Efficient feed processing device capable of automatically proportioning and mixing

By designing an automated feed processing device, large particle impurities are removed through screening to prevent clogging and achieve uniform mixing, thus solving the problem of reduced feed quality in existing technologies and improving production efficiency and product quality.

CN121244070AInactive Publication Date: 2026-01-02NINGXIA LONGCHANG FEED CO LTD
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Patent Information

Application Number
CN202511123407.8
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-08-12
Publication Date
2026-01-02
Estimated Expiration
Not applicable · inactive patent

AI Technical Summary

Technical Problem

In existing feed processing equipment, the quality of feed is reduced due to raw materials of different sizes, which affects the uniformity of mixing and the quality of forming.

Method used

An automated, high-efficiency feed processing device for proportioning and mixing was designed, including a support frame, a mixing box, a feeding mechanism, a crushing mechanism, and an anti-clogging mechanism. Large particle impurities are removed by screening, rubber columns are used to prevent clogging, the anti-clogging head is driven to slide to prevent the discharge pipe from being blocked, and the material is uniformly mixed by a stirring paddle and a striking plate.

Benefits of technology

It improves the uniformity of feed mixing and the quality of feed forming, prevents clogging, increases production efficiency and product palatability, and reduces labor costs.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention relates to the field of household kitchens, and discloses an efficient feed processing device capable of automatically proportioning and mixing, the efficient feed processing device comprises a supporting frame, a plurality of supporting frames and a mixing box, the top ends of the supporting frames are fixedly connected with a feeding mechanism, and the top side of the feeding mechanism is fixedly connected with a crushing mechanism; the bottom side of the mixing box is fixedly connected with a plurality of discharging pipes, the bottom end of the supporting frame is fixedly connected with an anti-blocking mechanism, the interior of the mixing box is rotatably connected with a mixing mechanism, each feeding mechanism comprises a first motor, the outer portion of each first motor is fixedly connected to the bottom end of the supporting frame, and the outer portion of each first motor is fixedly connected to the bottom end of the supporting frame. The driving end of the first motor is fixedly connected with a limiting disc through a rotating shaft. After large-particle impurities are removed through screening, the feed enters the discharging pipe, meanwhile, the transmission plate drives the rubber column to slide up and down in a reciprocating mode, the rubber column can knock the feeding frame to prevent blockage, then the palatability of the feed and digestive absorption of animals are prevented from being affected, and the quality of the feed is improved.
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Description

TECHNICAL FIELD

[0001] The present application relates to the technical field of home kitchen, in particular to an efficient feed processing device with automatic proportioning and mixing. BACKGROUND

[0002] Feed processing is a process of producing feed products that meet the nutritional needs of animals by processing various feed raw materials such as grains, soybean meal, minerals, and vitamins through a series of processes. It is widely used in the fields of livestock and aquaculture. Feed processing requires automatic proportioning and mixing because animals have strict requirements for the proportion of nutrients such as protein, vitamins, and minerals in feed. Automatic control of raw material addition can ensure balanced nutrition and avoid nutritional imbalance caused by human error. At the same time, automatic mixing can ensure uniform distribution of trace ingredients, prevent local excess or deficiency, improve production efficiency, achieve continuous and stable production, reduce labor costs and raw material waste, and meet the demand for standardization of feed production and quality in large-scale breeding.

[0003] First, the staff will receive the raw materials such as grains and soybean meal for preliminary cleaning. Then, according to the preset feed formula, the automatic proportioning system uses electronic weighing equipment to weigh the crushed base materials, vitamins, and trace additives. These raw materials will be sequentially transported to the mixer. After the mixer starts, it will mix the raw materials at a set speed and time. During this process, some systems will monitor the mixing uniformity in real time through sensors. When the standard is reached, the mixed material will be discharged.

[0004] However, in existing technology, some feed processing devices have the problem that larger impurities or raw material particles can adversely affect subsequent processing steps and the quality of the final feed. For example, larger raw material particles can affect the uniformity of the mixture if they directly enter the mixing or granulation process. The larger particles may not fully integrate with other powders, leading to uneven distribution of nutrients in the feed. Additionally, during granulation, the particles may not form properly, resulting in uneven hardness, affecting the palatability of the feed and the animal's digestion and absorption, and ultimately reducing the quality of the feed. Therefore, to address these issues, an efficient feed processing device with automatic proportioning and mixing is proposed. SUMMARY

[0005] To address the shortcomings of existing technology, the present application provides an efficient feed processing device with automatic proportioning and mixing, which solves the problem of reduced feed quality caused by different sizes of raw materials in the processing process of some feed processing devices in existing technology.

