A complete feed processing device for immune nutrition lactating sows

By designing the continuous feeding and discharging structure of the storage trough plate and the sealing plate, combined with the stirring structure, the continuity problem of the mixing process in the processing of complete feed is solved, the efficient and continuous mixing of raw materials is achieved, and the work efficiency is improved.

CN117339446BActive Publication Date: 2025-09-23ANCHI (SHANDONG) ANIMAL NUTRITION RES INST CO LTD
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Patent Information

Application Number
CN202311519343.4
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2023-11-14
Publication Date
2025-09-23
Estimated Expiration
2043-11-14

AI Technical Summary

Technical Problem

During the processing of complete feed, the continuity of the mixing process is poor, resulting in frequent equipment shutdowns, low work efficiency, and the inability to achieve continuous feed mixing.

Method used

A processing device including a mixing box and a batching structure is adopted. The continuous feeding and discharging of raw materials are realized through the design of the storage trough plate and the sealing plate. The raw materials are fully mixed in combination with the stirring structure. The power mechanism is used to drive the sealing plate and the partition to rotate synchronously to realize the continuous processing of raw materials in multiple independent chambers.

Benefits of technology

It improves the continuity of raw material processing, avoids equipment shutdown due to feeding and discharging needs, improves work efficiency, and ensures uniform mixing of raw materials in independent chambers, avoiding the phenomenon of stirring structure failure.

✦ Generated by Eureka AI based on patent content.

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Abstract

The present invention relates to the technical field of feed processing, in particular to a complete feed processing device for immunonutrition lactating sows, which comprises a mixing box and a batching structure, wherein the batching structure can introduce a variety of feeds into the mixing box in proportion, and the mixing box is used to continuously mix the feeds; the mixing box is composed of a storage trough plate and a sealing plate, the storage trough plate and the sealing plate are both annular in shape, and the notch of the storage trough plate faces the axial direction of the storage trough plate, the notch of the storage trough plate is annular in shape, and the sealing plate is sealed on the notch of the storage trough plate; by adopting a continuous mixing method to process raw materials, a continuous feeding and discharging working mode of raw materials can be realized, thereby improving the continuity of raw material processing, avoiding equipment shutdown due to feeding and discharging needs, thereby avoiding time waste and improving work efficiency.
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Description

Technical Field

[0001] The invention relates to the technical field of feed processing, in particular to a complete feed processing device for immunonutrition lactating sows. Background Art

[0002] Complete feed refers to a compound feed consisting of four parts: protein feed, energy feed, roughage and additives. This feed can supplement special nutrients with pharmacological effects, stimulate immune cells in a specific way, enhance immune response function, maintain normal and moderate immune response, thereby achieving the purpose of immunonutrition. In addition, when feeding lactating sows, this feed can shorten the breeding cycle, reduce breeding costs and reduce risks.

[0003] During the processing of complete feed, it needs to go through multiple processes such as material selection, powdering, batching, mixing, clinkering, and disinfection. In the mixing process, various raw materials need to be introduced into the mixer in proportion for mixing. When the raw materials are mixed, the mixer is turned off and the raw materials are discharged. Then, the raw materials to be mixed are re-introduced into the mixer in proportion. This mixing method requires repeated discharge and feeding after each mixing is completed. During this process, the equipment needs to be shut down. Therefore, the continuity of the feed mixing process is poor, and continuous mixing of the feed cannot be achieved, resulting in a lot of time waste and low work efficiency. Summary of the Invention

[0004] In order to solve the above technical problems, the present invention provides a complete feed processing device for immunonutrition lactating sows.

[0005] In order to achieve the above object, the technical solution adopted by the present invention is:

[0006] A complete feed processing device for immunonutrition lactating sows, comprising a mixing box and a batching structure, wherein the batching structure can introduce a variety of feeds into the mixing box in proportion, and the mixing box is used to continuously mix the feeds;

[0007] The mixing box is composed of a material storage trough plate and a sealing plate, the material storage trough plate and the sealing plate are both annular in shape, and the notch of the material storage trough plate faces the axial direction of the material storage trough plate, the notch of the material storage trough plate is annular in shape, the sealing plate is sealed on the notch of the material storage trough plate, and the sealing plate can rotate on the material storage trough plate, a feeding channel for feeding is connected on the side wall of the material storage trough plate, and the feeding channel is located below the axis of the material storage trough plate, and a discharge channel for discharging is connected at the bottom of the material storage trough plate, a plurality of first partitions are provided in the material storage trough plate, the plurality of first partitions divide the internal space of the material storage trough plate into a plurality of independent chambers, each independent chamber is provided with a stirring structure, the first partition slides on the inner wall of the material storage trough plate, and the first partition is fixed on the sealing plate;

[0008] The material storage trough plate and the sealing plate are coaxial, and the axes thereof are horizontal. The material storage trough plate is provided with a power mechanism for driving the sealing plate to rotate.

