Warm-keeping and cold-resistant pigsty for piglet breeding

By setting up breeding zones one and two in the pigsty, and combining isolation panels, moving components, tilting components, and induction components, the problems of low efficiency in cleaning manure and stress response in traditional pigsties are solved. Automated cleaning and warmth are achieved, improving the cleanliness of the pigsty and the quality of the piglets' living environment.

CN121336723AInactive Publication Date: 2026-01-16GANSU AGRI UNIV
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Patent Information

Application Number
CN202511759506.5
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-11-27
Publication Date
2026-01-16
Estimated Expiration
Not applicable · inactive patent

AI Technical Summary

Technical Problem

Traditional pigsties require manual herding of piglets when cleaning manure, which is inefficient and can easily cause stress in piglets, affecting their health and growth. At the same time, manual operation interferes with the piglets' activity, increasing the risk of injury.

Method used

The design includes two pigsties: a first-stage pigsty and a second-stage pigsty. By using partitions, moving components, tilting components, cleaning components, and guiding components, the pigsty achieves automated manure cleaning and warming processes. Infrared imaging sensors and voice-activated transmitters reduce human intervention and automatically guide the piglets to move based on their food needs.

Benefits of technology

It has achieved automated cleaning and heating of pigsties, reduced stress caused by human intervention, ensured the health and comfort of piglets, and improved cleaning efficiency and the hygiene of pigsties.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention relates to the technical field of piglet breeding, and discloses a piglet breeding warm-keeping cold-resistant hog house which comprises a first breeding area, a second breeding area is arranged on the other side of the first breeding area, excrement collecting areas are arranged at the bottoms of the first breeding area and the second breeding area, and discharging bins are fixedly connected to the lateral upper portions of the first breeding area and the second breeding area. Infrared imaging sensors are fixedly connected to the outer sides of the discharging bins, the detection ends of the two infrared imaging sensors face the interior of the first breeding area and the interior of the second breeding area respectively, the first breeding area and the second breeding area are arranged and isolated through an isolation plate, two relatively independent activity areas are provided for piglets, and the breeding efficiency is improved. In the initial stage and during subsequent alternate excrement cleaning treatment, it can be guaranteed that piglets have a safe and stable living and activity place, alternate excrement cleaning can be achieved through the arrangement of the two areas, it is avoided that the piglets are in an uncomfortable environment for a long time due to concentrated cleaning, meanwhile, continuous cleaning of the pig house is guaranteed, and germ breeding is reduced.
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Description

Technical Field

[0001] This invention belongs to the field of piglet breeding technology, specifically relating to a pigsty for piglet breeding that is warm and cold-resistant. Background Technology

[0002] A piglet breeding and cold-resistant pig house is a closed or semi-closed breeding building specifically designed for piglets, with efficient heat preservation and cold protection functions. Its core objective is to maintain a suitable temperature inside the house, reduce the negative impact of low temperature on the growth and health of piglets, and improve the survival rate and growth rate of piglets. In order to ensure the quality of pigs, special attention needs to be paid to the protection of piglets during the breeding process. Because piglets have poor adaptability to the external environment and poor cold resistance, they are easily frozen in low-temperature environments, and their recovery ability is very poor, resulting in a low survival rate. Therefore, it is necessary to add heat preservation devices to the place where piglets are placed.

[0003] When cleaning manure in pigsties and needing to move piglets from one area to another, traditional methods often rely on manual herding. Workers must move around the pigsty, using tools or sound and gestures to move the piglets. This process is not only labor-intensive but also inefficient. Because piglets are very sensitive to the approach of strangers and sudden movements, manual herding can easily cause stress, affecting their health and growth. Furthermore, frequent entry and exit from the pigsty, involving walking and using tools, inevitably disrupts the piglets' normal activity. The piglets may become startled, running around and jostling each other, causing unnecessary injury.

[0004] Therefore, the present invention provides a pigsty for breeding piglets that is warm and cold-resistant. Summary of the Invention

[0005] To overcome the shortcomings of the prior art: to solve at least one technical problem raised in the background art.

[0006] The technical solution adopted by this invention to solve its technical problem is as follows: A piglet breeding, warming, and cold-resistant pig house, comprising a breeding area one, a breeding area two located on the other side of breeding area one, manure collection areas at the bottom of breeding area one and breeding area two, feed hoppers fixedly connected to the upper sides of breeding area one and breeding area two, infrared imaging sensors fixedly connected to the outer sides of the feed hoppers, with the detection ends of the two infrared imaging sensors facing the interior of breeding area one and breeding area two respectively, a diffuser hood located directly above breeding area one, symmetrically arranged partitions between breeding area one and breeding area two, both partitions being slidably connected to the walls of breeding area one and breeding area two, a moving component driving the diffuser hood to move laterally located above the diffuser hood, tilting components driving the bottom plates of breeding area one and breeding area two to tilt at the bottom of breeding area one and breeding area two, cleaning components located to the upper sides of breeding area one and breeding area two, and induction components attracting piglets to move located outside the two feed hoppers.

