped block away from the buffer spring is fixedly connected with a buffer pad.

[0010] Preferably, at the bottom of the two sector plates are both fixedly connected with bidirectional threaded blocks, and inside the bidirectional threaded blocks are provided threaded grooves.

[0011] Preferably, the working cavity is arranged inside the pushing block. On one side of the inner wall of the working cavity is fixedly connected a working motor. The output end of the working motor is fixedly connected with a bidirectional lead screw, and the end of the bidirectional lead screw away from the working motor is rotatably connected to the inside of the working cavity.

[0012] Preferably, both sides of the rod wall of the bidirectional lead screw penetrate inside the threaded groove, and both sides of the rod wall of the bidirectional lead screw are threadedly connected with the threaded groove.

[0013] Preferably, at the bottom surface of the pushing block is fixedly connected a threaded moving block, and on the top surface of the pushing block is opened a first limiting groove.

[0014] Preferably, the pushing cavity is opened inside the tooling table. On one side of the inner wall of the pushing cavity is fixedly connected a pushing motor. The output end of the pushing motor is fixedly connected with a threaded transmission rod. The rod wall of the threaded transmission rod is threadedly connected with the inside of the threaded moving block, and the end of the threaded transmission rod away from the pushing motor is rotatably connected to the inner wall of the pushing cavity. On the top surface of the tooling table is opened a second limiting groove.

[0015] Preferably, longitudinal blocks are fixedly connected to both sides of the top surface of the tooling table. Longitudinal sliding grooves are formed inside both longitudinal blocks, and both ends of the pushing block are respectively located inside the longitudinal sliding grooves for sliding connection.

[0016] Technical effects and advantages of the present utility model: The present utility model utilizes the relative movement of two sector disks, and jointly clamps the aluminum profile with the buffer pads on one side of the surface. At the same time, when the two sector disks move relatively, they can be docked by means of the accommodating grooves, so that the sector disks can adapt to aluminum profiles of different sizes to achieve the clamping effect. Finally, the rotation of the threaded transmission rod makes the threaded moving block move, thereby achieving the processing and conveying effect of the aluminum profile, improving the adaptability of the processing tooling to aluminum profiles of different sizes, and reducing the damage rate of the aluminum profile during clamping. BRIEF DESCRIPTION OF THE DRAWINGS

[0017] Figure 1 is a three-dimensional structural schematic diagram of the present utility model.

[0018] Figure 2 is a side structural schematic diagram of the sector disk of the present utility model.

[0019] Figure 3 is a front sectional structural schematic diagram of the pushing block and the sector disk of the present utility model.

[0020] Figure 4 is a side sectional structural schematic diagram of the tooling table of the present utility model.

[0021] In the figure: 1, tooling table; 2, pushing block; 3, sector disk; 301, limit sliding rail; 302, separating block; 303, bow-shaped block; 304, buffer spring; 305, buffer pad; 306, limit block; 307, accommodating groove; 308, bidirectional threaded block; 309, threaded groove; 4, working cavity; 401, working motor; 402, bidirectional lead screw; 403, first limit groove; 404, threaded moving block; 5, pushing cavity; 501, pushing motor; 502, threaded transmission rod; 503, second limit groove; 6, longitudinal block; 7, longitudinal sliding groove. DETAILED DESCRIPTION OF THE EMBODIMENTS

[0022] The following will clearly and completely describe the technical solutions in the embodiments of the present utility model with reference to the accompanying drawings in the embodiments of the present utility model. Obviously, the described embodiments are only a part of the embodiments of the present utility model, rather than all of the embodiments. All other embodiments obtained by those of ordinary skill in the art based on the embodiments of the present utility model without creative efforts shall fall within the protection scope of the present utility model.

