Shoe box punching device
By designing a waste collection mechanism for the shoe box opening device, and utilizing a drive cylinder and guide plate structure to automatically collect waste, the problem of manual waste cleaning in existing technologies is solved, and production efficiency is improved.
Patent Information
- Application Number
- CN202422719717.3
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-11-07
- Publication Date
- 2025-11-04
- Estimated Expiration
- 2034-11-07
AI Technical Summary
Existing shoebox punching equipment requires manual cleaning of the waste generated after punching, which wastes labor and affects production efficiency.
A shoe box punching device was designed, which includes a conveyor belt, a puncher and a waste collection mechanism. The device uses a drive cylinder to drive a lifting rod to move the collection box to collect waste. Combined with a guide plate and a vibration motor, the waste is ensured to enter the collection box smoothly, avoiding manual cleaning.
It enables automatic waste collection, saves manpower, and improves shoe box production efficiency.
Smart Images

Figure CN223507777U_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of cardboard box processing technology, and more particularly to a shoe box opening device. Background Technology
[0002] In the shoe manufacturing process, shoe boxes are used to package the shoes, completing the entire production process. During the sale of shoes, holes need to be made on the sides of the stacked shoe boxes for easy retrieval. Existing shoe box punching equipment uses a conveyor belt to transport shoe boxes sequentially, with a cylinder-driven punch installed on one side of the conveyor belt to punch holes in the boxes. However, the punched-out box material falls inside the shoe box, creating waste that needs to be manually removed later, wasting labor and hindering production efficiency. Therefore, designing a shoe box punching device that saves labor and accelerates shoe box production has become an urgent technical problem to be solved. Summary of the Invention
[0003] To solve the above problems, the present invention provides a shoe box opening device.
[0004] The present invention provides a shoe box punching device, comprising a conveyor belt and a punch installed on one side of the conveyor belt. A waste collection mechanism is mounted above the conveyor belt, the position of which matches the punch. The waste collection mechanism includes a drive cylinder, a lifting rod, and a collection box. The drive cylinder is connected to the top of the lifting rod for lifting and lowering drive. The collection box is connected to the bottom of the lifting rod. The collection box has an inlet on the side facing the punch, and the inlet is connected to a stacking cavity located inside the collection box. The position and size of the inlet match the size of the shoe box waste.
[0005] With the above structure, shoe boxes are sequentially conveyed by a conveyor belt through a puncher, which punches holes in the sides of the shoe boxes. A waste collection mechanism is activated in conjunction with the puncher, and a cylinder drives a lifting rod to move up and down repeatedly. The position of the waste collection mechanism matches the puncher. When the puncher is punching, the lifting rod lowers the collection box at the bottom into the shoe box. The waste material that is punched out is pushed into the shoe box by the impact force of the punching, passes through the matching feed port, and falls into the stacking cavity in the collection box for collection. No manual removal is required in subsequent work, saving labor and helping to improve the production efficiency of shoe boxes.
[0006] As a further improvement of this utility model, the feed inlet is connected to a first guide plate, and the inner wall of the stacking cavity is provided with a second guide plate. The first guide plate extends obliquely downward into the stacking cavity. A falling gap is provided between one end of the second guide plate connected to the stacking cavity and the lower end of the first guide plate, and the other end extends obliquely downward to below the first guide plate. The falling gap is matched with the size of the shoe box waste.
[0007] With the above structure, the shoe box waste passes through the inlet and falls onto the first guide plate. It slides down the first guide plate to the falling interval. The falling interval matches the size of the shoe box waste, and the waste passes through the falling interval to the second guide plate. It then slides down the second guide plate to the bottom of the stacking chamber. The second guide plate extends downward to below the first guide plate, making it difficult for the waste falling into the stacking chamber to fall out of the inlet in reverse.
[0008] As a further improvement of this utility model, a vibration motor is provided on the bottom surface of the first guide plate.
