A die cutting apparatus for synchronously laminating multiple materials
By designing a synchronous cutting system with multiple box placement and template installation on the die-cutting equipment, the problem of low processing efficiency of single blanks in existing die-cutting equipment is solved, and synchronous cutting of multiple blanks is realized, thereby improving processing efficiency.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- 深圳市宏富盛科技有限公司
- Filing Date
- 2025-06-13
- Publication Date
- 2026-06-02
AI Technical Summary
Existing die-cutting equipment can only process a single blank, resulting in low processing efficiency.
Design a die-cutting device that can simultaneously bond multiple materials. The device uses a linear array of multiple placement boxes on a working platform and a connecting rod and multiple mounting templates installed at the output end of the press. Multiple cutting tools correspond to each placement box. The device uses a winding device and a press to achieve synchronous cutting of multiple blanks.
It improves the processing efficiency of the stamping machine, enables the die-cutting equipment to cut multiple blanks simultaneously, and improves processing efficiency.
Smart Images

Figure CN224310798U_ABST
Abstract
Description
Technical Field
[0001] This application relates to the technical field of die-cutting equipment, and in particular to a die-cutting equipment for simultaneously bonding multiple materials. Background Technology
[0002] Die-cutting equipment is a widely used processing equipment in industries such as electronics, packaging, printing, medical, and automotive. It is mainly used for cutting, creasing, and forming materials. Its specific structure includes a work platform, a placement box with an opening on the top surface of the work platform, a punching machine above the placement box, an installation template with a shape matching the opening on the output end of the punching machine, and a cutting blade mounted on the bottom surface of the installation template. The placement box has through-holes at both the front and rear ends. The output end of the punching machine faces upward and is located directly above the opening. The operator passes the blank through the through-holes into the placement box and connects the blank to a winding device. The operator intermittently winds up the blank using the winding device, causing the blank to move within the placement box. At the same time, the output end of the punching machine pushes the cutting blade through the opening into the placement box to cut the blank, thus completing the processing.
[0003] However, in the existing technology, the stamping press can only process a single blank, which is very inefficient. Therefore, this application proposes a die-cutting device that can simultaneously bond multiple materials, so as to enable the stamping press to cut multiple blanks at the same time, thereby improving the processing efficiency of the die-cutting device. Utility Model Content
[0004] In view of the shortcomings of the existing technology, the purpose of this application is to provide a die-cutting device that can simultaneously bond multiple materials, so as to enable the stamping press to cut multiple blanks at the same time, thereby improving the processing efficiency of the die-cutting device.
[0005] The above-mentioned objective of this application is achieved through the following technical solution: a die-cutting device for simultaneously bonding multiple materials, comprising a working platform, a placement box with an opening on the top surface of the working platform, a punching machine disposed above the placement box, an installation template disposed on the output end of the punching machine and having a shape conforming to the opening shape, and a cutting tool mounted on the bottom surface of the installation template. The placement box has through-holes at both the front and rear ends. Multiple placement boxes are linearly arrayed on the working platform. A connecting rod is fixedly installed on the output end of the punching machine. Multiple installation templates corresponding to the openings of the multiple placement boxes are mounted on the connecting rod. Different cutting tools are mounted on the multiple installation templates.
[0006] By adopting the above technical solution, multiple blanks are placed into different placement boxes through the through-holes and connected to a pre-set winding device. During processing, only the winding device and the punch press need to be started simultaneously. The punch press pushes the connecting rod downward, allowing the mounting template to extend into the placement box through the opening (the mounting template, which conforms to the shape of the opening, prevents the cutting tool from being misaligned when it extends into the placement box). This allows multiple cutting tools to process multiple blanks, thereby improving the processing efficiency of the punch press and enabling the punch press to cut multiple blanks simultaneously, thus improving the processing efficiency of the die-cutting equipment.
