Traction structure for section cutting of aluminum profile

By employing a dual-station traction structure and clamping mechanism during the aluminum profile cutting process, the problem of low production efficiency in the traditional aluminum profile cutting process has been solved. This enables continuous traction and precise clamping of aluminum profiles, improving production efficiency and cutting accuracy while reducing the labor intensity of operators.

CN224027090UActive Publication Date: 2026-03-24GUANGDONG BOYA MINGE DOORS & WINDOWS CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-03-05
Publication Date
2026-03-24

AI Technical Summary

Technical Problem

In the traditional aluminum profile cutting process, the traction structure uses a single structure, resulting in low production efficiency. A long waiting time is required between each traction and cutting operation, which affects the overall production rhythm. Furthermore, the reliance on manual operation can easily lead to cutting errors.

Method used

The system employs a dual-station traction structure and clamping mechanism, including a chute and slider on the conveyor table, and a clamping mechanism driven by cylinders and motors to achieve continuous traction and precise clamping of aluminum profiles, reducing downtime and operator workload.

Benefits of technology

It improved production efficiency, reduced the labor intensity of operators, ensured the stability and precision of cutting, reduced material damage and cutting errors, and enhanced overall production flexibility and product quality.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses a traction structure for section cutting of an aluminum profile, which comprises a section cutting assembly and a conveying table, and further comprises a traction mechanism, the traction mechanism is arranged on the outer wall of the top of the conveying table, a conveying groove and two sliding grooves are formed in the top of the conveying table, sliding blocks are arranged on the inner walls of the two sliding grooves, and the sliding blocks are arranged on the outer wall of the conveying table. An assembling frame is arranged on the outer wall of the top of the sliding block, an assembling shaft is arranged on the inner wall of the bottom of the assembling frame through a bearing, two connecting blocks are arranged on the outer wall of the circumference of the assembling shaft, and the same traction frame is arranged on the outer walls of one sides of the two connecting blocks. And the clamping mechanism is arranged on the inner wall of the top of the traction frame. The traction structure for section cutting of the aluminum profile has the advantages of improving production efficiency and cutting stability.
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Description

TECHNICAL FIELD

[0001] The utility model relates to mechanical manufacturing technical field especially relates to a traction structure for aluminium profile sectioning. BACKGROUND

[0002] In the sectioning process of aluminium profile, the traction structure plays a vital role, which is responsible for the stable traction of aluminium profile to ensure that the aluminium profile can maintain continuous and stable flow in the sectioning process, and finally reach the required length and size.

[0003] However, the traditional traction structure for aluminium profile sectioning usually adopts a single structure, which cannot realize continuous operation, resulting in low production efficiency, and a long waiting time is needed between each traction and cutting operation, affecting the overall production rhythm.

[0004] For example, in the sectioning process of aluminium profile, the traditional traction structure usually has only one station, and the aluminium profile needs to be frequently stopped and started during the traction and cutting process, which cannot realize continuous operation. After each cutting is completed, the traction mechanism needs to be reset to perform the next traction operation, resulting in low production efficiency. Many traditional traction structures also rely on manual clamping and positioning, and the operator needs to manually adjust the position of the aluminium profile, which not only increases the labor intensity, but also easily causes cutting errors due to operation errors, affecting product quality. SUMMARY

[0005] The utility model discloses a traction structure for aluminium profile sectioning, which aims to solve the technical problem that the traction structure adopts a single structure, cannot realize continuous operation, results in low production efficiency, and a long waiting time is needed between each traction and cutting operation, affecting the overall production rhythm.

[0006] In order to achieve the above purpose, the utility model adopts the following technical scheme:

[0007] A traction structure for aluminium profile sectioning, comprising a sectioning assembly and a conveying table, further comprising:

[0008] Traction mechanism: the traction mechanism is arranged on the top outer wall of the conveying table, the top of the conveying table is provided with a conveying groove and two sliding grooves, sliding blocks are arranged on the inner walls of the two sliding grooves, assembly frames are arranged on the top outer walls of the sliding blocks, assembly shafts are arranged on the bottom inner walls of the assembly frames through bearings, two connecting blocks are arranged on the circumferential outer wall of the assembly shaft, and the same traction frame is arranged on one side outer wall of the two connecting blocks;

[0009] Clamping mechanism: the clamping mechanism is arranged on the top inner wall of the traction frame.

