A type of feeding trough for beef cattle

By linking the horizontal and vertical cleaning mechanisms and the discharge components, the problem of cleaning food residue in the feeding troughs of beef cattle is solved, realizing multi-directional self-cleaning and automatic discharge of the feeding troughs, and improving cleaning efficiency.

CN118077596BActive Publication Date: 2025-10-28GANSU QILIAN MUGE IND CO LTD
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Patent Information

Application Number
CN202410238600.5
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2024-03-01
Publication Date
2025-10-28
Estimated Expiration
2044-03-01

AI Technical Summary

Technical Problem

In beef cattle farming, food residue accumulates in the feeding troughs and is difficult to clean, resulting in long cleaning times and low efficiency. Existing technologies cannot achieve multi-directional synchronous cleaning.

Method used

A linkage horizontal cleaning mechanism and a vertical linkage cleaning component were designed. The linkage screw is driven by a speed reduction linkage motor, which drives the horizontal and vertical cleaning scrapers to achieve multi-directional self-cleaning of the feeding trough. A linkage discharge component is also provided to automatically discharge the residue.

Benefits of technology

It achieves simultaneous horizontal and vertical self-cleaning of the feeding troughs for beef cattle, significantly shortening the cleaning time, improving cleaning efficiency, and automatically discharging residue, thus enhancing self-cleaning efficiency.

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Abstract

This invention discloses a feeding trough for beef cattle, specifically relating to the field of self-cleaning trough technology. A guide frame plate is fixedly connected to the bottom of the outer wall of the feeding trough, and a linkage horizontal cleaning mechanism is installed inside the guide frame plate. The linkage horizontal cleaning mechanism includes a linkage screw installed on the inner wall of the guide frame plate, with one end of the linkage screw extending to the outside of the guide frame plate and coaxially connected to a reduction gear motor. This invention utilizes the linkage horizontal cleaning mechanism to enable two horizontal cleaning scrapers to self-clean along different directions of the inner wall of the feeding trough. Simultaneously, multiple vertical cleaning teeth achieve reciprocating rotational self-cleaning. During both horizontal and vertical self-cleaning processes, two tilting discharge plates open simultaneously to discharge residual material, automatically achieving synchronous horizontal and vertical self-cleaning and synchronous self-cleaning discharge, effectively improving the self-cleaning efficiency of the beef cattle feeding trough.
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Description

Technical Field

[0001] This invention relates to the field of self-cleaning feed trough technology, and more specifically, to a feed trough for beef cattle farming. Background Technology

[0002] The main function of feeding troughs in beef cattle farming is to facilitate feeding the cattle. By using feeding troughs, farmers can more easily provide feed to the cattle and better control the amount of feed to ensure that each cattle receives sufficient nutrition.

[0003] In the prior art, patent publication number CN112425522A discloses a feed trough for livestock that is easy to clean. This patent mainly connects a first through hole to a second cavity, enabling the feed trough to tilt under the support of a threaded rod, ensuring that it can be tilted during cleaning and preventing residue buildup. However, this feed trough has the following drawbacks;

[0004] In beef cattle farming, food is supplied to the feeding trough. When the cattle eat, food residue accumulates inside the trough. Cleaning requires manual operation, and cleaning the food residue, which has strong adsorption properties, is quite complicated. After cleaning, the residue also needs to be removed, making it difficult to achieve multi-directional simultaneous cleaning of food residue. This results in longer trough cleaning time and a significant reduction in self-cleaning efficiency. Therefore, a new type of feeding trough for beef cattle farming is needed. Summary of the Invention

