Material collecting device of medical dressing packaging system

By designing a material receiving device for the medical dressing packaging system and utilizing the coordinated work of the feeding belt, discharge belt, diversion component, flap component and pushing component, the automatic transportation and stacking of medical dressings are realized, solving the problems of low efficiency and high labor intensity of manual collection, and improving production efficiency and process coordination.

CN223396440UActive Publication Date: 2025-09-30OGILVY (JIANLI) MEDICAL PROD CO LTD
View PDF 0 Cites 0 Cited by

Patent Information

Application Number
CN202423027439.1
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-12-09
Publication Date
2025-09-30
Estimated Expiration
2034-12-09

AI Technical Summary

Technical Problem

The collection of medical dressings after manual outsourcing is inefficient and labor-intensive, and the connection cost of the feeding channels of multiple packaging machines is high and difficult to control, resulting in chaotic production processes.

Method used

A collecting device for a medical dressing packaging system is designed, which includes a feeding belt, a discharging belt, a diversion component, a flap component, a stacking component, and a pushing component. Through the coordinated work of these components, the medical dressing can be automatically conveyed, flipped, and stacked, reducing manual intervention.

Benefits of technology

It improves the collection efficiency of medical dressings, reduces labor intensity, reduces labor costs, and ensures the smooth progress of the production process.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure CN223396440U_ABST
    Figure CN223396440U_ABST
Patent Text Reader

Abstract

The utility model discloses a material receiving device of a medical dressing packaging system. Comprising a feeding belt, a discharging belt, a flow dividing assembly, a plate overturning assembly for pushing horizontal materials to be in a vertical state, a stacking assembly for stacking the materials in the vertical state, a material pushing assembly for overturning the materials in the vertical state again and a boxing assembly which are sequentially arranged in the material moving direction. The input end of the discharging belt is in a horn mouth shape and is arranged at the discharging end of the feeding belt, the flow dividing assembly is in a T shape, the discharging end of the discharging belt is connected with the middle feeding end of the flow dividing assembly, and the discharging ends of the two ends of the flow dividing assembly are both connected with the turning plate assemblies. And the effects of improving the production efficiency of packaging the medical dressings and reducing the labor intensity of workers are achieved.
Need to check novelty before this filing date? Find Prior Art

Description

Technical Field

[0001] The utility model relates to the technical field of medical dressing devices, in particular to a material receiving device of a medical dressing packaging system. Background Art

[0002] At present, the packaging process of medical dressings mainly includes the following steps: 1. After the production of medical dressings is completed, they first need to be folded into square blocks to facilitate subsequent wrapping and packaging; 2. The folded square blocks need to be wrapped with cloth to protect the hygiene and integrity of the dressing; this process is usually completed manually, and the operator covers the cloth on the square blocks and then fixes them; 3. The wrapped medical dressings need to be outer packaged, usually using a dedicated outer packaging machine. The outer packaging machine can automatically complete steps such as sealing and labeling to ensure the standardization and consistency of packaging; 4. Finally, the medical dressings that have completed outer packaging are placed in cartons or other containers, ready for shipment or storage.

[0003] To improve packaging efficiency, multiple packaging machines are usually installed. However, connecting a separate feeding channel to each packaging machine is not only costly but also difficult to control, which can easily lead to confusion and disharmony in the production process. Manual collection of medical dressings after packaging is inefficient and labor-intensive. Summary of the Invention

[0004] The technical problem to be solved by the utility model is that the collection efficiency of medical dressings after manual outsourcing is low and the labor intensity is high.

[0005] In order to solve the above technical problems, the technical solution adopted by the utility model is: a material receiving device of a medical dressing packaging system, including a feeding belt, a discharge belt, a diversion assembly, a flip assembly for pushing horizontal materials to a vertical state, a stacking assembly for stacking vertical materials, a pushing assembly and a packing assembly for flipping the vertical materials again, the input end of the discharge belt is trumpet-shaped and arranged on the discharge end of the feeding belt, the diversion assembly is T-shaped, the discharge end of the discharge belt is connected to the middle feeding end of the diversion assembly, and the discharge ends of the two ends of the diversion assembly are connected to the flip assembly.