[0010] In the case, by setting double work position traction structure in the left and right sides of the conveying groove, the production efficiency is improved significantly, so that two work positions can alternately carry out the traction operation of the aluminum profile, the resource utilization is optimized, the double work position design reduces the labor intensity of the operator, enhances the production flexibility, the structure is easy to maintain and upgrade, reduces the influence of downtime on enterprise production.

[0011] In a preferred scheme, the clamping mechanism includes a gas cylinder arranged on the top outer wall of the assembly frame, a first clamping plate is arranged on the piston end of the gas cylinder, two limiting rods are arranged on the top outer wall of the first clamping plate, two mounting barrels are arranged on the top outer wall of the assembly frame, the limiting rods are arranged on the inner walls of the mounting barrels, and two slide slots are formed in the side outer wall of the assembly frame, and fixing assemblies are arranged on the inner walls of the slide slots.

[0012] In particular, the gas cylinder serves as a power source, which can accurately control the clamping force of the first clamping plate, thereby adapting to the clamping requirements of aluminum profiles of different sizes, shapes and materials. This flexibility ensures the stability and reliability of clamping, avoids material damage or cutting deviation caused by improper clamping force, and two slide slots are formed in the assembly frame, and two fixing assemblies are additionally designed to enhance the overall stability of the clamping mechanism, so that the clamping mechanism will not deform or loosen, thereby ensuring the cutting accuracy and safety.

[0013] As can be seen from the above, a traction structure for cutting aluminum profile sections includes a cutting assembly and a conveying table, and further includes: a traction mechanism arranged on the top outer wall of the conveying table, a conveying groove and two sliding grooves are formed in the top of the conveying table, sliding blocks are arranged on the inner walls of the two sliding grooves, an assembly frame is arranged on the top outer wall of the sliding blocks, an assembly shaft is arranged on the bottom inner wall of the assembly frame through a bearing, two connecting blocks are arranged on the circumferential outer wall of the assembly shaft, and a same traction frame is arranged on the side outer wall of the two connecting blocks; a clamping mechanism is arranged on the top inner wall of the traction frame. The traction structure for cutting aluminum profile sections provided by the present application has the technical effects of improving production efficiency and cutting stability. BRIEF DESCRIPTION OF DRAWINGS

[0014] Figure 1 The present application provides a whole structure schematic view of a traction structure for cutting aluminum profile sections.

[0015] Figure 2 The present application provides a traction mechanism schematic view of a traction structure for cutting aluminum profile sections.

[0016] Figure 3 The present application provides a clamping mechanism schematic view of a traction structure for cutting aluminum profile sections.

[0017] Figure 4 The utility model provides a local structure schematic view for traction structure of aluminium profile section cutting.

[0018] In the drawing: 1, section cutting assembly, 2, conveying table, 3, conveying groove, 4, sliding slot, 5, assembly frame, 6, traction frame, 7, conveying roller, 8, sliding block, 9, assembly shaft, 10, first motor, 11, limiting rod, 12, air cylinder, 13, second motor, 14, connecting block, 15, sliding seam, 16, first clamping plate, 17, second clamping plate, 18, protective pad, 19, threaded rod, 20, mounting bracket. DETAILED DESCRIPTION

[0019] The technical solutions in the embodiments of the present application will be clearly and completely described below with reference to the drawings in the embodiments of the present application. Obviously, the described embodiments are only part of the embodiments of the present application, not all the embodiments. The components of the embodiments of the present application described and indicated in the drawings can be arranged and designed in various different configurations. Therefore, the following detailed description of the embodiments of the present application provided in the drawings is not intended to limit the scope of the claimed present application, but only represents selected embodiments of the present application. Based on the embodiments of the present application, all other embodiments obtained by those skilled in the art without creative work belong to the scope of protection of the present application.

[0020] The traction structure for aluminium profile section cutting disclosed by the utility model is mainly applied to the scene that the traction structure adopts single structure, continuous operation cannot be realized, production efficiency is relatively low, a long waiting time is needed between each traction and cutting operation, and the overall production rhythm is affected.