[0005] To overcome the aforementioned deficiencies of the prior art, the present invention provides a feeding trough for beef cattle, comprising a feeding trough, a guide frame plate fixedly connected to the bottom of the outer wall of the feeding trough, and a linkage lateral cleaning mechanism installed inside the guide frame plate; the linkage lateral cleaning mechanism includes a linkage screw installed on the inner wall of the guide frame plate, one end of the linkage screw extending to the outside of the guide frame plate and coaxially connected to a reduction linkage motor, a first threaded linkage sleeve block and a second threaded linkage sleeve block arranged sequentially from right to left on the outer wall of the linkage screw block, an arc-shaped linkage slide block fixedly connected to the bottom of both the first threaded linkage sleeve block and the second threaded linkage sleeve block, an arc-shaped guide slide block welded to both top ends of the arc-shaped linkage slide block, a linkage push rod slidably connected to the inner wall of the arc-shaped guide slide block, and a lateral cleaning scraper for cleaning the feeding trough installed at the bottom end of the linkage push rod; a vertical linkage cleaning component is provided on the outer wall of the arc-shaped guide slide block; and a linkage discharge component is installed below the first threaded linkage sleeve block.

[0006] Preferably, the linkage screw and the guide frame plate are rotatably connected by a bearing, and the reduction linkage motor is fixedly connected to the guide frame plate. The first threaded linkage sleeve and the second threaded linkage sleeve are both threadedly connected to the outer wall of the linkage screw. The two threads on the outer wall of the linkage screw are opposite and symmetrically arranged. The first threaded linkage sleeve and the second threaded linkage sleeve are both horizontally slidably connected along the inner wall of the guide frame plate. The two linkage push rods are fixedly connected to the transverse cleaning scraper. The two linkage push rods are symmetrically arranged about the transverse cleaning scraper. Two symmetrically arranged support bases are fixedly connected to one side of the guide frame plate. A controller for driving the reduction linkage motor is fixedly connected to one side of one of the support bases. A connecting bracket is welded to the top of the support base.

[0007] According to the above technical solution, the starting reduction linkage motor drives the linkage screw to rotate inside the guide frame plate. The linkage screw drives the first threaded linkage sleeve block to move to the right under the action of the thread. The second threaded linkage sleeve block drives another arc-shaped linkage slide to move to the left. The arc-shaped linkage slide drives the two arc-shaped guide slides to make the linkage push rod move horizontally. The transverse cleaning scraper can scrape impurities transversely along the inside of the feeding trough.

[0008] Preferably, the vertical linkage cleaning component includes a guide toothed rack disposed on the outer wall of the arc-shaped guide slide; the top of the guide toothed rack is integrally formed with multiple undulating toothed blocks by die casting, and a toothed groove is formed between each two adjacent undulating toothed blocks; an arc-shaped guide hole is formed through one side of the inner wall of the arc-shaped guide slide; a fixed support block is welded to the outer wall of the arc-shaped guide slide near its top; below the fixed support block, from top to bottom, are arranged an arc-shaped connecting spring, a V-shaped connecting spring, and an arc-shaped connecting strip; the bottom end of the arc-shaped connecting strip is integrally formed with a connecting... A support block is fixedly connected to the outer wall of the connecting support block and the linkage push rod. A plurality of vertical cleaning tooth blocks are fixedly connected to one side of the transverse cleaning scraper in an arc-shaped equidistant distribution. The vertical cross section of the vertical cleaning tooth blocks is set as an isosceles trapezoid. The arc-shaped connecting spring and the arc-shaped connecting strip are integrally formed with the V-shaped connecting spring by die casting. The bottom end of the limiting slip ring is slidably connected along the outer wall of the arc-shaped guide slide. A reinforcing linkage ring is fixedly connected to the outer wall of the linkage push rod near its bottom end. The outer wall of the linkage push rod is slidably connected to the arc-shaped guide slide to which the arc-shaped guide hole belongs.

[0009] According to the above technical solution, the linkage push rod drives the limiting slip ring to move the connecting support block. When the limiting slip ring slides along the right inclined surface of the undulating slide tooth block, the linkage push rod drives the connecting support block to move upward. The connecting support block drives the arc-shaped connecting strip to compress the V-shaped connecting spring. The V-shaped connecting spring drives the arc-shaped connecting spring to compress. The fixed support block supports the arc-shaped connecting spring. The linkage push rod drives the limiting slip ring to slide upward along the outer wall of the arc-shaped guide slide. The linkage push rod drives the horizontal cleaning scraper to rotate upward along the inner wall of the feeding trough. The horizontal cleaning scraper drives multiple vertical cleaning tooth blocks to achieve linkage rotation cleaning of the inner wall of the feeding trough. When the limiting slip ring moves to the left side of the undulating slide tooth block and the slide tooth groove position, the rebound force of the V-shaped connecting spring drives the arc-shaped connecting strip to move the connecting support block downward. The linkage push rod slides downward along the arc-shaped guide hole on the inner wall of the arc-shaped guide slide. Multiple vertical cleaning tooth blocks can rotate downward to perform vertical cleaning of the inside of the feeding trough.

