Stamping element transfer device and mobile phone element machining system

By designing a stamping element transfer device including a carrier, a transmission mechanism and a drive mechanism, the problem of low transport efficiency of stamping element in the prior art is solved, and an efficient, stable and compatible transport process is achieved, which is suitable for production enterprises of different sizes.

CN222944364UActive Publication Date: 2025-06-06WUJIANG LEO IND CO LTD
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Patent Information

Application Number
CN202421571651.1
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-07-04
Publication Date
2025-06-06
Estimated Expiration
2034-07-04

AI Technical Summary

Technical Problem

In the prior art, stamping components have low efficiency in transport, insufficient compatibility and stability, and high investment cost of automation equipment and large space occupies, making them not suitable for small factories or enterprises with smaller production scales.

Method used

A stamping element transfer device is designed, including a carrier, a transmission mechanism and a drive mechanism. The transmission mechanism includes a first channel, a second channel and a connecting platform. The driving mechanism moves between the transmission mechanism through a moving module and a fork drive vehicle, realizing the process of empty vehicle transport, sheet stamping element blanking loading and full vehicle transport.

Benefits of technology

It improves the transport efficiency of stamping components, enhances compatibility and stability, reduces the cost of equipment investment, is suitable for small factories or enterprises with smaller production scales, and protects product quality during the transport process.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model provides a stamping element transfer device and a mobile phone element processing system. The stamping element transfer device comprises a carrier; the conveying mechanism comprises a first channel, a second channel and a connecting platform, and the connecting platform communicates with the first channel and the second channel; the driving mechanism comprises a moving module and a shifting fork, and the shifting fork drives the carrier to move between the connecting platform and the second channel through the moving module. The carrier is driven by the driving mechanism to move along the conveying mechanism, the driving mechanism and the carrier can be stably connected, meanwhile, the carrier can be compatible with a plurality of elements to be conveyed, the conveying efficiency is improved, meanwhile, the conveying mechanism can be highly matched with external discharging equipment, and the conveying efficiency is improved. In the one-time transfer process, the processes of no-load tool transfer, sheet stamping element blanking loading and full-material carrier transfer can be sequentially achieved, and compared with a conventional element transfer device, the sheet stamping element transfer device has the advantages of being high in compatibility, stable in transfer process, high in cooperation degree of all the mechanisms, high in transfer efficiency and the like.
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Description

Technical Field

[0001] The utility model relates to the technical field of material transfer equipment, in particular to a stamping component transfer device and a mobile phone component processing system. Background Art

[0002] In the modern mobile phone manufacturing industry, the processing and manufacturing of mobile phone parts is a key link. Especially when manufacturing mobile phone sheet parts, they usually need to be formed through stamping process. The stamping process can press metal sheets into the required shape and size through stamping dies to meet the design requirements of mobile phone parts. However, after the stamping process, the unified and regular transportation of sheet products has always been one of the difficulties in the industry at this stage.

[0003] In the existing processing of sheet mobile phone parts, due to the large output of production components, transfer efficiency is crucial. However, there is currently no compatible dedicated material transfer and collection equipment in the industry. Therefore, not only the transfer efficiency is first, but also the transfer compatibility and stability need to be improved. It even often requires manual assistance, which is not only difficult to match the production efficiency of the production line, but also prone to errors. Secondly, the investment cost of automated equipment is high, and it takes up a large space, which is not suitable for small factories or companies with small production scales. In addition, unsuitable equipment may also cause damage to sheet products during the transfer process, affecting the quality and service life of the products. Summary of the invention

[0004] Therefore, the technical problem to be solved by the utility model is to overcome the problem of low stamping component transfer efficiency in the prior art and to provide a stamping component transfer device and a mobile phone component processing system.

