Breeding system

The rapid deployment and dismantling of container-type breeding houses, combined with an intelligent environmental control system, solves the problems of time-consuming construction and disease transmission of traditional breeding houses, and enables rapid construction, flexible adjustment and safe breeding.

CN120615733APending Publication Date: 2025-09-12RUIANG ANIMAL HUSBANDRY TECH CO LTD +2
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Patent Information

Application Number
CN202510744424.7
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-06-05
Publication Date
2025-09-12

AI Technical Summary

Technical Problem

Traditional breeding houses are expensive and time-consuming to build, difficult to quickly construct and dismantle, and not easy to manage automatically or intelligently. They are prone to the spread of disease and difficult to adapt to changes in market demand and land reuse.

Method used

Containers are used as breeding houses, equipped with feeding, watering and manure removal devices. They can be quickly deployed and dismantled through lifting equipment. Combined with independent environmental control systems and intelligent management, rapid construction and flexible adjustment can be achieved.

Benefits of technology

Significantly shorten construction time, reduce cost investment, improve disease prevention and control capabilities, adapt to changes in market demand, be suitable for different land areas and environments, and enhance breeding safety.

✦ Generated by Eureka AI based on patent content.

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Patent Text Reader

Abstract

The invention provides a breeding system. The breeding system comprises one or more breeding houses formed by containers. A hoisting component is arranged on the container; a door fence is arranged on the side, close to the container door, of the container. A manure collection pool is arranged on a bottom plate of the container, a manure leakage plate with a plurality of manure leakage openings is laid on the manure collection pool, and the manure leakage plate forms a bearing bottom plate of the breeding space; a material pool, a water dispenser and an environment control system are further arranged in the container, and the environment control system is used for adjusting air parameters, humidity parameters, temperature parameters and illumination duration in the container; the container is provided with a feeding port, a water way connector and a defecation connector so that the container can be directly externally connected with a corresponding pipeline. The culture system can be quickly deployed, the construction time is remarkably shortened, so that a user can quickly carry out culture, and the culture system can be quickly disassembled, so that the user can quickly reuse the land; the scale can be simply and conveniently adjusted to meet the breeding requirements, and the implementation difficulty and the cost input are reduced; safe breeding and intelligent management can be achieved, and the disease risk is remarkably reduced.
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Description

Technical Field

[0001] The present application relates to the field of breeding and feeding technology, and in particular to a breeding system that can be quickly deployed and constructed. Background Art

[0002] Traditional livestock farms are built on land, and due to the high investment and time required to construct them, costs are high. Furthermore, there are many disadvantages. First, they are difficult to build quickly to quickly start breeding and generate revenue, nor are they easy to raise and sell quickly to meet market demand. This can lead to breeding when demand is high or supply is insufficient, and by the time they are sold, the market is already oversupplied, affecting revenue. Second, built farms make it difficult to implement automated or intelligent farming, and are not easy to renovate to adjust the farm scale or adapt to later needs such as separate stall farming or fattening. Third, both construction and demolition of farms are time-consuming, affecting land reuse. These factors reduce the cost-to-revenue ratio, increase breeding risks, and are not conducive to breeding in mountainous areas or areas without large areas of flat land.

[0003] There's also the significant factor of disease. Livestock are susceptible to disease during the breeding process, and diseases can spread rapidly. The more livestock housed in a single barn, the greater the chance of infection and the greater the number of deaths caused by the spread of disease. However, reducing the number of livestock housed in a single barn requires expanding the number of barns required, significantly increasing costs and construction time. Furthermore, controlling feeding conditions across all barns is necessary to prevent disease, a difficult feat with traditional barns, and thus increases both costs and risks. Summary of the Invention

[0004] In view of this, the embodiments of the present application are committed to providing a breeding system that can be quickly deployed and constructed. The breeding houses of this breeding system can be quickly deployed and dismantled, which can significantly shorten the construction time required before breeding and allow users to quickly start breeding and start revenue. They can also be quickly dismantled so that users can quickly reuse the land; the scale of the breeding house can be easily adjusted to suit the user's land area and breeding needs, reducing implementation difficulty and cost investment; the breeding house can easily achieve isolated safe breeding and intelligent management, significantly reducing the risk of disease.

