Solid beverage processing technology

Through the collaborative design of components such as drive motors and synchronous gears, the automated crushing and screening of solid beverages is achieved, which solves the problems of low efficiency and blockage in traditional methods, and improves production efficiency and product quality.

CN120346862APending Publication Date: 2025-07-22CHONGQING SANLITANG TRADITIONAL CHINESE MEDICINE PHARM CO LTD
View PDF 4 Cites 0 Cited by

Patent Information

Application Number
CN202510698951.9
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-05-28
Publication Date
2025-07-22

AI Technical Summary

Technical Problem

In the production of solid beverages, the crushing and screening process requires separate equipment operation, which increases costs and limits production efficiency. It is easy to cause overload and blockage of the screen surface during the screening process, affecting equipment safety.

Method used

The synergistic effect of components such as drive motor, synchronous turntable, synchronous gear is used to realize the automatic crushing and screening of raw materials. Through the design of reciprocating sliding and vibrating screening plates, the screening is thorough and quantitatively blanking is avoided.

Benefits of technology

Improve production efficiency, reduce manual operation burden, ensure product quality stability and consistency, and reduce the risk of equipment damage.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure CN120346862A_ABST
    Figure CN120346862A_ABST
Patent Text Reader

Abstract

The invention discloses a solid beverage processing technology, and belongs to the technical field of beverage processing.The solid beverage processing technology comprises a rack, supporting frames are fixedly connected to the two sides of the top of the rack, a crushing assembly is fixedly connected between the two supporting frames, and a driving motor is fixedly connected to the lower portions of the supporting frames; the material receiving box is arranged below the screening assembly and located under the material falling plate. Through cooperative operation of the synchronous rotating disc, the cam, the connecting rod and the like, the screening plate can be driven to slide in a reciprocating mode and vibrate up and down, automatic and efficient screening of raw materials is achieved, the screening plate vibrates up and down through cooperation of the synchronous rods and the synchronous grooves in the horizontal reciprocating motion, the screening speed is further increased, and the screening efficiency is improved; and meanwhile, a synchronous rack and a transmission gear are matched to control opening and closing of a collecting box sealing plate, quantitative discharging of raw materials is achieved, screen mesh blockage caused by excessive accumulation is avoided, and continuous and stable production is guaranteed.
Need to check novelty before this filing date? Find Prior Art

Description

Technical Field

[0001] The invention relates to the technical field of beverage processing, in particular to a solid beverage processing technology. Background Art

[0002] Solid beverages refer to beverage products in powder, granular or block form after removing the water from the raw materials, such as instant coffee, tea powder, fruit and vegetable powder, etc. Solid beverages are easy to carry and store, and easy to brew. Just add the right amount of water to dissolve quickly, and are suitable for drinking outdoors, traveling, etc.

[0003] In the production process of solid beverages, the crushing and screening of raw materials are two crucial links. In the traditional processing process, crushing and screening work require separate equipment to operate. The raw materials are crushed and then screened manually, which not only increases the production cost, but also limits the production efficiency. At the same time, the raw material supply system mostly uses an open feeding port with solenoid valve control. The feed rate and screening rhythm lack dynamic coordination. The material continues to fall during the screening process, which can easily cause the screen surface to be overloaded and blocked, which not only affects the production efficiency, but also may cause damage to the equipment. Summary of the invention

[0004] In order to solve the problems in the above background technology, we propose a solid beverage processing technology.

[0005] The technical solution is mainly: a solid beverage processing technology, including the following steps:

[0006] First, the raw materials to be processed are added into the crushing drum, and the raw materials are crushed by the two crushing rollers in the crushing drum. The crushed raw materials are collected in the collecting assembly and are ready for screening.

