A mobile platform for cutting a connector sheet metal shell

CN224713215UActive Publication Date: 2026-09-04JIANGSU XUHONG PRECISE PARTS & ASSEMBLIES CO LTD
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Patent Information

Application Number
CN202522280547.8
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-10-28
Publication Date
2026-09-04
Estimated Expiration
2035-10-28

AI Technical Summary

Technical Problem

单层移动平台在切割过程中,需要频繁进行上料、切割、下料等操作,导致设备有效工作时间大幅减少,生产效率低下

Benefits of technology

[0003] To address the aforementioned technical problems, this utility model proposes a moving platform for cutting connector sheet metal housings. This solution utilizes the design of a first moving component and a second moving component to achieve synchronous, reverse movement of the upper and lower moving platforms. This structure allows for the simultaneous installation and cutting of two sheet metal sections, significantly improving production efficiency and making it particularly suitable for scenarios requiring batch processing of connector sheet metal housings. When one moving platform is in the processing area, the other is in the loading area, thus enabling continuous processing of the sheet metal.

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Abstract

The utility model provides a kind of connector sheet metal shell cutting mobile platform, comprising: rack, the top of rack is fixed with support plate;First mobile component, first mobile component is installed on support plate, and first mobile component has first mobile platform;Second mobile component, second mobile component is installed on support plate, and second mobile component has second mobile platform, second mobile platform is located above first mobile platform, and first mobile platform and second mobile platform are respectively used to install sheet metal;Drive component, drive component is installed on rack, and drive component is used to drive first mobile platform and second mobile platform reverse motion;Clamping cylinder, first mobile platform and second mobile platform are respectively installed with clamping cylinder, clamping cylinder has the clamping portion that moves along vertical direction, and clamping portion is used to compress sheet metal. The scheme can realize the continuity processing to sheet metal.
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Description

Technical Field

[0001] This utility model relates to the field of mechanical equipment, specifically to a mobile platform for cutting connector sheet metal housings. Background Technology

[0002] In the mass production of connector sheet metal housings, the cutting process is crucial for ensuring product quality and production efficiency. Traditional cutting equipment typically uses a single-layer moving platform, which can only install and cut one sheet metal piece at a time. This single-layer approach has several shortcomings in mass production of connector sheet metal housings. During the cutting process, the single-layer moving platform requires frequent loading, cutting, and unloading operations, significantly reducing the equipment's effective working time and resulting in low production efficiency. The single-layer platform cannot achieve parallel operation in the production process, leading to low resource utilization and increased production costs. Therefore, a new type of equipment is needed to ensure the continuity of sheet metal cutting. Utility Model Content

[0003] To address the aforementioned technical problems, this utility model proposes a moving platform for cutting connector sheet metal housings. This solution utilizes the design of a first moving component and a second moving component to achieve synchronous, reverse movement of the upper and lower moving platforms. This structure allows for the simultaneous installation and cutting of two sheet metal sections, significantly improving production efficiency and making it particularly suitable for scenarios requiring batch processing of connector sheet metal housings. When one moving platform is in the processing area, the other is in the loading area, thus enabling continuous processing of the sheet metal.

[0004] Specifically, this utility model proposes a mobile platform for cutting connector sheet metal housings, comprising:

[0005] A frame, the top of which is fixed with a support plate;

[0006] A first movable component is mounted on the support plate and has a first movable platform;

[0007] The second movable component is mounted on the support plate and has a second movable platform located above the first movable platform. The first movable platform and the second movable platform are respectively used to install sheet metal.

[0008] A drive assembly is mounted on the frame and is used to drive the first mobile platform and the second mobile platform to move in opposite directions.

[0009] Clamping cylinders are respectively installed on the first moving platform and the second moving platform. Each clamping cylinder has a clamping part that moves in a vertical direction and is used to clamp the sheet metal.

[0010] Preferably, the drive assembly includes a drive motor, a drive wheel, a driven wheel, and a transmission component. The drive motor is mounted on the support plate, and the drive wheel is mounted on the output shaft of the drive motor. The driven wheel is rotatably mounted on the support plate.