[0005] The present application provides a breeding system, comprising one or more breeding houses, wherein the breeding houses are formed by containers;

[0006] The container is provided with a lifting component for connecting a lifting device; a breeding space is formed in the container, and a gate is provided on the side near the container door for livestock to enter and exit the breeding space;

[0007] A manure collecting tank is provided on the bottom plate of the container, and a manure slatted plate with a plurality of manure leakage openings is laid on the manure collecting tank, and the manure slatted plate forms the supporting bottom plate of the breeding space so that livestock can move on the manure slatted plate;

[0008] The container is also provided with a feed tank for holding feed, a waterer and an environmental control system. The environmental control system includes a ventilation device, a humidification device and a lighting device, and is used to adjust the air parameters, humidity parameters, temperature parameters and lighting duration in the container;

[0009] The container is provided with a feeding port connected to the material pool, a water channel interface connected to the drinking fountain, and a feces discharge interface connected to the feces collecting tank, so that corresponding pipelines can be directly connected externally.

[0010] In a possible embodiment, when a plurality of containers are provided, the environmental control system of each container is independently provided, so that each container forms an independent breeding room to achieve isolated breeding.

[0011] In a possible embodiment, the container further includes a support pier for supporting the container, and the support pier is provided with a positioning pin for inserting into a corner hole of the container.

[0012] In a possible embodiment, it further includes a feeding kitchen, which includes feeding equipment for conveying feed, and the feeding equipment is integrated on an integrated frame, and the integrated frame is provided with a hoisting structure; the feeding pipe of the feeding equipment is connected to the feeding port of one or more containers, and feeds feeding powder or feeding liquid into the material pool of the container.

[0013] In one possible embodiment, the feeding equipment includes a mixing tank for containing feed, a water tank for containing water, the feeding pipe connected to the mixing tank, a delivery pump provided on the feeding pipe, and a control box with a controller;

[0014] The invention also includes a weight sensor which is in communication with the controller. The weight sensor is arranged on the mixing tank and the water tank so that the controller can adjust the feeding amount.

[0015] In a possible embodiment, the feeding equipment includes a silo, a plug conveyor or an auger conveyor, the feeding pipe, and a control box with a controller arranged on the integrated frame;

[0016] It also includes a weight sensor that is in communication with the controller. The weight sensor is arranged on the feed bin and / or the feed pool so that the controller can adjust the feeding amount.

[0017] In one possible embodiment, the feeding kitchen further includes a material tank for storing raw materials and a conveying device for conveying the raw materials to the feeding equipment; or, the feeding kitchen includes a material tank for storing raw materials, a grinder for crushing the raw materials, and a conveying device for conveying the crushed materials to the feeding equipment.

[0018] In a possible embodiment, a discharge port connected to the manure pit is provided on the material tank;

[0019] And / or, a plurality of discharge pipes spaced apart along the length direction and a discharge box connected to each of the discharge pipes are further provided above the material pool, each of the discharge pipes is provided with a discharge valve, and the discharge box is connected to the feeding port;

[0020] And / or, a solar panel is further provided on the top of the container, and the solar panel supplies power to the breeding house;

[0021] And / or, the drinking fountain includes a drinking bowl connected to an external water source through a pipeline, a trigger valve for opening or closing the pipeline, and a push rod or a pedal for triggering the trigger valve.

[0022] In one possible embodiment, the environmental control system includes a master controller, an ammonia detector, a nitrogen detector, a temperature sensor, and a humidity sensor; the ventilation device includes a ventilation duct arranged in the container, a vent and a fan arranged on the container panel; the humidification device includes a spray assembly arranged at the vent to form a water curtain at the vent; the master controller adjusts the ventilation duration and speed of the fan according to the ammonia detector, the nitrogen detector, the temperature sensor, and the humidity sensor.

[0023] In a possible embodiment, a disinfection room is further included, which is formed by an auxiliary container; a changing area and a disinfection area are provided in the disinfection room, and any one or any combination of shower facilities, bathing facilities, and ultraviolet disinfection facilities are provided in the disinfection area.

[0024] The breeding system provided in this application uses a container as a breeding house. The feeding, watering, excrement removal, ventilation, humidification, temperature control and other devices required for breeding livestock are assembled inside the container. A docking port is reserved on the container board to form an independent breeding house. When building a breeding system, the corresponding number of containers are directly transported to the site as required and arranged through lifting equipment. Finally, the construction is completed by laying pipes for water, feed and manure. It has low cost, takes little time, can be deployed quickly, and significantly shortens the construction time required before breeding, allowing users to quickly start breeding and start revenue. It can also be quickly dismantled, allowing users to quickly reuse the land. It is also easy to move as a whole to cope with adjustments to the breeding site due to land or weather factors in the later stage. The number of breeding houses is easy to adjust, and the breeding scale can be adjusted at will to suit the user's land area and breeding needs, reducing implementation difficulty and cost investment. At the same time, container-type breeding houses are easy to manage intelligently, and can regulate temperature, humidity, and adverse gases such as nitrogen and ammonia in the air, thereby improving breeding safety and fattening speed. On the other hand, each container has an environmental control system and feed pool, which can easily achieve environmental isolation such as feeding isolation and ventilation, facilitating safe breeding and significantly reducing disease risks. BRIEF DESCRIPTION OF THE DRAWINGS