[0007] Start the drive motor. When the drive motor drives the crushing component to perform crushing work, the reciprocating drive component drives the screening component to perform screening work. When the reciprocating drive component drives the screening plate to move toward the direction close to the crushing component, the two synchronous racks simultaneously push the two transmission gears to rotate, so that the sealing plate flips open, so that the raw materials in the receiving component fall onto the screening plate. When the screening plate slides toward the direction away from the crushing component, the synchronous rack drives the sealing plate to rotate in the opposite direction to close the receiving component.

[0008] When the reciprocating drive assembly drives the screen plate to move in the direction away from the crushing assembly, the raw materials on the screen plate are gradually screened during the movement, and the screened raw materials fall into the receiving box at the bottom of the frame through the drop plate for collection.

[0009] A solid beverage processing technology in this application is implemented by using the following related components, specifically:

[0010] It includes a frame. On both sides of the top of the frame, there are fixedly connected support frames. The crushing component is fixedly connected between the two support frames. The driving motor is fixedly connected below the support frame. The material collection box is arranged below the screening component, and the material collection box is directly below the blanking plate.

[0011] Preferably, the crushing component includes a crushing cylinder. The crushing cylinder is fixedly connected to the tops of the two support frames. At the top of the crushing cylinder, there is a fixedly connected feed chute, and the feed chute is communicated with the inside of the crushing cylinder. At the bottom of the crushing cylinder, there is a blanking chute communicated with the material collection component. On one side of the crushing cylinder, there are two synchronizing gears rotatably connected, and the two synchronizing gears mesh with each other. The two synchronizing gears penetrate and extend into the crushing cylinder near the crushing cylinder. The extended ends of the two synchronizing gears are respectively fixed to the two crushing rollers inside the crushing cylinder.

[0012] Preferably, on the support frame close to the synchronizing gear, there is also a fixedly connected fixing plate. The two synchronizing gears are respectively rotatably connected to the fixing plate through rotating shafts. On one of the synchronizing gears, there is also a fixedly connected second synchronizing shaft.

[0013] Preferably, on the support frame close to the synchronizing gear, there is also a fixedly connected fixing plate. The two synchronizing gears are respectively rotatably connected to the fixing plate through rotating shafts. On one of the synchronizing gears, there is also a fixedly connected second synchronizing shaft.

[0014] Preferably, the screening component includes a fixing frame. The fixing frame is fixedly connected to the top of the frame. A sealing cover is also clamped on the top of the fixing frame. The screening plate is slidably connected in the fixing frame through a reciprocating driving component. On both sides of the fixing frame, there are sliding grooves for the reciprocating driving component to slide. On the top of the screening plate, there are two limiting grooves. The two synchronizing racks are respectively slidably connected in the adjacent limiting grooves. The tops of the two synchronizing racks are respectively meshed with the adjacent transmission gears.

[0015] Preferably, on the inner walls of both sides of the fixing frame, there are also synchronizing grooves. On one side of the screening plate close to the adjacent synchronizing grooves, there are fixedly connected synchronizing rods. The two synchronizing rods are respectively slidably connected in the adjacent synchronizing grooves.

[0016] Preferably, the reciprocating driving component includes a synchronizing turntable. The synchronizing turntable is rotatably connected to the outside of the fixing frame through a connecting shaft. On the side of the synchronizing turntable away from the fixing frame, there is a synchronizing cam. One end of the synchronizing cam is fixedly connected to the synchronizing turntable, and the other end is hinged to a synchronizing connecting rod. The end of the synchronizing connecting rod away from the synchronizing turntable is hinged to a connecting rod;

[0017] The reciprocating drive assembly also includes two synchronous sliders, which are respectively slidably connected in adjacent sliding grooves. The sides of the two synchronous sliders close to the screen plate are hinged to the screen plate through a rotating shaft, and the end of the connecting rod away from the synchronous connecting rod is fixed to the adjacent synchronous slider.

[0018] Preferably: the output end of the driving motor is fixedly connected to the first synchronous shaft through a coupling, the first synchronous shaft is sleeved with a transmission belt, the other end of the transmission belt is sequentially sleeved on the connecting shaft of the second synchronous shaft and the synchronous turntable, and the first synchronous shaft, the second synchronous shaft and the synchronous turntable are connected by transmission belt transmission.

