Intelligent feeding device for livestock large-scale breeding

By designing intelligent feeding equipment for large-scale livestock farming, the high cost and waste of traditional manual feeding have been solved, automated feeding has been achieved, and feed utilization and farming efficiency have been improved.

CN117397594BActive Publication Date: 2025-10-21INSTITUTE OF ANIMAL SCIENCES OF CHINESE ACADEMY OF AGRICULTURAL SCIENCES
View PDF 3 Cites 0 Cited by

Patent Information

Application Number
CN202311661346.1
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2023-12-06
Publication Date
2025-10-21
Estimated Expiration
2043-12-06

AI Technical Summary

Technical Problem

Traditional manual feeding in large-scale farming requires a large amount of manpower, and it is inconvenient to control the amount and interval of feeding, which affects growth efficiency, causes feed waste, increases costs, and reduces profits.

Method used

Design an intelligent feeding device for large-scale livestock farming, including feeding, feeding evenly, and discharging mechanisms. The device achieves automated feeding through mixing, evenly discharging, and discharging components, controls the feed supply speed, reduces waste, and improves utilization.

Benefits of technology

It achieves automated and intelligent feeding, reduces labor costs, improves feed utilization, reduces waste, lowers breeding costs, and increases efficiency.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure CN117397594B_ABST
    Figure CN117397594B_ABST
Patent Text Reader

Abstract

The present application belongs to the technical field of livestock breeding, and discloses a livestock scale breeding intelligent feeding device, which comprises a feeding mechanism, the feeding mechanism comprises a feeding barrel for containing feed, and a mixing assembly is arranged in the feeding barrel; a uniform feeding mechanism, the uniform feeding mechanism comprises a uniform feeding box fixedly connected with the bottom end of the feeding barrel and in communication with the feeding barrel, and a uniform feeding assembly is arranged in the uniform feeding box; a side wall of the uniform feeding box is provided with a driving assembly, the driving assembly is in transmission connection with the uniform feeding assembly; a discharging mechanism, the discharging mechanism comprises a discharging pipe fixedly connected with the bottom end of the uniform feeding box and in communication with the uniform feeding box, a discharging assembly for controlling the discharge of the feed is arranged in the discharging pipe, and the discharging assembly is in transmission connection with the driving assembly. The present application has the advantages of simple structure, convenient use, automatic intelligent feeding, improved automation and intelligent degree of scale breeding feeding, greatly reduced labor cost of feeding, improved utilization rate of feed, reduced waste, reduced breeding cost, and improved breeding benefit.
Need to check novelty before this filing date? Find Prior Art

Description

Technical Field

[0001] The present invention belongs to the technical field of animal husbandry, and in particular relates to intelligent feeding equipment for large-scale animal husbandry. Background Art

[0002] Large-scale breeding is the development trend of animal husbandry and an important part of modern intensive breeding mode. It increases the scale and output of breeding enterprises, effectively utilizes land, water resources, feed resources, etc., reduces waste and resource occupation, increases sales channels and market share, improves market competitiveness and profitability, reduces breeding costs, improves production efficiency and slaughter rate, and improves breeding benefits.

[0003] However, in the large-scale breeding process, traditional artificial feeding requires a lot of manpower input. At the same time, it is inconvenient to control the amount of artificial feeding and the feeding interval, which is not conducive to precise feeding in large-scale breeding, affects the growth efficiency of the farmed animals, and also causes feed waste, increases breeding costs, and reduces breeding benefits.

[0004] Therefore, this application designs an intelligent feeding device for large-scale livestock farming to solve the above technical problems. Summary of the Invention

[0005] In order to solve the above technical problems, the present invention proposes an intelligent feeding device for large-scale livestock breeding.

[0006] To achieve the above-mentioned purpose, the present invention provides an intelligent feeding device for large-scale livestock breeding, comprising:

[0007] A feeding mechanism, comprising a feeding barrel for containing feed, wherein a mixing assembly is provided in the feeding barrel;

[0008] A screed mechanism, comprising a screed box fixedly connected to and in communication with the bottom end of the feed barrel, wherein a screed assembly is disposed in the screed box; a drive assembly is disposed on the side wall of the screed box, and the drive assembly is in transmission connection with the screed assembly;

[0009] The discharging mechanism includes a discharging pipe fixedly connected to and connected to the bottom end of the screed box, a discharging assembly for controlling the discharge of feed is provided in the discharging pipe, and the discharging assembly is transmission-connected to the driving assembly.

