Aluminum alloy automobile part machining platform

By designing components such as the tool head cavity, placement cavity, and buffer table on the aluminum alloy automotive parts processing platform, the problem of time-consuming tool head replacement is solved, an efficient and stable processing process is achieved, and the processing accuracy and equipment adaptability are improved.

CN223368766UActive Publication Date: 2025-09-23JIANGSU RUIFU PRECISION MASCH CO LTD
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Patent Information

Application Number
CN202422512305.2
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-10-17
Publication Date
2025-09-23
Estimated Expiration
2034-10-17

AI Technical Summary

Technical Problem

Existing aluminum alloy automotive parts processing platforms require repeated starting and stopping of the equipment when replacing engraving tool heads, which wastes time and manpower.

Method used

A processing platform for aluminum alloy automotive parts was designed, which includes components such as a tool head cavity, a placement cavity, a buffer table, a buffer spring, an insert head and a ring groove. It provides precise docking and positioning functions, simplifies the tool head replacement process, improves processing accuracy and stability, and improves power transmission efficiency through the nested connection between the transmission cavity and the tool head.

Benefits of technology

It reduces processing errors and downtime, improves processing quality and efficiency, enhances the adaptability and flexibility of the platform, reduces the difficulty of equipment maintenance and repair, and provides a safer working environment.

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Abstract

The utility model discloses an aluminum alloy automobile part machining platform which comprises a machining platform body, a machining table is arranged above the machining platform body, a movable portal frame is arranged at the top of the machining platform body, a transmission cavity is formed in the left side of the movable portal frame, and a tool bit is arranged below the transmission cavity. The tool bit cavity is formed in the right side of the upper portion of the machining platform body, the sliding cover is arranged on the upper portion of the tool bit cavity, the containing cavities are formed in the tool bit cavity in an array mode, the tool bits are arranged in the containing cavities, the tool bits can be conveniently installed and replaced through combination of the embedded heads and the annular grooves, the tool bit replacing process is simplified through the design, and the tool bit replacing efficiency is improved. The maintenance efficiency is improved, the downtime is shortened, the design of the containing cavity allows the tool bits of different types and specifications to be contained, so that the platform can conduct various machining tasks, the adaptability and flexibility of the platform are improved, and the downtime of equipment is shortened.
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Description

Technical Field

[0001] The utility model belongs to the technical field related to aluminum alloy processing, and particularly relates to an aluminum alloy automobile parts processing platform. Background Art

[0002] The aluminum alloy automotive parts processing platform is a comprehensive manufacturing and processing system specifically designed for the production and processing of automotive aluminum alloy parts. It integrates multiple processing functions, including cutting, forming, drilling, milling and turning of aluminum alloy materials, to produce various automotive aluminum alloy parts. It is designed to meet the precise processing needs of aluminum alloy parts in the automotive manufacturing process.

[0003] However, the existing aluminum alloy automotive parts processing has different processing requirements during processing and engraving. Different processing requirements require the replacement of different engraving tool heads. When replacing the tool heads, the equipment needs to be repeatedly started and stopped, and manual replacement is required, which not only wastes time but also consumes manpower. Utility Model Content

[0004] The purpose of the utility model is to provide an aluminum alloy automobile parts processing platform to solve the problem raised in the above background technology that the existing aluminum alloy automobile parts processing has different processing requirements during processing and engraving, and different processing requirements require the replacement of different engraving tool heads. When replacing the tool heads, it is necessary to repeatedly start and stop the equipment and perform manual replacement, which not only wastes time but also consumes manpower.

[0005] To achieve the above-mentioned purpose, the present utility model provides the following technical solutions: an aluminum alloy automobile parts processing platform, comprising a processing platform body;

[0006] A processing table is provided above the processing platform body, a movable gantry is provided at the top of the processing platform body, a transmission cavity is provided at the left side of the movable gantry, and a cutter head is provided below the transmission cavity;

[0007] A tool head cavity is provided at the right position above the processing platform body, a sliding cover is provided above the tool head cavity, and placement cavities are provided in an array at positions inside the tool head cavity.

[0008] Preferably, a cutter head is provided at an inner position of the placement cavity, an inner hole is provided at a middle position inside the placement cavity, a buffer platform is provided at an inner position of the placement cavity, and a buffer spring is provided at a bottom position of the buffer platform.

[0009] Preferably, an insert is provided at the top of the cutter head, an annular groove is provided at the middle of the cutter head, and a positioning hole is provided above the annular groove.

[0010] Preferably, the transmission cavity and the cutter head are connected by nesting annular grooves, and four positioning holes are provided in the annular array.

