Intelligent pig house based on disease real-time monitoring and early warning system
By installing cameras, sensors and shovel mechanisms in the pig houses, real-time monitoring and automatic cleaning of the health and environment of the pig houses is solved, and the health level of pig houses and the safety of breeding and production are improved.
Patent Information
- Application Number
- CN202510277199.0
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-03-10
- Publication Date
- 2025-06-06
AI Technical Summary
Traditional pig houses rely on manual observation in disease monitoring, which has problems such as poor timeliness and low accuracy. They cannot monitor the behavior and status of pigs in real time, and cannot concentrate on cleaning of feces in pig houses.
A smart pig house is designed, using technology based on real-time disease monitoring and early warning system, including ceiling-mounted cameras, temperature and humidity sensors, harmful gas sensors and shovel mechanisms to realize real-time monitoring and automatic cleaning of pig behavior, body temperature and environmental conditions.
We have achieved comprehensive and real-time monitoring of the health status of the pig herd, timely discover hidden dangers of disease, reduce disease losses, and automatically clean the feces system to reduce bacteria and virus breeding, reduce the risk of epidemics, and improve the health level of the pig herd.
Smart Images

Figure CN120092712A_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of healthy pig breeding, and in particular to an intelligent pig house based on a real-time disease monitoring and early warning system. Background Art
[0002] With the large-scale and intensive development of pig farming, pig disease prevention and control has become a key factor affecting breeding benefits and animal health. Traditional pig houses rely on manual observation for disease monitoring, which has problems such as poor timeliness and low accuracy.
[0003] For example, a Chinese patent with announcement number CN115754259A discloses a pig house feces monitoring device for real-time disease monitoring. The monitoring device has a frame, a telescopic device is arranged on the frame, a weight block is connected to the bottom of the telescopic device, a steering motor is arranged on the weight block, the steering motor is connected to a mechanical arm, a rotating motor is arranged on the mechanical arm, the rotating motor is used to drive the mechanical arm to rotate, a sampling specimen is arranged on the end of the mechanical arm, a support column is connected to the bottom of the frame, a feeding device is arranged on the support column, and a detection device is arranged on the support column below the feeding device. Through the telescopic device, the steering motor and the rotating motor, feces can be collected in the pig house in real time; due to the feeding device, continuous collection and monitoring can be carried out; a detection device is provided, and a plurality of cavities and reagent kits are provided on the detection device, and the detection results changing with time can be displayed through the display area, so that the health status of the pigs in the pig house can be judged more conveniently.
[0004] However, the above-mentioned pig house feces monitoring device for real-time disease monitoring cannot monitor the behavior and status of pigs in real time, and thus cannot promptly detect abnormal behaviors such as reduced food intake, long-term lying still, or abnormal tremors, convulsions, etc., and cannot centrally clean the feces in the pig house. Summary of the invention
[0005] The purpose of the present invention is to provide an intelligent pig house based on a real-time disease monitoring and early warning system to solve the problems raised in the above background technology that the behavior and status of pigs cannot be monitored in real time and the feces in the pig house cannot be cleaned in a centralized manner.
[0006] To achieve the above object, the present invention provides the following technical solutions:
[0007] An intelligent pig house based on a real-time disease monitoring and early warning system comprises: a pig house, a ceiling is fixedly installed on the upper surface of the pig house, a manure collecting trough is opened on the lower surface of the pig house, a mesh plate is fixedly installed on the upper surface of the manure collecting trough, a connecting cylinder is fixedly installed on the lower surface of the mesh plate, a shoveling mechanism is rotatably installed in the connecting cylinder, so that the shoveling mechanism can be pushed and slid in the manure collecting trough to push and shovel out the accumulated pig manure;
[0008] Among them, cameras are fixedly installed at both ends of the lower surface of the ceiling, and one group of the cameras is a thermal imaging camera. The two groups of cameras are connected to a router via a network cable, and the router is then connected to the network where the computer is located, thereby realizing data transmission between the camera and the computer.
