Automobile vertical beam profile cutting device

By designing a positioning conveyor cylinder and a synchronous belt driven cutting device, the problems of unstable manual loading and unloading and the single nature of traditional fixtures in the cutting of automotive vertical beam profiles were solved. This achieved automated positioning and efficient cutting, adapting to the cutting needs of profiles of various sizes and improving production efficiency and precision.

CN120920931APending Publication Date: 2025-11-11CHONGQING DIGITAL DIE
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Patent Information

Application Number
CN202511334836.X
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-09-18
Publication Date
2025-11-11

AI Technical Summary

Technical Problem

In the existing technology, the cutting and processing of automotive vertical beam profiles relies on manual or simple roller conveyor loading and unloading, which is labor-intensive and unstable. Long profiles are prone to deformation or positioning deviation during handling. Traditional cutting tooling fixtures are simple and cannot adapt to the positioning of profiles of multiple sizes, affecting cutting accuracy and production efficiency.

Method used

A cutting device for automotive vertical beam profiles was designed. It uses a positioning conveyor cylinder, a rotating bearing, a driven gear, and a driving gear connected by a synchronous belt. Combined with a cutting robot and a telescopic cylinder, it can achieve automatic positioning and conveying of profiles. It is suitable for profiles of different specifications. The driving motor drives the driving gear to rotate and drive the driven gear to achieve the cutting and conveying of profiles.

Benefits of technology

It achieves automated positioning and conveying, reduces labor intensity, improves cutting accuracy and production efficiency, adapts to the positioning needs of multi-size profiles, and meets the flexible needs of multi-variety, small-batch production.

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Abstract

The invention provides an automobile vertical beam profile cutting device which comprises a positioning conveying cylinder, rotating bearings are arranged on the two sides of the positioning conveying cylinder and rotationally connected to a supporting fixing plate, a driven gear is arranged on the outer wall of the positioning conveying cylinder, and a plurality of conveying positioning pieces are arranged in the positioning conveying cylinder and used for conveying automobile vertical beam profiles of different specifications. The driving part is provided with a driving gear, and the driving gear and the driven gear rotate through a synchronous belt; and the cutting robot is located on one side of the positioning conveying cylinder. The problems that most enterprises still depend on manpower or a simple roller path to complete feeding, discharging and conveying of sectional materials, the labor intensity is high, the takt is unstable, deformation or positioning deviation is easily caused by misoperation in the carrying process of long sectional materials (such as longitudinal beam type components), then the cutting precision is influenced, meanwhile, a traditional cutting tool clamp is single, and the machining cost is high are solved. And the positioning device is not suitable for positioning profiles with multiple sizes.
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Description

Technical Field

[0001] This invention relates to the field of cutting device technology, and more specifically, to a cutting device for automotive vertical beam profiles. Background Technology

[0002] In the cutting and processing of automotive vertical beam profiles, most companies still rely on manual labor or simple roller conveyors to complete the loading, unloading and conveying of profiles. This not only involves high labor intensity and unstable cycle time, but also makes it easy for long profiles (such as longitudinal beam components) to deform or deviate due to improper operation during handling, thus affecting the cutting accuracy.

[0003] Meanwhile, traditional cutting fixtures mostly use fixed clamps or single-size positioning modules. When faced with profiles of different cross-sectional shapes or large size spans, it is necessary to frequently change the fixtures or manually adjust the positioning points, resulting in a changeover time of more than 30 minutes. This makes it difficult to meet the flexible production needs of multiple varieties and small batches, and affects production efficiency. Summary of the Invention

[0004] In view of this, the present invention provides an automotive vertical beam profile cutting device, which solves the problem that most companies still rely on manual labor or simple roller conveyors to complete the loading, unloading and conveying of profiles. This not only involves high labor intensity and unstable cycle time, but also makes it easy to cause deformation or positioning deviation due to improper operation when handling long profiles (such as longitudinal beam components), thus affecting the cutting accuracy. At the same time, traditional cutting tooling fixtures are limited and cannot be applied to the positioning of profiles of multiple sizes.