[0009] Preferably, the arc distance between the feed channel and the discharge channel in the circumferential direction of the storage trough plate is greater than the arc distance between two adjacent first partitions in the circumferential direction of the storage trough plate, thereby preventing the feed channel and the discharge channel from being connected through the independent chamber between the two first partitions.

[0010] Preferably, the stirring structure includes a rotating shaft and a plurality of stirring blades mounted on the rotating shaft, a closed chamber is provided in the middle of the first partition, the end surface of the closed chamber is perpendicular to the axis of the rotating shaft, a universal joint is provided for the internal rotation of the closed chamber, the end of the rotating shaft passes through the end surface of the closed chamber and is connected to the universal joint, and the rotating shaft rotates on the closed chamber;

[0011] Wherein, a transmission mechanism is provided on the sealing plate, and the transmission mechanism is used to drive the rotating shaft to rotate.

[0012] Preferably, the transmission mechanism includes two chassis located on the left and right sides of the storage tank plate, and the chassis divide the internal space of the storage tank plate, so that the two chassis and the plurality of first partitions together divide the internal space of the storage tank plate into a plurality of independent chambers, and the spaces of the plurality of independent chambers are consistent in size;

[0013] The interior of the chassis is hollow, and a transmission shaft is rotatably provided in the chassis. Both ends of the transmission shaft are provided with universal joints of the same structure, and a closed bin of the same structure is provided on the outside of the universal joint. The universal joint on the transmission shaft is connected to the rotating shaft, thereby making multiple rotating shafts and two transmission shafts transmission-connected. A worm gear is provided in the middle of the transmission shaft, and a worm is provided on the worm gear. The axial direction of the worm passes through the center of the storage trough plate, and the end of the worm facing the center of the storage trough plate passes through the chassis and the sealing plate and extends to the inside of the sealing plate. The worm is rotatably connected to the chassis and the sealing plate, and the end of the worm on the inside of the sealing plate is provided with a first transmission wheel;

[0014] A first transmission ring is provided on the inner side of the sealing plate, the first transmission ring is connected to the first transmission wheel, the first transmission ring is coaxial with the material storage trough plate, and the first transmission ring and the material storage trough plate are fixedly connected through the first support plate.

[0015] Preferably, a three-way pipe is provided on the inner side of the sealing plate, and both output ends of the three-way pipe are downwardly connected and installed on the material storage tank plate, and the input end of the three-way pipe is connected to an external air pump.

[0016] Preferably, the batching structure comprises a drum, the axis of the drum is horizontal, the bottom of the drum is connected to a discharge pipe, the discharge pipe is connected to a feed channel, the top of the drum is connected to a distribution bin, the top of the distribution bin is connected to multiple feed pipes;

[0017] A turntable is provided for rotation inside the drum, the turntable is coaxial with the drum, a material guide trough is provided on the circumferential outer wall of the turntable, the material guide trough is in the shape of annular, the drum blocks the internal space of the material guide trough, a plurality of annular partitions are provided in the material guide trough, the annular partitions are coaxial with the drum, the plurality of annular partitions divide the space in the material guide trough into a plurality of storage spaces, each of the storage spaces is in the shape of annular, a plurality of second partitions are provided in each storage space, the second partitions in two adjacent storage spaces are coplanar, and the adjacent plurality of second partitions in the storage space divide the storage space into batching spaces, since the distances between two adjacent annular partitions are unequal, the batching spaces in the plurality of storage spaces at corresponding positions are of different sizes, when the batching space is filled with raw materials, the raw materials can be proportioned due to the different sizes of the spaces;

[0018] A plurality of third partitions are provided in the distribution bin, which divide the internal space of the distribution bin, so that the multiple spaces separated in the distribution bin correspond to the multiple storage spaces in the material guide trough, and the multiple feed pipes correspond one-to-one to the multiple spaces separated in the distribution bin and are interconnected.

[0019] Preferably, the third partition can slide in the material distribution bin along the axial direction of the turntable, and the annular partition can slide in the material guide trough along the axial direction of the turntable, so as to adjust the size of the material distribution space and realize the adjustment of the raw material ratio. The second partition is composed of two single pieces that are superimposed on each other and slidably connected. The two single pieces are respectively fixed on the side walls of two adjacent annular partitions, so that when the annular partition moves, the length of the second partition composed of the two annular partitions can be adjusted, and the independence of the material distribution space is maintained;

[0020] An annular groove is provided on the circumferential outer wall of the annular partition, and a clamping edge is provided on the bottom of the third partition. The clamping edge is slidably clamped in the annular groove, so that when the annular partition moves, the third partition can be driven to move;

[0021] A threaded rod is rotatably provided on the side wall of the annular partition, and the end of the threaded rod passes through the side wall of the turntable and extends out. The threaded rod is threadedly connected to the turntable, and the threaded rod and the turntable are locked by a lock nut.