[0009] With the above structure, a vibration motor is installed on the bottom surface of the first guide plate. The vibration motor is started to shake off the waste material falling onto the first guide plate, providing the waste material with the power to slide downwards and preventing some waste material from remaining on the first guide plate due to friction.
[0010] As a further improvement of this utility model, the bottom of the collection box is provided with a discharge port and a sealing plate. The discharge port is connected to the bottom of the stacking cavity. A sealing plate is hinged to one side of the discharge port, and a locking block is provided on the other side. The sealing plate covers the discharge port and is provided with a lock that matches the locking block.
[0011] With the above structure, by fastening the buckle to the locking block and fixing the sealing plate to the discharge port, when it is necessary to clean the waste in the stacking cavity, the buckle is removed from the locking block, and the sealing plate hinged to the discharge port is flipped downwards so that the waste in the stacking cavity can fall out of the discharge port into the collection box, which is convenient for centralized cleaning of shoe box waste.
[0012] As a further improvement of this utility model, the side of the collection box is connected to a limiting rod for abutting against the inside of the shoe box.
[0013] With the above structure, by connecting a limiting rod to the side of the collection box, as the drive cylinder drives the collection box to descend into the shoe box, the limiting rod simultaneously abuts against the inside of the shoe box, preventing the shoe box from shifting during drilling and affecting the drilling accuracy. Attached Figure Description
[0014] Figure 1 The diagram shown is a structural schematic of this utility model.
[0015] Figure 2 The diagram shown is a schematic of the discharge port structure.
[0016] Figure 3 The diagram shown is a cross-sectional view of the material collection box.
[0017] 1-Conveyor belt, 2-Puncher, 3-Drive cylinder, 4-Lifting rod, 5-Collection box, 6-Feed inlet, 7-First guide plate, 8-Second guide plate, 9-Falling interval, 10-Vibration motor, 11-Discharge port, 12-Sealing plate, 13-Locking block, 14-Lock, 15-Limiting rod. Detailed Implementation
[0018] like Figures 1-3 The invention relates to a shoe box punching device, comprising a conveyor belt 1 and a punch 2 installed on one side of the conveyor belt 1. A waste collection mechanism is mounted above the conveyor belt 1, and the position of the waste collection mechanism matches that of the punch 2. The waste collection mechanism includes a drive cylinder 3, a lifting rod 4, and a collection box 5. The drive cylinder 3 is connected to the top of the lifting rod 4 for lifting and lowering drive. The collection box 5 is connected to the bottom of the lifting rod 4. The collection box 5 has an inlet 6 on the side facing the punch 2. The inlet 6 is connected to a stacking cavity located inside the collection box 5. The position and size of the inlet 6 match the size of the shoe box waste.
[0019] Shoe boxes are sequentially conveyed by conveyor belt 1 through punch 2, where holes are punched on the sides of the shoe boxes. A waste collection mechanism is activated in conjunction with punch 2, driving cylinder 3 to move lifting rod 4 back and forth. The position of the waste collection mechanism matches that of punch 2. When punch 2 is punching, lifting rod 4 drives the bottom collection box 5 to descend into the shoe box. The waste material that is knocked out is pushed into the shoe box by the impact of punching, passes through the matching feed port 6, and falls into the stacking cavity in the collection box 5 for collection. No manual removal is required in subsequent work, saving labor and helping to improve the production efficiency of shoe boxes.
[0020] The feed inlet 6 is connected to a first guide plate 7, and the inner wall of the stacking cavity is provided with a second guide plate 8. The first guide plate 7 extends obliquely downward into the stacking cavity. A falling gap 9 is provided between one end of the second guide plate 8 connected to the stacking cavity and the lower end of the first guide plate 7, and the other end extends obliquely downward to below the first guide plate 7. The falling gap 9 is matched with the size of the shoe box waste.
