Mylar anti-deformation die cutting blanking mechanism

By designing a Mylar sheet anti-deformation die-cutting and blanking mechanism, and utilizing components such as a rotating cutting plate and lifting components, the automatic storage of Mylar sheets is achieved, solving the problem of not being able to store the blanked material after cutting, improving processing efficiency and reducing safety risks.

CN224116330UActive Publication Date: 2026-04-14CHONGQING JURONG ELECTRONIC TECH CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
CHONGQING JURONG ELECTRONIC TECH CO LTD
Filing Date
2025-03-24
Publication Date
2026-04-14

AI Technical Summary

Technical Problem

Existing Mylar sheet cutting equipment cannot automatically store the cut material, resulting in low processing efficiency and safety hazards.

Method used

A deformation-resistant die-cutting and blanking mechanism for Mylar sheets was designed, including a worktable, mounting components, and conveying components. The mechanism utilizes components such as a rotating cutting plate, an electric telescopic rod, a guide slide, and a lifting component to achieve automated storage of Mylar sheets.

Benefits of technology

It enables automated storage of cut Mylar flakes, improving processing efficiency and reducing the safety risks of manual operation.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to the technical field of Mylar processing, in particular to an anti-deformation die cutting blanking mechanism for Mylar. When the anti-deformation die cutting blanking mechanism for Mylar is used, a Mylar roll is placed on a conveying assembly and discharged through the conveying assembly, a cutting component is started, and the cutting component is matched with a rotary cutting plate to cut the Mylar roll; the conveying assembly rolls the cut waste material roll, the cut mylar film stays on the rotating cutting plate, an electric telescopic rod is started, the electric telescopic rod drives the rotating cutting plate to rotate on the rotating seat, the rotating cutting plate inclines, the mylar film slides into the material guide sliding way, the material guide sliding way guides the mylar film into the containing box, and the conveying assembly conveys the mylar film into the storage box. Mylar pieces are cut and fall on the placing plate, the sliding block is driven to descend through the lifting component, the sliding block drives the placing plate to descend and the Mylar pieces to descend, the cut Mylar pieces are stacked in the placing box, the electric telescopic rod drives the rotary cutting plate to reset, and then the Mylar rolls are cut repeatedly.
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Description

Technical Field

[0001] This utility model relates to the field of Mylar film processing technology, and in particular to a Mylar film anti-deformation die-cutting and blanking mechanism. Background Technology

[0002] Mylar film is a multifunctional polymer material widely used in electronics, electrical, and mechanical fields. Mylar film is a film made of materials such as polyester (PET), polyvinyl chloride (PVC), and polycarbonate (PC) through a special process, and it comes in a variety of colors such as milky white, black, and transparent.

[0003] Mylar film is a high-performance polymer material with core applications including: electrical insulation (protection of motors, cables, and high-temperature equipment), electronic protection (isolation of components, insulation of screens and speakers), industrial auxiliary (mechanical seals, electromagnetic shielding), optical applications (light-shielding and reflective components), and anti-counterfeiting packaging (aluminized base film, high-precision labels).

[0004] However, existing Mylar sheet cutting equipment cannot store the cut Mylar sheets during use, requiring workers to retrieve and store them, which is not only time-consuming and labor-intensive, but also poses certain dangers and reduces processing efficiency, making it inconvenient to use. Utility Model Content

[0005] The purpose of this invention is to provide a die-cutting and blanking mechanism for Mylar sheets that prevents deformation, thus solving the problem of not being able to cut and store the Mylar sheets.

