Subpackaging and transporting channel for syringes
By designing the syringe's separate transport channel, using threaded rotary rods and electric push rods to realize automatic classification and material push of the syringe, solving the problems of low efficiency and high error rate of syringe's separate transport in the prior art, and improving transportation efficiency and effect.
Patent Information
- Application Number
- CN202421730066.1
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-07-22
- Publication Date
- 2025-06-03
- Estimated Expiration
- 2034-07-22
AI Technical Summary
The existing syringe distribution transportation technology is inefficient and labor-intensive, and is prone to assembly errors, resulting in poor results.
Design a syringe distribution transport channel, including a belt conveyor, a syringe mechanism and a syringe push mechanism. The threaded rotary rod drives the interceptor plate to move up and down, adjust the spacing according to the diameter of the syringe to achieve automatic classification; the packaged pushing mechanism realizes automatic pushing of material through the electric pushing rod and pushing assembly.
It improves the automatic classification and material pushing efficiency of the syringe, reduces manual errors, and improves the work efficiency and effectiveness of separate transportation.
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Figure CN222934186U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of sub-packaging transportation, in particular to a sub-packaging transportation channel for syringes. Background Art
[0002] A syringe is an instrument for injecting liquid medicine, which is a common medical tool mainly used for injecting liquid medicine or extracting liquid. A syringe can also be used for medical equipment and containers. When a syringe is produced, it has models of different sizes. Therefore, when it is transported after assembly or packaging, it needs to be sub-packaged and transported.
[0003] Some existing manufacturers sub-package and transport syringes after production. They mainly classify them manually and then sub-package and transport them through different conveying channels. Their working efficiency is low, the working labor intensity is high, the use effect is poor, and manual sub-packaging is more likely to cause sub-packaging errors of different sizes and models, resulting in poor sub-packaging effects. Therefore, we provide a sub-packaging transportation channel for syringes to solve this problem. Summary of the Utility Model
[0004] The purpose of the utility model is to overcome the defects existing in the prior art and provide a sub-packaging transportation channel for syringes.
[0005] To achieve the above purpose, the technical solution of the utility model is to design a sub-packaging transportation channel for syringes, including a belt conveyor. Sub-packaging interception mechanisms are screwed at equal intervals on the upper end of the belt conveyor. A sub-packaging pushing mechanism is installed on the upper end of the belt conveyor. The sub-packaging pushing mechanism is slidably connected with a plurality of sub-packaging interception mechanisms.
[0006] The sub-packaging interception mechanism includes a fixed frame installed on the upper end of the belt conveyor. Installation grooves are symmetrically arranged at the upper end of the fixed frame. A threaded rotating rod is rotatably connected in the inner cavity of one of the installation grooves. A threaded block is screwed on the outer side of the threaded rotating rod. Long grooves communicating with the two installation grooves are symmetrically arranged on the outer side of the fixed frame. An interception plate is arranged on the outer side of the fixed frame. Connection columns are symmetrically connected to the outer side of the interception plate. One of the connection columns is connected with the threaded block.
[0007] Further preferably, a positioning column is installed in the inner cavity of one of the installation grooves. A positioning block is movably sleeved on the outer side of the positioning column. One of the connection columns passes through the long groove and is connected with the positioning block.
[0008] A further preferred technical solution is that the sub-packaging pushing mechanism includes a mounting plate installed at the upper end of the belt conveyor. An electric push rod is installed on the outer side of the mounting plate. Limit grooves are provided at the upper ends of the fixed frames. Pushing components are slidably connected to the inner cavities of the limit grooves. The pushing components are commonly connected to a connecting plate. The output end of the electric push rod is connected to one of the connecting plates.
[0009] A further preferred technical solution is that the pushing component includes a fixing plate provided at the upper end of the fixed frame. The fixing plates are commonly connected to the connecting plate. A limit block slidably connected to the limit groove is installed at the lower end of the fixing plate. A push plate is connected to the lower end of the fixing plate.
[0010] A further preferred technical solution is that inclined baffle plates are symmetrically connected to one side of the push plate. An arc-shaped plate is commonly connected to one side of the inclined baffle plates.
[0011] A further preferred technical solution is that grooves matching the positions of the fixed frames are equidistantly provided on both sides of the upper end of the belt conveyor. Guide plates are installed in the inner cavities of the grooves.