[0010] Preferably, the discharging assembly includes a positioning block fixed in the discharging pipe, a discharging block which is rotatably connected to the positioning block and is transmission-connected to the driving assembly, and a plurality of circumferentially equidistant grooves are provided on the side wall of the discharging block; a switching assembly is provided between the end of the discharging block and the inner wall of the discharging pipe.

[0011] Preferably, the switching assembly includes a positioning member arranged on the side wall of the discharge pipe, the positioning member is transmission-connected to the locking member on the side wall of the discharge block, the locking member is correspondingly arranged and transmission-connected to the positioning member, and the locking member is movably connected to the driving assembly.

[0012] Preferably, the locking member includes a locking hole provided on the discharge block, a locking rod being slidably connected in the locking hole, the locking rod extending out of the locking hole and being detachably connected to the driving assembly; a side wall of the locking hole is connected to a control hole, a control rod being slidably connected in the control hole, one end of the control rod being transmission connected to the locking rod, and the other end of the control rod being transmission connected to the positioning member.

[0013] Preferably, the positioning member includes a positioning groove provided on the side wall of the discharge pipe, a positioning ring is slidably connected in the positioning groove, and the positioning ring extends out of the positioning groove and is detachably connected to the discharge block and the control rod.

[0014] Preferably, the material leveling assembly includes a material leveling spiral piece rotatably connected to the material leveling box, and both ends of the material leveling spiral piece are respectively fixed with fixed pieces; any of the fixed pieces is transmission-connected to the driving assembly.

[0015] Preferably, the driving assembly includes a driving motor arranged on the side wall of the material screed box, the driving motor is transmission-connected to a driving shaft, and the driving shaft is transmission-connected to the discharging block; a driving wheel is provided on the driving shaft, the driving wheel is rotationally connected to a driven wheel on the side wall of the material screed box, and the driven wheel is transmission-connected to the fixed plate.

[0016] Preferably, the bottom end of the feed barrel is fixedly connected to and connected with a connecting pipe, and a control valve is arranged in the connecting pipe; the control valve includes a control motor arranged in the connecting pipe, the output shaft of the control motor is transmission-connected to a driving shaft, and the driving shaft is transmission-connected to a plurality of driven shafts, and valve plates are respectively fixedly mounted on the driving shaft and the driven shafts, and the adjacent valve plates are movably connected.

[0017] Preferably, a monitoring head is provided at the bottom end of the discharge pipe, and the monitoring head is electrically connected to the driving assembly, the discharge assembly and the mixing assembly respectively.

[0018] Preferably, the mixing assembly includes a mixing motor arranged at the top of the feeding barrel, the output shaft of the mixing motor extends into the feeding barrel and is transmission-connected to the mixing shaft, and a plurality of mixing rods are fixedly connected to the side wall of the mixing shaft; a scraper is fixedly connected between the plurality of mixing rods correspondingly arranged above and below, and the scraper is in sliding contact with the inner wall of the feeding barrel.

[0019] Compared with the prior art, the present invention has the following advantages and technical effects: the present invention discloses an intelligent feeding device for large-scale livestock breeding, which is mainly used to realize automatic and intelligent feeding of livestock breeding; when in use, the feed and additives to be fed are placed in a feeding barrel, and mixed by a mixing component to ensure the uniformity of the additives and the feed, thereby ensuring the feeding effect; the evenly mixed feed enters the screed box of the screed mechanism, and is screed by the screed component to evenly distribute the feed in the screed box, ensuring that it evenly enters the discharge pipe of the discharge mechanism, ensuring that all discharge pipes are supplied with feed, thereby realizing automatic feeding; the discharge component in the discharge pipe is used to control the feed supply speed, which is convenient for automatic and intelligent feeding according to feeding needs, and can be fed according to different situations, thereby improving the pertinence while reducing feed waste, improving feed utilization rate, and reducing cost; the driving component is used to provide power for the screed component and the discharge component.