[0010] Preferably, the linkage discharge assembly includes two linkage support blocks installed below the first threaded linkage sleeve block. The two linkage support blocks are respectively fixedly connected to two arc-shaped linkage slides. Linkage toothed plates are welded to opposite sides of the two linkage support blocks, and a rotating toothed ring is meshed and driven below the linkage toothed plates. A linkage shaft is fixedly connected to the inner wall of the rotating toothed ring near its center point. A sleeved linkage rotating plate is fixedly connected to the outer wall of the linkage rotating shaft near its rear end. A linkage recess is welded to the top of the sleeved linkage rotating plate. The top is equipped with a tilting discharge plate for squeezing the feeding trough. A sleeve shaft plate is provided between the sleeve linkage rotating plate and the rotating gear ring, which is rotatably connected to the linkage rotating shaft. A support plate is welded to the top of the sleeve shaft plate, and a connecting support plate is welded between the support plate and the feeding trough. A protective cover plate for protecting the rotating gear ring is fixedly connected to one side of the connecting support plate. The support plate and the connecting support plate are integrally formed by die casting. The sleeve linkage rotating plate and the rotating gear ring are slidably connected to the sleeve shaft plate. A limit support ring is fixedly connected to the outer wall of the linkage rotating shaft at a position on one side of the rotating gear ring.

[0011] According to the above technical solution, the two linkage blocks can move in different directions. The linkage blocks drive the limiting slip ring to rotate the rotating gear ring. The rotating gear ring drives the linkage shaft and the limiting support ring to rotate simultaneously. The connecting support plate supports the support plate, and the support plate supports the sleeve shaft plate. The linkage shaft drives the sleeve linkage plate to rotate downward. The sleeve linkage plate drives the linkage concave block to rotate the tilting discharge plate downward, thus opening the feeding trough. The tilting discharge plates on both sides open simultaneously to discharge feed impurities.

[0012] The technical effects and advantages of this invention are as follows:

[0013] 1. This invention utilizes a linkage lateral cleaning mechanism to activate a reduction linkage motor, which drives a linkage screw to rotate inside a guide frame plate. The first threaded linkage sleeve moves to the right under the action of the thread, and the second threaded linkage sleeve drives another arc-shaped linkage slide to move to the left. The lateral cleaning scraper can scrape impurities laterally along the inside of the feeding trough. The two lateral cleaning scrapers can achieve lateral scraping self-cleaning along the inner wall of the feeding trough in different directions, which can achieve multi-directional synchronous cleaning of food residue. The self-cleaning time of the beef cattle feeding trough is greatly shortened, and the self-cleaning efficiency is greatly improved.

[0014] 2. In this invention, when the limiting slip ring slides along the right inclined surface of the undulating slide tooth block through the vertical linkage cleaning component, the V-shaped connecting spring is compressed, and the linkage push rod drives the horizontal cleaning scraper to rotate upward along the inner wall of the feeding trough. Multiple vertical cleaning tooth blocks can achieve linkage rotation and vertical cleaning of the inner wall of the feeding trough. When the limiting slip ring moves to the left side of the undulating slide tooth block and the slide tooth groove position, the rebound force of the V-shaped connecting spring makes multiple vertical cleaning tooth blocks able to rotate downward to perform vertical cleaning of the inside of the feeding trough. According to the position of the guide slide tooth strip, multiple vertical cleaning tooth blocks can achieve up-and-down reciprocating linkage rotation and self-cleaning, and achieve vertical multi-directional linkage cleaning. While cleaning horizontally, vertical multi-point reciprocating cleaning is achieved, effectively improving cleaning efficiency.

