A taro puree homogenization and emulsification integrated processing equipment

CN122665508APending Publication Date: 2026-09-01GUANGXI ZHUANG AUTONOMOUS REGION ACAD OF AGRI SCI +1
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Patent Information

Application Number
CN202610852984.9
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2026-06-12
Publication Date
2026-09-01

AI Technical Summary

Technical Problem

[0006]本发明的目的在于提供一种香芋泥均质乳化一体化加工设备,实现了香芋泥加工注料、乳化均质、下料、清洁多工序的同步连续作业,有效解决了现有单工位间歇式加工效率低下、工序间歇时间长、无法适配规模化量产的技术问题

Benefits of technology

[0017]综上所述,本发明具有以下有益效果:本发明通过多工位圆形分度旋转机构、升降式协同作业组件的一体化设置,实现了香芋泥加工注料、乳化均质、下料、清洁多工序的同步连续作业,有效解决了现有单工位间歇式加工效率低下、工序间歇时间长、无法适配规模化量产的技术问题;通过驱动机构与升降液压缸的配合设置,实现处理罐精准分度转动与乳化组件平稳升降作业,依托乳化头高速旋转产生的剪切、均质、乳化协同作用,彻底破除香芋泥内部结块问题,优化物料稠度均匀性,达到提升香芋泥成品细腻度与口感品质的效果,同时各工位独立作业互不干扰,打破了传统设备工序分散、衔接繁琐的局限,大幅压缩整体加工节拍,提升设备连续化加工能力;

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Abstract

This invention relates to the field of food processing technology and discloses an integrated processing equipment for homogenizing and emulsifying taro puree. The equipment includes a support platform, multiple processing tanks mounted on the support platform, a lifting plate positioned above the support platform, and a drive mechanism for driving the multiple processing tanks to rotate in a circular trajectory. Multiple connecting plates are fixedly installed on the outer periphery of the lifting plate, and each connecting plate is respectively equipped with an emulsification component, an auxiliary feeding component, a cleaning component, and a feeding component. This invention, through the integrated design of a multi-station circular indexing rotation mechanism and a lifting-type collaborative operation component, achieves simultaneous and continuous operation of multiple processes in taro puree processing, including feeding, emulsification and homogenization, feeding, and cleaning. This effectively solves the technical problems of low efficiency, long process intervals, and inability to adapt to large-scale mass production in existing single-station intermittent processing methods.
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Description

Technical Field

[0001] This invention relates to the field of food processing technology, specifically to an integrated processing equipment for homogenizing and emulsifying taro puree. Background Technology

[0002] Taro puree, a popular filling and ready-to-eat ingredient in the current food processing industry, is widely used in desserts, baked goods, frozen foods, and many other categories. The smoothness and uniformity of its consistency directly determine the product's taste and market competitiveness, and homogenization emulsification is a core process for ensuring the quality of taro puree. With the continuous expansion of industrialized food production, the market demands increasingly higher levels of automation, continuous operation capabilities, and hygiene compliance from taro puree processing equipment. Traditional processing equipment is no longer adequate for the needs of large-scale, standardized production, necessitating the development of specialized equipment that combines multi-station collaboration, integrated processing, and convenient cleaning to address the shortcomings of existing processing steps.

[0003] Most existing taro puree homogenization and emulsification processing equipment adopts a single-station intermittent operation mode, resulting in a fragmented processing flow and cumbersome process connections. Conventional equipment typically has only a single processing tank. Operators must first manually or semi-automatically inject the taro puree raw material into the tank, then start a single emulsification mechanism to homogenize and emulsify the material in the tank. After the material in a single tank is processed, the machine is stopped and the finished product is removed. Then, the tank is manually cleaned. Only after the entire process is completed can the next batch of material be processed. Although some equipment has multiple tanks, each tank operates independently. Emulsification, feeding, cleaning and other processes cannot be carried out simultaneously. Each mechanism must be started and stopped separately and operated step by step. The overall processing rhythm depends entirely on manual control and the step-by-step execution of each process.