[0005] Therefore, on the one hand, the present invention provides an automotive vertical beam profile cutting device, which includes: The positioning conveyor cylinder has rotating bearings on both sides, which are rotatably connected to the support plate. The outer wall of the positioning conveyor cylinder is equipped with a driven gear, and several conveying and positioning components are installed inside the positioning conveyor cylinder for conveying automotive vertical beam profiles of different specifications. The driving component has a driving gear on it, and the driving gear and the driven gear rotate through a synchronous belt. And the cutting robot, which is located on one side of the positioning conveyor cylinder.

[0006] Furthermore, limit plates are provided on both sides of the aforementioned positioning conveyor cylinder, and limit grooves are provided on the limit plates. The limit grooves and the shape of the automobile vertical beam profile match each other.

[0007] Furthermore, the aforementioned conveying and positioning component includes a telescopic cylinder, a connecting plate, and a positioning shaft. The telescopic cylinder is connected to the inner wall of the positioning conveying cylinder, the connecting plate is connected to the telescopic cylinder, and the connecting plate is provided with an installation groove. The positioning shaft is rotatably connected to the installation groove.

[0008] Furthermore, the aforementioned micro motor is connected to the positioning shaft via a connecting plate.

[0009] Furthermore, the aforementioned several transmission positioning components are respectively installed on the periphery of the automobile vertical beam profile.

[0010] Furthermore, the aforementioned driving component includes a connecting seat and a driving motor. The connecting seat has a connecting groove, the driving motor is connected to the connecting groove, and the drive gear is connected to the driving motor.

[0011] Furthermore, multiple drive gears can be provided, and the multiple drive gears are connected by a connecting shaft.

[0012] This invention provides an automotive vertical beam profile cutting device. It features a positioning conveyor cylinder with rotating bearings on both sides, rotatably connected to a support plate. Several conveying and positioning components are installed within the cylinder, abutting against the top, bottom, left, and right sides of the profile. A driven gear is mounted on the cylinder, and a driving gear is mounted on the drive unit. The driven and driving gears are connected by a synchronous belt. When cutting is required, a telescopic cylinder extends and retracts, causing the positioning shaft to abut against the periphery of the profile. The cutting robot uses a laser to cut the profile. After cutting, a drive motor drives the positioning shaft to rotate, thus conveying the profile. The telescopic cylinder can adjust the distance between adjacent conveying and positioning components according to the profile specifications, making it suitable for profiles of different sizes, thus offering strong applicability. The drive motor drives the driving gear to rotate, which in turn drives the driven gear to rotate, causing the positioning conveyor cylinder to rotate and cut the periphery of the profile. After cutting, the profile is conveyed, positioned, and rotated for further cutting.

[0013] Therefore, this embodiment has the following advantages compared to the prior art: The automotive vertical beam profile cutting device solves the problem that most companies still rely on manual labor or simple roller conveyors to complete the loading, unloading and conveying of profiles. This not only involves high labor intensity and unstable cycle time, but also makes it easy to cause deformation or positioning deviation due to improper operation when handling long profiles (such as longitudinal beam components), thus affecting the cutting accuracy. At the same time, traditional cutting tooling fixtures are limited and cannot be used for positioning profiles of multiple sizes. Attached Figure Description

[0014] Various other advantages and benefits will become apparent to those skilled in the art upon reading the following detailed description of preferred embodiments. The accompanying drawings are for illustrative purposes only and are not intended to limit the invention. Furthermore, the same reference numerals denote the same parts throughout the drawings. In the drawings: Figure 1 A three-dimensional representation of an automotive vertical beam profile cutting device provided in this embodiment of the invention. Figure 1 ; Figure 2 A three-dimensional representation of an automotive vertical beam profile cutting device provided in this embodiment of the invention. Figure 2 ; .

[0015] Figure 3 A three-dimensional representation of an automotive vertical beam profile cutting device provided in this embodiment of the invention. Figure 3 .

