Automatic adjusting feeding device for livestock breeding

By using an automated feeding device combined with temperature sensors and a control module, the problem of seasonal feeding regulation has been solved, enabling intelligent feed distribution and cleaning, and improving the efficiency and economic benefits of livestock farming.

CN121713866APending Publication Date: 2026-03-24ZHENGZHOU LIWEI MASCH EQUIP CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-09-24
Publication Date
2026-03-24

AI Technical Summary

Technical Problem

Existing livestock feeding devices are difficult to automatically adjust the amount of feed according to seasonal changes, leading to heat stress in summer or insufficient nutrition in winter. They are also inconvenient to clean, affecting breeding efficiency and economic benefits.

Method used

It adopts an automated feeding adjustment device, combined with a temperature sensor and control module, and adjusts the position of the feed baffle through the drive component to realize intelligent dynamic adjustment of the feeding amount. It is also equipped with modularly designed storage, discharging and distributing components to ensure uniform feed distribution and cleaning efficiency.

Benefits of technology

It enables automatic adjustment of feeding amount based on temperature, reduces manual intervention, improves feeding accuracy and breeding efficiency, reduces labor intensity and costs, and ensures healthy growth of livestock and poultry and economic benefits.

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Abstract

The invention discloses an automatic adjusting feeding device for livestock breeding, which comprises a material storage assembly, and the material storage assembly comprises a material storage plate and a plurality of material storage tanks which are sequentially arranged on the material storage plate from left to right at intervals. According to the automatic adjusting feeding device for livestock breeding, through the linkage design of the control module, the temperature sensor and the driving part, intelligent dynamic adjustment of the feeding amount is achieved, the temperature sensor monitors the breeding environment temperature in real time, and when the temperature rises in summer, livestock and poultry are prone to heat stress reactions such as'not eating feed and breathing with the mouth ', and the feeding amount can be adjusted automatically. The control module can automatically trigger the driving piece to adjust the position of the material blocking barrel, and the discharging caliber of the discharging barrel is reduced to reduce the feeding amount; when the temperature is reduced in winter and the livestock and poultry need more energy to maintain growth, the discharging amount can be increased through reverse adjustment, the feeding requirements in different seasons can be met without manual intervention, and the problems of feed waste or insufficient nutrition of the livestock and poultry caused by untimely manual adjustment are solved.
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Description

Technical Field

[0001] This invention relates to the field of livestock breeding technology, specifically to an automated feeding regulation device for livestock breeding. Background Technology

[0002] With the rapid development of the livestock breeding industry, large-scale and intensive breeding models have become the mainstream trend. As one of the core links in the breeding process, the efficiency and accuracy of feeding directly affect breeding costs, livestock growth, and economic benefits.

[0003] Although current livestock feeding devices on the market have achieved basic automatic feeding functions, there are still problems in actual application. In winter, if the flock is in good spirits, has normal feces, and meets the standards for egg production / weight gain, it means that the feeding amount is appropriate. In summer, if the flock shows signs of "not eating, breathing with open mouth, and diarrhea", it may be due to excessive feeding or heat stress. It is necessary to reduce the feed in time and strengthen ventilation and cooling.

[0004] The existing device relies heavily on manual adjustment of the mechanical structure for adjusting the feed output, such as adjusting the opening of the feed outlet baffle. This is inconvenient and cannot be adjusted according to summer and winter. Furthermore, the feed trough is designed as a closed or semi-closed structure, which makes cleaning difficult. Therefore, further optimization is needed to address these issues. Summary of the Invention

[0005] To address the shortcomings of existing technologies, this invention provides an automated feeding adjustment device for livestock farming, which solves the problems mentioned in the background section.

[0006] To achieve the above objectives, the present invention provides the following technical solution: an automated adjustable feeding device for livestock farming, comprising, A material storage assembly includes a material storage plate, a plurality of material storage tanks arranged at intervals from left to right on the material storage plate, a water storage tank between the plurality of material storage tanks, support members at the bottom of the left and right ends of the material storage plate, a discharge cylinder communicating with the bottom of the material storage tank, and a guide plate at the bottom of the discharge cylinder. The discharge assembly includes a rotating shaft that passes through the inside of the discharge cylinder, a material guide plate located on the outer wall of the rotating shaft inside the discharge cylinder, a baffle cylinder for adjusting the discharge amount inside the right end of the discharge cylinder, and a multi-segment reciprocating screw rotatably connected to the front of the discharge cylinder, wherein the baffle cylinder is provided on the surface of the multi-segment reciprocating screw rotatably via a connecting rod. The material distribution assembly includes a plurality of material distribution components disposed between the support members and arranged below the guide plate along both the front and rear ends; The right end of the support member is equipped with a drive unit that drives the multi-segment reciprocating screw and the rotating shaft to rotate. A control module is provided on the upper surface of the right end of the support member. A temperature sensor is provided on the side of the right end of the storage plate and is electrically connected to the control module and the drive unit.

