A radish leaf processing mechanism of a radish harvester

The radish leaf processing mechanism of the radish harvester automates the processes of radish leaf transportation, washing, and crushing, solving the problem of radish leaf rot in traditional radish harvesting, improving processing efficiency, realizing resource utilization, and improving the storage environment of radishes.

CN119733692BActive Publication Date: 2026-02-10SOUTHWEST PETROLEUM UNIV
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Patent Information

Application Number
CN202411960906.8
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2024-12-30
Publication Date
2026-02-10
Estimated Expiration
2044-12-30

AI Technical Summary

Technical Problem

Traditional radish harvesting methods cannot achieve precise processing of radish leaves, causing them to rot rapidly after harvesting, increasing farmers' workload and potentially contaminating the radish storage environment.

Method used

A radish leaf processing mechanism for a radish harvester was designed, including automated processes such as radish leaf conveying, washing, turning and agitating, rinsing and crushing. The combination of the washing tank and the turning and agitating component ensures that the dirt and soil on the surface of the radish leaves are thoroughly removed, and the radish leaves are transformed into usable materials through the conveyor belt and crushing component.

Benefits of technology

It improves the automation and efficiency of radish leaf processing, reduces manual intervention, realizes the resource utilization of radish leaves, improves the storage environment of radishes, and avoids the problems of radish leaves rotting and producing unpleasant odors during storage.

✦ Generated by Eureka AI based on patent content.

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Abstract

The present application relates to the technical field of crop harvesting, and discloses a radish leaf processing mechanism of a radish harvester, which comprises a radish harvester and a radish leaf conveying mechanism, wherein the radish leaf conveying mechanism is arranged on the radish harvester and is used for conveying the harvested radish leaves; a cleaning pool is connected to the radish harvester through a support, wherein the radish leaves can fall into the cleaning pool through the conveying of the radish leaf conveying mechanism; a turnover stirring member is arranged in the cleaning pool and is used for stirring and overturning the radish leaves in the cleaning pool; a driving mechanism is arranged on the side wall of the cleaning pool and is used for driving the axial rotation of the turnover stirring member; and a flushing assembly is arranged on the cleaning pool and is in communication with the cleaning pool, and is used for flushing the surface of the radish leaves to remove dirt and soil. The radish leaf processing mechanism of the radish harvester improves the automation degree and efficiency of radish leaf processing, realizes the resource utilization of radish leaves, and improves the storage environment of radishes.
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Description

Technical Field

[0001] This invention relates to the field of crop harvesting technology, specifically to a radish leaf processing mechanism for a radish harvester. Background Technology

[0002] On the vast agricultural land, radishes, with their unique charm and rich nutritional value, have become the precious fruit of farmers' hard work, and have also won the love and favor of countless consumers. Radishes, this simple and unpretentious vegetable, carry the rich nutrients bestowed by nature. They are not only rich in various vitamins and minerals, but also have a unique taste and flavor, making them an indispensable delicacy on the table. Farmers' love for radishes stems from their rapid growth, high yield, and strong adaptability, which makes radishes one of the important crops in agricultural production. With the vigorous development of modern agricultural technology, radish harvesting machinery has also been able to harvest radishes, thereby greatly reducing the workload of laborers to a certain extent.

[0003] However, with the continuous improvement of agricultural modernization, the radish harvesting process also faces many challenges, especially in the handling of radish leaves. Traditional harvesting methods often cannot achieve precise operations, and radishes and radish leaves are often harvested together. This undoubtedly puts enormous pressure on subsequent cleaning and storage work. If radish leaves are not dealt with in time after harvesting, they will quickly enter the natural decay process. The moist leaves are very easy to breed bacteria and mold, which leads to rapid rotting of radish leaves. This not only increases the workload of farmers, requiring a lot of cleaning work in a short period of time, but may also pollute the storage environment of radishes, thus posing certain drawbacks. Summary of the Invention

[0004] (a) Technical problems to be solved

[0005] The purpose of this invention is to improve the automation and efficiency of radish leaf processing, realize the resource utilization of radish leaves, and improve the storage environment of radishes. Therefore, a radish leaf processing mechanism for a radish harvester is proposed.

[0006] (II) Technical Solution

[0007] The technical solution of the present invention to solve the above-mentioned technical problems is as follows:

[0008] A radish leaf processing mechanism for a radish harvester includes a radish harvester and a radish leaf conveying mechanism, wherein the radish leaf conveying mechanism is mounted on the radish harvester and is used to convey the harvested radish leaves.

[0009] The washing pool is connected to the radish harvester by a bracket, and the radish leaves can fall into the washing pool by being transported by the radish leaf conveying mechanism.

[0010] A stirring and turning device is installed in the washing tank to stir and turn the radish leaves in the washing tank.

[0011] A drive mechanism is installed on the side wall of the cleaning tank, which is used to drive the axial rotation of the overturning agitator.

[0012] The rinsing assembly is installed on and connected to the washing tank. It is used to rinse the surface of the radish leaves to remove dirt and mud.

[0013] The crushing frame is fixedly installed on the radish harvester, with an open end away from the soil.

[0014] A conveyor belt is installed on the washing tank, with one end extending into the washing tank and the other end located above the crushing frame. The radish leaves in the washing tank can be transported to the crushing frame by the conveyor belt.

[0015] The crushing component, installed on the radish harvester, is used to crush and process the radish leaves inside the crushing frame.

[0016] Based on the above technical solution, the present invention can be further improved as follows.

[0017] Furthermore, the side wall of the cleaning tank is connected to a water outlet pipe, and the end of the water outlet pipe is equipped with a valve for sealing the water outlet pipe. The surface of the conveyor belt is provided with a number of equidistant arrayed actuating hooks, wherein the end of the actuating hook away from the conveyor belt is arranged in a curved arc shape, and the curved direction of the number of actuating hooks is consistent.

[0018] Furthermore, the agitator includes:

[0019] The first rotating shaft has one end extending through and into the inner side of the cleaning tank, and the other end located on the outer side of the cleaning tank. It can rotate axially relative to the cleaning tank. The number of the first rotating shafts is three, and they are distributed in an equidistant array.

[0020] A rectangular mounting piece is fixedly installed on the outside of the first rotating shaft. The number and distribution of the mounting pieces are adapted to the first rotating shaft, and they can rotate synchronously with the rotation of the first rotating shaft.

[0021] The first flip hook is set in a certain number, divided into three groups, and installed at equal intervals on the surface of the rectangular mounting piece;

[0022] The second rotating shaft has one end that passes through and extends into the inner side of the cleaning tank, and the other end that is located on the outer side of the cleaning tank. It can rotate axially relative to the cleaning tank. The number of the second rotating shafts is three, and they are distributed in an equidistant array. The three first rotating shafts and the three second rotating shafts are staggered.