[0007] Preferably, the tilting assembly includes two bearing seats, the shafts of the two bearing seats are fixedly connected to the inner wall of one end of the bottom plate of breeding area one and breeding area two respectively, and the other end of the bottom plate of breeding area one and breeding area two are fixedly connected to arc-shaped sliders, and the bottom of the arc-shaped sliders are fixedly connected to multi-stage hydraulic rods.

[0008] Preferably, two fixed arc-shaped platforms are fixedly connected above the manure collection area. The side walls of the fixed arc-shaped platforms are symmetrically provided with arc-shaped sliding grooves. The arc-shaped sliders are slidably connected to the arc-shaped sliding grooves and are mutually adapted. Multi-stage hydraulic rods are fixedly connected to the inner wall surface of the arc-shaped sliding grooves. The outer surface of the fixed arc-shaped platforms is provided with discharge grooves.

[0009] Preferably, the cleaning assembly includes two sets of high-pressure nozzles, each set of high-pressure nozzles being divided into several parts. The two sets of high-pressure nozzles are respectively inserted into the inner wall above the side of breeding area one and breeding area two. A water tank is fixedly connected to one side of each set of high-pressure nozzles. The water tank is fixedly installed on the outer wall of breeding area one and breeding area two. A water pipe is fixedly connected to the top of each water tank. Protective components are provided on the outside of both sets of high-pressure nozzles.

[0010] Preferably, the protective assembly includes two protective plates, one end of which is attached to the bottom plate surface of breeding area one and breeding area two respectively. The side walls of breeding area one and breeding area two are fixedly connected with hinge seats. The shafts of the two hinge seats are fixedly connected to the inner walls of the other end of the two protective plates respectively. A gear assembly is provided on one side of each protective plate to drive it to flip open.

[0011] Preferably, the gear assembly includes two gears, which are respectively fixedly connected to one end of two hinged bearing shafts. A rack plate is fixedly connected to one end of each bearing shaft, and the teeth of the rack plate can mesh with the teeth of the gears.

[0012] Preferably, the movable component includes a top beam frame, which is fixedly installed on the top of breeding area one and breeding area two. An electric sliding groove is fixedly installed on the inner wall of the top beam frame, and an electric slider is slidably connected to the inner wall of the electric sliding groove. The spray hood is fixedly connected to the inner wall of the electric slider, and a heating box is fixedly installed on the top of the electric slider.

[0013] Preferably, the induction component includes two baffles, the outer walls of which are respectively inserted into the inner walls of the feeding hopper. One end of each feeding hopper is fixedly connected to a feeding bin. Both ends of the baffles are fixedly connected to sliding blocks. A connecting frame is fixedly connected above each feeding hopper. Sliding rods are symmetrically fixedly connected to the surface of the connecting frame. The sliding blocks and sliding rods are slidably connected. Feeding troughs are fixedly installed inside both the first and second breeding areas. The outlet end of the feeding hopper is aligned directly above the feeding trough.

[0014] Preferably, a connecting rod is fixedly connected to one side of the baffle plate, an extrusion plate is fixedly connected to the bottom of the connecting rod, an extrusion block is fixedly connected to one side of the electric slider, and a return spring is fixedly connected between the bottom of the slider block and the top of the connecting frame plate.

[0015] Preferably, a support plate is fixedly connected between the tops of the two sliding rods, and a sensor button is fixedly installed at the bottom of the support plate. A voice-activated transmitter is fixedly connected to the side walls of breeding area one and breeding area two.

[0016] The beneficial effects of this invention are as follows:

[0017] 1. The piglet breeding and cold-resistant pig house of the present invention provides two relatively independent activity areas for piglets by setting up a breeding area one and a breeding area two and separating them with a partition board. In the initial stage and during the subsequent alternating cleaning of manure, it can ensure that piglets have a safe and stable place to live and move around. By setting up two areas, manure can be cleaned alternately, avoiding the piglets being in an uncomfortable environment for a long time due to centralized cleaning, while ensuring the continuous cleanliness of the pig house and reducing the growth of bacteria.

