Environment ventilation cooling system

By using the fresh air and circulating cooling units of the environmental ventilation and cooling system to process the air, rapid cooling of cooked feed is achieved, solving the problems of slow natural cooling and microbial growth, and improving production efficiency and feed safety.

CN121474795APending Publication Date: 2026-02-06SHENGZHOU MOSANG MODERN COCOON IND CO LTD
View PDF 0 Cites 0 Cited by

Patent Information

Application Number
CN202512012388.8
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-12-29
Publication Date
2026-02-06

AI Technical Summary

Technical Problem

In existing technologies, the natural cooling rate of cooked feed is slow, which prolongs the production cycle. Furthermore, microorganisms are prone to grow in high temperature and high humidity environments, leading to feed spoilage or a decline in hygiene indicators.

Method used

An environmental ventilation and cooling system is adopted, which uses a combination of fresh air and circulating cooling air handling units to filter, disinfect, and cool the outside air before sending it into the cooling room to quickly cool down the cooked feed. The air in the cooling room is then exhausted by an exhaust fan to ensure that the feed is cooled to the predetermined temperature.

Benefits of technology

It significantly improves feed cooling efficiency, shortens the production cycle, reduces exposure time under high temperature and humidity conditions, significantly inhibits microbial growth, and ensures the safety and stability of feed products.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure CN121474795A_ABST
    Figure CN121474795A_ABST
Patent Text Reader

Abstract

The invention discloses an environment ventilation cooling system which comprises a fresh air combined type air handling unit, a circulating cooling combined type air handling unit and a cooling room, and the fresh air combined type air handling unit is used for filtering outside air and then feeding the outside air into the circulating cooling combined type air handling unit. The circulating cooling combined type air handling unit sterilizes fed air and then sends the air to the cooling room, the cooling room is used for containing cooked feed, and the cooling room is connected with an exhaust fan and used for exhausting air in the cooling room. Cooked feed is put into the cooling room, external air is filtered and purified by the fresh air combined air processing unit and disinfected and cooled by the circulating cooling combined air processing unit and then is fed into the cooling room to be cooled, and the air in the cooling room is discharged to the outside by the exhaust fan, so that the feed is cooled. The feed in the cooling room is reduced to the preset temperature, the feed cooling efficiency is greatly improved, and the feed production cycle is shortened.
Need to check novelty before this filing date? Find Prior Art

Description

TECHNICAL FIELD

[0001] The present application belongs to the technical field of ventilation system, and particularly relates to an environmental ventilation cooling system. BACKGROUND

[0002] Feed is a general term for the food of all animals raised by people. In a narrower sense, feed generally refers to the food of animals raised in agriculture or animal husbandry. Feed includes more than ten varieties of feed raw materials such as soybeans, soybean meal, corn, fish meal, amino acids, bran, whey powder, oil, bone meal, grains, and feed additives.

[0003] Artificial feed rearing silkworms changes the fact that silkworms must completely rely on mulberry trees to obtain feed, and can be free from the constraints of seasons and natural conditions. Artificial feed rearing silkworms reduces the labor intensity of silkworm farmers, increases the number of silkworms reared, and increases economic income. The realization of artificial feed rearing silkworms reduces the difficulty of silkworm rearing mechanization and provides essential conditions for realizing silkworm rearing mechanization.

[0004] As the last step of feed production, the temperature of the cooked feed is high. In order to avoid the adverse effects of heat on the reaction of raw materials, the heat needs to be removed. The currently adopted method is to place the cooked feed in a room at room temperature for standing and cooling. However, the natural cooling speed at room temperature is slow, which prolongs the production cycle and affects the overall production efficiency. Moreover, during the long standing and cooling process, the high-temperature and high-humidity feed is exposed to the air, which is prone to breed microorganisms, leading to feed spoilage or a decrease in hygiene indicators. SUMMARY

[0005] The present application aims to solve the above technical problems in the prior art and provides an environmental ventilation cooling system. The cooked feed is placed in a cooling room, and then a fresh air combined air handling unit and a circulating cooling combined air handling unit are controlled to operate. The external air is filtered and purified by the fresh air combined air handling unit and then sent into the circulating cooling combined air handling unit for disinfection and cooling. The cooled feed in the cooling room is then cooled and the air in the cooling room is discharged to the outside by an exhaust fan. The feed in the cooling room is cooled to a predetermined temperature, which greatly improves the feed cooling efficiency, shortens the feed production cycle, and reduces the exposure time of the feed in a high-temperature and high-humidity state. This significantly inhibits the growth conditions of microorganisms and reduces the risk of feed spoilage or a decrease in hygiene indicators, which is beneficial to ensuring the safety and stability of the feed product.