[0023] A cylindrical, hollowed-out mounting component is fixedly installed on the outside of the second rotating shaft. Its quantity and distribution are adapted to the second rotating shaft, and it can rotate synchronously with the rotation of the second rotating shaft; and

[0024] The second flip hook is provided in several units, divided into three groups, and installed in a ring at equal intervals on the outside of the cylindrical hollow mounting piece.

[0025] Furthermore, the drive mechanism includes:

[0026] The drive motor is fixedly installed on the side wall of the cleaning tank, and its output end is connected to one of the first rotating shafts located outside the cleaning tank through a reducer.

[0027] The first sprockets, numbered ten in total, are fixedly mounted on the outer side of the second shaft near the conveyor belt, and on the outer side of the first shaft near the drive motor. The remaining eight first sprockets are divided into four groups, respectively fixedly mounted on the outer sides of two other first shafts and two other second shafts; and

[0028] The first chain, consisting of five chains, is located outside the first sprocket. Driven by the first sprocket and the first chain, it can drive the second shaft to rotate in the same direction via the first shaft.

[0029] Furthermore, the rinsing assembly includes:

[0030] The water pump is fixedly installed on the cleaning tank, and its inlet end is connected to the cleaning tank.

[0031] The outlet pipe is fixedly installed on the outlet end of the water pump and is connected to the outlet end of the water pump.

[0032] The lower flushing pipe is fixedly installed inside the cleaning tank and is connected to the outlet pipe. Several evenly spaced water outlet holes are machined on the surface of the lower flushing pipe.

[0033] The upper flushing pipe is fixedly installed on the open end face of the cleaning tank, and several flushing nozzles are connected to its side surface facing the cleaning tank.

[0034] Furthermore, the radish harvester is fixedly equipped with a placement platform. A placement groove is machined on the surface of the placement platform away from the soil. A placement slider is fixedly installed on the surface of the crushing frame near the placement platform. The placement slider is slidably connected to the placement groove. The crushing frame is connected to the placement platform through the placement groove and the placement slider. A drive motor is fixedly installed on the surface of the placement platform. A gear is fixedly installed at the output end of the drive motor. A rack is slidably connected on the surface of the placement platform. The gear and the rack mesh with each other. A connector is fixedly installed on one end of the rack. The connector is detachably connected to the crushing frame.

[0035] Furthermore, a sliding member adapted to the placement groove is fixedly installed on one side surface of the rack. The sliding member is slidably connected to the inner side of the placement groove. A wedge-shaped groove is machined on the side surface of the connector near the crushing frame. A wedge-shaped block adapted to the wedge-shaped groove is fixedly installed on one side surface of the crushing frame. The wedge-shaped block on the crushing frame can be inserted into the inner side of the wedge-shaped groove on the connector.

[0036] Furthermore, the pulverizing component includes:

[0037] The lifting motor is fixedly installed on the side wall of the radish harvester, and a second sprocket is fixedly installed at its output end;

[0038] The screw is rotatably connected to the side wall of the radish harvester, and a third sprocket is fixedly installed at its end. A second chain is provided between the second sprocket and the third sprocket. The lifting motor can drive the screw to rotate axially through the second sprocket, the third sprocket and the second chain.

[0039] A threaded sleeve is threaded onto the outside of a screw, and a sliding hole is machined on its surface.

[0040] A guide rod is fixedly installed on the side wall of the radish harvester, wherein the guide rod is located inside the sliding hole;

[0041] The pulverizing motor is fixedly mounted on the surface of the threaded sleeve near the pulverizing frame; and

[0042] The shredding blades are fixedly installed on the output end of the shredding motor. Driven by the shredding motor, they rotate axially to shred the radish leaves in the shredding frame.

[0043] Furthermore, a cover that matches the opening of the crushing frame is fixedly installed on the side surface of the threaded sleeve near the crushing frame, wherein the cover is generally n-shaped.

[0044] Furthermore, the surface of the cleaning tank is connected to a recycling bin, which has two fixed track components, each containing a filter screen. The surface of the recycling bin is connected to a water inlet pipe, the other end of which is connected to the outlet of a water pump.

[0045] (III) Beneficial Effects

[0046] Compared with the prior art, the technical solution of this application has the following beneficial technical effects:

[0047] This invention automates the radish leaf processing by integrating multiple steps, including conveying, washing, turning and agitating, rinsing, and crushing. This reduces the need for manual intervention and improves processing efficiency. The combination of a washing tank and a turning and agitating components ensures the radish leaves are thoroughly agitated and turned during washing, completely removing dirt and soil from their surface and improving cleaning effectiveness. After washing, the radish leaves are conveyed to a crushing frame via a conveyor belt, where they are further crushed. This process transforms what might otherwise be considered waste into valuable materials, such as feed. The automated processing of radish leaves, including feed and fertilizer, enables the effective utilization of resources and reduces the workload of subsequent processing. It also reduces the workload for farmers in handling radish leaves, such as manual washing and crushing, thus lowering labor intensity, increasing work efficiency, and improving the storage environment of radishes. Timely washing and crushing of radish leaves prevents them from rotting and developing unpleasant odors during storage, improving the storage environment and helping to maintain the quality and taste of radishes. In summary, this process improves the automation and efficiency of radish leaf processing, realizes the resource utilization of radish leaves, and improves the storage environment of radishes. Attached Figure Description

[0048] Figure 1 This is a schematic diagram of the overall connection structure of the radish leaf processing mechanism of a radish harvester according to the present invention;

[0049] Figure 2 This is a schematic diagram of the connection structure between the cleaning tank and the upper flushing pipe of the radish leaf treatment mechanism of a radish harvester according to the present invention.

[0050] Figure 3 This invention relates to a radish leaf processing mechanism for a radish harvester. Figure 2 Enlarged view of point A;

[0051] Figure 4 This is a schematic diagram of the connection structure between the cleaning tank and the turning and stirring component of the radish leaf processing mechanism of a radish harvester according to the present invention.

[0052] Figure 5This is a schematic diagram of the connection structure between the cleaning tank and the drive mechanism of the radish leaf processing mechanism of a radish harvester according to the present invention.

[0053] Figure 6 This is a schematic diagram of the connection structure between the cleaning tank and the lower flushing pipe of the radish leaf treatment mechanism of a radish harvester according to the present invention.

[0054] Figure 7 This is a partial structural diagram of the radish leaf processing mechanism of a radish harvester according to the present invention;

[0055] Figure 8 This is a schematic diagram of the connection structure between the slider and the chute in the radish leaf processing mechanism of a radish harvester according to the present invention.