[0004] Existing intermittent processing equipment of this type has many unavoidable technical defects, which seriously restrict the processing efficiency and quality of taro paste: First, the single-station or independent multi-station design cannot realize the simultaneous operation of multiple processes such as feeding, emulsification and homogenization, auxiliary feeding, and cleaning. The process interval is long, the overall processing efficiency is low, and it is difficult to meet the needs of large-scale mass production. Second, taro paste itself has high viscosity and is very easy to stick to the tank wall. Existing equipment does not have a dedicated auxiliary feeding mechanism and relies on gravity to discharge naturally. The feeding speed is slow, the discharge is incomplete, the material residue is large, and the discharge jam will disrupt the overall processing rhythm.

[0005] Therefore, it is necessary to provide an integrated processing equipment for homogenizing and emulsifying taro paste to solve the above-mentioned technical problems. Summary of the Invention

[0006] The purpose of this invention is to provide an integrated processing equipment for homogenizing and emulsifying taro paste, which realizes the synchronous and continuous operation of multiple processes such as feeding, emulsification and homogenization, feeding and cleaning of taro paste, effectively solving the technical problems of low efficiency, long process interval time and inability to adapt to large-scale mass production in existing single-station intermittent processing.

[0007] The above-mentioned technical objective of the present invention is achieved through the following technical solution: a taro paste homogenization and emulsification integrated processing equipment, including a support platform, multiple processing tanks disposed on the support platform, a lifting plate disposed above the support platform, and a driving mechanism for driving the multiple processing tanks to rotate in a circular trajectory. Multiple connecting plates are fixedly installed on the outer peripheral wall of the lifting plate, and emulsification components, auxiliary feeding components, cleaning components, and injection components are respectively disposed on the multiple connecting plates.

[0008] A further configuration of the present invention is as follows: the auxiliary feeding assembly includes a support cylinder, a spring, a support column, and a push plate. The support cylinder is fixedly installed on one of the connecting plates. The top end of the support column extends into the support cylinder, and the support column and the support cylinder are slidably engaged. The support column is elastically connected to the top inner wall of the support cylinder through the spring. The push plate is fixedly connected to the support column and is adapted to the processing tank.

[0009] A further configuration of the present invention is that the injection assembly includes an injection hopper, which is fixedly connected to one of the connecting plates.

[0010] A further feature of the present invention is that a hydraulic cylinder is fixedly installed in the middle of the upper surface of the support platform, and the output end of the hydraulic cylinder is fixedly connected to the lifting plate.

[0011] A further configuration of the present invention is as follows: the emulsification component includes a motor and an emulsification head, the motor is fixedly connected to one of the connecting plates, and the output end of the motor is fixedly connected to the emulsification head.

[0012] A further configuration of the present invention is as follows: the driving mechanism includes a second motor fixedly installed on the lower surface of the support platform, a rotating ring rotatably installed on the middle part of the upper surface of the support platform, a first gear fixedly fitted on the rotating ring, and a second gear meshing with the first gear. The output end of the second motor is fixedly connected to the second gear. A plurality of second connecting plates are fixedly installed on the outer peripheral wall of the rotating ring, and the plurality of second connecting plates are respectively fixedly connected to a plurality of processing tanks.

[0013] A further provision of the present invention is that the bottom of the processing tank is connected to a discharge port, and a valve assembly for sealing the discharge port is provided on the discharge port.

[0014] A further configuration of the present invention is as follows: the valve assembly includes a second spring, a sealing plate, a telescopic rod, and a connecting rod. The sealing plate is disposed below the discharge port and is elastically connected to the lower surface of the processing tank via the second spring. Mounting seats are fixedly installed on both sides of the sealing plate via the connecting rod. A telescopic rod is fixedly connected to the upper surface of the mounting seat, and the top end of the telescopic rod is fixedly connected to the lower surface of the processing tank. A ball bearing is embedded in the bottom of the mounting seat.

[0015] A further feature of the present invention is that the support platform is provided with a discharge hole and a drain hole, and inclined surfaces are provided on both sides of the discharge hole and the drain hole. The discharge hole is located directly below the push plate, and the drain hole is located directly below the cleaning component.

[0016] A further configuration of the present invention is as follows: the cleaning assembly includes a cover, a water injection pipe fixedly installed at the center of the upper surface of the cover, a rotating pipe rotatably installed at the center of the lower surface of the cover, and a plurality of water spray tubes fixedly installed on the rotating pipe. The water injection pipe is connected to the rotating pipe, and the plurality of water spray tubes are all connected to the rotating pipe. The horizontal angle between the water spray tubes and the rotating pipe is less than 60°.