[0019] Technical effects and advantages of the present invention:

[0020] In the present invention, the reciprocating sliding of the screening plate is realized through the coordinated action of the driving motor, the synchronous turntable, the synchronous cam, the synchronous connecting rod and other components, thereby driving the raw materials to be screened. This design not only improves the screening efficiency, but also ensures the thoroughness of the screening, thereby greatly reducing the impurity content in the finished product, and improving the purity and taste of the product. At the same time, through the precise mechanical linkage design, the automatic crushing and screening of the raw materials are realized, which greatly reduces the burden of manual operation, improves the overall production efficiency, and ensures the stability and consistency of product quality.

[0021] In the present invention, a closable collecting box is provided to realize quantitative falling of raw materials. When the screening plate slides back and forth, the synchronous rack drives the transmission gear to rotate, so that the sealing plate flips over, and the raw materials fall on the screening plate for screening. When the screening plate moves in the reverse direction, the sealing plate rotates in the reverse direction to seal the collecting box to prevent the raw materials from falling continuously. This innovative design not only enhances the power of screening, but also makes the screening process more uniform and thorough, and effectively avoids the blockage problem that may occur in the traditional screening method.

[0022] At the same time, when the screening plate moves back and forth, it can also drive the synchronization rod to slide back and forth in the synchronization groove. Through the cooperation of the synchronization rod and the synchronization groove, the screening plate vibrates up and down, further accelerating the screening speed and improving the screening efficiency.

[0023] In the present invention, the crushing assembly can be driven to start by the driving motor at the same time. The synchronous rotation of the crushing roller is realized through the cooperation of the synchronous shaft and the transmission belt, so that the pre-treated beverage raw materials are effectively crushed. This design not only simplifies the operation process, but also greatly improves the crushing efficiency, so that the raw materials can quickly reach the ideal particle size, laying a good foundation for subsequent processing steps.

[0024] Through the cooperative action of a drive motor, a transmission belt, a synchronous gear, etc., the present invention realizes the automatic control of the crushing, screening, and collection of raw materials. This automatic control method not only reduces the labor intensity of workers, improves production efficiency, but also reduces the influence of human factors on product quality. The overall processing flow is smooth and efficient, reducing manual intervention, lowering production costs, and ensuring the stability and consistency of product quality. Brief Description of the Drawings

[0025] Figure 1 is the working flow chart of the present invention;

[0026] Figure 2 is the schematic diagram from the first perspective of the present invention;

[0027] Figure 3 is the structural schematic diagram on the frame in the present invention Figure 1 ;

[0028] Figure 4 is the structural schematic diagram on the frame in the present invention Figure 2 ;

[0029] Figure 5 is the structural schematic diagram on the fixing frame in the present invention;

[0030] Figure 6 in the present invention Figure 4 is the enlarged schematic diagram of the structure at position A;

[0031] Figure 7 is the schematic diagram when the sealing plate is opened in the present invention.

[0032] Legend Explanation: 1. Frame; 11. Support Frame; 12. Drive Motor; 13. First Synchronous Shaft; 14. Transmission Belt; 15. Fixed Plate; 16. Material Receiving Box; 2. Crushing Assembly; 21. Crushing Cylinder; 22. Feeding Groove; 23. Synchronous Gear; 24. Second Synchronous Shaft; 3. Material Receiving Assembly; 31. Collection Box; 32. Sealing Plate; 33. Transmission Gear; 4. Screening Assembly; 41. Fixed Frame; 42. Sealing Cover; 43. Screening Plate; 44. Sliding Groove; 45. Limiting Groove; 46. Synchronous Rack; 47. Synchronous Groove; 48. Synchronous Rod; 49. Material Dropping Plate; 5. Reciprocating Drive Assembly; 51. Synchronous Turntable; 52. Synchronous Cam; 53. Synchronous Connecting Rod; 54. Connecting Rod; 55. Synchronous Slide Block. Detailed Embodiment

[0033] Now, the present invention will be further described in detail with reference to the accompanying drawings and preferred embodiments.