[0016] Figure 4 for Figure 3 Enlarged view of point A in the middle.

[0017] Among them, 1-positioning conveyor cylinder; 2-rotating bearing (not marked); 3-support fixing plate; 4-driven gear; 5-conveying positioning component; 51-telescopic cylinder; 52-connecting plate; 53-positioning shaft; 6-automotive vertical beam profile; 7-drive component; 71-connecting seat; 72-drive motor; 8-drive gear; 9-synchronous belt; 10-cutting robot; 11-limiting plate; 12-limiting groove; 13-mounting groove; 14-connecting groove; 15-micro motor. Detailed Implementation

[0018] Exemplary embodiments of the present disclosure will now be described in more detail with reference to the accompanying drawings. While exemplary embodiments of the present disclosure are shown in the drawings, it should be understood that the present disclosure may be implemented in various forms and should not be limited to the embodiments set forth herein. Rather, these embodiments are provided so that this disclosure will be thorough and complete, and will fully convey the scope of the disclosure to those skilled in the art. Example 1:

[0019] See Figure 1-4 This embodiment provides a cutting device for automotive vertical beam profiles, comprising: The positioning conveying cylinder 1 has rotating bearings 2 on both sides, which are rotatably connected to the support fixing plate 3. The outer wall of the positioning conveying cylinder 1 is provided with driven gears 4, and a number of conveying positioning components 5 are provided inside the positioning conveying cylinder 1 for conveying automobile vertical beam profiles 6 of different specifications. The driving component 7 is provided with a driving gear 8, and the driving gear 8 and the driven gear 4 rotate through a synchronous belt 9. And the cutting robot 10, which is located on one side of the positioning conveyor cylinder 1.

[0020] Specifically, see Figure 1-4 The positioning conveying cylinder 1 is provided with limiting plates 11 on both sides, and the limiting plates 11 are provided with limiting grooves 12. The limiting grooves 12 and the shape of the automobile vertical beam profile 6 are matched.

[0021] Specifically, see Figure 1-4The conveying and positioning component 5 includes a telescopic cylinder 51, a connecting plate 52, and a positioning shaft 53. The telescopic cylinder 51 is connected to the inner wall of the positioning and conveying cylinder 1, the connecting plate 52 is connected to the telescopic cylinder 51, the connecting plate 52 is provided with an installation groove 13, and the positioning shaft 53 is rotatably connected in the installation groove 13.

[0022] The micro motor 15 passes through the connecting plate 52 and is connected to the positioning shaft 53.

[0023] This invention provides an automotive vertical beam profile cutting device. It features a positioning conveyor cylinder with rotating bearings on both sides, rotatably connected to a support plate. Several conveying and positioning components are installed within the cylinder, abutting against the top, bottom, left, and right sides of the profile. A driven gear is mounted on the cylinder, and a driving gear is mounted on the drive unit. The driven and driving gears are connected by a synchronous belt. When cutting is required, a telescopic cylinder extends and retracts, causing the positioning shaft to abut against the periphery of the profile. The cutting robot uses a laser to cut the profile. After cutting, a drive motor drives the positioning shaft to rotate, thus conveying the profile. The telescopic cylinder can adjust the distance between adjacent conveying and positioning components according to the profile specifications, making it suitable for profiles of different sizes, thus offering strong applicability. The drive motor drives the driving gear to rotate, which in turn drives the driven gear to rotate, causing the positioning conveyor cylinder to rotate and cut the periphery of the profile. After cutting, the profile is conveyed, positioned, and rotated for further cutting.