[0006] In order to achieve the above object, the present application is realized by the following technical scheme: An automatic proportioning and mixing high-efficiency feed processing device, comprising a support frame, a plurality of support frames and a mixing box, the top end of the support frame is fixedly connected with a feeding mechanism, the top side of the feeding mechanism is fixedly connected with a crushing mechanism, the bottom side of the mixing box is fixedly connected with a plurality of discharge pipes, the bottom end of the support frame is fixedly connected with an anti-blocking mechanism, the inside of the mixing box is rotatably connected with a mixing mechanism, a plurality of feeding mechanisms each comprise a motor one, the outside of the motor one is fixedly connected at the bottom end of the support frame, the driving end of the motor one is fixedly connected with a limiting disc through a rotating shaft, the outside of the limiting disc is fixedly connected with a conveying assembly, the top end of the support frame is fixedly connected with a feeding assembly, the inside of the limiting disc is slidably connected with a transmission rod, the outside of the transmission rod is fixedly connected with a rubber column through a transmission plate, the outside of the transmission plate is slidably connected with a limiting plate, the bottom end of the support frame is fixedly connected with a plurality of weight sensors.

[0007] Preferably, the crushing mechanism comprises a feeding hopper, the bottom side of the feeding hopper is fixedly connected to the top side of the mixing box, the rear side of the feeding hopper is fixedly connected with a connecting box, the front side of the feeding hopper is fixedly connected with a protection box, the inside of the connecting box is fixedly connected with a motor two, the left and right ends of the connecting box are rotatably connected with connecting rods, the outside of the connecting rod is fixedly connected with a crushing roller, the front end of the connecting rod is fixedly connected with a gear, the top end of the mixing box is fixedly connected with a top plate, the bottom side of the top plate is slidably connected with a bottom plate, the front and rear sides of the top plate are fixedly connected with stress plates.

[0008] Preferably, the anti-blocking mechanism comprises two vertical plates, the bottom ends of the two vertical plates are respectively fixedly connected to the front and rear ends of the bottom of the support frame, the top side of one of the vertical plates is fixedly connected with a protection column, the inside of the protection column is fixedly connected with a motor three, the driving end of the motor three is fixedly connected with a rotating shaft, the inside of the other vertical plate is rotatably connected with a driven rod, the outside of the driven rod and the rotating shaft are both fixedly connected with fixed discs, the proximal sides of the two fixed discs are both fixedly connected with support columns, the outside of the support column is slidably connected with a sliding frame, the proximal sides of the two sliding frames are fixedly connected with a link plate, the top side of the link plate is fixedly connected with a plurality of sliding columns, the top side of the sliding column is fixedly connected with an anti-blocking head, the outside of the anti-blocking head is slidably connected inside the discharge pipe.

[0009] Preferably, the mixing mechanism comprises a rotating column, the outer part of the rotating column is rotatably connected to the inner part of the mixing box, the front and rear ends of the rotating column are fixedly connected with driving wheels, the outer part of the driving wheels is sleeved with a belt one, the outer part of the rotating shaft and the outer part of the driven rod are fixedly connected with driven wheels, the outer part of the rotating column is fixedly connected with a plurality of stirring paddles, the outer part of the rotating column is fixedly connected with a rotating frame, the front and rear ends of the rotating column are fixedly connected with driving discs, the outer part of the driving discs is rotatably connected with driven discs, the far sides of the two driven discs are fixedly connected with beating plates, and the bottom end of the support frame is slidably connected with a collecting frame.

[0010] Preferably, the conveying assembly comprises a transmission shaft, the outer part of the limiting disc is fixedly connected to the outer part of the transmission shaft, the outer part of the transmission shaft is fixedly connected with a screw conveyor, and the outer part of the transmission shaft is rotatably connected with a feeding pipe.

[0011] Preferably, the feeding assembly comprises a feeding frame, the bottom side of the feeding frame is fixedly connected to the top end of the support frame, the inner top end of the feeding frame is fixedly connected with an inclined plate, the inner bottom end of the feeding frame is fixedly connected with a screening plate, the bottom side of the feeding frame is fixedly connected with a discharging pipe, and the outer part of the discharging pipe is fixedly connected to the left end of the feeding pipe.

[0012] Preferably, the right side of the limiting plate is fixedly connected to the left side of the feeding frame, and the top end of the rubber column is in contact with the left end of the feeding frame.

[0013] Preferably, the inner part of the belt one is sleeved with the outer part of the driven wheel, the outer part of the rotating frame is in contact with the inner part of the mixing box, the top end of the support frame is fixedly connected to the outer part of the mixing box, and the inner part of the belt two is sleeved with the outer part of the driven disc.

[0014] Preferably, the driving end of the motor two is fixedly connected to the rear side of one of the connecting rods, and the two gears are in meshing connection.

[0015] Preferably, the outer part of the beating plate is in contact with the outer part of the stress plate, and the top end of the mixing box is slidably connected to the outer part of the bottom plate.

