Metal processing jig with air cooling chip removal function

By integrating an air-cooling module and an adsorption component into a metal processing fixture, the problems of chip scattering and lack of cooling during the chip removal process of metal processing parts are solved, achieving efficient chip removal and stable adsorption of workpieces, thus improving processing efficiency and safety.

CN224073835UActive Publication Date: 2026-04-03DONGGUAN XINZHIHE PRECISION TECHNOLOGY CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-12-18
Publication Date
2026-04-03

AI Technical Summary

Technical Problem

When using external or internal chip removal mechanisms, existing metal processing parts suffer from chip scattering that poses a safety hazard, and the lack of cooling effect affects processing efficiency and safety.

Method used

Design a metalworking fixture with air-cooled chip removal. By integrating an air-cooling module into the fixture body, the gas-cooling module is used for blowing chips and cooling. Combined with an adsorption component, it achieves efficient chip removal and stable adsorption of workpieces.

Benefits of technology

It achieves immediate removal of debris and stable adsorption of workpieces, improving processing efficiency and quality, reducing dust hazards, and has good application prospects.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to the technical field of machining, in particular to a metal machining jig with an air cooling chip removal function, which comprises a base, a jig body and an air cooling module. The jig body is arranged on the base, the air cooling module is arranged on one side of the jig body, and the air cooling module blows air and removes chips towards the jig body; through the air cooling module, the dual effects of blowing and chip removal and cold cutting are achieved on the jig body in the machining process, and the machining efficiency is improved; through the air blowing groove communicated with the air inlet connector, chippings on the jig body can be discharged towards the chip discharging groove, the chip discharging layout is optimized, and the integration degree is high; the jig body is provided with the first adsorption area and the second adsorption area so that workpieces of different models and sizes can be adsorbed, and the practicability is wide; and the air cooling module is provided with a vacuum connector and an air inlet connector so that negative pressure can be conducted on the first adsorption area and the second adsorption area, the adsorption force is enhanced, the workpiece adsorption stability of the jig body is improved, and practicability is high.
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Description

Technical Field

[0001] This utility model relates to the field of processing technology, specifically to a metal processing fixture with air-cooled chip removal. Background Technology

[0002] When machining tools perform surface processing (such as cutting, drilling, and grinding) on ​​metal parts, they need to be used with chip removal devices to remove the scattered metal chips. Generally, external or internal chip removal mechanisms are used to solve the chip problem.

[0003] Currently, existing chip removal mechanisms for metal processing typically use external or internal ones. During the chip removal process, a large amount of debris is often stirred up, and the debris contains dust which can be inhaled, posing a safety hazard. Furthermore, external or internal chip removal mechanisms do not provide a cooling effect during the processing of metal parts, making them unsuitable for widespread use. Utility Model Content

[0004] To address the aforementioned problems, this utility model provides a metal processing fixture with air-cooled chip removal, which solves the problem that existing metal processing parts typically use external or internal chip removal mechanisms to remove chips. During the chip removal process, a large amount of debris is often raised, and the debris contains dust which can be inhaled, posing a safety hazard. Furthermore, external or internal chip removal mechanisms do not provide a cooling effect during metal processing, making them inconvenient for widespread use.

[0005] The technical solution adopted by this utility model is as follows: it includes a base, a fixture body, and an air-cooling module; the fixture body is disposed on the base, the air-cooling module is disposed on one side of the fixture body, and the air-cooling module blows air towards the fixture body to remove chips.

[0006] A further improvement to the above solution is that the upper surface of the base is provided with a processing table, and the upper surface of the processing table is provided with processing air holes.

[0007] A further improvement to the above solution is that the fixture body includes a fixture panel and an adsorption component, and a first fixture baffle and a second fixture baffle are provided on both sides of the fixture panel to form a workbench for processing the fixture body.

[0008] A further improvement to the above solution is that a chip removal groove is provided between the first fixture baffle and the worktable, and the chip removal groove has multiple chip removal holes distributed along the first fixture baffle.

