A forming device for wolfberry solid beverage

By designing a dynamic extruder, a hollow shaft drives a material throwing disc and roller assembly, solving the problems of large roller rotational inertia and high motor power in existing extruders. This achieves efficient molding and rapid discharge of wolfberry solid beverages, improving production efficiency and ease of operation.

CN224268223UActive Publication Date: 2026-05-26NINGXIA HUAXINDA HEALTH TECH CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
NINGXIA HUAXINDA HEALTH TECH CO LTD
Filing Date
2025-09-08
Publication Date
2026-05-26

AI Technical Summary

Technical Problem

Existing extruders used in the production of goji berry solid beverages have problems such as large roller rotational inertia, high motor power, and difficulty in collecting and forming.

Method used

The dynamic extruder uses a geared motor to drive a hollow shaft that drives a slinger and roller assembly. Centrifugal force is used to quickly discharge the formed particles, reducing unnecessary energy loss and providing a clear discharge path and effective discharge power.

Benefits of technology

This reduces the power requirements of the electric motor, avoids power waste, improves production efficiency and ease of operation, and ensures the smooth discharge and subsequent collection of the formed pellets.

✦ Generated by Eureka AI based on patent content.

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Abstract

This utility model relates to the technical field of solid beverage production equipment, specifically disclosing a forming device for goji berry solid beverage. It includes a geared motor, a housing, a granulator, and a baffle. The housing is located on one side of the geared motor and contains a transmission mechanism connected to the output shaft of the geared motor. The granulator is located at the upper end of the housing and contains a cutting mechanism and a material-discharging disc. The baffle is located at the upper end of the granulator and contains an extrusion forming mechanism. This device achieves material discharge by rotating the material-discharging disc via a hollow shaft. It works in conjunction with components such as the template to reduce energy loss and lower the power requirements of the motor. The material-discharging disc is installed inside the granulator and connected to the hollow shaft. After the material is extruded and cut into granules, the material-discharging disc rotates under the drive of the hollow shaft, and the finished granules are discharged from the discharge port by centrifugal force. This solves the problems of large roller rotational inertia, high motor power, and inconvenience in collecting the formed goji berry solid beverage in existing extruders.
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Description

Technical Field

[0001] This utility model belongs to the technical field of solid beverage production equipment, specifically, it relates to a molding device for wolfberry solid beverage. Background Technology

[0002] Goji berry solid beverages are instant powder or granule drinks made primarily from goji berries (mostly Ningxia goji berries, Lycium barbarum) using modern food processing techniques (such as extraction, concentration, and drying). In the production process, pressure molding involves confining powdered materials within a specific space and compressing them into a dense state by applying external force. Its success depends on both the effective utilization and transmission of the external force and the physical properties of the granule material. This method offers advantages such as strong adaptability, high output, uniform particle size, good particle strength, and high granulation rate. Extrusion granulation, on the other hand, utilizes volume changes to agglomerate loose materials into granules of a specific shape under the influence of liquid bridging forces.

[0003] However, most existing extrusion granulators used in the production of goji berry solid beverages are moving roller extruders. In this type of extruder, the die remains stationary, and power is transmitted from the motor to the main shaft. The main shaft drives the roller assembly to rotate. Simultaneously, the solid material between the rollers and the die generates friction, causing the rollers to rotate. This results in the roller frame revolving and the rollers rotating. The material on the die is pressed into the small holes of the die as the rollers rotate, thus achieving material extrusion molding. However, this structure requires a relatively large motor power due to the large rotational inertia of the rollers. In small-scale, low-volume operations, this can easily lead to power waste and makes it difficult to collect the molded goji berry solid beverage.

[0004] Based on this, the present invention proposes a molding device for wolfberry solid beverage to solve the problems existing in the prior art. Utility Model Content

[0005] In view of this, the main objective of this utility model is to provide a molding device for wolfberry solid beverage, so as to solve the problems of large roller rotational inertia, high motor power, and inconvenience in collecting the molded wolfberry solid beverage in existing extruders.

[0006] To achieve the above objectives, the technical solution of this utility model is implemented as follows:

[0007] A molding device for wolfberry solid beverage, the device is a dynamic extruder, including a geared motor, a housing, a pellet holding cylinder and a baffle.

[0008] The box is located on one side of the geared motor, and a transmission mechanism is rotatably installed inside the box and connected to the output shaft of the geared motor. The upper end of the transmission mechanism passes through the box and extends into the grain holding cylinder and the baffle.