[0007] Furthermore, the bottom surface of the mounting template is provided with a mounting groove, the cutting tool includes a mounting back plate and a cutting blade fixedly mounted on the mounting back plate, the mounting back plate is provided with snap-fit structures on both sides for fixed connection to the mounting template, and the side walls of the mounting groove are provided with insertion slots for fixing the mounting back plate with the snap-fit structures.
[0008] Furthermore, the snap-fit structure includes a storage groove on both sides of the mounting back plate, a plug-in block inserted into the storage groove for extending into the plug-in slot, and a snap-fit spring provided in the storage groove for pushing the plug-in block into the plug-in slot. The upper surface of the mounting template is provided with a release structure for pushing the plug-in block out of the plug-in slot.
[0009] Furthermore, the detachment structure includes an adjustment groove located directly above and connected to the insertion groove within the mounting template, a push block inserted into the adjustment groove for pushing the insertion block out of the insertion groove, and an adjustment bolt with one end rotatably connected to the top of the push block and the other end extending out of the upper surface of the mounting template, wherein the adjustment bolt is threadedly connected to the mounting template.
[0010] While the above technical solution improves the processing efficiency of die-cutting equipment by using multiple mounting templates, different tools are used when processing different products. This necessitates disassembling and replacing each template individually, which is inconvenient. By using a snap-fit and release mechanism, when installing the cutting tool, the operator first tightens the adjusting bolt to move the push block upwards, ensuring it doesn't obstruct the insertion slot. Then, with the cutting blade facing down, the operator lifts the cutting back plate, aligns it with the mounting groove, and pushes it into the groove. The insertion block aligns with the insertion slot, and the snap-fit spring pushes the insertion block into the groove, securing the cutting back plate and completing the tool installation. To replace the cutting tool, simply reverse the adjusting bolt, moving it downwards to compress the insertion block and release the snap-fit spring from the insertion slot. The operator can then easily replace the cutting tool by removing the cutting back plate. This makes tool replacement much more convenient.
[0011] Furthermore, the end of the plug block away from the snap-fit spring is an arc-shaped portion, with the arched surface of the arc-shaped portion facing upwards.
[0012] By adopting the above technical solution, the pushing block can push the plug block out of the plug slot more smoothly.
[0013] Furthermore, the front end of the placement box is provided with an adjustment component for adjusting the height of the through opening.
[0014] Furthermore, the adjustment assembly includes sliding grooves on both sides of the through opening and placed on the box body, a fixed plate fixedly connected to the lower end of the through opening and whose upper surface is coplanar with the bottom surface of the through opening, a sliding plate located above the fixed plate and slidably connected to the box body through the sliding grooves, and control screws located on both sides of the upper surface of the sliding plate and threadedly connected to the fixed plate from top to bottom through the sliding plate, wherein the control screws are threadedly connected to the sliding plate.
[0015] By adopting the above technical solution and adjusting the component settings, the operator can change the distance between the sliding plate and the fixed plate by turning the control screw to adapt to different blank thicknesses and prevent the blank from bending or having foreign objects on the surface when it enters the placement box.
[0016] Furthermore, the mounting template is provided with connecting structures on both sides, the connecting structures including connecting plates fixedly disposed on both sides of the mounting template and fixing bolts threaded through the connecting plates and connected to the connecting rods.
[0017] By adopting the above technical solution, the template is installed on the connecting rod through the installation template connection structure. This makes it easier for workers to replace the template if it is damaged, as they only need to unscrew the fixing bolts.
