Enzyme raw material crushing device for enzyme beverage production
By using a stainless steel mesh cylinder to screen fine particles and a drive component to rotate the enzyme raw material crushing device, the problem of uneven particle size in the crushing process was solved, achieving efficient and safe production of enzyme beverages.
Patent Information
- Application Number
- CN202422541788.9
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-10-21
- Publication Date
- 2025-12-05
- Estimated Expiration
- 2034-10-21
AI Technical Summary
Traditional enzyme raw material crushing devices have unreasonable structural designs, resulting in particles of inconsistent size that are difficult to meet the high standards required for enzyme beverage production, thus affecting production efficiency and product quality.
Using a stainless steel mesh cylinder as the screening medium, only fine particles that meet the size requirements are allowed to pass through. Combined with a drive unit to rotate the mesh cylinder, centrifugal force is used to promote the outflow of raw materials. The design of detachable cutters and locking parts ensures the stability and safety of the crushing process.
It achieves uniformity of crushed materials, improves processing efficiency, reduces downtime caused by material blockage, lowers maintenance costs, and enhances the safety and stability of the equipment.
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Figure CN223628727U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The utility model relates to xx equipment technical field, concretely relates to a ferment raw material crushing device for ferment beverage production. BACKGROUND
[0002] As a kind of healthy drink, ferment beverage is more and more popular in market in recent years. Its production raw material mainly includes fruit, vegetable and other plant materials, these raw materials are rich in vitamins, minerals and fiber, and can be converted into ferment product easy for human body to absorb through fermentation process. However, in the production process of ferment beverage, the performance of crushing device directly affects the quality and production efficiency of final product.
[0003] Traditional ferment raw material crushing device has some unreasonable places in structural design, leading to the size of crushed particles, and there are still some large particles in crushed material, which is difficult to meet the needs of production and processing, and further brings inconvenience to later processing. Therefore, it may affect the product quality of production and processing, therefore, we propose a ferment raw material crushing device for ferment beverage production to solve the above problems. SUMMARY
[0004] The utility model discloses in order to realize the above-mentioned purpose specifically adopts following technical scheme:
[0005] A ferment raw material crushing device for ferment beverage production, comprising:
[0006] Material collecting barrel, the top is open structure, the bottom of one side of material collecting barrel is connected with discharge pipe;
[0007] Stainless steel mesh tube, set up in the material collecting barrel, the bottom of stainless steel mesh tube is connected with cleaning pipe, the cleaning pipe is rotatably connected in the bottom of material collecting barrel;
[0008] Driving part, set up in the bottom of material collecting barrel, the driving part is used to drive cleaning pipe to rotate;
[0009] Plunger, slidingly inserted in the cleaning pipe, the surface of plunger is equipped with cutter, the top of plunger is fixed with limit plate, and the limit plate is erected on the upper edge of material collecting barrel;
[0010] Locking part, set up in the top of material collecting barrel, the locking part is used for fixing limit plate.
[0011] Further, the driving part includes driving motor installed on the bottom of one side of material collecting barrel, the output shaft of driving motor is connected with driving pulley, the surface of cleaning pipe is fixed with driven pulley, and transmission belt is transmissionally connected between driving pulley and driven pulley.
[0012] Further, a bullseye wheel is arranged on the bottom edge of the stainless steel mesh cylinder in a ring shape, and the bullseye wheel is in sliding connection with the inner bottom wall of the collecting cylinder.
[0013] Further, a roller is arranged on the outside of the upper edge of the stainless steel mesh cylinder in a ring shape, and a ring groove is arranged on the inner wall of the collecting cylinder, and the roller is slidingly arranged in the ring groove.
[0014] Further, the locking member comprises a hinged rod hinged on one side of the top of the collecting cylinder, a connecting plate is fixedly arranged on the free end of the hinged rod, a U-shaped seat is fixedly arranged on the other side of the collecting cylinder, a locking bolt is threadedly connected to one side of the U-shaped seat, and a connecting hole matched with the locking bolt is arranged on the connecting plate.
[0015] Further, a U-shaped groove is arranged on the top of the limiting plate and matched with the hinged rod.
[0016] Further, the plunger is in a hollow structure.
[0017] Further, the cutter is in a spiral shape.
[0018] The beneficial effects of the present application are as follows:
[0019] The raw materials are placed in the stainless steel mesh cylinder, the stainless steel mesh cylinder is used as a screening medium, only fine particles meeting the size requirement are allowed to pass through, and the larger particles are left in the interior for further crushing, so that the uniformity of the crushed materials is ensured, and the high standard requirement of the enzyme beverage production is met.