[0056] In the diagram: 1. Radish harvester; 2. Radish leaf conveying mechanism; 3. Washing tank; 4. Tilting and agitating component; 41. First rotating shaft; 42. Rectangular mounting component; 43. First tilting hook; 44. Second rotating shaft; 45. Cylindrical hollow mounting component; 46. Second tilting hook; 5. Drive mechanism; 51. Drive motor; 52. First sprocket; 53. First chain; 6. Washing assembly; 61. Water pump; 62. Water outlet pipe; 63. Lower washing pipe; 64. Upper washing pipe. 65. Pipe; 7. Flushing nozzle; 8. Crushing frame; 9. Conveyor belt; 10. Crushing assembly; 11. Lifting motor; 12. Screw; 13. Threaded sleeve; 14. Guide rod; 15. Crushing motor; 16. Crushing blade; 17. Water outlet pipe; 18. Valve; 19. Actuating hook; 20. Placement platform; 11. Push motor; 12. Gear; 13. Rack; 14. Connector; 15. Recycling bin; 16. Track component; 27. Filter screen; 28. Inlet pipe. Detailed Implementation

[0057] The technical solutions of the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of the present invention.

[0058] Combination Figures 1-8 As shown, a radish leaf processing mechanism for a radish harvester according to the present invention includes a radish harvester 1 and a radish leaf conveying mechanism 2, wherein the radish leaf conveying mechanism 2 is disposed on the radish harvester 1 and is used to convey the harvested radish leaves.

[0059] The washing pool 3 is connected to the radish harvester 1 by a bracket, and the radish leaves can fall into the washing pool 3 by being transported by the radish leaf conveying mechanism 2.

[0060] The agitator 4 is installed in the washing tank 3 and is used to agitate and turn the radish leaves in the washing tank 3.

[0061] The drive mechanism 5 is located on the side wall of the cleaning tank 3 and is used to drive the axial rotation of the agitator 4.

[0062] The rinsing component 6 is installed on the washing tank 3 and is connected to the washing tank 3. It is used to rinse the surface of the radish leaves to remove dirt and mud.

[0063] The crushing frame 7 is fixedly installed on the radish harvester 1, with an open end away from the soil.

[0064] The conveyor belt 8 is set on the washing tank 3, with one end extending into the washing tank 3 and the other end located above the crushing frame 7. The radish leaves in the washing tank 3 can be transported to the crushing frame 7 by the conveyor belt 8.

[0065] The crushing component 9 is installed on the radish harvester 1 and is used to crush and process the radish leaves in the crushing frame 7.

[0066] The radish leaf conveying mechanism 2, located on the radish harvester 1, is responsible for conveying the harvested radish leaves to the subsequent processing steps. After harvesting, the radish leaves are conveyed to the washing tank 3 via the radish leaf conveying mechanism 2. When the radish leaves fall into the washing tank 3 via the radish leaf conveying mechanism 2, the washing process begins. The tumbling and agitating component 4 in the washing tank 3 rotates axially under the drive of the drive mechanism 5. The rotation of the tumbling and agitating component 4 agitates and flips the radish leaves in the washing tank 3, ensuring sufficient movement of the radish leaves in the washing tank, making it easier to remove dirt and mud from the surface of the radish leaves. Simultaneously, the rinsing component 6 rinses the radish leaves in the washing tank 3, further removing dirt and mud from the surface of the radish leaves. Water spraying enhances the washing effect. After washing, the radish leaves need to be conveyed to the next crushing processing step. At this time, the conveyor belt 8 starts working. One end of the conveyor belt 8 extends into the washing tank 3, and the other end is located above the crushing frame 7. The conveyor belt 8 scoops up the washed radish leaves from the washing tank 3 and conveys them... The radish leaves are fed to the top of the crushing frame 7. When the radish leaves are conveyed to the top of the crushing frame 7, they fall into the crushing frame 7. The crushing component 9 is located on the radish harvester 1 and crushes the radish leaves that fall into the crushing frame 7. The crushing component 9 can be used to cut or crush the radish leaves into smaller fragments or particles. The crushed radish leaf fragments or particles can be further collected, stored or transported for subsequent use, such as as fertilizer, feed or other industrial raw materials. The entire radish leaf processing mechanism realizes the processing steps of radish leaf transmission, washing and crushing in an automated manner, which improves work efficiency, reduces the need for manual operation, and realizes the resource utilization of radish leaves. The radish harvester 1 and the radish leaf transmission mechanism 2 can adopt the structure of the prior art. The specific structure and working principle will not be described in detail. As long as the purpose can be achieved, it is acceptable and is not the focus of this application. During the transmission of radish leaves, the blades on the radish harvester separate the radish leaves and radishes.

[0067] In a preferred embodiment, the present invention may be further configured as follows: Figures 1 to 8As shown; a water outlet pipe 10 is connected to the side wall of the cleaning tank 3, and a valve 11 for sealing the water outlet pipe 10 is provided at the end of the water outlet pipe 10. Several actuating hooks 12 are arranged in an equidistant array on the surface of the conveyor belt 8, and the ends of the actuating hooks 12 away from the conveyor belt 8 are curved. The bending direction of the actuating hooks 12 is the same. The water outlet pipe 10 connected to the side wall of the cleaning tank 3 is used to discharge the sewage generated during the cleaning process. By controlling the valve 11 on the water outlet pipe 10, the discharge of sewage can be easily controlled to avoid excessive accumulation of sewage in the cleaning tank 3. When the sewage in the cleaning tank 3 accumulates to a certain level or when water needs to be changed, the operator can open the valve 11 to allow the sewage to flow out through the water outlet pipe 10. By controlling the opening and closing degree of the valve 11, the discharge rate of sewage can also be adjusted. This design helps keep the washing tank 3 clean, ensuring that the radish leaves can be washed in a clean water environment. The agitator hooks 12 on the conveyor belt 8 are used to more effectively grab and transport the radish leaves, ensuring that the radish leaves do not slip or pile up during the transport process. In addition, the curved agitator hooks 12 can also disperse and comb the radish leaves to a certain extent, making them more evenly distributed on the conveyor belt. When the conveyor belt 8 starts running, the agitator hooks 12, which are distributed in an equidistant array, will move with the conveyor belt 8. Since the end of the agitator hooks 12 away from the conveyor belt 8 is set in a curved arc and the curvature is consistent, they can comb and disperse the radish leaves on the conveyor belt like a comb. This design helps to prevent the radish leaves from piling up during the transport process, while ensuring that the radish leaves can be transported smoothly and steadily into the crushing frame 7.

[0068] In a preferred embodiment, the present invention may be further configured as follows: Figures 1 to 8 As shown; the agitator 4 includes:

[0069] The first rotating shaft 41 has one end that passes through and extends to the inside of the cleaning tank 3, and the other end that is located on the outside of the cleaning tank 3. It can rotate axially relative to the cleaning tank 3. There are three first rotating shafts 41, which are distributed in an equidistant array.