[0009] Preferably, the camera is capable of real-time monitoring of the behavior and status of the pigs, and uses image recognition technology to analyze the pigs' behavior patterns such as eating, drinking, lying, and exercising. If it is found that the pigs eat less, lie still for a long time, or exhibit abnormal tremors, convulsions, etc., the system will automatically identify and send abnormal signals to the computer, allowing the computer to sound an alarm through the alarm connected to the USB, and the alarm is fixedly installed on the upper surface of the pig house.
[0010] Preferably, the other group of cameras for thermal imaging can detect the temperature distribution on the pig's body surface. When the local body temperature of the pig rises or falls abnormally, it may be a sign of illness. For example, when the pig is infected with inflammation, the temperature changes of the corresponding parts will be shown on the thermal imaging image, which helps to detect potential disease problems in a timely manner.
[0011] Preferably, troughs are fixedly installed on both sides of the pig house, and a dumping bucket is connected to one end of the upper surface of the trough, and the dumping bucket penetrates to one end of the outer surface of the pig house.
[0012] Preferably, a temperature and humidity sensor, an ammonia sensor, a hydrogen sulfide sensor and a carbon dioxide sensor are fixedly connected to the upper surface of the ceiling respectively;
[0013] Among them, the height of the temperature and humidity sensor is about 1.5-2 meters from the ground of the pig house, so that it can more accurately measure the average temperature and humidity of the pig activity area, avoiding the influence of local temperature and humidity changes due to proximity to heat sources, cold sources or the ground.
[0014] Preferably, the height of the ammonia sensor, hydrogen sulfide sensor and carbon dioxide sensor is about 1-1.5 meters from the ground of the pig house, because harmful gases usually gather in the pig activity area, and the density is generally greater than that of air, and they will accumulate close to the ground. Installing them at this height can monitor the concentration of harmful gases in a timely and accurate manner.
[0015] Preferably, the signal sending ends of the temperature and humidity sensor, ammonia sensor, hydrogen sulfide sensor and carbon dioxide sensor are all connected to the signal input end of the computer, and the models of the temperature and humidity sensor, ammonia sensor, hydrogen sulfide sensor and carbon dioxide sensor are TY-DH9, NHBOX-100DC, NHBOX-100DC and STK-Q respectively.
[0016] Preferably, the shovel mechanism includes a threaded column, which is rotatably installed in a connecting tube, and a transmission column is threadedly installed on the outer surface of the threaded column. The lower end of the outer surface of the transmission column slides out of the connecting tube, and square tubes are fixedly installed at both ends of the transmission column that slides out of the connecting tube, and the square tubes slide between the mesh plate and the manure collecting trough.
[0017] Preferably, the threaded column is fixedly connected to the output shaft of the reduction motor, the reduction motor is fixedly installed in the V-shaped fence, the V-shaped fence is fixedly installed at one end between the mesh plate and the manure collecting trough, and a scraper is fixedly installed at one end of the square tube.
[0018] Preferably, a vibration motor is fixedly installed in the square tube, so that when the square tube is pushed by the threaded column to move in the manure collecting trough, the pig manure adhering to the mesh plate can be fully vibrated by the vibration motor to fall into the manure collecting trough and be pushed out.
[0019] Compared with the prior art, the present invention has the following beneficial effects:
[0020] 1. Through the design of the screen plate, humidity sensor, ammonia sensor, hydrogen sulfide sensor, carbon dioxide sensor, manure trough, camera, alarm and shovel mechanism, during the pig breeding process, the two sets of cameras set at both ends of the pig house ceiling can observe the pigs in the pig house from different angles to understand the overall activities of the pigs, such as whether there are abnormal clustering, dispersion, restlessness, etc., so that through long-term monitoring of the daily behavior patterns of pigs, it can timely discover changes in pig behavior, and enable this camera to directly send video data to the computer's network interface through the network cable to transmit the video signal to the computer, while the other set of thermal imaging cameras can detect the temperature distribution on the pig's body surface. When the local body temperature of the pig is abnormally increased or decreased, it may be a sign of illness. For example, when the pig is infected with inflammation, the temperature change of the corresponding part will be shown on the thermal imaging map, which is helpful to timely discover potential disease problems, and enable the thermal imaging camera to directly transmit the thermal imaging data to the computer through the network cable, so that the camera can send a signal to the computer after detecting the pig's action and abnormal body temperature, and then the computer can control the alarm to sound an alarm to prompt the breeding personnel;
[0021] In addition, while monitoring the behavior and body temperature of pigs through cameras, the humidity sensor, ammonia sensor, hydrogen sulfide sensor, and carbon dioxide sensor fixed on the lower surface of the ceiling can monitor the temperature, humidity, ammonia, hydrogen sulfide, and carbon dioxide in the pig house respectively, so that the concentration of harmful gases in the pig house can be monitored in real time, allowing staff to ventilate the pig house in time to ensure air quality;
[0022] Setting the floor of the pig house as a mesh board can allow the pig feces to pass through the mesh holes of the mesh board and fall into the manure trough for centralized collection. After the set cleaning time, the pushing shovel mechanism can be activated to slide between the mesh board and the manure trough, so that the pushing shovel mechanism can push the feces collected in the manure trough out of the trough for cleaning. Timely cleaning of feces and maintaining good air quality can help reduce the breeding and spread of bacteria and viruses in the pig house, reduce the risk of pigs contracting diseases, improve the overall health level of the pig herd, and ensure the safety of breeding production.