[0025] Figure 1 Shown is a schematic diagram of a breeding system in an embodiment of the present application;

[0026] Figure 2 Shown Figure 1 A partial enlarged view of

[0027] Figure 3 The figure shows the external schematic diagram of the container in the embodiment of the present application;

[0028] Figure 4 The figure shows a schematic diagram of the internal structure of the container from a first angle in an embodiment of the present application;

[0029] Figure 5 The figure shows a second angle schematic diagram of the internal structure of the container in the embodiment of the present application;

[0030] Figure 6 Shown is a schematic structural diagram of the feeding equipment in an embodiment of the present application;

[0031] Figure 7 Shown is a schematic diagram of the hoisting structure of the feeding equipment in an embodiment of the present application.

[0032] Figure 1-Figure 7 middle:

[0033] 1. Container; 11. Container door; 2. Support pier; 3. Door rail; 4. Humidifier; 41. Water tank; 401. Air inlet; 5. Feed tank; 6. Discharge pipe; 7. Discharge box; 8. Manure pit; 9. Slatted floor; 10. Ventilation duct; 12. Feeding equipment; 13. Integrated rack; 14. Mixing tank; 15. Water tank; 16. Feed pipe; 17. Control box; 18. Control panel; 19. Hoisting structure. DETAILED DESCRIPTION

[0034] The following will be combined with the drawings in the embodiments of this application to clearly and completely describe the technical solutions in the embodiments of this application. Obviously, the embodiments described are only part of the embodiments of this application, not all of the embodiments. Based on the embodiments in this application, all other embodiments obtained by ordinary technicians in this field without making creative efforts are within the scope of protection of this application.

[0035] Please refer to the attached Figure 1-7 The embodiments of the present application provide a farming system comprising one or more independently arranged farming houses, each of which is formed by a container 1, i.e., one container 1 forms one farming house. Each container 1 is provided with a lifting component, such as a lug, for connecting to a lifting device. Thus, each container 1 can be placed and arranged directly using the lifting device, facilitating the construction of a farm and the arrangement of multiple farming houses.

[0036] A breeding space is formed in the container 1, and a gate 3 is provided on one side near the box door 11. The gate 3 is used to fence in the breeding livestock. The gate 3 can be opened and closed to allow the livestock to enter and exit the breeding space.

[0037] In other words, the container 1 is provided with an openable and closable gate 3. The gate 3 is provided near the door 11 of the container 1 and is located at the end of the container 1 provided with the door 11. The space inside the gate 3 of the container 1 is used as a breeding space; this prevents the livestock from escaping after the door 11 is opened. The space outside the gate 3 is used as a space for personnel activities, making it convenient for the breeders to observe the livestock. A manure collecting pit 8 is provided on the bottom plate of the container 1, and a manure slatted board 9 with multiple manure leakage openings is laid on the manure collecting pit 8. The manure slatted board 9 forms the supporting bottom plate of the breeding space. The livestock move on the manure slatted board 9, so that the urine and feces excreted by the livestock will directly leak into the manure collecting pit 8 below.

[0038] The container 1 is also provided with a feed pool 5 for holding feed, a waterer and an environmental control system. The environmental control system includes a ventilation device, a humidifying device 4, a temperature device and a lighting device, which are used to adjust the air parameters, humidity parameters, temperature parameters and lighting duration in the container 1. The feed pool 5 is used to hold feed and feed livestock. The waterer provides drinking water, and the waterer and the feed pool 5 are separately provided, which is more convenient for feeding. The feed pool 5 can be used for regular feeding or the feeding time can be adjusted according to the situation. The separately provided waterer can always provide drinking water without interfering with feeding, and is convenient for providing special water (boiled water or treated water, etc.) for livestock to drink, making feeding healthier.