[0020] The present invention has a simple structure and is easy to use, can realize automated intelligent feeding, improves the automation and intelligence level of large-scale breeding feeding, greatly reduces the labor cost of feeding, improves the utilization rate of feed, reduces waste, reduces breeding costs, and improves breeding benefits. BRIEF DESCRIPTION OF THE DRAWINGS

[0021] The accompanying drawings, which constitute part of this application, are intended to provide a further understanding of this application. The exemplary embodiments and descriptions of this application are intended to explain this application and do not constitute an improper limitation on this application. In the accompanying drawings:

[0022] Figure 1 This is a three-dimensional schematic diagram of the intelligent feeding equipment for large-scale livestock farming of the present invention;

[0023] Figure 2 This is a front view of the intelligent feeding equipment for large-scale livestock breeding of the present invention;

[0024] Figure 3 A three-dimensional schematic diagram of the control valve of the present invention;

[0025] Figure 4 This is a front view of the material screed assembly of the present invention;

[0026] Figure 5 This is a schematic diagram of the side structure of the discharge pipe of the present invention;

[0027] Figure 6 For the present invention Figure 5 A partial enlarged view of middle A;

[0028] Figure 7 This is a schematic diagram of the structure of the discharge block of the present invention;

[0029] Figure 8 For the present invention Figure 7 A partial enlarged view of middle B;

[0030] Figure 9 This is a schematic structural diagram of the feed barrel of the present invention;

[0031] Figure: 1, feed barrel; 2, material mixing box; 3, discharge pipe; 4, positioning block; 5, discharge block; 6, clearance groove; 7, positioning piece; 8, locking piece; 9, locking hole; 10, locking rod; 11, control hole; 12, control rod; 13, contact hole; 14, locking spring; 15, locking block; 16, positioning groove; 17, positioning ring; 18, positioning spring; 19, permanent magnet; 20, electromagnet; 21, friction block; 2 2. Support block; 23. Material-leveling spiral blade; 24. Fixed plate; 25. Driving motor; 26. Driving shaft; 27. Clamping block; 28. Driving wheel; 29. ​​Driven wheel; 30. First transmission belt; 31. Connecting pipe; 32. Control motor; 33. Driving shaft; 34. Driven shaft; 35. Valve plate; 36. Monitoring head; 37. Mixing motor; 38. Mixing shaft; 39. Mixing rod; 40. Scraper; 41. Arc pad. DETAILED DESCRIPTION

[0032] The following will clearly and completely describe the technical solutions in the embodiments of the present invention in conjunction with the accompanying drawings. Obviously, the described embodiments are only part of the embodiments of the present invention, not all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without making creative efforts are within the scope of protection of the present invention.

[0033] In order to make the above-mentioned objects, features and advantages of the present invention more obvious and easy to understand, the present invention is further described in detail below with reference to the accompanying drawings and specific embodiments.

[0034] Reference Figures 1-9 As shown, this embodiment provides an intelligent feeding device for large-scale livestock farming, including:

[0035] The feeding mechanism includes a feeding barrel 1 for containing feed, and a mixing component is arranged in the feeding barrel 1;

[0036] The material screed mechanism includes a material screed box 2 fixedly connected to and communicated with the bottom end of the feed barrel 1, and a material screed assembly is provided in the material screed box 2; a driving assembly is provided on the side wall of the material screed box 2, and the driving assembly is in transmission connection with the material screed assembly;

[0037] The discharging mechanism includes a discharging pipe 3 fixedly connected to and connected to the bottom end of the screed box 2. A discharging assembly for controlling the discharge of feed is provided in the discharging pipe 3. The discharging assembly is transmission-connected to the driving assembly.