[0009] The grain holding cylinder is located at the upper end of the box body, and a cutting mechanism and a material throwing disc are provided inside the grain holding cylinder, with the material throwing disc located below the cutting mechanism.

[0010] The baffle is located at the upper end of the grain-holding cylinder, and an extrusion molding mechanism is provided inside the baffle. The extrusion molding mechanism includes a roller assembly and a template. The roller assembly is located on the upper side of the template and matches the template. The template is connected to the transmission mechanism and rotates with the transmission mechanism.

[0011] In a preferred embodiment, the output shaft of the geared motor is provided with a flanged half-coupling, one end of which is connected to the output shaft of the geared motor, and the other end is connected to the inner ring of the second tapered roller bearing. The other end of the inner ring of the second tapered roller bearing is connected to the bevel gear shaft.

[0012] In a preferred embodiment, the transmission mechanism includes a driven bevel gear, a hollow bearing spacer, and a hollow shaft;

[0013] The driven bevel gear is fixedly mounted on the outside of the hollow shaft and meshes with the bevel gear shaft;

[0014] The hollow shaft is rotatably mounted inside the housing via a hollow bearing spacer and a first tapered roller bearing.

[0015] In a preferred embodiment, the first tapered roller bearing is fixedly disposed at the lower end of the housing, and an adjusting sleeve is provided between the driven bevel gear and the first tapered roller bearing; the hollow bearing sleeve is disposed on the lower side of the upper inner wall of the housing through the first deep groove ball bearing, and is located outside the hollow shaft.

[0016] In a preferred embodiment, a fixing core is further provided inside the hollow shaft. The fixing core is rotatably connected to the hollow shaft, and the lower end of the fixing core is fixedly installed on the lower side wall of the housing, while the upper end is connected to the roller assembly.

[0017] In a preferred embodiment, the material throwing disc is disposed inside the grain holding cylinder and is connected to the hollow shaft via a connector, rotating with the hollow shaft.

[0018] In a preferred embodiment, the baffle is fixedly disposed at the upper end of the grain-holding cylinder, forming a material cavity between the baffle and the inner cylinder. The lower end of the inner cylinder is fixedly connected to the template, and a plurality of forming holes are provided on the template.

[0019] In a preferred embodiment, the roller assembly is disposed inside the inner barrel and includes a cross shaft, which is fixedly connected to the upper end of the fixed core, and a fabric feeder is disposed at the upper end of the cross shaft.

[0020] In a preferred embodiment, the cross shaft is further provided with scraper feet and rollers;

[0021] The scraper feet are symmetrically arranged on the cross shaft and located on the upper side of the template;

[0022] The rollers are symmetrically arranged on the cross shaft, rotatably connected to the cross shaft, and in contact with the upper surface of the template.

[0023] In a preferred embodiment, the cutting mechanism includes a cutter disposed at one end of a handwheel shaft; the handwheel shaft is rotatably disposed on the side wall of the grain-holding cylinder via a manual wheel end cap and is connected to the handwheel via a manual wheel connecting key.

[0024] Compared with the prior art, the present invention provides a molding device for wolfberry solid beverage, which has the following beneficial effects:

[0025] 1. This goji berry solid beverage forming device uses a hollow shaft as the main drive shaft, which is driven to rotate by a drive mechanism. The rotation of the hollow shaft drives the material discharge disc to rotate, and through linkage with components such as the template, the entire forming process works in synergy. This transmission method does not rely on complex friction to drive the roller rotation, reducing unnecessary energy loss and lowering the power requirements of the motor. It effectively avoids power waste in small-scale, low-volume operations, making it more energy-efficient and effective. It solves the problems of large roller rotational inertia and high motor power in existing extruders.

[0026] 2. In this device, the material-discharging disc is installed inside the pellet-collecting cylinder and connected to the hollow shaft. After the material undergoes extrusion, cutting, and other processes to become finished pellets, the material-discharging disc rotates under the drive of the hollow shaft, using centrifugal force to discharge the finished pellets from the discharge port. This design provides a clear discharge path and effective discharge power for the finished pellets, enabling the formed goji berry solid beverage to be discharged smoothly and quickly from the device, facilitating subsequent collection and packaging processes, and greatly improving production efficiency and operational convenience. It solves the problem of difficulty in collecting the formed goji berry solid beverage after material formation in existing extruders. Attached Figure Description

[0027] To more clearly illustrate the technical solutions in the embodiments of this utility model or the prior art, the drawings used in the description of the embodiments or the prior art will be briefly introduced below. Obviously, the drawings described below are only some embodiments of this utility model. For those skilled in the art, other drawings can be obtained from these drawings without creative effort.