[0023] 2. Through the design of the reduction motor, threaded column, square tube, scraper and vibration motor, the reduction motor and vibration motor will be automatically started after the set cleaning time, and the motor can drive the threaded column to drive the square tube fixedly installed at both ends of the outer surface to slide in the manure collecting trough, and the started vibration motor can vibrate the square tube, so as to realize the vibration of the feces adhered to the screen plate into the manure collecting trough in the process of pushing and shoveling the feces, avoiding feces residue, ensuring the cleanliness of the screen plate and the manure collecting trough, reducing bacterial growth and odor generation, and thus enabling the square tube to be pushed by vibration at the same time. Together, it drives a scraper fixed at one end to push the collected feces in the manure trough out, until the scraper is pushed to the port of the manure trough, which can make the reduction motor reverse the threaded column to drive the square tube back to its original position, ready for the next cleaning work, realizing automatic cycle cleaning, and can clean feces regularly at set time intervals, keep the pig house environment continuously clean, keep the pig house clean and hygienic, reduce the breeding and spread of pathogens such as bacteria and viruses, reduce the risk of pigs contracting diseases, improve the overall health level of the pig herd, and help ensure the smooth progress of breeding production. BRIEF DESCRIPTION OF THE DRAWINGS
[0024] Figure 1 It is a schematic diagram of the overall structure of the intelligent pig house based on the real-time disease monitoring and early warning system of the present invention;
[0025] Figure 2 It is a schematic diagram of the structure of the manure collecting trough of the present invention;
[0026] Figure 3 It is a structural schematic diagram of a camera and an alarm of the present invention;
[0027] Figure 4 It is a structural schematic diagram of the connecting tube of the present invention;
[0028] Figure 5 It is a structural schematic diagram of the push shovel mechanism of the present invention;
[0029] Figure 6 It is a schematic structural diagram of the vibration motor of the present invention.
[0030] In the figure: 1. Pig house; 101. Roof; 102. Feeding trough; 103. Tipping bucket; 104. Screen plate; 105. Humidity sensor; 106. Ammonia sensor; 107. Hydrogen sulfide sensor; 108. Carbon dioxide sensor; 109. Manure trough; 110. Camera; 111. Connecting tube; 112. V-shaped fence; 113. Alarm; 2. Push shovel mechanism; 201. Reducer motor; 202. Threaded column; 203. Square tube; 204. Scraper; 205. Vibration motor; 206. Transmission column. DETAILED DESCRIPTION
[0031] The following will be combined with the drawings in the embodiments of the present invention to clearly and completely describe the technical solutions in the embodiments of the present invention. Obviously, the described embodiments are only part of the embodiments of the present invention, not all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without creative work are within the scope of protection of the present invention.