[0015] 3. The present invention uses a linkage discharge assembly to enable two linkage blocks to move in different directions. The linkage blocks drive the limiting slip ring to rotate the rotating gear ring, which in turn drives the linkage shaft and the limiting slip ring to rotate simultaneously. The linkage shaft also drives the sleeved linkage rotating plate to rotate downwards, and the sleeved linkage rotating plate drives the linkage concave block to rotate the tilting discharge plate downwards. This allows the two tilting discharge plates to be opened simultaneously during the horizontal and vertical self-cleaning process to discharge the remaining residue. The linkage bidirectional discharge effectively improves the self-cleaning efficiency of the feeding trough.

[0016] Based on the interaction of the above three functions, firstly, the two horizontal cleaning scrapers can self-clean along different directions of the inner wall of the feeding trough, while multiple vertical cleaning teeth achieve up-and-down reciprocating rotational self-cleaning. During the horizontal and vertical self-cleaning process, two flip-out discharge plates are opened to discharge the remaining residue. In summary, the beef cattle feeding trough can automatically achieve horizontal and vertical synchronous self-cleaning and synchronous self-cleaning discharge through a single drive end of the deceleration linkage motor, effectively improving the self-cleaning efficiency of the beef cattle feeding trough. Attached Figure Description

[0017] Figure 1 This is a schematic diagram of the overall structure of a feeding trough for beef cattle breeding according to the present invention.

[0018] Figure 2 This is a schematic diagram of the vertical cross-sectional structure of a feeding trough for beef cattle breeding according to the present invention.

[0019] Figure 3This is a partial structural diagram of the vertical section of the connection between the first threaded linkage block and the arc-shaped linkage slide in a beef cattle feeding trough according to the present invention.

[0020] Figure 4 This is a partial structural diagram of the connection between the arc-shaped linkage slide and the arc-shaped guide slide in a beef cattle feeding trough according to the present invention.

[0021] Figure 5 This is a partial structural diagram of a vertical linkage cleaning component in a beef cattle feeding trough according to the present invention.

[0022] Figure 6 For the present invention Figure 5 Enlarged structural diagram at point A in the middle.

[0023] Figure 7 This is a partial structural diagram of the protective cover and linkage toothed plate of a beef cattle feeding trough according to the present invention.

[0024] Figure 8 This is a schematic diagram of a partial cut-off structure at the meshing point of the linkage toothed plate and the rotating toothed ring in a beef cattle feeding trough according to the present invention.

[0025] Figure 9 This is a partial rear view of the connection between the rotating toothed ring and the linkage shaft in a beef cattle feeding trough according to the present invention.

[0026] The attached figures are labeled as follows: 1. Feeding trough; 2. Guide frame plate; 3. Linkage screw; 4. Reduced linkage motor; 5. First threaded linkage block; 6. Second threaded linkage block; 7. Arc-shaped linkage slide; 8. Arc-shaped guide slide; 9. Linkage push rod; 10. Horizontal cleaning scraper; 11. Support base frame; 12. Controller; 13. Protective cover plate; 14. Connecting bracket; 15. Guide sliding rack; 16. Wave sliding block; 17. Sliding tooth groove; 18. Arc-shaped guide hole; 19. 20. Fixed support block; 21. Arc-shaped connecting spring; 22. V-shaped connecting spring; 23. Arc-shaped connecting strip; 24. Connecting support block; 25. Limiting slip ring; 26. Reinforced linkage ring; 27. Linkage support block; 28. Linkage toothed plate; 29. ​​Rotating toothed ring; 30. Linkage rotating shaft; 31. Sleeve linkage rotating plate; 32. Linkage concave block; 33. Flipping discharge plate; 34. Sleeve shaft plate; 35. Support plate; 36. Connecting support plate; 37. Limiting support ring; 38. Vertical cleaning toothed block. Detailed Implementation

[0027] The technical solutions of the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of the present invention.

