A flexible pushing mechanism for lotus root slicing

CN224765573UActive Publication Date: 2026-09-18HUBEI HONGFEI FOOD TECH CO LTD
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Patent Information

Application Number
CN202521610323.2
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-07-31
Publication Date
2026-09-18
Estimated Expiration
2035-07-31

AI Technical Summary

Technical Problem

[0005]本实用新型提供一种用于莲藕切片的柔性推送机构,解决了推力过猛影响刀片的使用寿命的问题

Benefits of technology

本实用新型提供一种用于莲藕切片的柔性推送机构,通过第一驱动结构驱动推送结构移动,可实现对莲藕推动的同时,在莲藕与刀片接触时,推送结构可伸缩,减少了莲藕向前移动对刀片的压力,减少了刀片的磨损和提高了刀片的使用寿命。

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Abstract

The utility model provides a flexible push mechanism for lotus root slice, include: push groove, the surface of push groove is provided with push structure, and push structure includes push board, and push board swing installation is in the inside of push groove, and first transmission part is used for connecting transmission belt and drives push structure to remove, and the surface of push board is connected with moving plate, and the surface of moving plate is connected with elastic member, and push board is connected in the surface of elastic member, and elastic member is used for pushing push board reset, and the inner surface of push groove is installed with gyro wheel, and the surface of first transmission part is connected with connecting block, and connecting block is connected in both ends of moving plate. The utility model provides a flexible push mechanism for lotus root slice through first drive structure drive push structure removes, can realize to the lotus root push of while, when the lotus root and blade contact, push structure can be telescopic, has reduced the pressure of lotus root to forward movement to blade, has reduced the wear and tear of blade and has improved the service life of blade.
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Description

Technical Field

[0001] This utility model relates to the field of lotus root slicing, and in particular to a flexible pushing mechanism for lotus root slicing. Background Technology

[0002] Lotus root is the rhizome of a perennial herbaceous aquatic plant belonging to the genus Nelumbo in the family Nymphaeaceae. It grows horizontally in the mud, is oblong-cylindrical in shape, has a smooth surface, is porous inside, and is rich in starch. The leaves of the lotus root are large and round, green on the front and often purplish on the back, with relatively long petioles.

[0003] Lotus root slicing equipment is a specialized device for the automated slicing of fresh lotus roots. It is widely used in agricultural product processing, food production and other fields. However, excessive thrust during operation will increase the instantaneous impact force between the lotus root and the blade, and significantly increase the contact pressure between the blade edge and the lotus root. During the slicing process, this high-intensity friction and compression will accelerate the wear rate of the blade and shorten its service life.

[0004] Therefore, it is necessary to provide a flexible pushing mechanism for lotus root slicing to solve the above-mentioned technical problems. Utility Model Content

[0005] This invention provides a flexible pushing mechanism for lotus root slicing, which solves the problem of excessive pushing force affecting the service life of the blade.

[0006] To solve the above-mentioned technical problems, this utility model provides a flexible pushing mechanism for lotus root slicing, comprising: a pushing groove, wherein a pushing structure is provided on the surface of the pushing groove, the pushing structure including a pushing plate, the pushing plate being movably installed inside the pushing groove; A first driving structure, comprising a first transmission component and a driving element, wherein the first transmission component is used to connect and drive the pushing structure to move.

[0007] Preferably, a movable plate is connected to the surface of the push plate, an elastic element is connected to the surface of the movable plate, the push plate is connected to the surface of the elastic element, the elastic element is used to push the push plate to reset, and a roller is installed on the inner surface of the push groove.

[0008] Preferably, a connecting block is connected to the surface of the first transmission component, the connecting block is connected to both ends of the movable plate, and the driving component is connected to one end of the first transmission component, the driving component being used to drive the first transmission component to move.

[0009] Preferably, the front end of the push groove is provided with a slicing and grinding structure, the slicing and grinding structure includes a slicing blade, the slicing blade is movably mounted on the front end of the push groove, and a grinding drum is movably connected to the surface of the slicing blade.