[0016] The application provides an efficient feed processing device with automatic proportioning and mixing.

[0017] 1. In this invention, the raw materials fall onto the screening plate under the guidance of the inclined plate. After screening to remove large particles of impurities, they enter the feed pipe. At the same time, the transmission plate drives the rubber column to slide up and down, so that the rubber column will knock on the feeding frame to prevent blockage. This avoids affecting the palatability of the feed and the digestion and absorption of animals, thereby improving the quality of the feed.

[0018] 2. In this invention, the fixed plate drives the external support column to rotate, which in turn drives the connecting plate to slide up and down, thereby driving the sliding column to slide, and finally driving the anti-blocking head to slide and push the material inside the discharge pipe, thereby achieving the anti-blocking effect.

[0019] 3. This invention drives the striking plate to strike the force plate. The striking plates are symmetrically and oppositely installed on the outside of the driven plate, so that the two force plates drive the top plate to slide back and forth, so that it cooperates with the bottom plate to initially mix the material. Attached Figure Description

[0020] Figure 1 This is a perspective view of the present invention;

[0021] Figure 2 This is a schematic diagram of the feeding pipe of the present invention;

[0022] Figure 3 This is a schematic diagram of the inclined plate of the present invention;

[0023] Figure 4 This is a schematic diagram of the limiting plate of the present invention;

[0024] Figure 5 This is a schematic diagram of the striking plate of the present invention;

[0025] Figure 6 This is a schematic diagram of the feed hopper of the present invention;

[0026] Figure 7 This is a schematic diagram of the force-bearing plate of the present invention;

[0027] Figure 8 This is a schematic diagram of the connecting plate of the present invention;

[0028] Figure 9 for Figure 8 Enlarged view of point A in the middle.

[0029] The components include: 1. Support frame; 2. Support frame; 3. Feeding mechanism; 31. Motor 1; 32. Rotating shaft; 33. Limiting plate; 34. Transport component; 341. Drive shaft; 342. Screwdriver; 343. Feeding pipe; 35. Feeding component; 351. Feeding frame; 352. Inclined plate; 353. Screening plate; 354. Discharge pipe; 36. Drive rod; 37. Drive plate; 38. Limiting plate; 39. Rubber column; 310. Weight sensor; 4. Mixing box; 5. Crushing mechanism; 51. Feed hopper; 52. Connecting box; 53. Protective box; 54. Motor 2; 55. Connecting rod; 56. Crushing roller; 5 7. Gear; 58. Top plate; 59. Bottom plate; 510. Load-bearing plate; 6. Discharge pipe; 7. Anti-blocking mechanism; 71. Vertical plate; 72. Protective column; 73. Motor 3; 74. Rotating shaft; 75. Driven rod; 76. Fixed plate; 77. Support column; 78. Sliding frame; 79. Connecting plate; 710. Sliding column; 711. Anti-blocking head; 8. Mixing mechanism; 81. Rotating column; 82. Driving wheel; 83. Belt 1; 84. Driven wheel; 85. Stirring paddle; 86. Rotating frame; 87. Driving disc; 88. Belt 2; 89. Driven disc; 810. Impact plate; 811. Side column; 9. Collection frame. Detailed Implementation

[0030] The technical solutions in 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.

[0031] Please see the appendix Figure 1 - Appendix Figure 3This invention provides an automated, high-efficiency feed processing device for proportioning and mixing, comprising a support frame 1, multiple support frames 2, and a mixing box 4. The support frame 1 and support frames 2 are supported by multiple iron plates designed in a bracket shape. The mixing box 4 is used to mix materials. A feeding mechanism 3 is fixedly connected to the top of the support frame 2, and the fixed welded connection ensures that the mechanism shakes less during feeding. Each of the multiple feeding mechanisms 3 includes a motor 31, which provides a power source. The motor 31 is externally fixedly connected to the bottom of the support frame 2, and the motor 31 is fixedly fixed to ensure stable operation. The drive end of the motor 31 is fixedly connected to a limiting disk 33 through a rotating shaft 32. Starting the motor 31 drives the rotating shaft 32 to rotate, which in turn drives the limiting disk 33 to rotate. A transport component 34 is externally fixedly connected to the limiting disk 33. When the limiting disk 33 rotates, it drives the transport component 34 to move synchronously, realizing the power transmission for material transport. The transport component 34 includes a drive shaft 341. The limiting disc 33 is externally fixedly connected to the outside of the drive shaft 341. Power is transmitted to the drive shaft 341 through the limiting disc 33, causing the drive shaft 341 to rotate synchronously with the limiting disc 33. An auger 342 is externally fixedly connected to the drive shaft 341. The rotation of the drive shaft 341 drives the auger 342 to rotate, and the spiral structure of the auger 342 pushes the material forward. A feeding pipe 343 is rotatably connected to the outside of the drive shaft 341. The feeding pipe 343 provides a closed channel for material transportation, and the drive shaft 341 rotates inside it, reducing the contact between the material and the external environment.