[0038] The present invention discloses an intelligent feeding device for large-scale animal husbandry, which is mainly used to realize automatic and intelligent feeding of animal husbandry. When in use, the feed and additives to be fed are put into a feeding barrel 1, and mixed by a mixing component to ensure the uniformity of the additives and the feed, thereby ensuring the feeding effect. The evenly mixed feed enters the screed box 2 of the screed mechanism and is screed by the screed component to evenly distribute the feed in the screed box 2, ensuring that it evenly enters the discharge pipe 3 of the discharge mechanism, ensuring that all the discharge pipes 3 are supplied with feed, thereby realizing automatic feeding. The discharge component in the discharge pipe 3 is used to control the supply speed of the feed, which is convenient for automatic and intelligent feeding according to feeding needs, and can be fed according to different situations, thereby improving the pertinence while reducing the waste of feed, improving the feed utilization rate, and reducing the cost. The driving component is used to provide power for the screed component and the discharge component.

[0039] A further optimized solution includes a discharging assembly comprising a positioning block 4 fixedly attached to the discharging tube 3. A discharging block 5, which is in transmission connection with the drive assembly, is rotatably connected within the positioning block 4. The sidewall of the discharging block 5 is provided with a plurality of circumferentially spaced circumferentially arranged clearance slots 6. A switching assembly is provided between the end of the discharging block 5 and the inner wall of the discharging tube 3. The positioning block 4 and the discharging block 5 are adapted to each other. During use, the drive assembly rotates the discharging block 5, causing feed to enter the clearance slots 6 and, driven by the rotating clearance slots 6, pass through the discharging block 5, achieving a quantitative feed supply, more targeted, and reducing feed waste.

[0040] A further optimized solution includes a switching assembly including a positioning member 7 disposed on the side wall of the discharge pipe 3, which is transmission-connected to a locking member 8 on the side wall of the discharge block 5. The locking member 8 is correspondingly disposed and transmission-connected to the positioning member 7, and the locking member 8 is movably connected to the drive assembly. The switching assembly is used to switch the positioning relationship between the discharge block 5 and the discharge pipe 3. When feed is being fed, the discharge block 5 is transmission-connected to the drive assembly, thereby enabling rotation. After feed feeding is completed, the switching assembly controls the separation of the discharge block 5 from the drive assembly and simultaneously locks the discharge block 5 to prevent it from being deflected by the feed.

[0041] To further optimize the solution, the locking piece 8 includes a locking hole 9 opened on the discharge block 5, a locking rod 10 is slidably connected in the locking hole 9, the locking rod 10 extends out of the locking hole 9 and is detachably connected to the drive assembly; the side wall of the locking hole 9 is connected to a control hole 11, a control rod 12 is slidably connected in the control hole 11, one end of the control rod 12 is transmission connected to the locking rod 10, and the other end of the control rod 12 is transmission connected to the positioning piece 7. When feeding feed, the positioning member 7 is separated from the control rod 12, and the locking block 15 at the bottom end of the locking rod 10 is pushed by the locking spring 14, so that the locking block 15 abuts and gets stuck with the driving assembly, so that the discharging block 5 rotates under the drive of the driving assembly, and continuously transports the feed through a number of give way slots 6 to realize the quantitative supply of the feed; when the feed is stopped, the positioning member 7 pushes the control rod 12, so that the inclined surface at the end of the control rod 12 contacts the contact hole 13 on the locking rod 10, driving the locking rod 10 to move, so that the locking block 15 is separated from the driving assembly, and the driving assembly no longer drives the discharging block 5 to rotate and stops transporting the feed; at the same time, the positioning member 7 can also abut against the end of the discharging block 5, jam the discharging block 5, and improve stability.

[0042] As a further optimized solution, the positioning member 7 includes a positioning groove 16 provided on the side wall of the discharge pipe 3 , a positioning ring 17 is slidably connected in the positioning groove 16 , and the positioning ring 17 extends out of the positioning groove 16 and is detachably connected to the discharge block 5 and the control rod 12 . One end of the positioning ring 17 located in the positioning groove 16 is fixedly connected to a permanent magnet 19, and the bottom end of the positioning groove 16 is fixedly connected to an electromagnet 20 adapted to the permanent magnet 19, and a positioning spring 18 is provided between the positioning ring 17 and the positioning groove 16 to realize the control of the positioning ring 17; when it is necessary to feed, the electromagnet 20 is energized, the permanent magnet 19 and the electromagnet are attracted, the positioning ring 17 is separated from the control rod 12, and no force is applied to the control rod 12; and when it is necessary to lock the discharging block 5, the electromagnet 20 is de-energized, the positioning spring 18 pushes the positioning ring 17 to move toward the control rod 12, and pushes the control rod 12 to separate the locking block 15 from the driving assembly; at the same time, the positioning ring 17 is stuck with the side wall of the discharging block 5, which increases the stability of the discharging block 5.