[0011] Preferably, a slide rail is provided at the right position above the movable gantry, and a clamping member is provided at the right position of the transmission cavity, and the clamping member is slidably connected to the slide rail.

[0012] Preferably, a foot is provided at the bottom of the movable gantry, and a sliding cavity is provided at the side of the processing platform body, and the sliding cavity is slidably connected to the foot.

[0013] Preferably, a slide groove is provided at a side position of the cutter head cavity, the slide cover is slidably connected to the slide groove, and the aluminum alloy automobile parts processing platform is powered by an external power supply.

[0014] Compared with the existing technology, the utility model provides an aluminum alloy automobile parts processing platform with the following beneficial effects:

[0015] Through the arrangement of the cutter head cavity, placement cavity, inner hole, buffer table, buffer spring, insert head, ring groove and positioning hole, the ring groove and positioning hole provide precise docking and positioning functions, ensuring the stability and accuracy of the cutter head in the transmission cavity. This design helps to reduce machining errors and improve machining accuracy. The buffer table and buffer spring effectively absorb the vibration and impact generated during the machining process. This buffering design helps to improve machining stability and reduce wear on the cutter head and workpiece, thereby improving machining quality and tool life. Through the combination of insert head and ring groove, the cutter head can be easily installed and replaced. This design simplifies the cutter head replacement process, improves maintenance efficiency and reduces downtime. The design of the placement cavity allows for the accommodation of cutter heads of different types and specifications, which enables the platform to perform a variety of machining tasks and improves the adaptability and flexibility of the platform. The transmission cavity is nested with the cutter head through the ring groove, making the power transmission of the transmission system more stable and efficient. This design reduces friction and energy loss in the transmission system and improves machining efficiency. The design of various components such as the cutter head cavity, placement cavity, buffer table, etc. makes maintenance and repair work easier, allowing operators to quickly inspect and replace damaged parts, reducing equipment downtime.

[0016] Through the setting of slide rails, clamps, base feet and sliding cavities, the mobile gantry achieves high-precision linear motion through the slide rails. This design reduces the friction and deviation of the gantry during movement, thereby improving processing accuracy and stability. The sliding connection between the clamps and the slide rails allows the gantry to move precisely along the horizontal axis. This multi-axis motion capability improves the flexibility and processing range of the platform, enabling the platform to perform more complex processing tasks. The base feet provide support for the main body of the processing platform, ensuring the stability and firmness of the processing platform. This stable frame structure helps to reduce vibration during processing and improve processing quality and efficiency. The sliding connection design between the sliding cavity and the base feet allows the base feet to be easily installed and disassembled. This design simplifies the basic installation process of the platform and also facilitates the future movement and maintenance of the equipment. The design of the base feet and sliding cavities increases the overall structural strength of the processing platform, reduces the safety risks caused by equipment instability, and provides a safer working environment for operators. BRIEF DESCRIPTION OF THE DRAWINGS

[0017] Figure 1 It is a structural diagram of the present utility model.

[0018] Figure 2 It is a structural diagram of the processing platform body in this utility model.

[0019] Figure 3 It is a structural schematic diagram of the cutter head in the utility model.

[0020] Figure 4 It is a structural schematic diagram of the placement cavity in the utility model.

[0021] Figure 5 It is a structural diagram of the sliding cover in the utility model.

[0022] In the figure: 1. Processing platform body; 2. Slide cavity; 3. Cutter head cavity; 4. Processing table; 5. Mobile gantry; 6. Slide rail; 7. Connector; 8. Transmission cavity; 9. Cutter head; 10. Base; 11. Slide cover; 12. Ring groove; 13. Positioning hole; 14. Insert head; 15. Placement cavity; 16. Buffer table; 17. Inner hole; 18. Buffer spring; 19. Slide groove. DETAILED DESCRIPTION

[0023] The following will be combined with the drawings in the embodiments of the present invention to clearly and completely describe the technical solutions in the embodiments of the present invention. Obviously, the embodiments described are only part of the embodiments of the present invention, not all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without making creative efforts are within the scope of protection of the present invention.

[0024] The utility model provides Figure 1-5 The illustrated aluminum alloy automobile parts processing platform includes a processing platform body 1;

[0025] A processing table 4 is provided above the processing platform body 1, a movable gantry 5 is provided at the top of the processing platform body 1, a transmission cavity 8 is provided at the left side of the movable gantry 5, and a cutter head 9 is provided below the transmission cavity 8;

[0026] A tool head cavity 3 is provided at the right position above the processing platform body 1 , a sliding cover 11 is provided above the tool head cavity 3 , and placement cavities 15 are provided in an array inside the tool head cavity 3 .