[0022] Preferably, the power mechanism includes a first motor fixed on the material storage tank plate and a second transmission ring fixed on the sealing plate, the output end of the first motor is provided with a second transmission wheel, and the second transmission wheel is in transmission connection with the second transmission ring;

[0023] A second support plate is fixed on the side wall of the discharge pipe, a second motor is fixed on the second support plate, and an output end of the second motor is transmission-connected to the turntable.

[0024] Compared with the prior art, the beneficial effects of the present invention are as follows: by adopting a continuous mixing method to process the raw materials, the continuous feeding and discharging working mode of the raw materials can be realized, the continuity of the raw material processing is improved, and the equipment shutdown due to the feeding and discharging needs is avoided, thereby avoiding the waste of time and improving work efficiency. At the same time, when the raw materials move in the annular storage trough plate, due to the influence of gravity, the raw materials can move to different positions in the independent chamber in the storage trough plate, so that the stirring structure can perform comprehensive mixing processing on the raw materials, avoiding the raw materials from accumulating at a certain position in the independent chamber and not moving, and the stirring structure cannot stir them. BRIEF DESCRIPTION OF THE DRAWINGS

[0025] In order to more clearly illustrate the embodiments of the present invention or the technical solutions in the prior art, the following briefly introduces the drawings required for use in the embodiments or the description of the prior art. Obviously, the drawings described below are only some embodiments recorded in the present invention. For ordinary technicians in this field, other drawings can be obtained based on these drawings without paying any creative work.

[0026] Figure 1 It is a structural schematic diagram of the present invention;

[0027] Figure 2 yes Figure 1 Schematic diagram of the structure of the middle storage tank plate;

[0028] Figure 3 yes Figure 2 Schematic diagram of the cross-sectional top view of the middle storage tank plate;

[0029] Figure 4 yes Figure 3 Schematic diagram of the structure of the middle storage tank plate and the sealing plate;

[0030] Figure 5 yes Figure 1 Schematic diagram of the internal structure of the middle storage tank plate;

[0031] Figure 6 yes Figure 1 A schematic diagram of the enlarged structure of the ingredients in the middle;

[0032] Figure 7 yes Figure 6 Schematic diagram of the enlarged structure of the turntable;

[0033] Figure 8 yes Figure 6 A schematic diagram of the enlarged structure of the center silo viewed from above;

[0034] Markings in the accompanying drawings: 1. Storage trough plate; 2. Sealing plate; 3. Feed channel; 4. Discharge channel; 5. First partition; 6. Rotating shaft; 7. Stirring blade; 8. Closed bin; 9. Chassis; 10. Drive shaft; 11. Worm gear; 12. Worm; 13. First transmission wheel; 14. First transmission ring; 15. First support plate; 16. T-piece; 17. Second transmission ring; 18. First motor; 19. Second transmission wheel; 20. Drum; 21. Discharge pipe; 22. Distribution bin; 23. Feed pipe; 24. Turntable; 25. Annular partition; 26. Second partition; 27. Third partition; 28. Threaded rod; 29. ​​Lock nut; 30. Second motor; 31. Second support plate. DETAILED DESCRIPTION

[0035] The technical solutions in the embodiments of the present invention will be clearly and completely described below in conjunction with the drawings in the embodiments of the present invention. Obviously, the described embodiments are only part of the embodiments of the present invention, rather than all the embodiments.

[0036] In the description of the present invention, it should be noted that the orientations or positional relationships indicated by “center”, “up”, “down”, “left”, “right”, “vertical”, “horizontal”, “inside” and “outside” are based on the orientations or positional relationships shown in the accompanying drawings, and are only for the convenience of describing the present invention and simplifying the description, and do not indicate or imply that the device or element referred to must have a specific orientation, be constructed and operated in a specific orientation, and therefore cannot be understood as a limitation on the present invention.

[0037] In the description of the present invention, it should be noted that, unless otherwise expressly specified or limited, the terms "installed," "connected," and "connected" should be understood in a broad sense. For example, they can refer to fixed connections, detachable connections, or integrated connections; they can refer to mechanical connections or electrical connections; they can refer to direct connections or indirect connections through an intermediate medium, or they can refer to internal connections between two components. Those skilled in the art will understand the specific meanings of the above terms in the present invention based on the specific circumstances. This embodiment is written in a progressive manner.

