Material uniformizing device

By introducing anti-scratching components, adjustment components, and mixing components into the feed mixer, the problems of scratches on the feed trough and non-adjustable feed amount caused by the simple structure of the existing feed mixer are solved, thus achieving feed trough protection and feed uniformity, and adapting to different feeding needs.

CN224139896UActive Publication Date: 2026-04-21HAIDERIL (QINGDAO) IND & TRADE CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
HAIDERIL (QINGDAO) IND & TRADE CO LTD
Filing Date
2025-04-28
Publication Date
2026-04-21

AI Technical Summary

Technical Problem

Existing feeders have a simple structure, are prone to scratching the feed trough, and cannot effectively adjust the feed amount, affecting their performance and making them unsuitable for different feeding scenarios.

Method used

A feeder was designed that includes an anti-scratching component, an adjusting component, and a mixing component. The anti-scratching component reduces scratches on the feed trough, the adjusting component adjusts the feed amount through guide holes and locking components, and the mixing component breaks up feed clumps to ensure uniform feeding.

Benefits of technology

It effectively reduces scratches on the feed trough, enables stable adjustment of the feed amount, adapts to different feeding scenarios, improves performance, and ensures uniform feeding.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to the technical field of breeding equipment, and provides a material uniformizing device which is characterized in that an anti-scraping piece is arranged on the outer surface of a material uniformizing body, so that the anti-scraping piece replaces the material uniformizing body to be in contact with the wall of a material groove when the material is movably fed in the material groove, the scratch to the material groove can be reduced, and the service life of the material groove is prolonged. Meanwhile, in the feeding process, the feed falls into the containing groove and falls into the feed trough from the discharge port, so that effective feeding is achieved. When the feeding amount needs to be increased or decreased, locking of the locking piece can be relieved, and the adjusting piece is in a free state. At the moment, the lifting piece is operated through cooperation of the guide column and the guide hole, so that the adjusting piece stably moves in the containing groove, and the size of the discharging opening is changed. Due to the fact that the extending direction of the guide hole is obliquely arranged relative to the vertical direction, the moving path of the lifting piece is in the oblique direction, and the situation that the feeding effect is affected due to the fact that the lifting piece moves vertically and easily interferes with a feeding structure above is avoided.
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Description

Technical Field

[0001] This utility model belongs to the field of aquaculture equipment technology, and in particular relates to a feed equalizer. Background Technology

[0002] With the development of the livestock industry, poultry farming has gradually entered the stage of automated production. The feed carts installed in chicken farms have effectively reduced the labor intensity of workers and greatly improved production efficiency. However, the existing overhead feed carts sometimes result in uneven feed thickness or feed accumulation in the feed troughs, causing chickens to consume different amounts of feed, leading to variations in their weight and size.

[0003] Therefore, traditional feeding structures typically include a feeder at the bottom to distribute feed into the trough. However, existing feeders have a simple structure, which not only easily scratches the inner wall of the trough, affecting the lifespan of the equipment, but also cannot effectively adjust the feed amount, making it unsuitable for different feeding scenarios and affecting the performance of the feeder. Utility Model Content

[0004] Based on the above background, the purpose of this utility model is to provide a feed equalizer that can not only reduce scratches on the feed trough, but also effectively and stably adjust the amount of feed, meet the needs of different feeding scenarios, and improve the performance of use.

[0005] To achieve the above objectives, the present invention adopts the following technical solution:

[0006] A material leveling device includes: a material leveling body having a receiving groove inside, and a notch at its bottom corresponding to the receiving groove; an anti-scratch member disposed on the outer surface of the material leveling body facing away from the receiving groove, the anti-scratch member being used to contact the groove wall; and an adjusting assembly including an adjusting member, a guide post, a lifting member, and a locking member. The adjusting member is disposed on the groove wall of the receiving groove, with one end extending into the notch, and a discharge port is formed between one end of the adjusting member and an edge of the notch. The guide post is disposed on the groove wall of the receiving groove, and the adjusting member has a guide hole that cooperates with the guide post, the extension direction of the guide hole being inclined relative to the vertical direction. The lifting member is connected to the adjusting member, and the locking member is used to lock or unlock the lifting member on the material leveling body.