[0043] Furthermore, a friction block 21 is fixed to one end of the positioning ring 17 facing the discharge block 5 , and a support block 22 adapted to the friction block 21 is fixed to the end of the discharge block 5 , thereby increasing the stability of the discharge block 5 .

[0044] A further optimized solution includes a screed 23 rotatably connected to the screed box 2. Stator plates 24 are fixedly attached to each end of the screed 23. Each stator plate 24 is in driving connection with a drive assembly. The drive assembly rotates the screed 23 between the two stator plates 24. The hollow screed 23 screed level the feed that falls from the feed bucket 1 into the screed box 2, ensuring even distribution of the feed.

[0045] Furthermore, a plurality of arc-shaped pads 41 are provided at the bottom end of the material screed box 2 , and the arc-shaped pads 41 are provided between adjacent discharge pipes 3 to prevent feed from piling up.

[0046] In a further optimized solution, the drive assembly includes a drive motor mounted on the side wall of the screed box 2, which is in transmission connection with a drive shaft 26, which is in transmission connection with the discharge block 5. A driving wheel 28 is mounted on the drive shaft 26, which is in transmission connection with a driven wheel 29 rotatably connected to the side wall of the screed box 2, which is in transmission connection with the fixed plate 24. The drive motor drives the drive shaft 26 to rotate, which in turn drives the discharge block 5 to rotate, achieving quantitative feed supply. Simultaneously, the driving wheel 28 on the drive shaft 26 drives the driven wheel 29 to rotate via a first transmission belt 30, which in turn drives the screed spiral 23 to achieve screeding.

[0047] Furthermore, a clamping block 27 is sleeved and fixed on the driving shaft 26 , and the clamping block 27 is arranged corresponding to the discharge block 5 . The locking block 15 is detachably connected to the outer wall of the clamping block 27 to drive the discharge block 5 .

[0048] Further optimization scheme, the bottom end of the feeding barrel 1 is fixedly connected and connected with a connecting pipe 31, and a control valve is provided in the connecting pipe 31; the control valve includes a control motor 32 provided in the connecting pipe 31, the output shaft of the control motor 32 is connected to the driving shaft 33, the driving shaft 33 is connected to a plurality of driven shafts 34, and the driving shaft 33 and the driven shaft 34 are respectively sleeved with valve plates 35, and the adjacent valve plates 35 are movably connected. Figure 3 As shown, the control valve is used to control the feed in the feeding barrel 1 to enter the screed box 2; the control motor 32 of the control valve drives the driving shaft 33 to rotate, and the driving shaft 33 drives several driven shafts 34 to rotate synchronously in the same direction through the meshing gears and the second transmission belt. This is a conventional solution and will not be repeated here; when the driving shaft 33 and the driven shaft 34 rotate, the valve plate 35 is driven to rotate, so that the adjacent valve plates 35 are engaged or separated, which facilitates the passage of feed through the gaps between the valve plates 35, thereby realizing the regular supply of feed to the screed box 2.

[0049] Furthermore, adjacent valve plates 35 are engaged with each other through corresponding protrusions and grooves, making it easier to position the valve plates 35 .

[0050] As a further optimization, a monitoring head 36 is installed at the bottom end of the discharge pipe 3. The monitoring head 36 is electrically connected to the drive assembly, the discharge assembly, and the mixing assembly. The monitoring head 36 is installed on the end of the discharge pipe 3 facing the discharge port to monitor the feed residue and the livestock's feeding and growth status, thereby controlling the corresponding movement of the drive assembly, the discharge assembly, and the mixing assembly.