[0017] In summary, the present invention has the following beneficial effects: By integrating a multi-station circular indexing rotating mechanism and a lifting collaborative operation component, the present invention achieves simultaneous and continuous operation of multiple processes in taro paste processing, including feeding, emulsification and homogenization, unloading, and cleaning. This effectively solves the technical problems of low efficiency, long process intervals, and inability to adapt to large-scale mass production in existing single-station intermittent processing. Through the coordinated arrangement of the drive mechanism and the lifting hydraulic cylinder, precise indexing rotation of the processing tank and smooth lifting operation of the emulsification component are achieved. Relying on the synergistic effect of shearing, homogenization, and emulsification generated by the high-speed rotation of the emulsification head, the problem of clumping inside the taro paste is completely eliminated, optimizing the uniformity of material consistency and improving the fineness and taste quality of the finished taro paste. Simultaneously, each station operates independently without interference, breaking the limitations of traditional equipment with dispersed processes and cumbersome connections, significantly reducing the overall processing cycle time, and improving the continuous processing capability of the equipment.

[0018] This invention effectively solves the technical problems of viscous taro paste adhering to the tank wall, slow feeding, incomplete discharge, and interference from multiple mechanisms by combining an elastic buffer-type auxiliary feeding component with an automated valve component. The adaptive buffer structure of the spring prevents the feeding mechanism from interfering with the emulsification component's downward movement, while the directional extrusion force of the elastic pusher accelerates material discharge. The valve component automatically opens and closes the discharge port as the tank rotates, overcoming the defect of material leakage during non-feeding periods. The rotary cutting automatic cleaning component enables all-round, dead-angle-free cleaning of the inner wall of the processing tank, and wastewater is discharged directionally through a dedicated channel, effectively solving the problems of difficult manual cleaning, residue residue, and failure to meet food processing hygiene standards. The entire process requires no frequent manual intervention, improving the equipment's ease of operation and hygiene compliance, and extending its service life. Attached Figure Description

[0019] Figure 1 This is one of the three-dimensional structural schematic diagrams of the present invention;

[0020] Figure 2 This is the second three-dimensional structural schematic diagram of the present invention;

[0021] Figure 3This is a schematic diagram of the support platform of the present invention;

[0022] Figure 4 This is a schematic diagram of the structure of the processing tank and valve assembly of the present invention;

[0023] Figure 5 for Figure 4 A magnified structural diagram at point A;

[0024] Figure 6 This is a schematic diagram of the cleaning component of the present invention.

[0025] In the diagram: 1. Support platform; 101. Discharge hole; 102. Drainage hole; 103. Discharge channel; 104. Drainage channel; 2. Processing tank; 3. Hydraulic cylinder; 4. Lifting plate; 5. Connecting plate one; 6. Motor one; 7. Emulsifying head; 8. Support cylinder; 9. Support column; 10. Push plate; 11. Cover; 12. Water injection pipe; 13. Rotating pipe; 14. Water spray pipe; 15. Injection hopper; 16. Discharge port; 17. Sealing plate; 18. Spring two; 19. Telescopic rod; 20. Connecting rod; 21. Mounting base; 22. Ball bearing; 23. Rotating ring; 24. Connecting plate two; 25. Gear one; 26. Gear two; 27. Motor two. Detailed Implementation

[0026] The present invention will be further described below with reference to the accompanying drawings in the embodiments of the present invention.