[0032] See also Figure 1-Figure 6 , the present invention provides a technical solution:
[0033] like Figure 1-Figure 4 As shown, a smart pig house based on a real-time disease monitoring and early warning system comprises: a pig house 1, a ceiling 101 is fixedly installed on the upper surface of the pig house 1, a manure collecting trough 109 is opened on the lower surface of the pig house 1, a mesh plate 104 is fixedly installed on the upper surface of the manure collecting trough 109, a connecting cylinder 111 is fixedly installed on the lower surface of the mesh plate 104, and a shoveling mechanism 2 is rotatably installed in the connecting cylinder 111, so that the shoveling mechanism 2 can be pushed and slid in the manure collecting trough 109 to push and shovel out the accumulated pig manure;
[0034] Among them, cameras 110 are fixedly installed at both ends of the lower surface of the ceiling 101, and one group of cameras 110 is a thermal imaging camera. The two groups of cameras 110 are connected to a router via a network cable, and then the router is connected to the network where the computer is located, thereby realizing data transmission between the camera 110 and the computer.
[0035] The camera 110 is enabled to monitor the behavior and status of the pigs in real time, and use image recognition technology to analyze the pigs' behavior patterns such as eating, drinking, lying, and exercising. If it is found that the pigs eat less, lie still for a long time, or have abnormal tremors, convulsions, etc., the system will automatically identify and send the abnormal signal to the computer, allowing the computer to sound an alarm through the alarm 113 connected to the USB. The alarm 113 is fixedly installed on the upper surface of the pig house 1.
[0036] The other set of thermal imaging cameras 110 can detect the temperature distribution on the pig's body surface. When the pig's local body temperature rises or falls abnormally, it may be a sign of illness. For example, when a pig is infected with inflammation, the thermal imaging image will show the temperature changes of the corresponding part, which helps to detect potential disease problems in a timely manner.
[0037] A trough 102 is fixedly installed on both sides of the pig house 1 , and a dumping bucket 103 is connected to one end of the upper surface of the trough 102 , and the dumping bucket 103 penetrates to one end of the outer surface of the pig house 1 .
[0038] The upper surface of the ceiling 101 is respectively fixedly connected with a temperature and humidity sensor 105, an ammonia sensor 106, a hydrogen sulfide sensor 107 and a carbon dioxide sensor 108;
[0039] Among them, the height of the temperature and humidity sensor 105 is about 1.5-2 meters from the ground of the pig house 1, so that it can more accurately measure the average temperature and humidity of the pig activity area, avoiding the influence of local temperature and humidity changes due to proximity to heat sources, cold sources or the ground.
[0040] The height of the ammonia sensor 106, the hydrogen sulfide sensor 107 and the carbon dioxide sensor 108 is about 1-1.5 meters from the ground of the pig house 1. Because harmful gases usually gather in the pig activity area and their density is generally greater than that of air, they will accumulate near the ground. Installing them at this height can monitor the concentration of harmful gases in a timely and accurate manner.
[0041] The signal sending ends of the temperature and humidity sensor 105, the ammonia sensor 106, the hydrogen sulfide sensor 107 and the carbon dioxide sensor 108 are all connected to the signal input end of the computer. The models of the temperature and humidity sensor 105, the ammonia sensor 106, the hydrogen sulfide sensor 107 and the carbon dioxide sensor 108 are TY-DH9, NHBOX-100DC, NHBOX-100DC and STK-Q respectively.
