Probiotic slow-release device

By designing a probiotic sustained-release device that includes an outer box, a storage liner, and a rotary cutting component, the problem of frequent addition of probiotic particles in existing devices has been solved, realizing automated sustained release and efficient use of probiotic particles.

CN223823448UActive Publication Date: 2026-01-23GUANGZHOU STATE & BIOTECHNOLOGY CO LTD
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Patent Information

Application Number
CN202520026268.6
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-01-07
Publication Date
2026-01-23
Estimated Expiration
2035-01-07

AI Technical Summary

Technical Problem

Existing probiotic sustained-release devices cannot hold too many probiotic particles in their sustained-release chambers, requiring frequent additions and making them inconvenient to use.

Method used

A probiotic sustained-release device was designed, comprising an outer box, a storage liner, and a discharge box. The device utilizes a motor and a rotary cutting assembly to achieve automated sustained release of probiotic particles. The probiotic particles are automatically discharged by the blades of the rotary cutting assembly cutting the sealing aluminum film.

Benefits of technology

It achieves automated slow release of probiotic granules, simplifies the operation process, and ensures the quality and efficiency of probiotic use.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to the technical field of probiotic slow release, and discloses a probiotic slow release device which comprises an outer box, a material storage inner container and a material discharging box, a cover plate is rotatably installed on the top of the outer box, a first motor is installed on the upper side of the cover plate and drives the material storage inner container to rotate in the outer box, a water inlet is formed in one side of the cover plate, and a material discharging opening is formed in the bottom of the outer box; multiple sets of storage cavities are circularly distributed in the storage inner container, sealing aluminum films are installed at the upper ends and the lower ends of the storage cavities in a sealed mode respectively, an L-shaped plate is installed at the bottom of the outer box, and a rotary cutting assembly is installed on the L-shaped plate and used for cutting the sealing aluminum films at the lower ends of the storage cavities. Compared with the prior art, the probiotic packaging machine has the advantages that probiotics are packaged in the multiple sets of material storage cavities in the material storage inner container, water is injected into the material storage cavities for independent slow release, a sealing aluminum film is rotationally cut through a blade in the rotary cutting assembly, probiotic liquid subjected to slow release in the material storage cavities can be conveniently discharged for use, and the probiotic packaging machine is convenient to use. The use quality of the probiotics can be ensured.
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Description

Technical Field

[0001] This utility model relates to the field of probiotic sustained-release technology, specifically to a probiotic sustained-release device. Background Technology

[0002] Dry probiotic granules have a long shelf life, but their shelf life is greatly reduced after contact with water. Probiotic slow-release devices are used to slowly release probiotic granules into water and are widely used in various industries.

[0003] Existing probiotic sustained-release devices do not store many probiotic particles in their sustained-release chambers, requiring frequent addition of probiotic particles for sustained release, which is inconvenient to use.

[0004] To address the aforementioned technical problems, this application proposes a probiotic sustained-release device. Utility Model Content

[0005] I. Technical problems to be solved

[0006] The technical problem this invention aims to solve is that existing probiotic sustained-release devices do not store enough probiotic particles in their sustained-release chambers, requiring frequent addition of probiotic particles for sustained release, which is inconvenient to use.

[0007] II. Technical Solution

[0008] To solve the above-mentioned technical problems, the technical solution provided by this utility model is: a probiotic slow-release device, including an outer box, a storage liner, and a discharge box, wherein the storage liner is located inside the outer box, and the discharge box is installed at the bottom of the outer box;

[0009] The top of the outer box is rotatably mounted with a cover plate, and a motor is mounted on the upper side of the cover plate to drive the inner storage tank to rotate inside the outer box. A water inlet is provided on one side of the cover plate, and a discharge port is provided at the bottom of the outer box. The discharge port is located inside the discharge box and is aligned with the water inlet.

[0010] The inner storage liner has multiple storage chambers arranged in a circle inside. Each storage chamber is sealed with an aluminum film at its upper and lower ends. An L-shaped plate is installed at the bottom of the outer box, and a rotary cutting assembly is installed on the L-shaped plate. The upper part of the rotary cutting assembly is sealed and extends into the discharge box to cut the aluminum film at the lower end of the storage chamber.