[0007] Preferably, the support includes a support plate one located at the left end of the storage plate and a support plate two located at the right end of the storage plate. One side of the support plate one is provided with a motor one that is connected to the left end of the power rod.

[0008] Preferably, the material distribution component includes multiple material distribution belts one and two, with a power rod passing through one end of material distribution belt one and material distribution belt two near the guide plate, and a positioning seat provided at the other end of material distribution belt one and material distribution belt two; The power rod extends into the outer wall of the second material distribution belt and is provided with a helical gear. Inside the second material distribution belt, near the power rod, there is a gear rod that meshes with the helical gear. Both ends of the gear rod pass through the second material distribution belt and are fixedly connected to supports.

[0009] Preferably, the right end of the power rod is rotatably connected to one side of the support plate two, and the surfaces of the first and second material distribution belts are provided with a plurality of equidistant material distribution plates, and the upper surface of the positioning seat and the part near the material distribution component are provided with a cleaning rod.

[0010] Preferably, the top of the storage tank is provided with a connecting pipe, the top of the connecting pipe is provided with a conveying cylinder, the inside of the conveying cylinder is provided with a spiral conveying rod, the right end of the connecting pipe is provided with a second motor, the output end of the second motor extends into the inside of the connecting pipe and is connected to the right end of the spiral conveying rod, and the left end of the connecting pipe is provided with a feed inlet.

[0011] Preferably, the driving component includes a motor three disposed on one side of the support plate two, the output end of the motor three extending into the interior of the support plate two and having a driving rod, and a power disc one and a power disc two disposed sequentially from right to left around the circumference of the driving rod.

[0012] Preferably, the drive rod is provided with two transmission components that drive its rotation near the first and second power disks, and are arranged in opposite directions. The first and second power disks are provided with slots in opposite directions near the transmission components. The transmission component includes a connecting rod and a spring that are rotatable on the surface of the drive rod, wherein the other end of the spring is located on the side of the connecting rod away from the drive rod, and the other end of the connecting rod is movably connected to the inside of the slot.

[0013] Preferably, the first power disc is circumferentially fitted with a belt, the other end of which is wound around the outer wall of the right end of the multi-section reciprocating lead screw. The surface of the second power disc is provided with a toothed layer. The right end of the rotating shaft extends into the interior of the second support plate and is provided with an auxiliary gear that meshes with the toothed layer.

[0014] Preferably, the bottom of the front and rear sides of the storage plate is provided with a protective plate, a drainage groove is provided at the bottom of the protective plate, and an arc-shaped protrusion is provided on the side of the protective plate. The top of the water tank is provided with a water inlet pipe.

[0015] Preferably, the bottom of the front and rear sides of the water storage tank is provided with a water outlet pipe, the bottom end of which is located above the drainage trough. A solenoid valve is provided on the surface of the water outlet pipe and is electrically connected to the control module. A detachable water filter cover is fitted on the bottom end of the water outlet pipe.