[0032] Specifically, the power provided by motor 31 is transmitted to auger 342 through components such as shaft 32 and limit plate 33, enabling auger 342 to rotate within feeding pipe 343, thereby transporting materials. The fixed connection of each component ensures the stability of power transmission. The spiral blade design of auger 342 continuously pushes materials, preventing them from accumulating during transport, while feeding pipe 343 provides a closed space for material transport, reducing material spillage.

[0033] Please see the appendix Figure 2 - Appendix Figure 4A feeding assembly 35 is fixedly connected to the top of the support frame 2. The feeding assembly 35, installed at the top of the support frame 2, works in conjunction with the feeding mechanism 3 to complete the material feeding process. Welding ensures its stable position. The feeding assembly 35 includes a feeding frame 351, which is the initial placement area for materials, used to temporarily store raw materials to be processed. The bottom side of the feeding frame 351 is fixedly connected to the top of the support frame 2, enabling the feeding frame 351 to stably support the materials and prevent displacement during feeding or vibration. An inclined plate 352 is fixedly connected to the top of the inner interior of the feeding frame 351. The inclined plate 352 guides the material downwards using its tilt angle, preventing material accumulation at the top of the frame. A screening plate 353 is fixedly connected to the bottom of the inner interior of the feeding frame 351. The screening plate 353 filters the material through sieve holes, removing large particles and ensuring the material particle size meets requirements. A feeding pipe 354 is fixedly connected to the bottom side of the feeding frame 351. The feeding pipe 354 is the channel through which material enters the feeding pipe 343 from the feeding frame, guiding the screened material into the interior of the feeding pipe 354. The external part of the feeding pipe 354 is fixedly connected to the inside of the left end of the feeding pipe 343 by welding, so that the feeding pipe 354 introduces the raw material into the interior of the feeding pipe 343.

[0034] Specifically, the connection between the feeding assembly 35 and the transport assembly 34 ensures that materials can smoothly enter the feeding pipe 343 from the discharge pipe 354. The feeding assembly 35 is a temporary storage and pre-treatment area for materials before they enter the transport stage. The inclined plate 352 helps materials slide down the screening plate 353. Its inclination angle is designed to allow materials to slide down naturally under gravity, avoiding accumulation. The screening plate 353 filters impurities. The size of the screen holes is set according to the particle size requirements of the feed raw materials to ensure that the materials entering the transport stage meet the processing standards. The discharge pipe 354 connects the feeding frame 351 and the feeding pipe 343, allowing the processed materials to smoothly enter the transport channel. Its pipe diameter matches that of the feeding pipe 343 to ensure smooth material transmission.

[0035] Please see the appendix Figure 2 - Appendix Figure 4 A transmission rod 36 is slidably connected inside the limiting disk 33. When the limiting disk 33 rotates, it drives the transmission rod 36 to slide, converting rotational motion into linear motion. A rubber column 39 is fixedly connected to the outside of the transmission rod 36 via a transmission plate 37. The sliding of the transmission rod 36 is transmitted to the rubber column 39 through the transmission plate 37, causing the rubber column 39 to slide synchronously. The top of the rubber column 39 contacts the left end of the feeding frame 351. The movement of the rubber column 39 can strike the feeding frame 351, using vibration to prevent material blockage. The rubber material can reduce wear on the frame. A limiting plate 38 is slidably connected to the outside of the transmission plate 37. The limiting plate 38 restricts the movement direction of the transmission plate 37, ensuring that it slides along a predetermined trajectory and improving structural stability.

[0036] The right side of the limiting plate 38 is fixedly connected to the left side of the feeding frame 351. Fixing the limiting plate 38 to the feeding frame 351 provides stable support and guidance for the sliding of the transmission plate 37. When the limiting plate 33 rotates, it drives the transmission rod 36 to slide, which in turn causes the rubber column 39 to move up and down and strike the feeding frame 351 via the transmission plate 37. The vibration generated by this striking effectively prevents material from clogging inside the feeding frame 351. Multiple weight sensors 310 are fixedly connected to the bottom of the support frame 1. The weight sensors 310, installed at the bottom of the support frame 1, can directly sense the total weight of the device and materials; multiple sensors improve measurement accuracy. The weight sensors 310 can monitor the weight changes of the entire device and materials in real time, providing data support for precise control of the proportions of different raw materials and ensuring the accuracy of feed formulation. This is existing technology and will not be elaborated further.