[0012] The advantages and beneficial effects of the present utility model are as follows: Through the threaded rotating rod, the threaded block on the outer side of the threaded rotating rod moves up and down under the limitation of a connecting column. Then the threaded block drives the intercepting plate to move up and down. The intercepting plate moves up and down according to the diameter of the syringe, which is convenient for adjusting the distance between the lower end of the intercepting plate and the upper end of the belt of the belt conveyor. By designing multiple sub-packaging intercepting mechanisms, it is convenient to classify and intercept syringes of different sizes and models, effectively realizing automatic classification, avoiding the risk of errors in manual classification, and effectively improving the use effect.
[0013] The pushing component of the sub-packaging pushing mechanism moves back and forth to push the materials. The fixing plate of the pushing component stably slides in the limit groove at the upper end of the fixed frame through the limit block, which is convenient for the push plate at the lower end of the fixing plate to stably move back and forth to push the materials, effectively improving the stable effect of pushing the materials. And the syringes with different signals intercepted by the four sub-packaging intercepting mechanisms are respectively automatically pushed, and it is avoided that the syringes are not cleaned in time, resulting in blockage and affecting the normal operation of sub-packaging and transportation. Furthermore, the working efficiency is effectively improved. And by designing two inclined baffle plates, it is convenient to limit and push the syringes on both sides of the push plate, avoiding the syringes moving out of the pushing range of the push plate during the pushing process, and effectively improving the use effect. Description of the Drawings
[0014] Figure 1 is an overall three-dimensional structural schematic diagram of a sub-packaging and transportation channel of a syringe proposed by the present utility model;
[0015] Figure 2Schematic structural diagram of the sub-packaging interception mechanism of the sub-packaging and transportation channel of a syringe proposed by the present utility model;
[0016] Figure 3 Semi-sectional view and exploded three-dimensional structural diagram of the sub-packaging interception mechanism of the sub-packaging and transportation channel of a syringe proposed by the present utility model;
[0017] Figure 4 Exploded three-dimensional structural diagram of the sub-packaging pushing mechanism of the sub-packaging and transportation channel of a syringe proposed by the present utility model;
[0018] Figure 5 Exploded three-dimensional structural diagram of the pushing component of the sub-packaging and transportation channel of a syringe proposed by the present utility model.
[0019] In the figure: 1. Belt conveyor; 2. Sub-packaging interception mechanism; 21. Fixed frame; 22. Installation groove; 23. Threaded rotating rod; 24. Positioning column; 25. Long groove; 26. Threaded block; 27. Positioning block; 28. Connecting column; 29. Intercepting plate; 210. Limiting groove; 3. Sub-packaging pushing mechanism; 31. Pushing component; 311. Fixed plate; 312. Limiting block; 313. Pushing plate; 314. Inclined baffle; 315. Arc-shaped plate; 32. Connecting plate; 33. Installation plate; 34. Electric push rod; 4. Groove; 5. Guide plate. Specific embodiments
[0020] The following combines the drawings and embodiments to further describe the specific embodiments of the present utility model. The following embodiments are only used to more clearly illustrate the technical solutions of the present utility model and cannot be used to limit the protection scope of the present utility model.
[0021] Refer to Figures 1-5 , a sub-packaging and transportation channel of a syringe, including a belt conveyor 1. The upper end of the belt conveyor 1 is equidistantly screwed with a sub-packaging interception mechanism 2, and the upper end of the belt conveyor 1 is installed with a sub-packaging pushing mechanism 3. The sub-packaging interception mechanism 2 includes a fixed frame 21 installed on the upper end of the belt conveyor 1. The upper end of the fixed frame 21 is symmetrically provided with installation grooves 22. The inner cavity of one of the installation grooves 22 is rotatably connected with a threaded rotating rod 23. The outer side of the threaded rotating rod 23 is screwed with a threaded block 26. The outer side of the fixed frame 21 is symmetrically provided with long grooves 25 communicating with the two installation grooves 22. An intercepting plate 29 is provided on the outer side of the fixed frame 21. The outer side of the intercepting plate 29 is symmetrically connected with connecting columns 28. One of the connecting columns 28 is connected to the threaded block 26.
[0022] A positioning column 24 is installed in the inner cavity of one of the installation grooves 22. The outer side of the positioning column 24 is movably sleeved with a positioning block 27. One of the connecting columns 28 passes through the long groove 25 and is connected to the positioning block 27.
