Mixing device for probiotic fermentation
By designing a slidable mixing barrel and a removable stirring assembly, the problems of uneven mixing of materials and inconvenient cleaning during probiotic fermentation are solved, and the stirring effect and cleaning convenience are improved.
Patent Information
- Application Number
- CN202421912727.2
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-08-07
- Publication Date
- 2025-07-04
- Estimated Expiration
- 2034-08-07
AI Technical Summary
During the fermentation process of existing probiotic bacteria, the stirring direction of the stirring structure is fixed, the material mixing is uneven, which affects the fermentation effect and makes the stirring components inconvenient to clean.
A mixing device including a base, T-trough, T-block, mixing barrel, reciprocating cylinder, guide rod and connecting block is designed. The mixing barrel is driven to slide forward and backward through the reciprocating cylinder, combined with the detachable structure of the stirring assembly, to achieve an improvement in the stirring effect, and the amount of raw materials added is controlled through the feeding pipe and the feeding box for easy cleaning.
The uniform mixing of materials during the fermentation of probiotics is achieved, which improves the fermentation effect, and the stirring components are easy to clean, reducing the difficulty of cleaning.
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Figure CN223060968U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of probiotic fermentation, and more specifically, it relates to a mixing device for probiotic fermentation. Background Art
[0002] During the production process of probiotics, different components need to be added for mixing, and a mixing device is required. During the fermentation process of probiotic sludge, probiotics need to be effectively attached to raw materials to promote the fermentation process and improve the quality and efficacy of products. However, the mixing resistance of sludge-like materials is relatively large, and the diffusion resistance of newly added components is also very large, especially when a large amount of sludge needs to be fermented. At present, the stirring direction of the stirring structure is fixed, and the materials flow along the stirring direction and the generated gaps, making it difficult to mix evenly, thus affecting the fermentation effect of probiotics. Moreover, after mixing is completed, the outer surface of the stirring component is easily adhered with sludge-like materials and is not easy to clean, and traditional mixing devices are mostly enclosed, making it inconvenient to clean. Summary of the Utility Model
[0003] (1) Technical Problems to be Solved
[0004] Aiming at the problems existing in the prior art, the utility model provides a mixing device for probiotic fermentation to solve the technical problem that the stirring direction of the current stirring structure is fixed, and the materials flow along the stirring direction and the generated gaps, making it difficult to mix evenly, thus affecting the fermentation effect of probiotics mentioned in the background art.
[0005] (2) Technical Solutions
[0006] To achieve the above object, the utility model provides the following technical solution: A mixing device for probiotic fermentation, including a base. T-shaped grooves are respectively formed on the upper end surface of the base on both sides. T-shaped blocks are respectively slidably arranged inside the T-shaped grooves. A mixing cylinder is fixedly arranged on the upper end surfaces of the T-shaped blocks. A vertical plate is fixedly arranged on the upper end surface of the base on one side of the mixing cylinder. A reciprocating cylinder is arranged on the outer wall of the vertical plate. Guide rods are respectively arranged on the inner walls of the vertical plate on both sides of the reciprocating cylinder. Guide cylinders are respectively arranged on the outer wall of the mixing cylinder corresponding to the guide rods. The guide rods are slidably installed with the guide cylinders. Connecting springs are respectively arranged at the outer ends of the guide cylinders on the outer wall of the mixing cylinder, and the other ends of the connecting springs are fixedly connected to the inner walls of the vertical plate. A connecting rod is arranged on the outer wall of the mixing cylinder, and a connecting block is arranged at the other end of the connecting rod. The connecting block is fixedly installed with the output end of the reciprocating cylinder by bolts. A closing mechanism is arranged at one end of the mixing cylinder.