[0011] The driving wheel and the driven wheel are located at opposite ends of the length of the support plate, and are connected by a transmission component.

[0012] The first mobile platform is mounted on the transmission component via a first fixing member, and the second mobile platform is mounted on the transmission component via a second fixing member.

[0013] Preferably, the first fixing member and the second fixing member are located on both sides of the line connecting the centers of the driving wheel and the driven wheel.

[0014] Preferably, the transmission component is a transmission belt, and the driving wheel and the driven wheel are pulleys; or the transmission component is a chain, and the driving wheel and the driven wheel are sprockets.

[0015] Preferably, the first moving component includes two first guide rails, and each first guide rail is mounted on the support plate via a first bracket; the first moving platform is mounted on the two first guide rails via a first slider assembly.

[0016] Preferably, the second moving component includes two second guide rails, and each second guide rail is mounted on the support plate via a second bracket; the second moving platform is mounted on the two second guide rails via a second slider assembly.

[0017] Preferably, the two first guide rails are located between the two second guide rails.

[0018] Preferably, it also includes a first dustproof mechanism for preventing dust from entering the first guide rail.

[0019] Preferably, it also includes a second dustproof mechanism for preventing dust from entering the second guide rail. Attached Figure Description

[0020] To more clearly illustrate the technical solutions in the embodiments of this utility model, the accompanying drawings used in the description of the embodiments or the prior art will be briefly introduced below.

[0021] Figure 1 This is a three-dimensional structural diagram of the mobile platform for cutting connector sheet metal housings proposed in this embodiment;

[0022] Figure 2 yes Figure 1 A magnified schematic diagram of the local structure at point A;

[0023] Figure 3 yes Figure 1 A magnified schematic diagram of the local structure at point B;

[0024] Figure 4 This is a schematic diagram of sheet metal installation in this embodiment;

[0025] Figure 5 This is a schematic diagram showing the installation location of the driver component in this embodiment;

[0026] Figure 6 yes Figure 5 A magnified schematic diagram of the structure at point C in the middle;

[0027] Figure 7 yes Figure 5 A magnified schematic diagram of the local structure at point D;

[0028] Figure 8 This is a schematic diagram of the location and structure of a laser cutter.

[0029] The reference numerals used in the attached figures are as follows:

[0030] 11-Frame; 12-Support plate; 13-First moving component; 14-First moving platform; 15-Second moving component; 16-Second moving platform; 17-Sheet metal; 18-Drive component; 19-Clamping cylinder; 20-Clamping part; 21-Drive motor; 22-Driving wheel; 23-Driven wheel; 24-Transmission component; 25-First fixing component; 26-Second fixing component; 27-First guide rail; 28-First bracket; 29-First slider assembly; 30-Second guide rail; 31-Second bracket; 32-Second slider assembly; 33-First dustproof mechanism; 34-Second dustproof mechanism; 35-Laser cutter; 36-Drive module; 37-First clearance channel; 38-Guide rail dustproof curtain; 39-Baffle; 40-Second clearance channel. Detailed Implementation

[0031] The technical solutions of this application will be further described below with reference to specific embodiments, but this application is not limited to these embodiments.

[0032] like Figures 1 to 8 As shown, this embodiment proposes a mobile platform for cutting connector sheet metal housings, including:

[0033] The frame 11 has a support plate 12 fixed on its top.

[0034] The first moving component 13 is mounted on the support plate 12 and has a first moving platform 14.

[0035] The second movable component 15 is mounted on the support plate 12 and has a second movable platform 16 located above the first movable platform 14. The first movable platform 14 and the second movable platform 16 are respectively used to install sheet metal 17.

[0036] Drive assembly 18 is mounted on frame 11 and is used to drive the first moving platform 14 and the second moving platform 16 to move in opposite directions.

[0037] Clamping cylinder 19 is installed on the first moving platform 14 and the second moving platform 16 respectively. The clamping cylinder 19 has a clamping part 20 that moves in the vertical direction. The clamping part 20 is used to clamp the sheet metal 17.