[0020] The stainless steel mesh cylinder is driven to rotate by the driving member, the centrifugal force is utilized to promote the raw materials to flow out, the processing efficiency is improved, the downtime caused by the material blockage is reduced, the cutter is designed in a detachable mode, the cutter is convenient to replace and clean, the maintenance cost of the equipment is reduced, the stability of the limiting plate is ensured by the design of the locking member, the displacement of the limiting plate in the crushing process is prevented, and the safety of the equipment is enhanced. BRIEF DESCRIPTION OF DRAWINGS
[0021] Figure 1 is a three-dimensional structure schematic view of the present application;
[0022] Figure 2 is another three-dimensional structure schematic view of the present application;
[0023] Figure 3 is a top view schematic view of the present application;
[0024] Figure 4 is a three-dimensional structure schematic view of the present application Figure 3 is a three-dimensional structure schematic view of the present application
[0025] Reference numerals: 1. Collecting cylinder; 101. Discharge pipe; 102. Bullseye wheel; 2. Stainless steel mesh cylinder; 3. Cleaning pipe; 4. Driving component; 401. Drive motor; 402. Drive pulley; 403. Driven pulley; 404. Transmission belt; 5. Plunger; 6. Cutter; 7. Limiting plate; 701. U-shaped groove; 8. Locking component; 801. Hinge rod; 802. Connecting plate; 803. C-shaped seat; 804. Locking bolt; 9. Roller; 10. Annular groove. Detailed Implementation
[0026] To make the objectives, technical solutions, and advantages of the embodiments of this utility model clearer, the technical solutions of the embodiments of this utility model will be clearly and completely described below with reference to the accompanying drawings.
[0027] This application provides an enzyme raw material pulverizing device for enzyme beverage production. It primarily addresses the shortcomings of existing traditional enzyme raw material pulverizing devices in terms of structural design, which results in inconsistent particle sizes and the presence of larger particles in the pulverized material. This uneven particle size distribution makes it difficult to meet production processing needs, leading to inconvenience in subsequent processing. The application provides the following technical solution, which will be discussed in conjunction with... Figures 1-4 Please provide a detailed explanation:
[0028] An enzyme raw material crushing device for enzyme beverage production includes: a collection cylinder 1 with an open top and a discharge pipe 101 connected to the bottom of one side of the collection cylinder 1.
[0029] A stainless steel mesh cylinder 2 is installed inside the collecting cylinder 1. A cleaning pipe 3 is connected to the bottom center of the stainless steel mesh cylinder 2. The cleaning pipe 3 is rotatably connected to the bottom of the collecting cylinder 1.
[0030] The driving component 4 is located at the bottom of the collecting cylinder 1 and is used to drive the cleaning pipe 3 to rotate.
[0031] The plunger 5 slides inside the cleaning pipe 3. A cutter 6 is installed on the surface of the plunger 5. A limiting plate 7 is fixed on the top of the plunger 5. The two ends of the limiting plate 7 are mounted on the upper edge of the collecting cylinder 1.
[0032] Locking element 8 is located at the top of the collecting cylinder 1 and is used to fix the limiting plate 7.
[0033] Workflow Description
[0034] The first step is to install the equipment. First, insert the bottom end of the plunger 5 into the cleaning pipe 3, and then fix the limit plate 7 with the locking part 8.
[0035] The second step is to prepare the raw materials. Prepare the fruits, vegetables and other plant materials, ensuring that they are clean and suitable for crushing. Place the prepared raw materials into the stainless steel mesh cylinder 2.
[0036] The third step is to start the equipment and drive the cleaning pipe 3 to rotate through the drive component 4. While the cleaning pipe 3 is rotating, the cutter 6 on the plunger 5 cuts the raw material. Only when the raw material is cut into particles smaller than the mesh size of the stainless steel mesh cylinder 2 will it fall into the collection cylinder 1 through the mesh cylinder. Larger, incompletely crushed materials will continue to remain in the mesh cylinder for further crushing.
[0037] The fourth step is to complete the crushing process. After all the raw materials have been fully crushed and passed through the sieve, the plunger 5 can be pulled out, allowing the residue inside the stainless steel mesh cylinder 2 to be discharged out through the cleaning pipe 3. This makes it easier to clean the cutter 6 on the surface of the plunger 5 and the stainless steel mesh cylinder 2.