[0006] To achieve the above objectives, this utility model provides an anti-deformation die-cutting and blanking mechanism for Mylar sheet, comprising a worktable, an installation assembly, and a conveying assembly. The installation assembly further includes a rotating seat, a rotating cutting plate, a connecting frame, an electric telescopic rod, a placement box, a guide slide, a sliding block, a placement plate, a lifting component, and a cutting component. The rotating seat is fixedly connected to the worktable and located on one side of the worktable. The rotating cutting plate is rotatably connected to the rotating seat and passes through the rotating seat. The connecting frame is fixedly connected to the worktable and located on one side of the worktable. The electric telescopic rod is rotatably connected to the connecting frame, and its output end is rotatably connected to the rotating cutting plate. The placement box is fixedly connected to the worktable and located on one side of the worktable. The guide slide communicates with the placement box and is located on one side of the placement box. The sliding block is slidably connected to the placement box and located inside the placement box. The placement plate is fixedly connected to the sliding block and located on one side of the sliding block. The lifting component... The lowering component is connected to the placement box, and the cutting component is connected to the worktable. In use, the Mylar roll is placed on the conveying assembly, which feeds it out. The cutting component is then activated, and it works with the rotating cutting plate to cut the Mylar roll. The conveying assembly rewinds the cut waste roll, and the cut Mylar sheet remains on the rotating cutting plate. The electric telescopic rod is then activated, driving the rotating cutting plate to rotate on the rotating seat. The rotating cutting plate tilts, causing the Mylar sheet to slide into the guide slide. The guide slide guides the Mylar sheet into the placement box, where it falls onto the placement plate. The lifting component then drives the sliding block to descend, which in turn lowers the placement plate and the Mylar sheet, stacking the cut Mylar sheet in the placement box. The electric telescopic rod then drives the rotating cutting plate to reset, and this process is repeated to cut the Mylar roll, thus solving the problem of not being able to unload and store the cut Mylar sheet.

[0007] The lifting component includes a threaded rod and a drive motor. The threaded rod is rotatably connected to the placement box and threadedly connected to the lifting block. The drive motor is fixedly connected to the placement box, and the output end of the drive motor is connected to the threaded rod.

[0008] The cutting component includes a support frame, a lifting cylinder, and a cutting blade. The support frame is fixedly connected to the worktable and is located on one side of the worktable. The lifting cylinder is fixedly connected to the support frame and passes through the support frame. The cutting blade is connected to the output end of the lifting cylinder.

[0009] The conveying assembly includes a feeding roller and a winding roller. The feeding roller is rotatably connected to the support frame and passes through the support frame; the winding roller is rotatably connected to the support frame and passes through the support frame.

[0010] The conveying assembly further includes a guide roller, which is rotatably connected to the support frame and passes through the support frame.

[0011] This utility model discloses an anti-deformation die-cutting and blanking mechanism for Mylar sheet, comprising a worktable, an installation assembly, and a conveying assembly. The installation assembly further includes a rotating base, a rotating cutting plate, a connecting frame, an electric telescopic rod, a placement box, a guide slide, a sliding block, a placement plate, a lifting component, and a cutting component. The lifting component includes a threaded rod and a drive motor. The cutting component includes a support frame, a lifting cylinder, and a cutting blade. The conveying assembly includes a feeding roller and a winding roller, and also includes a guide roller. The rotating base is fixedly connected to the worktable and located on the worktable. On one side, the rotating cutting plate is rotatably connected to the rotating seat and passes through the rotating seat. The connecting frame is fixedly connected to the worktable and is located on one side of the worktable. The electric telescopic rod is rotatably connected to the connecting frame, and the output end of the electric telescopic rod is rotatably connected to the rotating cutting plate. The placement box is fixedly connected to the worktable and is located on one side of the worktable. The guide slide is connected to the placement box and is located on one side of the placement box. The sliding block is slidably connected to the placement box and is located inside the placement box. The placement plate is fixedly connected to the sliding block and is located on one side of the sliding block. The lifting component is connected to the placement box. The cutting component is connected to the worktable. In use, the Mylar roll is placed on the conveying assembly, and the material is fed through the conveying assembly. The cutting component is then activated, and the cutting component cooperates with the rotating cutting plate to cut the Mylar roll. The conveying assembly rewinds the cut waste roll. The cut Mylar sheet stays on the rotating cutting plate. The electric telescopic rod is then activated, and the electric telescopic rod drives the... The rotating cutting plate rotates on the rotating seat. The rotating cutting plate tilts, causing the Mylar sheet to slide into the guide slide. The guide slide guides the Mylar sheet into the placement box and onto the placement plate. The lifting component drives the sliding block to descend, which in turn drives the placement plate and the Mylar sheet to descend. The cut Mylar sheet is then stacked in the placement box. The electric telescopic rod drives the rotating cutting plate to reset, and this process is repeated to cut the Mylar rolls, thus solving the problem of not being able to unload and store the cut Mylar sheet. Attached Figure Description

[0012] To more clearly illustrate the technical solutions in the embodiments of this application or the prior art, the accompanying drawings used in the description of the embodiments or the prior art will be briefly introduced below.

