Quality detection device for die-cutting machine

The automated adjustment structure of the die-cutting machine quality inspection device solves the problems of low inspection efficiency and insufficient accuracy of the die-cutting machine, achieving efficient and accurate inspection results.

CN224089181UActive Publication Date: 2026-04-07CHENGDU BEISHU PACKAGING TECHNOLOGY CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-03-03
Publication Date
2026-04-07

AI Technical Summary

Technical Problem

Existing die-cutting machines have low inspection efficiency and inaccurate results, mainly due to their reliance on human visual judgment.

Method used

A quality inspection device for a die-cutting machine was designed, comprising an inspection structure. The height and position of the inspection instrument are adjusted by a motor-driven pulley and transmission belt system. Combined with a transmission block and guide shaft, the inspection instrument is automatically adjusted, thereby improving inspection accuracy and efficiency.

Benefits of technology

This technology automates and improves the accuracy of the die-cutting machine's inspection process, increasing inspection efficiency, reducing human error, and ensuring the accuracy of inspection results.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to the technical field of die-cutting machines, in particular to a die-cutting machine quality detection device which comprises a bottom frame, a machining structure is arranged on the bottom frame, and a detection structure is arranged on the bottom frame. According to the die-cutting machine quality detection device, a first motor of a detection structure drives a second belt wheel to rotate, a first transmission block moves along a first guide shaft under the action of a first transmission belt, a fourth belt wheel drives a third belt wheel to move through a second transmission belt, and the second transmission belt moves on the third belt wheel and the fourth belt wheel; a second transmission block moves along a second guide shaft under the action of a second transmission belt, the first transmission block and the second transmission block can synchronously drive a moving frame to move so as to adjust the height of the detector, a second motor is driven, the second motor drives a lead screw to rotate, and a moving block moves along a guide rod under the action of the lead screw; and the horizontal moving direction of the detector can be adjusted.
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Description

Technical Field

[0001] This utility model relates to the field of die-cutting machine technology, and in particular to a quality inspection device for die-cutting machines. Background Technology

[0002] Different electronic products require flexible organic thin film materials with different specifications and sizes. For example, the beam splitters of cameras in mobile phones, tablets, and laptops are generally small square pieces with high precision requirements. Therefore, the semi-finished materials after vacuum coating need to be cut to meet the required size.

[0003] Currently, die-cutting machines are generally used for punching. Since the vapor-deposited film is usually square, the finished small square pieces are usually inspected under a microscope to check their shape, specifications, and surface defects such as cracks, particles, scratches, and burrs. This method is inefficient, and the results are also inaccurate due to differences in the operator's visual perception. Utility Model Content

[0004] The purpose of this invention is to provide a quality inspection device for die-cutting machines, in order to solve the problems mentioned in the background art, such as the low inspection efficiency of existing die-cutting machines and the inaccurate inspection results due to differences in the operator's visual perception.

[0005] To achieve the above objectives, this utility model provides the following technical solution: a die-cutting machine quality inspection device, including a base frame, a processing structure and an inspection structure, all mounted on the base frame;

[0006] The detection structure includes a placement frame, a first fixed frame, a first pulley, a second pulley, a first motor, a first guide shaft, a first transmission block, a first transmission belt, a second fixed frame, a third pulley, a fourth pulley, a second guide shaft, a second transmission block, a second transmission belt, a movable frame, a guide rod, a lead screw, a second motor, a movable block, a detector, and a connecting shaft. The placement frame is mounted on the base frame, the first fixed frame is mounted on the placement frame, the first pulley is movably mounted on the first fixed frame, the second pulley is movably mounted on the first fixed frame, the first transmission belt is disposed on the first pulley and the second pulley, the first motor is mounted on the first fixed frame and the drive end of the first motor is connected to the second pulley, the first guide shaft is mounted on the first fixed frame, and the first transmission block is movably mounted on the first guide shaft and connected to the first transmission belt. Next, the second fixed frame is mounted on the placement frame, the third pulley is movably mounted on the second fixed frame, the fourth pulley is movably mounted on the second fixed frame, the second guide shaft is mounted on the second fixed frame, the second transmission belt is disposed on the third pulley and the fourth pulley, the second transmission block is movably mounted on the second guide shaft and the second transmission block is connected to the second transmission belt, the movable frame is mounted on the first transmission block and the second transmission block, the guide rod is mounted on the movable frame, the lead screw is movably mounted on the movable frame, the second motor is mounted on the movable frame and the drive end of the second motor is connected to the lead screw, the movable block is movably disposed on the lead screw and the movable block is movably connected to the guide rod, the detector is mounted on the movable block, and one end of the connecting shaft is mounted on the second pulley and the fourth pulley.

