A magnetic ring assembly automatic equipment for gastrointestinal nutrition delivery device

The gastrointestinal nutrition delivery device magnetic ring assembly equipment, which uses a multi-guide rail and cylinder collaborative design, solves the problems of time-consuming, labor-intensive, and contaminating manual assembly. It achieves precise delivery and automated assembly of magnetic rings, improving assembly efficiency and stability.

CN224543720UActive Publication Date: 2026-07-24JIANGSU KANGBAINIAN MEDICAL TECH CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
JIANGSU KANGBAINIAN MEDICAL TECH CO LTD
Filing Date
2025-10-13
Publication Date
2026-07-24

AI Technical Summary

Technical Problem

The assembly process of the magnetic ring in existing enteral nutrition delivery devices is time-consuming, labor-intensive, and prone to contaminating operators. Manual assembly is inefficient, and the magnetism of the magnetic ring causes the vibratory feeder to lose its uniform posture.

Method used

It adopts a multi-guide rail and cylinder collaborative design, which realizes the precise delivery and automated assembly of magnetic rings through linear guide rails and cylinders, and uses positioning screws to quickly disassemble and install the fixing plate. It also achieves automated assembly in conjunction with pump pipe joint vibratory plate and rotary cylinder.

Benefits of technology

It achieves precise delivery and automated assembly of magnetic rings, reduces manual intervention, improves assembly efficiency and stability, and avoids the pollution problems caused by manual assembly.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses a kind of gastrointestinal nutrition conveyor magnetic ring assembly automation equipment, it is related to gastrointestinal nutrition conveying technical field, including bottom plate, first sliding platform air cylinder, pump pipe joint vibration disc, rotary cylinder, and second sliding platform air cylinder, linear guide rail is fixedly connected with one side of bottom plate, the slider of linear guide rail is fixedly connected with backing pad, backing pad one side is fixedly connected with guide rail base, guide rail base other side is fixedly connected with fixed rear plate, fixed rear plate one side is fixedly connected with fixed plate, the groove of fixed plate one side is equipped with several magnets inside, fixed plate bottom is fixedly connected with supporting plate.The utility model uses above-mentioned structure, solve the problem that magnetic ring posture is unified by vibration disc due to magnetism cannot be solved specifically, realize magnetic ring accurate delivery and assembly automation by multiple guide rail and cylinder cooperation, positioning screw realizes fixed plate quick disassembly and assembly, continuous change row changes board design improves operation efficiency, reduce manual intervention, guarantee assembly accuracy and stability.
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Description

Technical Field

[0001] This utility model belongs to the field of gastrointestinal nutrition delivery technology, and specifically relates to an automated equipment for assembling magnetic rings for gastrointestinal nutrition delivery devices. Background Technology

[0002] A gastrointestinal nutrition delivery system is a medical device specifically designed for patients unable to eat orally. Its core function is to accurately, safely, and continuously deliver enteral nutrition solutions, liquid foods, or medications to the gastrointestinal tract, maintaining nutritional supply and gastrointestinal function by mimicking physiological eating rhythms. It typically consists of a reservoir, delivery tubing, flow control components, and connection interfaces. Some high-end models are equipped with intelligent functions such as heating and alarms. During use, the infusion rate and dosage must be adjusted according to the patient's condition to avoid discomfort such as bloating and diarrhea caused by excessively rapid infusion, while ensuring efficient absorption of nutrients. It serves as a crucial bridge connecting nutritional preparations to the patient's gastrointestinal tract in clinical nutritional support therapy, playing a significant role in promoting patient recovery and maintaining vital signs.

[0003] However, most medical device manufacturers assemble them manually, which is time-consuming and labor-intensive. Moreover, the magnetic rings are molded from magnetic powder, which can easily contaminate the operator's hands and the equipment during assembly. Therefore, it is necessary to design a device that can replace manual assembly by operators to reduce the workload and contamination. Utility Model Content

[0004] In view of the problems mentioned in the background art, the purpose of this utility model is to provide an automated assembly equipment for the magnetic ring of a gastrointestinal nutrition delivery device, so as to solve the problem that the assembly of general medical device manufacturers is done manually, which is time-consuming and labor-intensive. Moreover, the magnetic ring is made of magnetic powder molding, which easily contaminates the operator's hands and the instrument during assembly. In view of this, it is necessary to design a device that can replace the operator's manual assembly, so as to reduce the workload of assembly and reduce the problem of contamination.