[0070] A rectangular mounting piece 42 is fixedly installed on the outside of the first rotating shaft 41. The number and distribution of the mounting piece are adapted to the first rotating shaft 41, and it can rotate synchronously with the rotation of the first rotating shaft 41.

[0071] The first flip hook 43 is provided in several units, divided into three groups, and installed at equal intervals on the surface of the rectangular mounting piece 42.

[0072] The second rotating shaft 44 has one end that passes through and extends to the inside of the cleaning tank 3, and the other end that is located on the outside of the cleaning tank 3. It can rotate axially relative to the cleaning tank 3. There are three second rotating shafts 44, which are distributed in an equidistant array. The three first rotating shafts 41 and the three second rotating shafts 44 are distributed in an alternating pattern.

[0073] A cylindrical hollow mounting component 45 is fixedly installed on the outside of the second rotating shaft 44. Its number and distribution are adapted to the second rotating shaft 44, and it can rotate synchronously with the rotation of the second rotating shaft 44; and

[0074] The second flipping hook 46 is provided in several units, divided into three equal groups, and is installed in a ring at equal intervals on the outside of the cylindrical hollow mounting part 45. The first rotating shaft 41 and the rectangular mounting part 42, the three equally spaced first rotating shafts 41 provide the basic rotation axis for the flipping and stirring part 4. When the first rotating shaft 41 rotates under the drive of the drive mechanism 5, the rectangular mounting part 42 fixed on its outside will also rotate synchronously. The equally spaced first flipping hooks 43 on the rectangular mounting part 42 will move with the rotation of the rectangular mounting part 42, thereby stirring and flipping the radish leaves in the cleaning pool 3. Because there are three equally spaced first rotating shafts 41, they can cover a larger area of ​​the cleaning pool. In the washing pool area 3, to improve agitation efficiency, the second rotating shaft 44 and the cylindrical hollow mounting piece 45, similar to the first rotating shaft 41, are arranged in a equidistant array. The three second rotating shafts 44 also provide a rotation axis, but unlike the first rotating shaft 41, they are staggered, increasing the interaction between the agitators and further improving the agitation effect. The design of the cylindrical hollow mounting piece 45 allows water to flow freely, while the second flipping hook 46 on it can agitate and flip the radish leaves. The second flipping hook 46 on the cylindrical hollow mounting piece 45 moves with the rotation of the cylindrical hollow mounting piece 45 and the second rotating shaft 44, working together with the first flipping hook 43. The second rotating shaft 44 and the first rotating shaft 41 are staggered to create a more complex agitation pattern, thus better removing dirt and soil from the radish leaves. The first flipping hook 43 and the second flipping hook 46 are the parts that directly contact the radish leaves. Their number, shape, and distribution directly affect the agitation and flipping effect. The first flipping hook 43 and the second flipping hook 46 move with the rotation of the rectangular mounting piece 42 and the cylindrical hollow mounting piece 45, respectively. They penetrate deep into the radish leaves, flipping and agitating them, washing away the dirt and soil on the surface of the radish leaves. At the same time, due to their large number, Furthermore, their even distribution ensures that all radish leaves in the washing pool 3 are thoroughly agitated and turned over. During this washing process, the rectangular mounting piece 42 and the cylindrical perforated mounting piece 45 serve different purposes. The rectangular mounting piece 42 effectively agitates and turns the radish leaves in the container to better clean the dirt and impurities on the leaf surface. The cylindrical perforated mounting piece 45, on the other hand, mainly floats and rotates in the water to help to more thoroughly rinse and clean the entire radish leaf, ensuring the overall cleanliness of the leaf. Therefore, the combined use of the rectangular mounting piece 42 and the cylindrical perforated mounting piece 45 can improve the washing effect and make the radish leaves cleaner and more hygienic.

[0075] In a preferred embodiment, the present invention may be further configured as follows: Figures 1 to 8 As shown; the drive mechanism 5 includes:

[0076] The drive motor 51 is fixedly installed on the side wall of the cleaning tank 3, and its output end is connected to one of the first rotating shafts 41 located outside the cleaning tank 3 through a reducer.

[0077] Ten first sprockets 52 are provided. One first sprocket 52 is fixedly installed on the outer side of the second shaft 44 near the conveyor belt 8, and another first sprocket 52 is fixedly installed on the outer side of the first shaft 41 near the drive motor 51. The remaining eight first sprockets 52 are divided into four groups and fixedly installed on the outer sides of the other two first shafts 41 and the other two second shafts 44, respectively.

[0078] Five first chains 53 are provided, located outside the first sprocket 52. Driven by the first sprocket 52 and the first chain 53, they can drive the second shaft 44 to rotate in the same direction via the first shaft 41. The drive motor 51 is the power source of the drive mechanism 5. Its output end is connected to one of the first shafts 41 through a reducer to provide stable rotational power, reduce the speed, and increase the torque. When the drive motor 51 starts, it transmits power to the connected first shaft 41 through the reducer, causing the first shaft 41 to start rotating. The chain drive system transmits power from the drive motor 51 to the other shafts through the first sprocket 52 and the first chain 53, ensuring that all shafts rotate synchronously. A first sprocket 52 is fixedly installed on the outside of the first shaft 41 near the drive motor 51. This sprocket is connected to the output end of the drive motor 51 through the first chain 53. A first sprocket 52 is also fixedly installed on the outside of the second shaft 44 near the conveyor belt 8. A first sprocket 52 is installed, which is connected to the first rotating shaft 41 driven by the drive motor 51 via a first chain 53, thereby ensuring that the second rotating shaft 44 rotates synchronously with the first rotating shaft 41. The other eight first sprockets 52 are divided into four groups and are fixedly installed on the outside of the other two first rotating shafts 41 and the other two second rotating shafts 44 respectively. These sprockets are also connected to each other via the first chain 53 to form a closed chain drive system. When the drive motor 51 starts, all the first rotating shafts 41 and the second rotating shafts 44 will rotate synchronously through the chain drive system, thereby driving the rectangular mounting piece 42 and the cylindrical hollow mounting piece 45 connected to them to rotate, thereby agitating and turning the radish leaves in the cleaning tank 3. Since all the rotating shafts rotate synchronously, the first turning hook 43 and the second turning hook 46 on the rectangular mounting piece 42 and the cylindrical hollow mounting piece 45 will simultaneously agitate and turn the radish leaves, ensuring that the radish leaves are thoroughly and evenly cleaned in the cleaning tank 3.

[0079] In a preferred embodiment, the present invention may be further configured as follows: Figures 1 to 8 As shown; the rinsing assembly 6 includes:

[0080] The water pump 61 is fixedly installed on the cleaning tank 3, and its water inlet end is connected to the cleaning tank 3.