[0007] Furthermore, there are multiple guide posts and guide holes, and they are arranged one-to-one. All the guide holes are distributed at intervals along the length direction of the adjusting member, and the inclination direction of each guide hole is consistent.

[0008] Furthermore, the uniform feeder also includes a first cover plate and a first partition plate. The first partition plate is disposed inside the uniform feed body and forms an installation gap with the inner wall of the uniform feed body that communicates with the receiving groove. The first cover plate covers the top of the uniform feed body and the top of the first partition plate, and encloses to form a first protective cavity. The first cover plate has an opening that communicates with the first protective cavity. One side of the adjusting member extends into the first protective cavity through the installation gap. The lifting member extends into the first protective cavity through the opening and is connected to the adjusting member.

[0009] Furthermore, the portion of the adjusting member located within the first protective cavity is bent to form a first flange, and the portion of the lifting member located within the first protective cavity is bent to form a second flange, the second flange being attached to and connected to the first flange.

[0010] Furthermore, the adjusting assembly also includes a screw post, and the lifting member is provided with a locking hole. The extension direction of the locking hole is consistent with the extension direction of the guide hole. The screw post is disposed on the uniform material body and is opposite to the locking hole. The locking member passes through the locking hole and is screwed into the screw post.

[0011] Furthermore, the lifting member has multiple toothed openings spaced apart along its length on its edge, and the uniform material body has through holes. When the adjusting member is engaged with the guide post and the guide hole, each toothed opening can pass through the through hole in sequence.

[0012] Furthermore, the feed homogenizer also includes a mixing component, and the feed homogenizer body has a second protective cavity inside. The second protective cavity is located at one end of the receiving trough. The mixing component is disposed in the second protective cavity, and its mixing end protrudes from the bottom of the feed homogenizer body. The mixing component is used to stir the feed in the feed trough.

[0013] Furthermore, the mixing assembly includes a motor and several stirring blades. The motor is located inside the second protective cavity, and its output shaft extends through the bottom of the homogenizing body. Each stirring blade is disposed on the part of the output shaft that extends through the homogenizing body.

[0014] Furthermore, a raised plate is provided at the bottom of the uniform material body, which is used to abut against the bottom of the material trough. One end of the stirring blade is provided with a curved arc-shaped part. When the stirring blade rotates under the drive of the motor, the curved arc-shaped part abuts against the raised plate and passes over the raised plate.

[0015] Furthermore, the uniform material body includes a front side plate and a rear side plate, the front side plate and the rear side plate are spaced apart and the receiving groove is formed between them, and a notch is formed between the bottom of the front side plate and the bottom of the rear side plate, the guide post is disposed on the rear side plate, the adjusting member is attached to the rear side plate, and the discharge port is formed between one end of the adjusting member and one end of the front side plate.

[0016] This utility model has the following beneficial effects:

[0017] (1) Anti-scratching parts are installed on the outer surface of the feed uniform. When the feed is moved in the trough for feeding, the anti-scratching parts replace the feed uniform in contact with the trough wall, which can reduce scratches on the trough and extend its service life. At the same time, during the feeding process, the feed falls into the receiving trough and then into the feeding trough from the discharge port, so as to achieve effective feeding. When it is necessary to increase or decrease the feeding amount, the locking part can be released, so that the adjusting part is in a free state. At this time, the lifting part is operated by the cooperation of the guide column and the guide hole, so that the adjusting part can move smoothly in the receiving trough and change the size of the discharge port. Since the extension direction of the guide hole is inclined relative to the vertical direction, the movement path of the lifting part is inclined, avoiding interference with the feeding structure above and affecting the feeding effect if it moves straight up and down. In addition, the inclined setting of the guide hole makes it easy for the adjusted part to abut against the guide column after adjustment, ensuring more effective and stable adjustment, meeting the needs of different feeding scenarios, and improving the performance.