[0039] The container 1 is provided with a feeding port connected to the feed pool 5, a waterway interface connected to the drinking fountain, and a feces discharge interface connected to the feces collection tank 8, so as to be directly connected to the corresponding external pipelines. For example, the feeding port can be an opening directly opened on the box board of the container 1 for the breeder to put the feed therefrom, or the feeding port can also be formed by a feeding pipe penetrating the box board, and the feeding pipe is connected to the external feed supply equipment such as the feeding equipment 12 through a pipe, so that the feed can be automatically provided. Similarly, a water pipe joint can be provided at the waterway interface, and drinking water can be supplied by directly connecting the water pipe or water tank 15 of the external site through the pipe. A feces discharge pipe is provided at the feces discharge interface, or the feces discharge interface is formed by the feces discharge pipe, which can be directly connected to the external sewage pipe through the pipe.

[0040] In this way, all the devices required for the breeding house have been directly assembled and constructed in the container 1, directly transported and arranged in the breeding site through lifting equipment, and then connected to the external pipeline to form a breeding house that can start breeding; the centralized installation of multiple containers 1 can quickly complete the construction of a complete breeding farm.

[0041] As can be seen, the breeding system provided in this application uses a container 1 as a breeding house. The feeding, watering, and manure removal equipment required for livestock breeding, as well as ventilation, humidification, and temperature control, are assembled inside the container 1. Pipes are reserved on the container 1 deck to form an independent breeding house. When constructing a breeding farm, the corresponding number of containers 1 are simply transported to the site as required and arranged using lifting equipment. Finally, pipes for water, feed, and manure removal are laid to complete the farm. Recycled containers 1 can also be used to further reduce costs. In this way, the breeding house constructed by multiple containers 1, firstly, has a low cost compared with building-type houses, secondly, is easy to install, and can quickly deploy the entire farm, with a short construction time, and can be completed within one or two days so that breeding can begin, significantly shortening the construction time required before breeding and allowing users to quickly start breeding and start revenue; thirdly, it can be quickly dismantled, allowing users to quickly reuse the land, and it can also be easily moved as a whole to cope with the adjustment of the breeding site due to factors such as land or weather in the later stage, making it convenient for mobile breeding; fourthly, the number of breeding houses is easy to adjust, and the breeding scale can be adjusted at will to suit the land area and breeding needs of the user, reducing the difficulty of implementation and cost investment, for example, small-scale breeding can be carried out in mountainous areas or some remote areas; fifthly, the breeding house is easy to carry out intelligent management, and the temperature, humidity, and adverse gases such as nitrogen and ammonia in the air are regulated to improve breeding safety and fattening speed; sixthly, each container 1 has an environmental control system and a feed pool 5, which can easily achieve environmental isolation such as feeding isolation and ventilation, facilitating safe breeding and significantly reducing disease risks.

[0042] Since each container 1 has a feed tank 5, it is only necessary to provide feed to each container 1 separately to form feeding isolation. Furthermore, when multiple containers 1 are provided, not only is the feeding of each container 1 separate, but the environmental control system of each container 1 is also independently set up, that is, the ventilation holes of each container 1 are independently set up and connected to the outside atmosphere. Each container 1 is independently and separately ventilated from each other, cutting off the path of disease spread. In this way, each container 1 forms an independent breeding room, which can conveniently achieve isolated breeding and safe breeding, significantly reduce the probability of disease generation and spread, and ensure breeding results and breeding income.

[0043] The breeding system provided by the present application is particularly suitable for poultry farming with a high incidence of disease, such as pig farming. By controlling the number of pigs in each container 1, the mode and spread of the disease can be effectively controlled, safe breeding can be achieved, breeding safety can be significantly improved, and breeding risks can be reduced. At the same time, for pigs of different stages or types, such as fattening piglets and breeding pigs, it is convenient to realize separate confinement, control the feed composition and feeding amount of each breeding house, carry out targeted feeding, improve breeding effects, and help shorten breeding time.

[0044] Specifically, container 1 can be secured to support pier 2. Support pier 2 can be concrete, providing stability and strong support. When hoisting container 1 for placement, align the corner holes with the locating pins, then lower container 1 directly onto support pier 2. The locating pins then insert into the corner holes, securing container 1. This provides easy installation and effective securing.

[0045] When there are multiple containers 1, the adjacent ends of each two adjacent containers 1 are connected to the same support pier 2 and fixed respectively by two sets of positioning pins on the same support pier 2, such as Figure 1 With such arrangement, multiple containers 1 can be arranged stably and compactly, thus reducing the occupied area.