[0024] Therefore, this embodiment has the following advantages compared to the prior art: The automotive vertical beam profile cutting device solves the problem that most companies still rely on manual labor or simple roller conveyors to complete the loading, unloading and conveying of profiles. This not only involves high labor intensity and unstable cycle time, but also makes it easy to cause deformation or positioning deviation due to improper operation when handling long profiles (such as longitudinal beam components), thus affecting the cutting accuracy. At the same time, traditional cutting tooling fixtures are limited and cannot be used for positioning profiles of multiple sizes. Example 2:

[0025] See Figure 1-4 The figure shows a cutting device for automotive vertical beam profiles according to Embodiment 2 of the present invention. Based on the above embodiments, this embodiment further improves upon the following technical solution: a plurality of conveying and positioning members 5 are respectively disposed around the periphery of the automotive vertical beam profile 6. The conveying and positioning members are connected to the top, bottom, left, and right sides of the profile, and can be positioned and conveyed to match profiles of different specifications by extending and retracting a telescopic cylinder. Example 3:

[0026] See Figure 1-4The figure shows a cutting device for automotive vertical beam profiles provided in Embodiment 3 of the present invention. Based on the above embodiments, this embodiment further improves upon the following technical solution: the driving component 7 includes a connecting seat 71 and a driving motor 72. A connecting groove 14 is provided in the connecting seat 71, and the driving motor 72 is connected within the connecting groove 14. The drive gear 8 is connected to the driving motor 72. This improves the stability of the driving motor connection. Example 4:

[0027] See Figure 1-4 The figure shows a cutting device for automotive vertical beam profiles provided in Embodiment 3 of the present invention. Based on the above embodiments, this embodiment further improves upon the following technical solution: multiple drive gears 8 can be provided, and these multiple drive gears 8 are connected by a connecting shaft. This allows the drive gears to be connected to driven gears on another positioning conveyor cylinder via a synchronous belt, enabling simultaneous cutting of multiple profiles and improving cutting efficiency.

[0028] Obviously, those skilled in the art can make various modifications and variations to this invention without departing from its spirit and scope. Therefore, if these modifications and variations fall within the scope of the claims of this invention and their equivalents, this invention also intends to include these modifications and variations.

Claims

1. A cutting device for automotive vertical beam profiles, characterized in that, include: The positioning conveying cylinder (1) has rotating bearings (2) on both sides. The rotating bearings (2) are rotatably connected to the support fixing plate (3). The outer wall of the positioning conveying cylinder (1) is provided with driven gears (4). The positioning conveying cylinder (1) is provided with several conveying positioning parts (5) for conveying different specifications of automobile vertical beam profiles (6). A drive component (7) is provided with a drive gear (8), and the drive gear (8) and the driven gear (4) rotate through a synchronous belt (9); And the cutting robot (10), which is located on one side of the positioning conveyor (1).

2. The automotive vertical beam profile cutting device according to claim 1, characterized in that, The positioning conveyor cylinder (1) is provided with limit plates (11) on both sides, and the limit plates (11) are provided with limit grooves (12). The limit grooves (12) and the shape of the automobile vertical beam profile (6) are matched.

3. The automotive vertical beam profile cutting device according to claim 1, characterized in that, The conveying and positioning component (5) includes a telescopic cylinder (51), a connecting plate (52), and a positioning shaft (53). The telescopic cylinder (51) is connected to the inner wall of the positioning conveying cylinder (1). The connecting plate (52) is connected to the telescopic cylinder (51). The connecting plate (52) is provided with an installation groove (13). The positioning shaft (53) is rotatably connected in the installation groove (13).

4. The automotive vertical beam profile cutting device according to claim 3, characterized in that, A micro motor (15) passes through the connecting plate (52) and is connected to the positioning shaft (53).

5. The automotive vertical beam profile cutting device according to claim 1, characterized in that, Several of the aforementioned transmission positioning components (5) are respectively disposed on the periphery of the automobile vertical beam profile (6).

6. A positioning device for thermoforming of a large-span automotive workpiece 6 according to claim 1, characterized in that... The driving component (7) includes a connecting seat (71) and a driving motor (72). The connecting seat (71) is provided with a connecting groove (14). The driving motor (72) is connected in the connecting groove (14). The driving gear (8) is connected to the driving motor (72).

7. The automotive vertical beam profile cutting device according to claim 1, characterized in that, Multiple drive gears (8) may be provided, and multiple drive gears (8) are connected by a connecting shaft.