[0038] like Figures 1 to 5 As shown, the present invention provides a complete feed processing device for immunonutrition lactating sows, comprising a mixing box and a batching structure, wherein the batching structure can introduce a variety of feeds into the mixing box in proportion, and the mixing box is used to continuously mix the feeds;

[0039] The mixing box is composed of a storage trough plate 1 and a sealing plate 2. The storage trough plate 1 and the sealing plate 2 are both annular in shape, and the notch of the storage trough plate 1 faces the axial direction of the storage trough plate 1. The notch of the storage trough plate 1 is annular in shape. The sealing plate 2 is sealed on the notch of the storage trough plate 1, and the sealing plate 2 can rotate on the storage trough plate 1. A feeding channel 3 for feeding is connected on the side wall of the storage trough plate 1, and the feeding channel 3 is located below the axis of the storage trough plate 1. A discharge channel 4 for discharging is connected at the bottom of the storage trough plate 1. A plurality of first partitions 5 are provided in the storage trough plate 1. The plurality of first partitions 5 divide the internal space of the storage trough plate 1 into a plurality of independent chambers. A stirring structure is provided in each independent chamber. The first partition 5 slides on the inner wall of the storage trough plate 1, and the first partition 5 is fixed on the sealing plate 2.

[0040] The material storage trough plate 1 and the sealing plate 2 are coaxial, and their axes are horizontal. The material storage trough plate 1 is provided with a power mechanism for driving the sealing plate 2 to rotate.

[0041] Specifically, the batching structure is connected to the feed channel 3, so that a variety of raw materials are introduced into the feed channel 3 in proportion through the batching structure and poured into the storage tank plate 1 through the feed channel 3. The storage tank plate 1 is annular in shape, and its notch is facing the axial direction of the storage tank plate 1. Therefore, the circumferential outer wall and front and rear side walls of the storage tank plate 1 are sealed, and the notch is located on the circumferential inner wall of the storage tank plate 1. The sealing plate 2 is sealed on the notch of the storage tank plate 1, so that the sealing plate 2 and the storage tank plate 1 form a closed chamber, and the shape of the closed chamber is annular, and multiple first partitions 5 divide the closed chamber into multiple independent chambers. When the sealing plate 2 rotates, the sealing plate 2 can drive multiple first partitions 5 and multiple groups of stirring structures to rotate synchronously. Since the feed channel 3 is located on the storage tank plate 1 The lower side of the side wall and the discharge channel 4 are located at the bottom of the storage tank plate 1. Therefore, when the raw materials are poured into the storage tank plate 1, the sealing plate 2 rotates, and the rotation direction of the sealing plate 2 rotates along the farthest distance between the feeding channel 3 and the discharge channel 4 on the storage tank plate 1. When the raw materials move to the lower side of the storage tank plate 1, the raw materials are located on the side of the independent chamber away from the axis of the storage tank plate 1. When the raw materials move to the upper side of the storage tank plate 1, the raw materials are located on the side of the independent chamber close to the axis of the storage tank plate 1. That is, the raw materials can be located at different positions in the independent chamber due to the influence of gravity. Combined with the stirring effect of the stirring structure on the raw materials, the raw materials can be fully mixed to avoid the raw materials accumulating at a certain position in the independent chamber and not moving, so that the stirring structure cannot stir them.

[0042] During use, multiple raw materials are proportioned by the batching structure and introduced into the independent chamber on the lower side of the storage tank plate 1 through the feed channel 3. The sealing plate 2, multiple first partitions 5 and multiple groups of stirring structures are driven to rotate synchronously by the power mechanism. The independent chamber composed of two adjacent first partitions 5 can drive the raw materials to move in the storage tank plate 1, and the stirring structure can stir the raw materials at the same time. Since each independent chamber moves to the position of the feed channel 3, the feed channel 3 can continuously discharge materials into multiple independent chambers, so that the raw materials can be continuously supplied to the storage tank plate 1. When the raw materials in the independent chamber move to the position of the discharge channel 4, the raw material mixing is completed, and the raw materials are naturally discharged through the discharge channel 4. The raw materials in each independent chamber can be naturally discharged when passing through the discharge channel 4, thereby achieving the purpose of continuous discharge. At this time, the storage tank plate 1 can realize continuous feeding and discharging, thereby realizing continuous mixing of raw materials, avoiding the equipment shutdown phenomenon caused by feeding and discharging needs in the traditional method.

[0043] Preferably, Figure 1 As shown, the arc distance between the feed channel 3 and the discharge channel 4 in the circumferential direction of the storage trough plate 1 is greater than the arc distance between the two adjacent first partitions 5 in the circumferential direction of the storage trough plate 1, thereby preventing the feed channel 3 and the discharge channel 4 from being connected through the independent chamber between the two first partitions 5.

