Plateau dairy plant environment parameter self-sensing ventilation system
Patent Information
- Application Number
- CN202521948622.7
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-09-10
- Publication Date
- 2026-09-08
- Estimated Expiration
- 2035-09-10
AI Technical Summary
[0004]针对现有技术的不足,本申请提供了一种高原乳品车间环境参数自感知通风系统,克服了现有技术的不足,旨在解决现有技术中的现有的通风系统在使用时,不能实时的根据外部的空气数据进行实时调整过滤效率和过滤效果,同时空气在进行过滤时只能进行单向输出,不能进行循环多次进行过滤,在对污染性较强的空气进行过滤时过滤效果不佳的问题
1.通过设置初步过滤机构,在使用时,内部设置的粗制过滤网对空气中的毛发和大颗粒的灰尘进行过滤,设置的抽气风机可以将外部的空气抽取进入初步过滤机构的内部,设置的精密过滤网和活性炭过滤网能够对空气的内部粉尘颗粒物进行进一步的过滤,过滤完成后的空气会被无油空气压缩器进项压缩,且无油空气压缩器的内部采用无油设计不会对空气进行污染,经过无油空气压缩器压缩后的空气被输出到膜分离组件的内部去除其他污染气体和极细的颗粒物,后续空气会进入到除菌过滤器的内部进行除菌,外部设置的多组环境感应器组件会对外部的空气进行实时检测,与设备进行配合,能够自动对过滤效率和速度等进行调整,这样在使用时,可以对空气进行全面的过滤,有效的去除空气之中的灰尘和细菌,减少污染的可能。
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Figure CN224730769U_ABST
Abstract
Description
Technical Field
[0001] This application relates to the field of workshop ventilation system technology, and in particular to a self-sensing ventilation system for environmental parameters in a high-altitude dairy workshop. Background Technology
[0002] Ventilation in dairy production workshops is a crucial aspect of ensuring air quality, safe dairy production, and a comfortable working environment for employees.
[0003] Existing ventilation systems cannot adjust their filtration efficiency and effectiveness in real time based on external air data. Furthermore, air can only be output in one direction and cannot be circulated for multiple filtration cycles, resulting in poor filtration performance when filtering heavily polluted air. Utility Model Content
[0004] To address the shortcomings of existing technologies, this application provides a self-sensing ventilation system for environmental parameters in high-altitude dairy workshops. This system overcomes the deficiencies of existing technologies and aims to solve the problems of existing ventilation systems, which cannot adjust filtration efficiency and effect in real time based on external air data, and which can only output air in one direction and cannot circulate it for multiple filtrations, resulting in poor filtration effect when filtering heavily polluted air.
[0005] To achieve the above objectives, this application provides the following technical solution: a self-sensing ventilation system for environmental parameters in a high-altitude dairy workshop, comprising a preliminary filtration mechanism, wherein the preliminary filtration mechanism includes a pretreatment box and a filter box that are interconnected. The pretreatment box is equipped with an exhaust fan, a precision filter screen, and an activated carbon filter screen. The filter box is equipped with a coarse filter screen. An oil-free air compressor is installed at the other end of the filter box. A membrane separation component is installed on one side of the oil-free air compressor. Connecting pipes are installed at both ends of the membrane separation component. One set of connecting pipes is interconnected with the oil-free air compressor. Multiple sets of sterilization filters are installed on one side of the other set of connecting pipes. An output pipe is installed on the other side of the multiple sets of sterilization filters. Multiple sets of environmental sensor components are installed outside the membrane separation component and the sterilization filters. The multiple sets of environmental sensor components are electrically connected to the oil-free air compressor and the sterilization filters.
[0006] By adopting the above technical solution and setting up a preliminary filtration mechanism, the internal coarse filter screen filters hair and large dust particles from the air during use. The exhaust fan draws outside air into the preliminary filtration mechanism. The precision filter screen and activated carbon filter screen further filter internal dust particles. After filtration, the air is compressed by an oil-free air compressor. The oil-free design of the air compressor prevents air pollution. The compressed air is then output to the membrane separation component to remove other polluting gases and extremely fine particles. Subsequently, the air enters the sterilization filter for sterilization. Multiple sets of external environmental sensors monitor the outside air in real time and work with the equipment to automatically adjust the filtration efficiency and speed. In this way, the air can be comprehensively filtered during use, effectively removing dust and bacteria from the air and reducing the possibility of pollution.
