Sealing structure for probiotic processing

By designing an automated sealing structure for probiotic processing, the problem of manual intervention in the sealing process after probiotic product bottling was solved, realizing full automation of quantitative material feeding, conveying, clamping and rotary sealing of the material cylinder, thus improving production efficiency.

CN223919642UActive Publication Date: 2026-02-17上海菌小宝健康科技有限公司
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Patent Information

Application Number
CN202520169858.4
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-01-24
Publication Date
2026-02-17
Estimated Expiration
2035-01-24

AI Technical Summary

Technical Problem

Currently, the sealing process for probiotic products after bottling is not highly automated and requires manual intervention, which is cumbersome and time-consuming, significantly reducing production efficiency.

Method used

A sealing structure for probiotic processing was designed, including components such as a conveyor, a material cylinder, a discharge barrel, and a cover. Through the coordinated use of components such as a laser sensor, a cylinder, and a drive motor, the entire process of quantitative material feeding, conveying, clamping and fixing of the material cylinder, and moving, clamping, lifting and rotating the cover for sealing is automated.

Benefits of technology

It achieves fully automated and sealed processing of probiotics, improving the continuity and stability of the production process and enhancing overall production efficiency.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses a sealing structure for probiotic processing, which comprises a conveyor I, the top of the conveyor I is movably connected with a charging barrel, the rear side of the conveyor I is provided with a discharging barrel, the top of the rear side of the conveyor I is fixedly provided with a laser sensor, the bottom of the conveyor I is provided with a fixing mechanism I, and the fixing mechanism I is fixedly connected with the discharging barrel. A second conveyor is arranged on the outer surface of the discharging barrel, a cover shell is movably connected to the top of the second conveyor, a supporting plate is further fixedly connected to the outer surface of the discharging barrel, an air cylinder is fixedly installed on the rear side of the supporting plate, and the output end of the air cylinder extends to the front side of the supporting plate and is fixedly connected with a second connecting plate. According to the utility model, all the components are matched for use, so that the automation of the whole process from quantitative blanking, conveying, clamping and fixing of the charging barrel to moving, clamping, lifting and rotary sealing of the cover shell is realized, the continuity and stability of the production process are ensured, and the overall production efficiency is improved.
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Description

Technical Field

[0001] This utility model relates to the field of probiotic production technology, specifically to a sealing structure for probiotic processing. Background Technology

[0002] Probiotic powder is a microbial product that is highly beneficial to human health, effectively maintaining the balance of the gut microbiota. These probiotics mainly include Bifidobacteria and Lactobacilli, which not only have significant gut health benefits but also enhance and regulate the immune system. By activating the body's own immune system, probiotic powder promotes the production of immune substances, thus building a strong defense against bacterial and viral invasion.

[0003] However, the sealing process for most probiotic products after bottling is not highly automated. This step often requires manual intervention, moving each bottled probiotic product to a designated storage location, which is not only tedious and time-consuming but also significantly reduces overall production efficiency. Utility Model Content

[0004] To address the aforementioned technical problems, a sealing structure for probiotic processing is provided. This technical solution solves the problem mentioned in the background art that the sealing process of most current probiotic products after bottling is not highly automated. This step often requires manual intervention, moving the bottled probiotic products one by one to a designated storage location, which is not only cumbersome and time-consuming but also significantly reduces overall production efficiency.

[0005] To achieve the above objectives, the technical solution adopted by this utility model is as follows:

[0006] A sealing structure for probiotic processing includes a conveyor, a material cylinder movably connected to the top of the conveyor, a discharge bin located at the rear of the conveyor, a laser sensor fixedly mounted on the top of the rear of the conveyor, a fixing mechanism 1 located at the bottom of the conveyor, a conveyor 2 located on the outer surface of the discharge bin, a cover movably connected to the top of the conveyor 2, a support plate fixedly connected to the outer surface of the discharge bin, a cylinder fixedly mounted on the rear of the support plate, the output end of the cylinder extending to the front of the support plate and fixedly connected to a connecting plate 2, a bearing plate fixedly connected to the front of the connecting plate 2, a fixing frame located on the front of the conveyor, a slot formed on the outer surface of the fixing frame, a lifting mechanism located inside the slot, a lifting plate fixedly connected to the outer surface of the lifting mechanism, a drive motor 3 fixedly mounted on the top of the lifting plate, the output end of the drive motor 3 extending to the lower side of the lifting plate and fixedly connected to a rotating disk, and a fixing mechanism 2 located at the bottom of the rotating disk.