[0018] (2) A first protective cavity is formed by the first partition plate and the first cover plate, and an installation gap is set on the first partition plate and an opening is set on the first cover plate, so that the adjusting component and the lifting component can be connected in the first protective cavity, thereby effectively protecting the connection structure between the adjusting component and the lifting component, preventing feed from falling between the lifting component and the uniform material body and causing the lifting component to be unable to move, and ensuring stable feeding.

[0019] (3) Introduce corresponding screw posts and locking holes, with the extension direction of the locking holes consistent with the extension direction of the guide holes. Therefore, during the adjustment process, rotate to loosen the locking component, so that the lifting component is in the unlocked state. This allows the lifting component to be pulled or lowered at an angle, causing the adjusting component to move obliquely upwards or downwards, changing the size of the discharge port and thus changing the amount of material fed into the trough. After adjustment, rotate the locking component in the opposite direction, so that the lifting component is locked onto the uniform material body.

[0020] (4) The introduction of a mixing component can stir the feed in the trough, break up the existing feed clumps in the trough, and prevent the feed from clumping together, which would hinder the feeding process. At the same time, a raised plate is set at the bottom of the mixing body, and a curved arc part is set at one end of the mixing blade. In this way, during the mixing process, the curved arc part can hit the raised plate, providing the raised plate with impact vibration force, so that the feed in the receiving trough can fall smoothly from the discharge port, avoiding the accumulation of material in the receiving trough and causing uneven feeding. Attached Figure Description

[0021] To more clearly illustrate the technical solutions in the embodiments of this utility model or the prior art, the drawings used in the description of the embodiments or the prior art will be briefly introduced below. Obviously, the drawings described below are only some embodiments of this utility model. For those skilled in the art, other drawings can be obtained based on the structures shown in these drawings without creative effort.

[0022] Figure 1 A perspective view of the structure of a feeder provided in one embodiment;

[0023] Figure 2 Another view of the structure of the feeder provided in one embodiment;

[0024] Figure 3 A partial structural diagram of a feeder provided in one embodiment;

[0025] Figure 4 A structural diagram of the adjustment component provided in one embodiment;

[0026] Figure 5 This is a structural diagram of a homogenizer with a mixing component provided in one embodiment;

[0027] Figure 6 This is a structural diagram of the stirring blade provided in one embodiment.

[0028] Explanation of icon numbers:

[0029] 100. Feeder; 10. Feeder body; 11. Receiving trough; 12. Elevating plate; 13. Perforation; 14. Front side plate; 15. Rear side plate; 20. Adjustment assembly; 21. Adjustment component; 211. Discharge port; 212. Guide hole; 213. First flange; 22. Guide post; 23. Lifting component; 231. Toothed opening; 232. Second flange; 233. Locking hole; 24. Locking component; 241. Threaded post; 30. Anti-scratch component; 40. First partition plate; 41. Installation gap; 42. First cover plate; 43. Opening; 50. Second partition plate; 51. Second cover plate; 52. Second protective cavity; 60. Mixing assembly; 61. Motor; 62. Mixing blade; 63. Curved arc section.

[0030] The realization of the purpose, functional features and advantages of this utility model will be further explained in conjunction with the embodiments and with reference to the accompanying drawings. Detailed Implementation

[0031] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the protection scope of the present utility model.

[0032] It should be noted that all directional indicators (such as up, down, left, right, front, back, etc.) in this utility model embodiment are only used to explain the relative positional relationship and movement of each component in a certain specific posture (as shown in the figure). If the specific posture changes, the directional indicator will also change accordingly.

[0033] Furthermore, in this utility model, descriptions involving "first," "second," etc., are for descriptive purposes only and should not be construed as indicating or implying their relative importance or implicitly specifying the number of technical features indicated. Therefore, a feature defined with "first" or "second" may explicitly or implicitly include at least one of that feature. Additionally, the technical solutions of the various embodiments can be combined with each other, but only on the basis of being achievable by those skilled in the art. When the combination of technical solutions is contradictory or impossible to implement, such a combination of technical solutions should be considered non-existent and not within the scope of protection claimed by this utility model.