[0021] The waste from the shoeboxes passes through the inlet 6 and falls onto the first guide plate 7. It then slides down the first guide plate 7 to the falling interval 9. The falling interval 9 is matched with the size of the waste from the shoeboxes, and the waste passes through the falling interval 9 and falls onto the second guide plate 8. It then slides down the second guide plate 8 to the bottom of the stacking chamber. The second guide plate 8 extends downward to below the first guide plate 7, making it difficult for the waste falling into the stacking chamber to fall back out of the inlet 6.
[0022] The bottom surface of the first guide plate 7 is provided with a vibration motor 10.
[0023] A vibration motor 10 is installed on the bottom surface of the first guide plate 7. When the vibration motor 10 is started, the waste material falling on the first guide plate 7 is shaken off, providing the waste material with the power to slide downwards, and preventing some waste material from remaining on the first guide plate 7 due to friction.
[0024] The bottom of the collection box 5 is provided with a discharge port 11 and a sealing plate 12. The discharge port 11 is connected to the bottom of the stacking chamber. The sealing plate 12 is hinged to one side of the discharge port 11 and a locking block 13 is provided on the other side. The sealing plate 12 covers the discharge port 11 and is provided with a latch 14 that matches the locking block 13.
[0025] By fastening the buckle 14 onto the locking block 13, the sealing plate 12 is fixed to the discharge port 11. When it is necessary to clean the waste in the stacking cavity, the buckle 14 is removed from the locking block 13, and the sealing plate 12 hinged to the discharge port 11 is flipped downwards so that the waste in the stacking cavity can fall from the discharge port 11 to the outside of the collection box 5, which is convenient for centralized cleaning of shoe box waste.
[0026] The side of the material collection box 5 is connected to a limiting rod 15 for abutting against the inside of the shoe box.
[0027] By connecting a limiting rod 15 to the side of the material collection box 5, as the driving cylinder 3 drives the material collection box 5 to descend into the shoe box, the limiting rod 15 simultaneously abuts against the inside of the shoe box, preventing the shoe box from shifting during drilling and affecting the drilling accuracy.
Claims
1. A shoebox punching device, comprising a conveyor belt (1) and a punch (2) mounted on one side of the conveyor belt (1), characterized in that: A waste collection mechanism is installed above the conveyor belt (1). The position of the waste collection mechanism matches the hole punch (2). The waste collection mechanism includes a drive cylinder (3), a lifting rod (4), and a collection box (5). The drive cylinder (3) is connected to the top of the lifting rod (4) for lifting and lowering drive. The collection box (5) is connected to the bottom of the lifting rod (4). The collection box (5) has a feed inlet (6) on the side facing the hole punch (2). The feed inlet (6) is connected to a stacking cavity located inside the collection box (5). The position and size of the feed inlet (6) match the size of the shoe box waste.
2. The shoe box opening device according to claim 1, characterized in that: The feed inlet (6) is connected to a first guide plate (7), and the inner wall of the stacking cavity is provided with a second guide plate (8). The first guide plate (7) extends obliquely downward into the stacking cavity. A falling gap (9) is provided between one end of the second guide plate (8) connected to the stacking cavity and the lower end of the first guide plate (7), and the other end extends obliquely downward to the lower part of the first guide plate (7). The falling gap (9) is matched with the size of the shoe box waste.
3. The shoe box opening device according to claim 2, characterized in that: The bottom surface of the first guide plate (7) is provided with a vibration motor (10).
4. The shoe box opening device according to claim 1, characterized in that: The bottom of the collection box (5) is provided with a discharge port (11) and a sealing plate (12). The discharge port (11) is connected to the bottom of the stacking chamber. The sealing plate (12) is hinged on one side of the discharge port (11) and a locking block (13) is provided on the other side. The sealing plate (12) covers the discharge port (11) and is provided with a buckle (14) that matches the locking block (13).
5. The shoe box opening device according to claim 1, characterized in that: The side of the collection box (5) is connected to a limiting rod (15) for abutting against the inside of the shoe box.