[0006] In order to solve the above technical problems, the present application adopts the following technical solutions: An environmental ventilation and cooling system includes a fresh air combined air handling unit, a circulating cooling combined air handling unit, and a cooling room. The fresh air combined air handling unit filters outside air and sends it into the circulating cooling combined air handling unit. The circulating cooling combined air handling unit disinfects the incoming air and sends it out to the cooling room. The cooling room is used to place cooked feed. The cooling room is connected to an exhaust fan to exhaust the air in the cooling room. This invention places cooked feed into a cooling room, then controls the operation of a fresh air combined air handling unit and a circulating cooling combined air handling unit. Outside air is filtered and purified by the fresh air combined air handling unit before being sent to the circulating cooling combined air handling unit for disinfection and cooling. It is then sent into the cooling room to cool the cooked feed. The air in the cooling room is exhausted to the outside by an exhaust fan, thus reducing the feed temperature to a predetermined level. This significantly improves feed cooling efficiency, shortens the feed production cycle, and reduces the exposure time of feed to high temperature and humidity, significantly inhibiting microbial growth and reducing the risk of feed spoilage or a decline in hygiene indicators, which helps ensure the safety and stability of feed products.

[0007] Furthermore, the fresh air combined air handling unit and the circulating cooling combined air handling unit are connected by an air supply duct. The air supply duct is equipped with an air valve, which is used to control the opening and closing of the air supply duct. The other end of the fresh air combined air handling unit is equipped with an air inlet duct, and a duct-type temperature and humidity sensor is connected to the air inlet duct. A duct-type temperature and humidity sensor is also installed at the end of the air supply duct near the circulating cooling combined air handling unit.

[0008] By installing a single air valve and two duct-type temperature and humidity sensors, precise control of the fresh air introduction path and monitoring of the air condition throughout the entire process are achieved. The single air valve can flexibly adjust or even shut off the fresh air volume.

[0009] Temperature and humidity sensor one monitors the parameters of the untreated raw fresh air in real time, providing initial data for system prediction and adjustment; temperature and humidity sensor two monitors the air condition after being treated by the fresh air handling unit. By comparing the data with that of sensor one, the treatment effect of the fresh air handling unit can be evaluated in real time, and a precise basis for setting the operating parameters of the subsequent circulating cooling unit can be provided. This ensures that the air delivered to the cooling room is always within the optimal range of temperature, humidity and cleanliness, thereby improving the stability of the cooling process and the reliability of feed quality assurance from the source.

[0010] Furthermore, the circulating cooling combined air handling unit is connected to the cooling room through air supply duct 2. Air supply duct 2 is equipped with air supply static pressure sensor 1, and air supply duct temperature and humidity sensor 3 is installed at the end of air supply duct 2 near the cooling room.

[0011] By installing a static pressure sensor and a duct-type temperature and humidity sensor at the second air supply duct, the stability of the system operation and the level of control precision are significantly improved.

[0012] The air supply static pressure sensor can monitor the air supply power status to the cooling room in real time. Its data can be used to adjust the frequency of the second fan section in the circulating cooling unit to ensure that the air supply pressure is stable at the set value. This avoids insufficient or fluctuating air supply due to changes in pipe resistance or dust accumulation in the filter, thereby ensuring uniform airflow organization and consistent feed cooling rate in the cooling room.

[0013] The duct-type temperature and humidity sensor directly detects the final state of the air about to enter the cooling room. This is the final verification of the effect of the air after being processed by the circulating cooling unit. It ensures that the air parameters sent into the cooling room strictly meet the process requirements, providing the most direct guarantee for the rapid and safe cooling of feed.

[0014] Furthermore, the cooling room and the exhaust fan are connected by an air supply duct three. The air supply duct three is equipped with an air valve two. An air supply static pressure sensor two is installed at the end of the air supply duct near the cooling room. The air valve two is used to control the opening and closing of the air supply duct three. The exhaust fan is equipped with an exhaust duct that discharges air to the outside. A duct-type temperature and humidity sensor four is installed at the exhaust duct. A fan section differential pressure switch one is connected between the air supply duct three and the exhaust duct.

[0015] By setting up a second air supply static pressure sensor and a fourth duct-type temperature and humidity sensor, intelligent monitoring and regulation of the air pressure and exhaust status in the cooling room are achieved, effectively ensuring the system's hygiene, safety, and energy-saving operation.

[0016] Air valve two can control and adjust the exhaust volume or even completely close the exhaust path. Supply air static pressure sensor two monitors the exhaust side pressure in the cooling room. Working in conjunction with supply air static pressure sensor one, it can precisely control the room's pressure differential, creating a reasonable directional airflow and protecting the cooling environment. Fan section differential pressure switch one directly monitors the operating load status of the exhaust fan itself, providing timely warnings of fan failure or exhaust duct blockage. Duct-type temperature and humidity sensor four monitors the parameters of the final exhaust gas, which can be used to assess the system's heat and moisture exchange efficiency and serve as an auxiliary basis for determining whether the feed cooling process is complete. It also ensures that the exhaust meets environmental protection requirements, forming a complete, controllable, and monitorable exhaust closed loop.