[0018] 2. The piglet breeding and cold-resistant pig house of the present invention can precisely control the movement of the diffuser hood between breeding area one and breeding area two through the moving component, realize the flexible switching of heating areas, ensure that the piglets are always in a warm environment, and meet the warmth needs of piglets in different areas.

[0019] 3. The piglet breeding and cold-resistant pig house of the present invention uses an induction component to attract piglets to move freely from the current area to another area by distributing feed to the target breeding area and taking advantage of the piglets' instinctive need for food. When the heating area is moved by the expansion spray hood, the induction component is used in conjunction to enable the piglets to move quickly and smoothly to the new heating area. The automatic feed distribution guides the piglets to move, reducing the stress response caused to the piglets by manual driving and other operations.

[0020] 4. The pigsty for warm and cold-resistant piglet breeding described in this invention has an tilting component that can tilt the floor of breeding area one or breeding area two, so that the floor and the cleaning component form the optimal cleaning angle. In conjunction with the cleaning component, the cleaning water is sprayed out under high pressure, which is conducive to the uniform flow of cleaning water on the floor, and can more thoroughly wash away the feces and stains on the floor, improve the cleaning effect and efficiency, maintain the cleanliness and hygiene of the pigsty, and provide a clean and comfortable living environment for piglets.

[0021] 5. The pigsty for warming and resisting cold in piglet breeding described in this invention, as the feed baffle rises continuously, it eventually touches the sensor button. The sensor button is equipped with a sensitive sensing device that transmits the signal to the voice-controlled transmitter, causing it to start playing a pre-recorded specific audio, such as the sound of food that piglets are familiar with and like, or a gentle call, in order to attract the piglets in breeding area one and encourage them to run towards breeding area two, thus successfully completing the transfer of piglets. Attached Figure Description

[0022] The invention will now be further described with reference to the accompanying drawings.

[0023] Figure 1 This is a three-dimensional view of the entire invention;

[0024] Figure 2 This is a schematic diagram of the structure of the aquaculture area in this invention;

[0025] Figure 3 This is a schematic diagram of the structure at the isolation plate in this invention;

[0026] Figure 4 This is a schematic diagram of the structure of the manure collection area in this invention;

[0027] Figure 5 This is a schematic diagram of the structure at the fixed arc-shaped platform in this invention;

[0028] Figure 6 This is a schematic diagram of the structure of the protective plate in this invention;

[0029] Figure 7 This is a schematic diagram of the structure of the feeding trough in this invention;

[0030] Figure 8 This is a schematic diagram of the structure of the diffuser hood in this invention;

[0031] Figure 9 This is a schematic diagram of the structure at the extrusion plate in this invention;

[0032] Figure 10 This is a schematic diagram of the structure of the baffle plate in this invention.

[0033] In the diagram: 1. Breeding Area 1; 2. Breeding Area 2; 3. Manure Collection Area; 4. Feeding Bin; 5. Infrared Imaging Sensor; 6. Sprayer Cover; 7. Isolation Plate; 8. Top Beam Frame; 9. Electric Slide Track; 10. Electric Slider; 11. Heating Box; 12. Bearing Seat; 13. Fixed Arc-shaped Platform; 14. Multi-stage Hydraulic Rod; 15. Arc-shaped Slider; 16. Discharge Chute; 17. High-pressure Nozzle; 18. Water Injection Tank; 19. Water Pipe; 20. Hinge Seat; 21. Protective Plate; 22. Gear; 23. Rack Plate; 24. Feeding Trough; 25. Feeding Bin; 26. Baffle Plate; 27. Slide Rod; 28. Slide Rod Block; 29. ​​Support Plate; 30. Connecting Rod; 31. Sensor Button; 32. Connecting Frame Plate; 33. Extrusion Plate; 34. Extrusion Block; 35. Return Spring; 36. Voice-activated Transmitter. Detailed Implementation

[0034] To make the technical means, creative features, objectives and effects of this invention easier to understand, the invention will be further described below in conjunction with specific embodiments.

[0035] like Figures 1 to 10 As shown, the present invention provides a technical solution: a pigsty for breeding piglets with warmth and cold resistance, including a breeding area 1, a breeding area 2 on the other side of the breeding area 1, a manure collection area 3 at the bottom of the breeding area 1 and the breeding area 2, a feeding hopper 4 fixedly connected to the upper side of the breeding area 1 and the breeding area 2, and an infrared imaging sensor 5 fixedly connected to the outer side of the feeding hopper 4, with the detection ends of the two infrared imaging sensors 5 facing the interior of the breeding area 1 and the breeding area 2 respectively, and an expansion joint is provided directly above the breeding area 1. The spray hood 6 is symmetrically provided with isolation plates 7 between breeding area 1 and breeding area 2. Both isolation plates 7 are slidably connected to the walls of breeding area 1 and breeding area 2. A moving component that drives the spray hood 6 to move laterally is provided above the spray hood 6. Inclining components that drive the bottom plates of breeding area 1 and breeding area 2 to tilt are provided at the bottom of breeding area 1 and breeding area 2. Cleaning components are provided on the upper sides of breeding area 1 and breeding area 2. Inducing components that attract piglets to move are provided on the outside of the two feeding bins 4.

