Industrial router shell production tooling

By designing production fixtures with automatic flipping and fixed flipping components, the inconvenience of manual flipping in the laser printing of industrial router shells was solved, realizing an automated and efficient laser printing process, and improving production efficiency and printing accuracy.

CN224526241UActive Publication Date: 2026-07-21山东固而美金属制品有限公司
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
山东固而美金属制品有限公司
Filing Date
2025-08-21
Publication Date
2026-07-21

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Abstract

The utility model provides a kind of industrial router shell production tool, it is related to router shell production tool field, the present application can accurately limit the placement area of industrial router shell, after being limited, vacuum adsorption is immediately, then the upper surface and several side surfaces of industrial router shell are sequentially laser printing engraving to identify product model, LOGO and interface, entire laser printing engraving process does not need manual turning and will not appear position deviation, pre-set optical fiber laser operating track is combined with the turnover operation of the device, and information identification on the surface of industrial router shell can be automatically completed, and then the production process of industrial router shell is more efficient.
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Description

Technical Field

[0001] This utility model relates to the field of industrial router casing manufacturing tooling, specifically, to an industrial router casing manufacturing tooling. Background Technology

[0002] An industrial router is a network communication device designed specifically for harsh industrial environments. It features high reliability, strong protection, wide temperature adaptability, and industrial protocol compatibility, and is used to provide stable and secure network connectivity and data transmission in complex industrial scenarios.

[0003] Industrial routers need to be installed inside a casing to achieve environmental isolation and component protection. The industrial router casing consists of a top cover, a bottom cover, and side panels. Currently, after the industrial router casing is assembled, key information such as product model, logo, and interface markings need to be printed on its surface to form clear identification. At present, laser engraving and printing are completed by driving a fiber laser with a dual-axis device to move along a pre-set trajectory. However, the sides and top surface of the industrial router casing also need to be printed, which requires manual assistance to flip it so that several sides face up in sequence. Manual flipping is not convenient and is prone to positional deviation. Therefore, there is currently a lack of fixed flipping fixture design for laser printing marking on industrial router casings. Utility Model Content

[0004] The purpose of this utility model is to solve the problems mentioned in the background art above, and then to propose a tooling for manufacturing industrial router shells.

[0005] The technical solution adopted by this utility model to solve its technical problem is: An industrial router casing manufacturing fixture, including a mounting bracket. The first flipping component is mounted on the mounting bracket, and the first flipping component is connected to the mounting plate; The second flipping component is mounted on the mounting plate and is connected to a housing; The telescopic cylinder and the vacuum adsorption assembly are both housed inside the housing, and the telescopic cylinder is connected to a limit frame. The through-hole is formed on the housing and allows the retaining frame to pass through, and the two are sized to fit each other; Several adsorption holes located inside the through hole are opened on the shell, and the adsorption holes are connected to the vacuum adsorption component.

[0006] Furthermore, the first flipping assembly includes a first connecting roller, a first servo gear transmission assembly, and a first housing. The first connecting roller is rotatably connected to the mounting frame, and the first connecting roller is connected to the first servo gear transmission assembly fixed on the mounting frame. The first housing is mounted on the mounting bracket and covers the outer side of one end of the first servo gear transmission assembly and the first connecting roller.

[0007] Furthermore, the second flipping assembly includes a second connecting roller, a second servo gear transmission assembly, and a second housing. The second connecting roller is rotatably connected to the mounting plate, and the second connecting roller is connected to the second servo gear transmission assembly fixed on the mounting plate. The second housing is mounted on the mounting plate and covers one end of the second servo gear transmission assembly and the second connecting roller.

[0008] Furthermore, the vacuum adsorption assembly includes a vacuum pump, a suction box, and a suction port. The vacuum pump is fixed inside the housing and is connected to the suction box fixed at the top of the housing. The suction holes are located on the suction box, and the suction holes correspond one-to-one with the adsorption holes and are connected.

[0009] Furthermore, the input pipe of the vacuum pump passes through the housing and connects to the external environment.

[0010] Furthermore, the mounting bracket is equipped with a smoke purifier, and the air inlet of the smoke purifier is connected to a suction hood that does not obstruct the mounting plate and the deflection movement of the housing.