[0038] This design utilizes the first moving component 13 and the second moving component 15 to achieve synchronous reverse movement of the upper and lower moving platforms. This structure allows for the simultaneous installation and cutting of two sheet metal parts 17, significantly improving production efficiency and making it particularly suitable for scenarios requiring batch processing of connector sheet metal housings. When one moving platform is in the processing area, the other moving platform is in the loading area, thus enabling continuous processing of the sheet metal parts 17.

[0039] In addition, a cutting mechanism is provided in the processing area. The cutting mechanism is existing technology and specifically includes a laser cutter 35 and a drive module 36. The drive module 36 is used to adjust the position of the laser cutter 35, which is used to cut the sheet metal 17. The drive module 36 is a three-axis module or a two-axis module.

[0040] In one embodiment of this invention, the drive assembly 18 includes a drive motor 21, a drive wheel 22, a driven wheel 23, and a transmission component 24. The drive motor 21 is mounted on the support plate 12, and the drive wheel 22 is mounted on the output shaft of the drive motor 21. The driven wheel 23 is rotatably mounted on the support plate 12.

[0041] The driving wheel 22 and the driven wheel 23 are located at the two ends of the length direction of the support plate 12, and the driving wheel 22 and the driven wheel 23 are connected by the transmission component 24.

[0042] The first mobile platform 14 is mounted on the transmission component 24 via the first fixing member 25, and the second mobile platform 16 is mounted on the transmission component 24 via the second fixing member 26.

[0043] Furthermore, the first fixing member 25 and the second fixing member 26 are located on both sides of the line connecting the centers of the driving wheel 22 and the driven wheel 23, respectively.

[0044] Furthermore, the transmission component 24 is a transmission belt, and the driving pulley 22 and the driven pulley 23 are pulleys; or the transmission component 24 is a chain, and the driving pulley 22 and the driven pulley 23 are sprockets.

[0045] This solution achieves precise positioning and synchronous movement of two moving platforms through a transmission system consisting of a drive motor 21, a driving wheel 22, a driven wheel 23, and a transmission component 24. The output shaft of the drive motor 21 drives the driving wheel 22, which is then transmitted to the driven wheel 23 via the transmission component 24, forming a closed power transmission chain. The first moving platform 14 and the second moving platform 16 are rigidly connected to the transmission component 24 via fixed components to ensure consistent motion trajectories. This solution adopts a two-end wheel system layout, effectively distributing the transmission load and improving system stability; the modular design supports multi-platform expansion and is suitable for scenarios such as automated assembly lines; the transmission component 24 uses a transmission belt, also known as a synchronous belt, and its flexibility absorbs vibration, ensuring motion accuracy.

[0046] As one embodiment of this example, the first moving component 13 includes two first guide rails 27, and each first guide rail 27 is mounted on the support plate 12 via a first bracket 28; the first moving platform 14 is mounted on the two first guide rails 27 via a first slider assembly 29.

[0047] Furthermore, the second moving component 15 includes two second guide rails 30, and each second guide rail 30 is mounted on the support plate 12 via a second bracket 31; the second moving platform 16 is mounted on the two second guide rails 30 via a second slider assembly 32.

[0048] Furthermore, the two first guide rails 27 are located between the two second guide rails 30.

[0049] This scheme uses two sets of parallel guide rails to form a dual guiding system. The upper and lower guide rails are staggered to optimize space utilization and achieve independent movement of the two platforms on the limited area of ​​the support plate 12, avoiding interference. The symmetrical arrangement of the guide rails simplifies synchronous control and makes it easy to drive the two platforms to move in opposite directions synchronously through a single transmission component 24, reducing system complexity.

[0050] As one embodiment of this invention, a first dustproof mechanism 33 for dustproofing the first guide rail 27 is also included.

[0051] As one embodiment of this invention, a second dustproof mechanism 34 for dustproofing the second guide rail 30 is also included.

[0052] The first dustproof mechanism 33 is fixed to the first bracket 28, and has a cavity for accommodating the first guide rail 27. The top of the first dustproof mechanism 33 is provided with a first clearance channel 37 for the first movement of the first slider assembly 29. A guide rail dustproof curtain 38 is provided in the first clearance channel 37. The guide rail dustproof curtain 38 is an accordion-style telescopic structure and is existing technology.