[0037] Please see the appendix Figure 5 - Appendix Figure 7 A crushing mechanism 5 is fixedly connected to the top side of the feeding mechanism 3. The crushing mechanism 5 receives the material conveyed by the feeding mechanism 3 and crushes it, forming a continuous processing flow. The crushing mechanism 5 includes a feed hopper 51, which prevents material splashing during crushing and protects the operator's safety. The bottom side of the feed hopper 51 is fixedly connected to the top side of the mixing box 4, making the crushing mechanism 5 and the mixing box 4 integrated. The crushed material can directly enter the mixing box 4, reducing material conveying links. A connecting box 52 is fixedly connected to the rear side of the feed hopper 51. A protective box 53 is fixedly connected to the front side of the feed hopper 51, providing power to the crushing mechanism 5. Connecting rods 55 are rotatably connected to both ends of the connecting box 52, allowing the connecting rods 55 to rotate stably. The drive end of a second motor 54 is fixedly connected to the rear side of one of the connecting rods 55, enabling the connecting rod 55 to rotate after the second motor 54 is started. A crushing roller 56 is fixedly connected to the outside of the connecting rod 55. Rotation of the connecting rod 55 drives the crushing roller 56 to rotate, and the interaction between the crushing rollers 56 achieves material crushing. A gear 57 is fixedly connected to the front end of the connecting rod 55. The gear 57 is used to achieve linkage between the two connecting rods 55, ensuring the synchronous reverse rotation of the crushing rollers 56. The two gears 57 are meshed. This meshing connection causes the two gears 57 to rotate synchronously in opposite directions, thereby driving the two crushing rollers 56 to rotate in opposite directions, improving crushing efficiency.

[0038] Specifically, the crushing mechanism 5 is used to crush materials. The protective box 53 drives the crushing roller 56 to rotate through components such as the motor 54. The meshing of the two gears 57 causes the crushing roller 56 to rotate in opposite directions. This reverse rotation can generate stronger shearing and squeezing action on the material, improving crushing efficiency and crushing effect, and making the material particles more uniform. The feed hopper 51 can prevent material from splashing during the crushing process, which not only avoids material waste but also ensures a clean operating environment.

[0039] Please see the appendix Figure 5 - Appendix Figure 7 A top plate 58 is fixedly connected to the top of the mixing box 4, and a bottom plate 59 is slidably connected to the bottom side of the top plate 58. Both the top plate 58 and the bottom plate 59 have round holes. By sliding the top plate 58 and the bottom plate 59 in a staggered manner, the materials can be initially mixed. Force plates 510 are fixedly connected to both the front and rear sides of the top plate 58. The force plates 510 provide a point of application for external components, facilitating the sliding of the top plate 58. The top plate 58 provides support for the bottom plate 59, and its flat surface ensures the smooth sliding of the bottom plate 59.

[0040] Please see the appendix Figure 6 Appendix Figure 8 and attached Figure 9 Multiple discharge pipes 6 are fixedly connected to the bottom side of the mixing box 4. These discharge pipes 6 serve as the outlet channels for the mixed feed. Multiple pipes improve discharge efficiency and meet the needs of mass production. A reverse side is also provided inside the discharge pipes 6. An anti-blocking mechanism 7 is fixedly connected to the bottom end of the support frame 1. This mechanism is installed at the bottom of the support frame 1, corresponding to the position of the discharge pipes 6, and is specifically designed to prevent blockage of the discharge pipes 6. The anti-blocking mechanism 7 includes two upright plates 71. The bottom ends of the two upright plates 71 are fixedly connected to the front and rear ends of the bottom of the support frame 1, respectively, ensuring the stability of the anti-blocking mechanism 7 during operation. A protective column 72 is fixedly connected to the top side of one of the upright plates 71. A motor 73 is fixedly connected inside the protective column 72, providing power. A rotating shaft 74 is fixedly connected to the drive end of the motor 73, driving the rotating shaft 74 to rotate by starting the motor 73. Another vertical plate 71 is internally rotatably connected to a driven rod 75, which cooperates with the rotating shaft 74 to make the movement of the anti-blocking mechanism 7 more stable and ensure the synchronous action of the anti-blocking head 711.

[0041] Both the driven rod 75 and the rotating shaft 74 are fixedly connected to a fixed disk 76. The fixed disk 76 rotates with the rotating shaft 74 and the driven rod 75, driving the support column 77 to move, thus realizing the conversion of power. Support columns 77 are fixedly connected to adjacent sides of the two fixed disks 76. The support columns 77 perform circular motion when the fixed disks 76 rotate. A sliding frame 78 is slidably connected to the outside of the support column 77, converting the circular motion of the support column 77 into its own up-and-down reciprocating motion. A connecting plate 79 is fixedly connected to adjacent sides of the two sliding frames 78, synchronously transmitting the motion of the two sliding frames 78 to multiple sliding columns 710. Multiple sliding columns 710 are fixedly connected to the top side of the connecting plate 79, driving the multiple sliding columns 710 to slide synchronously during the up-and-down sliding process of the connecting plate 79. An anti-blocking head 711 is fixedly connected to the top side of the sliding column 710, inserted into the discharge pipe 6, clearing any possible blockages through up-and-down movement, ensuring smooth discharge.