[0046] Multiple containers 1 are arranged along the width of the container 1. A door 11 is located at one end of the length of the container 1, while the other end may be equipped with ventilation openings and a humidifier 4. The environmental control system, or the master controller of the entire container 1, is equipped with an operation screen. The operation screen can be located at both ends of the length of the container 1, preferably on the door 11 and on the outer wall of the door 11, allowing farmers to operate the equipment from outside the container 1. Alternatively, an electrical control cabinet can be installed within the container 1, such as within the interior space of the container 1 outside the door rail 3 for personnel movement, with the operation screen located on the outer wall of the cabinet, also facilitating easy operation by the operator.

[0047] The water connection, feeding connection and excrement discharge connection are arranged at one or both ends of the length direction of the container 1, and each external connection is connected from one or both ends of the length direction of the container 1 to avoid occupying the space on both sides of the width direction of the container 1, so as to facilitate the centralized arrangement of multiple containers 1.

[0048] Drinking water supply and excrement discharge can be achieved directly through external pipes. Feed can be supplied manually through the feeding port or automatically through automatic feeding equipment. For example, further, in the embodiment of the present application, the breeding system also includes a feeding kitchen, which includes a feeding device 12 for delivering feed to the container 1, and the feeding device 12 is integrated on an integrated rack 13, such as Figure 6 and Figure 7 As shown, the integrated frame 13 is equipped with a lifting structure 19, such as a mounting lug, allowing for direct installation via lifting. The feed pipe 16 of the feeding device 12 is connected to the feed port of one or more containers 1, and feeds powdered or liquid feed into the feed tank 5 of the container 1. This arrangement makes the feeding device 12 a fully integrated device that can be directly lifted into place. Simply connecting the feed pipe 16 to the feed port or feed pipe of the container 1 quickly completes the construction of a farming system capable of automated feeding.

[0049] The feeding device 12 can be a liquid feeding device that provides liquid feed, or a dry feeding device that provides dry powder feed. For example, in the case of a liquid feeding device, the feeding device 12 includes a mixing tank 14 mounted on an integrated frame 13 for holding feed, a water tank 15 for holding water, a feed pipe 16 connected to the mixing tank 14, a delivery pump mounted on the feed pipe 16, and a control box 17 with a controller. The feeding device 12 also includes weight sensors that are communicatively connected to the controller. The weight sensors are mounted on the mixing tank 14 and the water tank 15, allowing the controller to adjust the feeding amount. The weight sensors can be mounted on the legs of the mixing tank 14 and the water tank 15 to measure the weight of the entire tank. Based on the weight changes, the controller can measure the weight and ratio of the water and raw materials.

[0050] The inlet of the mixing tank 14 can be connected to the material tank storing the raw materials through a pipeline. The material tank is equipped with a conveying device such as an auger conveyor, which can automatically inject the raw materials into the mixing tank 14. The material tank storing the raw materials and the conveying device can also be integrated, for example, fixed on a bracket that can be hoisted, or laid on site, such as after the material tank and conveying device are directly transported to the breeding site, the construction can be completed by connecting them through pipelines.

[0051] The outlet of the water tank 15 is connected to the inlet of the mixing tank 14 via a water injection pipe, and is connected to the feed pipe 16 via a water delivery pipe. A water pump is also provided, which is electrically connected to the controller of the feeding device 12. Thus, the controller of the feeding device 12 can activate the water pump to inject water into the mixing tank 14 to mix the liquid feed, and also to inject water into the feed pipe 16 to push out any residual feed in the pipe.

[0052] One end of the feed pipe 16, connected to the container 1, is also connected to a return pipe equipped with a return valve for opening and closing the return pipe. A feed valve is also located on the side leading to the container 1. Both the return valve and the feed valve are connected to the controller of the feeding device 12. The other end of the return pipe is connected to the inlet of the water tank 15 via one branch pipe and to the inlet of the mixing tank 14 via another branch pipe. Both branches are equipped with valves. With this arrangement, when the mixed liquid feed needs to be delivered, the return valve is closed and the feed valve is opened to deliver the liquid feed to the feed tank 5 in the container 1. The delivery volume is controlled by a weight sensor. After the quantitative delivery of the liquid feed is completed, the feed valve is closed and the return valve is opened. By injecting water in the water tank 15 into the feed pipe 16, the liquid feed remaining in the feed pipe 16 can be pushed back into the mixing tank 14. When feed needs to be delivered again, the water in the feed pipe 16 is pushed back into the water tank 15 by the liquid feed. By weight calculation, when the water in the feed pipe 16 is pushed out of the feed pipe 16 and reaches the return valve of the liquid feed flow channel, the return valve is closed in time and the feed valve is opened to continue delivering feed to the container 1.