[0027] A cutter head 9 is provided at an inner position of the placement cavity 15 , an inner hole 17 is provided at a middle position inside the placement cavity 15 , a buffer platform 16 is provided at an inner position of the placement cavity 15 , and a buffer spring 18 is provided at a bottom position of the buffer platform 16 .

[0028] An insert 14 is provided at the top of the cutter head 9 , an annular groove 12 is provided at the middle of the cutter head 9 , and a positioning hole 13 is provided above the annular groove 12 .

[0029] The transmission cavity 8 and the cutter head 9 are nested and connected via an annular groove 12 , and four positioning holes 13 are provided in an annular array.

[0030] A slide rail 6 is provided at the right position above the movable gantry 5 , and a clamping member 7 is provided at the right position of the transmission cavity 8 , and the clamping member 7 is slidably connected to the slide rail 6 .

[0031] A foot 10 is provided at the bottom of the movable gantry 5 , and a sliding cavity 2 is provided at the side of the processing platform body 1 , and the sliding cavity 2 is slidably connected to the foot 10 .

[0032] A slide groove 19 is provided at the side of the cutter head cavity 3, and the slide cover 11 is slidably connected to the slide groove 19. The aluminum alloy automobile parts processing platform is powered by an external power supply.

[0033] In this embodiment, a specific implementation step of an aluminum alloy automobile parts processing platform is as follows: the aluminum alloy raw material or workpiece is placed on the processing table 4 and fixed to ensure its stable position; according to the processing requirements, the mobile gantry 5 is moved to the appropriate position; the slide rail 6 and the clamping member 7 ensure the stable movement of the gantry; the position of the cutter head in the cutter head cavity 3 is adjusted by the slide cover 11 and the slide groove 19 to align it with the workpiece; the transmission system of the lathe or processing platform is started, the cutter head 9 is connected to the transmission cavity 8 through the annular groove 12 and starts operation; the depth and position of the cutter head 9 are adjusted as needed to ensure Ensure that the insert head 14 and the annular groove 12 of the cutter head 9 are correctly docked, and the buffer platform 16 and the buffer spring 18 of the cutter head 9 provide sufficient support and buffering, and start the processing process. The cutter head 9 cuts or performs other processing operations on the aluminum alloy workpiece through the movement of the transmission cavity 8. After the processing is completed, stop the transmission system and the mobile gantry 5, close the processing platform, remove the aluminum alloy workpiece on the processing table 4, check whether the processing effect meets the expectations, clean the processing platform to ensure that there is no aluminum chips or other waste residue, check the wear of the cutter head 9 and other components, and perform necessary maintenance and replacement.

[0034] like Figure 3-5 As shown, a cutter head cavity 3 is provided at the right position above the processing platform body 1, a sliding cover 11 is provided at the position above the cutter head cavity 3, a placement cavity 15 is provided in an array at the internal position of the cutter head cavity 3, a cutter head 9 is provided at the internal position of the placement cavity 15, an inner hole 17 is provided at the middle position inside the placement cavity 15, a buffer platform 16 is provided at the internal position of the placement cavity 15, a buffer spring 18 is provided at the bottom position of the buffer platform 16, an embedded head 14 is provided at the top position of the cutter head 9, an annular groove 12 is provided at the middle position of the cutter head 9, a positioning hole 13 is provided at the position above the annular groove 12, the transmission cavity 8 and the cutter head 9 are nested and connected through the annular groove 12, and four positioning holes 13 are provided in a circular array.

[0035] Preferably, the annular groove 12 and the positioning hole 13 provide precise docking and positioning functions, ensuring the stability and accuracy of the cutter head 9 in the transmission cavity 8. This design helps to reduce machining errors and improve machining accuracy. The buffer table 16 and the buffer spring 18 effectively absorb the vibration and impact generated during the machining process. This buffer design helps to improve machining stability and reduce wear on the cutter head 9 and the workpiece, thereby improving machining quality and tool life. Through the combination of the insert head 14 and the annular groove 12, the cutter head 9 can be easily installed and replaced. This design simplifies the replacement process of the cutter head 9 and improves maintenance efficiency. , reducing downtime, the design of the placement cavity 15 allows for accommodating cutter heads 9 of different types and specifications, which enables the platform to perform a variety of processing tasks and improves the adaptability and flexibility of the platform, and the transmission cavity 8 is nested with the cutter head 9 through the annular groove 12, making the power transmission of the transmission system more stable and efficient. This design reduces the friction and energy loss of the transmission system and improves processing efficiency. The design of various components such as the cutter head cavity 3, the placement cavity 15, the buffer table 16, etc. makes maintenance and inspection work easier, and the operator can quickly check and replace damaged parts, reducing the downtime of the equipment.

