Intelligent self-adaptive clean room environment control system

Through the intelligent adaptive clean room environment control system, combined with the coordinated work of air induction fan, filtering and self-cleaning components and snake heating pipes, the problem of adaptive adjustment in the clean room environment control system is solved, and high-standard control of air quality and efficient and stable system operation is achieved.

CN120488408AInactive Publication Date: 2025-08-15AOTONG GLOBAL ENVIRONMENTAL CONTROL (SHENZHEN) CO LTD
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Patent Information

Application Number
CN202510729460.6
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-06-03
Publication Date
2025-08-15
Estimated Expiration
Not applicable · inactive patent

AI Technical Summary

Technical Problem

The existing clean room environment control system cannot adaptively regulate the indoor dust concentration and temperature and humidity, resulting in frequent replacement of filter components and inconvenient replacement, affecting the air replacement efficiency.

Method used

An intelligent adaptive clean room environmental control system is designed, including the main box, exhaust pipe and intake pipe, with air induction fan, filtering and self-cleaning components, snake heating pipe and environmental monitoring components. Through collaborative work, air filtration, heating and moisture removal are achieved, and multi-fan redundant design and automatic cleaning functions are equipped.

Benefits of technology

It realizes high-standard control of air quality, reduces maintenance costs and workers' labor intensity, improves system operation efficiency and stability and comfort of the clean room environment, and enhances the flexibility and airtightness of the system.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention provides an intelligent self-adaptive clean room environment control system, and relates to the field of clean room air volume control equipment. The intelligent self-adaptive clean room environment control system comprises a main body box, an exhaust pipeline and an air inlet pipeline, wherein the exhaust pipeline and the air inlet pipeline fixedly communicate with the left side face and the right side face of the main body box. According to the system, through cooperative work of the air entraining draught fan, the filtering self-cleaning assembly and the S-shaped heating pipe, the system can effectively filter, heat and remove moisture of air entering a clean room, it is ensured that the air quality reaches the high standard, meanwhile, the design of the filtering self-cleaning assembly achieves the automatic cleaning function, the maintenance cost and the labor intensity of workers are reduced, and the system is suitable for popularization and application. According to data, such as humidity, dust concentration and temperature, collected by the indoor environment monitoring assembly in real time, the control host can intelligently adjust the working states of the exhaust fan, the air entraining fan and the snakelike heating pipe, self-adaptive adjustment is achieved, the operation efficiency of the system is improved, and the stability and comfort of the clean indoor environment are guaranteed.
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Description

Technical Field

[0001] The present invention relates to the field of clean room air volume control equipment, and in particular to an intelligent self-adaptive clean room environment control system. Background Art

[0002] A clean room refers to a well-sealed space where parameters such as air cleanliness, temperature, humidity, pressure, and noise are controlled as needed.

[0003] A search revealed an existing patent (publication number: CN221375905U) that discloses an adaptive variable air volume control system for cleanrooms. The system comprises a ventilation duct, one end of which is fixedly connected to an external fan, a ventilation grille disposed at the end of the duct remote from the external fan, an air inlet box disposed at one end of the duct, a bellows fixedly connected between the air inlet box and the air outlet of the external fan, a first linear motor embedded and fixedly connected to the inner wall of the duct, corresponding to the air inlet box, and two slide rails fixedly connected to the inner wall of the duct. A filter assembly is disposed within each of the two slide rails, each of which includes a mounting bracket. This utility model, through the interaction between the filter assembly, control module, ventilation duct, and external fan, adaptively adjusts the air volume according to the operating status of the cleanroom equipment. This reduces the burden on the filter assembly, significantly extends its lifespan, and reduces the frequency of filter replacement. Although this patented technology can adaptively adjust the size of the air volume, reduce the burden on the filter assembly, greatly extend the life of the filter assembly, and reduce the frequency of replacing the filter assembly, the filter assembly still needs to be replaced after a period of use. Since the ventilation duct is located at a high position, it is inconvenient to replace it. Moreover, when replacing it, the working duct needs to be shut down, which affects the air exchange efficiency. Finally, the above device cannot adapt to the indoor dust concentration and temperature and humidity, and the control and regulation effect is poor. Therefore, those skilled in the art provide an intelligent adaptive clean room environment control system to solve the problems raised in the above background technology. Summary of the Invention

[0004] 1. Technical problems solved In view of the deficiencies of the prior art, the present invention provides an intelligent self-adaptive clean room environment control system, which solves the problems raised in the background art.