[0009] A further improvement to the above solution is that an air blowing groove is provided between the second fixture baffle and the worktable, and one end of the air-cooling module is connected to the air blowing groove, so that the air blowing groove faces the chip removal groove for chip removal.

[0010] A further improvement to the above solution is that the adsorption component is set on the workbench, and the adsorption component includes a first adsorption area and a second adsorption area. Multiple sets of the first adsorption area and the second adsorption area are arranged alternately on the workbench. Multiple first adsorption holes are provided on the first adsorption area, and the multiple first adsorption holes are evenly distributed on the first adsorption area.

[0011] A further improvement to the above scheme is that a second adsorption panel is provided on the second adsorption zone, and both the second adsorption zone and the second adsorption panel are provided with a plurality of second adsorption holes, which are evenly distributed on the second adsorption zone and the second adsorption panel.

[0012] A further improvement to the above solution is that a sealing groove is formed between the second adsorption panel and the second adsorption area, and the sealing groove is used to seal the second adsorption panel and the second adsorption area.

[0013] A further improvement to the above solution is that the air-cooled module includes an air pipe connector, an air inlet, and a vacuum interface; the air pipe connector is disposed on the fixture body, the air inlet is disposed on the air pipe connector, and the vacuum interface is disposed on one side of the air pipe connector near the air inlet; multiple air inlets are provided, and a vacuum interface is provided between two adjacent sets of air inlets.

[0014] A further improvement to the above scheme is that one end of the air inlet is connected to the air blowing groove, and one end of the vacuum interface is connected to the first adsorption hole and the second adsorption hole.

[0015] The beneficial effects of this utility model are:

[0016] Compared to existing fixtures, this invention uses a base to mount the fixture body and air-cooling module. The air-cooling module then performs a dual function of blowing air to remove chips and generating a cooling effect on the fixture body during processing, thereby improving processing efficiency. The fixture body has an air-blowing groove that communicates with the air inlet of the air-cooling module, and a corresponding chip-removal groove. This allows the air inlet to pass gas through the air-blowing groove, discharging chips from the fixture body towards the chip-removal groove, resulting in an effective chip removal layout and high integration. Furthermore, the fixture body has a first adsorption area and a second adsorption area to adsorb workpieces of different sizes, making it widely applicable. The air-cooling module has a vacuum interface and an air inlet to create negative pressure in the first and second adsorption areas, greatly enhancing the adsorption force and improving the stability of workpiece adsorption on the fixture body. This design is highly practical and has promising application prospects. Attached Figure Description

[0017] Figure 1 This is a perspective view of the metalworking fixture with air-cooled chip removal according to the present invention;

[0018] Figure 2 This is a top view of the metalworking fixture with air-cooled chip removal according to the present invention;

[0019] Figure 3 This is a front view of the metalworking fixture with air-cooled chip removal according to this utility model.

[0020] Explanation of reference numerals in the attached drawings: base 10, machining table 11, machining air hole 12;

[0021] Fixture body 20, fixture panel 21, first fixture baffle 211, second fixture baffle 212, worktable 213, chip removal groove 214, chip removal hole 215, air blowing groove 216, adsorption assembly 22, first adsorption area 23, first adsorption hole 231, second adsorption area 24, second adsorption panel 241, second adsorption hole 242, sealing groove 25;

[0022] Air-cooled module 30, air pipe connector 31, air inlet 32, vacuum interface 33. Detailed Implementation

[0023] To facilitate understanding of this utility model, a more complete description will be given below with reference to the accompanying drawings. Preferred embodiments of this utility model are shown in the drawings. However, this utility model can be implemented in many different forms and is not limited to the embodiments described herein. Rather, these embodiments are provided to provide a more thorough and complete understanding of the disclosure of this utility model.

[0024] It should be noted that when a component is said to be "fixed to" another component, it can be directly attached to the other component or there may be an intervening component. When a component is said to be "connected to" another component, it can be directly connected to the other component or there may be an intervening component.