[0042] Through the design of the mesh plate 104, humidity sensor 105, ammonia sensor 106, hydrogen sulfide sensor 107, carbon dioxide sensor 108, manure trough 109, camera 110, alarm 113 and shovel mechanism 2, during the pig breeding process, two sets of cameras 110 set at both ends of the ceiling 101 of the pig house 1 can observe the pigs in the pig house 1 from different angles to understand the overall activities of the pigs, such as whether there are abnormal crowding, dispersion, restlessness, etc., so that through long-term monitoring of the daily behavior patterns of pigs, changes in pig behavior can be discovered in time, and the camera 110 can directly transmit the video through the network cable. The network interface of the computer transmits the video signal to the computer, and the other group of thermal imaging cameras 110 can detect the temperature distribution on the surface of the pig's body. When the local body temperature of the pig is abnormally increased or decreased, it may be a sign of illness. For example, when the pig is infected with inflammation, the temperature change of the corresponding part will be displayed on the thermal imaging map, which is helpful to timely discover potential disease problems. The thermal imaging camera 110 can directly transmit the thermal imaging data to the computer through the network cable, and then the camera 110 can detect the pig's movement and abnormal body temperature and send a signal to the computer, and then the computer can control the alarm 113 to sound an alarm to prompt the breeding staff;
[0043] In the process of monitoring the behavior and body temperature of the pigs through the camera 110, the humidity sensor 105, ammonia sensor 106, hydrogen sulfide sensor 107, and carbon dioxide sensor 108 fixedly installed on the lower surface of the ceiling 101 can monitor the temperature, humidity, ammonia, hydrogen sulfide, and carbon dioxide in the pig house 1 respectively, so that the concentration of harmful gases in the pig house 1 can be monitored in real time, so that the staff can ventilate the pig house 1 in time to ensure the air quality;
[0044] The floor of the pig house 1 is set as a mesh plate 104, so that the feces of the pigs can pass through the mesh holes of the mesh plate 104 and fall into the manure collecting trough 109 for centralized collection. After the set cleaning time, the pushing and shoveling mechanism 2 can be started to slide between the mesh plate 104 and the manure collecting trough 109, so that the pushing and shoveling mechanism 2 can push and clean the feces collected in the manure collecting trough 109 out of the manure collecting trough 109. Timely cleaning of feces and maintaining good air quality are helpful to reduce the breeding and spread of bacteria and viruses in the pig house 1, reduce the risk of pigs being infected with diseases, improve the overall health level of the pig herd, and ensure the safety of breeding production.
[0045] like Figure 5-Figure 6As shown, the shovel mechanism 2 includes a threaded column 202, which is rotatably installed in the connecting tube 111. A transmission column 206 is threadedly installed on the outer surface of the threaded column 202. The lower end of the outer surface of the transmission column 206 slides out of the connecting tube 111. Both ends of the transmission column 206 that slides out of the connecting tube 111 are fixedly installed with square tubes 203, and the square tubes 203 slide between the mesh plate 104 and the manure collecting trough 109.
[0046] The threaded column 202 is fixedly connected to the output shaft of the reduction motor 201, the reduction motor 201 is fixedly installed in the V-shaped fence 112, the V-shaped fence 112 is fixedly installed at one end between the leakage screen plate 104 and the manure collecting trough 109, and a scraper 204 is fixedly installed at one end of the square tube 203.
[0047] A vibration motor 205 is fixedly installed in the square tube 203, so that the square tube 203 is pushed by the threaded column 202 and moves in the manure collecting trough 109. During this process, the pig manure adhering to the mesh plate 104 can be fully vibrated by the vibration motor 205 and dropped into the manure collecting trough 109 and pushed out.
[0048] Through the design of the reduction motor 201, the threaded column 202, the square tube 203, the scraper 204 and the vibration motor 205, the reduction motor 201 and the vibration motor 205 are automatically started after the set cleaning time, and the motor can drive the threaded column 202 and the threaded transmission column 206 to drive the square tube 203 fixedly installed at both ends of the outer surface to slide in the manure collecting trough 109, and the started vibration motor 205 can vibrate in the square tube 203, so as to realize the vibration of the feces adhered to the screen plate 104 into the manure collecting trough 109 in the process of pushing and shoveling feces, avoid feces residue, ensure the cleanliness of the screen plate 104 and the manure collecting trough 109, reduce bacterial growth and odor generation, and thus make the square tube When 203 is pushed by vibration, it can also drive the scraper 204 fixed at one end to push out the collected feces in the feces collecting trough 109, until the scraper 204 is pushed to the end of the feces collecting trough 109, which can make the reduction motor 201 reverse the threaded column 202 to drive the square tube 203 back to its original position, and prepare for the next cleaning work, thereby realizing automatic cycle cleaning, and can regularly clean feces at set time intervals to keep the environment of the pig house 1 continuously clean. Keeping the pig house 1 clean and hygienic reduces the breeding and spread of pathogens such as bacteria and viruses, reduces the risk of pigs contracting diseases, improves the overall health level of the pig herd, and helps to ensure the smooth progress of breeding production.