[0044] Specifically, by limiting the distance between the feed channel 3 and the discharge channel 4, the feed channel 3 and the discharge channel 4 cannot be connected through an independent chamber, that is, the raw materials discharged into the storage trough plate 1 through the feed channel 3 cannot be directly discharged through the discharge channel 4, so that the raw materials can be mixed normally in the storage trough plate 1.

[0045] Preferably, Figure 5 As shown, the stirring structure includes a rotating shaft 6 and a plurality of stirring blades 7 mounted on the rotating shaft 6. A closed chamber 8 is provided in the middle of the first partition plate 5. The end surface of the closed chamber 8 is perpendicular to the axis of the rotating shaft 6. A universal joint is provided inside the closed chamber 8 for rotation. The end of the rotating shaft 6 passes through the end surface of the closed chamber 8 and is connected to the universal joint. The rotating shaft 6 rotates on the closed chamber 8.

[0046] A transmission mechanism is provided on the sealing plate 2 , and the transmission mechanism is used to drive the rotating shaft 6 to rotate.

[0047] Specifically, the line connecting the midpoint of the rotating shaft 6 and the center of the storage trough plate 1 is perpendicular to the axis of the rotating shaft 6. When the first partition 5 follows the circular motion of the sealing plate 2, the rotating shaft 6, the stirring blade 7, the closed bin 8 and the universal joint move synchronously. Since multiple rotating shafts 6 are connected by multiple universal joints, when one rotating shaft 6 rotates, multiple rotating shafts 6 can rotate synchronously. The transmission mechanism can transmit power to the rotating shaft 6, so that the rotating shaft 6 drives the multiple stirring blades 7 thereon to rotate, and the multiple stirring blades 7 mix the raw materials. The closed bin 8 can isolate and protect the universal joint.

[0048] Preferably, Figure 5 As shown, the transmission mechanism includes two chassis 9 located on the left and right sides of the storage tank plate 1. The chassis 9 divides the internal space of the storage tank plate 1, so that the two chassis 9 and the plurality of first partitions 5 together divide the internal space of the storage tank plate 1 into a plurality of independent chambers, and the space sizes of the plurality of independent chambers are the same;

[0049] The interior of the chassis 9 is hollow, and a transmission shaft 10 is rotatably provided in the chassis 9. Both ends of the transmission shaft 10 are provided with universal joints of the same structure, and a closed bin 8 of the same structure is provided on the outside of the universal joint. The universal joint on the transmission shaft 10 is connected to the rotating shaft 6, thereby making multiple rotating shafts 6 and two transmission shafts 10 transmission connected. A worm gear 11 is provided in the middle of the transmission shaft 10, and a worm 12 is provided on the worm gear 11. The axial direction of the worm 12 passes through the center of the storage trough plate 1, and the end of the worm 12 facing the center of the storage trough plate 1 passes through the chassis 9 and the closing plate 2 and extends to the inside of the closing plate 2. The worm 12 is rotatably connected to the chassis 9 and the closing plate 2, and the end of the worm 12 on the inside of the closing plate 2 is provided with a first transmission wheel 13;

[0050] A first transmission ring 14 is provided on the inner side of the sealing plate 2 , the first transmission ring 14 is transmission-connected to the first transmission wheel 13 , the first transmission ring 14 is coaxial with the storage trough plate 1 , and the first transmission ring 14 and the storage trough plate 1 are fixedly connected via a first support plate 15 .

[0051] Specifically, when the sealing plate 2 rotates, the sealing plate 2 can drive the first transmission wheel 13 to roll on the first transmission ring 14 through the worm 12. At this time, the first support plate 15 supports the first transmission ring 14, and the first transmission wheel 13 drives the worm 12 to rotate. The worm 12 drives the worm wheel 11 and the transmission shaft 10 to rotate, thereby driving the rotating shaft 6 to rotate through the transmission shaft 10, thereby achieving the purpose of providing power for the stirring structure.

[0052] Preferably, Figure 3 As shown, a three-way pipe 16 is provided inside the sealing plate 2. Both output ends of the three-way pipe 16 are downwardly connected and installed on the material storage tank plate 1, and the input end of the three-way pipe 16 is connected to an external air pump.

[0053] Specifically, the position of the three-way pipe 16 is close to the discharge channel 4. When the raw materials in the independent chamber move to the position of the discharge channel 4, the external air pump can blow air into the independent chamber through the three-way pipe 16, thereby helping the raw materials to be quickly discharged through the discharge channel 4, avoiding raw material residue or the inability to discharge the raw materials in the independent chamber due to the continuous rotation of the sealing plate 2.