[0034] Refer to Figure 1-7 shown, the present invention provides a technical solution for a solid beverage processing process, and the method includes the following steps:

[0035] During the processing, first, the pre-treated beverage raw materials are added into the crushing cylinder 21 through the feeding chute 22. The driving motor 12 is started, and the driving motor 12 drives the first synchronous shaft 13 to rotate. The first synchronous shaft 13 is driven by the transmission belt 14, so that the second synchronous shaft 24 drives one of the synchronous gears 23 to rotate. The two synchronous gears 23 rotate synchronously by meshing with each other, so that the crushing rollers in the crushing cylinder 21 rotate to crush the added raw materials. The crushed raw materials fall into the collection box 31 from the lower part of the crushing cylinder 21;

[0036] When the first synchronous shaft 13 drives the second synchronous shaft 24 to rotate through the transmission belt 14, the first synchronous shaft 13 simultaneously drives the synchronous turntable 51 to rotate through the transmission belt 14. When the synchronous turntable 51 rotates, the synchronous turntable 51 simultaneously drives the synchronous cam 52 to rotate. When the synchronous cam 52 rotates, it pulls the synchronous connecting rod 53 to move. The synchronous connecting rod 53 pulls the synchronous slider 55 to slide in the sliding groove 44 through the connecting rod 54. The synchronous slider 55 simultaneously pulls the screening plate 43, and drives the synchronous slider 55 to reciprocate in the sliding groove 44 by the continuous rotation of the synchronous cam 52;

[0037] When the screening plate 43 reciprocates, when the synchronous rack 46 slides to abut against one end of the limiting groove 45, the synchronous rack 46 synchronously slides with the screening plate 43 under the action of the limiting groove 45. When the synchronous rack 46 slides, it simultaneously pushes the transmission gear 33 to rotate, so that the transmission gear 33 drives the sealing plate 32 to flip, so that the raw materials in the collection box 31 can fall on the screening plate 43 for screening;

[0038] At the same time, when the screening plate 43 reciprocates, it simultaneously drives the synchronous rod 48 to reciprocate in the synchronous groove 47. Under the cooperation of the synchronous groove 47 and the synchronous rod 48, the screening plate 43 is driven to move up and down, accelerating the screening efficiency of the screening plate 43, making the screening more thorough, and further improving the screening efficiency;

[0039] Through the synergistic effect of components such as the synchronous turntable 51, the synchronous cam 52, and the synchronous connecting rod 53, the reciprocating sliding of the screening plate 43 is realized, thereby driving the raw materials to be screened, realizing the automatic crushing and screening of the raw materials, greatly reducing the burden of manual operation, and improving the overall production efficiency;

[0040] When the synchronous slider 55 pulls the screening plate 43 to move in the reverse direction, the synchronous rack 46 pushes the transmission gear 33 to rotate in the reverse direction, so that the sealing plate 32 rotates in the reverse direction to close the collection box 31, so that the raw materials cannot fall. By setting the closable collection box 31, the raw materials can fall quantitatively, so that the raw materials can be fully screened, avoiding the blockage of the screening assembly 4 caused by continuous falling of materials, and improving the stability and reliability of the overall processing;

[0041] The raw materials screened by the screening plate 43 fall from the blanking plate 49 and are collected in the material collection box 16 for the next step of processing.