[0011] Compared with the prior art, the beneficial effects of this utility model are: Compared to existing technologies, this application can accurately define the placement area of ​​the industrial router casing. After the area is defined, it is vacuum-adsorbed and then laser-printed and engraved on the top surface and several sides of the industrial router casing to mark the product model, logo and interface. The entire laser printing and engraving process does not require manual flipping and will not have positional deviations. The information marking on the surface of the industrial router casing can be automatically completed by pre-setting the running trajectory of the fiber laser and cooperating with the flipping operation of this device, thus making the production process of industrial router casing more efficient. Attached Figure Description

[0012] Figure 1 This is a schematic diagram of the overall structure of this utility model; Figure 2 A schematic diagram of a smoke purifier installation; Figure label: 1. Mounting frame; 2. First flipping assembly; 21. First connecting roller; 22. First servo gear transmission assembly; 23. First housing; 3. Mounting plate; 4. Second flipping assembly; 41. Second connecting roller; 42. Second servo gear transmission assembly; 43. Second housing; 5. Housing; 6. Telescopic cylinder; 7. Vacuum adsorption assembly; 71. Vacuum pump; 72. Suction box; 8. Limiting frame; 9. Adsorption hole; 10. Smoke purifier; 11. Suction hood. Detailed Implementation

[0013] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only a part of the embodiments of the present utility model, and not all of them. All other embodiments obtained by those skilled in the art based on the embodiments of the present utility model without creative effort are within the scope of protection of the present utility model. The present utility model will be further described with reference to the accompanying drawings and embodiments: like Figure 1 As shown, an industrial router casing manufacturing fixture includes a mounting bracket 1, a first flipping assembly 2, a mounting plate 3, a second flipping assembly 4, a casing 5, a telescopic cylinder 6, a vacuum adsorption assembly 7, a limiting frame 8, a through hole, and an adsorption hole 9. The first flipping component 2 is mounted on the mounting bracket 1, and the first flipping component 2 is connected to the mounting plate 3; The second flipping component 4 is mounted on the mounting plate 3, and the second flipping component 4 is connected to the housing 5; The telescopic cylinder 6 and the vacuum adsorption component 7 are both housed inside the housing 5, and the telescopic cylinder 6 is connected to the limit frame 8. A through hole is provided on the housing 5 and allows the limiting frame 8 to pass through, and the two are sized to fit each other (the through hole is not shown in the figure). Several adsorption holes 9 located inside the through hole are opened on the housing 5, and the adsorption holes 9 are connected to the vacuum adsorption component 7.

[0014] Specific implementation of the embodiments of this utility model, such as Figure 1 As shown, the first flipping assembly 2 includes a first connecting roller 21, a first servo gear transmission assembly 22 (including a servo motor, a main gear, and a secondary gear, wherein the main gear is connected to the servo motor, and the secondary gear is fixed on the first connecting roller and meshes with the main gear), and a first housing 23. The first connecting roller 21 is rotatably connected to the mounting frame 1, and the first connecting roller 21 is connected to the first servo gear transmission assembly 22 fixed on the mounting frame 1. The first housing 23 is disposed on the mounting bracket 1, and the first housing 23 covers the outer side of one end of the first servo gear transmission assembly 22 and the first connecting roller 21.

[0015] Specific implementation of the embodiments of this utility model, such as Figure 1 As shown, the second flipping assembly 4 includes a second connecting roller 41, a second servo gear transmission assembly 42 (with the same structure as the first servo gear transmission assembly 22), and a second housing 43. The second connecting roller 41 is rotatably connected to the mounting plate 3, and the second connecting roller 41 is connected to the second servo gear transmission assembly 42 fixed on the mounting plate 3. The second housing 43 is disposed on the mounting plate 3, and the second housing 43 covers the outer side of one end of the second servo gear transmission assembly 42 and the second connecting roller 41.

[0016] Specific implementation of the embodiments of this utility model, such as Figure 1 As shown, the vacuum adsorption assembly 7 includes a vacuum pump 71, a suction box 72, and a suction port (not shown in the figure). The vacuum pump 71 is fixed inside the housing 5 and is connected to the suction box 72 fixed at the top of the housing 5. The input pipe of the vacuum pump 71 passes through the housing 5 and connects to the external environment. The suction holes are located on the suction box 72, and the suction holes correspond one-to-one with the adsorption holes 9 and are connected.

[0017] To reduce environmental pollution during the laser printing and engraving process of industrial router casings, further optimizations to the above embodiments are possible, such as... Figure 2 As shown, a smoke purifier 10 is installed on the mounting bracket 1, and the air inlet of the smoke purifier 10 is connected to a suction hood 11 that does not obstruct the deflection movement of the mounting plate 3 and the housing 5. The smoke purifier 10 is existing technology and will not be improved. Its structure is as follows: Core layer: 1. Pre-filter layer: Fireproof steel mesh intercepts sparks and large particles (particle size > 5μm); 2. Medium-efficiency filter layer Accordion bag filter (F8 grade) for handling small to medium particulate matter (1-5μm); 3. High-efficiency filter layer: Glass fiber filter element captures tiny particles (<1μm); 4. Activated carbon adsorption layer: Honeycomb activated carbon filters VOCs and odors, with a thickness of 50-100mm; 5. The centrifugal fan module (power 200-1500W) generates negative pressure; 6. Air Inlet / Outlet Design: Top air inlet + top exhaust or side air inlet + top exhaust, with a 150mm pipe diameter as the mainstream standard.