[0017] Furthermore, air supply duct three is connected to air supply duct two via a connecting pipe, and the connecting pipe is equipped with an air valve three, which is used to control the opening and closing of the connecting pipe.

[0018] By adding a connecting pipe with a third air valve, a flexible air recirculation operation mode was introduced into the system. When cooling the cooked feed, valve three is closed, and valves one and two are opened, allowing outside air to be filtered and purified by the fresh air combined air handling unit before being sent to the circulating cooling combined air handling unit for cooling and disinfection. The air is then sent into the cooling room to cool the feed inside. The air in the cooling room is exhausted to the outside by an exhaust fan, achieving rapid cooling of the feed. When the temperature and humidity in the cooling room reach the preset standard, i.e., when the feed temperature drops to the preset standard, valves one and two are closed, and valve three is opened, allowing the circulating cooling combined air handling unit to circulate and disinfect the cooling room, ensuring the hygiene and safety of the feed.

[0019] Furthermore, the fresh air combined air handling unit includes a pre-filter section, a medium-efficiency section, a fan section 1, a high-efficiency section, and an air outlet section 1 arranged sequentially. The pre-filter section is used to perform preliminary filtration of the air entering the fresh air combined air handling unit, the medium-efficiency section performs secondary filtration, the fan section 1 controls the outside air to be transported to the circulating cooling combined air handling unit after entering the fresh air combined air handling unit, the high-efficiency section is used to perform high-efficiency filtration of the air, and the air outlet section 1 is used to transport the purified air in the fresh air combined air handling unit to the circulating cooling combined air handling unit.

[0020] The fresh air combined air handling unit adopts a multi-stage progressive filtration structure, which forms a deep purification barrier for the air entering the fresh air combined air handling unit.

[0021] The primary filter first intercepts large particles in the atmosphere, such as dust, protecting the subsequent secondary filter and extending its lifespan; the secondary filter further removes smaller particles; and finally, the high-efficiency filter performs fine filtration, effectively capturing fine particles and even some bacteria.

[0022] This three-stage filtration system ensures that the air supplied to the subsequent circulating cooling combined air handling unit has extremely high cleanliness, fundamentally reducing the risk of dust and other pollutants entering the cooling room and contaminating the feed. At the same time, it greatly protects the surface cooler fins and disinfection section components inside the circulating cooling combined air handling unit, preventing dust accumulation, bacterial growth, or impact on heat exchange and disinfection efficiency. This reduces equipment maintenance frequency and energy consumption, laying a solid air source foundation for the production of high-quality hygienic feed.

[0023] Furthermore, the circulating cooling combined air handling unit includes a mixing section, a surface cooling section, a disinfection section, a second fan section, and a second outlet section arranged in sequence. The mixing section is used to mix the air entering the circulating cooling combined air handling unit. The surface cooling section is used to cool the mixed air. The disinfection section is used to disinfect the cooled air. The second fan section controls the air to be delivered from the mixing section to the second outlet section. The second outlet section delivers the air in the circulating cooling combined air handling unit to the cooling room. A second fan section differential pressure switch is connected between the disinfection section and the second outlet section.

[0024] The mixing section ensures uniform mixing of fresh air and potential return air, guaranteeing consistent air temperature and humidity and improving the heat exchange efficiency of the subsequent cooling section. The cooling section is responsible for the core cooling and dehumidification functions, rapidly reducing air temperature to provide powerful cooling. The disinfection section, located after the cooling section, thoroughly sterilizes the cooled air, preventing secondary contamination during cooling and ensuring that the air supplied to the cooling room is low-temperature and sterile—crucial for inhibiting microbial growth on feed surfaces. The differential pressure switch in the fan section specifically monitors pressure changes before and after the disinfection section, sensitively reflecting the clogging of the disinfection section's filter components or changes in the disinfection device's resistance to airflow. This timely maintenance reminder ensures stable disinfection effects and system airflow, a key safety design feature guaranteeing the continuous effectiveness of the disinfection process.

[0025] Furthermore, five duct-type temperature and humidity sensors are evenly distributed on both sides of the cooling room.

[0026] A multi-point, three-dimensional real-time environmental monitoring network was constructed by evenly distributing multiple duct-type temperature and humidity sensors on both sides of the cooling room. These sensors can simultaneously collect air temperature and humidity data at different horizontal and vertical positions within the cooling room, thus comprehensively and accurately reflecting the microenvironment of the entire feed pile. This monitoring network can not only monitor the overall progress of the cooling process in real time, but also accurately locate areas of uneven cooling, localized overheating, or humidity accumulation. The collected multi-point data provides direct evidence for the system to dynamically and precisely adjust airflow and temperature, forming a key sensing foundation for achieving uniform, efficient, and controllable cooling, effectively avoiding the risk of feed condensation or secondary contamination caused by uncontrolled local environmental parameters.

