Automatic turnover mechanism for removing electrophoresis layer through laser etching

The automatic flipping mechanism enables laser engraving on different planes of the product, solving the problems of error and long time caused by multiple clamping in traditional processes, and improving laser engraving efficiency.

CN121152129APending Publication Date: 2025-12-16吉达克精密金属科技(常熟)有限公司
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Patent Information

Application Number
CN202410756897.4
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2024-06-13
Publication Date
2025-12-16

AI Technical Summary

Technical Problem

In traditional processes, different fixtures need to be set up separately for laser engraving on different planes of the product, which leads to errors due to multiple clamping and long processing time, thus reducing laser engraving efficiency.

Method used

The automatic flipping mechanism for laser engraving and electrophoretic layer removal is adopted. The rotation of the rotating frame is controlled by the drive component, so that different planes of the product can be laser engraved vertically upwards, realizing multi-plane laser engraving in one clamp.

Benefits of technology

It improves laser engraving efficiency, reduces clamping errors and time, and enhances the efficiency of laser engraving.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention relates to an automatic turning mechanism for removing an electrophoresis layer through laser etching, which comprises a base, a rotating frame, a laser etching device and a laser etching device, the rotating frame is rotationally connected with the base; the rotating end of the driving part is fixedly connected with the rotating frame, and the driving part is used for controlling and driving the rotating frame to rotate; the clamp is fixedly connected to the rotating frame, the side, making contact with a product, of the clamp is provided with a positioning groove and a lever piece, the side, making contact with the product, of the positioning groove is in profile modeling with the structure of the product and is used for positioning the product, and the lever piece is used for locking and attaching the product into the clamp. And then the product on the rotating frame is driven to rotate to be vertically upward to be subjected to laser etching to remove an electrophoresis layer, the product can be clamped only once, but different planes can be rotated to be vertically upward, laser etching of the electrophoresis layers of the different planes of the product is facilitated, and the laser etching efficiency of the product is improved.
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Description

[Technical Field]

[0001] This invention relates to the field of laser engraving electrophoretic layer removal technology, and in particular to an automatic flipping mechanism for laser engraving electrophoretic layer removal. [Background Technology]

[0002] like Figure 1 The product 20 shown has a first plane 30, a second plane 40, and a third plane 50 that require laser engraving to remove the electrophoretic layer. In traditional processes, fixtures are required for each of the first plane 30, the second plane 40, and the third plane 50 of the product 20. This requires three sets of fixtures to laser engrave the electrophoretic layer on different planes of the product 20. However, multiple clamping of the product 20 will cause errors, and the clamping time of the product 20 is long, which will reduce the laser engraving efficiency of the product 20.

[0003] In view of this, it is necessary to provide an automatic flipping mechanism for laser-engraved electrophoretic layers to solve the above problems. [Summary of the Invention]

[0004] The technical problem this invention aims to solve is that: In traditional processes, different planes of a product require laser engraving to remove the electrophoretic layer. This necessitates the use of separate fixtures for each plane, requiring multiple fixtures to engrave the electrophoretic layer on each plane. However, multiple clamping operations introduce errors and result in long clamping times, reducing laser engraving efficiency. Therefore, this invention provides an automatic flipping mechanism for laser engraving and electrophoretic layer removal to address these problems.

[0005] The solution to the technical problem of this invention is: an automatic flipping mechanism for laser-engraved electrophoretic layer removal, comprising:

[0006] The base is used to support the rotation of the rotating frame;

[0007] The rotating frame is rotatably connected to the base. The rotating frame contains a first rotating frame and a second rotating frame. The first rotating frame is rotatably connected to the base via a bearing. The second rotating frame passes through the base and is fixedly connected to the driven wheel of the transmission component. The first rotating frame and the second rotating frame are fixedly connected by a connecting plate.

[0008] The transmission component is housed within the placement component to protect it. The transmission component has a driving wheel and a driven wheel. The driving wheel is fixedly connected to the rotating end of the driving component and is used to rotate the driven wheel under the action of the driving component.