[0025] Unless otherwise defined, all technical and scientific terms used herein have the same meaning as commonly understood by one of ordinary skill in the art to which this invention pertains. The terminology used herein is for the purpose of describing particular embodiments only and is not intended to be limiting of the invention.

[0026] like Figure 1-3As shown in the embodiment of this utility model, a metal processing fixture with air-cooled chip removal includes: a base 10, a fixture body 20, and an air-cooling module 30; the fixture body 20 is disposed on the base 10, and the air-cooling module 30 is disposed on one side of the fixture body 20, the air-cooling module 30 blowing air towards the fixture body 20 to remove chips. In this embodiment, the processing fixture achieves a highly efficient and precise processing environment by integrating the base 10, the fixture body 20, and the air-cooling module 30; the fixture body 20 is securely mounted on the base 10, ensuring stability and accuracy during the processing; and the air-cooling module 30 is disposed on one side of the fixture body 20 to blow air towards the fixture body 20, effectively promoting the immediate removal of chips in the processing area, while using airflow to achieve rapid cooling of the tool and workpiece surfaces, reducing the risk of thermal deformation, and improving processing accuracy and efficiency; this design not only optimizes the chip removal process but also significantly enhances the overall performance and processing quality of the metal processing fixture.

[0027] like Figure 1 As shown, a processing table 11 is provided on the upper surface of the base 10, and processing air holes 12 are provided on the upper surface of the processing table 11. In this embodiment, the processing table 11 is used to enable the fixture body 20 to perform processing on the processing table 11, and multiple processing air holes 12 are evenly distributed on the processing table 11 to enhance the adsorption capacity of the adsorption module and the air-cooling module 30 on the fixture body 20, which is highly practical.

[0028] like Figures 2 to 3 As shown, the fixture body 20 includes a fixture panel 21 and an adsorption assembly 22. A first fixture baffle 211 and a second fixture baffle 212 are provided on both sides of the fixture panel 21 to form a worktable 213 for processing by the fixture body 20. In this embodiment, a stable worktable 213 area is constructed through the first fixture baffle 211 and the second fixture baffle 212, ensuring accurate positioning of the workpiece during processing and improving the overall structural strength and stability of the fixture. Furthermore, an air-cooling module 30 is equipped on the side of the fixture panel 21 adjacent to the processing table, which helps to blow away debris and dust generated during processing from the worktable 213 area, reducing the interference of debris accumulation on the processing process, further improving the continuity and stability of processing, achieving effective cooling and chip removal during processing, and improving processing efficiency and workpiece quality.

[0029] A chip removal groove 214 is provided between the first fixture baffle 211 and the worktable 213, and the chip removal groove 214 has multiple chip removal holes 215 distributed along the first fixture baffle 211. In this embodiment, the chip removal groove 214 provided between the first fixture baffle 211 and the worktable 213, and the multiple chip removal holes 215 distributed along the baffle, effectively realize the discharge of chips during the processing, improve the chip removal efficiency of the fixture body 20 and the cleanliness of the processing area, and ensure the processing quality of the workpiece.

[0030] An air-blowing groove 216 is provided between the second fixture baffle 212 and the worktable 213. One end of the air-cooling module 30 is connected to the air-blowing groove 216, so that the air-blowing groove 216 faces the chip removal groove 214 for chip removal. In this embodiment, by providing an air-blowing groove 216 between the worktable 213 and the second fixture baffle 212 and connecting it to the air-cooling module 30, the function of directional air blowing and chip removal from the air-blowing groove 216 to the chip removal groove 214 is realized, effectively improving the chip removal efficiency and cooling effect of the metal processing fixture.