[0028] As attached Figure 1-9 The diagram shows a feeding trough for beef cattle. This feeding trough is equipped with a linked horizontal cleaning mechanism, a linked vertical cleaning component, and a linked discharge component. The specific structural configuration of each mechanism and component is as follows:

[0029] When using this embodiment, as shown in the attached document... Figure 1-4 As shown, the linkage horizontal cleaning mechanism includes a linkage screw 3 installed on the inner wall of the guide frame plate 2. One end of the linkage screw 3 extends to the outside of the guide frame plate 2 and is coaxially connected to a reduction linkage motor 4. The outer wall of the linkage screw 3 is provided with a first threaded linkage sleeve 5 and a second threaded linkage sleeve 6 from right to left. The bottom ends of the first threaded linkage sleeve 5 and the second threaded linkage sleeve 6 are both fixedly connected to an arc-shaped linkage slide 7. Arc-shaped guide slides 8 are welded to both ends of the arc-shaped linkage slide 7. A linkage push rod 9 is slidably connected to the inner wall of the arc-shaped guide slide 8. A horizontal cleaning scraper 10 for cleaning the feeding trough 1 is installed at the bottom end of the linkage push rod 9. A vertical linkage cleaning component is provided on the outer wall of the arc-shaped guide slide 8. A linkage discharge component is installed below the first threaded linkage sleeve 5.

[0030] When using this embodiment, as shown in the attached document... Figure 1 As shown, two symmetrically arranged support frames 11 are fixedly connected to one side of the guide frame plate 2. A controller 12 for driving the reduction linkage motor 4 is fixedly connected to one side of one of the support frames 11. A connecting bracket 14 is welded to the top of the support frame 11 so that the expansion bolts can be fixed inside the beef cattle breeding shed at the bottom of the support frame 11, which can provide vertical support for the guide frame plate 2. The support frame 11 supports the connecting bracket 14, and the connecting bracket 14 provides vertical support for the bottom of the guide slide rack 15, thus achieving multi-point support.

[0031] When using this embodiment, as shown in the attached document... Figure 3-6As shown, the vertical linkage cleaning component includes a guide toothed rack 15 disposed on the outer wall of the arc-shaped guide slide 8; the top of the guide toothed rack 15 is integrally formed by die casting with multiple undulating toothed blocks 16, and a toothed groove 17 is formed between two adjacent undulating toothed blocks 16; an arc-shaped guide hole 18 is formed through one side of the inner wall of the arc-shaped guide slide 8; a fixed support block 19 is welded to the outer wall of the arc-shaped guide slide 8 near its top position; below the fixed support block 19, from top to bottom, are arranged an arc-shaped connecting spring 20, a V-shaped connecting spring 21, and an arc-shaped connecting strip 22; the bottom end of the arc-shaped connecting strip 22 is integrally formed by die casting with a connecting support. Block 23, with a limiting slip ring 24 fixedly connected between the connecting support block 23 and the outer wall of the linkage push rod 9. Multiple vertical cleaning tooth blocks 37 are fixedly connected in an arc-shaped equidistant distribution on one side of the transverse cleaning scraper 10. The vertical cross section of the vertical cleaning tooth block 37 is set as an isosceles trapezoid. The arc-shaped connecting spring 20 and the arc-shaped connecting strip 22 are integrally formed with the V-shaped connecting spring 21 by die casting. The bottom end of the limiting slip ring 24 is slidably connected along the outer wall of the arc-shaped guide slide 8. A reinforcing linkage ring 25 is fixedly connected to the outer wall of the linkage push rod 9 near its bottom end. The outer wall of the linkage push rod 9 is slidably connected to the arc-shaped guide slide 8 to which the arc-shaped guide hole 18 belongs.