[0007] Preferably, the base frame is provided with fixed support legs, and the placement frame is provided with reinforcing ribs.

[0008] Preferably, the first guide shaft is provided in a pair, and the second guide shaft is provided in a pair.

[0009] Preferably, the processing structure includes a support frame, a first rotating roller, a first gear, a second rotating roller, a rotating shaft, a second gear, a driven gear, a third motor, a conveyor belt, a die-cutting section, and a driving gear. The support frame is mounted on the base frame. The first rotating roller is movably mounted on the support frame. The first gear is mounted on one end of the first rotating roller. The second rotating roller is movably mounted on the support frame. The rotating shaft is movably mounted on the support frame and connected to one end of the second rotating roller. The second gear is mounted on the rotating shaft and meshes with the first gear. The third motor is mounted on the support frame. The driving gear is mounted on the third motor. The driven gear is mounted on the rotating shaft and meshes with the driving gear. The conveyor belt is mounted on the base frame. The die-cutting section is mounted on the base frame.

[0010] Preferably, the support frame is provided with a guide frame and an auxiliary wheel set.

[0011] Preferably, the movable block is adapted to the lead screw, and a pair of guide rods are provided.

[0012] Preferably, the first gear is adapted to the second gear, and the third motor is mounted on the support frame by bolts.

[0013] Compared with the prior art, the beneficial effects of this utility model are as follows: This die-cutting machine quality inspection device, through the first motor of the inspection structure driving the second pulley to rotate, the connecting shaft driving the fourth pulley to rotate under the action of the second pulley, the second pulley driving the first transmission belt to move on the first and second pulleys, the first transmission block moving along the first guide shaft under the action of the first transmission belt, the fourth pulley driving the third pulley to move through the second transmission belt, the second transmission belt moving on the third and fourth pulleys, the second transmission block moving along the second guide shaft under the action of the second transmission belt, the first and second transmission blocks can synchronously drive the moving frame to move, thereby adjusting the height of the inspection instrument, driving the second motor, the second motor driving the lead screw to rotate, the moving block moving along the guide rod direction under the action of the lead screw, thereby adjusting the horizontal movement direction of the inspection instrument, increasing its practicality. Attached Figure Description

[0014] Figure 1 This is a three-dimensional structural diagram of the present invention;

[0015] Figure 2 This is a three-dimensional structural diagram of the placement rack of this utility model;

[0016] Figure 3 This is a three-dimensional structural diagram of the auxiliary wheel assembly of this utility model;

[0017] Figure 4This is a schematic diagram of the movable block structure of this utility model;

[0018] In the diagram: 1. Base frame; 2. Processing structure; 201. Support frame; 202. First rotating roller; 203. First gear; 204. Second rotating roller; 205. Rotating shaft; 206. Second gear; 207. Driven gear; 208. Third motor; 209. Conveyor belt; 210. Die-cutting section; 211. Auxiliary wheel set; 212. Guide frame; 213. Drive gear; 3. Detection structure; 301. Placement frame; 302. First fixing frame; 303. First pulley; 304. Second pulley; 305. First motor; 306. First guide shaft; 307. First transmission block; 308. First transmission belt; 309. Second fixed frame; 310. Third pulley; 311. Fourth pulley; 312. Second guide shaft; 313. Second transmission block; 314. Second transmission belt; 315. Moving frame; 316. Guide rod; 317. Lead screw; 318. Second motor; 319. Moving block; 320. Detector; 321. Connecting shaft. Detailed Implementation

[0019] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments of the present utility model. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments. All other embodiments obtained by those skilled in the art based on the embodiments of the present utility model without creative effort are within the protection scope of the present utility model.