[0018] In summary, this application includes at least one of the following beneficial technical effects:
[0019] 1. By setting multiple mounting templates, multiple blanks are placed into different placement boxes through the through-holes and connected to a pre-set winding device. During processing, only the winding device and the punch press need to be started simultaneously. The punch press pushes the connecting rod downward, allowing the mounting template to extend into the placement box through the opening (the mounting template, which conforms to the shape of the opening, can prevent the cutting tool from being misaligned when it extends into the placement box). This allows multiple cutting tools to process multiple blanks, thereby improving the processing efficiency of the punch press and enabling the punch press to cut multiple blanks simultaneously, thus improving the processing efficiency of the die-cutting equipment. Attached Figure Description
[0020] Figure 1This is a schematic diagram of the overall structure of the embodiment;
[0021] Figure 2 It is along Figure 1 Sectional view of line AA in the middle;
[0022] Figure 3 yes Figure 2 Enlarged view of section A in the middle;
[0023] Figure 4 yes Figure 3 Enlarged view of section B in the middle.
[0024] Reference numerals: 1. Working platform; 10. Box placement; 100. Through opening; 11. Opening; 12. Stamping machine; 13. Mounting template; 130. Mounting groove; 131. Insertion groove; 14. Connecting rod; 2. Cutting tool; 20. Mounting back plate; 21. Cutting blade; 3. Snap-fit structure; 30. Storage groove; 31. Insertion block; 32. Snap-fit spring; 33. Arc part; 4. Detachment structure; 40. Adjustment groove; 41. Push block; 42. Adjusting bolt; 5. Adjustment component; 50. Slide groove; 51. Fixing plate; 52. Sliding plate; 53. Control screw; 6. Connecting structure; 60. Connecting plate; 61. Fixing bolt. Detailed Implementation
[0025] The present application will be further described in detail below with reference to the accompanying drawings.
[0026] Example, refer to Figure 1 , Figure 2 , Figure 3A die-cutting device for simultaneously bonding multiple materials includes a work platform 1, a placement box 10 with an opening 11 on the top surface of the work platform 1, a punch 12 positioned above the placement box 10, an mounting template 13 with a shape conforming to the opening 11 and mounted on the output end of the punch 12, and a cutting blade 2 mounted on the bottom surface of the mounting template 13. The placement box 10 has through-holes 100 at both its front and rear ends. Multiple placement boxes 10 are linearly arrayed on the work platform 1. A connecting rod 14 is fixedly mounted on the output end of the punch 12, and multiple mounting templates 13, each corresponding to an opening 11 in one of the multiple placement boxes 10, are mounted on the connecting rod 14. Different cutting blades are mounted on the multiple mounting templates 13. Tool 2 involves inserting multiple blanks through the through-holes 100 of different placement boxes 10 and connecting them to a pre-set winding device. During processing, only the winding device and the punch 12 need to be started simultaneously. The punch 12 pushes the connecting rod 14 downward, allowing the mounting template 13 to extend into the placement box 10 through the opening 11 (the mounting template 13, which conforms to the shape of the opening 11, can prevent the cutting tool 2 from being misaligned when it extends into the placement box 10). This allows multiple cutting tools 2 to process multiple blanks, thereby improving the processing efficiency of the punch 12 and enabling the punch 12 to cut multiple blanks simultaneously, thus improving the processing efficiency of the die-cutting equipment.