[0016] The present invention has the following beneficial effects: This is an automated feeding adjustment device for livestock farming. Through the linkage design of the control module, temperature sensor and drive component, the device realizes intelligent dynamic adjustment of the feeding amount. The temperature sensor monitors the temperature of the breeding environment in real time. When the temperature rises in summer and livestock and poultry are prone to heat stress reactions such as "not eating and breathing with open mouth", the control module can automatically trigger the drive component to adjust the position of the feed baffle and reduce the discharge diameter of the feed hopper to reduce the feeding amount. When the temperature drops in winter and livestock and poultry need more energy to maintain growth, the device can reverse the adjustment to increase the feed output. It can match the feeding needs of different seasons without manual intervention, avoiding feed waste or insufficient nutrition of livestock and poultry caused by untimely manual adjustment, and significantly improving the accuracy of feeding and breeding efficiency. This automated feeding adjustment device for livestock farming, through the cooperation of a motor, a drive rod, and a transmission component, can synchronously drive multiple reciprocating screws and rotating shafts to achieve stable displacement adjustment of the feed baffle and ensure uniform feed drop through the feed plate, avoiding feed blockage. This further ensures the stability and continuity of feed adjustment. Compared with the traditional method of manually adjusting mechanical baffles, it is more convenient to operate, has higher adjustment precision, and significantly reduces the labor intensity of farmers. This automated feeding device for livestock farming, when driven by a motor, rotates a power rod, which in turn rotates a feed distribution belt. The gear and helical gears then rotate a second feed distribution belt, causing both belts to feed in opposite directions. Several equidistant feed distribution plates on the surface of the belts divide the feed delivered by the guide plate, ensuring that each animal receives feed and preventing growth disparities caused by competition for food. Through the coordinated design of feed distribution belts one and two with the distribution plates, the device's feed distribution components can transport uneaten feed to a designated location for collection, preventing the consumption of accumulated feed and reducing health risks such as mycotoxin poisoning and intestinal diseases. This ensures stable growth and egg production for the flock, while also reducing feed costs and disease treatment expenses, further improving the economic benefits of livestock farming. A cleaning rod automatically cleans the feed on the distribution plate area, improving the efficiency of cleaning the feed troughs for workers. This is an automated feeding device for livestock farming. The device adds a screw conveyor-type automatic feeding structure to the existing feed storage assembly, solving the problem of frequent manual feeding required by traditional devices. A screw conveyor is installed inside the feed cylinder at the top of the feed tank. When the motor drives the screw conveyor to rotate, feed is automatically conveyed from the outside into the feed tank through the feed inlet, eliminating the need for manual feed handling. This is particularly suitable for the large-capacity feed storage needs of large-scale farms, reducing labor costs and labor intensity. The control module can open the solenoid valve, allowing water from inside the water tank to flow into the drainage trough through the outlet pipe, facilitating watering operations. This is an automated feeding adjustment device for livestock farming. The components of this device (storage component, discharge component, and distribution component) adopt a modular design. The components are assembled with standard connecting parts such as shafts, connecting rods, and gears. No complicated on-site debugging is required during installation, reducing the installation difficulty. During later maintenance, faulty parts can be disassembled and replaced individually without disassembling the entire device, reducing maintenance costs and downtime. Attached Figure Description

[0017] Figure 1 This is a three-dimensional structural diagram of the present invention; Figure 2 This is a schematic diagram of the disassembly structure of the present invention; Figure 3 This is a schematic diagram of the disassembly structure of the protective plate of the present invention; Figure 4 This is a schematic diagram of the internal structure of the first and second material distribution belts of the present invention; Figure 5 This is a schematic diagram of the driving component structure of the present invention; Figure 6 This is a schematic diagram of the disassembly structure of the feed cylinder of the present invention; Figure 7 This is a schematic cross-sectional view of the material storage plate of the present invention; Figure 8 For the present invention Figure 4 Enlarged structural diagram at point A in the middle; Figure 9 For the present invention Figure 2 Enlarged structural diagram at point B; Figure 10 For the present invention Figure 3 Enlarged structural diagram at point C.

[0018] The components include: 1. Storage tank; 2. Water tank; 3. Support component; 301. Support plate one; 302. Support plate two; 4. Feeding cylinder; 5. Guide plate; 6. Rotating shaft; 7. Pushing plate; 8. Baffle cylinder; 9. Material distribution component; 901. Material distribution belt one; 902. Material distribution belt two; 10. Multi-segment reciprocating screw; 11. Power rod; 12. Helical gear; 13. Control module; 14. Temperature sensor; 15. Motor one; 16. Gear rod; 17. Support; 18. Material distribution plate; 19. Positioning seat. 20. Sweeping rod; 21. Connecting pipe; 22. Feed cylinder; 23. Screw conveyor rod; 24. Motor II; 25. Feed inlet; 26. Motor III; 27. Drive rod; 28. Power disc I; 29. ​​Power disc II; 30. Transmission component; 3001. Connecting rod; 3002. Spring; 31. Slot; 32. Belt; 33. Toothed layer; 34. Auxiliary gear; 35. Guard plate; 36. Drainage trough; 37. Water inlet pipe; 38. Water outlet pipe; 39. Solenoid valve; 40. Filter cover. Detailed Implementation

[0019] 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.