[0007] Preferably, the fixing mechanism includes a mounting plate fixedly connected to opposite sides of the conveyor. A drive motor is fixedly mounted on the outer side of one mounting plate. A double-threaded rod is rotatably connected between the two mounting plates. The output end of the drive motor extends between the two mounting plates and is fixedly connected to one end of the double-threaded rod. Two sets of fixing rods are also fixedly connected between the two mounting plates, and the two sets of fixing rods are symmetrically distributed on opposite sides of the double-threaded rod.

[0008] Preferably, a connecting plate is threaded to both sides of the outer circumference of the double-ended threaded rod. The connecting plate is slidably connected to both sets of fixed rods. A through groove is provided on the top of each of the two sets of mounting plates. The connecting plate extends to the upper side of the mounting plate through the through groove. An arc-shaped clamp is fixedly connected to the end of the connecting plate away from the mounting plate.

[0009] Preferably, the lifting mechanism includes a second drive motor fixedly installed on the top of the fixed frame. The output end of the second drive motor extends into the inside of the slot and is fixedly connected to a lead screw. The lead screw is rotatably connected to the inner wall of the fixed frame. Two sets of sliding rods are also fixedly connected inside the slot, and the two sets of sliding rods are symmetrically distributed on opposite sides of the lead screw.

[0010] Preferably, the outer circumferential surface of the lead screw is threaded with a movable block, the movable block is slidably connected to both sets of slide rods, and the end of the movable block away from the slot is fixedly connected to the lifting plate.

[0011] Preferably, the fixing mechanism 2 includes two sets of side plates fixedly connected to the top of the rotating disk. A drive motor 4 is fixedly installed on the outer side of one set of side plates. A double-threaded rod 2 is rotatably connected between the two sets of side plates. The output end of the drive motor 4 extends between the two sets of side plates and is fixedly connected to one end of the double-threaded rod 2. A fixing rod 2 is also fixedly connected between the two sets of side plates.

[0012] Preferably, the two opposite sides of the double-headed threaded rod are threaded with movable blocks, the movable blocks are slidably connected to the fixed rod, and the opposite sides of the outer surface of the rotating disk are provided with through slots, the movable blocks on both sides extend to the lower side of the rotating disk through the through slots and are fixedly connected to connecting plates, and the outer surface of the connecting plates is fixedly connected with arc-shaped clamping plates.

[0013] Compared with the prior art, this utility model provides a sealing structure for probiotic processing, which has the following beneficial effects:

[0014] This invention, through the coordinated use of various components, achieves full automation of the entire process from quantitative material feeding, conveying, clamping and fixing of the material cylinder to the movement, clamping, lifting and rotating sealing of the cover, ensuring the continuity and stability of the production process, thereby improving overall production efficiency. Attached Figure Description

[0015] Figure 1 This is a schematic diagram of the overall three-dimensional structure of the present invention;

[0016] Figure 2 This is a three-dimensional structural diagram of part of the fixing mechanism of this utility model;

[0017] Figure 3 This is a three-dimensional structural diagram of the remaining fixing mechanism of this utility model;

[0018] Figure 4 This is a three-dimensional structural diagram of the conveyor of this utility model;

[0019] Figure 5 This is a three-dimensional structural diagram of the lifting mechanism of this utility model;

[0020] Figure 6 This is a three-dimensional structural diagram of the fixing mechanism of this utility model.

[0021] The numbers on the map are:

[0022] 1. Conveyor 1; 2. Material cylinder; 3. Discharge hopper; 4. Laser sensor;

[0023] 5. Fixing mechanism 1; 501. Mounting plate 1; 502. Drive motor 1; 503. Double-ended threaded rod 1; 504. Fixing rod 1; 505. Through groove 1; 506. Connecting plate 1; 507. Arc-shaped clamping plate 1;

[0024] 6. Conveyor II; 7. Cover; 8. Support plate; 9. Cylinder; 10. Connecting plate II; 11. Bearing plate;

[0025] 12. Fixing bracket; 1201. Groove;

[0026] 13. Lifting mechanism; 1301. Drive motor II; 1302. Lead screw; 1303. Slide rod; 1304. Movable block;

[0027] 14. Lifting platform; 15. Drive motor three;

[0028] 16. Rotating disc; 1601. Through slot two;

[0029] 17. Fixing mechanism two; 1701. Side plate; 1702. Drive motor four; 1703. Double-headed threaded rod two; 1704. Fixing rod two; 1705. Moving block; 1706. Connecting plate three; 1707. Arc-shaped clamp two. Detailed Implementation

[0030] The following description is intended to disclose the present invention so that those skilled in the art can implement it. The preferred embodiments described below are merely examples, and other obvious variations will occur to those skilled in the art.