[0081] The outlet pipe 62 is fixedly installed on the outlet end of the water pump 61 and is connected to the outlet end of the water pump 61.

[0082] The lower flushing pipe 63 is fixedly installed inside the cleaning tank 3 and is interconnected with the outlet pipe 62. The surface of the lower flushing pipe 63 is machined with several equally spaced water outlet holes; and

[0083] The upper flushing pipe 64 is fixedly installed on the open end face of the cleaning tank 3. Several flushing nozzles 65 are connected to its side facing the cleaning tank 3. The water pump 61 is the power source for the flushing assembly 6, used to draw water from the cleaning tank 3, pressurize it, and then deliver it through the outlet pipe 62 to the lower flushing pipe 63 and the upper flushing pipe 64. When the water pump 61 starts, it draws water from the cleaning tank 3 through its inlet end and pressurizes the water through its internal mechanical structure. The pressurized water then flows out through the outlet end of the water pump 61. The outlet pipe 62 is a pipe connecting the water pump 61 and the lower flushing pipe 63, used to deliver the pressurized water from the water pump 61 to the lower flushing pipe 63. After being pressurized, the water flows out from the outlet of the water pump 61 and then through the outlet pipe 62 to the lower rinsing pipe 63. Since the outlet pipe 62 lacks a complex mechanical structure, the water flow within it relies primarily on the pressure provided by the water pump 61. The lower rinsing pipe 63 is located inside the cleaning tank 3, and its surface is machined with several equidistantly distributed water outlet holes. These holes are used to evenly spray the water from the outlet pipe 62 onto the bottom of the cleaning tank 3 and the radish leaves, rinsing the radish leaves from below. When the pressurized water flows into the lower rinsing pipe 63 through the outlet pipe 62, the water sprays out from the outlet holes on the pipe, forming a fine stream. Because the outlet holes are equidistantly distributed, therefore… These fine water streams can evenly cover the bottom of the washing pool 3 and the radish leaves, achieving a thorough rinsing effect. The upper rinsing pipe 64 is fixedly installed on the open end face of the washing pool 3, and several rinsing nozzles 65 are connected to the surface facing the washing pool 3. These rinsing nozzles 65 are used to spray water from the outlet pipe 62 onto the radish leaves at a certain pressure and angle, rinsing the radish leaves from above. When the pressurized water flows into the upper rinsing pipe 64 through the outlet pipe 62, the water is distributed to each rinsing nozzle 65. Because the rinsing nozzles 65 have specific spray angles and pressures, they can spray water onto the radish leaves at a certain speed and direction. The rinsing assembly 6 is powered by a water pump 61 and uses a water outlet pipe 62 to deliver pressurized water to the lower rinsing pipe 63 and the upper rinsing pipe 64. The lower rinsing pipe 63 rinses the radish leaves from below through its surface outlet holes, while the upper rinsing pipe 64 rinses the radish leaves from above through its rinsing nozzles 65. This combined upper and lower rinsing method ensures that the radish leaves are thoroughly and evenly cleaned, improving the cleaning effect. At the same time, the lower rinsing pipe 63 can generate bubbles and water flow, enhancing the agitation and rinsing force of the water, further helping to remove dirt and impurities from the surface of the radish leaves.

[0084] In a preferred embodiment, the present invention may be further configured as follows: Figures 1 to 8As shown; a placement platform 13 is fixedly installed on the radish harvester 1. A placement groove is machined on the surface of the placement platform 13 away from the soil. A placement slider is fixedly installed on the surface of the crushing frame 7 near the placement platform 13. The placement slider is slidably connected to the placement groove. The crushing frame 7 is connected to the placement platform 13 through the placement groove and the placement slider. A drive motor 14 is fixedly installed on the surface of the placement platform 13. A gear 15 is fixedly installed at the output end of the drive motor 14. A rack 16 is slidably connected on the surface of the placement platform 13, wherein the gear 15 and the rack 16 mesh with each other. One end of the rack 16 is fixedly mounted on... The machine is equipped with a connector 17, which is detachably connected to the crushing frame 7. A placement platform 13 and a placement chute are also present. The placement platform 13 is a component on the radish harvester 1 used to support and move the crushing frame 7. A placement chute is machined on the surface of the radish harvester 1 away from the soil, providing a track for the crushing frame 7 to slide. A placement slider is fixedly installed on the surface of the crushing frame 7 near the placement platform 13. This slider is designed to slide within the placement chute, ensuring that the crushing frame 7 can slide stably along the direction of the chute. A drive motor 14 and a gear 15 are also present. The drive motor 14 is mounted on the placement platform 13. On the surface of platform 13, a gear 15 is fixedly mounted at its output end. When the motor starts, it drives the gear 15 to rotate. The rack 16 meshes with the gear 15 and is slidably connected to the surface of platform 13, meshing with the gear 15. When the gear 15 rotates, due to the meshing relationship, it drives the rack 16 to move linearly along the surface of platform 13. The connector 17 is detachably connected to the crushing frame 7. The connector 17 is fixedly mounted on one end of the rack 16 and is detachably connected to the crushing frame 7. This connection method allows the crushing frame 7 to be easily installed or removed when needed. When the rack 16 moves under the drive of the gear 15, the crushing frame 7 will also slide along the placement chute due to the connection between the connector 17 and the crushing frame 7. When it is necessary to move the crushing frame 7 from the radish harvester 1 to a certain position, the crushing frame 7 is first connected to the rack 16 through the connector 17, the drive motor 14 is started, the motor drives the gear 15 to rotate, and the rotation of the gear 15 drives the rack 16 to move along the surface of the placement platform 13 through the meshing relationship. Due to the connection of the connector 17, the crushing frame 7 will slide along the placement chute as the rack 16 moves, thereby achieving the purpose of moving the crushing frame 7.