[0020] Please see Figures 1 to 10 The present invention provides an automated feeding device for livestock farming; including a storage component, the storage component including a storage plate, a plurality of storage tanks 1 arranged at intervals from left to right on the storage plate, a water tank 2 provided between the plurality of storage tanks 1, support members 3 provided at the bottom of the left and right ends of the storage plate, a feeding cylinder 4 connected to the bottom of the storage tank 1, and a guide plate 5 provided at the bottom of the feeding cylinder 4. The discharge assembly includes a rotating shaft 6 that passes through the inside of the discharge cylinder 4, a material-pushing plate 7 located on the outer wall of the rotating shaft 6 inside the discharge cylinder 4, a baffle cylinder 8 for adjusting the discharge amount inside the right end of the discharge cylinder 4, and a multi-segment reciprocating screw 10 rotatably connected to the front of the discharge cylinder 4, wherein the baffle cylinder 8 is provided on the surface of the multi-segment reciprocating screw 10 through a connecting rod. The material distribution assembly includes multiple material distribution components 9 disposed between the support members 3 and arranged along the front and rear ends below the guide plate 5; like Figure 2-3 As shown, the support member 3 can support the storage plate to maintain its stability. The discharge end of the guide plate 5 is inclined, corresponding to the position of the feed distribution member 9, so that the feed can be discharged to the upper surface of the feed distribution member 9.

[0021] The right end of the support member 3 is equipped with a drive unit that drives the multi-segment reciprocating screw 10 and the rotating shaft 6 to rotate. The upper surface of the right end of the support member 3 is equipped with a control module 13. The side of the right end of the storage plate is equipped with a temperature sensor 14, which is electrically connected to the control module 13 and the drive unit.

[0022] When it is necessary to automatically adjust the discharge rate, a specified temperature value can be set for the temperature sensor 14; When summer temperatures rise (reaching a set threshold) and livestock and poultry are prone to heat stress reactions such as "not eating and breathing with open mouths", the temperature sensor 14 sends an electrical signal to the control module 13, which uses the drive component to adjust the position of the feed baffle 8 and reduce the discharge diameter of the feed cylinder 4 to reduce the amount of feed. When temperatures drop in winter and livestock and poultry need more energy to maintain growth, the position of the feed chute 8 can be adjusted again to increase the feed output. This can match the feeding needs of different seasons without manual intervention, avoiding feed waste or insufficient nutrition for livestock and poultry due to untimely manual adjustments.

[0023] The support member 3 includes a support plate 301 located at the left end of the storage plate and a support plate 302 located at the right end of the storage plate. A motor 15 connected to the left end of the power rod 11 is provided on one side of the support plate 301. The material distribution member 9 includes multiple material distribution belts 901 and 902. The power rod 11 is provided through one end of the material distribution belts 901 and 902 near the guide plate 5. The other end of the material distribution belts 901 and 902 is provided with a positioning seat 19. The positioning seat 19 can be used to position the first material distribution belt 901 and the second material distribution belt 902, thus maintaining their stability during use. The power rod 11 extends to the outer wall of the inner part of the second distribution belt 902 and is provided with a helical gear 12. Inside the second distribution belt 902, near the power rod 11, there is a gear rod 16 that meshes with the helical gear 12. Both ends of the gear rod 16 pass through the second distribution belt 902 and are fixedly connected to the support 17. The right end of the power rod 11 is rotatably connected to one side of the second support plate 302. The surfaces of the first distribution belt 901 and the second distribution belt 902 are provided with a number of equidistant distribution plates 18. The upper surface of the positioning seat 19, near the distribution component 9, is provided with a cleaning rod 20.

[0024] When the motor 15 is started, the power rod 11 can be rotated. Since the helical gear 12 is meshed with the gear rod 16, the feed distribution belt 901 conveys feed towards the front end; the feed distribution belt 902 conveys feed towards the rear end. When the conveyed feed is close to the end, it stops. At this time, livestock and poultry can be fed on the upper surfaces of the feed distribution belt 901 and the feed distribution belt 902. Once the feed on its surface has been consumed, the motor 15 is restarted to move the feed and transport the remaining feed to the end (the end furthest from the guide plate 5) for collection and processing.