[0013] Figure 1 This is a schematic diagram of the overall structure of the anti-deformation die-cutting and blanking mechanism for Mylar sheet according to the first embodiment of this utility model.

[0014] Figure 2 This is a schematic diagram showing the connection between the rotating cutting plate and the rotating seat of the anti-deformation die-cutting and blanking mechanism for Mylar sheet according to the first embodiment of this utility model.

[0015] Figure 3 This is a schematic diagram of the anti-deformation die-cutting and blanking mechanism for Mylar sheet according to the second embodiment of this utility model.

[0016] In the diagram: 101-Workbench, 102-Rotating seat, 103-Rotating cutting plate, 104-Connecting frame, 105-Electric telescopic rod, 106-Placement box, 107-Guide slide, 108-Sliding block, 109-Placement plate, 110-Threaded rod, 111-Drive motor, 112-Support frame, 113-Lifting cylinder, 114-Cut blade, 201-Feeding roller, 202-Rewinding roller, 203-Guide roller. Detailed Implementation

[0017] The embodiments of the present invention are described in detail below. Examples of the embodiments are shown in the accompanying drawings. The embodiments described below with reference to the accompanying drawings are exemplary and intended to explain the present invention, but should not be construed as limiting the present invention.

[0018] The first embodiment of this application is as follows:

[0019] Please see Figure 1 and Figure 2 , Figure 1 This is a schematic diagram of the overall structure of the anti-deformation die-cutting and blanking mechanism for Mylar sheet according to the first embodiment of this utility model. Figure 2 This is a schematic diagram of the connection between the rotating cutting plate and the rotating seat of the anti-deformation die-cutting and blanking mechanism for Mylar sheet according to the first embodiment of this utility model. The anti-deformation die-cutting and blanking mechanism for Mylar sheet includes a workbench 101, an installation assembly, and a conveying assembly. The installation assembly also includes a rotating seat 102, a rotating cutting plate 103, a connecting frame 104, an electric telescopic rod 105, a placement box 106, a guide slide 107, a sliding block 108, a placement plate 109, a lifting component, and a cutting component. The lifting component includes a threaded rod 110 and a drive motor 111. The cutting component includes a support frame 112, a lifting cylinder 113, and a cutting blade 114. The aforementioned solution solves the problem of not being able to blank and store the cut Mylar sheet.

[0020] In this specific embodiment, during use, the Mylar roll is placed on the conveying assembly for feeding. Then, the cutting component is activated, cooperating with the rotating cutting plate 103 to cut the Mylar roll. The conveying assembly then rewinds the cut waste roll. The cut Mylar sheet remains on the rotating cutting plate 103. Next, the electric telescopic rod 105 is activated, driving the rotating cutting plate 103 to rotate on the rotating base 102. The rotating cutting plate 103 tilts, causing the Mylar sheet to... The Mylar roll slides into the guide slide 107, which guides the Mylar roll into the placement box 106 and onto the placement plate 109. The sliding block 108 is driven to descend by the lifting component, which in turn drives the placement plate 109 and the Mylar roll to descend. The cut Mylar roll is then stacked in the placement box 106. The electric telescopic rod 105 drives the rotating cutting plate 103 to reset, and this process is repeated to cut the Mylar roll, thus solving the problem of not being able to unload and store the cut Mylar roll.