[0005] In order to solve the above technical problems, the utility model provides a stamping component transfer device, which includes: a carrier; a transmission mechanism, the transmission mechanism includes a first channel, a second channel and a connecting platform, the connecting platform is connected to the discharge end of the first channel and the feed end of the second channel, an empty carrier enters the connecting platform along the first channel to load materials, and enters the second channel after being full; a driving mechanism, the driving mechanism is arranged on one side of the second channel, and includes a moving module and a fork, the fork is connected to the moving module, and the moving module drives the carrier to move between the connecting platform and the second channel.

[0006] In one embodiment of the present invention, the carrier is provided with a plug hole for connecting the shift fork.

[0007] In one embodiment of the present invention, the first channel and the second channel both extend along a first direction, and the transmission mechanism further comprises a feeding plate, which is disposed on the connecting platform and moves along a second direction.

[0008] In one embodiment of the present invention, the feeding plate includes a pushing portion and an operating portion, the operating portion is connected to the pushing portion, and the pushing portion abuts against the empty material carrier to move the empty material carrier along the second direction.

[0009] In one embodiment of the utility model, a slide groove is provided on the connecting platform, and a slider is provided on the feeding plate, and the slider is correspondingly slidably embedded in the slide groove.

[0010] In one embodiment of the utility model, the movable module includes a transverse moving module and a lifting module, wherein the transverse moving module extends along a first direction, the lifting module is slidably connected to the transverse moving module, and extends along a third direction, and the shift fork is slidably connected to the lifting module.

[0011] In one embodiment of the utility model, the connecting platform includes a connecting part, a transmission part and a loading part, the connecting part is arranged between the first channel and the second channel, the loading part is arranged close to an external blanking device, and the transmission part is arranged between the connecting part and the loading part.

[0012] In one embodiment of the utility model, it also includes a cache mechanism, which is arranged between the loading part and the connecting part, and includes a cache table, a filling plate and a cache driver. The filling plate, the cache table and the cache driver are arranged in sequence along the second direction and move synchronously along the second direction, wherein the functional surfaces of the filling plate, the cache table, the loading part and the connecting part are located at the same horizontal height.

[0013] In an embodiment of the present invention, the cache mechanism further includes a cache guide rail, the cache guide rail extends along the second direction, and two sides of the cache guide rail in a width direction are respectively connected to the loading portion and the transmission portion.

[0014] The utility model also provides a mobile phone component processing system, which comprises the above-mentioned stamping component transfer device.

[0015] The above technical solution of the utility model has the following advantages compared with the prior art:

[0016] The stamping component transfer device and mobile phone component processing system described in the utility model drive the carrier to move along the transmission mechanism through the driving mechanism. During this process, not only can the driving mechanism and the carrier be stably connected, but the carrier can also be compatible with multiple components to be transferred, thereby greatly improving the transfer efficiency. At the same time, the transmission mechanism of the present application can be highly coordinated with the external blanking equipment, so that in one transfer process, the processes of empty carrier transfer, sheet stamping component blanking loading and full carrier transfer can be realized in sequence. Compared with conventional component transfer devices, the present application has the significant advantages of high compatibility, stable transfer process, high degree of coordination among various mechanisms and high transfer efficiency. BRIEF DESCRIPTION OF THE DRAWINGS

[0017] In order to make the content of the utility model easier to understand, the utility model is further described in detail according to the specific embodiments of the utility model in combination with the accompanying drawings, wherein

[0018] Figure 1 It is a schematic diagram of the three-dimensional structure of the stamping component transfer device in the preferred embodiment of the utility model;

[0019] Figure 2 yes Figure 1 The enlarged schematic diagram at A in the middle;

[0020] Figure 3 yes Figure 1 A schematic diagram of the three-dimensional structure of the stamping component transfer device in another working state;

[0021] Figure 4 yes Figure 3 Enlarged schematic diagram of point B in the middle.