[0023] The present utility model provides as Figures 1-4An aluminum profile processing tooling as shown includes a tooling table 1. A pushing block 2 capable of generating a stable pushing effect is slidably connected to the top surface of the tooling table 1. Two sector plates 3 capable of clamping during pushing and not damaging the aluminum profile are provided on the top of the pushing block 2. A working cavity 4 capable of controlling the relative movement of the two sector plates 3 to generate a clamping effect is opened inside the pushing block 2. A pushing cavity 5 capable of controlling the pushing of the pushing block 2 is opened inside the tooling table 1. The utility model utilizes the relative movement of the two sector plates 3 and jointly clamps the column aluminum profile with the buffer pads 305 on one side of the surface. At the same time, when the two sector plates 3 move relatively, they can be docked by using the receiving grooves 307, so that the sector plates 3 can adapt to aluminum profiles of different sizes to generate a clamping effect. Finally, the rotation of the threaded transmission rod 502 makes the threaded moving block 404 move, thereby achieving the processing and conveying effect of the aluminum profile, improving the adaptability of the processing tooling to aluminum profiles of different sizes, and reducing the damage rate of the aluminum profile during clamping.

[0024] As Figure 2 shown, the two sector plates 3 are arranged on both sides of the top surface of the pushing block 2. Both ends of one side of the surface of the sector plate 3 are fixedly connected with limiting slide rails 301. A separating block 302 is fixedly connected to the opposite side of the two limiting slide rails 301. A receiving groove 307 is opened inside one of the sector plates 3. The setting of the receiving groove 307 enables one of the sector plates 3 to be contained in the other when the two sector plates 3 move relatively to generate a clamping effect, so that the clamping range is adjustable. A bow-shaped block 303 is slidably connected to the opposite side of the two limiting slide rails 301. Buffer springs 304 are fixedly connected to both sides of the opposite side of the bow-shaped block 303 and the separating block 302. Limiting blocks 306 are arranged on the opposite side of the two limiting slide rails 301. A buffer pad 305 is fixedly connected to the surface of the bow-shaped block 303 away from the buffer spring 304. Both bottoms of the two sector plates 3 are fixedly connected with bidirectional threaded blocks 308, and threaded grooves 309 are arranged inside the bidirectional threaded blocks 308.

[0025] As Figure 3 shown, the working cavity 4 is arranged inside the pushing block 2. A working motor 401 is fixedly connected to one side of the inner wall of the working cavity 4. The output end of the working motor 401 is fixedly connected with a bidirectional lead screw 402, and the end of the bidirectional lead screw 402 away from the working motor 401 is rotatably connected to the inside of the working cavity 4. Both sides of the rod wall of the bidirectional lead screw 402 penetrate inside the threaded groove 309, and both sides of the rod wall of the bidirectional lead screw 402 are threadedly connected with the threaded groove 309. A threaded moving block 404 is fixedly connected to the bottom surface of the pushing block 2. A first limiting groove 403 is opened on the top surface of the pushing block 2. The setting of the first limiting groove 403 can ensure the relative movement of the two sector plates 3 and ensure the normal operation of the device.

[0026] AsFigure 4 As shown in the figure, a pushing cavity 5 is opened inside the tooling table 1. One side of the inner wall of the pushing cavity 5 is fixedly connected with a pushing motor 501. The output end of the pushing motor 501 is fixedly connected with a threaded transmission rod 502. The rod wall of the threaded transmission rod 502 is in threaded connection with the inside of the threaded moving block 404. And one end of the threaded transmission rod 502 away from the pushing motor 501 is rotatably connected with the inner wall of the pushing cavity 5. A second limiting groove 503 is opened on the top surface of the tooling table 1. Longitudinal blocks 6 are fixedly connected to both sides of the top surface of the tooling table 1. Longitudinal sliding grooves 7 are opened inside both longitudinal blocks 6. And both ends of the pushing block 2 are respectively located inside the longitudinal sliding grooves 7 for sliding connection. The setting of the longitudinal sliding grooves 7 can make the movement of the pushing block 2 more stable.

[0027] Working principle of the present utility model: When the present utility model is in use, first place the aluminum profile to be processed on the opposite side of the two sector plates 3. Then turn on the working motor 401, and use the output end of the working motor 401 to drive the bidirectional lead screw 402 to rotate. While the bidirectional lead screw 402 is rotating, the bidirectional threaded blocks 308 threadedly connected to both sides of the rod wall will respectively drive the two sector plates 3 at the top to move relatively and clamp, so that the two buffer pads 305 on one side of the surface of the sector plate 3 jointly clamp the aluminum profile. And the bow-shaped block 303 will slide on the opposite side of the two limiting slide rails 301. While sliding, it will utilize the elasticity given by the buffer spring 304, which can not only ensure the firm clamping of the aluminum profile, but also protect the aluminum profile from deformation due to the huge clamping force.