[0023] By rotating the threaded rod 23, the threaded block 26 on the outer side of the threaded rod 23 moves up and down under the limit of a connecting column 28. Then, the threaded block 26 drives the intercepting plate 29 to move up and down. The positioning block 27 on the outer side of the positioning column 24 is connected to the intercepting plate 29 through the connecting column 28 passing through the long slot 25. When the intercepting plate 29 is displaced, the intercepting plate 29 drives the positioning block 27 to move on the outer side of the positioning column 24 synchronously through the connecting column 28, effectively improving the stability of the displacement of the intercepting plate 29. The intercepting plate 29 moves up and down according to the diameter of the syringe, facilitating the adjustment of the distance between the lower end of the intercepting plate 29 and the upper end of the belt of the belt conveyor 1. By designing multiple sub-packaging intercepting mechanisms 2, it is convenient to classify and intercept syringes of different sizes and models. Then, through the sub-packaging pushing and feeding mechanism 3 for pushing and guiding materials, it is convenient to automatically sub-package and transport syringes of different sizes, effectively improving the work efficiency, avoiding the risk of errors easily occurring in manual classification, and effectively improving the use effect.
[0024] The sub-packaging pushing and feeding mechanism 3 is slidably connected to multiple sub-packaging intercepting mechanisms 2. The sub-packaging pushing and feeding mechanism 3 includes a mounting plate 33 installed on the upper end of the belt conveyor 1. An electric push rod 34 is installed on the outer side of the mounting plate 33. Limiting grooves 210 are provided at the upper ends of the fixed frames 21. Pushing components 31 are slidably connected to the inner cavities of the limiting grooves 210. Connecting plates 32 are commonly connected between the pushing components 31. The output end of the electric push rod 34 is connected to one of the connecting plates 32.
[0025] The output end of the electric push rod 34 drives the connecting plate 32 to move. This connecting plate 32 drives the two pushing components 31 to reciprocate and push materials. These two pushing components 31 drive the other two pushing components 31 to reciprocate and push materials synchronously through another connecting plate 32, facilitating the automatic pushing of syringes of different signals intercepted by the four sub-packaging intercepting mechanisms 2 respectively, and avoiding the blockage caused by the syringes not being cleaned in time, affecting the normal operation of sub-packaging and transportation. Thus, the work efficiency is effectively improved.
[0026] The pushing component 31 includes a fixing plate 311 provided at the upper end of the fixed frame 21. Connecting plates 32 are commonly connected between the fixing plates 311. A limiting block 312 slidably connected to the limiting groove 210 is installed at the lower end of the fixing plate 311. A push plate 313 is connected to the lower end of the fixing plate 311. Oblique baffle plates 314 are symmetrically connected to one side of the push plate 313. An arc plate 315 is commonly connected to one side of the oblique baffle plates 314.
[0027] When the material pushing component 31 moves, the fixing plate 311 of the material pushing component 31 stably slides in the limiting groove 210 at the upper end of the fixing frame 21 through the limiting block 312, which is convenient for the push plate 313 at the lower end of the fixing plate 311 to stably reciprocate for material pushing, effectively improving the stability of material pushing. Moreover, by designing two inclined baffles 314, it is convenient to limit and push the syringes on both sides of the push plate 313, avoiding the syringes moving out of the material pushing range of the push plate 313 during the material pushing process.
[0028] Grooves 4 matching the position of the fixing frame 21 are equidistantly arranged on both sides of the upper end of the belt conveyor 1. The inner cavities of the grooves 4 are all equipped with guide plates 5. By guiding the material through the inclined guide plates 5 designed on both sides of each sub-packaging intercepting mechanism 2, it is convenient to design a conveyor at the lower end of every two guide plates 5 to convey the syringes discharged by the guide plates 5, facilitating the classified conveyance of four syringes of different sizes and models, which is convenient for subsequent effective assembly or packaging and convenient for use.