[0027] Although the multiple mounting templates 13 improve the processing efficiency of the die-cutting equipment, different cutting tools are used when processing different products. In such cases, workers need to disassemble and replace each mounting template 13 one by one, which is very inconvenient. To solve this technical problem, [the following text is missing from the original] Figure 4In this embodiment, an installation groove 130 is provided on the bottom surface of the installation template 13. The cutting tool 2 includes an installation back plate 20 and a cutting blade 21 fixedly mounted on the installation back plate 20. The installation back plate 20 has snap-fit structures 3 on both sides for fixed connection to the installation template 13. The side walls of the installation groove 130 have insertion slots 131 for fixing the installation back plate 20 to the snap-fit structures 3. The snap-fit structure 3 includes a storage groove 30 on both sides of the installation back plate 20 and a tool inserted into the storage groove 30 for extending... The mounting template 13 has a plug-in block 31 inserted into the plug-in slot 131 and a snap-fit spring 32 disposed in the receiving groove 30 for pushing the plug-in block 31 into the plug-in slot 131. The upper surface of the mounting template 13 is provided with a release structure 4 for pushing the plug-in block 31 out of the plug-in slot 131. The release structure 4 includes an adjustment groove 40 opened in the mounting template 13, located directly above the plug-in slot 131 and communicating with the plug-in slot 131, a push block 41 inserted into the adjustment groove 40 for pushing the plug-in block 31 out of the plug-in slot 131, and one end of the push block 41. An adjusting bolt 42 is rotatably connected to the top of the push block 41, with the other end extending out of the upper surface of the mounting template 13. The adjusting bolt 42 is threadedly connected to the mounting template 13. Through the setting of the snap-fit structure 3 and the disengagement structure 4, when the operator installs the cutting tool 2, first, the adjusting bolt 42 is turned to move the push block 41 upward, so that it does not block the insertion slot 131. Then, the cutting blade 21 is simply turned downward, and the cutting back plate is picked up and aligned with the mounting groove 130. The cutting back plate is pushed in, so that the cutting back plate moves into the mounting groove 130. At this time, the insertion block 31 is aligned with the insertion slot 131, and the snap-fit spring 32 pushes the insertion block 31 into the insertion slot 131, fixing the cutting back plate and completing the installation of the tool. When replacing the cutting tool 2, the adjusting bolt 42 is simply turned in the opposite direction, so that the adjusting bolt 42 moves downward, squeezing the insertion block 31 and compressing the snap-fit spring 32 to disengage from the insertion slot 131. At this time, the operator only needs to remove the cutting back plate to replace the cutting tool 2, making it more convenient for the operator to replace the cutting tool 2.
[0028] In this embodiment, the end of the plug block 31 away from the snap-fit spring 32 is an arc portion 33, with the arc surface of the arc portion 33 facing upward, making it smoother when the push block 41 pushes the plug block 31 out of the plug slot 131.
[0029] In this embodiment, an adjustment component 5 for adjusting the height of the through-hole 100 at the front end of the placement box 10 is provided. The adjustment component 5 includes a sliding groove 50 on both sides of the through-hole 100 on the placement box 10, a fixed plate 51 fixedly connected to the placement box 10 at the lower end of the through-hole 100 and whose upper surface is coplanar with the bottom surface of the through-hole 100, a sliding plate 52 located above the fixed plate 51 and slidably connected to the placement box 10 through the sliding groove 50, and a control screw 53 located on both sides of the upper surface of the sliding plate 52 and threaded through the sliding plate 52 from top to bottom and threaded to the fixed plate 51. The control screw 53 is threaded to the sliding plate 52. By setting the adjustment component 5, the operator can change the distance between the sliding plate 52 and the fixed plate 51 by turning the control screw 53 to adapt to different blank thicknesses and prevent the blank from bending or having foreign objects on the surface when it enters the placement box 10.
[0030] In this embodiment, the mounting template 13 is provided with connecting structures 6 on both sides. The connecting structures 6 include connecting plates 60 fixedly installed on both sides of the mounting template 13 and fixing bolts 61 threaded through the connecting plates 60 and connected to the connecting rod 14. The mounting template 13 is installed on the connecting rod 14 through the connecting structures 6, so that if the mounting template 13 is damaged, the staff only needs to unscrew the fixing bolts 61 to replace the mounting template 13, making it more convenient for the staff to disassemble and install the mounting template 13.
[0031] Specific implementation process: Multiple blanks are placed into different placement boxes 10 through openings 100 and passed through the placement boxes 10. They are then connected to a pre-set winding device. During processing, the winding device and the press 12 are started simultaneously. The press 12 pushes the connecting rod 14 downward, so that the mounting template 13 extends into the placement box 10 through the opening 11, allowing multiple cutting tools 2 to process the multiple blanks.
[0032] The embodiments described in this specific implementation are preferred embodiments of this application and are not intended to limit the scope of protection of this application. Therefore, all equivalent changes made in accordance with the structure, shape and principle of this application should be covered within the scope of protection of this application.