[0032] When using this embodiment, as shown in the attached document... Figure 7-9 As shown, the linkage discharge assembly includes two linkage support blocks 26 installed below the first threaded linkage sleeve block 5. The two linkage support blocks 26 are respectively fixedly connected to two arc-shaped linkage slides 7. A linkage toothed plate 27 is welded to the opposite side of each of the two linkage support blocks 26, and a rotating toothed ring 28 is meshed and driven below the linkage toothed plate 27. A linkage rotating shaft 29 is fixedly connected to the inner wall of the rotating toothed ring 28 near its center point. A sleeve linkage rotating plate 30 is fixedly connected to the outer wall of the linkage rotating shaft 29 near its rear end. A linkage recess 31 is welded to the top of the sleeve linkage rotating plate 30, and a pressing device is installed on the top of the linkage recess 31. The feeding trough 1 has a tilting discharge plate 32. A sleeve shaft plate 33 is provided between the sleeved linkage rotating plate 30 and the rotating gear ring 28, which is rotatably connected to the linkage rotating shaft 29. A support plate 34 is welded to the top of the sleeve shaft plate 33, and a connecting support plate 35 is welded between the support plate 34 and the feeding trough 1. A protective cover plate 13 for protecting the rotating gear ring 28 is fixedly connected to one side of the connecting support plate 35. The support plate 34 and the connecting support plate 35 are integrally formed by die casting. The sleeved linkage rotating plate 30 and the rotating gear ring 28 are slidably connected to the sleeve shaft plate 33. A limit support ring 36 is fixedly connected to the outer wall of the linkage rotating shaft 29 and located on one side of the rotating gear ring 28.

[0033] The working principle of the feeding trough for beef cattle breeding in this invention is as follows:

[0034] Firstly, during the horizontal linkage self-cleaning process of this invention, the expansion bolts can be fixed inside the beef cattle shed via the bottom of the support base 11. Simultaneously, after the expansion bolts are fixed to the ground, the support base 11 supports the guide frame plate 2 and the connecting bracket 14. The connecting bracket 14 provides vertical support to the bottom of the guide slide rack 15, increasing its vertical stability. The protective cover 13 faces the beef cattle, protecting the rotating toothed ring 28. When the beef cattle's feed is added, residual feed will accumulate after consumption; this process controls... When device 12 starts the deceleration linkage motor 4, it drives the linkage screw 3 to rotate inside the guide frame plate 2. At the same time, the linkage screw 3 drives the first threaded linkage sleeve 5 to move to the right under the action of the thread. The second threaded linkage sleeve 6 drives another arc-shaped linkage slide 7 to move to the left. The arc-shaped linkage slide 7 drives the two arc-shaped guide slides 8 to make the linkage push rod 9 move horizontally. The linkage push rod 9 drives the transverse cleaning scraper 10 to move. The transverse cleaning scraper 10 can scrape impurities transversely along the inside of the feeding trough 1. The two transverse cleaning scrapers 10 can achieve transverse scraping self-cleaning along the inner wall of the feeding trough 1 in two different directions.

[0035] Simultaneously, during the vertical linkage self-cleaning process of this invention, when the linkage push rod 9 moves laterally, it drives the arc-shaped guide slide 8 to slide along one side of the guide slide rack 15. At the same time, the linkage push rod 9 drives the reinforcing linkage ring 25 to move, and the linkage push rod 9 drives the limiting slip ring 24 to move the connecting support block 23. When the limiting slip ring 24 slides along the right inclined surface of the wave slide block 16, the linkage push rod 9 drives the connecting support block 23 to move upward. The connecting support block 23 drives the arc-shaped connecting strip 22 to compress the V-shaped connecting spring 21. The V-shaped connecting spring 21 drives the arc-shaped connecting spring 20 to compress. The arc-shaped guide slide 8 supports the fixed support block 19, and the fixed support block 19 supports the arc-shaped connecting spring 20. Therefore, the linkage push rod 9 can slide upward, and the linkage push rod 9 drives the limiting slip ring 24 upward along the outer wall of the arc-shaped guide slide 8. The sliding linkage push rod 9 drives the horizontal cleaning scraper 10 to rotate upward along the inner wall of the feeding trough 1. The horizontal cleaning scraper 10 drives multiple vertical cleaning tooth blocks 37 to achieve linkage rotation cleaning of the inner wall of the feeding trough 1. When the limiting slip ring 24 moves to the left side of the undulating sliding tooth block 16 and the position of the sliding tooth groove 17, the rebound force of the V-shaped connecting spring 21 drives the arc-shaped connecting strip 22 to move the connecting support block 23 downward. The connecting support block 23 drives the limiting slip ring 24 to make the linkage push rod 9 slide downward along the arc-shaped guide hole 18 on the inner wall of the arc-shaped guide slide 8. The linkage push rod 9 drives the arc-shaped guide slide 8 to slide down. Multiple vertical cleaning tooth blocks 37 can perform vertical cleaning by rotating downward in the feeding trough 1. When the linkage push rod 9 moves horizontally, it can achieve up-and-down reciprocating rotation according to the position of the guide sliding tooth strip 15, thereby achieving vertical linkage cleaning.