[0005] 2. Technical solution To achieve the above objectives, the present invention is implemented through the following technical solutions: An intelligent adaptive clean room environment control system includes a main body box and an exhaust duct and an air intake duct fixedly connected to the left and right sides of the main body box, wherein the interior of the main body box is respectively an exhaust chamber, a detection chamber and an air intake chamber from right to left; The interior of the air intake duct is provided with an air induced blower, a filter self-cleaning component and a wind speed detection mechanism from right to left; An indoor environment monitoring component is provided inside the detection cavity; The interior of the exhaust duct is provided with a sealing component and an exhaust fan from right to left; A group of serpentine heating tubes are fixedly installed inside the air inlet cavity.

[0006] Through the above technical solution, through the coordinated work of the air intake fan, filtering and self-cleaning components and serpentine heating tubes, the system can effectively filter and heat the air entering the clean room to remove moisture, ensuring that the air quality meets high standards. At the same time, the design of the filtering and self-cleaning components realizes an automatic cleaning function, reducing maintenance costs and workers' labor intensity.

[0007] Furthermore, a set of grilles are respectively installed at the bottom of the air inlet cavity and the exhaust cavity; Through the above technical solution, by setting the grille, it is possible to effectively prevent foreign matter from entering the interior of the main box.

[0008] Furthermore, the filter self-cleaning assembly includes two symmetrically arranged sealing blocks, one side of the two sealing blocks close to each other is set to an arc shape, two symmetrically arranged arc filter frames are provided between the two sealing blocks, arc filter screens are fixedly installed inside the two arc filter frames, a flip shaft is provided between the two arc filter screens, the front and rear ends of the flip shaft are fixedly connected to the flip frame, the two arc filter screens are fixedly connected to the flip frame, the arc surfaces of the two sealing blocks are in close contact with the arc filter frames close to them, the right sides of the two arc filter screens are fixedly connected to two symmetrically arranged connecting frames, the left ends of the two arc filter screens are fixedly connected to a cleaning frame, the left end of the cleaning frame is rotatably connected to a nozzle, the outer surface of the nozzle is fixedly connected to a plurality of nozzles, the front and rear ends of the nozzle are rotatably connected to the air intake pipe, and the rear end of the nozzle is rotatably connected to a rotary joint; Through the above technical solution, when external gas flows from the right side to the left side of the air intake duct, the dust can be intercepted by the arc filter. After a period of use, the arc filter becomes blocked. The arc filter frame and the arc filter are driven to flip by the flip shaft, so as to achieve the purpose of position exchange of the two arc filters, continuously intercept the dust in the air, and avoid the need to stop the air intake fan when cleaning the arc filter. Subsequently, the intermittent rotation of the nozzle realizes the swing spraying of the nozzle, which can self-clean the surface of the arc filter after use, effectively reducing the labor intensity of workers.

[0009] Furthermore, the wind speed detection mechanism includes a detection frame, the detection frame is fixedly connected to the inner wall of the air intake duct, and a wind speed sensor is installed at the middle end of the detection frame; Through the above technical solution, by setting up a wind speed sensor, the wind speed inside the air intake duct can be monitored. When the wind speed does not match the rotation speed of the air intake fan, it can be inferred that the arc filter is blocked, and the flip axis can be used to drive the arc filter frame to automatically flip.

[0010] Furthermore, the bottom of the air intake pipe is fixedly connected to a water tank, the bottom of the water tank is fixedly connected to a drain pipe, and a solenoid valve is installed at the bottom end of the drain pipe; According to the above technical solution, the cleaning wastewater can be collected by setting the water storage tank, and can be automatically discharged after the cleaning is completed through the provided solenoid valve.