[0053] When feeding equipment 12 is a dry feeder, it includes a silo mounted on an integrated frame 13, a chute conveyor or auger conveyor, a feed pipe 16, and a control box 17 with a controller. It also includes a weight sensor connected to the silo and / or the feed tank 5, enabling the controller to adjust the feed rate. Dry feed is typically pre-ground powder and can be stored directly in the silo. The chute conveyor or auger conveyor allows for rapid delivery of dry feed directly into container 1.

[0054] The control box 17 of the feeding equipment 12 is attached to the outside of the integrated rack 13, making it easy for maintenance personnel. A control panel 18 or computer is also located on one side of the control box 17. This control panel 18 or computer can be vertically fixed to the integrated rack 13, or a support platform can be provided on the integrated rack 13 to support the control panel 18. The support platform is located on one side of the control box 13, also outside the main body of the integrated rack 13. This location allows farmers to easily control information such as feeding amount and feeding time, thereby improving breeding quality.

[0055] Of course, when the feeding equipment 12 is a dry feeding equipment, it can also be constructed directly at the breeding site. For example, after the silo and conveying equipment are transported to the breeding site, they are placed through lifting equipment and then the pipelines are connected. The installation operation is also very convenient and fast.

[0056] Whether it is liquid or dry material, when the breeding site is large and the breeding scale is large, a material tank for storing raw materials and a conveying device for conveying raw materials can be set up in the breeding site. That is, the feeding kitchen can also include a material tank and a conveying device. In some cases, for example, the raw materials stored in the material tank have large particle size or are dry materials that have not been crushed, and a grinder for crushing the raw materials can be connected to the material tank, that is, the feeding kitchen also includes a grinder, and the grinder is connected between the material tank and the conveying device. The material tank, grinder and conveying device for conveying the raw materials to the feeding device 12 can be placed directly on the breeding site after transportation, and connected to the pipeline, or they can be integrated on the bracket to facilitate direct and integrated transportation to the site.

[0057] The internal structure of the container 1 forming the breeding house is as follows: Figure 4 and Figure 5 As shown, a manure pit 8 is disposed within the container 1 and on the bottom plate of the container 1. The top of the manure pit 8 is the pit opening and is covered with a slatted floor 9. The slatted floor 9 forms the supporting floor of the breeding space, on which the livestock are raised and moved. The gate 3 can also be disposed on the slatted floor 9.

[0058] The material pool 5 is arranged above the slatted floor 9 and can be connected to the side panels of the container 1. It can be arranged along the length of the container 1 to increase the length of the material pool 5. The material pool 5 is provided with a discharge port, which can be connected to an external pipeline or to the manure pit 8, so that the water used to clean the material pool 5 can be discharged into the manure pit 8 conveniently.

[0059] Above the feed pool 5, there are multiple discharge pipes 6 spaced along the length of the container 1, and discharge boxes 7 connected to each pipe. Each discharge pipe 6 is equipped with a discharge valve, and the discharge box 7 is connected to the feed inlet. Feed injected into the container 1 accumulates in the discharge box 7 and is then quickly and evenly injected into different areas of the feed pool 5 through the discharge pipes 6, improving the uniformity of feed delivery within the feed pool 5.

[0060] The drinking fountain includes a drinking bowl connected to an external water source via a pipeline, a trigger valve for opening and closing the pipeline, and a push rod or pedal to activate the trigger valve. The trigger valve is activated by the push rod or pedal, automatically discharging water into the drinking bowl. The push rod can be located inside the drinking bowl. When an animal's head reaches the drinking bowl, its head or nose pushes the push rod. A pedal can be located in front of the drinking bowl and mounted on the slatted floor 9. When an animal, such as a pig, approaches the drinking bowl, its front hoof steps on the pedal, causing water to automatically flow into the bowl.

[0061] The environmental control system includes a master controller, an ammonia detector, a nitrogen detector, a temperature sensor, and a humidity sensor. The probes of each sensor and detector extend out of the box board to detect the air inside the container 1. The lines can be laid through the wiring trough provided in the box board of the container 1.