[0036] Finally, during the coordinated discharge of the present invention, when the two arc-shaped coordinated slides 7 move laterally in different directions, the arc-shaped coordinated slides 7 drive the coordinated support blocks 26 to move. The two coordinated support blocks 26 can move in different directions. The coordinated support blocks 26 drive the limiting slip ring 24 to rotate the rotating gear ring 28. The rotating gear ring 28 drives the coordinated rotating shaft 29 and the limiting support ring 36 to rotate simultaneously. The coordinated rotating shaft 29 rotates stably inside the sleeve shaft plate 33. At the same time, the connecting support plate 35 supports the support plate 34. The support plate 34 supports the sleeve shaft plate 33. The coordinated rotating shaft 29 drives the sleeve coordinated rotating plate 30 to rotate downward. The sleeve coordinated rotating plate 30 drives the coordinated concave block 31 to rotate the flipping discharge plate 32 downward, which opens the opening of the feeding trough 1. Thus, the lateral cleaning scraper 10 can discharge the feed impurities that have been self-cleaned inside the feeding trough 1 through the opening of the flipping discharge plate 32. The flipping discharge plates 32 on both sides open simultaneously to discharge feed impurities, effectively improving the self-cleaning discharge efficiency.

[0037] All contents not described in detail in the specification are existing technologies known to those skilled in the art, and the model parameters of each electrical appliance are not specifically limited and can be determined using conventional equipment. Electrical control components not mentioned in this technical solution are not shown in the figures because they are existing technologies, and will not be described here.

[0038] The above description is merely a preferred embodiment of the present invention and is not intended to limit the present invention. Any modifications, equivalent substitutions, improvements, etc., made within the spirit and principles of the present invention should be included within the protection scope of the present invention.

Claims

1. A feeding trough for beef cattle, comprising a feeding trough, wherein a guide frame plate is fixedly connected to the bottom of the outer wall of the feeding trough, characterized in that: The guide frame plate is equipped with a linkage horizontal cleaning mechanism; The linkage horizontal cleaning mechanism includes a linkage screw installed on the inner wall of the guide frame plate. One end of the linkage screw extends to the outside of the guide frame plate and is coaxially connected to a reduction linkage motor. The outer wall of the linkage screw has two opposite and symmetrically arranged threads. From right to left, the outer wall of the linkage screw has a first thread linkage sleeve block and a second thread linkage sleeve block. The bottom ends of both the first thread linkage sleeve block and the second thread linkage sleeve block are fixedly connected to an arc-shaped linkage slide. Arc-shaped guide slides are welded to both ends of the arc-shaped linkage slide. A linkage push rod is slidably connected to the inner wall of the arc-shaped guide slide. A horizontal cleaning scraper for cleaning the feeding trough is installed at the bottom end of the linkage push rod. The outer wall of the arc-shaped guide slide is provided with a vertical linkage cleaning component, which includes components set in... The outer wall of the arc-shaped guide slide has a guide toothed rack; the top of the guide toothed rack is integrally formed by die casting with multiple undulating toothed blocks, and a toothed groove is opened between two adjacent undulating toothed blocks. An arc-shaped guide hole is opened through one side of the inner wall of the arc-shaped guide slide. A fixed support block is welded to the outer wall of the arc-shaped guide slide near its top. An arc-shaped connecting spring, a V-shaped connecting spring, and an arc-shaped connecting strip are arranged sequentially from top to bottom below the fixed support block. A connecting support block is integrally formed by die casting at the bottom end of the arc-shaped connecting strip. A limit slip ring is fixedly connected between the connecting support block and the outer wall of the linkage push rod. Multiple vertical cleaning toothed blocks are fixedly connected in an arc-shaped equidistant distribution on one side of the horizontal cleaning scraper. The vertical cross section of the vertical cleaning toothed blocks is set as an isosceles trapezoid. A linkage discharge assembly is installed below the first threaded linkage sleeve block.