[0036] During operation: A hatch is located on the side wall of breeding area 1. Opening the hatch allows piglets to be placed inside breeding area 1. Initially, the two partition boards 7 are closed, separating breeding area 1 from breeding area 2. At this time, piglets can only move inside breeding area 1, and the diffuser 6 is located directly above breeding area 1, continuously providing heating. Over time, the amount of manure on the floor of breeding area 1 will gradually increase. When it is necessary to treat the manure on the floor of breeding area 1, it is first moved by pulling it to both sides. Two partitions 7 are opened to connect breeding area 1 and breeding area 2. Then, the moving component is used to move the diffuser 6 directly above breeding area 2. At this time, the heat will be transmitted into the interior of breeding area 2, and the piglets will run into the interior of breeding area 2. During the lateral movement of the diffuser 6, the induction component will be triggered to move. The induction component attracts the piglets to move freely into the interior of breeding area 2 by distributing feed into the interior of breeding area 2. As the temperature inside breeding area 2 gradually rises and feed is continuously distributed, all the piglets will run into the interior of breeding area 2.

[0037] After all piglets have been transferred to breeding area 2, the infrared imaging sensor 5 installed on the side of breeding area 1 detects the number of piglets inside breeding area 1. Once it is confirmed that there are no piglets left, the two isolation panels 7 are merged to re-isolate breeding area 1 and breeding area 2, preventing some piglets from accidentally returning to breeding area 1. Then, the tilting component at the bottom of breeding area 1 is activated, tilting the bottom plate of breeding area 1 to form the optimal cleaning angle with the cleaning component. Next, the cleaning component sprays clean water at high pressure from the top of the tilted section of breeding area 1, flowing along the slope to clean the manure from the bottom plate of breeding area 1. After the piglets have lived inside breeding area 2 for a period of time, the diffuser hood 6 moves laterally in the opposite direction through the moving component, triggering the movement of the induction component on the upper side of breeding area 1, guiding the piglets to run into breeding area 1. Subsequently, the tilting component at the bottom of breeding area 2 and the cleaning component on the upper side clean the manure from the bottom plate of breeding area 2. By repeating this operation, the cleanliness of the pigsty and the continuous warming of the piglets can be achieved.

[0038] Through the above embodiments, by setting up breeding area 1 and breeding area 2, and separating them with isolation board 7, two relatively independent activity areas are provided for piglets. In the initial stage and during subsequent alternating cleaning of manure, a safe and stable living and activity place for piglets can be guaranteed. The two areas allow for alternating manure cleaning, avoiding prolonged discomfort for piglets due to concentrated cleaning, while ensuring continuous cleanliness of the pigsty and reducing the growth of bacteria. The movable component allows for precise control of the movement of the diffuser hood 6 directly above breeding area 1 and breeding area 2, enabling flexible switching of heating areas and ensuring that piglets are always in a warm environment, meeting the warmth needs of piglets in different areas. The induction component delivers feed to the target breeding area. Utilizing piglets' instinctive need for food, the system attracts them to freely move from one area to another. When the expansion spray hood 6 moves the heating area, the induction components work in conjunction to allow piglets to quickly and smoothly transfer to the new heating area. Automatic feed dispensing guides the piglets' movement, reducing stress caused by manual herding. The tilting component tilts the floor of either breeding area 1 or breeding area 2, creating an optimal cleaning angle between the floor and the cleaning components. This, combined with the high-pressure spraying of cleaning water, promotes even water flow on the floor, thoroughly removing feces and stains, improving cleaning effectiveness and efficiency, maintaining the cleanliness of the pigsty, and providing a clean and comfortable living environment for the piglets.

[0039] like Figures 3 to 4 As shown, the tilting assembly includes two bearing seats 12. The shafts of the two bearing seats 12 are fixedly connected to the inner walls of one end of the bottom plate of breeding area 1 and breeding area 2, respectively. The other end of the bottom plate of breeding area 1 and breeding area 2 is fixedly connected to an arc-shaped slider 15. The bottom of the arc-shaped slider 15 is fixedly connected to a multi-stage hydraulic rod 14.