[0028] While clamping, use the transmission of the pushing motor 501 to make the threaded transmission rod 502 drive the threaded moving block 404 on one side of the rod wall to perform transverse transmission. Thus, the threaded moving block 404 drives the pushing block 2 at the top to successfully achieve the pushing effect.

[0029] Finally, it should be noted that the above are only the preferred embodiments of the present utility model and are not used to limit the present utility model. Although the present utility model has been described in detail with reference to the foregoing embodiments, for those skilled in the art, they can still modify the technical solutions recorded in the foregoing embodiments, or perform equivalent replacements for some of the technical features. Any modifications, equivalent replacements, improvements, etc. made within the spirit and principle of the present utility model shall be included in the protection scope of the present utility model.

Claims

1. An aluminum profile processing tooling, including a tooling table (1), characterized in that: A pushing block (2) capable of generating a stable pushing effect is slidably connected to the top surface of the tooling table (1). Two sector plates (3) capable of generating clamping during pushing and not damaging the aluminum profile are provided on the top of the pushing block (2). A working cavity (4) capable of controlling the relative movement of the two sector plates (3) to generate a clamping effect is opened inside the pushing block (2). A pushing cavity (5) capable of controlling the pushing of the pushing block (2) is opened inside the tooling table (1).

2. The aluminum profile processing tooling according to claim 1, characterized in that: The two sector plates (3) are arranged on both sides of the top surface of the pushing block (2). Limiting sliding rails (301) are fixedly connected to both ends of one side of the surface of the sector plate (3). A separating block (302) is fixedly connected to the opposite surface of the two limiting sliding rails (301). A receiving groove (307) is opened inside one of the sector plates (3).

3. The aluminum profile processing tooling according to claim 2, characterized in that: An arcuate block (303) is slidably connected to the opposite surface of the two limiting sliding rails (301). Buffer springs (304) are fixedly connected to both sides of the opposite surface of the arcuate block (303) and the separating block (302).

4. The aluminum profile processing tooling according to claim 3, characterized in that: Limiting blocks (306) are arranged on the opposite surface of the two limiting sliding rails (301). A buffer pad (305) is fixedly connected to the surface of the arcuate block (303) away from the buffer spring (304).

5. The aluminum profile processing tooling according to claim 2, characterized in that: Two-way threaded blocks (308) are fixedly connected to the bottoms of the two sector plates (3). Thread grooves (309) are provided inside the two-way threaded blocks (308).

6. The aluminum profile processing tooling according to claim 1, characterized in that: The working cavity (4) is arranged inside the pushing block (2). A working motor (401) is fixedly connected to one side of the inner wall of the working cavity (4). The output end of the working motor (401) is fixedly connected to a two-way lead screw (402), and the end of the two-way lead screw (402) away from the working motor (401) is rotatably connected to the inside of the working cavity (4).

7. The aluminum profile processing tooling according to claim 6, characterized in that: Both sides of the rod wall of the two-way lead screw (402) penetrate inside the thread groove (309), and both sides of the rod wall of the two-way lead screw (402) are threadedly connected to the thread groove (309).

8. The aluminum profile processing tooling according to claim 6, characterized in that: A threaded moving block (404) is fixedly connected to the bottom surface of the pushing block (2). A first limiting groove (403) is opened on the top surface of the pushing block (2).

9. The aluminum profile processing tooling according to claim 1, characterized in that: The pushing cavity (5) is opened inside the tooling table (1). A pushing motor (501) is fixedly connected to one side of the inner wall of the pushing cavity (5). The output end of the pushing motor (501) is fixedly connected to a threaded transmission rod (502). The rod wall of the threaded transmission rod (502) is threadedly connected to the inside of the threaded moving block (404), and the end of the threaded transmission rod (502) away from the pushing motor (501) is rotatably connected to the inner wall of the pushing cavity (5). A second limiting groove (503) is opened on the top surface of the tooling table (1).

10. A processing tooling for aluminum profiles according to claim 1, characterized in that: Longitudinal blocks (6) are fixedly connected to both sides of the top surface of the tooling table (1). Longitudinal sliding grooves (7) are opened inside the two longitudinal blocks (6), and both ends of the pushing block (2) are respectively located inside the longitudinal sliding grooves (7) for sliding connection.