Claims
1. A die-cutting device for simultaneously bonding multiple materials, characterized in that, The system includes a work platform (1), a placement box (10) with an opening (11) on the top surface of the work platform (1), a stamping machine (12) above the placement box (10), an installation template (13) on the output end of the stamping machine (12) and shaped to match the opening (11), and a cutting tool (2) installed on the bottom surface of the installation template (13). The placement box (10) has through openings (100) at both ends. Multiple placement boxes (10) are linearly arrayed on the work platform (1). A connecting rod (14) is fixedly installed on the output end of the stamping machine (12). Multiple installation templates (13) corresponding to the openings (11) of the multiple placement boxes (10) are installed on the connecting rod (14). Different cutting tools (2) are installed on the multiple installation templates (13).
2. The die-cutting equipment for simultaneously bonding multiple materials according to claim 1, characterized in that, The bottom surface of the mounting template (13) is provided with a mounting groove (130). The cutting tool (2) includes a mounting back plate (20) and a cutting blade (21) fixedly mounted on the mounting back plate (20). The mounting back plate (20) is provided with snap-fit structures (3) on both sides for fixed connection to the mounting template (13). The side walls of the mounting groove (130) are provided with insertion slots (131) for fixing the mounting back plate (20) with the snap-fit structures (3).
3. The die-cutting equipment for simultaneously bonding multiple materials according to claim 2, characterized in that, The snap-fit structure (3) includes a storage groove (30) on both sides of the mounting back plate (20), a plug-in block (31) inserted into the storage groove (30) for extending into the plug-in slot (131), and a snap-fit spring (32) provided in the storage groove (30) for pushing the plug-in block (31) into the plug-in slot (131). The upper surface of the mounting template (13) is provided with a release structure (4) for pushing the plug-in block (31) out of the plug-in slot (131).
4. The die-cutting equipment for simultaneously bonding multiple materials according to claim 3, characterized in that, The detachment structure (4) includes an adjustment groove (40) located directly above and connected to the insertion groove (131) within the mounting template (13), a push block (41) inserted into the adjustment groove (40) for pushing the insertion block (31) out of the insertion groove (131), and an adjustment bolt (42) with one end rotatably connected to the top of the push block (41) and the other end extending out of the upper surface of the mounting template (13). The adjustment bolt (42) is threadedly connected to the mounting template (13).
5. The die-cutting equipment for simultaneously bonding multiple materials according to claim 3, characterized in that, The end of the plug block (31) away from the snap-fit spring (32) is an arc portion (33), and the arc portion (33) has its arched surface facing upward.
6. The die-cutting equipment for simultaneously bonding multiple materials according to claim 1, characterized in that, An adjustment component (5) for adjusting the height of the through opening (100) is provided at the front end of the placement box (10).
7. The die-cutting equipment for simultaneously bonding multiple materials according to claim 6, characterized in that, The adjustment assembly (5) includes a sliding groove (50) on the placement box (10) on both sides of the through opening (100), a fixing plate (51) fixedly connected to the placement box (10) at the lower end of the through opening (100) and whose upper surface is coplanar with the bottom surface of the through opening (100), a sliding plate (52) located above the fixing plate (51) and slidably connected to the placement box (10) through the sliding groove (50), and a control screw (53) located on both sides of the upper surface of the sliding plate (52) and threaded through the sliding plate (52) from top to bottom and threaded to the fixing plate (51), wherein the control screw (53) is threaded to the sliding plate (52).
8. The die-cutting equipment for simultaneously bonding multiple materials according to claim 1, characterized in that, The installation template (13) is provided with a connecting structure (6) on both sides. The connecting structure (6) includes a connecting plate (60) fixedly installed on both sides of the installation template (13) and a fixing bolt (61) threaded through the connecting plate (60) and connected to the connecting rod (14).