[0062] The master controller and operation screen can be installed on the container board or door 11, or an electric control cabinet can be installed in the container 1, and the electric control cabinet can be installed in the space between the door 11 and the door fence 3. The electric control cabinet accommodates the master controller, inverter and other control components, and the operation screen and prompt light are installed on the outer wall of the electric control cabinet; this is also very convenient for the farmer to operate.

[0063] The ventilation system includes ventilation ducts 10 disposed within the container 1, vents disposed on the deck of the container 1, and a fan. The humidifying device 4 includes a spray assembly disposed at the vents to form a water curtain at the vents. For example, the humidifying device 4 includes a water tank 41 disposed outside the container 1 and a spray assembly disposed within the water tank 41. One side of the water tank 41 is provided with an air inlet 401, and the other side is connected to the vents, so that the water curtain sprayed by the spray assembly is laid out outside the vents.

[0064] The master controller adjusts the ventilation duration and speed of the fans based on the ammonia detector, nitrogen detector, temperature sensor, and humidity sensor to monitor and control the air, humidity, and temperature parameters within container 1 in real time. If the ammonia or nitrogen content exceeds the specified limit, the master controller promptly activates the fans for ventilation or increases the ventilation volume. If either the temperature or humidity exceeds the set minimum value, the master controller also promptly activates the fans for ventilation or increases the ventilation volume.

[0065] The lighting device includes a plurality of lighting lamps arranged on the box board. The master controller is electrically connected to the lighting lamps to monitor and adjust the lighting duration.

[0066] When the feed pool 5 is provided with a discharge pipe 6 and a discharge valve, the master controller is electrically connected to the discharge valve, so that the breeding staff can directly control the feeding time point through the operation screen.

[0067] A solar panel is also provided on the top of the container 1 , and the solar panel supplies power to the entire circuit of the container 1 .

[0068] In some embodiments, the farming system also includes a disinfection room, which is formed by an auxiliary container 1. For example, the farming system may include multiple containers, some of which form farming houses, and one or some of which form a disinfection room. The container 1 forming the farming house is called a farming container, while the container forming the disinfection room is called an auxiliary container. The disinfection room is equipped with a changing area and a disinfection area. The disinfection area is equipped with any one or any combination of shower facilities, bathing facilities, and ultraviolet disinfection facilities. During periods of strict virus control or the spread of a certain virus, it is best to disinfect farmers or any other personnel before entering or exiting the container 1. By setting up a disinfection room, farmers can change clothes before entering the farming space and put on special disinfected clothes after disinfection. After leaving the farming space, they can disinfect again and change back into their previous clothes. This improves farming safety. The disinfection room formed by the container 1 can also be quickly deployed and dismantled, making it ideal for emergency control needs.

[0069] The basic principles of the present application have been described above in conjunction with specific embodiments. However, it should be noted that the advantages, strengths, and effects mentioned in this application are merely illustrative and not restrictive, and it should not be assumed that these advantages, strengths, and effects are required of each embodiment of this application. In addition, the specific details disclosed above are merely illustrative and facilitating understanding, and are not restrictive. The above details do not limit this application to necessarily being implemented using the above specific details.

[0070] The components and devices involved in this application are only illustrative examples and are not intended to require or imply that they must be connected, arranged, or configured in the manner shown in the accompanying drawings. As will be appreciated by those skilled in the art, these components and devices can be connected, arranged, or configured in any manner. Words such as "including," "comprising," "having," and the like are open-ended words that mean "including but not limited to," and can be used interchangeably therewith. The words "or" and "and" used herein refer to the words "and / or" and can be used interchangeably therewith unless the context clearly indicates otherwise. The word "such as" used herein refers to the phrase "such as but not limited to," and can be used interchangeably therewith.

[0071] It should also be noted that in the devices and equipment of the present application, the components can be decomposed and / or reassembled, and such decompositions and / or reassemblies should be regarded as equivalent solutions of the present application.

[0072] The above description of the disclosed aspects is provided to enable any person skilled in the art to make or use the present application. Various modifications to these aspects will be readily apparent to those skilled in the art, and the general principles defined herein may be applied to other aspects without departing from the scope of the present application. Therefore, the present application is not intended to be limited to the aspects shown herein, but rather to be accorded the widest scope consistent with the principles and novel features disclosed herein.

[0073] It should be understood that the qualifiers "first", "second", "third", "fourth", "fifth" and "sixth" used in the description of the embodiments of the present application are only used to more clearly illustrate the technical solutions and cannot be used to limit the scope of protection of the present application.