[0040] During operation: Before tilting the bottom plate of breeding area 1 or breeding area 2, the corresponding infrared imaging sensor 5 is used to detect that there are no piglets moving above the bottom plate. Then, the corresponding multi-stage hydraulic rod 14 is activated. The multi-stage hydraulic rod 14 begins to retract downward, driving the arc-shaped slider 15 fixed at its upper end to move. Since the arc-shaped slider 15 is fixedly connected to the bottom plate, and one end of the bottom plate is connected to the bearing seat 12 through the shaft, the bottom plate slowly tilts around the shaft of the bearing seat 12 under the pull of the arc-shaped slider 15 until it reaches a suitable angle for subsequent cleaning operations.

[0041] like Figures 3 to 4As shown, two fixed arc-shaped platforms 13 are fixedly connected above the manure collection area 3. The side walls of the fixed arc-shaped platforms 13 are symmetrically provided with arc-shaped sliding grooves. The arc-shaped sliders 15 are slidably connected to the arc-shaped sliding grooves and are mutually adapted. The multi-stage hydraulic rods 14 are all fixedly connected to the inner wall surface of the arc-shaped sliding grooves. The outer surface of the fixed arc-shaped platforms 13 is provided with discharge grooves 16.

[0042] During operation: Taking breeding area 1 as an example, when the corresponding multi-stage hydraulic rod 14 begins to retract downwards, the arc-shaped slider 15 slides downwards along the arc-shaped groove. As the arc-shaped slider 15 slides in the arc-shaped groove, the bottom plate of breeding area 1 slowly tilts around the shaft of bearing seat 12. When one end of breeding area 1 tilts to the position of discharge chute 16, the manure on the surface of the bottom plate of breeding area 1 can fall into the manure collection area 3 for centralized collection under the action of gravity and with the cooperation of the cleaning components. When it is necessary to clean breeding area 2, the above operation process is repeated. The multi-stage hydraulic rod 14 corresponding to breeding area 2 is activated to tilt the bottom plate of breeding area 2. The manure falls into the manure collection area 3 through the discharge chute 16 on its corresponding fixed arc-shaped platform 13, realizing the alternating cleaning of the bottom plates of the two breeding areas.

[0043] like Figures 5 to 6 As shown, the cleaning assembly includes two sets of high-pressure nozzles 17, each set of high-pressure nozzles 17 is divided into several parts, and the two sets of high-pressure nozzles 17 are respectively inserted into the inner wall of the upper side of the breeding area 1 and the breeding area 2. A water tank 18 is fixedly connected to one side of each set of high-pressure nozzles 17. The water tank 18 is fixedly installed on the outer wall of the breeding area 1 and the breeding area 2. A water pipe 19 is fixedly connected to the top of the water tank 18. Protective components are provided on the outside of the two sets of high-pressure nozzles 17.

[0044] During operation: Before the tilting of breeding area 1 and breeding area 2, the protective components protect the high-pressure nozzles 17 to prevent accidental collisions and damage to the high-pressure nozzles 17 when piglets move inside breeding area 1 or breeding area 2; when breeding area 1 or breeding area 2 tilts to the position of the discharge trough 16, the manure on the bottom plate of the breeding area has basically fallen into the manure collection area 3 through the discharge trough 16. Then, the water pipe 19 on the corresponding water injection tank 18 is controlled to start injecting water into the water injection tank 18. After the water in the water injection tank 18 reaches a certain amount, the water pipe 19 on the corresponding water injection tank 18 is opened. High-pressure nozzles 17 are inserted into the inner wall above the side of the breeding area. The high-pressure nozzles 17 spray the cleaning water in the water tank 18 in a high-pressure form. Since the bottom plate of the breeding area is in an inclined state, the cleaning water will flow quickly along the inclined surface after being sprayed out under high pressure from the top of the inclined surface. This will thoroughly wash away the fine feces and stains remaining on the bottom plate, ensuring that the bottom plate of the breeding area is clean and hygienic, and providing a clean living environment for the piglets. After the cleaning is completed, the high-pressure nozzles 17 and the water pipes 19 are turned off, and the breeding area bottom plate tilting and cleaning operation is waited for.

[0045] like Figures 5 to 6 As shown, the protective assembly includes two protective plates 21. One end of each protective plate 21 is attached to the bottom surface of the breeding area 1 and the breeding area 2, respectively. The side walls of the breeding area 1 and the breeding area 2 are fixedly connected to hinge seats 20. The shafts of the two hinge seats 20 are fixedly connected to the inner walls of the other end of the two protective plates 21, respectively. One side of each protective plate 21 is provided with a gear assembly that drives it to flip and open.