[0025] The top of the storage tank 1 is provided with a connecting pipe 21, and a conveying cylinder 22 is provided at the top of the connecting pipe 21. The inside of the conveying cylinder 22 is provided with a screw conveying rod 23. A motor 24 is provided at the right end of the connecting pipe 21. The output end of the motor 24 extends into the inside of the connecting pipe 21 and is connected to the right end of the screw conveying rod 23. A feed inlet 25 is provided at the left end of the connecting pipe 21.

[0026] When the motor 24 is started, the screw conveyor 23 can be driven to rotate. When the feed enters the inside of the feed cylinder 22 from the feed inlet 25, the feed is connected to the storage tank 1 through the connecting pipe 21, so the feed is replenished.

[0027] The driving component includes a motor 26 located on one side of the support plate 2 302. The output end of the motor 26 extends into the interior of the support plate 2 302 and is provided with a drive rod 27. On the circumference of the drive rod 27, from right to left, there are a power disc 28 and a power disc 29.

[0028] The drive rod 27 is provided with two transmission components 30 near the power disk 1 28 and the power disk 29, which drive it to rotate and are arranged in opposite directions. The power disk 1 28 and the power disk 29 are provided with slots 31 in opposite directions near the transmission components 30. The transmission component 30 includes a connecting rod 3001 and a spring 3002 rotatably disposed on the surface of the drive rod 27, wherein the other end of the spring 3002 is disposed on the side of the connecting rod 3001 away from the drive rod 27, and the other end of the connecting rod 3001 is movably connected to the inside of the slot 31.

[0029] A belt 32 is circumferentially fitted on the power disc 28. The other end of the belt 32 is wrapped around the outer wall of the right end of the multi-section reciprocating screw 10. The surface of the power disc 29 is provided with a toothed layer 33. The right end of the rotating shaft 6 extends into the interior of the support plate 202 and is provided with an auxiliary gear 34, which meshes with the toothed layer 33. When the motor 26 is started and rotates forward, it can drive the power disk 29 to rotate with the cooperation of the transmission component 30. Since the toothed layer 33 is meshed with the auxiliary gear 34, it drives the rotating shaft 6 to rotate. Since the feeding plate 7 is located on the outer wall of the rotating shaft 6, it drives the feeding plate 7 to rotate, so that the feed is evenly discharged from the guide plate 5 and conveyed to the surface of the feeding component 9. When motor 26 reverses, it can drive power disc 28 to rotate with the cooperation of transmission component 30. Since power disc 28 is wound around the surface of multi-segment reciprocating screw 10 through belt 32, it drives it to rotate synchronously. Since baffle cylinder 8 is set on the surface of multi-segment reciprocating screw 10 through connecting rod, when multi-segment reciprocating screw 10 rotates, baffle cylinder 8 can move left and right, thereby adjusting the size of the opening between lower cylinder 4 and guide plate 5, which is convenient for adjusting the discharge amount.

[0030] The bottom of the front and rear sides of the storage plate is provided with a protective plate 35, the bottom of the protective plate 35 is provided with a drainage groove 36, and the side of the protective plate 35 is provided with an arc-shaped protrusion. The top of the water tank 2 is provided with a water inlet pipe 37, and the bottom of the front and rear sides of the water tank 2 is provided with a water outlet pipe 38. The bottom end of the water outlet pipe 38 is located above the drainage groove 36. A solenoid valve 39 is provided on the surface of the water outlet pipe 38 and is electrically connected to the control module 13. The bottom end of the water outlet pipe 38 is fitted with a detachable water filter cover 40.

[0031] The guard plate 35 can protect the feed cylinder 4 and the multi-section reciprocating screw 10, improve their service life, and reduce damage caused by external collisions. The water inlet pipe 37 on the top of the water storage tank 2 can be connected to the external water supply pipe to facilitate the replenishment of water to the inside. The control module 13 can control the opening and closing of the solenoid valve 39. When the solenoid valve 39 is opened, the water source enters the interior of the drainage trough 36 through the water outlet pipe 38, which is convenient for livestock and poultry to drink water. The water filter hood 40 can filter the outflowing water source, keeping it clean and ensuring the health of livestock and poultry drinking water.

[0032] All electrical components mentioned in this article are connected to an external main controller and 220V AC mains power. The main controller can be a conventional known device such as a computer. Temperature sensor 14, control module 13, motor, etc. are existing known devices and are only cited here. Their specific structures will not be described in detail.