[0042] Referring to Figure 2-7 As shown, the present invention also provides a device for a solid beverage processing process, including a frame 1. Both sides of the top of the frame 1 are fixedly connected with support frames 11. The crushing assembly 2 is fixedly connected between the two support frames 11. The driving motor 12 is fixedly connected below the support frame 11. The material collection box 16 is arranged below the screening assembly 4, and the material collection box 16 is located directly below the blanking plate 49. The crushing assembly 2 includes a crushing cylinder 21. The crushing cylinder 21 is fixedly connected to the tops of the two support frames 11. The top of the crushing cylinder 21 is fixedly connected with a feeding trough 22, and the feeding trough 22 is communicated with the inside of the crushing cylinder 21. The bottom of the crushing cylinder 21 is provided with a blanking trough communicated with the material collection assembly 3. One side of the crushing cylinder 21 is rotatably connected with two synchronous gears 23, and the two synchronous gears 23 are meshed with each other. The two synchronous gears 23 penetrate and extend into the crushing cylinder 21 near the crushing cylinder 21. The extending ends of the two synchronous gears 23 are respectively fixed to the two crushing rollers in the crushing cylinder 21. A fixed plate 15 is also fixedly connected to the support frame 11 near the synchronous gear 23. The two synchronous gears 23 are rotatably connected to the fixed plate 15 through rotating shafts. A second synchronous shaft 24 is also fixedly connected to one of the synchronous gears 23. The material collection assembly 3 includes a collection box 31. The collection box 31 is communicated with the crushing cylinder 21 through the blanking trough at the bottom of the crushing cylinder 21. The discharging end of the collection box 31 is located directly above the screening plate 43. Both sides of the sealing plate 32 are hinged to the side walls of the collection box 31 near the discharging end through rotating shafts. Two transmission gears 33 are respectively fixedly connected to both sides of the sealing plate 32;

[0043] During the processing, first, the pre-treated beverage raw materials are added into the crushing cylinder 21 through the feeding trough 22. The driving motor 12 is started. The driving motor 12 drives the first synchronous shaft 13 to rotate. The first synchronous shaft 13 is driven by the transmission belt 14, so that the second synchronous shaft 24 drives one of the synchronous gears 23 to rotate. The two synchronous gears 23 are meshed with each other and rotate synchronously, so that the crushing rollers in the crushing cylinder 21 rotate to crush the added raw materials. The crushed raw materials fall into the collection box 31 from below the crushing cylinder 21;

[0044] When the first synchronous shaft 13 drives the second synchronous shaft 24 to rotate through the transmission belt 14, the transmission belt 14 simultaneously drives the reciprocating drive assembly 5 to start. The reciprocating drive assembly 5 drives the screening assembly 4 to move reciprocally. When the screening assembly 4 moves in the direction approaching the material receiving assembly 3, the screening assembly 4 meshes with the transmission gear 33 during movement and drives the transmission gear 33 to rotate. When the transmission gear 33 rotates, it drives the sealing plate 32 to flip open, allowing the raw materials in the collection box 31 to fall onto the screening assembly 4. When the reciprocating drive assembly 5 drives the screening assembly 4 to move in the reverse direction, the screening assembly 4 drives the transmission gear 33 to reverse, causing the sealing plate 32 to flip in the reverse direction and closing the collection box 31;

[0045] During the movement of the screening assembly 4, the raw materials falling on the screening assembly 4 are screened by the screening assembly 4, and the screened raw materials fall into the material receiving box 16 from the bottom of the screening assembly 4 for collection;

[0046] By providing a closable collection box 31, the raw materials can be dropped quantitatively, enabling the raw materials to be fully screened and avoiding blockage of the screening assembly 4 caused by continuous material dropping.

[0047] Refer to Figure 2-7 As shown, in this embodiment: The screening assembly 4 includes a fixed frame 41, the fixed frame 41 is fixedly connected to the top of the frame 1, and a sealing cover 42 is also clamped on the top of the fixed frame 41. The screening plate 43 is slidably connected to the inside of the fixed frame 41 through the reciprocating drive assembly 5. Sliding grooves 44 for the reciprocating drive assembly 5 to slide are provided on both sides of the fixed frame 41. Two limiting grooves 45 are also provided on the top of the screening plate 43. Two synchronous racks 46 are respectively slidably connected in the adjacent limiting grooves 45. The tops of the two synchronous racks 46 are respectively meshed with the adjacent transmission gears 33. Synchronous grooves 47 are also provided on the inner walls of both sides of the fixed frame 41. Synchronous rods 48 are fixedly connected to the sides of the screening plate 43 close to the adjacent synchronous grooves 47. The two synchronous rods 48 are respectively slidably connected in the adjacent synchronous grooves 47;