[0038] This enzyme raw material crushing device for enzyme beverage production places the raw materials inside a stainless steel mesh cylinder 2, which acts as a screening medium. Only small particles that meet the size requirements are allowed to pass through, while larger particles are left inside for further crushing. This ensures the uniformity of the crushed material and meets the high standards required for enzyme beverage production. In addition, the drive unit 4 rotates the stainless steel mesh cylinder 2, using centrifugal force to promote the outflow of raw materials, improving processing efficiency and reducing downtime caused by material blockage. The cutter 6 adopts a detachable design, which is convenient for replacement and cleaning, reducing equipment maintenance costs. The locking part 8 ensures the stability of the limit plate 7, preventing displacement during the crushing process and enhancing the safety of the equipment.
[0039] It should be noted that the mesh size of the stainless steel mesh cylinder 2 can be set according to specific processing requirements.
[0040] like Figure 1 As shown, in some embodiments, the drive unit 4 includes a drive motor 401 mounted on the bottom of one side of the collecting cylinder 1. The output shaft of the drive motor 401 is connected to a drive pulley 402. A driven pulley 403 is fixed on the surface of the cleaning pipe 3. A transmission belt 404 is connected between the drive pulley 402 and the driven pulley 403. More specifically, when the drive motor 401 starts, it drives the drive pulley 402 to rotate. Since the drive pulley 402 and the driven pulley 403 are connected by the transmission belt 404, the rotation of the drive pulley 402 is transmitted to the driven pulley 403 through the transmission belt 404. The driven pulley 403 rotates accordingly, thereby driving the cleaning pipe 3 to rotate. This rotational movement enables the cutter 6 on the plunger 5 to effectively cut the raw material in the stainless steel mesh cylinder 2. At the same time, the rotation of the cleaning pipe 3 also helps to promote the shredded material to fall through the mesh aperture of the stainless steel mesh cylinder 2 and enter the collecting cylinder 1 for collection.
[0041] As shown in Figure 4 some embodiments, the bottom edge of the stainless steel mesh cylinder 2 is provided with a ring-shaped array of eyelet wheels 102, which are in sliding connection with the inner bottom wall of the aggregate cylinder 1. More specifically, the main function of the eyelet wheels 102 is to provide additional support points for the stainless steel mesh cylinder 2, thereby reducing the pressure of the material on the bottom of the stainless steel mesh cylinder 2, protecting the structure of the stainless steel mesh cylinder 2 from damage, and at the same time, the sliding connection between the eyelet wheels 102 and the inner bottom wall of the aggregate cylinder 1 can significantly reduce the direct friction between them, prolonging the service life of the equipment.
[0042] As shown in Figure 4 some embodiments, the upper edge of the stainless steel mesh cylinder 2 is provided with a ring-shaped array of rollers 9, and the inner wall of the aggregate cylinder 1 is provided with a ring-shaped groove 10, in which the rollers 9 are slidingly embedded. More specifically, the main function of the rollers 9 is to provide stable support for the stainless steel mesh cylinder 2, preventing it from shaking due to uneven force or vibration during the crushing process. The arrangement of the rollers 9 helps to maintain the concentricity between the stainless steel mesh cylinder 2 and the inner wall of the aggregate cylinder 1, ensuring the stability and uniformity of the crushing process.
[0043] As shown in Figure 2 some embodiments, the locking member 8 includes a hinged rod 801 hinged to one side of the top of the aggregate cylinder 1, and a connecting plate 802 is fixed to the free end of the hinged rod 801. The other side of the aggregate cylinder 1 is fixed with a L-shaped seat 803, and a locking bolt 804 is threadedly connected to one side of the L-shaped seat 803. The connecting plate 802 is provided with a connecting hole matched with the locking bolt 804. More specifically, when it is necessary to fix the L-shaped plate, the hinged rod 801 can be rotated to make the connecting plate 802 embedded in the L-shaped plate, and then the locking bolt 804 is rotated to make its end embedded in the connecting hole on the connecting plate 802. At this time, the hinged rod 801 is pressed on the limiting plate 7, preventing it from moving.
[0044] As shown in Figure 2 some embodiments, the top of the limiting plate 7 is provided with a U-shaped groove 701 matched with the hinged rod 801. More specifically, when the hinged rod 801 is inserted into the U-shaped groove 701, the left and right movement of the limiting plate 7 is prevented.