[0021] Reference Figure 1 and Figure 2 A traction structure for aluminium profile section cutting, comprising a section cutting assembly 1 and a conveying table 2, further comprising: a traction mechanism: the traction mechanism is arranged on the top outer wall of the conveying table 2, the top of the conveying table 2 is provided with a conveying groove 3 and two sliding slots 4, the inner walls of the two sliding slots 4 are both provided with a sliding block 8, the top outer wall of the sliding block 8 is provided with an assembly frame 5, the bottom inner wall of the assembly frame 5 is provided with an assembly shaft 9 through a bearing, the circumferential outer wall of the assembly shaft 9 is provided with two connecting blocks 14, and the same traction frame 6 is arranged on the outer wall of one side of the two connecting blocks 14; a clamping mechanism: the clamping mechanism is arranged on the top inner wall of the traction frame 6.

[0022] The section cutting assembly 1 is arranged on the outer wall of one side of the conveying table 2.

[0023] In the specific embodiment, the production efficiency is significantly improved by setting a double-station traction structure through the chute 4 on both sides of the conveying groove 3, so that the two stations can alternately perform the traction operation of the aluminum profile, optimizing the resource utilization, the double-station design reduces the labor intensity of the operator, enhances the production flexibility, the structure is easy to maintain and upgrade, and reduces the impact of downtime on enterprise production.

[0024] Referring to Figure 1 and Figure 3 In a preferred embodiment, a plurality of conveying rollers 7 are arranged at equal distances on the inner walls of the opposite sides of the conveying groove 3, and one end of the assembly shaft 9 is externally connected with a first motor 10.

[0025] The first motor 10 provides a stable and controllable power source for the assembly shaft 9, ensuring that the traction frame 6 can rotate smoothly, facilitating smooth switching between the two stations and realizing alternating work to improve production efficiency.

[0026] The design of the conveying rollers 7 enables the aluminum profile to move more smoothly in the conveying groove 3, reducing frictional resistance and thus improving overall transmission efficiency. Moreover, the conveying rollers 7 adopt a rolling friction mode to contact the aluminum profile, which can more effectively reduce the wear of the aluminum profile surface compared with sliding friction, thereby protecting product quality.

[0027] Referring to Figure 1 、 Figure 3 and Figure 4 In a preferred embodiment, the clamping mechanism includes a pneumatic cylinder 12, which is arranged on the top outer wall of the assembly frame 5. The piston end of the pneumatic cylinder 12 is provided with a first clamping plate 16, the top outer wall of the first clamping plate 16 is provided with two limiting rods 11, the top outer wall of the assembly frame 5 is provided with two mounting cylinders, the limiting rods 11 are arranged on the inner walls of the mounting cylinders, two slide slots 15 are formed on the outer wall of the assembly frame 5, and the inner walls of the slide slots 15 are provided with fixing assemblies.

[0028] In particular, the pneumatic cylinder 12 as a power source can accurately control the clamping force of the first clamping plate 16, thereby adapting to the clamping requirements of aluminum profiles of different sizes, shapes and materials. This flexibility ensures the stability and reliability of clamping, avoids material damage or cutting deviation caused by improper clamping force, and the two slide slots 15 formed on the assembly frame 5 and the redundant design of the two fixing assemblies enhance the overall stability of the clamping mechanism, ensuring that the clamping mechanism does not deform or loosen, thereby ensuring the accuracy and safety of cutting.

[0029] Referring to Figure 1 and Figure 4In a preferred embodiment, the fixing assembly includes two second clamping plates 17 arranged on the inner wall of the top of the assembly frame 5, and a threaded rod 19 arranged on the opposite side outer wall of the two connecting blocks 14, one end of the threaded rod 19 is externally connected with the second motor 13, and the outer wall of the threaded rod 19 is provided with a mounting bracket 20 arranged on the inner wall of the sliding slot 15, and the two ends of the mounting bracket 20 are respectively connected with the two second clamping plates 17.

[0030] Specifically, the second motor 13 drives the threaded rod 19 to rotate, thereby driving the mounting bracket 20 and the second clamping plate 17 connected thereto to move, realizing stable clamping of the aluminum profile. The additional mechanical clamping structure is more stable and reliable than the single cylinder 12 drive. The cooperation of the threaded rod 19 and the mounting bracket 20 enables the movement distance of the second clamping plate 17 to be accurately controlled, thereby realizing accurate adjustment of the clamping position of the aluminum profile. This high-precision clamping helps to ensure the stability and accuracy during cutting, reducing material waste and cutting errors.

[0031] Referring to Figure 3 and Figure 4 In a preferred embodiment, the bottom inner wall of the assembly frame 5 and the bottom outer wall of the first clamping plate 16 and the second clamping plate 17 are provided with protective pads 18.