[0027] Please see Figures 1-3In this embodiment of the invention, a taro puree homogenization and emulsification integrated processing equipment includes a support platform 1, multiple processing tanks 2 disposed on the support platform 1, a lifting plate 4 disposed above the support platform 1, and a drive mechanism for driving the multiple processing tanks 2 to rotate in a circular trajectory. Multiple connecting plates 5 are fixedly installed on the outer peripheral wall of the lifting plate 4, and emulsification components, auxiliary feeding components, cleaning components, and injection components are respectively disposed on the multiple connecting plates 5. In specific use, taro puree is injected into the processing tanks 2 through the injection components, and the drive mechanism drives the multiple processing tanks 2 to rotate in a circular trajectory, causing the processing tanks 2 containing taro puree to move below the emulsification components. The lowering of the lifting plate 4 causes the emulsification components to extend into the processing tanks 2 to process the taro puree within the processing tanks 2. The taro paste undergoes emulsification and homogenization. After emulsification and homogenization, the lifting plate 4 moves the emulsification component upward and continues to drive multiple processing tanks 2 to rotate in a circular trajectory. This moves the emulsified and homogenized taro paste to the bottom of the auxiliary feeding component, which is then moved downward by the lifting plate 4 to assist in feeding the taro paste, thereby increasing the feeding speed. Each time the processing tank 2 rotates, taro paste is injected once through the injection component. At the same time, the emulsification component also emulsifies and homogenizes the taro paste below it, achieving multi-station synchronous operation and continuous processing, which effectively improves processing efficiency. When processing is completed and stopped, the cleaning component extends into the processing tank 2 to spray water to clean the processing tank 2 in all directions, ensuring the cleanliness of the equipment and meeting food processing hygiene standards.

[0028] In this embodiment, preferably, a hydraulic cylinder 3 is fixedly installed in the middle of the upper surface of the support platform 1, and the output end of the hydraulic cylinder 3 is fixedly connected to the lifting plate 4; the emulsification component includes a motor 6 and an emulsification head 7, the motor 6 is fixedly connected to one of the connecting plates 5, and the output end of the motor 6 is fixedly connected to the emulsification head 7; the hydraulic cylinder 3 can drive the lifting plate 4 to rise and fall precisely, and then the connecting plate 5 drives the emulsification component to rise and fall synchronously. When processing the taro puree through emulsification and homogenization, the contraction of the extension end of the hydraulic cylinder 3 drives the lifting plate 4 to move downward, and then the connecting plate 5 drives the motor 6 and the emulsification head 7 to descend smoothly, so that the emulsification head 7 extends into the preset processing position inside the processing tank 2, and the motor 6 drives the emulsification head 7 to rotate at high speed. By utilizing the synergistic effect of shearing, homogenization and emulsification, the taro puree in the processing tank 2 is subjected to fine emulsification and homogenization operation, breaking up the lumps inside the taro puree, improving the problem of uneven material consistency, and improving the fineness and uniformity of the finished taro puree.

[0029] In this embodiment, preferably, the auxiliary feeding assembly includes a support cylinder 8, a spring (not shown in the figure), a support column 9, and a pusher plate 10. The support cylinder 8 is fixedly installed on one of the connecting plates 5. The top end of the support column 9 extends into the support cylinder 8, and the support column 9 and the support cylinder 8 are slidably engaged. The support column 9 is elastically connected to the inner wall of the top of the support cylinder 8 through the spring. The pusher plate 10 is fixedly connected to the support column 9 and is adapted to the processing tank 2 so that the pusher plate 10 can just extend into the processing tank 2. After the taro paste emulsification and homogenization process is completed, the processing tank 2 rotates to a position below the pusher plate 10. When the lifting plate 4 drives the emulsification head 7 to move downward to emulsify and homogenize the taro paste in the other processing tank 2, the lifting plate 4 simultaneously drives the support cylinder 8 to move downward, and then drives the pusher plate 10 to move downward through the support column 9. When the pusher plate 10 and the processing tank... When the taro paste in tank 2 comes into contact with the emulsifying head 7, the downward movement speed of the pusher plate 10 slows down due to the viscous resistance of the taro paste. The spring 1 in the support cylinder 8 is compressed and gradually releases its elastic potential energy, continuously applying a downward thrust to push the pusher plate 10 downward. This applies directional extrusion force to the viscous taro paste in the processing tank 2, accelerating the material discharge and preventing the taro paste from adhering to the tank wall and slowing down the discharge, thus affecting the overall processing rhythm. If the pusher plate 10 and the emulsifying head 7 descend synchronously, the descent speed of the pusher plate 10 and the emulsifying head 7 will be greatly slowed down due to the resistance of the taro paste in the processing tank 2. Therefore, this solution uses the elastic buffer adaptation structure of the support cylinder 8, support column 9, and spring 1 to enable the spring 1 to adaptively compress to buffer the movement speed of the pusher plate 10 when the lifting plate 4 drives the emulsifying head 7 to move downward quickly, avoiding interference between the pusher plate 10 and the downward movement of the emulsifying head 7, and ensuring that multi-station operations do not interfere with each other.