[0005] The above-mentioned technical objective of this utility model is achieved through the following technical solution: An automated assembly device for magnetic rings in a gastrointestinal nutrition delivery system includes a base plate, a first slide cylinder, a pump pipe connector vibratory feeder, a rotary cylinder, and a second slide cylinder. A linear guide rail is fixedly connected to one side of the base plate, and a pad is fixedly connected to the slider of the linear guide rail. A guide rail base is fixedly connected to one side of the pad, and a fixed rear plate is fixedly connected to the other side of the guide rail base. A fixed plate is fixedly connected to one side of the fixed rear plate, and several magnet bodies are installed inside a groove on one side of the fixed plate. A support plate is fixedly connected to the bottom of the fixed plate. This device solves the problem of magnetic rings not being able to maintain a uniform posture using a vibratory feeder due to magnetism. It achieves precise delivery and automated assembly of magnetic rings through the coordinated use of multiple guide rails and cylinders.

[0006] As a preferred technical solution, the fixing plate is threadedly connected to the fixing back plate by positioning screws. Four positioning screws are provided, and the slots on the support plate and the fixing plate are correspondingly set. The support plate has an inner groove. The positioning screws enable quick assembly and disassembly of the fixing plate. The continuous row and plate replacement design improves work efficiency, reduces manual intervention, and ensures assembly accuracy and stability.

[0007] As a preferred technical solution, the linear guide is fixed to the base plate by a connecting plate. A push plate is fixedly connected to the slider of the linear guide. The front end of the push plate extends into the inner groove of the tray. The linear guide is firmly fixed to the base plate by the connecting plate. The slider drives the push plate to move precisely. Its front end extends into the inner groove of the tray. It has good adaptability and can stably push the magnet, ensuring the conveying accuracy and reliability.

[0008] As a preferred technical solution, the first slide cylinder is set with a corresponding fixed plate. The output end of the first slide cylinder is fixedly connected to an upper push plate. A front magnet slide groove is set between the upper push plate and the assembly position. The front magnet slide groove corresponds to the upper push plate. The first slide cylinder corresponds to the fixed plate. The upper push plate and the front magnet slide groove are adapted to each other. The pushing path is accurate and can stably guide the magnet to the assembly position, improving the pushing accuracy and assembly efficiency. The structure fits reliably.

[0009] As a preferred technical solution, the output end of the pump pipe joint vibratory plate is set to correspond to the assembly position, the rotary cylinder is set to the side of the assembly position, and the output end of the rotary cylinder is fixedly connected to a clamping fixture. The clamping fixture corresponds to the assembly position, and the pump pipe joint vibratory plate accurately feeds the material to the assembly position. The rotary cylinder and the clamping fixture are set to correspond to each other nearby. The feeding and pressing actions are coordinated, and the pressing is accurate and stable, which greatly improves the continuity and quality of assembly.

[0010] As a preferred technical solution, the second slide cylinder is set at the corresponding assembly position, and the output end of the second slide cylinder is fixedly connected to the rear magnet slide. A turnover box is set below the moving trajectory of the rear magnet slide. The slider of the linear guide can drive the pad and connected components to move. The second slide cylinder is set at the corresponding assembly position, and the rear magnet slide, together with the turnover box, realizes the accurate collection of finished products. The linear guide drives the components to move for easy replacement. The structure has strong synergy and ensures continuous and efficient operation.

[0011] In summary, the present invention has the following main advantages: In this invention, several magnets are stacked and installed into the groove of a magnet fixing plate, supported by a support plate to prevent them from falling. The magnet fixing plate is fixed to the magnet fixing rear plate by four positioning screws. A linear guide rail drives a lower push plate to move upward by the thickness of one magnet, pushing the magnet to the upper surface of the magnet fixing plate. A slide cylinder drives the upper push plate to push the magnet to the assembly position through the front magnet slide groove. A pump pipe connector vibratory plate delivers the connector to the assembly position. A rotary cylinder presses the two together with a clamping fixture. A slide cylinder drives the rear magnet slide to move backward, causing the finished product to fall into a turnover box. After a row of magnets is assembled, the lower push plate resets, and the linear guide rail drives the structure to move and change rows. When the fixing plate is empty, a new one is replaced to continue the operation. This invention solves the problem of magnetic rings being unable to be uniformly positioned by a vibratory plate due to magnetism. Through the collaboration of multiple guide rails and cylinders, precise conveying and automated assembly of magnetic rings are achieved. Positioning screws enable quick disassembly and assembly of the fixing plate. The continuous row and plate changing design improves work efficiency, reduces manual intervention, and ensures assembly accuracy and stability. Attached Figure Description

[0012] Figure 1 This is a schematic diagram of the structure of this utility model; Figure 2 This is a schematic diagram of the other side of the structure of this utility model; Figure 3 This is the utility model Figure 2 Enlarged view of part A; Figure 4 This is a bottom view of the structure of this utility model.