[0027] Furthermore, air supply duct two is connected to one side wall of the cooling room, and air supply duct three is connected to the corresponding other side wall of the cooling room. The cooling room is equipped with mixed flow fans, which are evenly distributed on both sides of the cooling room walls.

[0028] By precisely arranging the air supply and exhaust vents on opposite walls of the cooling room, a scientifically constructed horizontal unidirectional displacement airflow pattern was created. Clean cooling air is supplied entirely from one wall, horizontally and sequentially penetrating the feed pile, and directionally pushing the heat and moisture evaporated from the feed to the exhaust vent on the opposite side. This airflow organization method features low path resistance, strong directionality, and few dead zones, ensuring sufficient and sequential heat and moisture exchange between the supplied cold air and the feed, greatly improving cooling efficiency and uniformity.

[0029] Mixed-flow fans generate a powerful rotating jet in localized areas, effectively breaking down the static thermal resistance layer and humidity boundary layer formed inside and on the surface of the feed pile due to differences in packing density. This forces a more intense and thorough heat and mass exchange between the low-temperature, dry air and the surface of the feed particles. This not only significantly accelerates the removal of core heat and the evaporation of surface moisture but also effectively compensates for the potential attenuation of airflow and temperature / humidity due to the distance of the air supply. This ensures that feed in any location within the room receives uniform cooling, thereby significantly shortening the overall cooling time and improving the stability of cooling quality.

[0030] Furthermore, air supply duct two connects to the top of the cooling room, and air supply duct three connects to the corresponding bottom of the cooling room.

[0031] By employing an upward-flowing and downward-returning airflow system, this system cleverly utilizes the physical principle that hot air naturally rises and cold air naturally sinks. Cooled, dry air is introduced from the top of the room, slowly descending to fully cover the surface of the feed pile and gradually permeating it. The hot, humid air generated during the feed cooling process, due to its lower density, naturally rises and is ultimately effectively drawn away through the exhaust vents at the bottom of the room. This model not only achieves three-dimensional cooling of the entire space from top to bottom but also directly removes the hottest and most humid air through bottom exhaust, effectively inhibiting the accumulation and recirculation of hot and humid air above the feed, significantly improving the overall efficiency of cooling and dehumidification. Simultaneously, it helps maintain relatively lower humidity in the upper area of ​​the feed pile, further inhibiting microbial activity on the feed surface and enhancing the system's reliability and cooling effect.

[0032] The present invention, by adopting the above-described technical solution, has the following beneficial effects: This invention places cooked feed into a cooling room, then controls the operation of a fresh air combined air handling unit and a circulating cooling combined air handling unit. Outside air is filtered and purified by the fresh air combined air handling unit before being sent to the circulating cooling combined air handling unit for disinfection and cooling. It is then sent into the cooling room to cool the cooked feed. The air in the cooling room is exhausted to the outside by an exhaust fan, thus reducing the feed temperature to a predetermined level. This significantly improves feed cooling efficiency, shortens the feed production cycle, and reduces the exposure time of feed to high temperature and humidity, significantly inhibiting microbial growth and reducing the risk of feed spoilage or a decline in hygiene indicators, which helps ensure the safety and stability of feed products.

[0033] This invention creates a forced convection cooling environment through the coordinated operation of fresh air and a circulating cooling unit, enabling rapid and uniform cooling of cooked feed to a predetermined temperature. Compared to natural cooling or traditional ventilation methods, this system significantly reduces the cooling time, thereby effectively shortening the overall feed production cycle and improving production line turnover and capacity.

[0034] This invention integrates multi-stage air filtration and an independent disinfection section placed after cooling, ensuring that the air delivered into the cooling room is clean and sterile. Combined with a rapid cooling process, it greatly reduces the exposure time of feed to high temperature and humidity conditions where microorganisms are prone to grow, inhibiting the risk of spoilage and deterioration of hygiene indicators from the source, and providing a reliable guarantee for the long-term safety and stability of feed products. Attached Figure Description

[0035] The present invention will be further described below with reference to the accompanying drawings: Figure 1 This is a schematic diagram of an environmental ventilation and cooling system according to Embodiment 1 of the present invention; Figure 2 This is a schematic diagram of an environmental ventilation and cooling system according to Embodiment 2 of the present invention.