[0011] Furthermore, the environmental monitoring assembly includes a monitoring box, the front and rear ends of the monitoring box are fixedly connected to monitoring tubes, the bottom ends of the two monitoring tubes are fixedly embedded in the monitoring cavity, the interior of the monitoring box is respectively installed with a humidity sensor, a dust sensor and a temperature sensor from left to right, the top of the monitoring box is fixedly connected to an exhaust pipe, the top end of the exhaust pipe is fixedly connected to the exhaust cavity, and the inner walls of the bottom ends of the two monitoring tubes are installed with micro fans; Through the above technical solution and the above settings, indoor air can be actively introduced into the interior of the monitoring box through the micro fan, and the air temperature and dust can be monitored, thereby facilitating the adjustment of the working status of the air intake fan and the exhaust fan.

[0012] Furthermore, the closing assembly includes a closing plate, the top end of which is rotatably connected to the front and rear inner side walls of the exhaust duct, an electric push rod is provided on the left side of the closing plate, the top end of which is hinged to the inner top wall of the exhaust duct, and the output end of which is hinged to the left side of the closing plate; Through the above technical solution, the closing plate can be flipped and opened by the extension and retraction of the electric push rod. When there is no ventilation, the exhaust duct is closed by the closing plate, which can effectively prevent external dust gas from entering the room through the exhaust duct.

[0013] Furthermore, the number of the exhaust fan and the induced air fan is at least one; Through the above technical solution, by increasing the number of exhaust fans and intake fans, the ventilation efficiency and air purification capacity of the system can be further improved, ensuring that the air quality in the clean room is always maintained at a high level. At the same time, the configuration of multiple fans can also achieve redundant design. When a fan fails, the other fans can continue to work, ensuring the continuous and stable operation of the system.

[0014] Furthermore, both ends of the exhaust pipe and the intake pipe are fixedly connected with connecting pieces, one side of each connecting piece is fixedly connected with a sealing gasket, and one side of each connecting piece is provided with a group of connecting holes; Through the above technical solution, by providing the connecting piece, it is possible for the user to extend the length of the exhaust duct and the intake duct, and the overall air tightness can be improved by providing the sealing gasket.

[0015] Furthermore, a control host is fixedly installed at the bottom of the main body box, and the front ends of the flip shaft and the nozzle are respectively fixedly connected to the external motor output end; Through the above technical solution, the working status of the exhaust fan, intake air fan, serpentine heating tube and filter self-cleaning component can be automatically adjusted according to the real-time data collected by the indoor environment monitoring component, such as humidity, dust concentration, temperature, etc. For example, when the dust concentration exceeds the standard, the control host will automatically increase the speed of the intake air fan. When the arc filter is blocked, it can automatically drive the flip shaft to rotate. When the humidity is too high, the serpentine heating tube will be started for dehumidification.

[0016] 3. Beneficial effects The present invention provides an intelligent adaptive clean room environment control system. It has the following beneficial effects: The present invention provides an intelligent, adaptive cleanroom environmental control system. Through the coordinated operation of the induced air fan, filtering and self-cleaning components, and serpentine heating tubes, the system can effectively filter and heat the air entering the cleanroom to remove moisture, ensuring that the air quality meets high standards. At the same time, the design of the filtering and self-cleaning components realizes an automatic cleaning function, reducing maintenance costs and the labor intensity of workers.

[0017] The present invention provides an intelligent adaptive clean room environment control system. The control host can intelligently adjust the working status of the exhaust fan, intake air fan, serpentine heating tube, etc. according to the data collected in real time by the indoor environment monitoring components, such as humidity, dust concentration and temperature, to achieve adaptive regulation, which not only improves the operating efficiency of the system, but also ensures the stability and comfort of the clean room environment.