[0006] Preferably, the diverter assembly includes a T-shaped base plate with a baffle disposed at the edge of the base plate, a strip-shaped material pushing trough disposed within the base plate, a diverter rod disposed horizontally and slidingly within the strip-shaped material pushing trough, the bottom end of the diverter rod being connected to the movable end of an electric push rod at the bottom of the base plate, and the connection end between the diverter assembly and the flap assembly being located on an extension of the end of the strip-shaped material pushing trough. Preferably, the flap assembly includes a frame and a receiving plate, a drive shaft driven by a stepper motor being disposed horizontally and rotating within the frame, the receiving plate being fixed to the drive shaft at one end away from the diverter assembly, and the feed end of the stacking assembly being located on one side of the drive shaft.

[0007] Preferably, the stacking assembly includes a processing table, a mounting arm fixed above the processing table, and a push plate slidably arranged on the inner side of the processing table. The push plate is slidably arranged toward the unloading end of the stacking assembly. The cross-sectional surface of the push plate is L-shaped, and a sliding clamping group for clamping the material in a vertical state is slidably arranged on the mounting arm.

[0008] Preferably, sliding rods are arranged in parallel on both sides of the mounting arm, and a slider is slidably arranged on the sliding rods. The sliding clamping group includes a first electric push rod vertically fixed to the movable end of the mounting arm and a second electric push rod vertically fixed on the slider. The first electric push rod and the second electric push rod are arranged in pairs, and jet pipes are arranged at both ends of the slider.

[0009] Preferably, the pushing assembly includes a U-shaped mounting frame, a lower push plate horizontally rotatably arranged at the bottom of the mounting frame, and an upper push plate horizontally rotatably arranged at the top of the mounting frame, and the rotating ends of the lower push plate and the upper push plate are both located at the unloading end of the pushing assembly.

[0010] The utility model provides a material receiving device for a medical dressing packaging system, which has the following beneficial effects:

[0011] 1. The combined use of the feeding belt and the discharge belt realizes the continuous conveying of medical dressings, reduces manual intervention and improves work efficiency. The coordinated use of the diversion component and the flap component can automatically flip the horizontal medical dressings to a vertical state, ensuring the smooth subsequent stacking and packing. The use of automated equipment instead of manual operation greatly reduces the labor intensity of workers, reduces labor costs and improves the efficiency of material collection.

[0012] 2. The material is flipped twice by the flap assembly and the push assembly, so that the material is rotated to a vertical state at the end, which reduces the material's footprint and improves the transfer efficiency during the product collection process. BRIEF DESCRIPTION OF THE DRAWINGS

[0013] The present invention will be further described below with reference to the accompanying drawings and embodiments:

[0014] Figure 1 It is a top view of an embodiment of the present utility model.

[0015] Figure 2 It is a structural schematic diagram of the pusher assembly in an embodiment of the present utility model.

[0016] Figure 3 This is a flow chart of the placement status of materials during the collection process in an embodiment of the present utility model.

[0017] In the figure: 1. Feeding belt; 2. Discharging belt; 3. Diverter assembly; 31. Diverter rod; 4. Flip assembly; 5. Stacking assembly; 51. Push plate; 52. Mounting arm; 53. Slide rod; 54. Slider; 55. First electric push rod; 56. Second electric push rod; 6. Push assembly; 61. Lower push plate; 62. Upper push plate; 7. Packing assembly. DETAILED DESCRIPTION

[0018] like Figure 1-3 As shown, the utility model provides a material receiving device for a medical dressing packaging system, comprising a feeding belt 1, a discharging belt 2, a diversion assembly 3, a flip assembly 4 for pushing horizontal materials to a vertical state, a stacking assembly 5 for stacking vertical materials, a pushing assembly 6 for flipping the vertical materials again, and a boxing assembly 7, which are arranged in sequence along the material moving direction. The input end of the discharge belt 2 is trumpet-shaped and is arranged on the discharging end of the feeding belt 1, the diversion assembly 3 is T-shaped, the discharging end of the discharge belt 2 is connected to the middle feeding end of the diversion assembly 3, and the discharging ends of both ends of the diversion assembly 3 are connected to the flip assembly 4.