[0007] The present utility model is further configured such that the closing mechanism includes a cover body. A first conical surface is provided on the inner wall of the cover body, and a second conical surface is correspondingly formed on the inner wall of the mixing cylinder. The first conical surface is located inside the second conical surface. An annular ring is provided on the outer wall of the cover body, and a tightening nut is provided at the outer end of the annular ring. The tightening nut is threadedly connected to the outer walls of the cover body and the mixing cylinder, and its interior abuts against the outer wall of the cover body, facilitating the disassembly of the cover body and the mixing cylinder.
[0008] The present utility model is further configured such that a feeding pipe is fixedly provided on the upper end surface of the mixing cylinder. A control valve is provided on the feeding pipe, and a feeding box is fixedly provided on the upper end surface of the feeding pipe. The feeding box is made of a transparent material. A distribution box is provided inside the feeding box. There are multiple distribution boxes, and discharge pipes are provided at the lower ends of all of them. Electromagnetic valves are provided on all the discharge pipes, facilitating the control of the addition amount of the raw materials for probiotic fermentation.
[0009] The present utility model is further configured such that clamping blocks are fixedly provided on the outer wall of the distribution box and on the front and rear sides. Clamping grooves are correspondingly formed on the inner wall of the feeding box. The clamping blocks are all located inside the clamping grooves, facilitating the positioning and installation of the distribution box.
[0010] The present utility model is further configured such that bolts are slidably provided on the front and rear sides of the feeding box. Insertion holes are correspondingly formed on the outer wall of the clamping blocks. One ends of the bolts are all located inside the insertion holes, facilitating the fixation of the distribution box.
[0011] The present utility model is further configured such that pulling blocks are fixedly provided at the other ends of the bolts. Tightening springs are fixedly provided between the pulling blocks and the feeding box, facilitating the pushing of the bolts into the insertion holes.
[0012] The present utility model is further configured such that buckles are hingedly provided at the upper ends of the distribution boxes. Magnetic attraction blocks are provided at the contact positions between the buckles and the distribution boxes, facilitating the closing of the upper ends of the distribution boxes.
[0013] The present utility model is further configured such that a motor is provided on the outer wall of the cover body. The output end of the motor passes through the cover body and is provided with a stirring assembly, facilitating the stirring of the raw materials and probiotics inside the mixing cylinder.
[0014] (III) Advantageous Effects
[0015] Compared with the prior art, the present utility model provides a mixing device for probiotic fermentation, having the following advantageous effects:
[0016] 1. By arranging a base, a T-slot, a T-block, a mixing barrel, a vertical plate, a reciprocating cylinder, a guide rod, a guide barrel, a connecting spring, a connecting rod and a connecting block, during the stirring process, the user can control the reciprocating cylinder to make its output end drive the connecting block to move, thereby driving the mixing barrel to slide back and forth on the upper end of the base, so that the raw materials and probiotics inside can be shaken while stirring, so that the stirring effect is better.
[0017] 2. By providing a cover body, a first conical surface, a second conical surface, an annular ring and a locking nut, the user can disassemble the cover body and the mixing barrel by removing the locking nut to remove the stirring component from the inside of the mixing barrel, thereby facilitating the cleaning of the inner wall of the mixing barrel and the stirring component.
[0018] 3. By setting a feeding pipe, a control valve, a feeding box, a distribution box, a discharge pipe, a solenoid valve, a clamping block, a clamping groove, a latch, a socket, a pull block and a tension spring, the user can add various raw materials for probiotic fermentation into the distribution box, and then control the amount of each raw material added by controlling the solenoid valve respectively, which is convenient for feeding. The user can also pull the pull block to disengage one end of the latch from the socket to disassemble the distribution box for easy cleaning. BRIEF DESCRIPTION OF THE DRAWINGS
[0019] Figure 1 This is an overall schematic diagram of a mixing device for probiotic fermentation when not in use;
[0020] Figure 2 It is an overall cross-sectional view of a mixing device for probiotic fermentation;
[0021] Figure 3 This is the exploded view of the installation of the latch and buckle cover on the material distribution box;
[0022] Figure 4 It is a schematic diagram of the positions of the control valve, the feeding box, the clamping groove and the tension spring on the feeding pipe;
[0023] Figure 5 This is an exploded view of the installation of the base and mixing barrel.
