Uninterrupted paperboard overturning and feeding equipment

By designing uninterrupted cardboard flip-loading equipment, the automatic flip and continuous conveying of materials are achieved using power components and conveyor belt systems, which solves the problem of inefficiency in the prior art, improves production efficiency and reduces the labor intensity of workers.

CN223133587UActive Publication Date: 2025-07-22TANGSHAN CITY TONGCHUANG MASCH MFG CO LTD
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Patent Information

Application Number
CN202421949744.3
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-08-13
Publication Date
2025-07-22
Estimated Expiration
2034-08-13

AI Technical Summary

Technical Problem

The existing cardboard feeding mechanism is inefficient and cannot automatically turn the board, resulting in high labor intensity for workers, low production speed, and prone to errors.

Method used

An uninterrupted cardboard flip-loading equipment is designed to drive the main and secondary conveyor belts and electromagnetic slides through power components to realize automatic flip and uninterrupted conveyor materials, combined with a adjustable length conveyor belt to adapt to materials of different sizes.

Benefits of technology

It improves material conveying efficiency, reduces workers' labor intensity, ensures production continuity and efficiency, and reduces the probability of operation errors.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses uninterrupted paperboard overturning and feeding equipment, which relates to the technical field of paperboard carton packaging and comprises a power component used for providing power for the equipment, a main platform located at one end of the power component, a main lifting platform located at one end of the power component and on one side of the main platform, and an auxiliary pushing structure located at the top of the main lifting platform. When the feeding device is used, the motor is started, the first conveying belt rotates clockwise, the second conveying belt rotates anticlockwise, then materials are placed on the top of the feeding rod, the telescopic rod is retracted, the feeding rod rotates anticlockwise, the materials are turned over, then the materials are moved to the second conveying belt, and then the next batch of materials are conveyed. The second conveying belt conveys the materials to the main platform and then conveys the next batch of materials, continuous material conveying is achieved, the working efficiency is improved, the second conveying belt is long or short, the feeding rod can be controlled according to the sizes of the materials, and therefore time is saved, and the working efficiency is further improved.
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Description

Technical Field

[0001] The utility model relates to the technical field of paperboard carton packaging, in particular to an uninterrupted cardboard turning and feeding device. Background Technique

[0002] Packaging cardboard has the advantages of good shock resistance, printable, light weight and recyclable, so it is widely used in the field of product packaging and becomes the most commonly used material for packaging boxes. With the development of the economy, the demand for packaging boxes is also increasing. Correspondingly, it is necessary to improve the production speed of packaging cardboard and packaging boxes.

[0003] During the production process of cardboard, manual feeding is required, and manual turning of the cardboard is also required. For operators, long-term repetitive labor is likely to cause restlessness, thus increasing the probability of operation errors, and the production efficiency is also relatively low. For this reason, a cardboard feeding mechanism is provided (specifically refer to the patent number: 202123064627.8), which includes a frame. A paper roll feeding mechanism, a feeding mechanism and a cutting mechanism are sequentially arranged on the frame from left to right; the paper roll feeding mechanism includes a paper roll, a feeding roller, a support block and a support wheel. The paper roll is wound around the feeding roller, and the end of the feeding roller is arranged on two support wheels; there are two feeding mechanisms, and the two feeding mechanisms are arranged at the same height. The feeding mechanism includes a driven roller and a driving roller arranged parallel up and down. An adjusting seat is fixedly installed above the mounting seat, and the driven roller can move up and down in the adjusting seat. Through the setting of the paper roll feeding mechanism, the feeding mechanism and the cutting mechanism, the processes of automatic feeding, feeding, flattening and cutting of the cardboard are realized. Through the setting of the two feeding mechanisms, the paper roll is flattened during the process of transporting the paper roll, and the flattening rate is faster. At the same time, it prevents the cardboard from deforming in subsequent processing and affecting the processing, and improves the work quality.

[0004] However, the efficiency of the existing cardboard feeding mechanism is still relatively low, which cannot meet the production requirements, and the cardboard cannot be turned over, and manual turning is still required, resulting in a relatively high labor intensity of the workers, further reducing the work efficiency, and long-term labor may cause workers to make operation errors. Content of the Utility Model

[0005] The purpose of the utility model is to provide an uninterrupted cardboard turning and feeding device to solve the problems of low efficiency of the existing cardboard feeding mechanism, inability to complete automatic turning of the cardboard, manual turning required, resulting in relatively high labor intensity of workers and low cardboard production speed.