[0034] In one embodiment, please refer to Figures 1 to 4 This application provides a material leveling device 100, including: a material leveling body 10, an anti-scratching component 30, and an adjusting assembly 20. The material leveling body 10 has a receiving groove 11, and its bottom is provided with a notch that connects to the receiving groove 11; the anti-scratching component 30 is provided on the outer surface of the material leveling body 10 facing away from the receiving groove 11, and the anti-scratching component 30 is used to contact the groove wall of the material leveling body; the adjusting assembly 20 includes an adjusting component 21, a guide post 22, a lifting component 23, and a locking component 24. The adjusting component 21 is provided on the groove wall of the receiving groove 11, and one end of it extends into the notch. A discharge port 211 is formed between one end of the adjusting component 21 and one edge of the notch. The guide post 22 is provided on the groove wall of the receiving groove 11, and the adjusting component 21 is provided with a guide hole 212 that cooperates with the guide post 22. The extension direction of the guide hole 212 is inclined relative to the vertical direction. The lifting component 23 is connected to the adjusting component 21, and the locking component 24 is used to lock or unlock the lifting component 23 on the material leveling body 10.

[0035] The aforementioned feeder 100 has an anti-scratching component 30 on the outer surface of the feeder body 10. When moving and feeding in the trough, the anti-scratching component 30 replaces the feeder body 10 in contact with the trough wall, reducing scratches and extending the trough's service life. Simultaneously, during feeding, feed falls into the receiving trough 11 and then from the discharge port 211 into the trough, achieving effective feeding. When it is necessary to increase or decrease the feeding amount, the locking component 24 can be released, allowing the adjusting component 21 to be in a free state. At this time, through the cooperation of the guide post 22 and the guide hole 212, the lifting component 23 is operated, allowing the adjusting component 21 to move smoothly in the receiving trough 11, changing the size of the discharge port 211. Since the extension direction of the guide hole 212 is inclined relative to the vertical direction, the moving path of the lifting component 23 is inclined, avoiding interference with the upper feeding structure that could affect the feeding effect if it moves straight up and down. In addition, the guide hole 212 is inclined, which makes it easy for the adjusted part 21 to abut against the guide post 22 after adjustment, ensuring that the adjustment is more effective and stable, meeting the needs of different breeding scenarios and improving the performance.

[0036] It should be explained that the anti-scratch component 30 can replace the uniform material body 10 in contact with the wall of the material trough. Its material has a certain degree of elasticity or flexibility, such as, but not limited to, nylon, rubber, etc. The number of anti-scratch components 30 can be one or more. For example, the number of anti-scratch components 30 can be four, and the four anti-scratch components 30 are respectively arranged around the uniform material body 10.

[0037] It should also be explained that one end of the adjusting member 21 extends into the notch, forming a discharge port 211 between it and the edge of the notch. When the adjusting member 21 tilts upward or downward, it moves away from or closer to the edge of the notch, thus changing the size of the discharge port 211. Because the guide hole 212 is tilted, the lifting member 23 also moves tilted upward or downward, avoiding the lifting member 23 moving straight up and down, which could easily interfere with the feeding structure above. At the same time, the tilted guide hole 212 easily abuts against the guide post 22, ensuring that the adjusted member 21 always abuts against the guide post 22 after adjustment, providing a certain support force for the adjusting member 21. This prevents the adjusted member 21 from moving up and down and causing adjustment failure.

[0038] Further, please refer to Figure 4 There are multiple guide posts 22 and guide holes 212, and they are set one-to-one. All guide holes 212 are distributed at intervals along the length of the adjusting member 21, and the inclination direction of each guide hole 212 is consistent. It can be seen that by using multiple guide posts 22 and guide holes 212 in cooperation, the movement of the adjusting member 21 is more stable, and the adjustment of the feeding amount is more accurate.