[0049] According to the above technical scheme, the working steps of this scheme are summarized and sorted out: in the process of pig breeding, two groups of cameras 110 set at both ends of the ceiling 101 of the pig house 1 can observe the pigs in the pig house 1 from different angles in an all-round manner to understand the overall activities of the pigs, such as whether there are abnormal crowding, dispersion, restlessness, etc., so that through long-term monitoring of the daily behavior patterns of the pigs, the changes in the behavior of the pigs can be discovered in time, and the camera 110 can directly send the video data to the network interface of the computer through the network cable to transmit the video signal to the computer, and the other group of thermal imaging cameras 110 can detect the temperature distribution on the surface of the pig's body. When the local body temperature of the pig is abnormally increased or decreased, it may be a sign of illness. For example, when the pig is infected with inflammation, the temperature change of the corresponding part will be displayed on the thermal imaging map, which is helpful to timely discover potential disease problems, and the thermal imaging camera 110 can directly transmit the thermal imaging data to the computer through the network cable, so that the camera 110 can send a signal to the computer after detecting the abnormal movement and body temperature of the pig, and then the computer can control the alarm 113 to sound an alarm to prompt the breeding personnel;
[0050] In the process of monitoring the behavior and body temperature of the pigs through the camera 110, the humidity sensor 105, ammonia sensor 106, hydrogen sulfide sensor 107, and carbon dioxide sensor 108 fixedly installed on the lower surface of the ceiling 101 can monitor the temperature, humidity, ammonia, hydrogen sulfide, and carbon dioxide in the pig house 1 respectively, so that the concentration of harmful gases in the pig house 1 can be monitored in real time, so that the staff can ventilate the pig house 1 in time to ensure the air quality;
[0051] The floor of the pig house 1 is set as a mesh plate 104, so that the feces pulled by the pigs can pass through the mesh holes of the mesh plate 104 and fall into the manure collecting trough 109 for centralized collection. After the set cleaning time, the reduction motor 201 and the vibration motor 205 can be started, and the reduction motor 201 can drive the threaded column 202 and the threaded transmission column 206 to drive the square tube 203 fixedly installed at both ends of the outer surface to slide in the manure collecting trough 109, and the started vibration motor 205 can vibrate the square tube 203, so as to realize the vibration of the feces adhered to the mesh plate 104 into the manure collecting trough 109 in the process of pushing and shoveling the feces. , avoiding feces residue, ensuring the cleanliness of the mesh plate 104 and the feces collecting trough 109, reducing bacterial growth and odor generation, and then enabling the square tube 203 to be pushed by vibration, while at the same time, it can drive the scraper 204 fixedly installed at one end to push and shovel out the collected feces in the feces collecting trough 109, until the scraper 204 is pushed to the end of the feces collecting trough 109, the reduction motor 201 can reverse the threaded column 202 to drive the square tube 203 back to its original position, preparing for the next cleaning work, realizing automatic cycle cleaning, and being able to clean feces regularly at set time intervals to keep the environment of the pig house 1 continuously clean.
[0052] In summary: By using sensors and data analysis methods, a real-time disease monitoring and early warning system is constructed to achieve all-round and real-time monitoring of the health status of the pig herd, timely discover potential disease risks, take prevention and control measures, reduce disease losses, and be able to regularly clean up the feces in the pig house 1, which helps to reduce the breeding and spread of bacteria and viruses in the pig house 1, reduce the risk of pigs contracting diseases, improve the overall health level of the pig herd, and ensure the safety of breeding production.
[0053] Parts not involved in the present invention are the same as the prior art or can be implemented by the prior art. Although the embodiments of the present invention have been shown and described, it is understood by those skilled in the art that various changes, modifications, substitutions and variations can be made to these embodiments without departing from the principles and spirit of the present invention, and the scope of the present invention is defined by the appended claims and their equivalents.
Claims
1. An intelligent pig house based on real-time disease monitoring and early warning system, characterized in that: include: A pig house (1), wherein a ceiling (101) is fixedly installed on the upper surface of the pig house (1), a manure collecting trough (109) is opened on the lower surface of the pig house (1), a mesh plate (104) is fixedly installed on the upper surface of the manure collecting trough (109), a connecting tube (111) is fixedly installed on the lower surface of the mesh plate (104), and a shoveling mechanism (2) is rotatably installed in the connecting tube (111), so that the shoveling mechanism (2) can be pushed into the manure collecting trough (109) to slide and shovel out the accumulated pig manure; Wherein, cameras (110) are fixedly installed at both ends of the lower surface of the ceiling (101), and one group of the cameras (110) is a thermal imaging camera. The two groups of the cameras (110) are connected to a router via a network cable, and the router is then connected to a network where the computer is located, thereby realizing data transmission between the cameras (110) and the computer.