[0010] Preferably, the grinding drum is movably connected to both ends of a moving block, and a second driving structure is provided at the front end of the pushing groove. The second driving structure includes a second transmission component, which is connected to the front end of the pushing groove.

[0011] Preferably, a reciprocating threaded rod is connected to the surface of the second transmission component, the moving block is connected to the surface of the reciprocating threaded rod, and a drive motor is mounted on the surface of the second transmission component.

[0012] Compared with related technologies, the flexible pushing mechanism for lotus root slicing provided by this utility model has the following beneficial effects: This utility model provides a flexible pushing mechanism for slicing lotus root. The pushing structure is driven to move by a first driving structure, which can push the lotus root while the pushing structure is retractable when the lotus root comes into contact with the blade. This reduces the pressure on the blade as the lotus root moves forward, reduces blade wear, and improves the blade's service life. Attached Figure Description

[0013] Figure 1 A schematic diagram of the structure of a first embodiment of a flexible pushing mechanism for lotus root slicing provided by this utility model; Figure 2 for Figure 1 The diagram shows the rear side structure. Figure 3 This is a schematic diagram of the second embodiment of a flexible pushing mechanism for lotus root slicing provided by this utility model.

[0014] The diagram shows: 1. Push slot. 2. Pushing structure, 21. Moving plate, 22. Pushing plate, 23. Elastic component, 24. Roller. 3. First drive structure; 31. First transmission component; 32. Connecting block; 33. Drive component. 4. Slicing and grinding structure: 41. Slicing blade; 42. Grinding drum; 43. Moving block. 5. Second drive structure; 51. Second transmission component; 52. Reciprocating threaded rod; 53. Drive motor. Detailed Implementation

[0015] The present invention will be further described below with reference to the accompanying drawings and embodiments. Example

[0016] Please refer to the following: Figure 1 and Figure 2 ,in, Figure 1 A schematic diagram of the structure of a first embodiment of a flexible pushing mechanism for lotus root slicing provided by this utility model; Figure 2 for Figure 1 The diagram shows a rear side structure. A flexible pushing mechanism for lotus root slicing includes: a pushing groove 1, a pushing structure 2 disposed on the surface of the pushing groove 1, the pushing structure 2 including a pusher plate 22, the pusher plate 22 being movably installed inside the pushing groove 1; The first driving structure 3 includes a first transmission component 31 and a driving component 33. The first transmission component 31 is used to connect and drive the pushing structure 2 to move.

[0017] The function of the pushing structure 2 is to push the lotus root forward and reduce the pressure between the lotus root slices and the blade. The surface of the pushing plate 22 is connected with a food-grade silicone pad, which has a certain elasticity and coefficient of friction. The function of the first driving structure 3 is to drive the pushing structure 2 to move. The first transmission component 31 can be a threaded rod, a conveyor chain, or a conveyor belt, preferably a threaded rod, which is rotatably connected to the outer surface of one end of the pushing groove 1.

[0018] The surface of the push plate 22 is connected to the movable plate 21, the surface of the movable plate 21 is connected to the elastic member 23, the push plate 22 is connected to the surface of the elastic member 23, the elastic member 23 is used to push the push plate 22 to reset, and the inner surface of the push groove 1 is equipped with a roller 24.