[0028] Figure 1 This is a schematic diagram of the molding device for wolfberry solid beverage of this utility model;

[0029] Figure 2 This is a top view of the molding device for wolfberry solid beverage of this utility model;

[0030] Figure 3 This is a top view of the roller assembly of this utility model;

[0031] Figure 4 This is a side view of the roller of this utility model;

[0032] Figure 5 This is a cross-sectional view of the roller of this utility model.

[0033] [Explanation of Major Organization Symbols]

[0034] 1. Sealing cover; 2. Locking round nut; 3. Mandrel sleeve; 4. First tapered roller bearing; 5. Adjusting spacer; 6. Driven bevel gear; 7. Hollow bearing spacer; 8. Hollow shaft; 9. Housing; 10. First deep groove ball bearing; 11. Pellet cylinder; 12. Discharge tray; 13. Template; 14. Pellet cylinder labyrinth; 15. Baffle; 16. Inner cylinder; 17. Roller assembly; 18. Distributor; 19. Cutter; 20. Handwheel shaft; 21. Manual wheel end cover; 22. Manual wheel connecting key; 23. Handwheel; 24. Bevel gear 25. Shaft; 26. Bearing sleeve; 27. Second tapered roller bearing; 28. Oil seal seat; 29. ​​Connecting key; 30. Splined half coupling; 31. Felt ring; 32. O-ring seal; 33. Motor base; 34. Base; 35. Fixing core; 36. Hex bolt; 37. Gear motor; 38. Scraper foot; 39. Hex head bolt; 40. Roller; 41. Roller labyrinth seal; 42. Second deep groove ball bearing; 43. Roller bearing outer end cover; 44. Cross shaft locking nut; 45. Cross shaft; 46. Sealing ring. Detailed Implementation

[0035] The structure of the molding device for wolfberry solid beverage will be further described in detail below with reference to the accompanying drawings and embodiments of this utility model.

[0036] It should be noted that, unless otherwise specified, the embodiments and features described in this application can be combined with each other. The present invention will now be described in detail with reference to the accompanying drawings and embodiments.

[0037] It should be noted that the terminology used herein is for the purpose of describing particular embodiments only and is not intended to limit the exemplary embodiments as described in this application. As used herein, the singular form is intended to include the plural form as well, unless the context clearly indicates otherwise. Furthermore, it should be understood that when the terms "comprising" and / or "including" are used in this specification, they indicate the presence of features, steps, operations, devices, mechanisms, and / or combinations thereof.

[0038] It should be noted that the terms "first," "second," etc., in the specification, claims, and accompanying drawings of this application are used to distinguish similar objects and are not necessarily used to describe a specific order or sequence. It should be understood that such data can be interchanged where appropriate so that the embodiments of this application described herein can be implemented, for example, in orders other than those illustrated or described herein. Furthermore, the terms "comprising" and "having," and any variations thereof, are intended to cover non-exclusive inclusion; for example, a process, method, system, product, or apparatus that comprises a series of steps or units is not necessarily limited to those steps or units explicitly listed, but may include other steps or units not explicitly listed or inherent to such processes, methods, products, or apparatus.

[0039] For ease of description, spatial relative terms such as "above," "on top of," "on the upper surface of," "above," etc., are used herein to describe the spatial positional relationship of a device or feature as shown in the figures to other devices or features. It should be understood that spatial relative terms are intended to encompass different orientations in use or operation beyond the orientation of the device as described in the figures. For example, if the device in the figures were inverted, a device described as "above" or "on top of" other devices or structures would subsequently be positioned as "below" or "under" other devices or structures. Thus, the exemplary term "above" can include both "above" and "below." The device may also be positioned in other different ways (rotated 90 degrees or in other orientations), and the spatial relative descriptions used herein will be interpreted accordingly.