2. The intelligent pig house based on real-time disease monitoring and early warning system according to claim 1 is characterized by: The camera (110) can monitor the behavior and status of the pigs in real time, and use image recognition technology to analyze the pigs' eating, drinking, lying and movement behavior patterns. If it is found that the pigs eat less, lie still for a long time, or have abnormal trembling or twitching behavior, it will automatically identify and send abnormal signals to the computer, allowing the computer to sound an alarm through an alarm (113) connected to the USB. The alarm (113) is fixedly installed on the upper surface of the pig house (1).
3. The intelligent pig house based on real-time disease monitoring and early warning system according to claim 2 is characterized by: The other group of cameras (110) for thermal imaging can detect the temperature distribution on the surface of the pig's body. When the local body temperature of the pig rises or falls abnormally, it may be a sign of illness. For example, when the pig is infected with inflammation, the temperature changes of the corresponding parts will be shown on the thermal imaging image, which helps to detect potential disease problems in a timely manner.
4. The intelligent pig house based on real-time disease monitoring and early warning system according to claim 1 is characterized in that: A trough (102) is fixedly installed on both sides of the pig house (1), and a dumping bucket (103) is connected and installed on one end of the upper surface of the trough (102), and the dumping bucket (103) penetrates to one end of the outer surface of the pig house (1).
5. The intelligent pig house based on real-time disease monitoring and early warning system according to claim 1 is characterized by: The upper surface of the ceiling (101) is respectively fixedly connected with a temperature and humidity sensor (105), an ammonia sensor (106), a hydrogen sulfide sensor (107) and a carbon dioxide sensor (108), and the height of the temperature and humidity sensor (105) is about 1.5-2 meters from the ground of the pig house (1).
6. The intelligent pig house based on real-time disease monitoring and early warning system according to claim 5 is characterized by: The ammonia sensor (106), the hydrogen sulfide sensor (107) and the carbon dioxide sensor (108) are located at a height of about 1-1.5 meters from the ground of the pig house (1).
7. The intelligent pig house based on real-time disease monitoring and early warning system according to claim 5 is characterized by: The signal sending ends of the temperature and humidity sensor (105), the ammonia sensor (106), the hydrogen sulfide sensor (107) and the carbon dioxide sensor (108) are all connected to the signal input end of the computer.
8. The intelligent pig house based on real-time disease monitoring and early warning system according to claim 1 is characterized by: The shovel mechanism (2) comprises a threaded column (202), the threaded column (202) is rotatably mounted in the connecting tube (111), a transmission column (206) is threadedly mounted on the outer surface of the threaded column (202), the lower end of the outer surface of the transmission column (206) slides out of the connecting tube (111), and both ends of the transmission column (206) that slides out of the connecting tube (111) are fixedly mounted with square tubes (203), and the square tubes (203) slide between the mesh plate (104) and the manure collecting trough (109).
9. The intelligent pig house based on real-time disease monitoring and early warning system according to claim 8 is characterized by: The threaded column (202) is fixedly connected to the output shaft of the reduction motor (201), the reduction motor (201) is fixedly installed in the V-shaped fence (112), the V-shaped fence (112) is fixedly installed at one end between the leakage screen plate (104) and the manure collecting trough (109), and a scraper (204) is fixedly installed at one end of the square tube (203).
10. The intelligent pig house based on real-time disease monitoring and early warning system according to claim 9 is characterized in that: A vibration motor (205) is fixedly installed in the square tube (203), so that when the square tube (203) is pushed by the threaded column (202) to move in the manure collecting trough (109), the pig manure adhering to the mesh plate (104) can be fully vibrated by the vibration motor (205) and dropped into the manure collecting trough (109) and pushed out.
Citation Information
Patent Citations
Pig house excrement monitoring device capable of monitoring diseases in real time
CN115754259A
Cited By
Hog house disinfection, deodorization and epidemic prevention breeding system
CN120827090A