Burning device for movement

By combining the cylinder-driven downward movement of the upper mold with a programmable logic controller, the mechanism programming device is automated, solving the problems of low efficiency and high labor intensity in the existing technology, and improving production efficiency and safety.

CN223784714UActive Publication Date: 2026-01-09ZHANGZHOU HENGLI ELECTRONICS
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Patent Information

Application Number
CN202520351181.6
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-03-03
Publication Date
2026-01-09
Estimated Expiration
2035-03-03

AI Technical Summary

Technical Problem

Existing core programming devices are inefficient and labor-intensive, requiring staff to concentrate fully on manual operation, resulting in low efficiency and high physical and mental workload.

Method used

By using a cylinder to drive the upper mold to move downwards, combined with a programmable logic controller and multiple drive mechanisms, the automatic programming process is realized, which can program multiple cores at the same time and reduce human operation errors.

Benefits of technology

It improved work efficiency, reduced the labor intensity of operators, reduced the defect rate, and improved production quality and safety.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses a burning device for a movement, and relates to the technical field of clock burning, and the burning device comprises a burner which is installed on a rack; the first driving mechanism is mounted on the rack; the second driving mechanism is mounted on the rack; the upper mold is connected with the first driving mechanism, and the first driving mechanism can drive the upper mold to vertically move; the lower die is connected with a second driving mechanism, the second driving mechanism can drive the lower die to move horizontally, a plurality of machine cores can be placed on the lower die, and the second driving mechanism drives the upper die to move downwards and then press the machine cores, so that the burner burns the machine cores. The device is high in automation degree and high in working efficiency, and the working intensity of operators is reduced.
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Description

TECHNICAL FIELD

[0001] The present application relates to the technical field of watch burning, in particular to a burning device for a movement. BACKGROUND

[0002] During the burning process, the time parameter needs to be adjusted to ensure that the data can be accurately written into the target device. In the prior art, the 1-out-1 time adjustment method is usually used, that is, the worker puts a movement into the mold, presses the movement tightly with one hand to ensure that the contact of the movement and the probe of the burning machine is in contact, and then starts the burning with the other hand. The burning process needs to last for 5 seconds, and the worker needs to concentrate highly during this process, and accurately grasp the force and time of each step to ensure the accuracy and stability of the time adjustment. This method not only has low working efficiency, but also requires the worker to continuously perform high-intensity physical and mental labor, so the labor intensity is very large, which is not conducive to long-term development.

[0003] Therefore, it is necessary to improve the existing burning device. CONTENT OF THE UTILITY MODEL

[0004] Therefore, the present application provides a burning device for a movement to solve the technical problems of the existing burning device, which has low working efficiency and large labor intensity.

[0005] To achieve the above-mentioned purpose, the utility model provides the following technical scheme:

[0006] A burning device for a movement, comprising:

[0007] A burner is installed on a rack;

[0008] A first driving mechanism is installed on the rack;

[0009] A second driving mechanism is installed on the rack;

[0010] An upper mold is connected with the first driving mechanism, and the first driving mechanism can drive the upper mold to move vertically;

[0011] A lower mold is connected with the second driving mechanism, and the second driving mechanism can drive the lower mold to move horizontally. The lower mold can place multiple movements, and the second driving mechanism drives the upper mold to move down and press on the movement, so that the burner burns the movement.

[0012] Further, a workbench is provided, which is arranged in a spaced manner with the rack, and two start buttons are arranged on the workbench in a spaced manner. The start buttons are electrically connected with the burner.

[0013] Further, a receiving tray is arranged on the workbench, and the receiving tray is used for collecting the movement.

[0014] Further, an ejection mechanism is arranged at the bottom of the workbench, and the ejection mechanism can extend into the lower mold to unload the movements placed on the lower mold.

[0015] Further, the ejection mechanism comprises a plurality of ejection cylinders arranged side by side at the bottom of the workbench, and a plurality of ejector heads arranged on the top rods of the corresponding ejection cylinders, and the ejector heads can extend into the lower mold to unload the movements.

[0016] Further, a programmable logic controller is arranged on the rack, and the lower end of the programmable logic controller is provided with a five-way electromagnetic valve.

[0017] Further, the first driving mechanism comprises a Z-axis cylinder connected with the upper mold.

[0018] Further, the second driving mechanism comprises a Y-axis cylinder connected with the lower mold.

[0019] From the above technical solution, the advantages of the present application are as follows:

[0020] 1. The present application can simultaneously burn 6 movements, so the work efficiency is higher; in addition, the present application adopts the mode that the upper mold is driven downward by the cylinder, so that the upper mold can press the movement on the lower mold, the automation degree is high, and the labor intensity of the operator is also reduced. BRIEF DESCRIPTION OF DRAWINGS

[0021] The accompanying drawings, which form a part of this application, are included to provide a further understanding of the application, and are incorporated herein for purposes of explanation and are not intended to limit the application.

[0022] Figure 1 is a structural schematic diagram of the present application.