[0085] In a preferred embodiment, the present invention may be further configured as follows: Figures 1 to 8As shown; a sliding member adapted to the placement groove is fixedly installed on one side surface of the rack 16. The sliding member is slidably connected to the inner side of the placement groove. A wedge-shaped groove is machined on the side surface of the connector 17 near the crushing frame 7. A wedge-shaped block adapted to the wedge-shaped groove is fixedly installed on one side surface of the crushing frame 7. The wedge-shaped block on the crushing frame 7 can be inserted into the inner side of the wedge-shaped groove on the connector 17. The sliding member is adapted to the placement groove, and a sliding member adapted to the placement groove is fixedly installed on one side surface of the rack 16. A sliding member is designed to slide snugly against the inner side of the placement groove. This design ensures that the rack 16 can move stably along the placement groove under the drive of the drive motor 14. The wedge-shaped groove and wedge block are fitted together. A wedge-shaped groove is machined on the surface of the connector 17 near the crushing frame 7. The shape and size of this wedge-shaped groove are designed to fit the wedge block fixedly installed on the crushing frame 7. The wedge block on the crushing frame 7 can be inserted into the inner side of the wedge-shaped groove on the connector 17. This plug-in connection method provides a simple and reliable connection, allowing the crushing frame 7 and the rack 16 to be connected or disconnected via the connector 17. The rack 16 and crushing frame 7 are linked; when the drive motor 14 is started, it drives the gear 15 to rotate. Due to the meshing relationship between the gear 15 and the rack 16, the rack 16 moves linearly on the placement platform 13. Because of the sliding connection between the sliding element on the rack 16 and the placement groove, and the plug-in engagement between the wedge groove on the connector 17 and the wedge block on the crushing frame 7, the crushing frame 7 moves with the movement of the rack 16. When installing the crushing frame 7, simply align the wedge block on the crushing frame 7 with the wedge groove on the connector 17, and then gently push it in; the wedge block will then be inserted into the wedge groove, connecting the crushing frame 7 and the rack 16. When disassembling the crushing frame 7, simply lift the crushing frame 7 slightly to disengage the wedge block from the wedge groove, and then remove the crushing frame 7. This design greatly simplifies the installation and disassembly process and improves work efficiency.

[0086] In a preferred embodiment, the present invention may be further configured as follows: Figures 1 to 8 As shown; the crushing component 9 includes:

[0087] The lifting motor 91 is fixedly installed on the side wall of the radish harvester 1, and a second sprocket is fixedly installed at its output end;

[0088] The screw 92 is rotatably connected to the side wall of the radish harvester 1, and a third sprocket is fixedly installed at its end. A second chain is provided between the second sprocket and the third sprocket. The lifting motor 91 can drive the screw 92 to rotate axially through the second sprocket, the third sprocket and the second chain.

[0089] Threaded sleeve 93 is threaded to the outside of screw 92, and has a sliding hole machined on its surface;

[0090] Guide rod 94 is fixedly installed on the side wall of radish harvester 1, wherein guide rod 94 is located inside the sliding hole;

[0091] The pulverizing motor 95 is fixedly mounted on the surface of the threaded sleeve 93 near the pulverizing frame 7; and

[0092] The shredder blade 96 is fixedly mounted on the output end of the shredder motor 95. Driven by the shredder motor 95, it rotates axially to shred the radish leaves in the shredder frame 7. The lifting motor 91 is linked to the screw 92. The lifting motor 91 is fixedly mounted on the side wall of the radish harvester 1, and its output end is fixedly mounted with a second sprocket. The screw 92 is rotatably connected to the side wall of the radish harvester 1, and its end is fixedly mounted with a third sprocket. The second sprocket and the third sprocket are connected by a second chain. Therefore, when the lifting motor 91 is started, it will be connected by a second chain. The sprocket, second chain, and third sprocket drive the screw 92 to rotate axially. The threaded sleeve 93 is threadedly connected to the screw 92, and the threaded sleeve 93 is threaded to the outside of the screw 92. This allows the threaded sleeve 93 to move along the axial direction of the screw 92 when the screw 92 rotates. A sliding hole is machined on the surface of the threaded sleeve 93. This sliding hole is used to cooperate with the guide rod 94 to ensure the stability of the threaded sleeve 93 during movement. The guide rod 94 is fixedly installed on the side wall of the radish harvester 1, and it is located inside the sliding hole of the threaded sleeve 93. The guide rod 94 restricts the rotation of the threaded sleeve 93, ensuring that the threaded sleeve 93 can only move along the axial direction of the screw 92 and cannot rotate. The crushing motor 95 and the crushing blade 96 operate as follows: the crushing motor 95 is fixedly installed on the surface of the threaded sleeve 93 near the crushing frame 7, and the crushing blade 96 is fixedly installed on the output end of the crushing motor 95. When the crushing motor 95 starts, it drives the crushing blade 96 to rotate axially. The rotating crushing blade 96 enters the crushing frame 7 to crush the radish leaves. The overall workflow is as follows: when the height of the crushing blade 96 needs to be adjusted to accommodate different amounts of radish leaves, the lifting motor 91 can be started, causing the screw 92 to rotate via chain drive, which in turn drives the threaded sleeve 93 to move along the axial direction of the screw 92. The movement of the threaded sleeve 93 will cause the crushing motor 95 and the crushing blade 96 to move together, thereby changing the position of the crushing blade 96 relative to the crushing frame 7. When the crushing blade 96 is in the appropriate position, the crushing motor 95 is started, causing it to rotate the crushing blade 96 to crush the radish leaves in the crushing frame 7.

[0093] In a preferred embodiment, the present invention may be further configured as follows: Figures 1 to 8As shown; a cover adapted to the opening of the crushing frame 7 is fixedly installed on the side surface of the threaded sleeve 93 near the crushing frame 7. The cover is generally n-shaped. The threaded sleeve 93 can move axially along the screw 92 under the drive of the lifting motor 91. On the side surface of the threaded sleeve 93 near the crushing frame 7, a cover adapted to the opening of the crushing frame 7 is fixedly installed. This cover is generally n-shaped, which means that the cover has an opening. The shape and size of this opening match the opening of the crushing frame 7. When the threaded sleeve 93 moves the cover above the crushing frame 7, the cover... The opening of the cover will cover the opening of the crushing frame 7, forming a closed space. This closed space helps to prevent radish leaves or other materials from splashing during the crushing process, thus keeping the working environment clean. The n-shaped design of the cover not only makes it easy to cover, but also ensures a tight fit with the crushing frame 7 in the closed state, reducing the possibility of material leakage. By installing a cover that matches the opening of the crushing frame 7, the risk of injury to operators due to material splashing during the crushing process can be effectively prevented. At the same time, the n-shaped design of the cover makes it easy to open and close, making it easy to add or remove materials when needed.

[0094] In a preferred embodiment, the present invention may be further configured as follows: Figures 1 to 8 As shown; a recycling bin 18 is connected to the surface of the washing tank 3. Two track components 19 are fixedly installed in the recycling bin 18, and each track component 19 contains a filter screen 20. An inlet pipe 21 is connected to the surface of the recycling bin 18, and the other end of the inlet pipe 21 is connected to the outlet of the water pump 61. When the washing tank 3 is used to wash radish leaves, the washing water carrying stains and impurities flows out from the surface of the washing tank 3. The recycling bin 18 is connected to the surface of the washing tank 3, and its design purpose is to collect the wastewater containing stains flowing out of the washing tank. The two track components 19 fixedly installed inside the recycling bin 18 are used to place the filter screens 20. The function of these filter screens 20 is to filter out large particulate impurities in the wastewater. The filter screen 20 is designed to allow the wastewater, such as soil and fallen leaves, to slide along the track 19 or be removed, facilitating regular cleaning or replacement to ensure filtration effectiveness. The surface of the recycling bin 18 is connected to a water inlet pipe 21, the other end of which is connected to the outlet of the water pump 61. When the recycled wastewater needs to be reused, the water pump 61 is activated, extracting the pre-filtered wastewater from the recycling bin 18 and transporting it through the water inlet pipe 21 to the lower flushing pipe 63 and the upper flushing pipe 64. This design reduces the consumption of fresh water by recycling and reusing wastewater, aligning with the principles of environmental protection and resource conservation. Simultaneously, the filter screen ensures the relative cleanliness of the recycled water, improving the feasibility of reuse.