[0051] Furthermore, the present invention is also provided with probes for monitoring the feed remaining amount in the screed box 2 and the feed barrel 1. These probes are existing equipment and will not be described in detail here.

[0052] Furthermore, the monitoring head 36 of this embodiment is also electrically connected to the intelligent module of this device, which can monitor the feed residue and residual amount in the livestock feed trough, and automatically clean it when it reaches a certain level. The method of cleaning the feed trough is existing technology and will not be repeated here.

[0053] A further optimized solution includes a mixing assembly comprising a mixing motor 37 mounted at the top of the feed barrel 1. The output shaft of the mixing motor 37 extends into the feed barrel 1 and is drivingly connected to a mixing shaft 38. A plurality of mixing rods 39 are fixedly connected to the sidewalls of the mixing shaft 38. Scrapers 40 are fixedly connected between the plurality of mixing rods 39, which are arranged in a corresponding manner above and below. The scrapers 40 are in sliding contact with the inner wall of the feed barrel 1. The mixing motor 37 drives the mixing shaft 38 to rotate, thereby mixing the feed through the mixing rods 39. The scrapers 40, which are close to the feed barrel 1, are used to clean the barrel wall to prevent the feed from sticking. This also prevents additives such as added pharmaceuticals from sticking to the barrel wall, resulting in insufficient application.

[0054] Furthermore, a feed port with a feed valve is provided at the top of the feed barrel 1 .

[0055] In the description of the present invention, it should be understood that the terms "longitudinal", "transverse", "up", "down", "front", "back", "left", "right", "vertical", "horizontal", "top", "bottom", "inside", "outside", etc., indicating the orientation or position relationship, are based on the orientation or position relationship shown in the accompanying drawings, and are only for the convenience of describing the present invention, rather than indicating or implying 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.

[0056] The embodiments described above are merely descriptions of preferred embodiments of the present invention and are not intended to limit the scope of the present invention. Without departing from the spirit of the present invention, various modifications and improvements made to the technical solutions of the present invention by persons skilled in the art should fall within the scope of protection defined by the claims of the present invention.

Claims

1. An intelligent feeding device for large-scale livestock breeding, characterized in that: include: A feeding mechanism, the feeding mechanism comprising a feeding barrel (1) for containing feed, wherein a mixing assembly is provided in the feeding barrel (1); A material screed mechanism, the material screed mechanism comprising a material screed box (2) fixedly connected to and in communication with the bottom end of the feed barrel (1), a material screed assembly being provided in the material screed box (2); a drive assembly being provided on a side wall of the material screed box (2), the drive assembly being in transmission connection with the material screed assembly; A discharge mechanism, the discharge mechanism comprising a discharge pipe (3) fixedly connected to and connected to the bottom end of the screed box (2), a discharge assembly for controlling the discharge of feed being provided in the discharge pipe (3), and the discharge assembly being in transmission connection with the drive assembly; The discharging assembly comprises a positioning block (4) fixedly connected to the discharging pipe (3), a discharging block (5) which is in transmission connection with the driving assembly is rotatably connected to the positioning block (4), and a plurality of circumferentially equidistant grooves (6) are provided on the side wall of the discharging block (5); a switching assembly is provided between the end of the discharging block (5) and the inner wall of the discharging pipe (3); The switching assembly includes a positioning member (7) arranged on the side wall of the discharge pipe (3), a locking member (8) arranged on the side wall of the discharge block (5) and correspondingly arranged and transmission-connected to the positioning member (7), and the locking member (8) is movably connected to the driving assembly; The locking member (8) includes a locking hole (9) provided on the discharging block (5), a locking rod (10) being slidably connected in the locking hole (9), the locking rod (10) extending out of the locking hole (9) and being detachably connected to the driving assembly; a side wall of the locking hole (9) is connected to a control hole (11), a control rod (12) being slidably connected in the control hole (11), one end of the control rod (12) being transmission-connected to the locking rod (10), and the other end of the control rod (12) being transmission-connected to the positioning member (7); The positioning member (7) includes a positioning groove (16) provided on the side wall of the discharge pipe (3), a positioning ring (17) is slidably connected in the positioning groove (16), and the positioning ring (17) extends out of the positioning groove (16) and is detachably connected to the discharge block (5) and the control rod (12); One end of the positioning ring (17) located in the positioning groove (16) is fixedly connected to a permanent magnet (19), the bottom end of the positioning groove (16) is fixedly connected to an electromagnet (20) adapted to the permanent magnet (19), and a positioning spring (18) is provided between the positioning ring (17) and the positioning groove (16); A locking spring (14) is sleeved on one end of the locking rod (10) close to the driving assembly, and the end of the locking spring (14) close to the driving assembly is fixed to a locking block (15) fixed to the end of the locking rod (10), and the locking block (15) is detachably connected to the driving assembly; When feed needs to be supplied, the electromagnet (20) is energized, the permanent magnet (19) and the electromagnet (20) are attracted, the positioning ring (17) is separated from the control rod (12), and no force is applied to the control rod (12); the locking block (15) at the bottom end of the locking rod (10) is pushed by the locking spring (14), so that the locking block (15) abuts and is stuck with the driving component, so that the discharging block (5) rotates under the drive of the driving component, and the feed is continuously transported through the plurality of the giving slots (6), thereby realizing quantitative supply of feed; When the feed is not supplied, the discharging block (5) needs to be locked, the electromagnet (20) is powered off, and the positioning spring (18) pushes the positioning ring (17) to move toward the control rod (12), pushing the control rod (12) to separate the locking block (15) from the driving assembly; at the same time, the positioning ring (17) abuts and is stuck against the side wall of the discharging block (5), thereby increasing the stability of the discharging block (5).