[0019] Multiple sliding rods are connected to the surface of the push plate 22. These sliding rods slide through the interior of the moving plate 21, and their other ends are connected to a plate. The elastic element 23 can be a spring telescopic rod or a spring sliding rod, preferably a spring sliding rod, and there are multiple of them. One end of each sliding rod is fixedly connected to the rear end of the moving plate 21. The connecting plate in the push plate 22 is slidably connected to the surface of the sliding rod and connected to one end of the spring. In its natural state, the spring force in the elastic element 23 provides a pushing force to the push plate 22. At this time, the distance between the push plate 22 and the moving plate 21 is at its maximum. When the moving plate 21 moves forward, the push plate 22 connects to the surface of the lotus root, forming a... The pressure causes the push plate 22 to move backward under pressure. At this time, the pressure is less than the maximum deformation value of the spring. When the lotus root is connected to the blade, the blade applies pressure to the lotus root, thereby increasing the pressure between the lotus root and the surface of the push plate 22. The push plate 22 then moves backward, and the spring continues to compress. The rollers 24 are divided into two groups and are connected to the inner surface of the bottom of the push groove 1 in an array. When the lotus root is placed inside the push groove 1, the lotus root is connected to the surface of the rollers 24. When the lotus root moves forward, a frictional force is formed between the lotus root and the rollers 24. Part of the frictional force is converted into the rotational force of the rollers 24, thereby reducing the damage to the surface of the lotus root caused by the frictional force.

[0020] The surface of the first transmission component 31 is connected to a connecting block 32, which is connected to both ends of the moving plate 21. The driving component 33 is connected to one end of the first transmission component 31 and is used to drive the first transmission component 31 to move.

[0021] A sliding rod is fixedly connected to the outer surface of the other end of the push groove 1. There are two connecting blocks 32. The two connecting blocks 32 are fixedly connected to the two ends of the moving plate 21 respectively, and are respectively threaded to the outer surface of the first transmission member 31 and slidably connected to the outer surface of the sliding rod. The driving component 33 can be a motor or motor, preferably a motor. It is connected to the rear end of the first transmission member 31 and drives the first transmission member 31 through the meshing of two bevel gears, so that the connecting blocks 32 drive the moving plate 21 to move back and forth.

[0022] The working principle of the flexible pushing mechanism for lotus root slicing provided by this utility model is as follows: The lotus root is placed in the push groove 1, and then the drive component 33 is activated to drive the first transmission component 31 to rotate. The connecting block 32 drives the moving plate 21 to move forward, and the push plate 22 is connected to one end of the lotus root and pushes it forward. The lotus root is connected to the surface of the roller 24, converting the friction force into the rotational force of the roller 24, until the front end of the lotus root moves out of the push groove 1 and contacts the blade, putting pressure on the blade. The other end of the lotus root puts pressure on the push plate 22, pushing the push plate 22 to move to the rear end, thereby reducing the pressure of the lotus root on the blade.

[0023] Compared with related technologies, the flexible pushing mechanism for lotus root slicing provided by this utility model has the following beneficial effects: This utility model provides a flexible pushing mechanism for lotus root slicing. The first driving structure 3 drives the pushing structure 2 to move, which can push the lotus root while the pushing structure 2 can extend and retract when the lotus root comes into contact with the blade. This reduces the pressure on the blade when the lotus root moves forward, reduces the wear of the blade, and improves the service life of the blade. Example

[0024] Please refer to the following: Figure 3 Based on the flexible pushing mechanism for lotus root slicing provided in the first embodiment of this application, the second embodiment of this application proposes another flexible pushing mechanism for lotus root slicing. The second embodiment is merely a preferred embodiment of the first embodiment, and the implementation of the second embodiment will not affect the separate implementation of the first embodiment.

[0025] Specifically, the second embodiment of this application provides a flexible pushing mechanism for lotus root slicing, which differs in that the front end of the pushing groove 1 is provided with a slicing and grinding structure 4, the slicing and grinding structure 4 includes a slicing blade 41, the slicing blade 41 is movably installed at the front end of the pushing groove 1, and a grinding drum 42 is movably connected to the surface of the slicing blade 41.

[0026] The slicing blade 41 is rotatably connected to the front end of the push groove 1. There are two grinding cylinders 42, which are respectively connected to the front and rear surfaces of the slicing blade 41, and both ends are rotatably connected to the surfaces of two moving blocks 43. One of the moving blocks 43 is threadedly connected to the surface of the reciprocating threaded rod 52. When the reciprocating threaded rod 52 rotates, the moving block 43 can drive the grinding cylinder 42 to move up and down.