[0031] The adsorption component 22 is disposed on the workbench 213. The adsorption component 22 includes a first adsorption zone 23 and a second adsorption zone 24. Multiple sets of the first adsorption zone 23 and the second adsorption zone 24 are disposed alternately on the workbench 213. Multiple first adsorption holes 231 are disposed on the first adsorption zone 23. The multiple first adsorption holes 231 are evenly distributed on the first adsorption zone 23. In this embodiment, an adsorption assembly 22, consisting of multiple alternating sets of first adsorption zones 23 and second adsorption zones 24, is used to fix and adsorb the supply on the fixture body 20, enhancing the stability of the fixture body 20 in placing the workpiece, thus facilitating the processing of the workpiece on the fixture body 20. Furthermore, multiple first adsorption holes 231 are evenly distributed within the first adsorption zone 23, improving the adsorption capacity and stability of the fixture body 20 on the workpiece. The alternating arrangement of the first adsorption zone 23 and the second adsorption zone 24 allows for a more uniform distribution of adsorption force, ensuring stable adsorption of the workpiece during processing. Simultaneously, combined with the air cooling function of the air cooling module 30, the heat dissipation and chip removal efficiency of the processing environment are further optimized, making it highly practical.

[0032] A second adsorption panel 241 is provided on the second adsorption zone 24. Both the second adsorption zone 24 and the second adsorption panel 241 are provided with a plurality of second adsorption holes 242, which are evenly distributed on the second adsorption zone 24 and the second adsorption panel 241. In this embodiment, the double adsorption panel of the second adsorption zone 24 enhances the adsorption capacity of the second adsorption zone 24, ensures the adsorption strength of the fixture body 20 on the workpiece, and enhances the stability of the workpiece.

[0033] A sealing groove 25 is formed between the second adsorption panel 241 and the second adsorption area 24. The sealing groove 25 is used to seal the second adsorption panel 241 and the second adsorption area 24. In this embodiment, the sealing groove 25 is used to seal and adsorb the second adsorption area 24, resulting in better and more stable adsorption of the workpiece when negative pressure is generated. This enhances the adsorption strength of the second adsorption area 24, allowing for the adsorption of workpieces of different models and sizes, increasing adsorption strength, reducing interference, improving processing accuracy, and making it highly practical.

[0034] The air-cooling module 30 includes an air pipe connector 31, an air inlet 32, and a vacuum interface 33. The air pipe connector 31 is mounted on the fixture body 20, the air inlet 32 ​​is mounted on the air pipe connector 31, and the vacuum interface 33 is located on one side of the air pipe connector 31, close to the air inlet 32. Multiple air inlets 32 are provided, with a vacuum interface 33 positioned between adjacent sets of air inlets 32. In this embodiment, the air-cooling module 30 is used to blow air and remove chips from the fixture body 20, maintaining the processing environment of the processing table on the fixture body 20, enhancing processing efficiency and quality, effectively reducing processing interference, and improving processing efficiency. Furthermore, the air-cooling module 30 facilitates cooling during processing, improving processing efficiency. The air-cooling module 30 has multiple air inlets 32 arranged side-by-side, with a vacuum interface 33 cleverly embedded between adjacent sets, and the vacuum interface 33 is located adjacent to the air inlets 32 on one side of the air pipe connector 31. This layout ensures the effective integration of air cooling and vacuum chip removal functions, improving the cooling efficiency of the air cooling module 30 on the fixture body 20 and its chip removal capability.

[0035] One end of the air inlet 32 ​​is connected to the air blowing channel 216, and one end of the vacuum interface 33 is randomly connected to the first adsorption hole 231 and the second adsorption hole 242. In this embodiment, the air cooling module 30 provides gas to the air blowing channel 216 through the air inlet 32, so that the air blowing channel 216 can remove the debris on the fixture body 20 towards the chip removal channel 214. The structure is compact and the chip removal efficiency is high. Moreover, one end of the vacuum interface 33 is connected to the first adsorption hole 231 and the second adsorption hole 242, so as to increase the negative pressure in the first adsorption area 23 and the second adsorption area 24 during the adsorption process, thereby improving the adsorption intensity. The structure is interlocking and highly practical.