[0023] Figure 2 is a right view of the partial structure of Figure 1 .

[0024] Figure 3 is a partial structure schematic diagram of Figure 2 .

[0025] Figure 4 is a structural schematic diagram of the probe and the movement of the present application.

[0026] Explanation of reference signs: 1-burner; 2-programmable logic controller; 21-emergency stop button; 3-five-position electromagnetic valve; 4-Z-axis air cylinder; 5-Y-axis air cylinder; 6-upper mold; 7-linear guide rail; 8-lower mold; 9-connection plate; 10-start button; 11-workbench; 12-column; 13-supporting column; 14-receiving disc; 15-ejecting air cylinder; 16-guide rod; 17-guide sleeve; 18-second piston rod; 19-rack; 20-top head; 22-branch plate; 23-probe; 24-movement; 25-signal line. DETAILED DESCRIPTION

[0027] In order to make the purpose, technical scheme and advantages of the present application more clear, the present application is further described in detail below in combination with embodiments and drawings. Herein, the illustrative embodiments of the present application and the description thereof are used to explain the present application, but not as a limitation of the present application.

[0028] Reference Figures 1 to 4 As Figure 1 and Figure 4 shown, the present embodiment provides a burner device for movement, comprising: a burner 1, a first driving mechanism, a second driving mechanism, an upper mold 6 and a lower mold 8, a programmable logic controller 2 is installed on the rack 19, the burner 1, the first driving mechanism and the second driving mechanism are all installed on the rack 19, a plurality of supporting columns 13 are arranged at the bottom of the rack 19 to enable the present application to be placed stably, the upper mold 6 is connected to the lower end of the first driving mechanism, the first driving mechanism can drive the upper mold 6 to move up and down in the vertical direction, the lower mold 8 is connected to the front end of the second driving mechanism, the second driving mechanism can drive the lower mold 8 to move back and forth in the horizontal direction, a plurality of signal lines 25 are arranged on the burner 1, the signal lines 25 extend to the lower mold 8, and the end of the signal line 25 is connected with a probe 23, the probe 23 extends from the bottom of the lower mold 8 and extends upward, a plurality of mill positions are arranged on the lower mold 8, each mill position can position and orientally place a movement 24, the movement 24 is located above the corresponding probe 23, the second driving mechanism can drive the upper mold 6 to move down and press on the lower mold 8, and press the movement 24 tightly, so that the probe 23 of the burner 1 and the contact of the movement 24 are in good contact, and finally the burner 1 can burn the movement.

[0029] As Figure 2As shown, the burning device for the movement further comprises a workbench 11 which is spaced apart from the rack 19, the bottom of the workbench 11 is provided with a plurality of supporting columns 12, the upper surface of the workbench 11 is provided with two spaced-apart starting buttons 10, the starting buttons 10 are electrically connected with the programmable logic controller 2, the burner 1 is electrically connected with the programmable logic controller 2, and the burner 1 can start the burning work by pressing the two starting buttons 10 at the same time. In addition, in order to be convenient to take, the workbench 11 is further provided with a storage tray 14 for collecting the movements which are burned.

[0030] In an embodiment, the first driving mechanism comprises a Z-axis cylinder 4, and a first piston rod of the Z-axis cylinder 4 is connected with the upper mold 6. The second driving mechanism comprises a Y-axis cylinder 5, and a front end of the Y-axis cylinder 5 is provided with a second piston rod 18. The lower mold 8 is installed on a connecting plate 9, and the connecting plate 9 is connected with the front end of the second piston rod 18.

[0031] Specifically, in order to enable the lower mold 8 to move stably, the workbench 11 is further provided with two linear guides 7, and the connecting plate 9 is connected with a sliding block on the linear guide 7. Under the driving of the Y-axis cylinder 5, the connecting plate 9 can drive the lower mold 8 to move stably on the workbench 11 along the two linear guides 7. By driving the lower mold 8 to move forward by the Y-axis cylinder 5, the staff can conveniently take the movements which are burned.

[0032] Preferably, the bottom of the workbench 11 is provided with an ejection mechanism, and the ejection mechanism can extend upwardly into the lower mold 8, so that the movements placed on the lower mold 8 are ejected, and the movement is easily unloaded.

[0033] Specifically, as shown in Figure 1 、 Figure 2 and Figure 3 , the ejection mechanism comprises six ejection cylinders 15 and six ejector heads 20. The six ejection cylinders 15 are arranged side by side at the bottom of the workbench 11, and the six ejector heads 20 are arranged on the top rods of the six ejection cylinders 15. Each position is provided with a placing cavity, and the movement is placed in the placing cavity. The ejector head 20 can extend into the placing cavity to upwardly eject the movement, that is, to unload the movement, so that the staff can quickly and easily take the movement which is burned.