[0036] In the diagram, 1-Fresh air combined air handling unit; 2-Circulating cooling combined air handling unit; 3-Cooling room; 4-Exhaust fan; 5-Supply air duct one; 6-Air valve one; 7-Inlet air duct; 8-Duct-type temperature and humidity sensor one; 9-Duct-type temperature and humidity sensor two; 10-Supply air duct two; 11-Supply air static pressure sensor one; 12-Duct-type temperature and humidity sensor three; 13-Supply air duct three; 14-Air valve two; 15-Supply air static pressure sensor two. 16-Exhaust duct; 17-Duct-type temperature and humidity sensor four; 18-Fan section differential pressure switch one; 19-Connecting pipe; 20-Air valve three; 21-Primary efficiency section; 22-Medium efficiency section; 23-Fan section one; 24-High efficiency section; 25-Outlet section one; 26-Mixing section; 27-Cooling surface section; 28-Disinfection section; 29-Fan section two; 30-Outlet section two; 31-Duct-type temperature and humidity sensor five; 32-Mixed flow fan; 33-Fan section differential pressure switch two. Detailed Implementation

[0037] like Figure 1 As shown in the first embodiment of the present invention, an environmental ventilation and cooling system includes a fresh air combined air handling unit 1, a circulating cooling combined air handling unit 2, and a cooling room 3. The fresh air combined air handling unit 1 filters the outside air and sends it into the circulating cooling combined air handling unit 2. The circulating cooling combined air handling unit 2 disinfects the incoming air and sends it out to the cooling room 3. The cooling room 3 is used to place cooked feed. The cooling room 3 is connected to an exhaust fan 4 to exhaust the air in the cooling room 3.

[0038] The fresh air combined air handling unit 1 and the circulating cooling combined air handling unit 2 are connected by an air supply duct 15. The air supply duct 15 is equipped with an air valve 6, which is used to control the opening and closing of the air supply duct 15. The other end of the fresh air combined air handling unit 1 is equipped with an air inlet duct 7, and an air duct type temperature and humidity sensor 8 is connected to the air inlet duct 7. An air duct type temperature and humidity sensor 9 is installed at the end of the air supply duct 15 near the circulating cooling combined air handling unit 2.

[0039] By incorporating damper 6 and two duct-type temperature and humidity sensors, precise control of the fresh air intake path and continuous air quality monitoring are achieved. Damper 6 can flexibly adjust or even shut off the fresh air volume.

[0040] Temperature and humidity sensor 8 monitors the parameters of the untreated raw fresh air in real time, providing initial data for system prediction and adjustment; temperature and humidity sensor 9 monitors the air condition after being treated by the fresh air handling unit. By comparing the data with that of sensor 8, the treatment effect of the fresh air handling unit can be evaluated in real time, and a precise basis for setting the operating parameters of the subsequent circulating cooling unit can be provided. This ensures that the air delivered into the cooling room 3 is always within the optimal range of temperature, humidity and cleanliness, thereby improving the stability of the cooling process and the reliability of feed quality assurance from the source.

[0041] The circulating cooling combined air handling unit 2 is connected to the cooling room 3 through the air supply duct 2 10. The air supply duct 2 10 is equipped with the air supply static pressure sensor 11, and the air supply duct 2 10 is equipped with the duct-type temperature and humidity sensor 3 12 at the end of the air supply duct 2 10 near the cooling room 3.

[0042] By installing a static pressure sensor 11 and a duct-type temperature and humidity sensor 32 at the air supply duct 2 10, the stability of system operation and the level of control precision are significantly improved.

[0043] The air supply static pressure sensor 11 can monitor the air supply power status to the cooling room 3 in real time. Its data can be used to adjust the frequency of the fan section 29 in the circulating cooling unit to ensure that the air supply pressure is stable at the set value. This avoids insufficient or fluctuating air supply due to changes in pipe resistance or dust accumulation in the filter, thereby ensuring uniform airflow organization and consistent feed cooling rate in the cooling room 3.

[0044] The duct-type temperature and humidity sensor 312 directly detects the final state of the air about to enter the cooling room 3. This is the final verification of the effect of the air after being processed by the circulating cooling unit. It ensures that the air parameters sent into the cooling room 3 strictly meet the process requirements, providing the most direct guarantee for the rapid and safe cooling of feed.

[0045] Cooling room 3 and exhaust fan 4 are connected by air supply duct 3 13. Air supply duct 3 13 is equipped with air valve 2 14. Air supply static pressure sensor 2 15 is installed at the end of air supply duct 3 near cooling room 3. Air valve 2 14 is used to control the opening and closing of air supply duct 3 13. Exhaust fan 4 is equipped with exhaust duct 16. Exhaust duct 16 exhausts air to the outside. Air duct type temperature and humidity sensor 4 17 is installed at exhaust duct 16. Fan section differential pressure switch 18 is connected between air supply duct 3 13 and exhaust duct 16.

[0046] By setting up a static pressure sensor 215 for the supply air and a duct-type temperature and humidity sensor 417, intelligent monitoring and regulation of the air pressure and exhaust status of the cooling room 3 are realized, effectively ensuring the system's hygiene, safety, and energy-saving operation.