[0095] The specific working principle of the radish leaf processing mechanism of a radish harvester of the present invention is as follows:

[0096] I. Overall Overview

[0097] The processing unit mainly includes a radish harvester 1 and a radish leaf conveying mechanism 2. The radish leaf conveying mechanism 2 transports the harvested radish leaves to a washing tank 3 for washing. Then, a turning and stirring component 4 is used to stir and turn the radish leaves to ensure the washing effect. After that, the radish leaves are rinsed by a rinsing component 6 to remove dirt and soil. The washed radish leaves are then transported by a conveyor belt 8 to a crushing frame 7, and finally, the radish leaves are crushed by a crushing component 9.

[0098] II. Specific Working Principle

[0099] During the operation of the radish harvester, the radish leaves are first effectively transported to the washing tank 3 through the radish leaf conveying mechanism 2. Once the radish leaves enter the washing tank 3, the turning and stirring component 4 starts to work under the precise control of the drive mechanism 5. The drive motor 51 drives the first rotating shaft 41 to rotate through the reducer, and transmits the rotational power to the second rotating shaft 44 through the chain drive of the first sprocket 52 and the first chain 53, ensuring that the two rotating shafts rotate synchronously. The rectangular mounting component 42 and the cylindrical hollow mounting component 45 are respectively installed on the first rotating shaft 41 and the second rotating shaft 44. When the rotating shafts rotate, the first turning hook 43 and the second turning hook 46 on them stir alternately, effectively turning and stirring the radish leaves in the washing tank 3, improving the washing efficiency.

[0100] At the same time, the water pump 61 in the rinsing assembly 6 starts to work, and transports the water in the cleaning pool 3 to the lower rinsing pipe 63 and the upper rinsing pipe 64 through the water outlet pipe 62. The water outlet of the lower rinsing pipe 63 sprays water evenly on the radish leaves, while the rinsing nozzle 65 of the upper rinsing pipe 64 performs a second rinsing on the radish leaves to ensure that the radish leaves are thoroughly cleaned. The wastewater after rinsing is discharged through the water outlet pipe 10 on the side wall of the cleaning pool 3, and the valve 11 controls the opening and closing of the water outlet pipe 10.

[0101] After being washed, the radish leaves are then grabbed by the toggle hook 12 on the conveyor belt 8 and transported to the crushing frame 7. The crushing frame 7 is connected to the platform by sliding the slider in the groove on the placement platform 13. When the position of the crushing frame 7 needs to be adjusted, the motor 14 is started, and the gear 15 at its output end drives the rack 16 that meshes with it to slide on the platform. One end of the rack 16 is connected to the crushing frame 7 through the connector 17, thereby realizing the sliding adjustment of the crushing frame 7 on the placement platform 13 and the replacement of the crushing frame 7. At the same time, the slider on the rack 16 slides in the placement groove to ensure the stability of the entire movement process.

[0102] When the radish leaves enter the crushing frame 7, the crushing component 9 starts to work. The lifting motor 91 drives the screw 92 to rotate through the second sprocket, the third sprocket and the second chain. The threaded sleeve 93 rises and falls because it is threaded to the outside of the screw 92. The guide rod 94 ensures the stability of the threaded sleeve 93 during the rising and falling process. The crushing motor 95 is installed on the threaded sleeve 93. The crushing blade 96 at its output end rotates to crush the radish leaves in the crushing frame 7. In addition, the n-shaped cover installed on the threaded sleeve 93 ensures that the radish leaves will not splash out during the crushing process.

[0103] Meanwhile, a recycling bin 18 is connected to the surface of the cleaning pool 3. A filter screen 20 is placed inside the recycling bin 18. When the water in the cleaning pool 3 is discharged, the water will pass through the filter screen 20 to remove impurities and radish leaf residue. An inlet pipe 21 is connected to the surface of the recycling bin 18. The other end of the inlet pipe 21 is connected to the outlet of the water pump 61. In this way, the water pump 61 can pump the water in the recycling bin 18 back and circulate and rinse the radish leaves through the outlet pipe 62 and the rinsing assembly 6, thereby improving the utilization rate of water resources.

[0104] The entire radish leaf processing procedure, from harvesting to washing and crushing, has been automated, which not only improves work efficiency but also increases the utilization rate of radish leaves.

[0105] It should be noted that, in this document, relational terms such as "first" and "second" are used only to distinguish one entity or operation from another, and do not necessarily require or imply any such actual relationship or order between these entities or operations. Furthermore, the terms "comprising," "including," or any other variations thereof are intended to cover non-exclusive inclusion, such that a process, method, article, or apparatus that comprises a list of elements includes not only those elements but also other elements not expressly listed, or elements inherent to such a process, method, article, or apparatus. Without further limitations, an element defined by the phrase "comprising one..." does not exclude the presence of other identical elements in the process, method, article, or apparatus that includes said element.

[0106] Although embodiments of the invention have been shown and described, it will be understood by those skilled in the art that various changes, modifications, substitutions and alterations can be made to these embodiments without departing from the principles and spirit of the invention, the scope of which is defined by the appended claims and their equivalents.