[0036] In an embodiment of this utility model, a metalworking fixture with air-cooled chip removal includes: a base 10, a fixture body 20, and an air-cooling module 30; the fixture body 20 is disposed on the base 10, and the air-cooling module 30 is disposed on one side of the fixture body 20, the air-cooling module 30 blowing air towards the fixture body 20 to remove chips; the base 10 is used to mount the fixture body 20 and the air-cooling module 30, so that the air-cooling module 30 can achieve the dual function of blowing air to remove chips and generating cold cutting on the fixture body 20 during the processing, thereby improving processing efficiency; and the fixture body 20 is provided with an air-blowing groove 216 communicating with the air inlet 32 ​​on the air-cooling module 30. A chip removal groove 214 is provided on the corresponding air blowing groove 216 so that the air inlet 32 ​​can pass gas through the air blowing groove 216 to discharge the chips on the fixture body 20 toward the chip removal groove 214, which is an effective chip removal layout with high integration. The fixture body 20 is provided with a first adsorption area 23 and a second adsorption area 24 to adsorb workpieces of different sizes, which is widely applicable. The air cooling module 30 is provided with a vacuum interface 33 and an air inlet 32 ​​to apply negative pressure to the first adsorption area 23 and the second adsorption area 24, which greatly enhances the adsorption force and improves the stability of adsorbing workpieces on the fixture body 20. It is highly practical and has good application prospects.

[0037] The above embodiments only illustrate several implementation methods of this utility model, and their descriptions are relatively specific and detailed, but they should not be construed as limiting the scope of this utility model patent. It should be noted that those skilled in the art can make various modifications and improvements without departing from the concept of this utility model, and these all fall within the protection scope of this utility model. Therefore, the protection scope of this utility model patent should be determined by the appended claims.

Claims

1. A metal working tool with gas cooling of chips, characterized in that, The utility model relates to a processing device for semiconductor wafer, including: Base, fixture body and air cooling module; The fixture body is arranged on the base, and the air cooling module is arranged on one side of the fixture body, and the air cooling module blows and removes chips towards the fixture body; The upper surface of the base is provided with a processing table, and the upper surface of the processing table is provided with a processing air hole; The fixture body includes a fixture panel and a suction assembly, and the two sides of the fixture panel are provided with a first fixture baffle and a second fixture baffle to form a workbench for processing of the fixture body; The air cooling module includes a gas pipe connecting seat, an air inlet and a vacuum interface; the gas pipe connecting seat is arranged on the fixture body, the air inlet is arranged on the gas pipe connecting seat, and the vacuum interface is arranged on one side of the gas pipe connecting seat close to the air inlet; the air inlet is provided with a plurality of air inlets, and a vacuum interface is arranged between adjacent two groups of air inlets.

2. The air-cooled swarf-extracting metalwork jig according to claim 1, characterized by: A chip removal groove is arranged between the first fixture baffle and the workbench, and a plurality of chip removal holes are distributed along the first fixture baffle.

3. The air-cooled swarf-extracting metalwork jig according to claim 2, characterized by: A blowing groove is arranged between the second fixture baffle and the workbench, and one end of the air cooling module is communicated with the blowing groove, so that the blowing groove removes chips towards the chip removal groove.

4. The air-cooled swarf-extracting metalwork jig according to claim 3, characterized by: The suction assembly is arranged on the workbench, and the suction assembly includes a first suction area and a second suction area, a plurality of groups of the first suction area and the second suction area are arranged on the workbench, the first suction area and the second suction area are arranged alternately, a plurality of first suction holes are arranged on the first suction area, and the plurality of first suction holes are uniformly distributed on the first suction area.

5. The air-cooled swarf-extracting metalwork jig according to claim 4, characterized by: A second suction panel is arranged on the second suction area, the second suction area and the second suction panel are provided with a plurality of second suction holes, and the plurality of second suction holes are uniformly distributed on the second suction area and the second suction panel.

6. The air-cooled swarf-extracting metalwork jig according to claim 5, characterized by: A sealing groove is formed between the second suction panel and the second suction area, and the sealing groove is used for sealing the second suction panel and the second suction area.

7. The air-cooled swarf-extracting metalwork jig according to claim 1, characterized by: One end of the air inlet is communicated with the blowing groove, and one end of the vacuum interface is connected with the first suction hole and the second suction hole.