[0047] Air valve 14 can control and adjust the exhaust volume or even completely close the exhaust path. Supply air static pressure sensor 15 monitors the exhaust side pressure of cooling room 3. Working in conjunction with supply air static pressure sensor 11, it can precisely control the room's pressure difference, creating a reasonable directional airflow and protecting the cooling environment. Fan section differential pressure switch 18 directly monitors the operating load status of exhaust fan 4, providing timely warnings of fan failure or blockage in exhaust duct 16. Duct-type temperature and humidity sensor 17 monitors the parameters of the final exhaust gas, which can be used to evaluate the system's heat and moisture exchange efficiency and serve as an auxiliary basis for determining whether the feed cooling process is complete. It also ensures that the exhaust meets environmental protection requirements, forming a complete, controllable, and monitorable exhaust closed loop.

[0048] Air supply duct 3 13 is connected to air supply duct 2 10 via connecting pipe 19. Connecting pipe 19 is equipped with air valve 3 20, which is used to control the opening and closing of connecting pipe 19.

[0049] By adding a connecting pipe 19 with a third air valve 20, a flexible air recirculation operation mode is introduced into the system. When cooling the cooked feed, valve 20 is closed, and valves 6 and 14 are opened, allowing outside air to be filtered and purified by the fresh air combined air handling unit 1, and then sent to the circulating cooling combined air handling unit 2 for cooling and disinfection, before being sent into the cooling room 3 to cool the feed located in the cooling room 3. The air in the cooling room 3 is discharged to the outside through the exhaust fan 4, achieving rapid cooling of the feed. When the temperature and humidity in the cooling room 3 reach the preset standard, that is, when the feed temperature drops to the preset standard, valves 6 and 14 are closed, and valve 20 is opened, allowing the circulating cooling combined air handling unit 2 to circulate and disinfect the cooling room 3, ensuring the hygiene and safety of the feed.

[0050] The fresh air combined air handling unit 1 includes a primary filter section 21, a medium-efficiency filter section 22, a fan section 23, a high-efficiency filter section 24, and an air outlet section 25 arranged sequentially. The primary filter section 21 is used to perform preliminary filtration on the air entering the fresh air combined air handling unit 1. The medium-efficiency filter section 22 performs secondary filtration. The fan section 23 controls the outside air to enter the fresh air combined air handling unit 1 and then deliver it to the circulating cooling combined air handling unit 2. The high-efficiency filter section 24 is used to perform high-efficiency filtration on the air. The air outlet section 25 is used to deliver the purified air in the fresh air combined air handling unit 1 to the circulating cooling combined air handling unit 2.

[0051] The fresh air combined air handling unit 1 adopts a multi-stage progressive filtration structure, which forms a deep purification barrier for the air entering the fresh air combined air handling unit 1.

[0052] The primary filter stage 21 first intercepts large particulate matter in the atmosphere, such as dust, to protect the subsequent secondary filter stage 22 and extend its lifespan; the secondary filter stage 22 further removes smaller particulate matter; finally, the high-efficiency filter stage 24 performs fine filtration, which can effectively capture fine particles and even some bacteria.

[0053] This three-stage filtration system ensures that the air supplied to the subsequent circulating cooling combined air handling unit 2 has extremely high cleanliness, fundamentally reducing the risk of dust and other pollutants entering the cooling room 3 and contaminating the feed. At the same time, it greatly protects the surface cooler fins and disinfection section 28 components inside the circulating cooling combined air handling unit 2, preventing dust accumulation, bacterial growth, or impact on heat exchange and disinfection efficiency. This reduces equipment maintenance frequency and energy consumption, laying a solid air source foundation for the production of high-quality hygienic feed.

[0054] The circulating cooling combined air handling unit 2 includes a mixing section 26, a surface cooling section 27, a disinfection section 28, a second fan section 29, and a second air outlet section 30 arranged sequentially. The mixing section 26 is used to mix the air entering the circulating cooling combined air handling unit 2. The surface cooling section 27 is used to cool the mixed air. The disinfection section 28 is used to disinfect the cooled air. The second fan section 29 controls the air to be delivered from the mixing section 26 to the second air outlet section 30. The second air outlet section 30 delivers the air in the circulating cooling combined air handling unit 2 to the cooling room 3. A second fan section differential pressure switch 31 is connected between the disinfection section 28 and the second air outlet section 30.

[0055] The mixing section 26 ensures uniform mixing of fresh air and potential return air, guaranteeing consistent air temperature and humidity and improving the heat exchange efficiency of the subsequent cooling section 27. The cooling section 27 is responsible for the core cooling and dehumidification functions, rapidly reducing air temperature to provide powerful cooling. The disinfection section 28, located after the cooling section 27, thoroughly sterilizes the cooled air, preventing secondary contamination during cooling and ensuring that the air supplied to the cooling room 3 is low-temperature and sterile—crucial for inhibiting microbial growth on feed surfaces. The differential pressure switch 31 in the fan section specifically monitors pressure changes before and after the disinfection section 28, sensitively reflecting the clogging of the filter components in the disinfection section 28 or changes in the resistance of the disinfection device itself to airflow. This provides timely maintenance reminders, ensuring stable disinfection effects and system airflow, and is a key safety design feature guaranteeing the continuous effectiveness of the disinfection process.