[0046] During operation: In the initial state, when breeding area 1 or breeding area 2 is not tilted, the two sets of protective plates 21 protect the two sets of high-pressure nozzles 17 to prevent piglets from accidentally colliding with the high-pressure nozzles 17. During the tilting process of breeding area 1 or breeding area 2, the gear assembly will drive the protective plates 21 to rotate and flip around the hinge seat 20 shaft. After the flipped protective plates 21 no longer obstruct the outlet end of the high-pressure nozzles 17, when breeding area 1 or breeding area 2 has completed the tilting movement, the outlet end of the high-pressure nozzles 17 is just aligned with the top of breeding area 1 or breeding area 2, and then the high-pressure cleaning process is carried out.

[0047] like Figure 6 As shown, the gear assembly includes two gears 22, which are respectively fixedly connected to one end of the shaft of the two hinge seats 20. One end of the shaft of the bearing seat 12 is fixedly connected to a rack plate 23, and the teeth of the rack plate 23 can mesh with the teeth of the gears 22.

[0048] During operation: When breeding area 1 or breeding area 2 tilts, the shaft of the corresponding bearing seat 12 will rotate. When the shaft of bearing seat 12 rotates, it will mesh with the teeth of gear 22 through rack plate 23. Gear 22 drives the protective plate 21 at the corresponding position to rotate through the shaft of hinge seat 20, thereby opening the outlet end of high pressure nozzle 17 for cleaning operation.

[0049] like Figure 8 As shown, the mobile component includes a top beam frame 8, which is fixedly installed on the top of breeding area 1 and breeding area 2. An electric sliding groove 9 is fixedly installed on the inner wall of the top beam frame 8. An electric slider 10 is slidably connected to the inner wall of the electric sliding groove 9. The diffuser hood 6 is fixedly connected to the inner wall of the electric slider 10. A heating box 11 is fixedly installed on the top of the electric slider 10.

[0050] During operation: When it is necessary to clean the manure on the bottom plate of breeding area 1, the staff activates the control switch of the electric sliding chute 9; a specific electromagnetic force is generated inside the electric sliding chute 9, driving the electric slider 10 to slide smoothly and at a uniform speed along its inner wall; as the electric slider 10 moves, the diffuser 6 fixedly connected to the inner wall of the electric slider 10 and the heating box 11 fixed on the top of the electric slider 10 also start to move synchronously. As the electric slider 10 drives the diffuser 6 and the heating box 11 to move directly above breeding area 2, the induction component on the upper side of breeding area 2 will be triggered to move during the movement. The induction component attracts piglets to run into the interior of breeding area 2, thus facilitating the subsequent cleaning of the bottom plate of breeding area 1.

[0051] like Figures 7 to 10 As shown, the induction assembly includes two baffle plates 26. The outer walls of the baffle plates 26 are respectively inserted into the inner walls of the feeding bins 4. One end of each feeding bin 4 is fixedly connected to a feeding bin 25. Both ends of the baffle plates 26 are fixedly connected to sliding rod blocks 28. A connecting frame plate 32 is fixedly connected above each feeding bin 4. Sliding rods 27 are symmetrically fixedly connected to the surface of the connecting frame plate 32. The sliding rod blocks 28 and the sliding rods 27 are slidably connected. Feeding troughs 24 are fixedly installed inside both the first breeding area 1 and the second breeding area 2. The outlet end of the feeding bin 4 is aligned with the top of the feeding trough 24.

[0052] During operation: In the initial state, the baffle plate 26 on the upper side of breeding area 2 is fully inserted into the inner wall of the feeding bin 4, forming a physical barrier to the channel of the feeding bin 4 and effectively preventing feed from passing through. At this time, the pre-prepared feed is added into the feeding bin 25. Due to the obstruction of the baffle plate 26, the feed will not flow into the feeding bin 4. When the diffuser 6 moves directly above breeding area 2, the part of the baffle plate 26 inserted into the feeding bin 4 will be pulled upward. As the baffle plate 26 is pulled out, the channel of the feeding bin 4 is opened, and the feed inside the feeding bin 25 can smoothly enter the feeding trough 24 inside breeding area 2 along the channel of the feeding bin 4. After the feed falls into the feeding trough 24, it will emit an odor, attracting piglets inside breeding area 1. Attracted by the smell of the feed, piglets will actively run towards the rearing area 2, thus facilitating their transfer. Throughout this process, the sliding blocks 28, fixedly connected to both ends of the baffle plate 26, are slidably connected to the sliding rods 27 symmetrically fixed to the surface of the connecting frame plate 32 above the feed bin 4. This sliding configuration precisely guides the sliding of the baffle plate 26, ensuring its stability during extraction and insertion, preventing jamming or displacement, and improving the reliability and stability of the entire device.