[0007] As a preferred technical solution of this application, a connecting shaft is provided between the exhaust fan and the coarse filter screen, one end of the connecting shaft passes through the coarse filter screen and is provided with two sets of cleaning brushes, and a dust collection bag is provided inside the coarse filter screen.
[0008] By adopting the above technical solution and setting a connecting shaft, the cleaning brush can be driven to rotate by the exhaust fan during use. While filtering the coarse filter screen, it can also clean the dust deposited on its surface. The cleaned dust will enter the interior of the dust collection bag, ensuring that it will not clog the coarse filter screen, thereby improving the efficiency of air intake and filtration and enhancing the practicality of the device.
[0009] As a preferred technical solution of this application, an air particle detector and a connecting valve are provided between the preliminary filtration mechanism and the oil-free air compressor. A circulation pipe is provided on one side of the connecting valve, and the other end of the circulation pipe is connected to the interior of the filter box.
[0010] By adopting the above technical solution and setting up an air particle detector, the dust filtered by the preliminary filtration mechanism will be detected during use. It can be either discharged into the filter box for re-filtration or directly discharged into the oil-free air compressor for compression, which can further improve the filtration efficiency.
[0011] As a preferred technical solution of this application, the output pipe is provided with an air bacteria detector and a second connecting valve, and a second circulation pipe connected to the oil-free air compressor is provided on one side of the second connecting valve.
[0012] By adopting the above technical solution and setting up a second connecting valve, during use, the air containing bacteria inside the output pipe will be detected by an air bacteria detector. Unqualified air will be re-sent to the oil-free air compressor for re-compression, thereby improving the sterilization efficiency.
[0013] As a preferred technical solution of this application, an automatic drain is provided at the bottom of both sets of connecting pipes, and an automatic drain is provided on one side of both sets of connecting pipes.
[0014] By adopting the above technical solution and setting up an automatic drainer, the condensate that occurs inside the connecting pipe due to air compression can be discharged during use, preventing the accumulation of condensate and bacterial infection, thus improving practicality.
[0015] As a preferred technical solution of this application, a control panel is provided on one side of the membrane separation component, and the control panel is electrically connected to multiple sets of the environmental sensor components.
[0016] By adopting the above technical solution and setting up a control panel, the device can be better controlled during use, and air data can be detected in real time.
[0017] As a preferred technical solution of this application, the number of membrane separation components is set to multiple sets, and the multiple sets of membrane separation components are connected in parallel between two sets of connecting pipes.
[0018] By adopting the above technical solution and setting up multiple membrane separation components, the efficiency of membrane separation, the filtration effect, and the practicality can be improved.
[0019] As a preferred technical solution of this application, the filter box is provided with an air inlet on the front, and the air inlet is provided with louvers inside.
[0020] By adopting the above technical solution and setting an air inlet, the air inlet can be adjusted on one side during use, thereby adjusting the air intake efficiency and improving the practicality of the device.
[0021] The beneficial effects of this application are: 1. By setting up a preliminary filtration mechanism, the internal coarse filter filters hair and large dust particles from the air. The exhaust fan draws outside air into the preliminary filtration mechanism. The fine filter and activated carbon filter further filter internal dust particles. After filtration, the air is compressed by an oil-free air compressor. The oil-free design of the air compressor prevents air pollution. The compressed air is then output to the membrane separation component to remove other pollutants and extremely fine particles. The air then enters the sterilization filter for sterilization. Multiple external environmental sensors monitor the outside air in real time and work with the equipment to automatically adjust the filtration efficiency and speed. This comprehensive filtration effectively removes dust and bacteria from the air, reducing the possibility of pollution.