[0039] In one embodiment, please refer to Figure 3 and Figure 4 The uniform feeder 100 also includes a first cover plate 42 and a first partition plate 40. The first partition plate 40 is disposed inside the uniform feeder 10 and forms an installation gap 41 with the inner wall of the uniform feeder 10 that communicates with the receiving groove 11. The first cover plate 42 is disposed on the top of the uniform feeder 10 and the top of the first partition plate 40, and forms a first protective cavity. The first cover plate 42 is provided with an opening 43 that communicates with the first protective cavity. One side of the adjusting member 21 extends into the first protective cavity through the installation gap 41. The lifting member 23 extends into the first protective cavity through the opening 43 and is connected to the adjusting member 21. It is understood that the first protective cavity is formed by the first partition plate 40 and the first cover plate 42, and an installation gap 41 is provided on the first partition plate 40 and an opening 43 is provided on the first cover plate 42, so that the adjusting member 21 and the lifting member 23 can be connected in the first protective cavity, thereby effectively protecting the connection structure between the adjusting member 21 and the lifting member 23, preventing feed from falling between the lifting member 23 and the uniform feed body 10 and causing the lifting member 23 to be unable to move, thus ensuring stable feeding.

[0040] It should be explained that the first partition plate 40 is set inside the uniform material body 10, so that the first protective cavity is separated from the receiving tank 11. This can prevent the feed in the receiving tank 11 from entering between the lifting member 23 and the uniform material body 10, and ensure that the lifting member 23 can operate stably.

[0041] Optionally, the first cover plate 42 can be connected to the first partition plate 40 and the uniform material body 10 in various ways, such as, but not limited to, bolt connection, snap-fit, riveting, welding, etc.

[0042] In one embodiment, please refer to Figure 4 The portion of the adjusting member 21 located within the first protective cavity is bent to form a first flange 213, and the portion of the lifting member 23 located within the first protective cavity is bent to form a second flange 232. The second flange 232 is attached to and connected to the first flange 213. In this way, the lifting member 23 and the adjusting member 21 are stably connected through the first flange 213 and the second flange 232, which helps to improve the structural stability of the adjusting assembly 20.

[0043] In one embodiment, please refer to Figure 4The adjusting assembly 20 also includes a screw post 241. The lifting member 23 has a locking hole 233, the extension direction of which is consistent with the extension direction of the guide hole 212. The screw post 241 is located on the material equalizer 10 and faces the locking hole 233. The locking member 24 passes through the locking hole 233 and is screwed into the screw post 241. It can be seen that by introducing the corresponding screw post 241 and locking hole 233, and with the extension direction of the locking hole 233 consistent with the extension direction of the guide hole 212, during adjustment, rotating the locking member 24 releases the locking member 23, putting it in an unlocked state. This allows the lifting member 23 to be pulled or lowered at an angle, causing the adjusting member 21 to move obliquely upwards or downwards, changing the size of the outlet 211 and thus altering the amount of material fed into the trough. After adjustment, rotating the locking member 24 in the opposite direction locks the lifting member 23 onto the material equalizer 10.

[0044] In one embodiment, please refer to Figure 3 and Figure 4 The lifting element 23 has multiple toothed openings 231 spaced along its length on its edge, and the feed equalizer 10 has through holes 13. When the adjusting element 21 is in cooperation with the guide post 22 and the guide hole 212, each toothed opening 231 can pass through the through hole 13 in sequence. It can be seen that during the adjustment of the discharge port 211, the movement of the toothed openings 231 can be observed and recorded through the through hole 13, so as to facilitate the adjustment of the size of the discharge port 211 to adapt to different feeding amounts or different feed conditions.

[0045] The perforation 13 can have various shapes, such as, but not limited to, square, round, oval, and triangular.

[0046] In one embodiment, please refer to Figure 5 The feed equalizer 100 also includes a mixing component 60. The feed equalizer 10 also has a second protective cavity 52 located at one end of the receiving trough 11. The mixing component 60 is disposed within the second protective cavity 52, with its mixing end extending beyond the bottom of the feed equalizer 10. The mixing component 60 is used to mix the feed in the trough. It can be seen that the introduction of the mixing component 60 can mix the feed in the trough, break up any existing feed clumps, and prevent the feed from clumping together, thus ensuring smooth feeding.