[0020] Please see Figure 1-4 This utility model provides a technical solution: a quality inspection device for a die-cutting machine, including a base frame 1, a processing structure 2 and an inspection structure 3 provided on the base frame 1;

[0021] The detection structure 3 includes a placement frame 301, a first fixed frame 302, a first pulley 303, a second pulley 304, a first motor 305, a first guide shaft 306, a first transmission block 307, a first transmission belt 308, a second fixed frame 309, a third pulley 310, a fourth pulley 311, a second guide shaft 312, a second transmission block 313, a second transmission belt 314, a movable frame 315, a guide rod 316, a lead screw 317, a second motor 318, a movable block 319, a detector 320, and a connecting shaft 321. The placement frame 301 is mounted on the base frame 1, the first fixed frame 302 is mounted on the placement frame 301, and the first pulley 303 is movably mounted on the first fixed frame 302. A pulley 304 is movably mounted on the first fixed frame 302. A first transmission belt 308 is disposed on the first pulley 303 and the second pulley 304. A first motor 305 is mounted on the first fixed frame 302, and the drive end of the first motor 305 is connected to the second pulley 304. A first guide shaft 306 is mounted on the first fixed frame 302. A first transmission block 307 is movably mounted on the first guide shaft 306, and the first transmission block 307 is connected to the first transmission belt 308. A second fixed frame 309 is mounted on the placement frame 301. A third pulley 310 is movably mounted on the second fixed frame 309. A fourth pulley 311 is movably mounted on the second fixed frame 301. On the fixed frame 309, the second guide shaft 312 is mounted on the second fixed frame 309. The second transmission belt 314 is disposed on the third pulley 310 and the fourth pulley 311. The second transmission block 313 is movably mounted on the second guide shaft 312 and is connected to the second transmission belt 314. The movable frame 315 is mounted on the first transmission block 307 and the second transmission block 313. The guide rod 316 is mounted on the movable frame 315. The lead screw 317 is movably mounted on the movable frame 315. The second motor 318 is mounted on the movable frame 315 and the drive end of the second motor 318 is connected to the lead screw 317. The movable block 319 is movable. The detector 320 is mounted on the lead screw 317 and the moving block 319 is movably connected to the guide rod 316. One end of the connecting shaft 321 is mounted on the second pulley 304 and the fourth pulley 311, driving the first motor 305. The first motor 305 drives the second pulley 304 to rotate, and the connecting shaft 321 drives the fourth pulley 311 to rotate under the action of the second pulley 304. The second pulley 304 drives the first transmission belt 308 to move on the first pulley 303 and the second pulley 304. The first transmission block 307 moves along the first guide shaft 306 under the action of the first transmission belt 308. The fourth pulley 311 drives the third pulley 310 to move through the second transmission belt 314.The second transmission belt 314 moves on the third pulley 310 and the fourth pulley 311. The second transmission block 313 moves along the second guide shaft 312 under the action of the second transmission belt 314. The first transmission block 307 and the second transmission block 313 can synchronously drive the moving frame 315 to move, thereby adjusting the height of the detector 320 and driving the second motor 318. The second motor 318 drives the lead screw 317 to rotate, and the moving block 319 moves along the guide rod 316 under the action of the lead screw 317, thereby adjusting the horizontal movement direction of the detector 320 and increasing its practicality.

[0022] Furthermore, the base frame 1 is provided with fixed legs, and several fixed legs are evenly distributed on the lower wall of the base frame 1. The several legs facilitate the stable placement of the device. The placement frame 301 is provided with reinforcing ribs, which increase the stability of the placement frame 301.

[0023] Furthermore, the first guide shaft 306 is provided in a pair, and the pair of first guide shafts 306 can make the movement of the first transmission block 307 more stable. The second guide shaft 312 is provided in a pair, and the pair of second guide shafts 312 can make the movement of the second transmission block 313 more stable.