[0056] The cooling room 3 has duct-type temperature and humidity sensors 531 evenly distributed on both sides of the wall.

[0057] By evenly distributing multiple duct-type temperature and humidity sensors 31 on both sides of the interior walls of cooling room 3, a multi-point, three-dimensional real-time environmental monitoring network was constructed. These sensors can simultaneously collect air temperature and humidity data at different horizontal positions and vertical heights within cooling room 3, thus comprehensively and accurately reflecting the microenvironment of the entire feed pile. This monitoring network can not only monitor the overall progress of the cooling process in real time, but also accurately locate areas that may experience uneven cooling, localized overheating, or humidity accumulation. The collected multi-point data provides a direct basis for the system to dynamically and precisely adjust airflow and temperature, serving as a key sensing foundation for achieving uniform, efficient, and controllable cooling, effectively avoiding the risk of feed condensation or secondary contamination caused by uncontrolled local environmental parameters.

[0058] Air supply duct 2 10 is connected to one side wall of cooling room 3, and air supply duct 3 13 is connected to the corresponding other side wall of cooling room 3. Cooling room 3 is equipped with mixed flow fan 32, which is evenly distributed on both sides of cooling room 3.

[0059] By precisely arranging the air supply and exhaust vents on opposite walls of cooling room 3, a scientifically constructed horizontal unidirectional displacement airflow pattern was created. Clean cooling air is supplied entirely from one wall, horizontally and sequentially penetrating the feed pile, and directionally pushing the heat and moisture evaporated from the feed to the exhaust vent on the opposite side. This airflow organization method features low path resistance, strong directionality, and few dead zones, ensuring sufficient and sequential heat and moisture exchange between the supplied cold air and the feed, greatly improving cooling efficiency and uniformity.

[0060] The mixed-flow fan 32 generates a powerful rotating jet in a localized area, effectively breaking down the static thermal resistance layer and humidity boundary layer formed inside and on the surface of the feed pile due to differences in packing density. This forces the low-temperature, dry air to undergo a more intense and thorough heat and mass exchange with the surface of the feed particles. This not only significantly accelerates the removal of core heat and the evaporation of surface moisture, but also effectively compensates for the possible attenuation of airflow and temperature and humidity due to the air delivery distance. This ensures that the feed in any location within the room receives uniform cooling, thereby significantly shortening the overall cooling time and improving the stability of cooling quality.

[0061] like Figure 2 As shown, this is Embodiment 2 of the present invention, which is basically the same as Embodiment 1 in structure, except that the second air supply duct 10 is connected to the top of the cooling room 3, and the third air supply duct 13 is connected to the corresponding bottom of the cooling room 3.

[0062] By employing an upward-flowing and downward-returning airflow system, this system cleverly utilizes the physical principle that hot air naturally rises and cold air naturally sinks. Cooled, dry air is introduced from the top of the room, slowly descending to fully cover the surface of the feed pile and gradually permeating it. The hot, humid air generated during the feed cooling process, due to its lower density, naturally rises and is ultimately effectively drawn away through the exhaust vents at the bottom of the room. This model not only achieves three-dimensional cooling of the entire space from top to bottom but also directly removes the hottest and most humid air through bottom exhaust, effectively inhibiting the accumulation and recirculation of hot and humid air above the feed, significantly improving the overall efficiency of cooling and dehumidification. Simultaneously, it helps maintain relatively lower humidity in the upper area of ​​the feed pile, further inhibiting microbial activity on the feed surface and enhancing the system's reliability and cooling effect.

[0063] When cooling the cooked feed, valve 20 is closed, and valves 6 and 14 are opened, allowing outside air to be filtered and purified by the fresh air combined air handling unit 1, and then sent to the circulating cooling combined air handling unit 2 for cooling and disinfection, before being sent into the cooling room 3 to cool the feed located in the cooling room 3. The air in the cooling room 3 is discharged to the outside through the exhaust fan 4, achieving rapid cooling of the feed. When the temperature and humidity in the cooling room 3 reach the preset standard, that is, when the temperature of the feed drops to the preset standard, valves 6 and 14 are closed, and valve 20 is opened, allowing the circulating cooling combined air handling unit 2 to circulate and disinfect the cooling room 3, ensuring the hygiene and safety of the feed.