[0036] like Figure 1 and Figure 2 As shown, a slide rail 6 is provided at the right position above the movable gantry 5, a clamping part 7 is provided at the right position of the transmission cavity 8, the clamping part 7 is slidably connected to the slide rail 6, a base 10 is provided at the bottom position of the movable gantry 5, a slide cavity 2 is provided at the side position of the processing platform body 1, and the slide cavity 2 is slidably connected to the base 10.

[0037] Preferably, the mobile gantry 5 achieves high-precision linear motion through the slide rail 6. This design reduces the friction and deviation of the gantry during movement, thereby improving processing accuracy and stability. The sliding connection between the clamp 7 and the slide rail 6 allows the gantry to move precisely along the horizontal axis. This multi-axis motion capability improves the flexibility and processing range of the platform, enabling the platform to perform more complex processing tasks. The base 10 provides support for the processing platform body 1, ensuring the stability and firmness of the processing platform. This stable frame structure helps to reduce vibration during processing and improve processing quality and efficiency. The sliding connection design between the sliding cavity 2 and the base 10 allows the base to be easily installed and disassembled. This design simplifies the basic installation process of the platform and also facilitates the future movement and maintenance of the equipment. The design of the base 10 and the sliding cavity 2 increases the overall structural strength of the processing platform, reduces the safety risks caused by equipment instability, and provides a safer working environment for operators.

[0038] like Figure 1 and Figure 5As shown, a slide groove 19 is provided at the side of the cutter head cavity 3, the slide cover 11 is slidably connected to the slide groove 19, and the aluminum alloy automobile parts processing platform is powered by an external power supply.

[0039] Optionally, the sliding connection design between the sliding cover 11 and the slide groove 19 provides smooth and stable movement, so that the cutter head 9 position can be accurately adjusted in the cutter head cavity 3 during operation. This design reduces mechanical friction and motion errors, and improves processing accuracy. The sliding connection between the sliding cover 11 and the slide groove 19 makes the adjustment of the cutter head cavity 3 easier and faster. The operator can quickly adjust the position of the cutter head 9 without complicated operations or tools, which simplifies the maintenance and operation process.

[0040] Finally, it should be noted that the above is only a preferred embodiment of the present invention and is not intended to limit the present invention. Although the present invention has been described in detail with reference to the aforementioned embodiments, those skilled in the art can still modify the technical solutions described in the aforementioned embodiments or make equivalent replacements for some of the technical features therein. Any modifications, equivalent replacements, improvements, etc. made within the spirit and principles of the present invention should be included in the scope of protection of the present invention.

Claims

1. A processing platform for aluminum alloy automobile parts, comprising a processing platform body (1); A processing platform (4) is provided above the processing platform body (1), a movable gantry (5) is provided at the top of the processing platform body (1), a transmission chamber (8) is provided at the left side of the movable gantry (5), and a cutter head (9) is provided below the transmission chamber (8); Its characteristics are: A tool head cavity (3) is provided at the right position above the processing platform body (1), a sliding cover (11) is provided above the tool head cavity (3), and placement cavities (15) are provided in an array at positions inside the tool head cavity (3).

2. The aluminum alloy automobile parts processing platform according to claim 1, characterized in that: A cutter head (9) is provided at an internal position of the placement cavity (15), an inner hole (17) is provided at a middle position inside the placement cavity (15), a buffer platform (16) is provided at an internal position of the placement cavity (15), and a buffer spring (18) is provided at a bottom position of the buffer platform (16).

3. The aluminum alloy automobile parts processing platform according to claim 2, characterized in that: An insert (14) is provided at the top of the cutter head (9), an annular groove (12) is provided at the middle of the cutter head (9), and a positioning hole (13) is provided above the annular groove (12).

4. The aluminum alloy automobile parts processing platform according to claim 3, characterized in that: The transmission cavity (8) and the cutter head (9) are nested and connected via an annular groove (12), and four positioning holes (13) are provided in an annular array.

5. The aluminum alloy automobile parts processing platform according to claim 1, characterized in that: A slide rail (6) is provided at the right position above the movable gantry (5), and a clamping member (7) is provided at the right position of the transmission chamber (8), and the clamping member (7) is slidably connected to the slide rail (6).

6. The aluminum alloy automobile parts processing platform according to claim 5, characterized in that: A foot (10) is provided at the bottom of the movable gantry (5), and a sliding cavity (2) is provided at the side of the processing platform body (1), wherein the sliding cavity (2) is slidably connected to the foot (10).

7. The aluminum alloy automobile parts processing platform according to claim 1, characterized in that: A slide groove (19) is provided at a side position of the cutter head cavity (3), the slide cover (11) is slidably connected to the slide groove (19), and the aluminum alloy automobile parts processing platform is powered by an external power supply.