[0031] Please refer to Figures 1 to 6 As shown, a sealing structure for probiotic processing includes a conveyor 1, a material cylinder 2 movably connected to the top of the conveyor 1, a discharge hopper 3 located at the rear of the conveyor 1, a laser sensor 4 fixedly mounted on the top rear side of the conveyor 1, and a fixing mechanism 5 located at the bottom of the conveyor 1. The fixing mechanism 5 includes mounting plates 501 fixedly connected to opposite sides of the conveyor 1. A drive motor 502 is fixedly mounted on the outer side of one mounting plate 501. A double-headed threaded rod 503 is rotatably connected between the two mounting plates 501. The output end of the drive motor 502 extends between the two mounting plates 501 and connects with the double-headed threaded rod 503. One end of the threaded rod 503 is fixedly connected, and two sets of fixing rods 504 are fixedly connected between the two mounting plates 501. The two sets of fixing rods 504 are symmetrically distributed on opposite sides of the double-ended threaded rod 503. Connecting plates 506 are threadedly connected to opposite sides of the outer circumference of the double-ended threaded rod 503. The connecting plates 506 are slidably connected to the two sets of fixing rods 504. The top of the two sets of mounting plates 501 is provided with through slots 505. The connecting plates 506 extend to the upper side of the mounting plates 501 through the through slots 505, and the end of the connecting plates 506 away from the mounting plates 501 is fixedly connected with an arc-shaped clamping plate 507.

[0032] When the device is needed, the dispensing hopper 3 first dispenses a quantitative amount of probiotic powder into the inside of the material cylinder 2. When the conveyor 1 drives the material cylinder 2 to the front of the laser sensor 4, the drive motor 502 is turned on. The drive motor 502 drives the double-headed threaded rod 503 to rotate. Then, guided by the two sets of fixing rods 504, the connecting plate 506 moves along the through groove 505, so that the arc-shaped clamping plate 507 clamps and fixes the material cylinder 2, thereby avoiding the problem of sealing failure caused by the movement of the material cylinder 2 when sealing.

[0033] The outer surface of the discharge hopper 3 is provided with a second conveyor 6. The top of the second conveyor 6 is movably connected to a cover 7. The outer surface of the discharge hopper 3 is also fixedly connected to a support plate 8. A cylinder 9 is fixedly installed on the rear side of the support plate 8. The output end of the cylinder 9 extends to the front side of the support plate 8 and is fixedly connected to a second connecting plate 10. A bearing plate 11 is fixedly connected to the front side of the second connecting plate 10.

[0034] While the material cylinder 2 is effectively fixed on the upper side of the first conveyor 1, the cover 7 is conveyed to the upper side of the support plate 11 by the second conveyor 6. Then the cylinder 9 is turned on, and the cylinder 9 can drive the cover 7 on the upper side of the support plate 11 to move above the material cylinder 2 through the second connecting plate 10.

[0035] A fixed frame 12 is provided on the front side of the conveyor 1. A slot 1201 is formed on the outer surface of the fixed frame 12. A lifting mechanism 13 is arranged inside the slot 1201. A lifting plate 14 is fixedly connected to the outer surface of the lifting mechanism 13. A drive motor 15 is fixedly installed on the top of the lifting plate 14. The output end of the drive motor 15 extends to the lower side of the lifting plate 14 and is fixedly connected to a rotating disk 16. The lifting mechanism 13 includes a drive motor 1301 fixedly installed on the top of the fixed frame 12. The output end extends into the interior of the slot 1201 and is fixedly connected to a lead screw 1302. The lead screw 1302 is rotatably connected to the inner wall of the fixed frame 12. Two sets of slide rods 1303 are also fixedly connected inside the slot 1201. The two sets of slide rods 1303 are symmetrically distributed on opposite sides of the lead screw 1302. A movable block 1304 is threadedly connected to the outer circumferential surface of the lead screw 1302. The movable block 1304 is slidably connected to both sets of slide rods 1303. The end of the movable block 1304 away from the slot 1201 is fixedly connected to the lifting plate 14.

[0036] When the cover 7 reaches the top of the material cylinder 2, the drive motor 1301 is turned on. The drive motor 1301 drives the lead screw 1302 to rotate, and then the movable block 1304 is lowered by the guidance of the two sets of slide rods 1303. The movable block 1304 then drives the lifting plate 14 to lower, thereby driving the fixing mechanism 17 to lower to the top of the cover 7.