[0024] Furthermore, the processing structure 2 includes a support frame 201, a first rotating roller 202, a first gear 203, a second rotating roller 204, a rotating shaft 205, a second gear 206, a driven gear 207, a third motor 208, a conveyor belt 209, a die-cutting section 210, and a driving gear 213. The support frame 201 is mounted on the base frame 1. The first rotating roller 202 is movably mounted on the support frame 201. The first gear 203 is mounted on one end of the first rotating roller 202. The second rotating roller 204 is movably mounted on the support frame 201. The rotating shaft 205 is movably mounted on the support frame 201 and is connected to one end of the second rotating roller 204. The second gear 206 is mounted on the rotating shaft 205 and meshes with the first gear 203. The third motor 208 is mounted on the support frame 201. The driving gear 213 is mounted on the third motor 208, the driven gear 207 is mounted on the rotating shaft 205 and meshes with the driving gear 213, the conveyor belt 209 is mounted on the base frame 1, and the die-cutting part 210 is mounted on the base frame 1. The third motor 208 drives the driving gear 213 to rotate, and the driven gear 207 rotates under the action of the driving gear 213. The rotating shaft 205 drives the second gear 206 to rotate under the action of the driven gear 207. The first gear 203 drives the first rotating roller 202 to rotate under the action of the second gear 206. The second gear 206 on the second rotating roller 204 rotates in the opposite direction to the first gear 203, so that the material can pass between the first rotating roller 202 and the second rotating roller 204 and enter the conveyor belt 209, and then be cut by the die-cutting part 210.

[0025] Furthermore, the support frame 201 is provided with a guide frame 212 and an auxiliary wheel set 211. The guide frame 212 is located at the feeding end of the device. The guide frame 212 can adjust the position of the material to facilitate die cutting. A pair of movable wheels are movably provided on the auxiliary wheel set 211. The pair of movable wheels abut against the first rotating roller 202 to stabilize the first rotating roller 202 when it moves.

[0026] Furthermore, the movable block 319 is adapted to the lead screw 317, and a pair of guide rods 316 are provided. The adapted movable block 319 can move stably on the lead screw 317, and the pair of guide rods 316 can make the movable block 319 move more stably.

[0027] Furthermore, the first gear 203 is adapted to the second gear 206, and the third motor 208 is mounted on the support frame 201 by bolts. The adapted first gear 203 and second gear 206 can remain stable when rotating, and the third motor 208 can be installed and removed by bolts on the support frame 201.

[0028] Working principle: When materials need to be processed, the third motor 208 drives the drive gear 213 to rotate. The driven gear 207, under the action of the drive gear 213, drives the driven gear 207 to rotate. The rotating shaft 205, under the action of the driven gear 207, drives the second gear 206 to rotate. The first gear 203, under the action of the second gear 206, drives the first rotating roller 202 to rotate. The second gear 206 on the second rotating roller 204 rotates in the opposite direction to the first gear 203, allowing the material to pass between the first rotating roller 202 and the second rotating roller 204 and onto the conveyor belt 209. The material is then cut by the die-cutting section 210. The first motor 305 drives the second pulley 304 to rotate. The connecting shaft 321, under the action of the second pulley 304, drives the fourth pulley 311 to rotate. The second pulley 304 drives the first transmission belt 308 to rotate... The first pulley 303 and the second pulley 304 move together. The first transmission block 307 moves along the first guide shaft 306 under the action of the first transmission belt 308. The fourth pulley 311 drives the third pulley 310 to move through the second transmission belt 314. The second transmission belt 314 moves on the third pulley 310 and the fourth pulley 311. The second transmission block 313 moves along the second guide shaft 312 under the action of the second transmission belt 314. The first transmission block 307 and the second transmission block 313 can synchronously drive the moving frame 315 to move, thereby adjusting the height of the detector 320 and driving the second motor 318. The second motor 318 drives the lead screw 317 to rotate. The moving block 319 moves along the direction of the guide rod 316 under the action of the lead screw 317, thereby adjusting the horizontal movement direction of the detector 320 and facilitating the adjustment of the detection position according to different materials. Although embodiments of the present invention have been shown and described, it will be understood by those skilled in the art that various changes, modifications, substitutions and alterations can be made to these embodiments without departing from the principles and spirit of the present invention, the scope of which is defined by the appended claims and their equivalents.