[0021] The rotating seat 102 is fixedly connected to the worktable 101 and located on one side of the worktable 101. The rotating cutting plate 103 is rotatably connected to the rotating seat 102 and passes through the rotating seat 102. The connecting frame 104 is fixedly connected to the worktable 101 and located on one side of the worktable 101. The electric telescopic rod 105 is rotatably connected to the connecting frame 104, and the output end of the electric telescopic rod 105 is rotatably connected to the rotating cutting plate 103. The placement box 106 is fixedly connected to the worktable 101 and located on one side of the worktable 101. The guide slide 107 communicates with the placement box 106 and is located on the side of the worktable 101. On one side of the placement box 106, the sliding block 108 is slidably connected to the placement box 106 and located inside the placement box 106. The placement plate 109 is fixedly connected to the sliding block 108 and located on one side of the sliding block 108. The lifting component is connected to the placement box 106. The cutting component is connected to the worktable 101. The rotating seat 102 is located under the worktable 101. The rotating cutting plate 103 passes through the rotating seat 102. The connecting frame 104 is located under the worktable 101. The electric telescopic rod 105 is rotatably connected to the connecting frame 104. The output end of the electric lifting rod is rotatably connected to the lower side of the rotating cutting plate 103. The anti-collision box is located under the workbench 101, the guide slide 107 is located on the side of the placement box 106 near the rotating cutting plate 103, the sliding block 108 is located inside the placement box 106, and the placement plate 109 is located on one side of the sliding block 108. In use, the Mylar roll is placed on the conveying assembly, and the material is fed through the conveying assembly. Then, the cutting component is activated, and the cutting component cooperates with the rotating cutting plate 103 to cut the Mylar roll. The conveying assembly then rewinds the cut waste roll, and the cut Mylar sheet remains on the rotating cutting plate 103. Finally, the electric telescopic rod 105 is activated, and the electric telescopic rod... The lever 105 drives the rotating cutting plate 103 to rotate on the rotating seat 102. The rotating cutting plate 103 tilts, causing the Mylar sheet to slide into the guide slide 107. The guide slide 107 guides the Mylar sheet into the placement box 106 and onto the placement plate 109. The lifting component drives the sliding block 108 to descend, which in turn drives the placement plate 109 and the Mylar sheet to descend, stacking the cut Mylar sheet in the placement box 106. The electric telescopic lever 105 then drives the rotating cutting plate 103 to reset, and this process is repeated to cut the Mylar roll, thus solving the problem of not being able to unload and store the cut Mylar sheet.

[0022] Secondly, the threaded rod 110 is rotatably connected to the placement box 106 and threadedly connected to the lifting block; the drive motor 111 is fixedly connected to the placement box 106, and the output end of the drive motor 111 is connected to the threaded rod 110. The threaded rod 110 passes through the placement box 106 and the sliding block 108. The drive motor 111 is located on the lower side of the placement box 106. When the drive motor 111 is started, the drive motor 111 drives the threaded rod 110 to rotate, and the threaded rod 110 drives the sliding block 108 to slide up and down in the placement box 106.

[0023] Then, the support frame 112 is fixedly connected to the workbench 101 and located on one side of the workbench 101; the lifting cylinder 113 is fixedly connected to the support frame 112 and passes through the support frame 112; the cutting blade 114 is connected to the output end of the lifting cylinder 113, the support frame 112 is located on the upper side of the workbench 101, the output end of the lifting cylinder 113 passes through the support frame 112, the cutting blade 114 is fixed to the output end of the lifting cylinder 113, the lifting cylinder 113 is activated, the lifting cylinder 113 drives the cutting blade 114 to descend, the cutting blade 114 cooperates with the rotating cutting plate 103 to cut the Mylar roll.

[0024] When using the anti-deformation die-cutting and blanking mechanism for Mylar sheets in this embodiment, the Mylar roll is placed on the conveying assembly for feeding. The lifting cylinder 113 is activated, driving the cutting blade 114 to descend. The cutting blade 114, in conjunction with the rotating cutting plate 103, cuts the Mylar roll. The conveying assembly then rewinds the cut waste roll. The cut Mylar sheet remains on the rotating cutting plate 103. The electric telescopic rod 105 is then activated, driving the rotating cutting plate 103 to rotate on the rotating seat 102. The rotating cutting plate 103 tilts, causing the Mylar sheet to slide... The Mylar rolls are fed into the guide slide 107, which guides the Mylar sheets into the placement box 106 and onto the placement plate 109. The drive motor 111 is then activated, driving the threaded rod 110 to rotate. The threaded rod 110 drives the sliding block 108 to descend within the placement box 106. The sliding block 108 causes the placement plate 109 and the Mylar sheets to descend, stacking the cut Mylar sheets in the placement box 106. The electric telescopic rod 105 then drives the rotating cutting plate 103 to reset, repeating this process to cut the Mylar rolls. This solves the problem of not being able to unload and store the cut Mylar sheets.