[0030] In this embodiment, preferably, the injection assembly includes an injection hopper 15, which is fixedly connected to one of the connecting plates 5. When the lifting plate 4 moves downward, it can drive the injection hopper 15 downward through the connecting plate 5, bringing it closer to the feeding position of the processing tank 2. Then, the taro paste to be processed can be accurately injected through the injection hopper 15. The material is guided along the inner wall of the injection hopper 15 and enters the processing tank 2 smoothly through the outlet at the bottom of the injection hopper 15, avoiding material splashing and ensuring the cleanliness and accuracy of the feeding process.

[0031] In this embodiment, preferably, the driving mechanism includes a second motor 27 fixedly installed on the lower surface of the support platform 1, a rotating ring 23 rotatably installed in the middle of the upper surface of the support platform 1, a first gear 25 fixedly mounted on the rotating ring 23, and a second gear 26 meshing with the first gear 25. The output end of the second motor 27 is fixedly connected to the second gear 26. Multiple connecting plates 24 are fixedly installed on the outer peripheral wall of the rotating ring 23. The multiple connecting plates 24 are respectively fixedly connected to multiple processing tanks 2. The hydraulic cylinder 3 is located inside the rotating ring 23. The second motor 27 can drive the second gear 26 to rotate in a directional manner. The second gear 26 meshes with the first gear 25 to drive the rotating ring 23 to rotate smoothly. Then, through the multiple connecting plates 24, the multiple processing tanks 2 are driven to rotate precisely along a circular trajectory, realizing the orderly switching of each station and ensuring the continuous connection of the processes of material injection, emulsification homogenization, material unloading, and cleaning.

[0032] Please see Figures 1-6In this embodiment of the invention, the bottom of the processing tank 2 is connected to a discharge port 16, and a valve assembly for sealing the discharge port 16 is provided on the discharge port 16. The valve assembly includes a second spring 18, a sealing plate 17, a telescopic rod 19, and a connecting rod 20. The sealing plate 17 is located below the discharge port 16 and is elastically connected to the lower surface of the processing tank 2 via the second spring 18. Mounting seats 21 are fixedly installed on both sides of the sealing plate 17 via the connecting rod 20. The upper surface of the mounting seat 21 is fixedly connected to the telescopic rod 19, and the top end of the telescopic rod 19 is connected to the processing tank 2. The lower surface of the tank 2 is fixedly connected, and a ball bearing 22 is embedded in the bottom of the mounting base 21; the support platform 1 is provided with a discharge hole 101 and a drain hole 102, and inclined surfaces are provided on both sides of the discharge hole 101 and the drain hole 102. The discharge hole 101 is located directly below the push plate 10, and the drain hole 102 is located directly below the cleaning component; a discharge channel 103 is connected below the discharge hole 101, and a drain channel 104 is connected below the drain hole 102; the telescopic rod 19 is used to limit the lifting and lowering of the sealing plate 17; when the ball bearing 22 is in contact with the support... When the upper surface of the processing tank 1 contacts the discharge port 16, the sealing plate 17 closes the bottom opening of the discharge port 16, causing the valve assembly to close the discharge port 16. When the processing tank 2 moves directly below the push plate 10, the ball bearing 22 moves downward along the inclined surface on one side of the discharge hole 101, causing the sealing plate 17 to move downward under the elastic action of the spring 18, thus opening the discharge port 16. Combined with the squeezing force of the auxiliary feeding assembly, the taro paste in the processing tank 2 is quickly discharged through the discharge hole 101 and passes through the discharge channel 103 to be accurately received by the special container, realizing the automated opening of the discharge port 16. When the discharge port 16 moves out of the discharge hole 101, the ball bearing 22 moves upward along the inclined surface on the other side of the discharge hole 101, so as to drive the sealing plate 17 upward through the mounting base 21 and the connecting rod 20, so as to re-close the discharge port 16 and prevent material leakage during non-discharge periods. Similarly, when the discharge port 16 moves into the drain hole 102, the valve assembly simultaneously releases the blockage of the discharge port 16, so that the wastewater generated during the cleaning of the cleaning component can be discharged smoothly through the discharge port 16, the drain hole 102 and the drain channel 104, realizing the directional discharge of sewage.