[0048] During use, when the reciprocating drive assembly 5 is started under the action of the transmission belt 14, the reciprocating drive assembly 5 first pulls the screening plate 43 to slide reciprocally inside the fixed frame 41. In the initial position, the synchronous rack 46 is located at one end of the limiting groove 45 close to the material receiving assembly 3. When the screening plate 43 slides in the direction of the material receiving assembly 3, the synchronous rack 46 moves to the other end of the limiting groove 45 away from the material receiving assembly 3;

[0049] When the synchronous rack 46 slides to abut against the end of the limiting groove 45 away from the material receiving assembly 3, the screening plate 43 continues to slide. Under the limitation of the limiting groove 45, the synchronous rack 46 slides synchronously with the screening plate 43. When the synchronous rack 46 slides, it also drives the transmission gear 33 to rotate, so that the transmission gear 33 drives the sealing plate 32 to flip, so that the raw materials in the collecting box 31 can fall on the screening plate 43 for screening, and the screened raw materials fall into the collecting box 16 for collection through the dropping plate 49;

[0050] When the reciprocating drive assembly 5 drives the screening plate 43 to move in the reverse direction, the synchronous rack 46 drives the transmission gear 33 to rotate in the reverse direction, causing the sealing plate 32 to rotate in the reverse direction, thereby sealing the collecting box 31 and preventing the raw materials from falling;

[0051] At the same time, when the screening plate 43 moves back and forth, it drives the synchronous rod 48 to slide back and forth in the synchronous groove 47. Under the cooperation of the synchronous groove 47 and the synchronous rod 48, one end of the screening plate 43 is driven to move up and down, so that the screening plate 43 vibrates, speeding up the screening efficiency of the screening plate 43 and making the screening more thorough.

[0052] When the screening work is completed, the sealing cover 42 is opened to expose the screening plate 43 , so that the screening plate 43 can be easily cleaned.

[0053] Reference Figure 2-7 As shown, in this embodiment: the reciprocating drive assembly 5 includes a synchronous rotating disk 51, which is rotatably connected to the outer side of the fixed frame 41 through a connecting shaft, and a synchronous cam 52 is arranged on the side of the synchronous rotating disk 51 away from the fixed frame 41, one end of the synchronous cam 52 is fixedly connected to the synchronous rotating disk 51, and the other end is hinged with a synchronous connecting rod 53, and the end of the synchronous connecting rod 53 away from the synchronous rotating disk 51 is hinged with a connecting rod 54, and the reciprocating drive assembly 5 also includes two synchronous sliders 55, and the two synchronous sliders 55 are respectively slidably connected to the adjacent sliding grooves 44 In the embodiment, the two synchronous sliders 55 are hinged to the screen plate 43 at one side close to the screen plate 43 through a rotating shaft, the end of the connecting rod 54 away from the synchronous connecting rod 53 is fixed to the adjacent synchronous slider 55, the output end of the driving motor 12 is fixedly connected to the first synchronous shaft 13 through a coupling, the first synchronous shaft 13 is sleeved with a transmission belt 14, the other end of the transmission belt 14 is sequentially sleeved on the connecting shaft of the second synchronous shaft 24 and the synchronous rotating disk 51, and the first synchronous shaft 13, the second synchronous shaft 24 and the synchronous rotating disk 51 are connected through the transmission belt 14;