[0019] The material is conveyed to the discharge belt 2 through the feeding belt 1. The input end of the discharge belt 2 guides the material so that when the material moves on the discharge belt 2, both sides of the material contact the relative inner walls of the edge of the discharge belt 2. Then the material is conveyed to the diversion component 3 by the discharge belt 2. The diversion component 3 conveys the two adjacent materials to the two ends of the diversion component 3 according to the feeding situation, so that the flap components 4 connected to the two ends of the diversion component 3 can be continuously loaded. After the material falls on the flap component 4, the flap component 4 pushes the material to a vertical state by rotating, and pushes the material into the stacking component 5. The sliding clamping group clamps the material vertically to prevent it from falling. Then, as the material is continuously transported into the stacking component 5, the thickness of the material increases, causing the movable end of the sliding clamping group to move and trigger the proximity switch. The stacking component 5 pushes the stacked material horizontally as a whole, and the material is directly pushed to the unloading end of the pushing component 6. The vertical material is pushed and flipped by the lower push plate 61 at the bottom of the pushing component 6, so that the end with the smallest area of ​​the material contacts the inner bottom surface of the boxing component 7, and then the material is completely pushed out of the pushing component 6 by the upper push plate 62. The material enters the boxing component 7, and the material is subsequently transferred.

[0020] like Figure 1As shown. The diverter assembly 3 includes a T-shaped base plate with baffles at its edges. A strip-shaped push trough is provided within the base plate. A diverter rod 31 is arranged to slide horizontally within the strip-shaped push trough. The bottom end of the diverter rod 31 is connected to the movable end of an electric push rod at the bottom of the base plate. The connection between the diverter assembly 3 and the flap assembly 4 is located on an extension of the end of the strip-shaped push trough. After the material enters the middle of the diverter assembly 3, the electric push rod pushes the diverter rod 31 along the strip-shaped push trough. The diverter rod 31 moves from one end of the strip-shaped push trough to the other, pushing the material out of one end of the diverter assembly 3. After the subsequent material enters the diverter assembly 3, the reciprocating motion of the diverter rod 31 achieves continuous material output.

[0021] like Figure 1 As shown, the flap assembly 4 comprises a frame and a receiving plate. A drive shaft driven by a stepper motor rotates horizontally within the frame. The receiving plate's end, facing away from the diverter assembly 3, is fixed to the drive shaft. The feed end of the stacking assembly 5 is located on one side of the drive shaft. Material pushed by the diverter rod 31 lands directly on the receiving plate. The stepper motor controls the drive shaft to rotate 90°, pushing the material from a horizontal position to a vertical position. This pushing action directly propels the material into the stacking assembly 5, which vertically clamps the material and stacks it as it is continuously fed.

[0022] like Figure 1 The stacking assembly 5 includes a processing table, a mounting arm 52 fixed above the processing table, and a pusher plate 51 slidably arranged on the inner side of the processing table. The pusher plate 51 is slidably arranged toward the unloading end of the stacking assembly 5. The cross-section of the pusher plate 51 is L-shaped. A sliding clamping group for clamping the vertical material is slidably arranged on the mounting arm 52. Slide rods 53 are arranged parallel to each other on both sides of the mounting arm 52. A slider 54 is slidably arranged on the slider 53. The sliding clamping group includes a first electric push rod 55 vertically fixed to the movable end of the mounting arm 52 and a second electric push rod 56 vertically fixed to the slider 54. The first electric push rod 55 and the second electric push rod 56 are arranged in pairs. Air injection pipes are arranged at both ends of the slider 54.

[0023] Before the material is pushed to the stacking assembly 5, the movable end of the first electric push rod 55 at the bottom is retracted, and the material enters between the first electric push rod 55 and the second electric push rod 56. The movable end at the bottom of the second electric push rod 56 is always in an extended state, and when the first piece of material is input, the second electric push rod 56 is located on one side of the first electric push rod 55 under the action of the air jet, and the first piece of material contacts the bottom end of the second electric push rod 56. Then the movable end of the first electric push rod 55 is extended, so as to limit the first piece of material. After that, the flip plate assembly 4 continuously conveys the material. During the conveying process, the movable end of the first electric push rod 55 first retracts and then extends for limiting, and the second electric push rod 56 continues to move away from the first electric push rod 55 under the push of the material. After the second electric push rod 56 moves to the limit position, the piston rod on one side of the processing table extends, pushing the push plate 51 to push all the materials in the stacking assembly 5 out at once, and the materials are directly moved to the unloading end of the pusher assembly 6.