[0064] This invention places cooked feed into a cooling room 3, then controls the operation of a fresh air combined air handling unit 1 and a circulating cooling combined air handling unit 2. Outside air is filtered and purified by the fresh air combined air handling unit 1, then sent to the circulating cooling combined air handling unit 2 for disinfection and cooling, and then sent into the cooling room 3 to cool the cooked feed. The air in the cooling room 3 is discharged to the outside by an exhaust fan 4, so that the feed in the cooling room 3 is reduced to a predetermined temperature, which greatly improves the feed cooling efficiency, shortens the feed production cycle, and at the same time, the rapid cooling reduces the exposure time of the feed in high temperature and high humidity conditions, significantly inhibits the growth conditions of microorganisms, reduces the risk of feed spoilage or decline in hygiene indicators, and helps to ensure the safety and stability of feed products.

[0065] The above are merely specific embodiments of the present invention, but the technical features of the present invention are not limited thereto. Any simple changes, equivalent substitutions, or modifications made based on the present invention to solve essentially the same technical problems and achieve essentially the same technical effects are all covered within the protection scope of the present invention.

Claims

1. An environmental ventilation and cooling system, characterized in that: The system includes a fresh air combined air handling unit, a circulating cooling combined air handling unit, and a cooling room. The fresh air combined air handling unit filters outside air and then sends it into the circulating cooling combined air handling unit. The circulating cooling combined air handling unit disinfects the incoming air and then sends it out to the cooling room. The cooling room is used to place cooked feed and is connected to an exhaust fan to exhaust the air inside the cooling room.

2. The environmental ventilation and cooling system according to claim 1, characterized in that: The fresh air combined air handling unit and the circulating cooling combined air handling unit are connected by an air supply duct. The air supply duct is equipped with an air valve to control the opening and closing of the air supply duct. The other end of the fresh air combined air handling unit is equipped with an air inlet duct. A duct-type temperature and humidity sensor is connected to the air inlet duct. A duct-type temperature and humidity sensor is installed at the end of the air supply duct near the circulating cooling combined air handling unit.

3. The environmental ventilation and cooling system according to claim 1, characterized in that: The circulating cooling combined air handling unit is connected to the cooling room through an air supply duct 2. An air supply static pressure sensor 1 is installed at the air supply duct 2, and a duct-type temperature and humidity sensor 3 is installed at one end of the air supply duct 2 near the cooling room.

4. The environmental ventilation and cooling system according to claim 3, characterized in that: The cooling room and the exhaust fan are connected by an air supply duct three. The air supply duct three is equipped with an air valve two. An air supply static pressure sensor two is installed at one end of the air supply duct near the cooling room. The air valve two is used to control the opening and closing of the air supply duct three. The exhaust fan is equipped with an exhaust duct. The exhaust duct exhausts air to the outside. A duct-type temperature and humidity sensor four is installed at the exhaust duct. A fan section differential pressure switch one is connected between the air supply duct three and the exhaust duct.

5. An environmental ventilation and cooling system according to claim 4, characterized in that: The third air supply duct is connected to the second air supply duct via a connecting pipe. The connecting pipe is equipped with a third air valve, which is used to control the opening and closing of the connecting pipe.

6. The environmental ventilation and cooling system according to claim 1, characterized in that: The fresh air combined air handling unit includes a primary filter section, a medium-efficiency filter section, a fan section, a high-efficiency filter section, and an air outlet section arranged sequentially. The primary filter section is used to perform preliminary filtration on the air entering the fresh air combined air handling unit. The medium-efficiency filter section performs secondary filtration. The fan section controls the flow of outside air into the fresh air combined air handling unit and then delivers it to the circulating cooling combined air handling unit. The high-efficiency filter section is used to perform high-efficiency filtration on the air. The air outlet section is used to deliver the purified air from the fresh air combined air handling unit to the circulating cooling combined air handling unit.

7. An environmental ventilation and cooling system according to claim 1, characterized in that: The circulating cooling combined air handling unit includes a mixing section, a surface cooling section, a disinfection section, a second fan section, and a second air outlet section arranged sequentially. The mixing section is used to mix the air entering the circulating cooling combined air handling unit. The surface cooling section is used to cool the mixed air. The disinfection section is used to disinfect the cooled air. The second fan section controls the air to be delivered from the mixing section to the second air outlet section. The second air outlet section delivers the air in the circulating cooling combined air handling unit to the cooling room. A second fan section differential pressure switch is connected between the disinfection section and the second air outlet section.

8. An environmental ventilation and cooling system according to claim 1, characterized in that: Five duct-type temperature and humidity sensors are evenly distributed on both sides of the cooling room.

9. An environmental ventilation and cooling system according to claim 1, characterized in that: The second air supply duct is connected to one side wall of the cooling room, and the third air supply duct is connected to the corresponding other side wall of the cooling room. The cooling room is equipped with a mixed-flow fan, which is evenly distributed on both sides of the cooling room.

10. An environmental ventilation and cooling system according to claim 4, characterized in that: The second air supply duct is connected to the top of the cooling room, and the third air supply duct is connected to the corresponding bottom of the cooling room.