[0009] The driving component has its rotating end fixedly connected to the rotating frame. It is used to control the rotation of the driving wheel of the drive transmission component and to drive the driven wheel of the transmission component to rotate the second rotating frame under the action of the driving component, thereby causing the connecting plate to drive the first rotating frame to rotate through the bearing.

[0010] The fixture is fixedly connected to the connecting plate. The side of the fixture that contacts the product is provided with a positioning groove and a lever. The side of the positioning groove that contacts the product is contoured to the structure of the product and is used to position the product. The lever is used to lock the product in the fixture. The fixture is provided with handles at both ends. The handles are used to facilitate placing the fixture with the product on the connecting plate.

[0011] Preferably, the transmission component includes, but is not limited to, conveying via a conveyor belt.

[0012] Preferably, the driving component includes, but is not limited to, a servo motor.

[0013] The beneficial effect of this invention is that it uses an automatic flipping mechanism for laser engraving and electrophoretic layer removal. The mechanism uses a driving component to control the rotation of the rotating frame, thereby rotating the product on the rotating frame to a vertically upward position for laser engraving and electrophoretic layer removal. This allows the product to be clamped only once, but different planes can be rotated to a vertically upward position, which facilitates the laser engraving of electrophoretic layers on different planes of the product and improves the laser engraving efficiency of the product. [Attached Image Description]

[0014] Figure 1 This is a structural diagram of a well-known product.

[0015] Figure 2 This is a schematic diagram of the structure of an automatic flipping mechanism for laser-engraved electrophoretic layer removal according to the present invention.

[0016] Figure 3 This is a schematic diagram of the structure in which the product is fixed on the fixture in this invention.

[0017] Figure 4 This is a schematic diagram of the transmission component in this invention.

Detailed Implementation Methods

[0018] To further illustrate the technical means and effects of the present invention, the following detailed description is provided in conjunction with the embodiments of the present invention and their accompanying drawings.

[0019] This invention provides an automatic flipping mechanism for laser-engraved electrophoretic layers, comprising:

[0020] The base 110 is used to support the rotation of the rotating frame 120;

[0021] A rotating frame 120 is rotatably connected to a base 110. The rotating frame 120 contains a first rotating frame 121 and a second rotating frame 122. The first rotating frame 121 is rotatably connected to the base 110 via a bearing 123. The second rotating frame 122 passes through the base 110 and is fixedly connected to the driven wheel 132 of the transmission component 130. The first rotating frame 121 and the second rotating frame 122 are fixedly connected via a connecting plate 124.

[0022] The transmission component 130 is disposed inside the placement component 133 for protecting the transmission component 130. The transmission component 130 is provided with a driving wheel 131 and a driven wheel 132. The driving wheel 131 is fixedly connected to the rotating end 141 of the driving component 140 for rotating the driven wheel 132 under the action of the driving component 140.

[0023] The driving component 140 has a rotating end 141 that is fixedly connected to the rotating frame 120. It is used to control the rotation of the driving wheel 131 of the driving transmission component 130. Under the action of the driving component 140, the driven wheel 132 of the transmission component 130 drives the second rotating frame 122 to rotate, thereby causing the connecting plate 124 to drive the first rotating frame 122 to rotate through the bearing 123.

[0024] The clamp 100 is fixedly connected to the connecting plate 124. The side of the clamp 100 that contacts the product 20 is provided with a positioning groove 101 and a lever 102. The side of the positioning groove 101 that contacts the product 20 is contoured to the structure of the product 20 and is used to position the product 20. The lever 102 is used to lock the product 20 into the clamp 100. The clamp 100 is provided with handles 103 at both ends. The handles 103 are used to facilitate placing the clamp 100 with the product 20 on the connecting plate 124.

[0025] The transmission component 130 includes, but is not limited to, conveying via a conveyor belt.

[0026] The drive component 140 includes, but is not limited to, a servo motor.