[0042] Specifically, the anti-blocking head 711 is externally slidably connected to the inside of the discharge pipe 6. The sliding fit between the anti-blocking head 711 and the discharge pipe 6 serves to prevent blockage without affecting the normal discharge of materials. The discharge pipe 6 is used to discharge the mixed feed; multiple discharge pipes 6 can increase the discharge speed and meet the needs of large-scale production. The anti-blocking mechanism 7 prevents the discharge pipe 6 from becoming clogged. The motor 73 drives the rotating shaft 74 to rotate, and through the cooperation of components such as the fixed plate 76 and the support column 77, the rotational motion is converted into the up-and-down reciprocating motion of the connecting plate 79. This causes the connecting plate 79 to drive the sliding column 710 and the anti-blocking head 711 to move up and down, clearing any blockages that may form inside the discharge pipe 6 and ensuring smooth discharge.

[0043] Please see the appendix Figure 5 Appendix Figure 6 and attached Figure 8 A mixing mechanism 8 is rotatably connected inside the mixing box 4. The mixing mechanism 8 includes a rotating column 81, which is rotatably connected to the inside of the mixing box 4. The mixing box 4 restricts the rotation of the rotating column 81, allowing it to rotate stably. Both ends of the rotating column 81 are fixedly connected to driving wheels 82, which are welded together to provide support. A belt 83 is fitted around the driving wheel 82, serving as the power transmission medium. Driven wheels 84 are fixedly connected to the outside of both the rotating shaft 74 and the driven rod 75. The driven wheels 84 receive power from the rotating shaft 74 and the driven rod 75 and transmit it to the driving wheel 82 via the belt. The belt 83 is fitted inside the driven wheel 84, allowing the power from the driven wheel 84 to be transmitted to the driving wheel 82, thereby driving the rotating column 81 to rotate. Multiple stirring paddles 85 are fixedly connected to the outside of the rotating column 81. The stirring paddles 85 rotate with the rotating column 81 to stir the material in the mixing box 4, so that the material is mixed evenly.

[0044] A rotating frame 86 is fixedly connected to the outside of the rotating column 81. The rotating frame 86 rotates with the rotating column 81, scraping off the material adhering to the inner wall of the mixing box 4, thus avoiding material waste and uneven mixing. The outside of the rotating frame 86 is in contact with the inside of the mixing box 4, ensuring that the rotating frame 86 can effectively scrape off the material on the inner wall and improve the thoroughness of mixing. The top of the support frame 1 is fixedly connected to the outside of the mixing box 4 to prevent positional displacement caused by vibration generated by stirring. Both the front and rear ends of the rotating column 81 are fixedly connected to the driving disc 87, which rotates with the rotating column 81. A second belt 88 is sleeved on the outside of the driving disc 87, transmitting the rotational force to the second belt 88 through the driving disc 87. The inside of the second belt 88 is sleeved on the outside of the driven disc 89, transmitting the rotational force to the driven disc 89 through the second belt 88.

[0045] Specifically, the rotating column 81 rotates under power, driving the stirring paddle 85 to stir the material. The distribution of multiple stirring paddles 85 is optimized to cover all areas within the mixing chamber 4, ensuring uniform mixing of the material. The rotating frame 86 can scrape off the material on the inner wall of the mixing chamber 4, preventing material from drying and being wasted, while also ensuring thorough mixing. The belt 83 realizes the power transmission between the rotating shaft 74 and the rotating column 81. This transmission method has a simple structure, is easy to maintain, and ensures the normal operation of the mixing mechanism 8.

[0046] Please see the appendix Figure 5 Appendix Figure 6 and attached Figure 8 Side columns 811 are fixedly connected to both the front and rear sides of the mixing box 4. The side columns 811 provide mounting support for the driven discs 89, and are fixed symmetrically on both sides of the mixing box 4 to ensure force balance. Driven discs 89 are rotatably connected to the outside of the side columns 811, allowing them to rotate stably. Striking plates 810 are fixedly connected to the opposite sides of the two driven discs 89. The striking plates 810 rotate with the driven discs 89, striking the load-bearing plate 510 to vibrate the bottom plate 59, preventing material blockage. A collection frame 9 is slidably connected to the bottom end of the support frame 1. The collection frame 9 is used to collect feed discharged from the discharge pipe 6; the slidable connection facilitates removal and unloading, improving operational convenience.