[0054] During use, when the driving motor 12 drives the first synchronizing shaft 13 to rotate, the first synchronizing shaft 13 drives the synchronizing turntable 51 to rotate simultaneously through the transmission belt 14. When the synchronizing turntable 51 rotates, the synchronizing turntable 51 drives the synchronizing cam 52 to rotate simultaneously. When the synchronizing cam 52 rotates towards the material receiving assembly 3, it pulls the synchronizing link 53 to move. The synchronizing link 53 pulls the synchronizing slider 55 to slide in the sliding groove 44 through the connecting rod 54. The synchronizing slider 55 pulls the screening plate 43 simultaneously, causing the screening plate 43 to slide towards the material receiving assembly 3. When the synchronizing turntable 51 drives the synchronizing cam 52 to rotate away from the material receiving assembly 3, the synchronizing slider 55 pulls the screening plate 43 to slide away from the material receiving assembly 3 simultaneously. By continuously rotating the synchronizing cam 52 to drive the synchronizing slider 55 to reciprocate in the sliding groove 44, the screening plate 43 reciprocates in the fixed frame 41 to screen the raw materials.

[0055] It should be noted that each device in this application is a common device in the market and can be selected according to requirements during specific use. Moreover, the circuit connection relationships of each device belong to simple series and parallel connection circuits, and there are no innovative points in the circuit connection part. Those skilled in the art can easily implement it, which belongs to the prior art and will not be elaborated further.

[0056] The above is only the preferred specific implementation manner of the present invention, but the protection scope of the present invention is not limited thereto. Any person skilled in the art within the technical scope disclosed by the present invention, according to the technical solution of the present invention and its inventive concept, makes equivalent substitutions or changes, and should be covered by the protection scope of the present invention.

Claims

1. A solid beverage processing technology, characterized in that, It includes the following steps: S1. Raw material crushing: First, add the raw materials to be processed into the crushing cylinder (21), and crush the raw materials through two crushing rollers in the crushing cylinder (21). The crushed raw materials are collected in the material receiving assembly (3) to prepare for the screening work; S2. Quantitative screening: Start the driving motor (12). When the driving motor (12) drives the crushing assembly (2) to perform the crushing work, the reciprocating driving assembly (5) drives the screening assembly (4) to perform the screening work. When the reciprocating driving assembly (5) drives the screening plate (43) to move towards the direction close to the crushing assembly (2), the two synchronous racks (46) simultaneously push the two transmission gears (33) to rotate, so that the sealing plate (32) flips open, and the raw materials in the material receiving assembly (3) fall on the screening plate (43). When the screening plate (43) slides towards the direction away from the crushing assembly (2), the synchronous rack (46) drives the sealing plate (32) to rotate in the reverse direction to seal the material receiving assembly (3); S3. Screening and discharging: When the reciprocating driving assembly (5) drives the screening plate (43) to move towards the direction away from the crushing assembly (2), the raw materials on the screening plate (43) are gradually screened during the movement. The screened raw materials fall into the material receiving box (16) at the bottom of the frame (1) through the blanking plate (49) for collection.

2. The processing technology of a solid beverage according to claim 1, characterized in that: Both sides of the top of the frame (1) are fixedly connected with support frames (11). The crushing assembly (2) is fixedly connected between the two support frames (11). The driving motor (12) is fixedly connected below the support frame (11). The material receiving box (16) is arranged below the screening assembly (4), and the material receiving box (16) is directly below the blanking plate (49).

3. The processing technology of a solid beverage according to claim 2, characterized in that: The crushing assembly (2) includes a crushing cylinder (21). The crushing cylinder (21) is fixedly connected to the tops of the two support frames (11). The top of the crushing cylinder (21) is fixedly connected with a feed chute (22), and the feed chute (22) is communicated with the inside of the crushing cylinder (21). The bottom of the crushing cylinder (21) is provided with a blanking groove communicated with the material receiving assembly (3). One side of the crushing cylinder (21) is rotatably connected with two synchronous gears (23), and the two synchronous gears (23) are meshed with each other. The two synchronous gears (23) penetrate and extend into the crushing cylinder (21) on the side close to the crushing cylinder (21). The extended ends of the two synchronous gears (23) are respectively fixed to the two crushing rollers in the crushing cylinder (21).