[0022] Explanation of the reference numerals in the specification: 100, transmission mechanism; 110, first channel; 120, second channel; 130, connection platform; 131, loading part; 132, connecting part; 133, transmission part; 134, slide; 140, feeding plate; 141, pushing part; 142, operating part; 200, driving mechanism; 210, moving module; 211, transverse movement module; 212, lifting module; 220, fork; 230, connecting frame; 300, cache mechanism; 310, cache table; 320, filling plate; 330, cache driver; 340, cache guide rail; 400, carrier; 410, plug hole; 420, mounting column; 500, rack; X, first direction; Y, second direction; Z, third direction. DETAILED DESCRIPTION

[0023] The present invention will be further described below in conjunction with the accompanying drawings and specific embodiments so that those skilled in the art can better understand the present invention and implement it, but the embodiments are not intended to limit the present invention.

[0024] Embodiment 1

[0025] See also Figures 1 to 4 As shown, the present embodiment provides a stamping component transfer device, which includes: a carrier 400; a transmission mechanism 100, the transmission mechanism 100 includes a first channel 110, a second channel 120 and a connecting platform 130, the connecting platform 130 connects the discharge end of the first channel 110 and the feed end of the second channel 120, and an empty carrier 400 enters the connecting platform 130 along the first channel 110 to be loaded with materials, and enters the second channel 120 after being full of materials; a driving mechanism 200, the driving mechanism 200 is arranged on one side of the second channel 120, and includes a moving module 210 and a fork 220, the fork 220 is connected to the moving module 210, and drives the carrier 400 to move between the connecting platform 130 and the second channel 120 through the moving module 210.

[0026] The stamping component transfer device described in the present invention drives the carrier 400 to move along the transmission mechanism 100 through the driving mechanism 200. During this process, not only can the driving mechanism 200 and the carrier 400 be stably connected, but the carrier 400 can also be compatible with multiple components to be transferred, thereby greatly improving the transfer efficiency. At the same time, the transmission mechanism 100 of the present application can be highly coordinated with the external blanking equipment, so that in one transfer process, the processes of empty carrier 400 transfer, sheet stamping component blanking loading and full carrier 400 transfer can be realized in turn. Compared with conventional component transfer devices, the present application has the significant advantages of high compatibility, stable transfer process, high degree of coordination among various mechanisms and high transfer efficiency.

[0027] See also Figure 1 As shown, for the convenience of description, in this embodiment, the length direction of the device is defined as a first direction X, the width direction of the device is defined as a second direction Y, and the height direction of the device is defined as a third direction Z, wherein the first direction X, the second direction Y and the third direction Z are perpendicular to each other, and the first direction X and the second direction Y are located in the same plane.

[0028] This embodiment also includes a frame 500, a transmission mechanism 100 and a driving mechanism 200 are respectively arranged on the frame 500, and the carrier 400 moves in the transmission mechanism 100, wherein the transmission mechanism 100 is used to provide a material transmission channel, and the driving mechanism 200 is used to provide a driving force for the carrier 400 in the transmission channel. A plurality of components to be transferred are stacked and placed in the carrier 400, and the transfer process is realized by synchronously moving with the carrier 400.

[0029] Specifically, the first channel 110 and the second channel 120 in this embodiment both extend along the first direction X, and the material transmission directions of the two are opposite. The empty material carrier 400 enters the transmission mechanism 100 from the first channel 110 and then enters the connecting platform 130. The transmission mechanism 100 also includes a feeding plate 140, which is arranged on the connecting platform 130 and moves along the second direction Y. Based on this, the feeding plate 140 can push the empty material carrier 400 output from the first channel 110 to the second channel 120, thereby realizing the material transmission between the first channel 110 and the second channel 120. Further, the feeding plate 140 includes a pushing portion 141 and an operating portion 142, and the operating portion 142 is connected to the pushing portion 141. The pushing portion 141 abuts against the empty material carrier 400 to move the empty material carrier 400 along the second direction Y. The operating portion 142 in this embodiment is connected to an external power source, and the utility model does not specifically limit the type of the external power source. Furthermore, a slide groove 134 is provided on the connecting platform 130 , and a slider is provided on the feeding plate 140 . The slider is correspondingly slidably embedded in the slide groove 134 .