[0022] 2. By setting a connecting shaft, the cleaning brush can be driven to rotate during use by the exhaust fan. While filtering through the coarse filter screen, it can also clean the dust deposited on its surface. The cleaned dust will enter the interior of the dust collection bag, ensuring that it will not clog the coarse filter screen, improving the efficiency of air intake and filtration, and enhancing the practicality of the device. Attached Figure Description
[0023] Figure 1 This is a schematic diagram of the overall front structure of this application; Figure 2 This is a schematic diagram of the overall side structure of this application; Figure 3 This is a schematic diagram of the pretreatment box structure in this application; Figure 4 This is a schematic diagram of the filter box structure of this application.
[0024] In the diagram: 1. Preliminary filtration mechanism; 101. Pretreatment box; 102. Filter box; 103. Coarse filter screen; 104. Precision filter screen; 105. Activated carbon filter screen; 106. Exhaust fan; 107. Dust collection bag; 108. Connecting shaft; 109. Cleaning brush; 2. Oil-free air compressor; 201. Connecting pipe; 202. Automatic drainer; 3. Membrane separation assembly; 4. Sterilization filter; 401. Output pipe; 5. Environmental sensor assembly; 6. Control panel; 7. Air particle detector; 701. Connecting valve one; 702. Circulation pipe one; 8. Air bacteria detector; 801. Connecting valve two; 802. Circulation pipe two; 9. Air inlet; 901. Louver. Detailed Implementation
[0025] The technical solutions in the embodiments of this application will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of this application, and not all embodiments. All other embodiments obtained by those skilled in the art based on the embodiments of this application without creative effort are within the scope of protection of this application.
[0026] Reference Figure 1-4 A self-sensing ventilation system for environmental parameters in a high-altitude dairy workshop includes a preliminary filtration mechanism 1. The preliminary filtration mechanism 1 comprises a pretreatment box 101 and a filter box 102 connected to each other. The pretreatment box 101 is equipped with an exhaust fan 106, a precision filter screen 104, and an activated carbon filter screen 105. The filter box 102 is equipped with a coarse filter screen 103. An oil-free air compressor 2 is located at the other end of the filter box 102. A membrane separation component 3 is located on one side of the oil-free air compressor 2. Connecting pipes 201 are located at both ends of the membrane separation component 3. One set of connecting pipes 201 connects to the oil-free air compressor. The two devices are interconnected. On one side of another set of connecting pipes 201, multiple sets of sterilization filters 4 are provided. On the other side of the multiple sets of sterilization filters 4, an output pipe 401 is provided. Multiple sets of environmental sensor assemblies 5 are provided outside the membrane separation assembly 3 and the sterilization filters 4. The multiple sets of environmental sensor assemblies 5 are electrically connected to the oil-free air compressor 2 and the sterilization filters 4. An air particle detector 7 and a connecting valve 701 are provided between the preliminary filtration mechanism 1 and the oil-free air compressor 2. A circulation pipe 702 is provided on one side of the connecting valve 701. The other end of the circulation pipe 702 is interconnected with the interior of the filter box 102.
[0027] By setting up a preliminary filtration mechanism 1, during use, the coarse filter 103 inside filters hair and large dust particles in the air. The exhaust fan 106 draws outside air into the preliminary filtration mechanism 1. The fine filter 104 and activated carbon filter 105 further filter internal dust particles in the air. After filtration, the air is compressed by an oil-free air compressor 2. The oil-free air compressor 2 is designed to be oil-free and will not pollute the air. The air compressed by the oil-free air compressor 2 is then output to the membrane separation component 3 to remove other polluting gases and extremely fine particles. Subsequently, the air will enter the sterilization filter 4 for sterilization. Multiple sets of environmental sensors 5 installed externally will detect the external air in real time and work with the equipment to automatically adjust the filtration efficiency and speed. In this way, the air can be filtered comprehensively during use, effectively removing dust and bacteria from the air and reducing the possibility of pollution. By setting up an air particle detector 7, the dust filtered by the preliminary filtration mechanism 1 will be detected during use. It can be discharged into the filter box 102 for re-filtration or directly discharged into the oil-free air compressor 2 for compression, which can further improve the filtration efficiency.