[0006] To achieve the above purpose, the utility model provides the following technical solutions: An uninterrupted cardboard turning and feeding device, including:

[0007] A power component, used to provide power for the device;

[0008] The main platform is located at one end of the power component;

[0009] The main lifting platform is located at one end of the power component and on one side of the main platform;

[0010] The auxiliary pushing structure is located on the top of the main lifting platform;

[0011] The power component includes a housing. A first motor is provided inside the housing. A second motor is provided on one side of the first motor. A first driving wheel is provided outside the output end of the first motor. A first belt is provided outside the first driving wheel. A first driven wheel is provided inside the top of the first belt. A second driving wheel is provided outside the output end of the second motor. A second belt is provided outside the second driving wheel. A second driven wheel is provided inside the top of the second belt. A support plate is provided at the bottom of the first motor and the second motor. The main platform includes support vertical plates. The number of the support vertical plates is two groups. A support beam is provided between the two groups of support vertical plates. A first driving shaft is provided on one side of the adjacent end faces of the two groups of support vertical plates. A first rotating cylinder is provided outside the first driving shaft. A first conveyor belt is provided outside the first rotating cylinder. A first driven rotating cylinder is provided inside the first conveyor belt on the side far from the first rotating cylinder. The main lifting platform includes a support frame. A material placing frame is provided on one side of the support frame. A second driving shaft is provided inside the support frame on the side far from the material placing frame. A second rotating cylinder is provided outside the second driving shaft. A plurality of groups of second conveyor belts are evenly provided outside the second rotating cylinder. The number of the plurality of groups of second conveyor belts is six groups. Second driven rotating cylinders are provided inside the six groups of second conveyor belts on the side far from the second rotating cylinder. The auxiliary pushing structure includes electromagnetic slide rails. The number of the electromagnetic slide rails is six groups. A roller is embedded on one side of each group of electromagnetic slide rails. A feeding rod is provided on the top of each group of electromagnetic slide rails. A connecting block is provided between two adjacent feeding rods. A connecting rod is provided at the bottom of each connecting block. An electric telescopic rod is provided at the bottom of each connecting rod.

[0012] As a further scheme of the present utility model: The first driving shaft is connected with the first driven wheel in a clamping manner. The first driving shaft is rotationally connected with the support vertical plate through a bearing. The second driving shaft is connected with the second driven wheel in a clamping manner. The second driving shaft is rotationally connected with the support frame through a bearing.

[0013] As a further scheme of the present utility model: A movable shaft is provided at the middle position of the first driven rotating cylinder. The first driven rotating cylinder is rotationally connected with the support vertical plate through the mutual cooperation of the movable shaft and the bearing.

[0014] As a further solution of the present utility model: Rolling frames are provided at the middle positions of the six groups of the second driven rotating cylinders, and the second driven rotating cylinders are rotationally connected to the rolling frames through bearings. Among the six groups of the second conveyor belts, three groups of the second conveyor belts are longer, and three groups of the second conveyor belts are shorter.

[0015] As a further solution of the present utility model: Among the six groups of the electromagnetic slide rails, three groups of the electromagnetic slide rails are longer, and three groups of the electromagnetic slide rails are shorter. Activity grooves are provided at the tops of four of the six groups of the electromagnetic slide rails, and four of the six groups of the feeding rods are movably connected to the electromagnetic slide rails through the activity grooves.

[0016] As a further solution of the present utility model: Slide grooves are provided on the outer sides of the six groups of the rollers, and the six groups of the feeding rods are movably connected to the rollers through the slide grooves.

[0017] Compared with the prior art, the beneficial effects of the present utility model are as follows:

[0018] By means of the provided main lifting platform, the feeding rod moves along the electromagnetic slide rail towards the side of the blanking rack, and then the feeding rod is rotated clockwise to extend the telescopic rod, and the feeding rod is placed on the top of the blanking rack. During use, the first motor and the second motor are started, the first motor rotates clockwise, the second motor rotates counterclockwise, driving the first driving wheel to rotate clockwise and the second driving wheel to rotate counterclockwise. Under the action of the first belt and the second belt, the first driven wheel is driven to rotate clockwise and the second driven wheel is driven to rotate counterclockwise, so that the first driving shaft rotates clockwise and the second driving shaft rotates counterclockwise, driving the first rotating cylinder and the first conveyor belt to rotate clockwise and the second rotating cylinder and the second conveyor belt to rotate counterclockwise. Then, the material is manually placed on the top of the feeding rod, the telescopic rod is retracted, the feeding rod is rotated counterclockwise, causing the material to flip, and then the feeding rod moves along the electromagnetic slide rail towards the side away from the blanking rack. When the material contacts the second conveyor belt, the second conveyor belt drives the material to be lifted. At this time, the feeding rod moves along the electromagnetic slide rail towards the side of the blanking rack again to transport the next batch of materials. The original material is lifted to the top of the first conveyor belt by the second conveyor belt and the material is transported to the designated position. At this time, the next batch of materials has been transported to the second conveyor belt by the feeding rod, thus realizing the continuous transportation of materials, and the materials can be automatically flipped, increasing the transportation efficiency of the materials, reducing the labor intensity of workers. Moreover, the sizes of the materials are large and small, and the lengths of the second conveyor belts are also long and short. When the feeding rod transports larger-sized materials, when the materials contact the second conveyor belt, the feeding rod can return, thus saving time and further improving the working efficiency. Description of the Drawings