[0033] In this embodiment, preferably, the cleaning assembly includes a cover 11, a water injection pipe 12 fixedly installed at the center of the upper surface of the cover 11, a rotating pipe 13 rotatably installed at the center of the lower surface of the cover 11, and multiple water spray tubes 14 fixedly installed on the rotating pipe 13. The water injection pipe 12 is connected to the rotating pipe 13, and the multiple water spray tubes 14 are all connected to the rotating pipe 13. The horizontal angle between the water spray tubes 14 and the rotating pipe 13 is less than 60°, and all the water spray tubes 14 have the same horizontal angle with the rotating pipe. This allows the high-pressure water to generate a reverse rotational torque when it flows obliquely through the water spray tubes 14, driving the rotating pipe 13 to rotate the water spray tubes 14 synchronously. This achieves all-round rotary cutting cleaning of the inner wall of the treatment tank 2, expands the cleaning coverage, improves the cleaning effect, and thoroughly removes the taro paste residue remaining on the tank wall, meeting the hygiene and cleaning needs of food processing.

[0034] Working Principle: This taro puree homogenization and emulsification integrated processing equipment relies on a multi-station circular indexing rotation and lifting collaborative operation structure to achieve continuous processing. The core workflow is based on the drive mechanism driving the processing tank 2 to rotate cyclically. The motor 27 at the bottom of the support platform 1 drives the rotating ring 23 and multiple processing tanks 2 on the outer periphery to rotate precisely along a fixed circular trajectory through the meshing of gear 26 and gear 25. The lifting action of the lifting plate 4 is used to achieve orderly connection of each process. During operation, the feeding component moves down synchronously with the connecting plate 5 to approach the corresponding processing tank 2, accurately injecting the taro puree raw material into the tank to avoid splashing. Then, the processing tank 2 rotates to the bottom of the emulsification component, and the hydraulic cylinder 3 drives the lifting plate 4 to move down, driving the motor 6 and the emulsification head 7 to extend into the tank. The high-speed rotation of the emulsification head 7 breaks up the taro puree lumps and optimizes the material consistency through the synergistic action of shearing, homogenization and emulsification, completing the fine emulsification and homogenization processing. After processing, the lifting plate 4 drives the emulsification head 7 to rise back, and the processing tank 2 continues to rotate to the bottom of the auxiliary feeding component to enter the feeding process.

[0035] The feeding process relies on an elastic buffer structure and automated valve components to achieve efficient discharge. When the lifting plate 4 moves down to emulsify the next batch of material, it simultaneously drives the auxiliary feeding components to move down. After the pusher plate 10 contacts the viscous taro paste, the spring in the support cylinder 8 self-adaptively compresses and buffers to avoid interfering with the downward movement of the emulsification head 7. At the same time, the spring releases its elastic potential energy to continuously push the pusher plate 10, applying directional extrusion force to the taro paste in the tank and accelerating the feeding. At this time, the ball bearing 22 at the bottom of the processing tank 2 moves down along the inclined surface of the discharge hole 101, and the spring 18 drives the sealing plate 17 to move down to automatically open the discharge port 16. The taro paste quickly passes through the discharge hole 101 and the discharge channel 10. 3. After discharge, the ball bearing 22 resets and drives the sealing plate 17 to close the discharge port 16 to prevent material leakage. When the equipment is stopped for cleaning, the processing tank 2 rotates to the bottom of the cleaning component, and the lifting plate 4 drives the sealing cover 11 to close the tank opening. High-pressure water flows through the water injection pipe 12 and the rotating pipe 13 and sprays out from the inclined water spray cylinder 14. With the help of the reverse torque of the water flow, the rotating pipe 13 and the water spray cylinder 14 are driven to rotate, realizing all-round rotary cutting cleaning of the inner wall of the tank. The wastewater is discharged in a direction through the drain hole 102 and the drain channel 104 after the discharge port 16 is opened. The whole process realizes multi-station synchronous operation, automated processing and cleaning, taking into account both processing efficiency and food hygiene requirements.

[0036] The above description is only a preferred embodiment of the present invention. Therefore, all equivalent changes or modifications made to the structure, features and principles described in the claims of this patent application are included in the scope of this patent application.