[0024] In the figure: 1. base; 2. T-slot; 3. T-block; 4. mixing barrel; 5. vertical plate; 6. reciprocating cylinder; 7. guide rod; 8. guide barrel; 9. connecting spring; 10. connecting rod; 11. connecting block; 12. cover body; 13. first cone surface; 14. second cone surface; 15. annular ring; 16. tightening nut; 17. feeding pipe; 18. control valve; 19. feeding box; 20. distribution box; 21. discharge pipe; 22. solenoid valve; 23. clamping block; 24. clamping slot; 25. latch; 26. socket; 27. pull block; 28. tension spring; 29. buckle cover; 30. motor. Detailed implementation manners
[0025] It should be noted that, without conflict, the embodiments in this application and the features in the embodiments can be combined with each other. The following will describe the present utility model in detail with reference to the drawings and in combination with the embodiments.
[0026] It should be pointed out that unless otherwise specified, all technical and scientific terms used in this application have the same meanings as those commonly understood by those of ordinary skill in the technical field to which this application belongs.
[0027] In the present utility model, unless otherwise stated, the orientations such as "upper and lower" are usually in the directions shown in the drawings, or in the vertical, perpendicular or gravitational directions; similarly, for the convenience of understanding and description, "left and right" are usually in the left and right shown in the drawings; "inside and outside" refer to the inside and outside relative to the contour of each component itself, but the above orientation terms are not used to limit the present utility model.
[0028] Please refer to Figures 1-5 , a mixing device for probiotic fermentation, including a base 1. T-shaped grooves 2 are opened on both sides of the upper end surface of the base 1. T-shaped blocks 3 are slidably arranged inside the T-shaped grooves 2. A mixing cylinder 4 is fixedly arranged on the upper end surfaces of the T-shaped blocks 3. A vertical plate 5 is fixedly arranged on one side of the mixing cylinder 4 and on the upper end surface of the base 1. A reciprocating cylinder 6 is arranged on the outer wall of the vertical plate 5. Guide rods 7 are arranged on both sides of the reciprocating cylinder 6 and on the inner wall of the vertical plate 5. Guide cylinders 8 are correspondingly arranged on the outer wall of the mixing cylinder 4. The guide rods 7 and the guide cylinders 8 are slidably installed. Connecting springs 9 are arranged at the outer ends of the guide cylinders 8 and on the outer wall of the mixing cylinder 4. The other ends of the connecting springs 9 are fixedly connected to the inner wall of the vertical plate 5. A connecting rod 10 is arranged on the outer wall of the mixing cylinder 4. A connecting block 11 is arranged at the other end of the connecting rod 10. The connecting block 11 and the output end of the reciprocating cylinder 6 are fixedly installed by bolts. A closing mechanism is arranged at one end of the mixing cylinder 4.
[0029] In this embodiment, the closing mechanism includes a cover body 12. A first conical surface 13 is arranged on the inner wall of the cover body 12. A second conical surface 14 is correspondingly opened on the inner wall of the mixing cylinder 4. The first conical surface 13 is located inside the second conical surface 14. An annular ring 15 is arranged on the outer wall of the cover body 12. A tightening nut 16 is arranged at the outer end of the annular ring 15. The tightening nut 16 is threadedly connected to the outer walls of the cover body 12 and the mixing cylinder 4, and its inside abuts against the outer wall of the cover body 12. A motor 30 is arranged on the outer wall of the cover body 12. The output end of the motor 30 passes through the cover body 12 and is provided with a stirring assembly.