[0033] The working steps of the device in this invention are as follows: When in use, place the entire device in the designated location in the breeding area, ensuring that support plate 1 301 and support plate 2 302 are placed stably on the ground. Use a level to calibrate the level of the storage plate to prevent feed conveying from shifting. Connect the water storage tank 2 to the external water source through the water inlet pipe 37 to ensure unobstructed water flow. Connect the power supply to the control module 13 and each drive component (motor 1 15, motor 2 24, motor 3 26) to ensure that the indicator lights (not shown in the figure) light up normally; Start motor 24: The feeding function is turned on by the control module 13, the screw conveyor 23 starts to run, and the feed is poured in from the feed inlet 25. The feed enters the storage tank 1 through the feed cylinder 22 and the connecting pipe 21. Observe the liquid level of the storage tank 1. When it reaches 2 / 3 of the capacity, turn off motor 24.

[0034] Temperature threshold setting: Set the summer material reduction temperature (e.g., ≥28℃) and the winter material increase temperature (e.g., ≤10℃) via the control module 13 panel. Basic feed output adjustment: The motor 26 is controlled by the control module 13 to move, and the feed cylinder 8 moves left and right to adjust the initial opening of the feed cylinder 4 to the basic feed amount suitable for the livestock breed (such as adjusting to a smaller amount for young animals and a larger amount for adult animals). Temperature monitoring: Temperature sensor 14 collects ambient temperature in real time and synchronizes the data to control module 13; Intelligent adjustment; When the temperature is greater than or equal to the summer threshold: the control module 13 drives the motor 26 to reverse, the baffle cylinder 8 moves to the left to reduce the opening and decrease the discharge amount; When the temperature is less than or equal to the winter threshold: the control module 13 drives the motor 26 to reverse, the baffle cylinder 8 moves to the right to increase the opening and increase the discharge volume; Feeding process: When motor 326 rotates forward, it drives the rotating shaft 6 and the feeding plate 7 to rotate. The feed in the storage tank 1 falls evenly into the distributing component 9 through the feeding cylinder 4 and the guide plate 5. Feed distribution operation: The control module 13 starts the motor 15 at timed intervals. The power rod 11 drives the feed distribution belt 901 forward and the feed distribution belt 902 backward through the helical gear 12 to transport feed. The feed will stop automatically when it reaches the end, so that the livestock and poultry can eat. Leftover feed handling: After feeding is completed, motor 15 is restarted to transport the remaining feed to the end away from the guide plate 5, so that it can be collected and cleaned at the same time by the sweeping bar 20 to clean the residue on the surface of the feed distribution belt. The control module 13 automatically opens the solenoid valve 39 at a preset time, and the water in the water storage tank 2 flows into the drainage trough 36 after being filtered through the water outlet pipe 38 and the water filter cover 40, thereby feeding the livestock and poultry.

[0035] Although embodiments of the invention have been shown and described, it will be understood by those skilled in the art that various changes, modifications, substitutions and alterations can be made to these embodiments without departing from the principles and spirit of the invention, the scope of which is defined by the appended claims and their equivalents.

Claims

1. An automated feeding regulation device for livestock farming, characterized in that: include, The storage assembly includes a storage plate, a plurality of storage tanks (1) arranged at intervals from left to right on the storage plate, a water tank (2) between the plurality of storage tanks (1), support members (3) at the bottom of the left and right ends of the storage plate, a discharge cylinder (4) communicating with the bottom of the storage tank (1), and a guide plate (5) at the bottom of the discharge cylinder (4). The discharge assembly includes a rotating shaft (6) that runs through the inside of the discharge cylinder (4), a material guide plate (7) located on the outer wall of the rotating shaft (6) inside the discharge cylinder (4), a baffle cylinder (8) for adjusting the discharge amount inside the right end of the discharge cylinder (4), and a multi-segment reciprocating screw (10) rotatably connected to the front of the discharge cylinder (4), wherein the baffle cylinder (8) is provided on the surface of the multi-segment reciprocating screw (10) through a connecting rod; The material distribution assembly includes a plurality of material distribution components (9) disposed between the support members (3) and arranged below the guide plate (5) along the front and rear ends. The support member (3) has a drive unit inside the right end that drives the multi-segment reciprocating screw (10) and the rotating shaft (6) to rotate. A control module (13) is provided on the upper surface of the right end of the support member (3). A temperature sensor (14) is provided on the side of the right end of the storage plate and is electrically connected to the control module (13) and the drive unit.