[0025] The second embodiment of this application is as follows:

[0026] Please see Figure 3 , Figure 3 This is a schematic diagram of the anti-deformation die-cutting and blanking mechanism for Mylar sheet according to the second embodiment of the present invention. Based on the first embodiment, the anti-deformation die-cutting and blanking mechanism for Mylar sheet in this embodiment further includes a conveying component, which includes a feeding roller 201 and a winding roller 202, and the conveying component further includes a guide roller 203.

[0027] In this specific embodiment, the Mylar roll is placed on the feeding roller 201, the feeding roller 201 feeds the Mylar roll, and the Mylar roll is cut by the cutting blade 114 and the rotating cutting plate 103. The cut waste roll is then wound up and recycled by the winding roller 202.

[0028] The feeding roller 201 is rotatably connected to and passes through the support frame 112; the winding roller 202 is rotatably connected to and passes through the support frame 112. The feeding roller 201 and the winding roller 202 pass through the support frame 112. The Mylar roll is placed on the feeding roller 201, which feeds the Mylar roll. The Mylar roll is then cut by the cutting blade 114 and the rotating cutting plate 103. The cut waste roll is then wound up and recycled by the winding roller 202.

[0029] Secondly, the guide roller 203 is rotatably connected to the support frame 112 and passes through the support frame 112. There are two guide rollers 203, which pass through the support frame 112 respectively. The guide rollers 203 guide the Mylar roll and transmit it above the rotating cutting plate 103.

[0030] When using the anti-deformation die-cutting and blanking mechanism for Mylar sheet in this embodiment, the Mylar roll is placed on the feeding roller 201, the feeding roller 201 feeds the Mylar roll, and the guiding roller 203 guides the Mylar roll, which is then conducted above the rotating cutting plate 103. The Mylar roll is then cut by the cutting blade 114 and the rotating cutting plate 103, and the cut waste roll is wound up and recycled by the winding roller 202.

[0031] The above-disclosed embodiments are merely one or more preferred embodiments of this application and should not be construed as limiting the scope of this application. Those skilled in the art will understand that all or part of the processes for implementing the above embodiments and equivalent variations made in accordance with the claims of this application are still within the scope of this application.

Claims

1. A deformation-resistant die-cutting and blanking mechanism for Mylar sheet, comprising a worktable and a conveying assembly, characterized in that: It also includes installation components; The installation assembly further includes a rotating base, a rotating cutting plate, a connecting frame, an electric telescopic rod, a placement box, a guide slide, a sliding block, a placement plate, a lifting component, and a cutting component. The rotating base is fixedly connected to the worktable and located on one side of the worktable. The rotating cutting plate is rotatably connected to the rotating base and passes through the rotating base. The connecting frame is fixedly connected to the worktable and located on one side of the worktable. The electric telescopic rod is rotatably connected to the connecting frame, and its output end is rotatably connected to the rotating cutting plate. The placement box is fixedly connected to the worktable and located on one side of the worktable. The guide slide communicates with the placement box and is located on one side of the placement box. The sliding block is slidably connected to the placement box and located inside the placement box. The placement plate is fixedly connected to the sliding block and located on one side of the sliding block. The lifting component is connected to the placement box, and the cutting component is connected to the worktable.

2. The anti-deformation die-cutting and blanking mechanism for Mylar sheet as described in claim 1, characterized in that: The lifting component includes a threaded rod and a drive motor. The threaded rod is rotatably connected to the placement box and threadedly connected to the lifting block. The drive motor is fixedly connected to the placement box, and the output end of the drive motor is connected to the threaded rod.

3. The anti-deformation die-cutting and blanking mechanism for Mylar sheet as described in claim 1, characterized in that: The cutting component includes a support frame, a lifting cylinder, and a cutting blade. The support frame is fixedly connected to the worktable and is located on one side of the worktable. The lifting cylinder is fixedly connected to the support frame and passes through the support frame. The cutting blade is connected to the output end of the lifting cylinder.

4. The anti-deformation die-cutting and blanking mechanism for Mylar sheet as described in claim 3, characterized in that: The conveying assembly includes a feeding roller and a winding roller. The feeding roller is rotatably connected to the support frame and passes through the support frame; the winding roller is rotatably connected to the support frame and passes through the support frame.

5. The anti-deformation die-cutting and blanking mechanism for Mylar sheet as described in claim 4, characterized in that: The conveying assembly also includes a guide roller, which is rotatably connected to the support frame and passes through the support frame.