[0019] Figure 1 Is a three-dimensional view of the present utility model;

[0020] Figure 2 Is a three-dimensional view of a partial structure of the present utility model;

[0021] Figure 3 This is an enlarged view of the present utility model A.

[0022] In the figure: 1. Power assembly; 101. Housing; 102. First motor; 103. Second motor; 104. First driving wheel; 105. First belt; 106. First driven wheel; 107. Second driving wheel; 108. Second belt; 109. Second driven wheel; 1010. Support plate; 2. Main platform; 201. Support vertical plate; 202. Support beam; 203. First driving shaft; 204. First rotating cylinder; 205. First conveyor belt; 206. First driven rotating cylinder; 3. Main lifting platform; 301. Support frame; 302. Feeding rack; 303. Second driving shaft; 304. Second rotating cylinder; 305. Second conveyor belt; 306. Second driven rotating cylinder; 4. Auxiliary pushing structure; 401. Electromagnetic slide rail; 402. Feeding rod; 403. Roller; 404. Telescopic rod; 405. Connecting rod; 406. Connecting block. Detailed implementation manners

[0023] Next, the technical solutions in the embodiments of the present utility model will be clearly and completely described in conjunction with the accompanying drawings in the embodiments of the present utility model. Obviously, the described embodiments are only a part of the embodiments of the present utility model, rather than all the embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative efforts shall fall within the protection scope of the present utility model.

[0024] In the description of the present utility model, it should be noted that the orientation or positional relationship indicated by the terms "center", "upper", "lower", "left", "right", "vertical", "horizontal", "inside", "outside", etc. is based on the orientation or positional relationship shown in the drawings, and is only for the convenience of describing the present utility model and simplifying the description, rather than indicating or implying that the device or element referred to must have a specific orientation, be constructed and operated in a specific orientation, and therefore cannot be understood as a limitation to the present utility model. In addition, the terms "first", "second", "third" are only used for descriptive purposes and cannot be understood as indicating or implying relative importance. In the description of the present utility model, it should be noted that unless otherwise clearly defined and limited, the terms "installation", "connection", "connection", "setting" should be understood in a broad sense. For example, it can be a fixed connection, a detachable connection, or an integral connection; it can be a mechanical connection or an electrical connection; it can be directly connected or indirectly connected through an intermediate medium, and it can be the communication inside two elements. For those of ordinary skill in the art, the specific meanings of the above terms in the present utility model can be understood according to specific situations. The embodiments of the present utility model will be described below according to its overall structure.

[0025] Please refer to Figures 1 to 3 In the embodiment of the present utility model, an uninterrupted cardboard turning and feeding device includes:

[0026] A power component 1 for providing power for the device;

[0027] A main platform 2 located at one end of the power component 1;

[0028] A main lifting platform 3 located at one end of the power component 1 and on one side of the main platform 2;

[0029] A secondary pushing structure 4 located on the top of the main lifting platform 3;