Claims

1. A radish leaf processing mechanism for a radish harvester, comprising a radish harvester (1) and a radish leaf conveying mechanism (2), wherein the radish leaf conveying mechanism (2) is mounted on the radish harvester (1) and is used to convey harvested radish leaves, characterized in that, The washing pool (3) is connected to the radish harvester (1) by a bracket, and the radish leaves can fall into the washing pool (3) under the transmission of the radish leaf transmission mechanism (2); The agitator (4) is placed in the cleaning tank (3) to agitate and turn the radish leaves in the cleaning tank (3); The drive mechanism (5) is located on the side wall of the cleaning tank (3) and is used to drive the axial rotation of the overturning agitator (4); The rinsing assembly (6) is set on the cleaning tank (3) and connected to the cleaning tank (3). It is used to rinse the surface of the radish leaves to remove dirt and mud. The crushing frame (7) is fixedly installed on the radish harvester (1), with the end away from the soil being open; A conveyor belt (8) is set on the washing tank (3), with one end extending into the washing tank (3) and the other end located above the crushing frame (7). The radish leaves in the washing tank (3) can be transported to the crushing frame (7) by the conveyor belt (8). The crushing component (9) is installed on the radish harvester (1) and is used to crush and process the radish leaves in the crushing frame (7); The agitator (4) includes: The first rotating shaft (41) has one end extending through and into the inner side of the cleaning tank (3), and the other end located on the outer side of the cleaning tank (3). It can rotate axially relative to the cleaning tank (3). The number of the first rotating shafts (41) is three, and they are distributed in an equidistant array. A rectangular mounting piece (42) is fixedly installed on the outside of the first rotating shaft (41). The number and distribution position are adapted to the first rotating shaft (41). It can rotate synchronously with the rotation of the first rotating shaft (41). The first flip hook (43) is provided in several units, divided into three groups, and installed at equal intervals on the surface of the rectangular mounting piece (42); The second rotating shaft (44) has one end extending through and into the inner side of the cleaning tank (3), and the other end located on the outer side of the cleaning tank (3). It can rotate axially relative to the cleaning tank (3). The number of the second rotating shafts (44) is three, and they are distributed in an equidistant array. The three first rotating shafts (41) and the three second rotating shafts (44) are staggered. A cylindrical hollow mounting component (45) is fixedly installed on the outside of the second rotating shaft (44). Its quantity and distribution are adapted to the second rotating shaft (44), and it can rotate synchronously with the rotation of the second rotating shaft (44); and The second flip hook (46) is set in several units, divided into three groups, and installed in a ring at equal intervals on the outside of the cylindrical hollow mounting part (45); The flushing assembly (6) includes: A water pump (61) is fixedly installed on the cleaning tank (3), and its inlet end is connected to the cleaning tank (3); The outlet pipe (62) is fixedly installed on the outlet end of the water pump (61) and is connected to the outlet end of the water pump (61); The lower flushing pipe (63) is fixedly installed inside the cleaning tank (3) and is connected to the water outlet pipe (62). The surface of the lower flushing pipe (63) is machined with several equally spaced water outlet holes; and The upper flushing pipe (64) is fixedly installed on the open end face of the cleaning tank (3), and several flushing nozzles (65) are connected to the side surface facing the cleaning tank (3).

2. The radish leaf processing mechanism of a radish harvester according to claim 1, characterized in that, The side wall of the cleaning tank (3) is connected to a water outlet pipe (10), and the end of the water outlet pipe (10) is provided with a valve (11) for sealing the water outlet pipe (10). The surface of the conveyor belt (8) is provided with a number of equidistant arrayed toggle hooks (12), wherein the end of the toggle hook (12) away from the conveyor belt (8) is curved, and the bending direction of the number of toggle hooks (12) is consistent.

3. The radish leaf processing mechanism of a radish harvester according to claim 1, characterized in that, The drive mechanism (5) includes: The drive motor (51) is fixedly installed on the side wall of the cleaning tank (3), and its output end is connected to one of the first rotating shafts (41) located outside the cleaning tank (3) through a reducer; Ten first sprockets (52) are provided. One first sprocket (52) is fixedly installed on the outside of the second shaft (44) near the conveyor belt (8), and another first sprocket (52) is fixedly installed on the outside of the first shaft (41) near the drive motor (51). The other eight first sprockets (52) are divided into four groups and fixedly installed on the outside of the other two first shafts (41) and the other two second shafts (44), respectively. The first chain (53) has five of them and is located on the outside of the first sprocket (52). Driven by the first sprocket (52) and the first chain (53), the first shaft (41) can drive the second shaft (44) to rotate in the same direction.

4. The radish leaf processing mechanism of a radish harvester according to claim 1, characterized in that, The radish harvester (1) is fixedly installed with a placement platform (13). A placement chute is machined on the side of the placement platform (13) away from the soil. A placement slider is fixedly installed on the side of the crushing frame (7) close to the placement platform (13). The placement slider is slidably connected in the placement chute. The crushing frame (7) is connected to the placement platform (13) through the placement chute and the placement slider. A drive motor (14) is fixedly installed on the surface of the placement platform (13). A gear (15) is fixedly installed at the output end of the drive motor (14). A rack (16) is slidably connected on the surface of the placement platform (13). The gear (15) and the rack (16) mesh with each other. A connector (17) is fixedly installed on one side of the rack (16). The connector (17) is detachably connected to the crushing frame (7).

5. The radish leaf processing mechanism of a radish harvester according to claim 4, characterized in that, A sliding member adapted to the placement groove is fixedly installed on one side surface of the rack (16). The sliding member is slidably connected to the inner side of the placement groove. A wedge groove is machined on the side surface of the connector (17) near the crushing frame (7). A wedge block adapted to the wedge groove is fixedly installed on one side surface of the crushing frame (7). The wedge block on the crushing frame (7) can be inserted into the inner side of the wedge groove on the connector (17).

6. The radish leaf processing mechanism of a radish harvester according to claim 1, characterized in that, The crushing component (9) includes: The lifting motor (91) is fixedly installed on the side wall of the radish harvester (1), and a second sprocket is fixedly installed at its output end; The screw (92) is rotatably connected to the side wall of the radish harvester (1), and a third sprocket is fixedly installed at its end. A second chain is provided between the second sprocket and the third sprocket. The lifting motor (91) can drive the screw (92) to rotate axially through the second sprocket, the third sprocket and the second chain. A threaded sleeve (93) is threaded to the outside of the screw (92), and a sliding hole is machined on its surface; Guide rod (94) is fixedly installed on the side wall of radish harvester (1), wherein the guide rod (94) is located inside the sliding hole; The pulverizing motor (95) is fixedly mounted on the side surface of the threaded sleeve (93) near the pulverizing frame (7); and The shredder blade (96) is fixedly installed on the output end of the shredder motor (95). Driven by the shredder motor (95), it rotates axially to shred and process the radish leaves in the shredder frame (7).

7. The radish leaf processing mechanism of a radish harvester according to claim 6, characterized in that, The threaded sleeve (93) has a cover that is adapted to the opening of the crushing frame (7) fixedly installed on the side surface near the crushing frame (7), wherein the cover is generally n-shaped.

8. The radish leaf processing mechanism of a radish harvester according to claim 1, characterized in that, The surface of the cleaning tank (3) is connected to a recycling bin (18), wherein the recycling bin (18) is fixedly installed with two track components (19), and a filter screen (20) is placed in each of the two track components (19). The surface of the recycling bin (18) is connected to a water inlet pipe (21), and the other end of the water inlet pipe (21) is connected to the water outlet of the water pump (61).

Citation Information

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