[0054] Preferably, Figures 6 to 8 As shown, the batching structure includes a drum 20, the axis of the drum 20 is horizontal, the bottom of the drum 20 is connected to a discharge pipe 21, the discharge pipe 21 is connected to the feed channel 3, the top of the drum 20 is connected to a distribution bin 22, and the top of the distribution bin 22 is connected to multiple feed pipes 23;

[0055] A turntable 24 is provided for rotation inside the drum 20, and the turntable 24 is coaxial with the drum 20. A material guide trough is provided on the circumferential outer wall of the turntable 24. The material guide trough is in the shape of annular, and the drum 20 blocks the internal space of the material guide trough. A plurality of annular partitions 25 are provided in the material guide trough, and the annular partitions 25 are coaxial with the drum 20. The plurality of annular partitions 25 divide the space in the material guide trough into a plurality of storage spaces, each of which is in the shape of annular. A plurality of second partitions 26 are provided in each storage space, and the second partitions 26 in two adjacent storage spaces are coplanar, and the adjacent plurality of second partitions 26 in the storage space divide the storage space into batching spaces. Since the distances between two adjacent annular partitions 25 are unequal, the batching spaces in the plurality of storage spaces at corresponding positions are of different sizes. When the batching space is filled with raw materials, the raw materials can be proportioned due to the different sizes of the spaces.

[0056] A plurality of third partitions 27 are provided in the distribution bin 22, and the plurality of third partitions 27 divide the internal space of the distribution bin 22, so that the plurality of spaces separated in the distribution bin 22 correspond to the plurality of storage spaces in the material guide trough, and the plurality of feed pipes 23 correspond one-to-one to the plurality of spaces separated in the distribution bin 22 and are interconnected.

[0057] Specifically, multiple first partitions 5 and multiple rotating shafts 6 divide the interior of the guide trough into multiple rows of batching spaces, and the multiple rows of batching spaces are evenly distributed along the circumferential direction of the turntable 24. Each row of batching spaces is composed of multiple batching spaces. Since the distances between two adjacent first partitions 5 are not equal, the sizes of each row of batching spaces are not equal. In this way, when the batching spaces are filled with raw materials, the proportions of various raw materials in each row of batching spaces are consistent with the prescribed proportions, thereby realizing the automatic proportioning function of the raw materials. The third partition 27 separates the internal space of the feed pipe 23, which enables each storage space to correspond to each separated space in the sub-bin 22. Space, when batching, multiple raw materials are introduced into each batching space of the 2 guide troughs through multiple feeding pipes 23 and multiple spaces separated in the distribution bin 22. Each row of batching space automatically proportions the raw materials, and the turntable 24 is rotated. The turntable 24 can carry the proportioned raw materials to the position of the discharge pipe 21, and the raw materials automatically fall into the feed channel 3 through the discharge pipe 21, thereby realizing the proportioning and conveying of the raw materials. Since the turntable 24 can realize continuous proportioning of the raw materials when it rotates continuously, the raw materials can be continuously batched and fed, which is convenient for it to meet the mixing processing needs inside the storage tank plate 1.

[0058] Preferably, Figure 7 and Figure 8 As shown, the third partition 27 can slide in the distribution bin 22 along the axial direction of the turntable 24, and the annular partition 25 can slide in the guide trough along the axial direction of the turntable 24, so as to adjust the size of the batching space and realize the adjustment of the raw material ratio. The second partition 26 is composed of two single pieces that are superimposed on each other and slidably connected. The two single pieces are respectively fixed on the side walls of two adjacent annular partitions 25. Therefore, when the annular partition 25 moves, the length of the second partition 26 composed of the two annular partitions 25 can be adjusted, and the independence of the batching space is maintained.

[0059] An annular groove is formed on the outer circumferential wall of the annular partition 25, and a clamping edge is provided on the bottom of the third partition 27. The clamping edge is slidably mounted in the annular groove, so that when the annular partition 25 moves, the third partition 27 can be driven to move.

[0060] A threaded rod 28 is rotatably provided on the side wall of the annular partition 25 . The end of the threaded rod 28 passes through the side wall of the turntable 24 and extends out. The threaded rod 28 is threadedly connected to the turntable 24 and is locked to the turntable 24 by a lock nut 29 .

[0061] Specifically, in the material guide trough, the threaded rod 28 on the annular baffle 25 close to the inner wall of the material guide trough only needs to pass through the turntable 24, while the threaded rod 28 on the annular baffle 25 away from the inner wall of the material guide trough needs to pass through multiple adjacent annular baffles 25 and the turntable 24 before it can extend to the outside of the turntable 24. At this time, the threaded rod 28 on the annular baffle 25 maintains a sliding connection with multiple adjacent annular baffles 25. When the lock nut 29 is loosened and the threaded rod 28 is rotated, since the threaded rod 28 is threadedly connected to the turntable 24, the threaded rod 28 can pull the annular baffle 25 to move in the material guide trough, thereby adjusting the size of the material space. When the annular baffle 25 moves, due to the action of the annular groove on it and the clamping edge at the bottom of the third baffle 27, the annular baffle 25 can drive the third baffle 27 to move synchronously. When the turntable 24 rotates, the annular baffle 25 follows the synchronous rotation, and the clamping edge at the bottom of the third baffle 27 slides in the annular groove.