[0047] Further, please refer to Figure 5 and Figure 6 The mixing assembly 60 includes a motor 61 and several mixing blades 62. The motor 61 is located inside the second protective cavity 52, and its output shaft extends through the bottom of the mixing body 10. Each mixing blade 62 is located on the part of the output shaft that extends out of the mixing body 10. It can be seen that the motor 61 drives the mixing blades 62 to rotate, breaking up the feed in the feed trough and preventing the feed in the feed trough from clumping together.

[0048] It should be explained that the motor 61 is located inside the second protective cavity 52 to prevent feed from falling into the motor 61 and causing it to malfunction. The feeder 100 also includes a second partition plate 50 and a second cover plate 51. The second partition plate 50 is located at one end of the receiving groove 11, and the second cover plate 51 covers the top of the second partition plate 50 and the top of the feeder 10. The second cover plate 51 can be connected to the second partition plate 50 and the feeder 10 in various ways, such as, but not limited to, bolt connection, snap-fit, riveting, welding, etc.

[0049] In one embodiment, please refer to Figure 5 A raised plate 12 is provided at the bottom of the uniform material body 10. The raised plate 12 is used to abut against the bottom of the material trough. One end of the stirring blade 62 is provided with a curved arc-shaped part 63. When the stirring blade 62 rotates under the drive of the motor 61, the curved arc-shaped part 63 abuts against the raised plate 12 and passes over the raised plate 12. It can be seen that by providing a raised plate 12 at the bottom of the uniform material body 10 and a curved arc-shaped part 63 at one end of the stirring blade 62, the curved arc-shaped part 63 can strike the raised plate 12 during the stirring process, providing a striking vibration force to the raised plate 12, so that the feed in the receiving trough 11 can fall smoothly from the discharge port 211, avoiding the accumulation of material in the receiving trough 11 and causing uneven feeding. In addition, a support plate 12 is provided at the bottom of the uniform material body 10, so that the uniform material body 10 is stably supported in the material trough by the support plate 12, so that the uniform material body 10 always maintains a certain height in the material trough, which facilitates stable feeding of materials into the material trough.

[0050] Optionally, the number of raised plates 12 can be one or more. For example, there can be two raised plates 12, which are spaced apart at the bottom of the uniform feed body 10, with one of the raised plates 12 abutting against the curved part 63. It is easy to understand that during the rotation of the stirring blade 62, the curved part 63 of the stirring blade 62 abuts against the raised plate 12. Since the curved part 63 has a certain curvature, the curved part 63 hitting the raised plate 12 can easily rise higher than the raised plate 12. This can cause a certain vibration to the raised plate 12 while ensuring the stable rotation of the stirring blade 62 to disperse the feed in the feed trough.

[0051] In one embodiment, please refer to Figure 3 The uniform material body 10 includes a front side plate 14 and a rear side plate 15. The front side plate 14 and the rear side plate 15 are spaced apart and a receiving groove 11 is formed between them. A notch is formed between the bottom of the front side plate 14 and the bottom of the rear side plate 15. A guide post 22 is provided on the rear side plate 15. An adjusting member 21 is attached to the rear side plate 15, and a discharge port 211 is formed between one end of the adjusting member 21 and one end of the front side plate 14.

[0052] It should be explained that both the front side plate 14 and the rear side plate 15 are inclined relative to the vertical direction, and the distance between the front side plate 14 and the rear side plate 15 is smaller as it gets closer to the discharge port 211.

[0053] Of course, the above description is not intended to limit the present utility model, and the present utility model is not limited to the examples given above. Any changes, modifications, additions or substitutions made by those skilled in the art within the scope of the present utility model should also fall within the protection scope of the present utility model.