[0030] More specifically, the user can turn on the motor 30 to rotate the stirring assembly to stir the probiotics and fermentation raw materials inside the mixing barrel 4, and during the stirring process, the user can control the reciprocating cylinder 6 to drive the connecting block 11 to move at its output end, thereby driving the mixing barrel 4 to slide back and forth on the upper end of the base 1, so as to shake the raw materials and probiotics inside while stirring, so that the stirring effect is better. When it is necessary to take out the material or clean the inside, the user can disassemble the cover body 12 and the mixing barrel 4 by removing the locking nut 16, so as to take out the stirring assembly from the inside of the mixing barrel 4, thereby facilitating operation.
[0031] See also Figure 3 and Figure 4 As an implementation method for feeding different kinds of raw materials: a feeding pipe 17 is fixedly provided on the upper end surface of the mixing barrel 4, a control valve 18 is provided on the feeding pipe 17, a feeding box 19 is fixedly provided on the upper end surface of the feeding pipe 17, the feeding box 19 is made of a transparent material, a distribution box 20 is provided inside the feeding box 19, a plurality of distribution boxes 20 are provided and each of the lower ends is provided with a discharge pipe 21, each of the discharge pipes 21 is provided with a solenoid valve 22, and a solenoid valve 22 is provided on the outer wall of the distribution box 20. A clamping block 23 is fixedly provided on both the front and rear sides, a clamping groove 24 is correspondingly opened on the inner wall of the feeding box 19, and the clamping block 23 is located inside the clamping groove 24. A latch 25 is slidably provided on the front and rear sides of the feeding box 19, and a socket 26 is correspondingly opened on the outer wall of the clamping block 23. One end of the latch 25 is located inside the socket 26, and a pull block 27 is fixedly provided on the other end of the latch 25. A tensioning spring 28 is fixedly provided between the pull block 27 and the feeding box 19.
[0032] Specifically, the user can add various raw materials for probiotic fermentation into the distribution box 20, and then control the amount of each raw material added by controlling the solenoid valve 22 to facilitate the addition of materials. The user can also pull the pull block 27 to disengage one end of the pin 25 from the socket 26 to disassemble the distribution box 20 for easy cleaning.
[0033] Please refer to Figure 3 As a further implementation method of sealing the upper end of the distribution box 20: a buckle cover 29 is hingedly provided at the upper end of the distribution box 20, and a magnetic suction block is provided at the contact position between the buckle cover 29 and the distribution box 20.
[0034] Specifically, the upper end of the material distribution box 20 can be sealed to prevent the raw materials from escaping.
[0035] To sum up, when the overall equipment is in use: the user can turn on the motor 30 to rotate the stirring assembly to stir the probiotics and fermentation raw materials inside the mixing barrel 4, and during the stirring process, the user can control the reciprocating cylinder 6 to make its output end drive the connecting block 11 to move, thereby driving the mixing barrel 4 to slide back and forth on the upper end of the base 1, so that the raw materials and probiotics inside are shaken while stirring, so that the stirring effect is better. When it is necessary to take out the material or clean the inside, the user can disassemble the cover body 12 and the mixing barrel 4 by removing the locking nut 16 to remove the stirring assembly from the inside of the mixing barrel 4, so as to facilitate operation. When adding raw materials for fermentation, various raw materials for probiotic fermentation can be added to the distribution box 20 first, and then the amount of various raw materials added can be controlled by controlling the solenoid valve 22 respectively, so as to facilitate the addition of materials, and the user can also pull the pull block 27 to disengage one end of the pin 25 from the socket 26 to disassemble the distribution box 20 for easy cleaning.
[0036] In all the schemes mentioned above, the connection between two parts can be selected according to actual conditions by welding, bolt and nut matching connection, bolt or screw connection or other well-known connection methods, which are not described here one by one. In the above, all fixed connections are preferably welded. Although the embodiments of the utility model have been shown and described, it can be understood by ordinary technicians in this field that various changes, modifications, substitutions and variations can be made to these embodiments without departing from the principle and spirit of the utility model. The scope of the utility model is defined by the attached claims and their equivalents.