[0029] Working principle: The utility model is connected to the electric push rod 34 through an external controller. During use, by pre-adjusting the position of the intercepting plate 29 of multiple sub-packaging intercepting mechanisms 2, that is, rotating the threaded rotating rod 23, the threaded block 26 on the outer side of the threaded rotating rod 23 moves up and down under the limitation of a connecting column 28. Then, the threaded block 26 drives the intercepting plate 29 to move up and down. At the same time, the intercepting plate 29 synchronously drives the positioning block 27 to move on the outer side of the positioning column 24 through the connecting column 28, effectively improving the stability of the displacement of the intercepting plate 29. The intercepting plate 29 moves up and down according to the diameter of the syringe, facilitating the adjustment of the distance between the lower end of the intercepting plate 29 and the upper end of the belt of the belt conveyor 1. By designing multiple sub-packaging intercepting mechanisms 2, it is convenient to classify and intercept syringes of different sizes and models. When the belt conveyor 1 starts to convey the syringes, by turning on the electric push rod 34, the output end of the electric push rod 34 drives the connecting plate 32 to move. This connecting plate 32 drives two pushing components 31 to reciprocate and push the materials. These two pushing components 31 both drive two other pushing components 31 to synchronously reciprocate and push the materials through another connecting plate 32. Then, the fixing plates 311 of multiple pushing components 31 slide stably in the limiting grooves 210 at the upper end of the fixing frame 21 through the limiting blocks 312, facilitating the stable reciprocating movement of the pushing plates 313 at the lower ends of the fixing plates 311 to push the materials, effectively improving the stable effect of pushing the materials. And by designing two inclined baffles 314, it is convenient to limit and push the syringes on both sides of the pushing plate 313, avoiding the syringes moving out of the pushing range of the pushing plate 313 during the pushing process, facilitating the automatic pushing of syringes with different signals intercepted by the four sub-packaging intercepting mechanisms 2 respectively, and avoiding the syringes not being cleaned in time, resulting in blockage and affecting the normal operation of sub-packaging and transportation. And it is guided by the guiding plate 5, and a conveyor is designed at the lower end of every two guiding plates 5 to convey the syringes diverted by the guiding plate 5, facilitating the classified conveyance of four syringes of different sizes and models, facilitating subsequent effective assembly or packaging, and being convenient for use.
[0030] The above is only the preferred embodiment of the utility model. It should be noted that for those of ordinary skill in the art in this technical field, without departing from the technical principle of the utility model, several improvements and refinements can still be made, and these improvements and refinements should also be regarded as the protection scope of the utility model.
Claims
1. A syringe packaging and transportation channel, comprising a belt conveyor (1), characterized in that: The upper end of the belt conveyor (1) is equidistantly screwed with a sub-packaging interception mechanism (2), and the upper end of the belt conveyor (1) is equipped with a sub-packaging pushing mechanism (3), and the sub-packaging pushing mechanism (3) is slidably connected with a plurality of sub-packaging interception mechanisms (2); The packaging interception mechanism (2) comprises a fixed frame (21) mounted on the upper end of the belt conveyor (1), the upper end of the fixed frame (21) is symmetrically provided with mounting grooves (22), the inner cavity of one of the mounting grooves (22) is rotatably connected to a threaded rotating rod (23), the outer side of the threaded rotating rod (23) is threadedly connected to a threaded block (26), the outer side of the fixed frame (21) is symmetrically provided with long grooves (25) connected to the two mounting grooves (22), the outer side of the fixed frame (21) is provided with an interception plate (29), the outer side of the interception plate (29) is symmetrically connected to a connecting column (28), and one of the connecting columns (28) is connected to the threaded block (26).
2. A syringe packaging and transportation channel according to claim 1, characterized in that: A positioning column (24) is installed in the inner cavity of one of the installation grooves (22), and the outer side of the positioning column (24) is movably sleeved with a positioning block (27), and one of the connecting columns (28) passes through the long groove (25) and is connected to the positioning block (27).
3. A syringe packaging and transportation channel according to claim 1, characterized in that: The packing and pushing mechanism (3) comprises a mounting plate (33) mounted on the upper end of the belt conveyor (1), an electric push rod (34) being mounted on the outer side of the mounting plate (33), a limiting groove (210) being provided on the upper end of the fixing frame (21), the inner cavity of the limiting groove (210) being slidably connected to the pushing assembly (31), the pushing assemblies (31) being connected to the connecting plate (32), and the output end of the electric push rod (34) being connected to one of the connecting plates (32).
4. A syringe packaging and transportation channel according to claim 3, characterized in that: The pusher assembly (31) comprises a fixed plate (311) arranged at the upper end of the fixed frame (21); the fixed plates (311) are connected to a connecting plate (32); a limit block (312) slidably connected to a limit groove (210) is installed at the lower end of the fixed plate (311); and the lower end of the fixed plate (311) is connected to a pusher plate (313).
5. A syringe packaging and transportation channel according to claim 4, characterized in that: One side of the push plate (313) is symmetrically connected to the inclined baffle plate (314), and one side of the inclined baffle plate (314) is jointly connected to the arc-shaped plate (315).
6. A syringe packaging and transportation channel according to claim 1, characterized in that: Grooves (4) matching the position of the fixing frame (21) are equidistantly arranged on both sides of the upper end of the belt conveyor (1), and guide plates (5) are installed in the inner cavities of the grooves (4).