[0040] As per the instruction manual Figures 1-5 As shown, this utility model provides a technical solution:

[0041] A forming device for goji berry solid beverages is disclosed. This device is a dynamic extruder used for forming and granulating goji berry solid beverage particles during the production process. It includes a geared motor 37, a housing 9, a granulation cylinder 11, and a baffle 15. Wherein:

[0042] The geared motor 37 is mounted on the upper side of the motor base 32 on the outside of the housing 9, and is connected to the housing 9 through the base 33 to form an integral structure;

[0043] The housing 9 is located on one side of the output shaft of the geared motor 37, and a transmission mechanism is rotatably installed inside the housing 9 and connected to the output shaft of the geared motor 37. The transmission mechanism is driven to rotate by the geared motor 37. The upper end of the transmission mechanism passes through the housing 9 and extends into the grain holding cylinder 11 and the baffle 15.

[0044] The granulation cylinder 11 is located at the upper end of the box body 9, and a cutting mechanism and a throwing disc 12 are provided inside the granulation cylinder 11. The cutting mechanism is located below the template 13 and is used to cut the material squeezed to the lower side of the template 13 into granular finished products. The throwing disc 12 is located below the cutting mechanism and is used to throw the granular finished products out of the discharge port on the granulation cylinder 11 after cutting.

[0045] The baffle 15 is located at the upper end of the granulation cylinder 11, and an extrusion molding mechanism is provided inside the baffle 15. The extrusion molding mechanism includes a roller assembly 17 and a template 13. The roller assembly 17 is located on the upper side of the template 13 and can extrude and mold the wolfberry solid beverage material added through the feeding port at the upper end of the baffle 15 on the template 13. The template 13 is fixedly connected to the transmission mechanism and rotates with the transmission mechanism to realize the processing and molding of the wolfberry solid beverage material.

[0046] In a preferred embodiment, such as Figure 1 and Figure 2 As shown, the output shaft of the geared motor 37 is equipped with a flanged half-coupling 36. The flanged half-coupling 36 plays a crucial connecting and transitional role; one end is tightly connected to the output shaft of the geared motor 37, ensuring accurate reception of power from the geared motor 37. At the other end of the flanged half-coupling 36, it is securely connected to the inner ring of the second tapered roller bearing 26 via a connecting key 28, allowing power to be smoothly transmitted to the second tapered roller bearing 26. The other end of the inner ring of the second tapered roller bearing 26 is connected to the bevel gear shaft 24. Thus, when the geared motor 37 starts rotating, a series of connecting structures drive the bevel gear shaft 24 to rotate synchronously, thereby realizing the power transmission and operation of the entire device.

[0047] Specifically, the second tapered roller bearing 26 is fixedly installed on the side wall of the housing 9 by the bearing sleeve 25, and an oil seal 27 is provided at the connection between the connecting key 28 and the inner ring of the second tapered roller bearing 26 to prevent oil leakage and to provide a sealing function.

[0048] In a preferred embodiment, such as Figure 1 and Figure 2 As shown, the transmission mechanism includes a driven bevel gear 6, a hollow bearing spacer 7, and a hollow shaft 8. The driven bevel gear 6 is fixedly mounted on the outside of the hollow shaft 8 and meshes with the bevel gear shaft 24; the hollow shaft 8 is rotatably mounted in the housing 9 via the hollow bearing spacer 7 and the first tapered roller bearing 4. In actual use, when the reduction motor 37 starts to rotate, its power is sequentially transmitted to the bevel gear shaft 24. Through the meshing action between the bevel gear shaft 24 and the driven bevel gear 6, the hollow shaft 8 is driven to rotate, thereby realizing the power transmission and operation function of the entire transmission mechanism.

[0049] Specifically, the first tapered roller bearing 4 is fixedly installed at the lower end of the housing 9, and an adjusting sleeve 5 is provided between the driven bevel gear 6 and the first tapered roller bearing 4. By using the adjusting sleeve 5 to control the installation position of the driven bevel gear 6, the correct meshing between the driven bevel gear 6 and other transmission components is ensured, thereby ensuring the efficient and stable operation of the transmission mechanism.

[0050] Specifically, the hollow bearing spacer 7 is installed on the lower side of the upper inner wall of the housing 9 via the first deep groove ball bearing 10, and is located outside the hollow shaft 8. It is used to protect the hollow shaft 8 and prevent the hollow shaft 8 from being damaged by external factors or by direct contact and friction with other components, thereby ensuring that the hollow shaft 8 can operate stably for a long time and guaranteeing the normal operation of the entire transmission mechanism.