[0030] See also Figure 2 or Figure 4 As shown, the connecting platform 130 includes a connecting portion 132, a transmission portion 133 and a loading portion 131, the connecting portion 132 is arranged between the first channel 110 and the second channel 120, the loading portion 131 is arranged close to the external blanking equipment, and the transmission portion 133 is arranged between the connecting portion 132 and the loading portion 131. Specifically, the connecting platform 130 is configured as an "L"-shaped element as a whole, wherein the connecting portion 132 extends along the second direction Y, and is used to connect the first channel 110 and the second channel 120, and the transmission portion 133 extends along the first direction X and is located on the same straight line as the second channel 120, and is used to move the empty material carrier 400 from the connecting portion 132 to the loading portion 131 through the driving mechanism 200, or to move the full material carrier 400 from the loading portion 131 to the second channel 120 through the driving mechanism 200. It is magnificently arranged below the external stamping blanking device. When the carrier 400 is located in the loading portion 131, the sheet components can fall down one by one and be stacked in the carrier 400.

[0031] Since it takes a certain amount of time to stack and blank the components to be transferred, in order to further improve the efficiency of the transfer process of the carrier 400, a cache mechanism 300 is also provided in the present embodiment. When the current carrier 400 is in a loading state, the next carrier 400 can be moved to the cache mechanism 300 for preparatory waiting. Thus, after the current carrier 400 is full, the next empty carrier 400 can reach the loading section 131 in a short time. On the one hand, it not only shortens the movement time of the carrier 400, but also, on the other hand, the carrier 400 can quickly switch the external blanking equipment without stopping and waiting, thereby greatly improving the transfer efficiency of the components to be transferred. Specifically, the cache mechanism 300 is arranged between the loading part 131 and the connecting part 132, and includes a cache table 310, a filling plate 320 and a cache driver 330. The filling plate 320, the cache table 310 and the cache driver 330 are arranged in sequence along the second direction Y and move synchronously along the second direction Y. The functional surfaces of the filling plate 320, the cache table 310, the loading part 131 and the connecting part 132 are located at the same horizontal height, so that when the cache moves, the filling plate 320 can also connect the transmission part 133 and the loading part 131, thereby always ensuring that the moving path of the carrier 400 is unobstructed. Further, the cache mechanism 300 also includes a cache guide rail 340, which extends along the second direction Y, and the two sides of the cache guide rail 340 in the width direction are respectively connected to the loading part 131 and the transmission part 133. In the present application, the number of carriers 400 accommodated in the cache mechanism 300 and the moving operation sequence of the cache mechanism 300 to cooperate with the loading portion 131 can be adaptively set according to actual use requirements, and the present invention does not impose specific restrictions on this.

[0032] See also Figures 1 to 4 As shown, a plug-in hole 410 and a mounting column 420 are provided on the carrier 400, wherein the mounting column 420 extends along a third direction Z, and the components to be transferred output by an external blanking device can be sleeved on the mounting column 420, and the plug-in hole 410 is used for connection with the fork 220. When the fork 220 is inserted into the plug-in hole 410, it can drive the carrier 400 to move synchronously.

[0033] The movable module 210 in this embodiment includes a transverse moving module 211 and a lifting module 212, wherein the transverse moving module 211 extends along a first direction X, the lifting module 212 is slidably connected to the transverse moving module 211, and extends along a third direction Z, the shift fork 220 is slidably connected to the lifting module 212, and further, the driving mechanism 200 in this embodiment also includes a connecting frame 230, and the shift fork 220 is connected to the lifting module 212 through the connecting frame 230, thereby, the shift fork 220 in this embodiment can realize a two-dimensional movement process of driving the carrier 400.