[0034] In one embodiment, the programmable logic controller 2 (PLC 2) is connected to a five-position solenoid valve 3, which controls the operation of the Z-axis cylinder 4, Y-axis cylinder 5, and ejector cylinder 15. The PLC 2 provides precise control to ensure the accuracy and stability of each operational step, significantly reducing the defect rate caused by human error. Furthermore, the precise control of the PLC 2 automates the entire production process, greatly reducing the operator's workload. This not only improves work comfort but also reduces fatigue and errors that may result from prolonged high-intensity labor, further improving production quality and efficiency. Additionally, to enhance production safety, an emergency stop button 21 is provided on the PLC 2.

[0035] In one embodiment, the frame 19 has a support plate 22, the Z-axis cylinder 4 is mounted on the support plate 22, the first piston rod of the Z-axis cylinder 4 is provided with a mounting plate, the upper mold 6 is mounted on the lower end of the mounting plate, and in order to make the Z-axis cylinder 4 work more stably, two guide rods 16 are fixed at intervals on the mounting plate, and the guide rods 16 slide in cooperation with the guide sleeves 17 provided on the support plate 22.

[0036] A first fixing plate is installed on the top of the two guide rods 16, and a buffer is installed on the first fixing plate. After the guide rods 16 are moved down, the front end of the buffer can press against the top surface of the cylinder body of the Z-axis cylinder 4.

[0037] A second fixed plate is installed at the lower part of the frame 19, and a buffer is installed on the second fixed plate. After the Y-axis cylinder 5 is reset, the front end of the buffer can press against the rear end face of the lower mold 8. The second piston rod 18 passes through the through hole in the second fixed plate and is connected to the connecting plate 9.

[0038] Working Principle: The operator places six movement mechanisms on six designated positions and simultaneously presses two start buttons 10. Under the precise control of the programmable logic controller (PLC) 2, the Z-axis cylinder 4 drives the upper mold 6 to smoothly move directly beneath the lower mold 8. Subsequently, the upper mold 6, pushed by the Z-axis cylinder 4, slowly moves downwards, pressing firmly against the movement mechanism inside the lower mold 8. Next, the PLC 2 initiates the programming process, and the programmer 1 begins a 5-second programming operation. After programming is complete, the Z-axis cylinder 4 lifts the upper mold 6 to its original position. Simultaneously, the Y-axis cylinder 5 drives the lower mold 8 forward, pushing it outwards. The ejector cylinder 15 then lifts the movement mechanism upwards, allowing the operator to easily remove the six movement mechanisms, thus completing the programming process.

[0039] The entire process significantly reduces the intensity of manual labor and decreases the defect rate caused by manual operation errors. Compared with traditional methods, this application can complete more programming tasks in a shorter time, resulting in high work efficiency and significantly improving the benefits for manufacturing enterprises.

[0040] The above description is merely a preferred embodiment of this application and is not intended to limit this application. Various modifications and variations can be made to the embodiments of this application by those skilled in the art. Any modifications, equivalent substitutions, improvements, etc., made within the spirit and principles of this application should be included within the protection scope of this application.

Claims

1. A programming device for a mechanism, characterized in that, include: A programmer (1) is mounted on a rack (19); A first drive mechanism is mounted on the frame (19); A second drive mechanism is mounted on the frame (19); Upper mold (6), the upper mold (6) is connected to the first driving mechanism, the first driving mechanism can drive the upper mold (6) to move vertically; The lower mold (8) is connected to the second driving mechanism. The second driving mechanism can drive the lower mold (8) to move horizontally. The lower mold (8) can hold multiple mechanisms. The second driving mechanism drives the upper mold (6) to move down and press it on the mechanism so that the programmer (1) can program the mechanism.

2. The programming apparatus for a mechanism according to claim 1, characterized in that, It also includes a workbench (11), which is spaced apart from the frame (19). The workbench (11) is provided with two spaced start buttons (10), which are electrically connected to the programmer (1).

3. The programming apparatus for a mechanism according to claim 2, characterized in that, The workbench (11) is also provided with a storage tray (14) for collecting the movement.

4. The programming apparatus for a mechanism according to claim 2, characterized in that, The bottom of the workbench (11) is provided with an ejection mechanism that can extend into the lower mold (8) to unload multiple mechanisms placed on the lower mold (8).

5. The programming apparatus for a mechanism according to claim 4, characterized in that, The ejection mechanism includes several ejection cylinders (15) and several ejector heads (20). Several ejection cylinders (15) are arranged side by side at the bottom of the worktable (11). The ejector head (20) is set on the ejector rod of the corresponding ejection cylinder (15). The ejector head (20) can extend into the lower mold (8) to unload the mechanism.

6. The programming apparatus for a mechanism according to claim 1, characterized in that, The frame (19) is also equipped with a programmable logic controller (2), and a five-position solenoid valve (3) is provided at the lower end of the programmable logic controller (2).

7. The programming apparatus for a mechanism according to claim 1, characterized in that, The first driving mechanism includes a Z-axis cylinder (4), which is connected to the upper mold (6).

8. The programming apparatus for a mechanism according to claim 1, characterized in that, The second drive mechanism includes a Y-axis cylinder (5), which is connected to the lower mold (8).