[0030] The power component 1 includes a housing 101. Inside the housing 101, there is a first motor 102. On one side of the said first motor 102, there is a second motor 103. Outside the output end of the first motor 102, there is a first driving wheel 104. Outside the first driving wheel 104, there is a first belt 105. Inside the top of the first belt 105, there is a first driven wheel 106. Outside the output end of the second motor 103, there is a second driving wheel 107. Outside the second driving wheel 107, there is a second belt 108. Inside the top of the second belt 108, there is a second driven wheel 109. At the bottom of the first motor 102 and the second motor 103, there is a support plate 1010. The main platform 2 includes support vertical plates 201. The number of the support vertical plates 201 is two groups. Between the two groups of support vertical plates 201, there is a support beam 202. On one side of the adjacent end faces of the two groups of support vertical plates 201, there is a first driving shaft 203. Outside the first driving shaft 203, there is a first rotating cylinder 204. Outside the first rotating cylinder 204, there is a first conveyor belt 205. Inside the first conveyor belt 205 on the side away from the first rotating cylinder 204, there is a first driven rotating cylinder 206. The main lifting platform 3 includes a support frame 301. On one side of the support frame 301, there is a feeding frame 302. Inside the support frame 301 on the side away from the feeding frame 302, there is a second driving shaft 303. Outside the second driving shaft 303, there is a second rotating cylinder 304. Outside the second rotating cylinder 304, there are six groups of second conveyor belts 305 evenly arranged. On the side of the six groups of second conveyor belts 305 away from the second rotating cylinder 304, there are second driven rotating cylinders 306 inside. The secondary pushing structure 4 includes six electromagnetic slide rails 401. On one side of each electromagnetic slide rail 401, there is a roller 403 embedded. On the top of each electromagnetic slide rail 401, there is a feeding rod 402. Between two adjacent feeding rods 402, there is a connecting block 406. At the bottom of each connecting block 406, there is a connecting rod 405. At the bottom of each connecting rod 405, there is an electric telescopic rod 404.

[0031] Please pay special attention to Figure 1 and 2, the first driving shaft 203 is clamped and connected to the first driven wheel 106. The first driving shaft 203 is rotatably connected to the supporting vertical plate 201 through a bearing. The second driving shaft 303 is clamped and connected to the second driven wheel 109. The second driving shaft 303 is rotatably connected to the supporting frame 301 through a bearing.

[0032] Please refer particularly to Figure 1 and 2 , a movable shaft is provided at the middle position of the first driven rotating cylinder 206. The first driven rotating cylinder 206 is rotatably connected to the supporting vertical plate 201 through the mutual cooperation of the movable shaft and the bearing.

[0033] Please refer particularly to Figure 1 and 3 , rolling frames are provided at the middle positions of the six groups of second driven rotating cylinders 306. The second driven rotating cylinders 306 are rotatably connected to the rolling frames through bearings. Among the six groups of second conveyor belts 305, three groups of second conveyor belts 305 are longer and three groups of second conveyor belts 305 are shorter.

[0034] Please refer particularly to Figure 1 and 3 , three groups of electromagnetic slide rails 401 are longer and three groups of electromagnetic slide rails 401 are shorter. Among them, movable grooves are provided at the tops of four groups of electromagnetic slide rails 401. Among the four groups of feeding rods 402, they are all movably connected to the electromagnetic slide rails 401 through the movable grooves.

[0035] Please refer particularly to Figure 1 and 3 , sliding grooves are provided on the outsides of the six groups of rollers 403. The six groups of feeding rods 402 are all movably connected to the rollers 403 through the sliding grooves.

[0036] The working principle of the present utility model is as follows: Through the provided main lifting platform 3, the feeding rod 402 moves along the electromagnetic slide rail 401 towards the side of the blanking rack 302. Then, the feeding rod 402 is rotated clockwise to extend the telescopic rod 404, and the feeding rod 402 is placed on the top of the blanking rack 302. During use, the first motor 102 and the second motor 103 are started, the first motor 102 rotates clockwise, and the second motor 103 rotates counterclockwise, driving the first driving wheel 104 to rotate clockwise and the second driving wheel 107 to rotate counterclockwise. Under the action of the first belt 105 and the second belt 108, the first driven wheel 106 is driven to rotate clockwise and the second driven wheel 109 is driven to rotate counterclockwise, so that the first driving shaft 203 rotates clockwise and the second driving shaft 303 rotates counterclockwise, driving the first rotating cylinder 204 and the first conveyor belt 205 to rotate clockwise and the second rotating cylinder 304 and the second conveyor belt 305 to rotate counterclockwise. Then, the material is manually placed on the top of the feeding rod 402, the telescopic rod 404 is retracted, and the feeding rod 402 is rotated counterclockwise, causing the material to flip. Then, the feeding rod 402 moves along the electromagnetic slide rail 401 towards the side away from the blanking rack 302. When the material contacts the second conveyor belt 305, the second conveyor belt 305 drives the material to be lifted. At this time, the feeding rod 402 moves along the electromagnetic slide rail 401 towards the side of the blanking rack 302 again to transport the next batch of materials. The original material is lifted to the top of the first conveyor belt 205 by the second conveyor belt 305 and the material is transported to the designated position. At this time, the next batch of materials has been transported to the second conveyor belt 305 by the feeding rod 402, thus realizing the uninterrupted transportation of materials, and the materials can be automatically flipped, increasing the transportation efficiency of the materials, reducing the labor intensity of workers. Moreover, the sizes of the materials are large and small, and the lengths of the second conveyor belts 305 are also long and short. When the feeding rod 402 transports larger-sized materials, when the materials contact the second conveyor belt 305, the feeding rod 402 can return, thus saving time and further improving the working efficiency.