2. The automated regulating feeding device for livestock farming according to claim 1, characterized in that: The support member (3) includes a support plate one (301) located at the left end of the storage plate and a support plate two (302) located at the right end of the storage plate. A motor one (15) connected to the left end of the power rod (11) is provided on one side of the support plate one (301).

3. The automated regulating feeding device for livestock farming according to claim 2, characterized in that: The material distribution component (9) includes multiple material distribution belts 1 (901) and 2 (902). A power rod (11) is provided through one end of the material distribution belt 1 (901) and 2 (902) near the guide plate (5). A positioning seat (19) is provided at the other end of the material distribution belt 1 (901) and 2 (902). The power rod (11) extends into the outer wall of the material distribution belt 2 (902) and is provided with a helical gear (12). Inside the material distribution belt 2 (902), near the power rod (11), there is a gear rod (16) that meshes with the helical gear (12). Both ends of the gear rod (16) pass through the material distribution belt 2 (902) and are fixedly connected to a support (17).

4. The automated feeding device for livestock farming according to claim 3, characterized in that: The right end of the power rod (11) is rotatably connected to one side of the support plate (302). The surfaces of the first material distribution belt (901) and the second material distribution belt (902) are provided with a plurality of equally spaced material distribution plates (18). The upper surface of the positioning seat (19) and the part near the material distribution component (9) are provided with a cleaning rod (20).

5. The automated regulating feeding device for livestock farming according to claim 4, characterized in that: The storage tank (1) is provided with a connecting pipe (21) at the top, and a conveying cylinder (22) is provided at the top of the connecting pipe (21). A spiral conveying rod (23) is provided inside the conveying cylinder (22). A motor (24) is provided at the right end of the connecting pipe (21). The output end of the motor (24) extends into the interior of the connecting pipe (21) and is connected to the right end of the spiral conveying rod (23). A feed inlet (25) is provided at the left end of the connecting pipe (21).

6. The automated regulating feeding device for livestock farming according to claim 5, characterized in that: The driving component includes a motor three (26) located on one side of the support plate two (302). The output end of the motor three (26) extends into the interior of the support plate two (302) and is provided with a drive rod (27). On the circumference of the drive rod (27), from right to left, there are a power disk one (28) and a power disk two (29).

7. An automated regulating feeding device for livestock farming according to claim 6, characterized in that: The drive rod (27) is provided with two transmission components (30) that drive it to rotate near the power disk one (28) and the power disk two (29), and they are set in opposite directions. The power disk one (28) and the power disk two (29) are provided with slots (31) in opposite directions near the transmission components (30). The transmission component (30) includes a connecting rod (3001) and a spring (3002) rotatably disposed on the surface of the drive rod (27), wherein the other end of the spring (3002) is disposed on the side of the connecting rod (3001) away from the drive rod (27), and the other end of the connecting rod (3001) is movably connected to the inside of the slot (31).

8. The automated regulating feeding device for livestock farming according to claim 7, characterized in that: The first power disc (28) is circumferentially fitted with a belt (32), and the other end of the belt (32) is wrapped around the outer wall of the right end of the multi-section reciprocating screw (10). The second power disc (29) has a toothed layer (33) on its surface. The right end of the rotating shaft (6) extends into the interior of the second support plate (302) and is provided with an auxiliary gear (34), which meshes with the toothed layer (33).

9. An automated regulating feeding device for livestock farming according to claim 8, characterized in that: The bottom of the front and rear sides of the storage plate is provided with a protective plate (35), a drainage groove (36) is provided at the bottom of the protective plate (35), an arc-shaped protrusion is provided on the side of the protective plate (35), and a water inlet pipe (37) is provided at the top of the water tank (2).

10. An automated regulating feeding device for livestock farming according to claim 9, characterized in that: The water storage tank (2) has a water outlet pipe (38) at the bottom of both the front and rear sides. The bottom end of the water outlet pipe (38) is located above the drainage trough (36). A solenoid valve (39) is provided on the surface of the water outlet pipe (38) and is electrically connected to the control module (13). A detachable water filter cover (40) is fitted on the bottom end of the water outlet pipe (38).