[0053] Furthermore, the two first guide rails 27 are located inside the two second guide rails 30. Therefore, the first guide rail 27 adopts a baffle 39, which is fixed on the first moving platform 14 and moves with the first moving platform 14. The baffle 39 and the first slider assembly 29 cover the first guide rail 27 along the vertical downward projection, thereby providing sufficient protection for the first guide rail 27.

[0054] The second dustproof mechanism 34 is fixed on the second bracket 31, and the second dustproof mechanism 34 has an inner cavity for accommodating the second guide rail 30, and the second dustproof mechanism 34 is provided with a second clearance channel 40 to facilitate the movement of the second slider assembly 32.

[0055] For those skilled in the art, various modifications and improvements can be made without departing from the inventive concept of this utility model, and these modifications and improvements all fall within the protection scope of this utility model.

Claims

1. A mobile platform for cutting connector sheet metal housings, characterized in that, include: A frame (11) with a support plate (12) fixed to its top. A first moving component (13) is mounted on the support plate (12) and has a first moving platform (14). The second moving component (15) is mounted on the support plate (12) and has a second moving platform (16) located above the first moving platform (14). The first moving platform (14) and the second moving platform (16) are respectively used to install sheet metal (17). A drive assembly (18) is mounted on the frame (11) and is used to drive the first mobile platform (14) and the second mobile platform (16) to move in opposite directions. Clamping cylinder (19) is installed on the first moving platform (14) and the second moving platform (16), respectively. The clamping cylinder (19) has a clamping part (20) that moves in the vertical direction. The clamping part (20) is used to press the sheet metal (17).

2. The mobile platform for cutting connector sheet metal housings according to claim 1, characterized in that, The drive assembly (18) includes a drive motor (21), a drive wheel (22), a driven wheel (23), and a transmission component (24). The drive motor (21) is mounted on the support plate (12), and the drive wheel (22) is mounted on the output shaft of the drive motor (21). The driven wheel (23) is rotatably mounted on the support plate (12). The driving wheel (22) and the driven wheel (23) are located at opposite ends of the length of the support plate (12), and the driving wheel (22) and the driven wheel (23) are connected by a transmission member (24). The first mobile platform (14) is mounted on the transmission member (24) by the first fixing member (25), and the second mobile platform (16) is mounted on the transmission member (24) by the second fixing member (26).

3. The mobile platform for cutting connector sheet metal housings according to claim 2, characterized in that, The first fixing member (25) and the second fixing member (26) are located on both sides of the line connecting the center of the driving wheel (22) and the driven wheel (23), respectively.

4. The moving platform for cutting connector sheet metal housings according to claim 3, characterized in that, The transmission component (24) is a transmission belt, and the driving wheel (22) and the driven wheel (23) are pulleys; or the transmission component (24) is a chain, and the driving wheel (22) and the driven wheel (23) are sprockets.

5. The moving platform for cutting connector sheet metal housings according to claim 2, characterized in that, The first moving component (13) includes a first guide rail (27), there are two first guide rails (27), and each first guide rail (27) is mounted on the support plate (12) by a first bracket (28); the first moving platform (14) is mounted on the two first guide rails (27) by a first slider assembly (29).

6. The moving platform for cutting connector sheet metal housings according to claim 5, characterized in that, The second moving component (15) includes a second guide rail (30), there are two second guide rails (30), and each second guide rail (30) is mounted on the support plate (12) by a second bracket (31); the second moving platform (16) is mounted on the two second guide rails (30) by a second slider assembly (32).

7. The moving platform for cutting connector sheet metal housings according to claim 6, characterized in that, The two first guide rails (27) are located between the two second guide rails (30).

8. The mobile platform for cutting connector sheet metal housings according to claim 6, characterized in that, It also includes a first dustproof mechanism (33) for dustproofing the first guide rail (27).

9. The moving platform for cutting connector sheet metal housings according to claim 6, characterized in that, It also includes a second dustproof mechanism (34) for dustproofing the second guide rail (30).