[0047] Specifically, the side column 811 provides stable support for the driven plate 89, and its installation position ensures smooth rotation of the driven plate 89. The rotation of the driven plate 89 drives the striking plate 810 to strike the force plate 510, causing the bottom plate 59 to vibrate and preventing material blockage in the gap between the bottom plate 59 and the mixing chamber 4, ensuring smooth feeding. The collecting frame 9 is used to collect feed discharged from the discharge pipe 6. Its sliding design facilitates easy loading and unloading, and it can be easily pulled out for unloading when full, improving operational convenience. The outer surface of the striking plate 810 contacts the outer surface of the force plate 510, ensuring that the striking force of the striking plate 810 is effectively transmitted to the force plate 510, causing sufficient vibration in the bottom plate 59 to prevent blockage. The top of the mixing chamber 4 is slidably connected to the outside of the bottom plate 59, allowing the bottom plate 59 to open and close flexibly, facilitating control of the mixing chamber 4.

[0048] Working principle: Before feed processing, the feed raw materials to be processed are placed into the feeding frames 351 of the two feeding components 35. Under the guidance of the inclined plate 352, the raw materials fall onto the screening plate 353. After screening to remove large particles and impurities, they enter the discharge pipe 354. Then, the motor 31 is started. The motor 31 drives the limiting plate 33 to rotate through the rotating shaft 32, which in turn drives the transmission shaft 341 to rotate, and then drives the auger 342 to rotate. The auger 342 transports the material from the discharge pipe 354 into the feeding pipe 343 upward. At the same time, during the rotation of the limiting plate 33, the eccentric effect allows the limiting plate 33 to drive the transmission rod 36 to slide up and down. Then, through the transmission plate 37, the rubber column 39 slides up and down, causing the rubber column 39 to strike the feeding frame 351 to prevent blockage.

[0049] The material transported by the auger 342 enters the feed hopper 51. At this time, the second motor 54 is started, and the crushing process begins. The second motor 54 drives the connecting rod 55 and the crushing roller 56 to rotate. The two crushing rollers 56 rotate in opposite directions under the meshing action of the gear 57, crushing the material. The crushed material falls into the mixing box 4. After the raw material enters the mixing box 4, the third motor 73 is started, which then drives the rotating shaft 74 to rotate. At this time, the two sliding frames 78 are connected by the connecting plate 79, so that the fixed plate 76 drives the external support column 77 to rotate, which in turn drives the sliding column 710 to slide. Finally, it drives the anti-blocking head 711 to slide and push the material inside the discharge pipe 6, thereby achieving the anti-blocking effect. During the rotation of the rotating shaft 74 and the driven rod 75, the driven wheel 84 is driven to rotate, and then the driving wheel 82 is driven by the belt 83. The rotating column 81 is driven to rotate by the drive wheel 82. The rotating column 81 drives the stirring paddle 85 to rotate and mix the materials. The rotating frame 86 scrapes the materials off the box wall to ensure uniform mixing. At the same time, the rotating column 81 drives the driven plate 89 to rotate via the belt 88, which in turn drives the striking plate 810 to strike the force plate 510. The striking plates 810 are symmetrically and oppositely installed on the outside of the driven plate 89, so that the two force plates 510 drive the top plate 58 to slide back and forth, so that it cooperates with the bottom plate 59 to initially mix the materials.

[0050] 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 high-efficiency feed processing device for automated proportioning and mixing, comprising a support frame (1), multiple support frames (2), and a mixing box (4), characterized in that, The top of the support frame (2) is fixedly connected to a feeding mechanism (3), the top side of the feeding mechanism (3) is fixedly connected to a crushing mechanism (5), the bottom side of the mixing box (4) is fixedly connected to multiple discharge pipes (6), the bottom end of the support frame (1) is fixedly connected to an anti-blocking mechanism (7), and the inside of the mixing box (4) is rotatably connected to a mixing mechanism (8). Each of the multiple feeding mechanisms (3) includes a motor (31), which is externally fixedly connected to the bottom end of the support frame (2). The driving end of the motor (31) is fixedly connected to a limiting disk (33) via a rotating shaft (32). A transport component (34) is fixedly connected to the outside of the limiting disk (33). A feeding component (35) is fixedly connected to the top end of the support frame (2). A transmission rod (36) is slidably connected inside the limiting disk (33). A rubber column (39) is fixedly connected to the outside of the transmission rod (36) via a transmission plate (37). A limiting plate (38) is slidably connected to the outside of the transmission plate (37). Multiple weight sensors (310) are fixedly connected to the bottom end of the support frame (1).