[0074] The above description has been provided for the purpose of illustration and description. Furthermore, this description is not intended to limit the embodiments of the present application to the forms disclosed herein. Although a number of example aspects and embodiments have been discussed above, those skilled in the art will recognize certain variations, modifications, alterations, additions, and sub-combinations thereof.

[0075] The above description is only a preferred embodiment of the present application and is not intended to limit the present application. Any modifications, equivalent replacements, etc. made within the spirit and principles of the present application shall be included in the scope of protection of the present application.

Claims

1. A breeding system, characterized in that: The invention comprises one or more breeding houses, wherein the breeding houses are formed by containers; The container is provided with a lifting component for connecting a lifting device; a breeding space is formed in the container, and a gate is provided on the side near the container door for livestock to enter and exit the breeding space; A manure collecting tank is provided on the bottom plate of the container, and a manure slatted plate with a plurality of manure leakage openings is laid on the manure collecting tank, and the manure slatted plate forms the supporting bottom plate of the breeding space so that livestock can move on the manure slatted plate; The container is also provided with a feed tank for holding feed, a waterer and an environmental control system. The environmental control system includes a ventilation device, a humidification device and a lighting device, and is used to adjust the air parameters, humidity parameters, temperature parameters and lighting duration in the container; The container is provided with a feeding port connected to the material pool, a water channel interface connected to the drinking fountain, and a feces discharge interface connected to the feces collecting tank, so that corresponding pipelines can be directly connected externally.

2. The aquaculture system according to claim 1, wherein: When there are multiple containers, the environmental control system of each container is independently set up, so that each container forms an independent breeding room to achieve isolated breeding.

3. The aquaculture system according to claim 1, wherein: It also includes a support pier for supporting the container, and the support pier is provided with a positioning pin for inserting into the corner hole of the container.

4. The aquaculture system according to claim 1, wherein: It also includes a feeding kitchen, which includes feeding equipment for conveying feed. The feeding equipment is integrated on an integrated frame, and a hoisting structure is provided on the integrated frame; the feeding pipe of the feeding equipment is connected to the feeding port of one or more containers, and feeds powdered feed or liquid feed into the material pool of the container.

5. The aquaculture system according to claim 4, wherein: The feeding equipment includes a mixing tank for containing feed, a water tank for containing water, a feeding pipe connected to the mixing tank, a delivery pump provided on the feeding pipe, and a control box with a controller; The invention also includes a weight sensor which is in communication with the controller. The weight sensor is arranged on the mixing tank and the water tank so that the controller can adjust the feeding amount.

6. The aquaculture system according to claim 4, wherein: The feeding equipment includes a silo, a plug conveyor or an auger conveyor, the feeding pipe, and a control box with a controller arranged on the integrated frame; It also includes a weight sensor that is in communication with the controller. The weight sensor is arranged on the feed bin and / or the feed pool so that the controller can adjust the feeding amount.

7. The aquaculture system according to claim 4, wherein: The feeding kitchen further comprises a material tank for storing raw materials and a conveying device for conveying the raw materials to the feeding equipment; or the feeding kitchen comprises a material tank for storing raw materials, a grinder for crushing the raw materials and a conveying device for conveying the crushed materials to the feeding equipment.

8. The aquaculture system according to claim 1, wherein: The material pool is provided with a discharge port connected to the manure pit; And / or, a plurality of discharge pipes spaced apart along the length direction and a discharge box connected to each of the discharge pipes are further provided above the material pool, each of the discharge pipes is provided with a discharge valve, and the discharge box is connected to the feeding port; And / or, a solar panel is further provided on the top of the container, and the solar panel supplies power to the breeding house; And / or, the drinking fountain includes a drinking bowl connected to an external water source through a pipeline, a trigger valve for opening or closing the pipeline, and a push rod or a pedal for triggering the trigger valve.

9. The aquaculture system according to claim 1, wherein: The environmental control system includes a master controller, an ammonia detector, a nitrogen detector, a temperature sensor, and a humidity sensor. The ventilation device includes a ventilation duct arranged in the container, a vent and a fan arranged on the container panel. The humidification device includes a spray assembly arranged at the vent to form a water curtain at the vent. The master controller adjusts the ventilation duration and speed of the fan according to the ammonia detector, the nitrogen detector, the temperature sensor, and the humidity sensor.

10. The aquaculture system according to claim 1, wherein: It also includes a disinfection room, which is formed by an auxiliary container; the disinfection room is provided with a changing area and a disinfection area, and the disinfection area is provided with any one or any combination of shower facilities, bathing facilities, and ultraviolet disinfection facilities.