[0028] Reference Figure 1-4 A connecting shaft 108 is provided between the exhaust fan 106 and the coarse filter 103. One end of the connecting shaft 108 passes through the coarse filter 103 and is equipped with two sets of cleaning brushes 109. A dust collection bag 107 is provided inside the coarse filter 103. An air bacteria detector 8 and a connecting valve 801 are provided inside the output pipe 401. A circulation pipe 802 connected to the oil-free air compressor 2 is provided on one side of the connecting valve 801. A control panel 6 is provided on one side of the membrane separation assembly 3. The control panel 6 is electrically connected to multiple sets of environmental sensor assemblies 5. By setting the connecting shaft 108, the cleaning brushes 109 can be driven by the exhaust fan 106 during use. The 09 unit rotates, cleaning the dust deposited on the surface of the coarse filter 103 while it filters the air. The cleaned dust enters the dust collection bag 107, ensuring that the coarse filter 103 is not clogged, thus improving the efficiency of air intake and filtration and enhancing the practicality of the device. By setting a connecting valve 801, air containing bacteria inside the output pipe 401 is detected by the air bacteria detector 8 during use. Unqualified air is re-sent to the oil-free air compressor 2 for recompression, improving the sterilization efficiency. By setting a control panel 6, the device can be better controlled during use, and air data can be monitored in real time.
[0029] Reference Figure 1-4Both sets of connecting pipes 201 are equipped with automatic drainers 202 at their bottoms, and both sets of connecting pipes 201 are equipped with 601 on one side. By setting the automatic drainers 202, the condensate that occurs inside the connecting pipes 201 due to air compression can be discharged during use, preventing the accumulation of condensate and bacterial infection, thus improving practicality. The number of membrane separation components 3 is set to multiple sets, which are connected in parallel between the two sets of connecting pipes 201. By setting multiple sets of membrane separation components 3, the membrane separation efficiency can be improved, the filtration effect can be improved, and practicality can be improved. The front of the filter box 102 is provided with an air inlet 9, and the inside of the air inlet 9 is provided with louvers 901. By setting the air inlet 9, the air inlet 9 can be adjusted on one side during use, thereby adjusting the air intake efficiency and improving the practicality of the device.
[0030] Working principle: The preliminary filtration mechanism 1 uses a coarse filter 103 to filter hair and large dust particles from the air. An exhaust fan 106 draws outside air into the preliminary filtration mechanism 1. A precision filter 104 and an activated carbon filter 105 further filter internal dust particles. The filtered air is then compressed by an oil-free air compressor 2, which is designed to be oil-free and prevents air pollution. The compressed air is then sent to a membrane separation assembly 3 to remove other pollutants and extremely fine particles. The air then enters a sterilization filtration stage. The internal components of the device 4 are sterilized, while the externally installed multiple sets of environmental sensors 5 detect the external air in real time. Working in conjunction with the device, they can automatically adjust the filtration efficiency and speed. This allows for comprehensive air filtration during use, effectively removing dust and bacteria and reducing the possibility of pollution. Through the connection shaft 108, the exhaust fan 106 drives the cleaning brush 109 to rotate during use. While the coarse filter screen 103 is filtering, the brush can clean the dust deposited on its surface. The cleaned dust will enter the dust collection bag 107, ensuring that the coarse filter screen 103 will not be clogged, thus improving the efficiency of air intake and filtration and enhancing the practicality of the device. Among them, by setting up an air particle detector 7, the dust filtered by the preliminary filter mechanism 1 will be detected during use. It can be discharged into the filter box 102 for re-filtration or directly discharged into the oil-free air compressor 2 for compression, which can further improve the filtration efficiency. By setting up a connecting valve 801, the air containing bacteria in the output pipe 401 will be detected by the air bacteria detector 8 during use. The unqualified air will be re-sent to the oil-free air compressor 2 for re-compression, which improves the sterilization efficiency. Meanwhile, by setting up an automatic drainer 202, the condensate that occurs inside the connecting pipe 201 due to air compression can be discharged during use, preventing the accumulation of condensate and the resulting bacterial infection, thus improving practicality. In addition, by setting up the control panel 6, the device can be better controlled during use, and air data can be monitored in real time; by setting up multiple membrane separation components 3, the efficiency of membrane separation can be improved, the filtration effect can be improved, and the practicality can be improved; by setting up the air inlet 9, one side of the air inlet 9 can be adjusted during use, and the efficiency of air intake can be adjusted, thus improving the practicality of the device.