Claims

1. A refiner characterized in that, include: The uniform material body (10) has a receiving groove (11) inside, and its bottom is provided with a notch that connects to the receiving groove (11); A scratch-resistant component (30) is provided on the outer surface of the uniform material body (10) facing away from the receiving groove (11), and the scratch-resistant component (30) is used to contact the groove wall of the material groove; The adjustment assembly (20) includes an adjustment member (21), a guide post (22), a lifting member (23), and a locking member (24). The adjustment member (21) is disposed on the wall of the receiving groove (11), and one end of it extends into the notch. A discharge port (211) is formed between one end of the adjustment member (21) and one edge of the notch. The guide post (22) is disposed on the wall of the receiving groove (11). The adjustment member (21) is provided with a guide hole (212) that cooperates with the guide post (22). The extension direction of the guide hole (212) is inclined relative to the vertical direction. The lifting member (23) is connected to the adjustment member (21). The locking member (24) is used to lock or unlock the lifting member (23) on the uniform material body (10).

2. A mincer according to claim 1, characterized in that There are multiple guide posts (22) and guide holes (212), and they are arranged one-to-one. All the guide holes (212) are distributed at intervals along the length direction of the adjusting member (21), and the inclination direction of each guide hole (212) is consistent.

3. A refiner according to claim 1, characterized in that The uniform feeder also includes a first cover plate (42) and a first partition plate (40). The first partition plate (40) is disposed inside the uniform feed body (10) and forms an installation gap (41) with the inner wall of the uniform feed body (10) that communicates with the receiving groove (11). The first cover plate (42) covers the top of the uniform feed body (10) and the top of the first partition plate (40) and forms a first protective cavity. The first cover plate (42) is provided with an opening (43) that communicates with the first protective cavity. One side of the adjusting member (21) extends into the first protective cavity through the installation gap (41). The lifting member (23) extends into the first protective cavity through the opening (43) and is connected to the adjusting member (21).

4. A mincer according to claim 3, characterised in that The portion of the adjusting member (21) located within the first protective cavity is bent to form a first flange (213), and the portion of the lifting member (23) located within the first protective cavity is bent to form a second flange (232). The second flange (232) is attached to and connected to the first flange (213).

5. A refiner according to claim 1, characterized in that The adjustment assembly (20) further includes a screw post (241). The lifting member (23) is provided with a locking hole (233). The extension direction of the locking hole (233) is consistent with the extension direction of the guide hole (212). The screw post (241) is provided on the uniform material body (10) and is opposite to the locking hole (233). The locking member (24) passes through the locking hole (233) and is screwed into the screw post (241).

6. A refiner according to claim 1, characterized in that The lifting member (23) has a plurality of toothed openings (231) spaced apart along its own length direction on its edge, and the uniform material body (10) has a through hole (13). When the adjusting member (21) cooperates with the guide post (22) and the guide hole (212), each toothed opening (231) can pass through the through hole (13) in sequence.

7. A refiner according to any one of claims 1-6, characterized in that The feed mixer also includes a mixing component (60). The feed mixer body (10) also has a second protective cavity (52) inside. The second protective cavity (52) is located at one end of the receiving trough (11). The mixing component (60) is disposed in the second protective cavity (52), and its mixing end protrudes from the bottom of the feed mixer body (10). The mixing component (60) is used to mix the feed in the feed trough.

8. A refiner according to claim 7, characterized in that The mixing assembly (60) includes a motor (61) and several stirring blades (62). The motor (61) is located inside the second protective cavity (52), and its output shaft extends through the bottom of the uniform material body (10). Each stirring blade (62) is located on the part of the output shaft that extends out of the uniform material body (10).

9. A mincer according to claim 8, characterised in that The bottom of the uniform material body (10) is provided with a raised plate (12), which is used to abut against the bottom of the material trough. One end of the stirring blade (62) is provided with a curved arc part (63). When the stirring blade (62) rotates under the drive of the motor (61), the curved arc part (63) abuts against the raised plate (12) and passes over the raised plate (12).

10. A refiner according to any one of claims 1-6, characterized in that The uniform material body (10) includes a front side plate (14) and a rear side plate (15). The front side plate (14) and the rear side plate (15) are spaced apart and form the receiving groove (11) between them. A notch is formed between the bottom of the front side plate (14) and the bottom of the rear side plate (15). The guide post (22) is provided on the rear side plate (15). The adjusting member (21) is attached to the rear side plate (15). The discharge port (211) is formed between one end of the adjusting member (21) and one end of the front side plate (14).