[0011] As an improvement, the rotary cutting assembly includes an electric telescopic rod, a second motor, a rotating shaft, a connecting plate, and a blade. The electric telescopic rod passes through and is installed inside the lower side wall of the L-shaped plate. The second motor is installed on the upper side of the extended end of the electric telescopic rod. The rotating shaft is installed on the shaft end of the second motor and is sealed to the inside of the discharge box. The connecting plate is installed on the top of the rotating shaft. The blade is installed on the upper side of the connecting plate away from the rotating shaft, and its upper end extends into the discharge port.

[0012] As an improvement, a sealing sleeve is installed at the bottom of the discharge box, and the rotating shaft seal passes through the sealing sleeve and enters the interior of the discharge box.

[0013] As an improvement, the motor shaft passes through the cover plate and is equipped with a connecting kit. A connecting plug is installed at the center of the upper side of the storage liner. The connecting plug is inserted into the connecting kit. The motor drives the storage liner to rotate. A C-shaped pad is installed on the lower side of the cover plate. Multiple sets of ball bearings are embedded at the bottom edge of the storage liner.

[0014] As an improvement, the inner storage liner is provided with multiple sets of graduated observation windows on its side wall, and the outer box is provided with an observation port, with the observation windows located inside the observation port.

[0015] As an improvement, a support leg is installed at the bottom of the outer casing, a base plate is installed at the bottom of the support leg, and a control switch is installed on the outside of the outer casing.

[0016] III. Beneficial Effects

[0017] The advantages of this invention compared to the prior art are as follows: the probiotics are packaged in multiple storage chambers inside the storage liner, and water is injected into the storage chambers for independent slow release. The sealing aluminum film is rotated and cut by the blade in the rotating cutting component, which facilitates the discharge of the slow-released probiotic liquid from the storage chambers for use. The structure is simple, easy to operate, and can ensure the quality of the probiotics when used. Attached Figure Description

[0018] Figure 1 This is a schematic diagram of the overall structure of a probiotic slow-release device according to this utility model.

[0019] Figure 2 This is a schematic diagram of the bottom connection structure of the outer casing of a probiotic slow-release device according to this utility model.

[0020] Figure 3 This is a schematic diagram of the cross-sectional structure of the outer casing of a probiotic slow-release device according to this utility model.

[0021] Figure 4 This is a schematic diagram of the lower side structure of the cover plate of a probiotic slow-release device according to this utility model.

[0022] Figure 5 This is a schematic diagram of the storage inner liner structure of a probiotic slow-release device according to this utility model.

[0023] Figure 6 This is a schematic diagram of the cross-sectional structure of the inner liner of a probiotic slow-release device according to this utility model.

[0024] As shown in the figure: 1. Outer casing; 2. Inner storage liner; 3. Cover plate; 4. Storage cavity; 5. Observation window; 6. Sealing aluminum film; 7. Motor 1; 8. Connecting kit; 9. Connecting plug; 10. C-shaped pad; 11. Water inlet; 12. Discharge port; 13. Discharge box; 14. Ball bearing; 15. L-shaped plate; 16. Electric telescopic rod; 17. Motor 2; 18. Rotating shaft; 19. Connecting plate; 20. Cutting bar; 21. Sealing sleeve; 22. Observation port; 23. Support leg; 24. Base plate; 25. Control switch. Detailed Implementation

[0025] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments of the present utility model. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments. All other embodiments obtained by those skilled in the art based on the embodiments of the present utility model without creative effort are within the protection scope of the present utility model.

[0026] As attached Figure 1 As shown, a probiotic slow-release device includes an outer casing 1, a storage liner 2, and a discharge box 13. The storage liner 2 is located inside the outer casing 1, and the discharge box 13 is installed at the bottom of the outer casing 1. A support leg 23 is installed at the bottom of the outer casing 1, and a base plate 24 is installed at the bottom of the support leg 23 to ensure the stability of the slow-release device. A control switch 25 is installed on the outside of the outer casing 1 to control the electrical equipment in the slow-release device.