[0051] Specifically, a fixing core 34 is also provided inside the hollow shaft 8. The fixing core 34 is rotatably connected to the hollow shaft 8, and the lower end of the fixing core 34 is fixedly installed on the lower side wall of the housing 9 by hexagonal bolts 35. The upper end is connected to the roller assembly 17. It can provide stable support and transmission foundation for the roller assembly 17 during the rotation of the hollow shaft 8, ensuring that the roller assembly 17 can perform its extrusion molding and other functions normally.

[0052] More specifically, a sealing cover 1 is installed on the side wall of the housing 9 at the lower end of the fixing core 34 by means of a locking round nut 2. The sealing cover 1 is used to protect the lower end of the fixing core 34 to prevent external dust, impurities and other substances from entering the housing 9 and causing wear or interference to the fixing core 34.

[0053] In a preferred embodiment, such as Figure 1 and Figure 2As shown, the throwing disc 12 is installed inside the granulation cylinder 11 and is fixedly connected to the hollow shaft 8 via a connector. When the hollow shaft 8 starts to rotate, it will drive the throwing disc 12 to rotate synchronously. During the rotation, the throwing disc 12 applies centrifugal force to the cut granular product. With the help of this centrifugal force, the granular product can be smoothly thrown out from the discharge port on the granulation cylinder 11, thereby completing the granule discharge process and ensuring the continuity and efficiency of the goji berry solid beverage molding and granulation process.

[0054] In a preferred embodiment, such as Figure 1 and Figure 2 As shown, the cutting mechanism includes a cutter 19, which is mounted on one end of a handwheel shaft 20 and used to cut the material formed on the lower side of the template 13 into granular finished products. The handwheel shaft 20 is rotatably mounted on the side wall of the granulation cylinder 11 via a manual wheel end cap 21 and is connected to the handwheel 23 via a manual wheel connecting key 22. In actual use, the operator only needs to turn the handwheel 23 to drive the handwheel shaft 20 to rotate, thereby precisely adjusting the angle of the cutter 19 to meet the material cutting requirements under different production needs.

[0055] In a preferred embodiment, such as Figure 1 and Figure 2 As shown, the baffle 15 is fixedly installed at the upper end of the granulation cylinder 11, forming a material cavity between the baffle 15 and the inner cylinder 16. The lower end of the inner cylinder 16 is fixedly connected to the template 13, and the template 13 is provided with several forming holes. In actual use, when the goji berry solid beverage material enters the inner cavity of the inner cylinder 16, it will pass through these forming holes under the pressure of the roller assembly 17, thereby achieving precise forming of the material and preparing it for subsequent cutting and other processes.

[0056] In a preferred embodiment, such as Figure 1 and Figure 2 As shown, the roller assembly 17 is located inside the inner barrel 16, above the grain filling cylinder labyrinth 14 at the upper end of the grain filling cylinder 11, and connected to the fixing core 34. It includes a cross shaft 45, which is fixedly connected to the upper end of the fixing core 34. A distributor 18 is provided at the upper end of the cross shaft 45. When material is added, the distributor 18 can disperse the material, so that the material is evenly distributed in the subsequent processing area, thereby improving the molding quality and production efficiency of wolfberry solid beverage.

[0057] Specifically, the cross shaft 45 is also equipped with scraper feet 38 and rollers 40. The scraper feet 38 are symmetrically arranged on the cross shaft 45 and located on the upper side of the template 13. During production, when material is added to the upper side of the template 13, the scraper feet 38 can perform their scraping function, spreading the unevenly piled material evenly, creating favorable conditions for subsequent molding processes. The rollers 40 are symmetrically arranged on the cross shaft 45, rotatably connected to the cross shaft 45, and in contact with the upper surface of the template 13. During the rotation of the template 13, the rollers 40 roll accordingly and apply pressure to the material. With this pressure, the material can be squeezed into strips from the densely packed molding holes on the template 13. This is a crucial step in the molding process of goji berry solid beverages, directly affecting the quality and shape of the final product.

[0058] Specifically, the roller 40 is rotatably mounted on the outer shaft of the cross shaft 45 via a second deep groove ball bearing 42. A roller labyrinth seal 41 and a sealing ring 46 are provided on the outer shaft near the main body. These two components work together to achieve a sealed connection between the outer shaft and surrounding parts, effectively preventing material leakage and the entry of external impurities, thus ensuring the normal operation of the equipment. The outer end of the outer shaft is also fitted with a roller bearing outer end cover 43 via a cross shaft locking nut 44. The roller bearing outer end cover 43 prevents the intrusion of external dust, avoiding dust contamination of key components such as the roller 40 and the second deep groove ball bearing 42, thereby extending the service life of these components, reducing the frequency of equipment failures, and ensuring the long-term stable and efficient operation of the entire goji berry solid beverage molding equipment.