Claims

1. A quality inspection device for a die-cutting machine, comprising a base frame (1), characterized in that: The base frame (1) is provided with a processing structure (2) and a detection structure (3). The detection structure (3) includes a placement frame (301), a first fixed frame (302), a first pulley (303), a second pulley (304), a first motor (305), a first guide shaft (306), a first transmission block (307), a first transmission belt (308), a second fixed frame (309), a third pulley (310), a fourth pulley (311), a second guide shaft (312), a second transmission block (313), a second transmission belt (314), a moving frame (315), a guide rod (316), a lead screw (317), a second motor (318), a moving block (319), a detector (320), and a connecting shaft (321). The placement frame (301) is mounted on the base frame (1). A fixed frame (302) is mounted on the placement frame (301). A first pulley (303) is movably mounted on the first fixed frame (302). A second pulley (304) is movably mounted on the first fixed frame (302). A first transmission belt (308) is disposed on the first pulley (303) and the second pulley (304). A first motor (305) is mounted on the first fixed frame (302), and the driving end of the first motor (305) is connected to the second pulley (304). A first guide shaft (306) is mounted on the first fixed frame (302). A first transmission block (307) is movably mounted on the first guide shaft (306), and the first transmission block (307) is movably mounted on the first guide shaft (306). 307) is connected to the first transmission belt (308), the second fixed frame (309) is mounted on the placement frame (301), the third pulley (310) is movably mounted on the second fixed frame (309), the fourth pulley (311) is movably mounted on the second fixed frame (309), the second guide shaft (312) is mounted on the second fixed frame (309), the second transmission belt (314) is disposed on the third pulley (310) and the fourth pulley (311), the second transmission block (313) is movably mounted on the second guide shaft (312) and the second transmission block (313) is connected to the second transmission belt (314), and the movable frame (315) is mounted on the first transmission belt (308). The first transmission block (307) and the second transmission block (313) are mounted on the first transmission block (307), the guide rod (316) is mounted on the movable frame (315), the lead screw (317) is movably mounted on the movable frame (315), the second motor (318) is mounted on the movable frame (315) and the driving end of the second motor (318) is connected to the lead screw (317), the movable block (319) is movably mounted on the lead screw (317) and the movable block (319) is movably connected to the guide rod (316), the detector (320) is mounted on the movable block (319), and one end of the connecting shaft (321) is mounted on the second pulley (304) and the fourth pulley (311).

2. The die-cutting machine quality inspection device according to claim 1, characterized in that: The base frame (1) is provided with fixed support legs, and the placement frame (301) is provided with reinforcing ribs.

3. The die-cutting machine quality inspection device according to claim 1, characterized in that: The first guide shaft (306) is provided in a pair, and the second guide shaft (312) is provided in a pair.

4. The die-cutting machine quality inspection device according to claim 1, characterized in that: The processing structure (2) includes a support frame (201), a first rotating roller (202), a first gear (203), a second rotating roller (204), a rotating shaft (205), a second gear (206), a driven gear (207), a third motor (208), a conveyor belt (209), a die-cutting section (210), and a driving gear (213). The support frame (201) is mounted on the base frame (1). The first rotating roller (202) is movably mounted on the support frame (201). The first gear (203) is mounted on one end of the first rotating roller (202). The second rotating roller (204) is movably mounted on the support frame (201). The rotating shaft (205) is movably mounted on the base frame (1). The support frame (201) is mounted on the rotating shaft (205) and one end of the second rotating roller (204) is connected. The second gear (206) is mounted on the rotating shaft (205) and meshes with the first gear (203). The third motor (208) is mounted on the support frame (201). The driving gear (213) is mounted on the third motor (208). The driven gear (207) is mounted on the rotating shaft (205) and meshes with the driving gear (213). The conveyor belt (209) is mounted on the base frame (1). The die-cutting part (210) is mounted on the base frame (1).

5. The die-cutting machine quality inspection device according to claim 4, characterized in that: The support frame (201) is provided with a guide frame (212) and an auxiliary wheel set (211).

6. The die-cutting machine quality inspection device according to claim 1, characterized in that: The movable block (319) is adapted to the lead screw (317), and a pair of guide rods (316) are provided.

7. The die-cutting machine quality inspection device according to claim 4, characterized in that: The first gear (203) is adapted to the second gear (206), and the third motor (208) is mounted on the support frame (201) by bolts.