[0037] The above-mentioned is only the preferred specific embodiment of the present utility model, but the protection scope of the present utility model is not limited thereto. Any person skilled in the art within the technical scope disclosed by the present utility model, according to the technical solution and the inventive concept of the present utility model, makes equivalent substitutions or changes, and all should be covered within the protection scope of the present utility model.

Claims

1. An uninterrupted cardboard turning and loading device, characterized in that, Including: A power component (1) for providing power to the device; A main platform (2) located at one end of the power component (1); A main lifting platform (3) located at one end of the power component (1) and on one side of the main platform (2); An auxiliary pushing structure (4) located on top of the main lifting platform (3); The power component (1) includes a housing (101). Inside the housing (101), there is a first motor (102). On one side of the first motor (102), there is a second motor (103). Outside the output end of the first motor (102), there is a first driving wheel (104). Outside the first driving wheel (104), there is a first belt (105). Inside the top of the first belt (105), there is a first driven wheel (106). Outside the output end of the second motor (103), there is a second driving wheel (107). Outside the second driving wheel (107), there is a second belt (108). Inside the top of the second belt (108), there is a second driven wheel (109). At the bottom of the first motor (102) and the second motor (103), there is a support plate (1010). The main platform (2) includes support vertical plates (201). The number of the support vertical plates (201) is two groups. Between the two groups of support vertical plates (201), there is a support beam (202). On one side of the adjacent end faces of the two groups of support vertical plates (201), there is a first driving shaft (203). Outside the first driving shaft (203), there is a first rotating cylinder (204). Outside the first rotating cylinder (204), there is a first conveyor belt (205). Inside the first conveyor belt (205) on the side away from the first rotating cylinder (204), there is a first driven rotating cylinder (206). The main lifting platform (3) includes a support frame (301). On one side of the support frame (301), there is a loading rack (302). Inside the support frame (301) on the side away from the loading rack (302), there is a second driving shaft (303). Outside the second driving shaft (303), there is a second rotating cylinder (304). Outside the second rotating cylinder (304), there are six groups of second conveyor belts (305) evenly arranged. Inside the six groups of second conveyor belts (305) on the side away from the second rotating cylinder (304), there are second driven rotating cylinders (306). The auxiliary pushing structure (4) includes six electromagnetic sliding rails (401). On one side of each electromagnetic sliding rail (401), there is a roller (403) embedded. On the top of each electromagnetic sliding rail (401), there is a feeding rod (402). Between two adjacent feeding rods (402), there is a connecting block (406). At the bottom of each connecting block (406), there is a connecting rod (405). At the bottom of each connecting rod (405), there is an electric telescopic rod (404).

2. The uninterrupted cardboard flipping and feeding device according to claim 1, characterized in that, The first driving shaft (203) is clamped and connected to the first driven wheel (106). The first driving shaft (203) is rotatably connected to the supporting vertical plate (201) through a bearing. The second driving shaft (303) is clamped and connected to the second driven wheel (109). The second driving shaft (303) is rotatably connected to the supporting frame (301) through a bearing.

3. An uninterrupted cardboard flipping and feeding device according to claim 1, characterized in that, A movable shaft is provided at the middle position of the first driven rotating cylinder (206). The first driven rotating cylinder (206) is rotatably connected to the supporting vertical plate (201) through the mutual cooperation of the movable shaft and the bearing.

4. An uninterrupted cardboard flipping and feeding device according to claim 1, characterized in that, Rolling frames are provided at the middle positions of the six second driven rotating cylinders (306). The second driven rotating cylinders (306) are rotatably connected to the rolling frames through bearings. Among the six second conveyor belts (305), three of the second conveyor belts (305) are longer and three of the second conveyor belts (305) are shorter.

5. A continuous cardboard flipping and loading device according to claim 1, characterized in that, Among the six electromagnetic slide rails (401), three of the electromagnetic slide rails (401) are longer and three of the electromagnetic slide rails (401) are shorter. Moving grooves are provided at the tops of four of the electromagnetic slide rails (401). Four of the feeding rods (402) are movably connected to the electromagnetic slide rails (401) through the moving grooves.

6. The uninterrupted cardboard turnover and loading equipment according to claim 1, characterized in that, Sliding grooves are provided on the outer sides of the six rollers (403). The six feeding rods (402) are movably connected to the rollers (403) through the sliding grooves.

Citation Information

Patent Citations

  • Paperboard feeding mechanism

    CN217397958U