[0027] The working process of this invention is as follows: The product 20 is placed in the positioning groove 101 of the clamp 100, and the product 20 is locked in the clamp 100 by the lever 102. Then, the clamp 100 is placed on the connecting plate 124 by the handle 103, fixing the clamp 100 to the connecting plate 124. At this time, the first plane 30 of the product 20 is vertically upward, and a laser (not shown in the figure) laser engraves the first plane 30 of the product 20. Subsequently, the rotating end 141 of the drive member 140 controls the driving wheel 131 of the drive transmission member 130, causing the driven wheel 132 of the transmission member 130 to drive the second rotating frame 122. The second rotating frame 122 is driven by the connecting plate 124. The first rotating frame 121 rotates 23.1° around the center of the bearing 123, causing the connecting plate 124 to drive the second plane 40 of the product 20 fixed on the fixture 100 to be vertically upward. The laser (not shown in the figure) laser engraves the second plane 40 of the product 20. Finally, the rotating end 141 of the driving member 140 controls the driving wheel 131 of the driving transmission member 130, causing the driven wheel 132 of the transmission member 130 to drive the second rotating frame 122 to rotate the first rotating frame 121 around the center of the bearing 123 by 66.8° through the connecting plate 124, so that the third plane 50 of the product 20 is vertically upward. The laser (not shown in the figure) laser engraves the third plane 50 of the product 20.

[0028] The beneficial effect of the present invention is that it uses an automatic flipping mechanism for laser engraving and electrophoretic layer removal. The mechanism uses a drive component 140 to control the rotation of the drive frame 120, thereby driving the product 20 on the drive frame 120 to rotate vertically upward for laser engraving and electrophoretic layer removal. This allows the product 20 to be clamped only once, but different planes can be rotated vertically upward, which facilitates the laser engraving of electrophoretic layers on different planes of the product and improves the laser engraving efficiency of the product 20.

[0029] It should be noted that the present invention is not limited to the above embodiments. Any simple modifications, equivalent changes and alterations made by those skilled in the art to the above embodiments based on the technical solutions of the present invention shall fall within the protection scope of the present invention.

Claims

1. An automatic flipping mechanism for laser-engraved electrophoretic layer removal, characterized in that, include: A base for supporting the rotation of the rotating frame; A rotating frame, which is rotatably connected to the base; A driving component, the rotating end of which is fixedly connected to the rotating frame, is used to control and drive the rotating frame to rotate; The clamp is fixedly connected to the rotating frame. The side of the clamp that contacts the product is provided with a positioning groove and a lever. The side of the positioning groove that contacts the product is contoured to the structure of the product and is used to position the product. The lever is used to lock the product into the clamp.

2. The automatic flipping mechanism for laser-engraved electrophoretic layer removal as described in claim 1, characterized in that: The rotating frame includes a first rotating frame and a second rotating frame, which are fixedly connected by a connecting plate.

3. The automatic flipping mechanism for laser-engraved electrophoretic layer removal as described in claim 2, characterized in that: The second rotating frame is rotatably connected to the base via a rotating shaft.

4. The automatic flipping mechanism for laser-engraved electrophoretic layer removal as described in claim 1, characterized in that: The rotating frame is connected to the driving component via a transmission component. The transmission component has a driving wheel and a driven wheel. The driving wheel is fixedly connected to the rotating end of the driving component, and the driven wheel is fixedly connected to the end of the rotating frame near the driving component. The transmission component is used to drive the rotating frame to rotate under the action of the driving component.

5. The automatic flipping mechanism for laser-engraved electrophoretic layer removal as described in claim 4, characterized in that: The transmission component is disposed within the placement component, which is used to protect the transmission component.

6. The automatic flipping mechanism for laser-engraved electrophoretic layer removal as described in claim 4, characterized in that: The transmission component is a conveyor belt.

7. The automatic flipping mechanism for laser-engraved electrophoretic layer removal as described in claim 1, characterized in that: The driving component is a servo motor.

8. The automatic flipping mechanism for laser-engraved electrophoretic layer removal as described in claim 1, characterized in that: The clamp is provided with handles at both ends, which are used to facilitate placing the clamp with the product on the rotating frame.