[0013] Reference numerals: 1. Base plate; 2. Linear guide rail; 3. Pad plate; 4. Guide rail base; 5. Fixed rear plate; 6. Fixed plate; 7. Magnet body; 9. First slide cylinder; 10. Pump pipe connector vibrating plate; 11. Rotary cylinder; 12. Second slide cylinder; 13. Positioning screw; 14. Support plate; 15. Connecting plate; 17. Lower push plate; 18. Upper push plate; 19. Front magnet slide groove; 20. Rear magnet slide. Detailed Implementation

[0014] Example refer to Figures 1 to 4The automated assembly equipment for a gastrointestinal nutrition delivery device magnetic ring described in this embodiment includes a base plate 1, a first slide cylinder 9, a pump pipe connector vibrating plate 10, a rotary cylinder 11, and a second slide cylinder 12. A linear guide rail 2 is fixedly connected to one side of the base plate 1. A pad 3 is fixedly connected to the slider of the linear guide rail 2. A guide rail base 4 is fixedly connected to one side of the pad 3. A fixed rear plate 5 is fixedly connected to the other side of the guide rail base 4. A fixed plate 6 is fixedly connected to one side of the fixed rear plate 5. Several magnet bodies 7 are installed inside a groove on one side of the fixed plate 6. A support plate 14 is fixedly connected to the bottom of the fixed plate 6. Several magnet bodies 7 are inserted into the groove of the fixed plate 6, and the support plate 14 holds them to prevent them from falling. The fixed plate 6 is fixed to the fixed rear plate 5. The linear guide rail 2 drives the pad 3, the guide rail base 4, and the connected fixed rear plate 5 and fixed plate 6 to move through the slider, so that the magnet bodies 7 in the groove are aligned to the working position, and then work together with the first slide cylinder 9, the pump pipe connector vibrating plate 10, etc. to complete the subsequent pushing and assembly.

[0015] refer to Figure 2 The fixing plate 6 is threadedly connected to the fixing rear plate 5 by positioning screws 13. Four positioning screws 13 are provided. The support plate 14 is set to correspond to the groove on the fixing plate 6. The support plate 14 has an inner groove. The fixing plate 6 and the fixing rear plate 5 are threadedly connected and fixed by four positioning screws 13. The support plate 14 is set to correspond to the groove on the fixing plate 6. Its inner groove is adapted to the subsequent pushing component. Several magnet bodies 7 are installed into the groove on the fixing plate 6. The support plate 14 supports the magnet bodies 7 to prevent them from falling, thus preparing for the subsequent conveying operation of the magnet bodies 7.

[0016] refer to Figures 1 to 2 The linear guide 2 is fixed to the base plate 1 via the connecting plate 15. A push plate 17 is fixedly connected to the slider of the linear guide 2. The front end of the push plate 17 extends into the inner groove of the support plate 14. The linear guide 2 is fixed to the base plate 1 via the connecting plate 15. Its slider drives the push plate 17. The front end of the push plate 17 extends into the inner groove of the support plate 14 and pushes the magnet body 7 corresponding to the inner groove of the support plate 14 as the slider rises and falls.

[0017] refer to Figure 2 The first slide cylinder 9 is set corresponding to the fixed plate 6. The output end of the first slide cylinder 9 is fixedly connected to the upper push plate 18. The upper push plate 18 and the assembly position are provided with a front magnet slide groove 19. The front magnet slide groove 19 and the upper push plate 18 correspond to each other. The first slide cylinder 9 is set corresponding to the fixed plate 6. The upper push plate 18 connected to its output end corresponds to the front magnet slide groove 19 between the assembly position. When the magnet body 7 is sent to the upper plane of the fixed plate 6, the first slide cylinder 9 drives the upper push plate 18 to accurately push the magnet body 7 to the assembly position along the slide groove.

[0018] refer to Figure 2 and Figure 4The output end of the pump pipe connector vibratory plate 10 is set to the assembly position. The rotary cylinder 11 is set to the side of the assembly position. The output end of the rotary cylinder 11 is fixedly connected to a clamping fixture. The clamping fixture is set to the assembly position. The output end of the pump pipe connector vibratory plate 10 is set to the assembly position. The pump pipe connectors are transported to the assembly position one by one. The rotary cylinder 11 is set to the side of the assembly position. The clamping fixture fixed to its output end is corresponding to the assembly position. After the magnet body 7 is delivered, the drive fixture is used to clamp the connector to the magnet body 7.