[0045] As shown in Figure 4As shown, in some embodiments, the plunger 5 has a hollow structure. More specifically, the hollow plunger 5 is lighter than the solid plunger 5, which helps to reduce the load on the entire crushing device and improve the stability and service life of the equipment. Since the plunger 5 is hollow, it can be placed into the collecting cylinder 1 more easily during installation without worrying about the problem of difficulty in operation due to excessive weight. Similarly, the hollow structure of the plunger 5 also makes the disassembly process simpler. When the plunger 5 needs to be replaced or maintained, it can be easily removed from the collecting cylinder 1 without consuming too much manpower and resources.
[0046] like Figure 4 As shown, in some embodiments, the cutter 6 is spiral-shaped. More specifically, the cutter 6 adopts a spiral shape design, which helps to generate rotational force during the cutting process, causing the material to tumble up and down while being chopped, thus ensuring the uniformity and stability of the material during the cutting process.
[0047] The above description of the disclosed embodiments enables those skilled in the art to make or use the present invention. Various modifications to these embodiments will be readily apparent to those skilled in the art, and the general principles defined herein may be implemented in other embodiments without departing from the spirit or scope of the present invention. Therefore, the present invention is not to be limited to the embodiments shown herein, but is to be accorded the widest scope consistent with the principles and novel features disclosed herein.
Claims
1. A device for pulverizing enzyme raw materials for producing enzyme beverages, characterized in that, It includes: The top of the aggregate cylinder (1) is open structure, the bottom of the aggregate cylinder (1) is communicated with the discharge pipe (101); The stainless steel mesh cylinder (2) is arranged in the aggregate cylinder (1), the bottom of the stainless steel mesh cylinder (2) is communicated with the cleaning pipe (3), the cleaning pipe (3) is rotatably connected to the bottom of the aggregate cylinder (1); The driving member (4) is arranged at the bottom of the aggregate cylinder (1), and the driving member (4) is used for driving the cleaning pipe (3) to rotate; The plunger (5) is slidably inserted into the cleaning pipe (3), the surface of the plunger (5) is provided with a cutter (6), the top of the plunger (5) is fixedly provided with a limiting plate (7), and the limiting plate (7) is arranged at the upper edge of the aggregate cylinder (1); The locking member (8) is arranged at the top of the aggregate cylinder (1), and the locking member (8) is used for fixing the limiting plate (7).
2. The enzyme raw material grinding device for enzyme beverage production according to claim 1, characterized in that, The driving member (4) includes a driving motor (401) arranged at the bottom of the aggregate cylinder (1), the output shaft of the driving motor (401) is connected with a driving pulley (402), the surface of the cleaning pipe (3) is fixedly provided with a driven pulley (403), and the driving pulley (402) and the driven pulley (403) are transmissionally connected with a transmission belt (404).
3. The enzyme raw material grinding device for enzyme beverage production according to claim 1, characterized in that, The bottom edge of the stainless steel mesh cylinder (2) is annularly arranged with a bull's eye wheel (102), and the bull's eye wheel (102) is slidably connected with the inner bottom wall of the aggregate cylinder (1).
4. The enzyme raw material grinding device for enzyme beverage production according to claim 1, characterized in that, The upper edge of the stainless steel mesh cylinder (2) is annularly arranged with a roller (9) on the outer side, the inner wall of the aggregate cylinder (1) is annularly arranged with a groove (10) on the upper side, and the roller (9) is slidably embedded in the groove (10).
5. The enzyme raw material grinding device for enzyme beverage production according to claim 1, characterized in that, The locking member (8) includes a hinged rod (801) hinged at one side of the top of the aggregate cylinder (1), the free end of the hinged rod (801) is fixedly provided with a connecting plate (802), the other side of the aggregate cylinder (1) is fixedly provided with a type seat (803), one side of the type seat (803) is threadedly connected with a locking bolt (804), and the connecting plate (802) is provided with a connecting hole matched with the locking bolt (804).
6. The enzyme raw material grinding device for enzyme beverage production according to claim 5, characterized in that, The top of the limiting plate (7) is provided with a U-shaped groove (701), and the U-shaped groove (701) is matched with the hinged rod (801).
7. The enzyme raw material grinding device for enzyme beverage production according to claim 1, characterized in that, The plunger (5) is of hollow structure.
8. The enzyme raw material grinding device for enzyme beverage production according to claim 1, characterized in that, The cutter (6) is spiral-shaped.