[0024] like Figure 1 and Figure 2 The pusher assembly 6 includes a U-shaped mounting frame, a lower push plate 61 that is horizontally rotatable at the bottom of the mounting frame, and an upper push plate 62 that is horizontally rotatable at the top of the mounting frame. The rotating ends of the lower push plate 61 and the upper push plate 62 are both located at the unloading end of the pusher assembly 6.

[0025] The material is pushed to the rotating end of the lower push plate 61 at one time, and the motor drives the movable end of the lower push plate 61 to rotate upward, pushing the material from Figure 3 The second state in the embodiment is flipped to the third state, at which time part of the material is located between the pushing assembly 6 and the box assembly 7, and the upper push plate 62 is rotated to push the material completely into the box assembly 7. After the lower push plate 61 rotates 90 degrees, the lower push plate 61 returns to a horizontal state, and the upper push plate 62 is rotated again to push the material completely into the box assembly 7.

Claims

1. A material receiving device for a medical dressing packaging system, characterized by: The invention comprises a feeding belt (1), a discharging belt (2), a diversion assembly (3), a flap assembly (4) for pushing horizontal materials to a vertical state, a stacking assembly (5) for stacking materials in a vertical state, a pushing assembly (6) for flipping the materials in the vertical state again, and a boxing assembly (7), the input end of the discharging belt (2) is in a trumpet shape and is arranged on the discharge end of the feeding belt (1), the diversion assembly (3) is in a T shape, the discharge end of the discharging belt (2) is connected to the middle feeding end of the diversion assembly (3), and the discharge ends of both ends of the diversion assembly (3) are connected to the flap assembly (4).

2. The material receiving device of the medical dressing packaging system according to claim 1, characterized in that: The diversion assembly (3) comprises a T-shaped base plate, a baffle is provided at the edge of the base plate, a strip-shaped pushing groove is provided in the base plate, a diversion rod (31) is arranged in the strip-shaped pushing groove for horizontal sliding, the bottom end of the diversion rod (31) is connected to the movable end of the electric push rod at the bottom of the base plate, and the connection end of the diversion assembly (3) and the flap assembly (4) is located on the extension section of the end of the strip-shaped pushing groove.

3. The material receiving device of the medical dressing packaging system according to claim 1, characterized in that: The flap assembly (4) comprises a frame and a receiving plate. A drive shaft driven by a stepper motor is arranged horizontally in the frame. One end of the receiving plate away from the diversion assembly (3) is fixed on the drive shaft. The feed end of the stacking assembly (5) is located on one side of the drive shaft.

4. The material receiving device of the medical dressing packaging system according to claim 1, characterized in that: The stacking assembly (5) comprises a processing table, a mounting arm (52) fixed above the processing table, and a push plate (51) slidably arranged on the inner side of the processing table. The push plate (51) is slidably arranged toward the unloading end of the stacking assembly (5). The cross-section of the push plate (51) is L-shaped. A sliding clamping group for clamping the material in a vertical state is slidably arranged on the mounting arm (52).

5. The material receiving device of the medical dressing packaging system according to claim 4, characterized in that: Slide rods (53) are arranged in parallel on both sides of the mounting arm (52), and a slider (54) is slidably arranged on the slide rod (53). The sliding clamping group includes a first electric push rod (55) vertically fixed to the movable end of the mounting arm (52) and a second electric push rod (56) vertically fixed to the slider (54). The first electric push rod (55) and the second electric push rod (56) are arranged in pairs, and an air injection pipe is arranged at both ends of the slider (54).

6. The material receiving device of the medical dressing packaging system according to claim 1, characterized in that: The pusher assembly (6) comprises a U-shaped mounting frame, a lower push plate (61) horizontally rotatably arranged at the bottom of the mounting frame, and an upper push plate (62) horizontally rotatably arranged at the top of the mounting frame, wherein the rotating ends of the lower push plate (61) and the upper push plate (62) are both located at the unloading end of the pusher assembly (6).