[0031] The above are merely preferred embodiments of this application and are not intended to limit this application. Although this application has been described in detail with reference to the foregoing embodiments, those skilled in the art can still modify the technical solutions described in the foregoing embodiments or make equivalent substitutions for some of the technical features. Any modifications, equivalent substitutions, improvements, etc., made within the spirit and principles of this application should be included within the protection scope of this application.
Claims
1. A high altitude dairy plant environment parameter self-sensing ventilation system comprising a preliminary filtering mechanism (1), characterized in that, The preliminary filtration mechanism (1) includes a pretreatment box (101) and a filter box (102) that are interconnected. The pretreatment box (101) is equipped with an exhaust fan (106), a precision filter screen (104), and an activated carbon filter screen (105). The filter box (102) is equipped with a coarse filter screen (103). An oil-free air compressor (2) is provided at the other end of the filter box (102). A membrane separation component (3) is provided on one side of the oil-free air compressor (2). Both ends of the membrane separation component (3) are equipped with... There is a connecting pipe (201), one set of the connecting pipe (201) is connected to the oil-free air compressor (2), and another set of the connecting pipe (201) is provided with multiple sets of sterilization filters (4) on one side, and an output pipe (401) is provided on the other side of the multiple sets of sterilization filters (4). Multiple sets of environmental sensor assemblies (5) are provided outside the membrane separation assembly (3) and the sterilization filter (4), and the multiple sets of environmental sensor assemblies (5) are electrically connected to the oil-free air compressor (2) and the sterilization filter (4).
2. A high altitude dairy plant environment parameter self-sensing ventilation system according to claim 1, characterized in that, A connecting shaft (108) is provided between the exhaust fan (106) and the coarse filter screen (103). One end of the connecting shaft (108) passes through the coarse filter screen (103) and is provided with two sets of cleaning brushes (109). A dust collection bag (107) is provided inside the coarse filter screen (103).
3. A high altitude dairy plant environment parameter self-sensing ventilation system according to claim 1, characterized in that, An air particle detector (7) and a connecting valve (701) are provided between the preliminary filtration mechanism (1) and the oil-free air compressor (2). A circulation pipe (702) is provided on one side of the connecting valve (701), and the other end of the circulation pipe (702) is connected to the interior of the filter box (102).
4. A high altitude dairy plant environment parameter self-sensing ventilation system according to claim 1, characterized in that, The output pipe (401) is equipped with an air bacteria detector (8) and a connecting valve (801). A circulation pipe (802) connected to the oil-free air compressor (2) is provided on one side of the connecting valve (801).
5. A high altitude dairy plant environment parameter self-sensing ventilation system according to claim 1, characterized in that, An automatic drainer (202) is provided at the bottom of both sets of connecting pipes (201), and a (601) is provided on one side of both sets of connecting pipes (201).
6. A high altitude dairy plant environment parameter self-sensing ventilation system according to claim 1, characterized in that, A control panel (6) is provided on one side of the membrane separation component (3), and the control panel (6) is electrically connected to multiple sets of the environmental sensor components (5).
7. A high altitude dairy plant environment parameter self-sensing ventilation system according to claim 1, characterized in that, The number of membrane separation components (3) is set to multiple sets, and the multiple sets of membrane separation components (3) are connected in parallel between two sets of connecting pipes (201).
8. A high altitude dairy plant environment parameter self-sensing ventilation system according to claim 1, characterized in that, The filter box (102) has an air inlet (9) on the front, and the air inlet (9) has a louver (901) inside.