[0032] The presence of the protective pad 18 can effectively avoid direct contact between metals, reducing scratches or damage to the surface of the aluminum profile caused by friction or clamping force, which is crucial for maintaining the appearance and integrity of the aluminum profile, especially in application scenarios with strict requirements for surface quality. The protective pad 18 is usually made of materials with certain elasticity, such as rubber, silicone, etc. These materials can absorb part of the vibration energy, reducing the noise and vibration generated during clamping and cutting, which helps to improve the cutting precision and stability.

[0033] Working principle: when in use, the aluminum profile is conveyed by the conveying rollers 7 in the conveying groove 3. The double-station traction mechanism is set up by the sliding grooves 4 on both sides of the conveying groove 3. The two stations can alternately perform the traction operation of the aluminum profile. The first motor 10 provides power for the assembly shaft 9 to drive the traction frame 6 to rotate and adjust the direction, facilitating the movement of the entire traction mechanism on the sliding groove 4 to realize double-station traction operation. The cylinder 12 is used as a power source to accurately control the clamping force of the first clamping plate 16 to clamp aluminum profiles of different sizes, shapes and materials. The second motor 13 drives the threaded rod 19 to rotate, driving the second clamping plate 17 on the mounting bracket 20 to move, realizing further stable clamping of the aluminum profile. After the aluminum profile is pulled to the predetermined position, it is accurately cut by the cutting assembly 1.

[0034] The above merely describes a preferred embodiment of the present application, and the protection scope of the present application is not limited thereto. The replacement can be a replacement of part of the structure, device, method step, or a complete technical solution. According to the technical solution and the inventive concept of the present application, equivalent replacement or change should be covered in the protection scope of the present application.

Claims

1. A traction structure for cutting aluminum profiles into segments, comprising a segmenting assembly (1) and a conveyor (2), characterized in that, Also includes: Traction mechanism: The traction mechanism is set on the top outer wall of the conveyor (2). The top of the conveyor (2) is provided with a conveying groove (3) and two slide grooves (4). The inner walls of the two slide grooves (4) are provided with sliders (8). The top outer wall of the sliders (8) is provided with an assembly frame (5). The bottom inner wall of the assembly frame (5) is provided with an assembly shaft (9) through a bearing. The outer circumference of the assembly shaft (9) is provided with two connecting blocks (14). The outer wall of one side of the two connecting blocks (14) is provided with the same traction frame (6). Clamping mechanism: The clamping mechanism is disposed on the top inner wall of the traction frame (6).

2. The traction structure for cutting aluminum profiles into segments according to claim 1, characterized in that, Several conveying rollers (7) are arranged at equal intervals on the inner wall of the opposite side of the conveying groove (3).

3. A traction structure for cutting aluminum profiles into segments according to claim 2, characterized in that, One end of the assembly shaft (9) is externally connected to a first motor (10).

4. The traction structure for cutting aluminum profiles into segments according to claim 1, characterized in that, The clamping mechanism includes a cylinder (12), which is disposed on the top outer wall of the assembly frame (5). The piston end of the cylinder (12) is provided with a first clamping plate (16). The top outer wall of the first clamping plate (16) is provided with two limiting rods (11). The top outer wall of the assembly frame (5) is provided with two mounting cylinders. The limiting rods (11) are disposed on the inner wall of the mounting cylinders. Two sliding slots (15) are opened on one side outer wall of the assembly frame (5). The inner wall of the sliding slots (15) is provided with fixing components.

5. A traction structure for cutting aluminum profiles into segments according to claim 4, characterized in that, The fixing assembly includes two second clamping plates (17), which are disposed on the top inner wall of the assembly frame (5). The two connecting blocks (14) are provided with the same threaded rod (19) on the opposite outer wall. One end of the threaded rod (19) is connected to a second motor (13). The outer wall of the threaded rod (19) is provided with a mounting bracket (20), which is disposed on the inner wall of the sliding joint (15). Both ends of the mounting bracket (20) are respectively connected to the two second clamping plates (17).

6. A traction structure for cutting aluminum profiles into segments according to claim 5, characterized in that, Protective pads (18) are provided on the bottom inner wall of the assembly frame (5), the bottom outer wall of the first clamping plate (16) and the second clamping plate (17).

7. A traction structure for cutting aluminum profiles into segments according to claim 1, characterized in that, The cutting assembly (1) is disposed on one side of the outer wall of the conveyor (2).