2. The intelligent feeding equipment for large-scale livestock farming according to claim 1 is characterized by: The material leveling assembly comprises a material leveling spiral piece (23) rotatably connected to the material leveling box (2), and fixed pieces (24) are respectively fixed to both ends of the material leveling spiral piece (23); any of the fixed pieces (24) is transmission-connected to the driving assembly.

3. The intelligent feeding equipment for large-scale livestock farming according to claim 2 is characterized in that: The driving assembly comprises a driving motor (25) arranged on the side wall of the screed box (2), the driving motor (25) being transmission-connected to a driving shaft (26), the driving shaft (26) being transmission-connected to the discharging block (5); a driving wheel (28) being provided on the driving shaft (26), the driving wheel (28) being transmission-connected to a driven wheel (29) rotatably connected to the side wall of the screed box (2), the driven wheel (29) being transmission-connected to the fixing plate (24).

4. The intelligent feeding equipment for large-scale livestock farming according to claim 1 is characterized in that: The bottom end of the feed barrel (1) is fixedly connected to and communicated with a communicating pipe (31), and a control valve is arranged in the communicating pipe (31); the control valve includes a control motor (32) arranged in the communicating pipe (31), the output shaft of the control motor (32) is transmission-connected to a driving shaft (33), the driving shaft (33) is transmission-connected to a plurality of driven shafts (34), and valve plates (35) are respectively sleeved and fixed on the driving shaft (33) and the driven shaft (34), and adjacent valve plates (35) are movably connected.

5. The intelligent feeding equipment for large-scale livestock farming according to claim 1 is characterized in that: A monitoring head (36) is provided at the bottom end of the discharge pipe (3), and the monitoring head (36) is electrically connected to the drive assembly, the discharge assembly, and the mixing assembly, respectively.

6. The intelligent feeding equipment for large-scale livestock farming according to claim 1 is characterized by: The mixing assembly includes a mixing motor (37) arranged at the top of the feeding barrel (1), the output shaft of the mixing motor (37) extends into the feeding barrel (1) and is transmission-connected to a mixing shaft (38), and a plurality of mixing rods (39) are fixedly connected to the side wall of the mixing shaft (38); a scraper (40) is fixedly connected between the plurality of mixing rods (39) arranged correspondingly above and below, and the scraper (40) is in sliding contact with the inner wall of the feeding barrel (1).

Citation Information

Patent Citations

  • Meticulous feeding system in pig farm

    CN208624345U

  • Dry-wet mixed pig feed trough

    CN211886420U

  • Feed distributing device for livestock

    CN215500865U