[0027] The grinding drum 42 is movably connected to both ends of a moving block 43. The front end of the push groove 1 is provided with a second drive structure 5, which includes a second transmission component 51 connected to the front end of the push groove 1.

[0028] The second transmission component 51 can be composed of two meshing gears and two surface meshing gears connected by a belt, preferably the latter. One gear is fixedly connected to the front end of the slicing blade 41, and the drive motor 53 is fixedly connected to the surface of the gear. The other gear is connected to the reciprocating threaded rod 52 through two bevel gears meshing.

[0029] The surface of the second transmission component 51 is connected to a reciprocating threaded rod 52, the moving block 43 is connected to the surface of the reciprocating threaded rod 52, and a drive motor 53 is mounted on the surface of the second transmission component 51.

[0030] When the drive motor 53 drives the slicing blade 41 to rotate, it drives the reciprocating threaded rod 52 to rotate through the second transmission component 51. The moving block 43 drives the grinding drum 42 to move up and down to grind the surface of the slicing blade 41.

[0031] The working principle of the flexible pushing mechanism for lotus root slicing provided by this utility model is as follows: When the pushing structure 2 pushes the lotus root forward, the drive motor 53 drives the slicing blade 41 to rotate, slicing the lotus root. At the same time, the second transmission component 51 drives the reciprocating threaded rod 52 to move, causing the moving block 43 to drive the grinding drum 42 to move up and down. When the slicing blade 41 rotates to the surface of the grinding drum 42, the grinding drum 42 rotates and generates friction with the surface of the slicing blade 41, thus grinding the slicing blade 41.

[0032] Compared with related technologies, the flexible pushing mechanism for lotus root slicing provided by this utility model has the following beneficial effects: This utility model provides a flexible pushing mechanism for lotus root slicing. Driven by the second driving structure 5, the slicing blade 41 can rotate to slice the lotus root while the grinding drum 42 moves up and down to grind the slicing blade 41, thus maintaining the sharpness of the slicing blade 41 and improving the quality of the lotus root slices.

[0033] The above description is merely an embodiment of this utility model and does not limit the patent scope of this utility model. Any equivalent structural or procedural transformations made based on the content of this utility model specification and drawings, or direct or indirect applications in other related technical fields, are similarly included within the patent protection scope of this utility model.

Claims

1. A flexible pushing mechanism for lotus root slicing, characterized in that, include: A pusher groove, the surface of which is provided with a pusher structure, the pusher structure including a pusher plate, the pusher plate being movably installed inside the pusher groove; A first driving structure, comprising a first transmission component and a driving element, wherein the first transmission component is used to connect and drive the pushing structure to move.

2. A flexible pushing mechanism for lotus root slicing as claimed in claim 1, wherein, A movable plate is connected to the surface of the push plate, and an elastic element is connected to the surface of the movable plate. The push plate is connected to the surface of the elastic element, and the elastic element is used to push the push plate to reset. A roller is installed on the inner surface of the push groove.

3. A flexible pushing mechanism for lotus root slicing as claimed in claim 2, wherein, The surface of the first transmission component is connected to a connecting block, which is connected to both ends of the moving plate. The driving component is connected to one end of the first transmission component and is used to drive the first transmission component to move.

4. A flexible pushing mechanism for lotus root slicing as claimed in claim 1, wherein, The front end of the push groove is provided with a slicing and grinding structure, which includes a slicing blade. The slicing blade is movably mounted on the front end of the push groove, and a grinding drum is movably connected to the surface of the slicing blade.

5. A flexible pushing mechanism for lotus root slicing as claimed in claim 4, wherein, The grinding drum is movably connected to both ends of a moving block, and a second driving structure is provided at the front end of the pushing groove. The second driving structure includes a second transmission component, which is connected to the front end of the pushing groove.

6. A flexible pushing mechanism for lotus root slicing as claimed in claim 5, wherein, The surface of the second transmission component is connected to a reciprocating threaded rod, the moving block is connected to the surface of the reciprocating threaded rod, and a drive motor is mounted on the surface of the second transmission component.