[0062] Preferably, Figure 3 and Figure 6 As shown, the power mechanism includes a first motor 18 fixed on the storage tank plate 1 and a second transmission ring 17 fixed on the sealing plate 2. The output end of the first motor 18 is provided with a second transmission wheel 19, and the second transmission wheel 19 is transmission-connected to the second transmission ring 17;

[0063] A second support plate 31 is fixed on the side wall of the discharge pipe 21 , a second motor 30 is fixed on the second support plate 31 , and an output end of the second motor 30 is transmission-connected to the turntable 24 .

[0064] Specifically, the first motor 18 can drive the second transmission ring 17 to rotate through the second transmission wheel 19 , thereby driving the sealing plate 2 to rotate. The second motor 30 can drive the turntable 24 to rotate, and the second support plate 31 supports the second motor 30 .

[0065] The above is only a preferred embodiment of the present invention. It should be pointed out that for ordinary technicians in this technical field, several improvements and modifications can be made without departing from the technical principles of the present invention. These improvements and modifications should also be regarded as the scope of protection of the present invention.

Claims

1. A complete feed processing device for lactating sows with immune nutrition, characterized in that: It includes a mixing box and a batching structure, wherein the batching structure can introduce a variety of feeds into the mixing box in proportion, and the mixing box is used to continuously mix the feeds; The mixing box is composed of a material storage tank plate (1) and a sealing plate (2). The material storage tank plate (1) and the sealing plate (2) are both annular in shape, and the notch of the material storage tank plate (1) faces the axial direction of the material storage tank plate (1). The notch of the material storage tank plate (1) is annular in shape. The sealing plate (2) is sealed on the notch of the material storage tank plate (1), and the sealing plate (2) can rotate on the material storage tank plate (1). A feeding channel (3) for feeding is provided on the side wall of the material storage tank plate (1), and the feeding channel (3) is provided. The channel (3) is located below the axis of the material storage tank plate (1), and the bottom of the material storage tank plate (1) is connected to a discharge channel (4) for discharging material. A plurality of first partitions (5) are provided in the material storage tank plate (1), and the plurality of first partitions (5) divide the internal space of the material storage tank plate (1) into a plurality of independent chambers. A stirring structure is provided in each independent chamber. The first partitions (5) slide on the inner wall of the material storage tank plate (1), and the first partitions (5) are fixed on the sealing plate (2); The material storage tank plate (1) and the sealing plate (2) are coaxial, and their axes are horizontal. The material storage tank plate (1) is provided with a power mechanism for driving the sealing plate (2) to rotate; The arc distance between the feed channel (3) and the discharge channel (4) in the circumferential direction of the storage tank plate (1) is greater than the arc distance between two adjacent first partitions (5) in the circumferential direction of the storage tank plate (1), thereby preventing the feed channel (3) and the discharge channel (4) from communicating through the independent chamber between the two first partitions (5); The stirring structure comprises a rotating shaft (6) and a plurality of stirring blades (7) mounted on the rotating shaft (6); a closed chamber (8) is provided in the middle of the first partition (5); the end surface of the closed chamber (8) is perpendicular to the axis of the rotating shaft (6); a universal joint is provided inside the closed chamber (8); the end of the rotating shaft (6) passes through the end surface of the closed chamber (8) and is connected to the universal joint; the rotating shaft (6) rotates on the closed chamber (8); Wherein, a transmission mechanism is provided on the sealing plate (2), and the transmission mechanism is used to drive the rotating shaft (6) to rotate; The batching structure comprises a drum (20), the axis of the drum (20) being horizontal, the bottom of the drum (20) being connected to a discharge pipe (21), the discharge pipe (21) being connected to a feed channel (3), the top of the drum (20) being connected to a distribution bin (22), the top of the distribution bin (22) being connected to a plurality of feed pipes (23); A turntable (24) is provided inside the drum (20) for rotation. The turntable (24) is coaxial with the drum (20). A material guide groove is provided on the circumferential outer wall of the turntable (24). The material guide groove is annular in shape. The drum (20) blocks the internal space of the material guide groove. A plurality of annular partitions (25) are provided inside the material guide groove. The annular partitions (25) are coaxial with the drum (20). The plurality of annular partitions (25) divide the space inside the material guide groove into a plurality of storage spaces. Each storage space is annular in shape. A plurality of second partitions (26) are provided inside each storage space. The second partitions (26) in two adjacent storage spaces are coplanar, and the adjacent plurality of second partitions (26) in the storage space divide the storage space into batching spaces. Since the distances between the two adjacent annular partitions (25) are unequal, the batching spaces in the corresponding plurality of storage spaces are unequal in size. When the batching spaces are filled with raw materials, the raw materials can be batched in proportion due to the unequal space sizes. A plurality of third partitions (27) are provided in the distribution bin (22), and the plurality of third partitions (27) divide the internal space of the distribution bin (22), so that the plurality of spaces divided in the distribution bin (22) correspond to the plurality of storage spaces in the guide trough, and the plurality of feed pipes (23) correspond one-to-one to the plurality of spaces divided in the distribution bin (22) and are interconnected; The third partition (27) can slide in the material distribution bin (22) along the axial direction of the turntable (24), and the annular partition (25) can slide in the material guide trough along the axial direction of the turntable (24), thereby adjusting the size of the material distribution space and realizing the adjustment of the raw material ratio. The second partition (26) is composed of two single pieces that are superimposed on each other and slidably connected. The two single pieces are respectively fixed on the side walls of two adjacent annular partitions (25). Therefore, when the annular partition (25) moves, the length of the second partition (26) composed of the two annular partitions (25) can be adjusted, and the independence of the material distribution space can be maintained. An annular groove is provided on the circumferential outer wall of the annular partition (25), and a clamping edge is provided on the bottom of the third partition (27). The clamping edge is slidably clamped in the annular groove, so that when the annular partition (25) moves, the third partition (27) can be driven to move; A threaded rod (28) is rotatably provided on the side wall of the annular partition (25), the end of the threaded rod (28) passes through the side wall of the turntable (24) and extends out, the threaded rod (28) is threadedly connected to the turntable (24), and the threaded rod (28) and the turntable (24) are locked by a lock nut (29); The power mechanism comprises a first motor (18) fixed on the material storage tank plate (1) and a second transmission ring (17) fixed on the sealing plate (2); the output end of the first motor (18) is provided with a second transmission wheel (19), and the second transmission wheel (19) is in transmission connection with the second transmission ring (17); A second support plate (31) is fixed on the side wall of the discharge pipe (21), a second motor (30) is fixed on the second support plate (31), and an output end of the second motor (30) is transmission-connected to the turntable (24); The first motor (18) can drive the second transmission ring (17) to rotate via the second transmission wheel (19), thereby driving the sealing plate (2) to rotate. The second motor (30) can drive the rotating disk (24) to rotate. The second support plate (31) supports the second motor (30).