Claims
1. A mixing device for probiotic fermentation, comprising a base (1), characterized in that: On the upper end surface of the base (1) and on both sides, T-shaped grooves (2) are provided. Inside the T-shaped grooves (2), T-shaped blocks (3) are slidably arranged. On the upper end surfaces of the T-shaped blocks (3), a mixing cylinder (4) is fixedly arranged. On one side of the mixing cylinder (4) and on the upper end surface of the base (1), a vertical plate (5) is fixedly arranged. On the outer wall of the vertical plate (5), a reciprocating cylinder (6) is provided. On both sides of the reciprocating cylinder (6) and on the inner wall of the vertical plate (5), guide rods (7) are provided. Corresponding to the outer wall of the mixing cylinder (4), guide cylinders (8) are provided. The guide rods (7) are slidably installed with the guide cylinders (8). On the outer ends of the guide cylinders (8) and on the outer wall of the mixing cylinder (4), connecting springs (9) are provided. The other ends of the connecting springs (9) are fixedly connected to the inner wall of the vertical plate (5). On the outer wall of the mixing cylinder (4), a connecting rod (10) is provided. At the other end of the connecting rod (10), a connecting block (11) is provided. The connecting block (11) is fixedly installed with the output end of the reciprocating cylinder (6) by bolts. One end of the mixing cylinder (4) is provided with a closing mechanism.
2. A mixing device for probiotic fermentation according to claim 1, characterized in that: The closing mechanism includes a cover body (12). On the inner wall of the cover body (12), a first conical surface (13) is provided. Corresponding to the inner wall of the mixing cylinder (4), a second conical surface (14) is provided. The first conical surface (13) is located inside the second conical surface (14). On the outer wall of the cover body (12), an annular ring (15) is provided. On the outer end of the annular ring (15), a tightening nut (16) is provided. The tightening nut (16) is threadedly connected to the outer walls of the cover body (12) and the mixing cylinder (4), and its interior abuts against the outer wall of the cover body (12).
3. A mixing device for probiotic fermentation according to claim 1, characterized in that: On the upper end surface of the mixing cylinder (4), a feeding pipe (17) is fixedly arranged. On the feeding pipe (17), a control valve (18) is provided. On the upper end surface of the feeding pipe (17), a feeding box (19) is fixedly arranged. The feeding box (19) is made of a transparent material. Inside the feeding box (19), a distribution box (20) is provided. There are multiple distribution boxes (20) and discharge pipes (21) are provided at their lower ends. On the discharge pipes (21), electromagnetic valves (22) are provided.
4. The mixing device for probiotic fermentation according to claim 3, characterized in that: On the outer wall of the distribution box (20) and on the front and rear sides, clamping blocks (23) are fixedly arranged. Corresponding to the inner wall of the feeding box (19), clamping grooves (24) are provided. The clamping blocks (23) are all located inside the clamping grooves (24).
5. The mixing device for probiotic fermentation according to claim 4, characterized in that: On the front and rear sides of the feeding box (19), bolts (25) are slidably arranged. Corresponding to the outer walls of the clamping blocks (23), insertion holes (26) are provided. One ends of the bolts (25) are all located inside the insertion holes (26).
6. The premixing device for probiotic fermentation according to claim 5, characterized in that: At the other ends of the bolts (25), pulling blocks (27) are fixedly arranged. Between the pulling blocks (27) and the feeding box (19), tension springs (28) are fixedly arranged.
7. A mixing device for probiotic fermentation according to claim 3, characterized in that: On the upper ends of the distribution boxes (20), buckling covers (29) are hinged. At the contact positions between the buckling covers (29) and the distribution boxes (20), magnetic attraction blocks are provided.
8. The mixing device for probiotic fermentation according to claim 2, characterized in that: A motor (30) is provided on the outer wall of the cover body (12), and the output end of the motor (30) passes through the cover body (12) and is provided with a stirring assembly.