2. The feeding trough for beef cattle breeding according to claim 1, characterized in that: The linkage screw and the guide frame plate are rotatably connected by a bearing, and the reduction linkage motor is fixedly connected to the guide frame plate.

3. The feeding trough for beef cattle breeding according to claim 1, characterized in that: Both the first threaded linkage sleeve and the second threaded linkage sleeve are threadedly connected to the outer wall of the linkage screw, and both the first threaded linkage sleeve and the second threaded linkage sleeve are horizontally slidably connected along the inner wall of the guide frame plate.

4. The feeding trough for beef cattle breeding according to claim 1, characterized in that: Both linkage push rods are fixedly connected to the transverse cleaning scraper, and the two linkage push rods are symmetrically arranged about the transverse cleaning scraper.

5. The feeding trough for beef cattle breeding according to claim 1, characterized in that: Two symmetrically arranged support frames are fixedly connected to one side of the guide frame plate. A controller for driving the deceleration linkage motor is fixedly connected to one side of one of the support frames. A connecting bracket is welded to the top of the support frame.

6. The feeding trough for beef cattle breeding according to claim 1, characterized in that: The arc-shaped connecting spring and the arc-shaped connecting strip are integrally formed with the V-shaped connecting spring through die casting, and the bottom end of the limiting slip ring is slidably connected along the outer wall of the arc-shaped guide slide.

7. The feeding trough for beef cattle breeding according to claim 1, characterized in that: A reinforcing linkage ring is fixedly connected to the outer wall of the linkage push rod near its bottom end, and the outer wall of the linkage push rod is slidably connected to the arc-shaped guide carriage to which the arc-shaped guide hole belongs.

8. The feeding trough for beef cattle breeding according to claim 1, characterized in that: The linkage discharge assembly includes two linkage support blocks installed below the first threaded linkage sleeve block. The two linkage support blocks are respectively fixedly connected to two arc-shaped linkage slides. A linkage tooth plate is welded to the opposite side of each of the two linkage support blocks, and a rotating tooth ring is meshed and driven below the linkage tooth plate. A linkage shaft is fixedly connected to the inner wall of the rotating tooth ring near its center point. A sleeve linkage rotating plate is fixedly connected to the outer wall of the linkage rotating shaft near its rear end. A linkage recess is welded to the top of the sleeve linkage rotating plate. A flipping discharge plate for squeezing the feeding trough is installed at the top of the linkage recess. A sleeve shaft plate that is rotatably connected to the linkage shaft is provided between the sleeve linkage rotating plate and the rotating tooth ring. A support plate is welded to the top of the sleeve shaft plate, and a connecting support plate is welded between the support plate and the feeding trough. A protective cover plate for protecting the rotating tooth ring is fixedly connected to one side of the connecting support plate.

9. A feeding trough for beef cattle according to claim 8, characterized in that: The support plate and the connecting support plate are integrally formed by die casting. The sleeve linkage rotating plate and the rotating gear ring are slidably connected to the sleeve shaft plate. The outer wall of the linkage rotating shaft and the position on one side of the rotating gear ring are fixedly connected to a limit support ring.

Citation Information

Patent Citations

  • Convenient-to-clean feeding trough for breeding

    CN112425522A

  • Feed feeding device for livestock breeding

    CN111557251A

  • Cattle and sheep feeding device for animal husbandry

    CN112772430A