[0019] refer to Figures 1 to 3 The second slide cylinder 12 is set at the corresponding assembly position. The output end of the second slide cylinder 12 is fixedly connected to the rear magnet slide 20. A turnover box is set below the movement trajectory of the rear magnet slide 20. The slider of the linear guide 2 can drive the pad 3 and the connected parts to move. After the magnet body 7 and the pump pipe connector are assembled, the second slide cylinder 12 at the corresponding assembly position is started. Its output end drives the rear magnet slide 20 to move backward. The finished product automatically falls into the turnover box below. Then the slide is reset. The slider of the linear guide 2 drives the pad 3 and the connected parts to move, switching to the next set of magnet body 7 working positions.

[0020] Operating principle and advantages: Several magnet bodies 7 are stacked and installed into the groove of the fixing plate 6. The support plate 14 supports them to prevent them from falling. The fixing plate 6 is fixed to the fixing back plate 5 by four positioning screws 13. The linear guide rail 2 is fixed to the base plate 1 via the connecting plate 15. Its slider drives the lower push plate 17 to rise. The front end extends into the inner groove of the support plate 14 to push the magnet body 7 to the upper plane of the fixing plate 6. The first slide cylinder 9 drives the upper push plate 18 at the output end to push the magnet body 7 to the assembly position along the front magnet slide groove 19. Pump pipe joint vibrating plate 10. Simultaneously, the pump pipe connector is sent to the assembly position. The rotary cylinder 11 drives the clamping fixture to press the two together. After pressing, the second slide cylinder 12 drives the rear magnet slide 20 to move backward. The finished product falls into the turnover box below. The slide is reset, and a row of magnet bodies 7 is assembled. The push plate 17 moves down to reset. The linear guide 2 drives the pad 3 and connected parts to move and change the row. After all the magnet bodies 7 on the fixing plate 6 are assembled, the empty fixing plate 6 is removed and replaced with a new fixing plate 6 filled with magnet bodies 7. The above process is repeated to continue the operation. This invention addresses the problem of magnetic rings being unable to maintain a uniform posture using a vibratory feeder due to their magnetism. By using multiple guide rails and cylinders in tandem, it achieves precise conveying and automated assembly of magnetic rings. Positioning screws 13 enable quick disassembly and assembly of the fixing plate 6. The continuous row and plate changing design improves work efficiency, reduces manual intervention, and ensures assembly accuracy and stability.

Claims

1. An automated assembly device for a gastrointestinal nutrition delivery system magnetic ring, comprising a base plate (1), a first slide cylinder (9), a pump pipe connector vibrating plate (10), a rotary cylinder (11), and a second slide cylinder (12), characterized in that: A linear guide rail (2) is fixedly connected to one side of the base plate (1). A pad (3) is fixedly connected to the slider of the linear guide rail (2). A guide rail base (4) is fixedly connected to one side of the pad (3). A fixed back plate (5) is fixedly connected to the other side of the guide rail base (4). A fixed plate (6) is fixedly connected to one side of the fixed back plate (5). Several magnet bodies (7) are installed inside the groove opened on one side of the fixed plate (6). A support plate (14) is fixedly connected to the bottom of the fixed plate (6).

2. The automated assembly equipment for a gastrointestinal nutrition delivery device magnetic ring according to claim 1, characterized in that: The fixing plate (6) is threadedly connected to the fixing back plate (5) by positioning screws (13). Four positioning screws (13) are provided. The support plate (14) is correspondingly provided with the groove on the fixing plate (6). The support plate (14) has an inner groove.

3. The automated assembly equipment for a gastrointestinal nutrition delivery device magnetic ring according to claim 1, characterized in that: The linear guide (2) is fixed to the base plate (1) by the connecting plate (15). A push plate (17) is fixedly connected to the slider of the linear guide (2). The front end of the push plate (17) extends into the inner groove of the support plate (14).

4. The automated assembly equipment for a gastrointestinal nutrition delivery device magnetic ring according to claim 1, characterized in that: The first slide cylinder (9) is set to correspond to the fixed plate (6). The output end of the first slide cylinder (9) is fixedly connected to the upper push plate (18). A front magnet slide groove (19) is provided between the upper push plate (18) and the assembly position. The front magnet slide groove (19) corresponds to the upper push plate (18).

5. The automated assembly equipment for a gastrointestinal nutrition delivery device magnetic ring according to claim 1, characterized in that: The output end of the pump pipe joint vibratory plate (10) is set at the assembly position, the rotary cylinder (11) is located on the side of the assembly position, and the output end of the rotary cylinder (11) is fixedly connected to a clamping fixture, which is located at the assembly position.

6. The automated assembly equipment for a gastrointestinal nutrition delivery device magnetic ring according to claim 1, characterized in that: The second slide cylinder (12) is set in the corresponding assembly position. The output end of the second slide cylinder (12) is fixedly connected to the rear magnet slide (20). A turnover box is set below the movement trajectory of the rear magnet slide (20). The slider of the linear guide rail (2) can drive the pad (3) and the connected components to move.