[0053] like Figures 7 to 9As shown, a connecting rod 30 is fixedly connected to one side of the baffle plate 26, and an extrusion plate 33 is fixedly connected to the bottom of the connecting rod 30. An extrusion block 34 is fixedly connected to one side of the electric slider 10, and a return spring 35 is fixedly connected between the bottom of the slider block 28 and the top of the connecting frame plate 32.

[0054] During operation: As the expansion spray hood 6 moves, it drives the extrusion block 34 to move laterally. As the extrusion block 34 gradually approaches the upper side of the second breeding area 2, it will meet the extrusion plate 33 on the upper side of the second breeding area 2. When the two come into contact, the inclined surface of the extrusion block 34 begins to press against the inclined surface of the extrusion plate 33. After the extrusion plate 33 is subjected to extrusion force, it will drive the baffle plate 26 to move upward through the connecting rod 30. The baffle plate 26 will drive the sliding block 28 to move upward along the outer wall of the sliding rod 27 and stretch the return spring 35. Then, the extrusion block 34 and the extrusion plate 33 always maintain a state of extrusion and contact. Under continuous extrusion, the baffle plate 26 is continuously lifted upward until it completely leaves the inner wall of the feeding bin 4, so that the channel of the feeding bin 4 is not If obstructed again, the feed prepared in the feeding bin 25 can smoothly enter the corresponding feeding trough 24 under the action of gravity along the inside of the feeding bin 4, attracting piglets to eat. When the piglets are transferred into the breeding area 1, the spray nozzle 6 moves in the opposite direction to reset. At this time, the extrusion block 34 separates from the extrusion plate 33 on the upper side of the breeding area 2. The baffle plate 26 moves down again under the elastic force of the reset spring 35 to block the channel of the feeding bin 4. The extrusion block 34 moves at this time to squeeze the channel of the feeding bin 4 on the upper side of the breeding area 1, which makes it easier for the feed to be put into the feeding trough 24 inside the breeding area 1, thereby attracting piglets to run into the breeding area 1, and the manure on the bottom plate of the breeding area 2 can be treated.

[0055] like Figures 7 to 9 As shown, a support plate 29 is fixedly connected between the tops of the two sliding rods 27, and a sensor button 31 is fixedly installed at the bottom of the support plate 29. A voice-activated transmitter 36 is fixedly connected to the side walls of breeding area 1 and breeding area 2.

[0056] During operation: The baffle plate 26 above the side of breeding area 2 moves upward under the continuous pressure of the extrusion block 34. As the baffle plate 26 rises, its top gradually approaches and eventually touches the sensing button 31 fixed to the bottom of the support plate 29 on the top of the two slide bars 27. The sensing button 31 is equipped with a sensitive sensing device. At the moment it is touched by the baffle plate 26, it quickly converts this physical contact signal into an electrical signal. This electrical signal is quickly transmitted to the control module of the sound-controlled transmitter 36 fixedly connected to the inner side wall of breeding area 2 through a pre-set circuit. After receiving the signal, the control module immediately starts the sound-controlled transmitter 36, which begins to play a pre-recorded specific audio, such as the sound of food that piglets are familiar with and like, or a soft call, in order to attract the piglets in breeding area 1 and make them run towards breeding area 2, thus successfully completing the transfer of piglets. The same principle applies to driving piglets into breeding area 1.

[0057] The foregoing has shown and described the basic principles, main features, and advantages of the present invention. Those skilled in the art should understand that the present invention is not limited to the above embodiments. The embodiments and descriptions in the specification are merely illustrative of the principles of the invention. Various changes and modifications can be made to the invention without departing from its spirit and scope, and all such changes and modifications fall within the scope of the present invention as claimed. The scope of protection of the present invention is defined by the appended claims and their equivalents.

Claims

1. A pigsty for breeding piglets, providing warmth and cold resistance, comprising a breeding area, characterized in that: On the other side of breeding area one, breeding area two is set up. Manure collection areas are set at the bottom of breeding areas one and two. Feed hoppers are fixedly connected to the upper sides of breeding areas one and two. Infrared imaging sensors are fixedly connected to the outer sides of the feed hoppers, with the detection ends of the two infrared imaging sensors facing the interior of breeding areas one and two, respectively. A diffuser is set directly above breeding area one. Isolation plates are symmetrically arranged between breeding areas one and two, and both isolation plates are slidably connected to the walls of breeding areas one and two. A moving component that drives the diffuser to move laterally is set above the diffuser. Inclining components that tilt the bottom plates of breeding areas one and two are set at the bottom of breeding areas one and two. Cleaning components are set to the upper sides of breeding areas one and two, and induction components that attract piglets are set outside the two feed hoppers.