[0059] The process of using the wolfberry solid beverage forming device described in this utility model includes:

[0060] Step 1: Preparation;

[0061] Step 1.1: Equipment Inspection: Before use, conduct a comprehensive inspection of the forming device. Check that all components are securely installed, such as the connection between the baffle 15 and the pellet-holding cylinder 11, and the fixing of the inner cylinder 16 and the template 13; check that the cross shaft locking nut 44 is tightened, and ensure that the roller bearing outer end cover 43 is properly installed to prevent loosening during operation. At the same time, check the sealing components, such as the roller labyrinth seal 41, the sealing ring 46, and the sealing cover 1, to ensure good sealing and no potential leakage.

[0062] Step 1.2: Material preparation: The pre-treated goji berry raw materials are prepared into a material state suitable for molding, ensuring that the parameters such as humidity and viscosity of the materials meet the production requirements, so as to ensure that they can be successfully molded through template 13.

[0063] Step 2: Start and run;

[0064] Step 2.1: Power Start: Connect the power supply to the equipment and start the drive device to make the hollow shaft 8 start rotating. Since the lower end of the fixed core 34 is fixed to the housing 9 by hexagonal bolts 35 and the upper end is connected to the roller assembly 17, when the hollow shaft 8 rotates, it will achieve its own rotation without affecting the relative positional stability of the fixed core 34 through the cooperation of components such as the first deep groove ball bearing 10, but it will drive the associated roller assembly 17 and other components to produce specific movements.

[0065] Step 2.2: Material Distribution and Leveling: The prepared goji berry material is added to the device. The material first enters the material cavity formed by the baffle 15 and the inner barrel 16. As the equipment operates, the material distributor 18 rotates under the drive of the cross shaft 45, dispersing the added material and ensuring that it is evenly distributed on the upper side of the template 13. At the same time, the scraper feet 38, symmetrically arranged on the cross shaft 45, level the material, further ensuring the uniformity of the material distribution on the upper side of the template 13 and creating favorable conditions for subsequent molding.

[0066] Step 2.3: Extrusion Molding: Rollers 40 are symmetrically arranged on the material feeder 18 and rotatably connected to the cross shaft 45 via a second deep groove ball bearing 42, and are in contact with the upper surface of the template 13. During the rotation of the template 13, the rollers 40 roll accordingly and apply pressure to the material. Under pressure, the material is extruded into strips from the densely distributed forming holes on the template 13, completing the initial molding.

[0067] Step 2.4: Granulation: The cutter 19 is installed at one end of the handwheel shaft 20. The handwheel shaft 20 is rotatably mounted on the side wall of the pelleting cylinder 11 via the manual wheel end cap 21 and is connected to the handwheel 23 via the manual wheel connecting key 22. According to production needs, the operator rotates the handwheel 23, which in turn rotates the handwheel shaft 20 via the manual wheel connecting key 22, thereby adjusting the angle of the cutter 19. When the template 13 rotates the formed strip material to the position of the cutter 19, the cutter 19 cuts the strip material into granular finished products.

[0068] Step 3: Discharge and shutdown;

[0069] Step 3.1: Discharge: The throwing disc 12 is installed inside the pellet cylinder 11 and connected to the hollow shaft 8 via a connector. The rotation of the hollow shaft 8 drives the throwing disc 12 to rotate. The cut granular finished product is thrown towards the discharge port of the pellet cylinder 11 under the centrifugal force generated by the throwing disc 12, and discharged out of the device through the discharge port to enter the subsequent collection and packaging process.

[0070] Step 3.2: Shutdown: When the production task is completed or maintenance is required, first stop feeding materials. After the materials in the device have been basically processed, turn off the power to the drive device, so that the hollow shaft 8 stops rotating and all moving parts stop working in sequence. Then clean and maintain the device to prepare for the next production.

[0071] All content not described in detail in this specification is prior art known to those skilled in the art, and the model parameters of each component are not specifically limited; conventional equipment can be used. Control elements not mentioned in this technical solution are prior art and are therefore not shown in the figures, and will not be described further here.

[0072] The above description is merely a preferred embodiment of the present utility model and is not intended to limit the scope of protection of the present utility model.