2. The high-efficiency feed processing device for automated proportioning and mixing according to claim 1, characterized in that, The crushing mechanism (5) includes a feeding hopper (51), the bottom side of which is fixedly connected to the top side of the mixing box (4), a connecting box (52) is fixedly connected to the rear side of the feeding hopper (51), a protective box (53) is fixedly connected to the front side of the feeding hopper (51), a motor (54) is fixedly connected inside the connecting box (52), a connecting rod (55) is rotatably connected to both the left and right ends of the connecting box (52), a crushing roller (56) is fixedly connected to the outside of the connecting rod (55), a gear (57) is fixedly connected to the front end of the connecting rod (55), a top plate (58) is fixedly connected to the top of the mixing box (4), a bottom plate (59) is slidably connected to the bottom side of the top plate (58), and a force-bearing plate (510) is fixedly connected to both the front and rear sides of the top plate (58).

3. The high-efficiency feed processing device for automated proportioning and mixing according to claim 2, characterized in that, The anti-blocking mechanism (7) includes two upright plates (71). The bottom ends of the two upright plates (71) are respectively fixedly connected to the front and rear ends of the bottom of the support frame (1). A protective column (72) is fixedly connected to the top side of one of the upright plates (71). A motor (73) is fixedly connected inside the protective column (72). A rotating shaft (74) is fixedly connected to the drive end of the motor (73). A driven rod (75) is rotatably connected inside the other upright plate (71). The driven rod (75) and the rotating shaft (74) are connected to each other. Each part is fixedly connected to a fixed plate (76), and a support column (77) is fixedly connected to the adjacent side of each of the two fixed plates (76). A sliding frame (78) is slidably connected to the outside of the support column (77). A connecting plate (79) is fixedly connected to the adjacent side of the two sliding frames (78). A plurality of sliding columns (710) are fixedly connected to the top side of the connecting plate (79). An anti-blocking head (711) is fixedly connected to the top side of the sliding column (710). The anti-blocking head (711) is slidably connected to the inside of the discharge pipe (6).

4. The high-efficiency feed processing device for automated proportioning and mixing according to claim 3, characterized in that, The mixing mechanism (8) includes a rotating column (81), which is rotatably connected to the outside of the mixing box (4). Both ends of the rotating column (81) are fixedly connected to drive wheels (82), and a belt (83) is fitted around the drive wheels (82). Driven wheels (84) are fixedly connected to the outside of both the rotating shaft (74) and the driven rod (75). Multiple stirring paddles (85) are fixedly connected to the outside of the rotating column (81). A rotating frame (86) is fixedly connected to the outside. Both ends of the rotating column (81) are fixedly connected to the driving disc (87). The driving disc (87) is fitted with a belt (88). Both the front and rear sides of the mixing box (4) are fixedly connected to the side column (811). The side column (811) is rotatably connected to the outside of the driven disc (89). Both the far sides of the two driven discs (89) are fixedly connected to the striking plate (810). The bottom end of the support frame (1) is slidably connected to the collecting frame (9).

5. The high-efficiency feed processing device for automated proportioning and mixing according to claim 1, characterized in that, The transport assembly (34) includes a drive shaft (341), the limiting disc (33) is fixedly connected to the outside of the drive shaft (341), an auger (342) is fixedly connected to the outside of the drive shaft (341), and a feed pipe (343) is rotatably connected to the outside of the drive shaft (341).

6. The high-efficiency feed processing device for automated proportioning and mixing according to claim 5, characterized in that, The feeding assembly (35) includes a feeding frame (351), the bottom side of which is fixedly connected to the top of the support frame (2), an inclined plate (352) is fixedly connected to the top of the inside of the feeding frame (351), a screening plate (353) is fixedly connected to the bottom of the inside of the feeding frame (351), a discharge pipe (354) is fixedly connected to the bottom side of the feeding frame (351), and the outside of the discharge pipe (354) is fixedly connected to the inside of the left end of the feeding pipe (343).

7. The high-efficiency feed processing device for automated proportioning and mixing according to claim 6, characterized in that, The right side of the limiting plate (38) is fixedly connected to the left side of the feeding frame (351), and the top end of the rubber column (39) is in contact with the left end of the feeding frame (351).

8. The high-efficiency feed processing device for automated proportioning and mixing according to claim 4, characterized in that, The inside of belt one (83) is fitted over the outside of the driven wheel (84), the outside of the rotating frame (86) is in contact with the inside of the mixing box (4), the top of the support frame (1) is fixedly connected to the outside of the mixing box (4), and the inside of belt two (88) is fitted over the outside of the driven disc (89).

9. The high-efficiency feed processing device for automated proportioning and mixing according to claim 2, characterized in that, The drive end of the second motor (54) is fixedly connected to the rear side of one of the connecting rods (55), and the two gears (57) are meshed together.

10. The automated proportioning and mixing high-efficiency feed processing device according to claim 4, characterized in that, The outside of the striking plate (810) is in contact with the outside of the force plate (510), and the top of the mixing box (4) is slidably connected to the outside of the base plate (59).