[0018] It should be noted that the servo motor in the first servo gear transmission assembly 22, the servo motor in the second servo gear transmission assembly 42, the telescopic cylinder 6, the vacuum pump 71, and the smoke purifier 10 are all electrically connected to the controller, which is not labeled in the figure.

[0019] The working process of this utility model: Initially, the housing 5 is in a horizontal position (as per the instruction manual). Figure 1 As shown in the diagram, the controller first controls the telescopic cylinder 6 to operate, thereby causing the limiting frame 8 to move along the through hole to the outside of the housing 5. Then, the assembled industrial router housing is aligned with the limiting frame 8 and placed in it. At this time, the placement area of ​​the industrial router housing can be accurately limited. After the bottom surface of the industrial router is pressed tightly against the upper surface of the housing 5, the controller controls the vacuum pump 71 to operate, thereby firmly adsorbing the industrial router housing. After adsorption is completed, the controller controls the telescopic cylinder 6 to operate, thereby driving the limiting frame 8 to move into the inside of the housing 5 so as not to obstruct the side of the industrial router housing. Then, the upper surface of the industrial router housing is processed first with the help of a dual-axis device and a fiber laser. After the laser printing and engraving of the upper surface of the industrial router shell is completed, the controller first controls the operation of the first servo gear transmission component 22, which drives the industrial router shell to rotate 90 degrees in the front-back direction so that one side faces upward. Then, the side can be processed. After the processing of one side of the industrial router shell is completed, the controller controls the operation of the second servo gear transmission component 42, which drives the industrial router shell to flip in the left-right direction. Each flip is 90 degrees, and each flip makes one side face upward. Finally, after the laser printing of the upper surface and all sides of the industrial router shell is completed, the shell 5 moves back to the horizontal state. Then, the vacuum adsorption is released by the controller, and the material can be unloaded. Then, the above process is repeated to start a new round of laser printing of industrial router shells (the industrial router shells processed in this application are all the same in size and model).

[0020] The foregoing has shown and described the basic principles, main features, and advantages of this utility model. Those skilled in the art should understand that this utility model is not limited to the above embodiments. The descriptions of the above embodiments and specifications are merely illustrative of the principles of this utility model. Various changes and modifications can be made to this utility model without departing from its spirit and scope, and all such changes and modifications fall within the scope of protection claimed by this utility model. The scope of protection of this utility model is defined by the appended claims and their equivalents.

Claims

1. An industrial router housing production tooling, characterized by, Including mounting bracket (1), The first flipping component (2) is mounted on the mounting bracket (1), and the first flipping component (2) is connected to the mounting plate (3). The second flipping component (4) is mounted on the mounting plate (3), and the second flipping component (4) is connected to the housing (5). The telescopic cylinder (6) and the vacuum adsorption assembly (7) are both located inside the housing (5), and the telescopic cylinder (6) is connected to the limit frame (8). The through hole is opened on the housing (5) and allows the limiting frame (8) to pass through, and the two are sized to fit each other; Several adsorption holes (9) located inside the through hole are opened on the housing (5), and the adsorption holes (9) are connected to the vacuum adsorption assembly (7).

2. The industrial router housing production tooling of claim 1, wherein, The first flipping assembly (2) includes a first connecting roller (21), a first servo gear transmission assembly (22), and a first housing (23). The first connecting roller (21) is rotatably connected to the mounting frame (1), and the first connecting roller (21) is connected to the first servo gear transmission assembly (22) fixed on the mounting frame (1); The first housing (23) is mounted on the mounting bracket (1) and covers one end of the first servo gear transmission assembly (22) and the first connecting roller (21).

3. The industrial router housing production tooling of claim 1, wherein, The second flipping assembly (4) includes a second connecting roller (41), a second servo gear transmission assembly (42), and a second housing (43). The second connecting roller (41) is rotatably connected to the mounting plate (3), and the second connecting roller (41) is connected to the second servo gear transmission assembly (42) fixed on the mounting plate (3); The second housing (43) is disposed on the mounting plate (3), and the second housing (43) covers one end of the second servo gear transmission assembly (42) and the second connecting roller (41).

4. The industrial router housing production tooling of claim 1, wherein, The vacuum adsorption assembly (7) includes a vacuum pump (71), a suction box (72), and a suction port. The vacuum pump (71) is fixed inside the housing (5) and is connected to the suction box (72) fixed at the top inside the housing (5); The suction hole is opened on the suction box (72), and the suction hole and the adsorption hole (9) correspond one-to-one and are connected.

5. The industrial router housing production tooling of claim 4, wherein, The input pipe of the vacuum pump (71) passes through the housing (5) and connects to the external environment.

6. The industrial router housing production tooling of claim 1, wherein, The mounting bracket (1) is equipped with a smoke purifier (10), and the air inlet of the smoke purifier (10) is connected to a suction hood (11) that does not obstruct the deflection movement of the mounting plate (3) and the housing (5).