[0027] As attached Figure 1 Appendix Figure 3 Appendix Figure 4 and attached Figure 5 As shown, a cover plate 3 is rotatably installed on the top of the outer casing 1. A motor 7 is installed on the upper side of the cover plate 3, which drives the inner storage liner 2 to rotate inside the outer casing 1. The shaft end of the motor 7 passes through the cover plate 3 and is equipped with a connecting kit 8. A connecting plug 9 is installed at the center of the upper side of the inner storage liner 2. The connecting plug 9 is inserted into the connecting kit 8. Multiple sets of ball bearings 14 are embedded at the bottom edge of the inner storage liner 2 to reduce the friction between the bottom of the inner storage liner 2 and the bottom of the outer casing 1. A water inlet 11 is provided on one side of the cover plate 3. A discharge port 12 is provided at the bottom of the outer casing 1. The discharge port 12 is located inside the discharge box 13 and is aligned with the water inlet 11. Multiple storage cavities 4 are arranged in a circular pattern inside the inner storage liner 2. The upper and lower ends of the storage cavities 4 are aligned with the water inlet 11 and the discharge port 12.

[0028] As attached Figure 3 Appendix Figure 4 Appendix Figure 5 and attached Figure 6As shown, the inner storage liner 2 has multiple sets of graduated observation windows 5 on its side wall, and the outer casing 1 has an observation port 22 on its side wall to facilitate viewing the water level inside the storage chamber 4. The observation windows 5 are located inside the observation port 22, which allows for easy observation of the movement position of the multiple storage chambers 4. The upper and lower ends of the storage chamber 4 are respectively sealed with sealing aluminum films 6, and a C-shaped gasket 10 is installed on the lower side of the cover plate 3 to compress and seal the upper end of the storage chamber 4.

[0029] As attached Figure 2 and attached Figure 3 As shown, an L-shaped plate 15 is installed at the bottom of the outer casing 1, and a rotary cutting assembly is installed on the L-shaped plate 15. The upper part of the rotary cutting assembly is sealed and extends into the discharge box 13 to cut the sealing aluminum film 6 at the lower end of the storage cavity 4. The rotary cutting assembly includes an electric telescopic rod 16, a second motor 17, a rotating shaft 18, a connecting plate 19, and a blade 20. The electric telescopic rod 16 passes through and is installed on the inner side of the lower side wall of the L-shaped plate 15. The second motor 17 is installed on the upper side of the extended end of the electric telescopic rod 16. The rotating shaft 18 is installed on the shaft end of the second motor 17 and is sealed and extends into the discharge box 13. The connecting plate 19 is installed on the top of the rotating shaft 18. The blade 20 is installed on the upper side of the connecting plate 19 away from the rotating shaft 18, and its upper end extends into the discharge port 12. A sealing sleeve 21 is installed through the bottom of the discharge box 13. The rotating shaft 18 passes through the sealing sleeve 21 and enters the discharge box 13 to prevent the probiotic liquid from flowing out of the discharge box 13.

[0030] The specific usage method is as follows:

[0031] Seal the lower end of the multiple storage chambers 4 in the inner storage liner 2 with aluminum film 6, place the probiotic granules into the multiple storage chambers 4, and then seal the upper end of the multiple storage chambers 4 with aluminum film 6 to facilitate the storage of probiotic granules and prevent moisture. Before the inner storage liner 2 is installed into the outer box 1, tear off all the aluminum film 6 at the upper end of the multiple storage chambers 4.

[0032] Rotate the cover plate 3 upwards, place the inner storage liner 2 inside the outer box 1, press the cover plate 3 onto the upper side of the inner storage liner 2, insert the connector 9 into the connector kit 8, and fix the cover plate 3 to the top of the outer box 1 by the connector buckle. Start the motor 7 by controlling the switch 25. The motor 7 drives the inner storage liner 2 to rotate inside the outer box 1, rotating a set of storage chambers 4 between the inlet 11 and the outlet 12. The position of the observation window 5 corresponding to the storage chamber 4 can be viewed through the observation port 22, thereby determining the initial position of the storage chamber 4. After the initial position is determined, set the number of segments in the 360° rotation of the motor 7 in the control switch 25, and the rotation speed of each segment. Subsequently, control the rotation amplitude of the motor 7 to accurately move the storage chamber 4 between the inlet 11 and the outlet 12.

[0033] Appropriate water is injected into the storage chamber 4 through the water inlet 11. The water level can be viewed through the observation window 5. After the probiotics are slowly released, the electric telescopic rod 16 and the second motor 17 are activated by the control switch 25. The electric telescopic rod 16 extends and pushes the second motor 17 and the rotating shaft 18 to move upward. The rotating shaft 18 moves in the sealing sleeve 21, pushing the connecting plate 19 and the blade 20 to move upward. The blade 20 pierces the sealing aluminum film 6 at the lower end of the storage chamber 4. The second motor 17 rotates within 300° to cut the sealing aluminum film 6. The probiotic slow-release liquid falls from the cut of the sealing aluminum film 6 into the discharge box 13 and is discharged through the discharge port on the upper side of the discharge box 13. Through the above method, the probiotic particles in the next set of storage chambers 4 are slowly released.