2. The pigsty for warming and resisting cold in piglet breeding as described in claim 1, characterized in that: The tilting assembly includes two bearing seats, and the shafts of the two bearing seats are fixedly connected to the inner wall of one end of the bottom plate of breeding area one and breeding area two, respectively. The other end of the bottom plate of breeding area one and breeding area two are fixedly connected to arc-shaped sliders, and the bottom of the arc-shaped sliders are fixedly connected to multi-stage hydraulic rods.

3. The pigsty for warming and resisting cold in piglet breeding as described in claim 2, characterized in that: Two fixed arc-shaped platforms are fixedly connected above the manure collection area. The side walls of the fixed arc-shaped platforms are symmetrically provided with arc-shaped grooves. The arc-shaped sliders are slidably connected to the arc-shaped grooves and are mutually adapted. Multi-stage hydraulic rods are fixedly connected to the inner wall of the arc-shaped grooves. The outer surface of the fixed arc-shaped platforms is provided with discharge troughs.

4. The pigsty for warming and resisting cold in piglet breeding as described in claim 3, characterized in that: The cleaning assembly includes two sets of high-pressure nozzles, each set consisting of several nozzles. The two sets of high-pressure nozzles are respectively inserted into the inner walls of the upper side of breeding area one and breeding area two. A water tank is fixedly connected to one side of each set of high-pressure nozzles. The water tanks are fixedly installed on the outer walls of breeding area one and breeding area two. A water pipe is fixedly connected to the top of each water tank. Protective components are installed on the outside of both sets of high-pressure nozzles.

5. The pigsty for warming and resisting cold in piglet breeding as described in claim 4, characterized in that: The protective assembly includes two protective plates. One end of each protective plate is attached to the bottom surface of breeding area one and breeding area two, respectively. The side walls of breeding area one and breeding area two are fixedly connected to hinge seats. The shafts of the two hinge seats are fixedly connected to the inner walls of the other end of the two protective plates, respectively. A gear assembly is provided on one side of each protective plate to drive it to flip and open.

6. The pigsty for warming and resisting cold in piglet breeding as described in claim 5, characterized in that: The gear assembly includes two gears, which are respectively fixedly connected to one end of two hinged bearing shafts. A rack plate is fixedly connected to one end of each bearing shaft, and the teeth of the rack plate can mesh with the teeth of the gears.

7. The pigsty for warming and resisting cold in piglet breeding according to claim 6, characterized in that: The mobile component includes a top beam frame, which is fixedly installed on the top of breeding area one and breeding area two. An electric sliding groove is fixedly installed on the inner wall of the top beam frame, and an electric slider is slidably connected to the inner wall of the electric sliding groove. The spray hood is fixedly connected to the inner wall of the electric slider, and a heating box is fixedly installed on the top of the electric slider.

8. The pigsty for warming and resisting cold in piglet breeding as described in claim 7, characterized in that: The induction assembly includes two baffles, the outer walls of which are inserted into the inner walls of the feeding hoppers. A feeding bin is fixedly connected to one end of each feeding hopper. Sliding rod blocks are fixedly connected to both ends of the baffles. A connecting frame plate is fixedly connected to the top of each feeding hopper. Sliding rods are symmetrically fixedly connected to the surface of each connecting frame plate. The sliding rod blocks and sliding rods are slidably connected. Feeding troughs are fixedly installed inside both the first and second breeding areas. The outlet end of the feeding hopper is aligned directly above the feeding trough.

9. A pigsty for breeding piglets with warmth and cold resistance according to claim 8, characterized in that: A connecting rod is fixedly connected to one side of the baffle plate, and an extrusion plate is fixedly connected to the bottom of the connecting rod. An extrusion block is fixedly connected to one side of the electric slider, and a return spring is fixedly connected between the bottom of the slider block and the top of the connecting frame plate.

10. A pigsty for breeding piglets with warmth and cold resistance according to claim 9, characterized in that: A support plate is fixedly connected between the tops of the two sliding rods, and a sensor button is fixedly installed at the bottom of the support plate. Voice-activated transmitters are fixedly connected to the side walls of breeding area one and breeding area two.