4. A solid beverage processing technology according to claim 3, characterized in that: The support frame (11) close to the synchronous gear (23) is also fixedly connected with a fixing plate (15). The two synchronous gears (23) are respectively rotatably connected to the fixing plate (15) through rotating shafts. A second synchronous shaft (24) is also fixedly connected to one of the synchronous gears (23).

5. The processing technology of a solid beverage according to claim 3, characterized in that: The material collecting assembly (3) comprises a collecting box (31), the collecting box (31) being connected to the crushing cylinder (21) via a material dropping chute at the bottom of the crushing cylinder (21), the material discharge end of the collecting box (31) being located directly above the screening plate (43), the two sides of the sealing plate (32) being hinged to the side walls of the collecting box (31) near the material discharge end via a rotating shaft, and the two transmission gears (33) being fixedly connected to the two sides of the sealing plate (32) respectively.

6. The processing technology of a solid beverage according to claim 2, characterized in that: The screening assembly (4) comprises a fixed frame (41), the fixed frame (41) being fixedly connected to the top of the frame (1), the top of the fixed frame (41) being further clamped with a sealing cover (42), the screening plate (43) being slidably connected to the inside of the fixed frame (41) via a reciprocating drive assembly (5), both sides of the fixed frame (41) being provided with sliding grooves (44) for the reciprocating drive assembly (5) to slide, the top of the screening plate (43) being further provided with two limiting grooves (45), the two synchronous racks (46) being respectively slidably connected to adjacent limiting grooves (45), and the tops of the two synchronous racks (46) being respectively meshed with adjacent transmission gears (33).

7. A solid beverage processing technology according to claim 6, characterized in that: Synchronous grooves (47) are also formed on the inner walls of both sides of the fixed frame (41), and a synchronous rod (48) is fixedly connected to one side of the screening plate (43) close to the adjacent synchronous groove (47), and the two synchronous rods (48) are respectively slidably connected to the adjacent synchronous grooves (47).

8. A solid beverage processing technology according to claim 6, characterized in that: The reciprocating drive assembly (5) comprises a synchronous rotating disk (51), the synchronous rotating disk (51) being rotatably connected to the outer side of a fixed frame (41) via a connecting shaft, a synchronous cam (52) being provided on a side of the synchronous rotating disk (51) away from the fixed frame (41), one end of the synchronous cam (52) being fixedly connected to the synchronous rotating disk (51), and the other end being hingedly connected to a synchronous connecting rod (53), and one end of the synchronous connecting rod (53) being hingedly connected to a connecting rod (54); The reciprocating drive assembly (5) further comprises two synchronous sliders (55), the two synchronous sliders (55) being slidably connected to adjacent sliding grooves (44), the two synchronous sliders (55) being hinged to the screening plate (43) at one side thereof close to the screening plate (43) via a rotating shaft, and the end of the connecting rod (54) away from the synchronous connecting rod (53) being fixed to the adjacent synchronous slider (55).

9. A solid beverage processing process according to claim 8 or 4, characterized in that: The output end of the driving motor (12) is fixedly connected to a first synchronous shaft (13) via a coupling; a transmission belt (14) is sleeved on the first synchronous shaft (13); the other end of the transmission belt (14) is sleeved on a connecting shaft of a second synchronous shaft (24) and a synchronous rotating disk (51) in sequence; the first synchronous shaft (13), the second synchronous shaft (24) and the synchronous rotating disk (51) are connected in transmission via the transmission belt (14).

Citation Information

Patent Citations

  • Building debris crushing and reusing device

    CN109433320A

  • Screening type crushing device for food processing

    CN113477312A

  • Multifunctional rock-soil crusher

    CN220610543U

  • Raw material crusher for magnesia carbon brick production and processing

    CN222535063U