[0037] A fixing mechanism 2 17 is provided at the bottom of the rotating disk 16. The fixing mechanism 2 17 includes two sets of side plates 1701 fixedly connected to the top of the rotating disk 16. A drive motor 4 1702 is fixedly installed on the outer side of one set of side plates 1701. A double-headed threaded rod 2 1703 is rotatably connected between the two sets of side plates 1701. The output end of the drive motor 4 1702 extends between the two sets of side plates 1701 and is fixedly connected to one end of the double-headed threaded rod 2 1703. A fixing rod 1704 is fixedly connected. Moving blocks 1705 are threadedly connected to both sides of the double-threaded rod 1703. The moving blocks 1705 are slidably connected to the fixing rod 1704. Through slots 1601 are opened on both sides of the outer surface of the rotating disk 16. The moving blocks 1705 on both sides extend to the lower side of the rotating disk 16 through the through slots 1601 and are fixedly connected to the connecting plate 1706. An arc-shaped clamping plate 1707 is fixedly connected to the outer surface of the connecting plate 1706.

[0038] When the fixing mechanism 17 descends to the top of the cover 7, the drive motor 1702 is activated. The drive motor 1702 drives the double-headed threaded rod 1703 to rotate, and then the moving blocks 1705 on both sides move closer to each other through the guide of the fixing rod 1704. Then, the connecting plate 1706 drives the arc-shaped clamping plate 1707 to effectively clamp the cover 7. Then, the bearing plate 11 is reset by the cylinder 9. Then, the drive motor 1301 drives the cover 7 to descend, and at the same time, the drive motor 15 drives the cover 7 to rotate and descend, thereby effectively connecting the threaded groove on the inner circumference of the cover 7 with the threaded ring on the outer circumference of the material cylinder 2. Thus, the sealing of the material cylinder 2 is completed in a fully automated manner, which increases its practicality and applicability.

[0039] The working principle and usage process of this device are as follows: When the device is to be used, the dispensing hopper 3 first dispenses a quantitative amount of probiotic powder into the inside of the material cylinder 2. When the conveyor 1 drives the material cylinder 2 to the front of the laser sensor 4, the drive motor 502 is turned on. The drive motor 502 drives the double-headed threaded rod 503 to rotate. Then, guided by the two sets of fixed rods 504, the connecting plate 506 moves along the through groove 505, so that the arc-shaped clamping plate 507 clamps and fixes the material cylinder 2, thereby avoiding the problem of sealing failure caused by the movement of the material cylinder 2 when sealing.

[0040] While the material cylinder 2 is effectively fixed on the upper side of the first conveyor 1, the cover 7 is conveyed to the upper side of the support plate 11 by the second conveyor 6. Then the cylinder 9 is turned on, and the cylinder 9 can drive the cover 7 on the upper side of the support plate 11 to move above the material cylinder 2 through the second connecting plate 10.

[0041] When the cover 7 reaches the top of the material cylinder 2, the drive motor 1301 is turned on. The drive motor 1301 drives the lead screw 1302 to rotate, and then the movable block 1304 is lowered by the guidance of the two sets of slide rods 1303. The movable block 1304 then drives the lifting plate 14 to lower, thereby driving the fixing mechanism 17 to lower to the top of the cover 7.

[0042] When the fixing mechanism 17 descends to the top of the cover 7, the drive motor 1702 is activated. The drive motor 1702 drives the double-headed threaded rod 1703 to rotate, and then the moving blocks 1705 on both sides move closer to each other through the guide of the fixing rod 1704. Then, the connecting plate 1706 drives the arc-shaped clamping plate 1707 to effectively clamp the cover 7. Then, the bearing plate 11 is reset by the cylinder 9. Then, the drive motor 1301 drives the cover 7 to descend, and at the same time, the drive motor 15 drives the cover 7 to rotate and descend, thereby effectively connecting the threaded groove on the inner circumference of the cover 7 with the threaded ring on the outer circumference of the material cylinder 2. Thus, the sealing of the material cylinder 2 is completed in a fully automated manner, which increases its practicality and applicability.

[0043] The foregoing has shown and described the basic principles, main features, and advantages of this utility model. Those skilled in the art should understand that this utility model is not limited to the above embodiments. The embodiments and descriptions in the specification are merely principles of this utility model. Various changes and modifications can be made to this utility model without departing from its spirit and scope, and all such changes and modifications fall within the scope of the claimed utility model. The scope of protection of this utility model is defined by the appended claims and their equivalents.