Claims

1. A forming device for wolfberry solid beverage, wherein the device is a dynamic extruder, characterized in that, Includes a geared motor (37), a housing (9), a grain container (11), and a baffle (15); The box (9) is located on one side of the geared motor (37), and a transmission mechanism is rotatably installed inside the box (9) and connected to the output shaft of the geared motor (37). The upper end of the transmission mechanism passes through the box (9) and extends into the grain container (11) and the baffle (15). The grain holding cylinder (11) is located at the upper end of the box body (9), and a cutting mechanism and a material throwing disc (12) are provided inside the grain holding cylinder (11). The material throwing disc (12) is located below the cutting mechanism. The baffle (15) is set at the upper end of the grain holding cylinder (11), and an extrusion molding mechanism is provided inside the baffle (15). The extrusion molding mechanism includes a roller assembly (17) and a template (13). The roller assembly (17) is located on the upper side of the template (13) and matches the template (13). The template (13) is connected to the transmission mechanism and rotates with the transmission mechanism.

2. The forming apparatus for a wolfberry solid beverage as described in claim 1, characterized in that, The output shaft of the geared motor (37) is provided with a flanged half-coupling (36). One end of the flanged half-coupling (36) is connected to the output shaft of the geared motor (37), and the other end is connected to the inner ring of the second tapered roller bearing (26). The other end of the inner ring of the second tapered roller bearing (26) is connected to the bevel gear shaft (24).

3. The forming apparatus for a wolfberry solid beverage as described in claim 2, characterized in that, The transmission mechanism includes a driven bevel gear (6), a hollow bearing spacer (7), and a hollow shaft (8). The driven bevel gear (6) is fixedly disposed on the outside of the hollow shaft (8) and meshes with the bevel gear shaft (24); The hollow shaft (8) is rotatably mounted inside the housing (9) via a hollow bearing spacer (7) and a first tapered roller bearing (4).

4. The forming apparatus for a wolfberry solid beverage as described in claim 3, characterized in that, The first tapered roller bearing (4) is fixedly installed at the lower end of the housing (9), and an adjusting sleeve (5) is provided between the driven bevel gear (6) and the first tapered roller bearing (4); the hollow bearing sleeve (7) is installed on the lower side of the upper inner wall of the housing (9) through the first deep groove ball bearing (10), and is located outside the hollow shaft (8).

5. The forming apparatus for a wolfberry solid beverage as described in claim 3, characterized in that, The hollow shaft (8) is also provided with a fixing core (34), which is rotatably connected to the hollow shaft (8). The lower end of the fixing core (34) is fixedly installed on the lower side wall of the housing (9), and the upper end is connected to the roller assembly (17).

6. The forming apparatus for a wolfberry solid beverage as described in claim 5, characterized in that, The material throwing disc (12) is set inside the grain holding cylinder (11) and is connected to the hollow shaft (8) through a connector, and rotates with the hollow shaft (8).

7. The forming apparatus for a wolfberry solid beverage as described in claim 5, characterized in that, The baffle (15) is fixedly installed at the upper end of the grain holding cylinder (11), forming a material cavity between the baffle (15) and the inner cylinder (16). The lower end of the inner cylinder (16) is fixedly connected to the template (13), and several forming holes are provided on the template (13).

8. The forming apparatus for a wolfberry solid beverage as described in claim 7, characterized in that, The roller assembly (17) is located inside the inner barrel (16) and includes a cross shaft (45). The cross shaft (45) is fixedly connected to the upper end of the fixed core (34), and a fabric feeder (18) is provided at the upper end of the cross shaft (45).

9. The forming apparatus for a wolfberry solid beverage as described in claim 8, characterized in that, The cross shaft (45) is also provided with scraper feet (38) and rollers (40). The scraper feet (38) are symmetrically arranged on the cross shaft (45) and located on the upper side of the template (13); The rollers (40) are symmetrically arranged on the cross shaft (45), rotatably connected to the cross shaft (45), and in contact with the upper surface of the template (13).

10. The forming apparatus for a wolfberry solid beverage as described in claim 1, characterized in that, The cutting mechanism includes a cutter (19), which is disposed at one end of a handwheel shaft (20); the handwheel shaft (20) is rotatably disposed on the side wall of the grain container (11) via a manual wheel end cap (21), and is connected to the handwheel (23) via a manual wheel connecting key (22).