[0034] Embodiment 2

[0035] This embodiment provides a mobile phone component processing system, which includes the stamping component transfer device described in the first embodiment.

[0036] In summary, the stamping component transfer device and mobile phone component processing system described in the present invention drive the carrier 400 to move along the transmission mechanism 100 through the driving mechanism 200. During this process, not only can the driving mechanism 200 and the carrier 400 be stably connected, but the carrier 400 can also be compatible with multiple components to be transferred, thereby greatly improving the transfer efficiency. At the same time, the transmission mechanism 100 of the present application can be highly coordinated with the external blanking equipment, so that in one transfer process, the processes of empty carrier 400 transfer, sheet stamping component blanking loading and full carrier 400 transfer can be realized in turn. Compared with conventional component transfer devices, the present application has the significant advantages of high compatibility, stable transfer process, high degree of coordination among various mechanisms and high transfer efficiency.

[0037] Obviously, the above embodiments are merely examples for the purpose of clear explanation and are not intended to limit the implementation methods. For those skilled in the art, other different forms of changes or modifications can be made based on the above description. It is not necessary and impossible to list all the implementation methods here. The obvious changes or modifications derived from these are still within the scope of protection of the invention of the utility model.

Claims

1. A stamping component transfer device, characterized in that: include: Vehicles; A transmission mechanism, the transmission mechanism comprising a first channel, a second channel and a connecting platform, the connecting platform connecting the discharge end of the first channel and the feed end of the second channel, an empty material carrier enters the connecting platform along the first channel to be loaded with materials, and enters the second channel after being full of materials; The driving mechanism is arranged at one side of the second channel, and includes a moving module and a shift fork. The shift fork is connected to the moving module and drives the carrier to move between the connecting platform and the second channel through the moving module.

2. A stamping component transfer device according to claim 1, characterized in that: The carrier is provided with a plug hole for the shift fork to be connected.

3. A stamping component transfer device according to claim 1, characterized in that: The first channel and the second channel both extend along a first direction. The transmission mechanism further includes a feeding plate, which is disposed on the connecting platform and moves along a second direction.

4. A stamping component transfer device according to claim 3, characterized in that: The feeding plate includes a pushing portion and an operating portion, wherein the operating portion is connected to the pushing portion, and the pushing portion abuts against an empty material carrier to move the empty material carrier along a second direction.

5. A stamping component transfer device according to claim 4, characterized in that: The connecting platform is provided with a slide groove, the feeding plate is provided with a slider, and the slider is correspondingly slidably embedded in the slide groove.

6. A stamping component transfer device according to claim 1, characterized in that: The moving module includes a transverse moving module and a lifting module, wherein the transverse moving module extends along a first direction, the lifting module is slidably connected to the transverse moving module and extends along a third direction, and the shift fork is slidably connected to the lifting module.

7. A stamping component transfer device according to claim 1, characterized in that: The connecting platform includes a connecting portion, a transmission portion and a loading portion. The connecting portion is arranged between the first channel and the second channel. The loading portion is arranged close to an external blanking device. The transmission portion is arranged between the connecting portion and the loading portion.

8. A stamping component transfer device according to claim 7, characterized in that: It also includes a cache mechanism, which is arranged between the loading part and the connecting part, and includes a cache table, a filling plate and a cache driver. The filling plate, the cache table and the cache driver are arranged in sequence along the second direction and move synchronously along the second direction, wherein the functional surfaces of the filling plate, the cache table, the loading part and the connecting part are located at the same horizontal height.

9. A stamping component transfer device according to claim 8, characterized in that: The cache mechanism further includes a cache guide rail extending along the second direction, and two sides of the cache guide rail in a width direction are respectively connected to the loading portion and the transmission portion.

10. A mobile phone component processing system, characterized in that: A stamping component transfer device comprising the device described in any one of claims 1 to 9.