[0034] It should be noted that, in this document, relational terms such as "first" and "second" are used only to distinguish one entity or operation from another, and do not necessarily require or imply any such actual relationship or order between these entities or operations. Furthermore, the terms "comprising," "including," or any other variations thereof are intended to cover non-exclusive inclusion, such that a process, method, article, or apparatus that comprises a list of elements includes not only those elements but also other elements not expressly listed, or elements inherent to such process, method, article, or apparatus.

[0035] Although embodiments of the present invention have been shown and described, it will be understood by those skilled in the art that various changes, modifications, substitutions and alterations can be made to these embodiments without departing from the principles and spirit of the present invention, the scope of which is defined by the appended claims and their equivalents.

[0036] The present invention and its embodiments have been described above. This description is not restrictive, and the accompanying drawings are only one embodiment of the present invention; the actual structure is not limited thereto. In conclusion, if those skilled in the art are inspired by this description and design similar structures and embodiments without departing from the inventive spirit of the present invention, such designs should fall within the protection scope of the present invention.

Claims

1. A probiotic sustained-release device, characterized in that: It includes an outer box (1), a storage liner (2) and a discharge box (13), wherein the storage liner (2) is located inside the outer box (1) and the discharge box (13) is installed at the bottom of the outer box (1); The top of the outer box (1) is rotatably mounted with a cover plate (3), and a motor (7) is mounted on the upper side of the cover plate (3) to drive the storage liner (2) to rotate inside the outer box (1). A water inlet (11) is provided on one side of the cover plate (3), and a discharge port (12) is provided at the bottom of the outer box (1). The discharge port (12) is located inside the discharge box (13) and is aligned with the water inlet (11). The inner storage liner (2) has multiple storage chambers (4) arranged in a circular pattern inside. The upper and lower ends of the storage chambers (4) are respectively sealed with sealing aluminum film (6). The bottom of the outer box (1) is equipped with an L-shaped plate (15). A rotary cutting assembly is installed on the L-shaped plate (15). The upper part of the rotary cutting assembly is sealed and extends into the discharge box (13) to cut the sealing aluminum film (6) at the lower end of the storage chamber (4).

2. The probiotic sustained-release device according to claim 1, characterized in that: The rotary cutting assembly includes an electric telescopic rod (16), a second motor (17), a rotating shaft (18), a connecting plate (19), and a blade (20). The electric telescopic rod (16) passes through and is installed on the inner side of the lower side wall of the L-shaped plate (15). The second motor (17) is installed on the upper side of the extended end of the electric telescopic rod (16). The rotating shaft (18) is installed on the shaft end of the second motor (17) and is sealed to the inside of the discharge box (13). The connecting plate (19) is installed on the top of the rotating shaft (18). The blade (20) is installed on the upper side of the connecting plate (19) away from the rotating shaft (18), and its upper end passes into the inside of the discharge port (12).

3. The probiotic sustained-release device according to claim 2, characterized in that: The bottom of the discharge box (13) is fitted with a sealing sleeve (21), and the rotating shaft (18) passes through the sealing sleeve (21) and enters the interior of the discharge box (13).

4. The probiotic sustained-release device according to claim 1, characterized in that: The shaft end of the motor (7) passes through the cover plate (3) and is equipped with a connecting kit (8). A connecting plug (9) is installed at the center of the upper side of the storage liner (2). The connecting plug (9) is inserted into the connecting kit (8). The motor (7) drives the storage liner (2) to rotate. A C-shaped pad (10) is installed on the lower side of the cover plate (3). Multiple sets of ball bearings (14) are embedded at the bottom edge of the storage liner (2).

5. The probiotic sustained-release device according to claim 4, characterized in that: The inner storage liner (2) has multiple sets of graduated observation windows (5) on its side wall, and the outer box (1) has an observation port (22) on its side wall. The observation window (5) is located inside the observation port (22).

6. The probiotic sustained-release device according to claim 1, characterized in that: The outer casing (1) is equipped with a support leg (23) at the bottom, and a base plate (24) is installed at the bottom of the support leg (23). A control switch (25) is installed on the outside of the outer casing (1).