Claims

1. A taro paste homogenization and emulsification integrated processing equipment, comprising a support platform (1), multiple processing tanks (2) disposed on the support platform (1), a lifting plate (4) disposed above the support platform (1), and a driving mechanism for driving the multiple processing tanks (2) to rotate in a circular trajectory, characterized in that: The outer peripheral wall of the lifting plate (4) is fixedly installed with multiple connecting plates (5), and the multiple connecting plates (5) are respectively provided with an emulsification component, an auxiliary feeding component, a cleaning component and an injection component.

2. The taro puree homogenization and emulsification integrated processing equipment according to claim 1, characterized in that: The auxiliary feeding assembly includes a support cylinder (8), a spring, a support column (9), and a push plate (10). The support cylinder (8) is fixedly installed on one of the connecting plates (5). The top end of the support column (9) extends into the support cylinder (8), and the support column (9) and the support cylinder (8) are slidably engaged. The support column (9) is elastically connected to the top inner wall of the support cylinder (8) through the spring. The push plate (10) is fixedly connected to the support column (9), and the push plate (10) is adapted to the processing tank (2).

3. The taro puree homogenization and emulsification integrated processing equipment according to claim 1, characterized in that: The injection assembly includes an injection hopper (15), which is fixedly connected to one of the connecting plates (5).

4. The taro puree homogenization and emulsification integrated processing equipment according to claim 1, characterized in that: A hydraulic cylinder (3) is fixedly installed in the middle of the upper surface of the support platform (1), and the output end of the hydraulic cylinder (3) is fixedly connected to the lifting plate (4).

5. The taro puree homogenization and emulsification integrated processing equipment according to claim 3, characterized in that: The emulsification assembly includes a motor (6) and an emulsification head (7). The motor (6) is fixedly connected to one of the connecting plates (5), and the output end of the motor (6) is fixedly connected to the emulsification head (7).

6. The taro puree homogenization and emulsification integrated processing equipment according to claim 1, characterized in that: The driving mechanism includes a motor (27) fixedly installed on the lower surface of the support platform (1), a rotating ring (23) rotatably installed in the middle of the upper surface of the support platform (1), a gear (25) fixedly mounted on the rotating ring (23), and a gear (26) meshing with the gear (25). The output end of the motor (27) is fixedly connected to the gear (26). Multiple connecting plates (24) are fixedly installed on the outer peripheral wall of the rotating ring (23). The multiple connecting plates (24) are fixedly connected to multiple processing tanks (2) respectively.

7. The taro puree homogenization and emulsification integrated processing equipment according to claim 1, characterized in that: The bottom of the processing tank (2) is connected to a discharge port (16), and a valve assembly for sealing the discharge port (16) is provided on the discharge port (16).

8. The taro puree homogenization and emulsification integrated processing equipment according to claim 7, characterized in that: The valve assembly includes a second spring (18), a sealing plate (17), a telescopic rod (19), and a connecting rod (20). The sealing plate (17) is located below the discharge port (16). The sealing plate (17) is elastically connected to the lower surface of the processing tank (2) through the second spring (18). Both sides of the sealing plate (17) are fixedly mounted with mounting seats (21) through the connecting rod (20). The upper surface of the mounting seat (21) is fixedly connected with the telescopic rod (19). The top end of the telescopic rod (19) is fixedly connected to the lower surface of the processing tank (2). The bottom of the mounting seat (21) is embedded with a ball bearing (22).

9. The taro puree homogenization and emulsification integrated processing equipment according to claim 8, characterized in that: The support platform (1) is provided with a discharge hole (101) and a drain hole (102). Inclined surfaces are provided on both sides of the discharge hole (101) and the drain hole (102). The discharge hole (101) is located directly below the push plate (10), and the drain hole (102) is located directly below the cleaning component.

10. The taro puree homogenization and emulsification integrated processing equipment according to claim 1, characterized in that: The cleaning assembly includes a cover (11), a water injection pipe (12) fixedly installed at the center of the upper surface of the cover (11), a rotating pipe (13) rotatably installed at the center of the lower surface of the cover (11), and multiple water spray tubes (14) fixedly installed on the rotating pipe (13). The water injection pipe (12) is connected to the rotating pipe (13), and the multiple water spray tubes (14) are all connected to the rotating pipe (13). The horizontal angle between the water spray tubes (14) and the rotating pipe (13) is less than 60°.