Claims

1. A sealed structure for processing probiotics, comprising a conveyor (1), characterized in that: A material cylinder (2) is movably connected to the top of the first conveyor (1). A discharge hopper (3) is provided at the rear of the first conveyor (1). A laser sensor (4) is fixedly installed at the top of the rear of the first conveyor (1). A fixing mechanism (5) is provided at the bottom of the first conveyor (1). A second conveyor (6) is provided on the outer surface of the discharge hopper (3). A cover (7) is movably connected to the top of the second conveyor (6). A support plate (8) is also fixedly connected to the outer surface of the discharge hopper (3). A cylinder (9) is fixedly installed at the rear of the support plate (8). The output end of the cylinder (9) extends to the front of the support plate (8) and is fixedly connected to a connecting plate (2). 10), a bearing plate (11) is fixedly connected to the front side of the connecting plate two (10), a fixed frame (12) is provided on the front side of the conveyor one (1), a slot (1201) is opened on the outer surface of the fixed frame (12), a lifting mechanism (13) is provided inside the slot (1201), a lifting plate (14) is fixedly connected to the outer surface of the lifting mechanism (13), a drive motor three (15) is fixedly installed on the top of the lifting plate (14), the output end of the drive motor three (15) extends to the lower side of the lifting plate (14) and is fixedly connected to a rotating disk (16), and a fixed mechanism two (17) is provided at the bottom of the rotating disk (16).

2. The sealing structure for probiotic processing according to claim 1, characterized in that: The fixing mechanism 1 (5) includes mounting plates 1 (501) fixedly connected to opposite sides of the conveyor 1 (1). A drive motor 1 (502) is fixedly mounted on the outer side of one mounting plate 1 (501). A double-headed threaded rod 1 (503) is rotatably connected between the two mounting plates 1 (501). The output end of the drive motor 1 (502) extends between the two mounting plates 1 (501) and is fixedly connected to one end of the double-headed threaded rod 1 (503). Two sets of fixing rods 1 (504) are also fixedly connected between the two mounting plates 1 (501). The two sets of fixing rods 1 (504) are symmetrically distributed on opposite sides of the double-headed threaded rod 1 (503).

3. The sealing structure for probiotic processing according to claim 2, characterized in that: The outer circumference of the double-headed threaded rod (503) is threaded with connecting plates (506) on both sides. The connecting plates (506) are slidably connected to the two sets of fixing rods (504). The top of the two sets of mounting plates (501) is provided with through slots (505). The connecting plates (506) extend to the upper side of the mounting plates (501) through the through slots (505). The end of the connecting plates (506) away from the mounting plates (501) is fixedly connected with an arc-shaped clamping plate (507).

4. The sealing structure for probiotic processing according to claim 1, characterized in that: The lifting mechanism (13) includes a second drive motor (1301) fixedly installed on the top of the fixed frame (12). The output end of the second drive motor (1301) extends into the inside of the slot (1201) and is fixedly connected to a lead screw (1302). The lead screw (1302) is rotatably connected to the inner wall of the fixed frame (12). Two sets of slide rods (1303) are also fixedly connected inside the slot (1201). The two sets of slide rods (1303) are symmetrically distributed on opposite sides of the lead screw (1302).

5. The sealing structure for probiotic processing according to claim 4, characterized in that: The outer peripheral surface of the lead screw (1302) is threaded with a movable block (1304). The movable block (1304) is slidably connected to both sets of slide rods (1303). The end of the movable block (1304) away from the slot (1201) is fixedly connected to the lifting plate (14).

6. The sealing structure for probiotic processing according to claim 1, characterized in that: The second fixing mechanism (17) includes two sets of side plates (1701) fixedly connected to the top of the rotating disk (16). A fourth drive motor (1702) is fixedly installed on the outer side of one set of the side plates (1701). A second double-headed threaded rod (1703) is rotatably connected between the two sets of the side plates (1701). The output end of the fourth drive motor (1702) extends between the two sets of the side plates (1701) and is fixedly connected to one end of the second double-headed threaded rod (1703). A second fixing rod (1704) is also fixedly connected between the two sets of the side plates (1701).

7. The sealing structure for probiotic processing according to claim 6, characterized in that: The two sides of the double-headed threaded rod (1703) are threaded with moving blocks (1705). The moving blocks (1705) are slidably connected to the fixed rod (1704). The two sides of the outer surface of the rotating disk (16) are provided with through slots (1601). The moving blocks (1705) on both sides extend to the lower side of the rotating disk (16) through the through slots (1601) and are fixedly connected with connecting plates (1706). The outer surface of the connecting plates (1706) is fixedly connected with arc-shaped clamping plates (1707).