2. The complete feed processing device for lactating sows with immune nutrition according to claim 1, characterized in that: The transmission mechanism comprises two chassis (9) located on the left and right sides of the interior of the material storage tank plate (1), and the chassis (9) separates the interior space of the material storage tank plate (1), so that the two chassis (9) and the plurality of first partitions (5) together separate the interior space of the material storage tank plate (1) into a plurality of independent chambers, and the spaces of the plurality of independent chambers are of the same size; The chassis (9) is hollow inside, and a transmission shaft (10) is rotatably provided in the chassis (9). Both ends of the transmission shaft (10) are provided with universal joints of the same structure, and a closed chamber (8) of the same structure is provided on the outer side of the universal joint. The universal joint on the transmission shaft (10) is connected to the rotating shaft (6), thereby making the multiple rotating shafts (6) and the two transmission shafts (10) transmission-connected. A worm gear (11) is provided in the middle of the transmission shaft (10), and a worm (12) is provided on the worm gear (11). The axial direction of the worm gear (12) passes through the center of the storage tank plate (1), and the end of the worm gear (12) toward the center of the storage tank plate (1) passes through the chassis (9) and the sealing plate (2) and extends to the inner side of the sealing plate (2). The worm gear (12) is rotatably connected to the chassis (9) and the sealing plate (2), and the end of the worm gear (12) inside the sealing plate (2) is provided with a first transmission wheel (13); A first transmission ring (14) is provided on the inner side of the sealing plate (2), the first transmission ring (14) is transmission-connected to the first transmission wheel (13), the first transmission ring (14) is coaxial with the material storage trough plate (1), and the first transmission ring (14) and the material storage trough plate (1) are fixedly connected via a first support plate (15).

3. The complete feed processing device for lactating sows with immune nutrition according to claim 2, characterized in that: A three-way pipe (16) is provided on the inner side of the sealing plate (2), and both output ends of the three-way pipe (16) are connected downwardly and mounted on the material storage tank plate (1), and the input end of the three-way pipe (16) is connected to an external air pump.

Citation Information

Patent Citations

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