[0018] The present invention provides an intelligent adaptive clean room environmental control system. Connecting plates and sealing gaskets are provided at both ends of the exhaust duct and the air inlet duct, which facilitates the user to adjust the duct length according to actual needs, thereby improving the flexibility and scalability of the system. At the same time, the provision of the sealing gasket also enhances the overall airtightness, ensuring the stable performance of the system. Through intelligent monitoring and adaptive adjustment functions, the system can adjust the working state according to actual needs, avoiding unnecessary energy waste. BRIEF DESCRIPTION OF THE DRAWINGS

[0019] Figure 1 A three-dimensional schematic diagram of the overall structure of the present invention Figure 1 ; Figure 2 A three-dimensional schematic diagram of the overall structure of the present invention Figure 2 ; Figure 3 It is a cross-sectional view of the front view of the overall structure of the present invention; Figure 4 The filtering self-cleaning component structure of the present invention Figure 1 ; Figure 5 The filtering self-cleaning component structure of the present invention Figure 2 ; Figure 6 This is a structural diagram of the wind speed detection mechanism of the present invention; Figure 7 A cross-sectional view of the structure diagram of the indoor environment monitoring component of the present invention; Figure 8 It is a structural diagram of the closure assembly of the present invention; Figure 9 This is a structural diagram of the connecting piece of the present invention.

[0020] Among them, 1. Main box; 101. Exhaust chamber; 102. Detection chamber; 103. Intake chamber; 2. Exhaust duct; 3. Intake duct; 4. Intake air fan; 1. Filter self-cleaning assembly; 501, sealing block; 502, curved filter frame; 503, curved filter screen; 504, flip shaft; 505, flip frame; 506, connecting frame; 507, cleaning frame; 508, spray pipe; 509, nozzle; 510, rotary joint; 2. Wind speed detection mechanism; 601, detection frame; 602, wind speed sensor; 3. Indoor environment monitoring components; 701, monitoring box; 702, monitoring tube; 703, humidity sensor; 704, dust sensor; 705, temperature sensor; 706, exhaust pipe; 707, micro fan; 8. Closing assembly; 801. Closing plate; 802. Electric push rod; 9. Exhaust fan; 10. Serpentine heating tube; 11. Grille; 12. Water tank; 13. Drain pipe; 14. Solenoid valve; 15. Connecting piece; 16. Sealing gasket; 17. Connecting hole; 18. Control unit. DETAILED DESCRIPTION

[0021] The following will be combined with the drawings in the specific embodiments of the present invention to clearly and completely describe the technical solutions in the specific embodiments of the present invention. Obviously, the specific embodiments described are only part of the specific embodiments of the present invention, rather than all the specific embodiments. Based on the specific embodiments of the present invention, all other specific embodiments obtained by ordinary technicians in this field without making creative efforts are within the scope of protection of the present invention. Specific implementation 1: like Figure 1 、 Figure 2 and Figure 3 As shown, a specific embodiment of the present invention provides an intelligent adaptive clean room environment control system, including a main box 1 and an exhaust duct 2 and an air intake duct 3 fixedly connected to the left and right sides of the main box 1, characterized in that: the interior of the main box 1 is composed of an exhaust chamber 101, a detection chamber 102 and an air intake chamber 103 from right to left, and a group of grilles 11 are respectively installed at the bottom of the air intake chamber 103 and the exhaust chamber 101. Through the setting of the grille 11, foreign matter from the outside can be effectively prevented from entering the interior of the main box 1.

[0023] like Figure 3-5As shown, the interior of the air intake duct 3 is provided with an induced air fan 4, a filter self-cleaning component 5 and a wind speed detection mechanism 6 from right to left. The filter self-cleaning component 5 includes two symmetrically arranged sealing blocks 501. The sides of the two sealing blocks 501 close to each other are set to arc shape. Two symmetrically arranged arc filter frames 502 are provided between the two sealing blocks 501. The interiors of the two arc filter frames 502 are fixedly installed with arc filter screens 503. A flip shaft 504 is provided between the two arc filter screens 503. The front and rear ends of the flip shaft 504 are fixedly connected with a flip frame 505. The two arc filter screens 503 are fixedly connected to the flip frame 505. The arc surfaces of the two sealing blocks 501 are in close contact with the arc filter frames 502 close to them. The right sides of the two arc filter screens 503 are fixedly connected to two symmetrically arranged connecting frames 506. The left ends of the two arc filter screens 503 are fixedly connected to a cleaning frame 507. The left end of the frame 507 is rotatably connected to a nozzle 508, and the outer surface of the nozzle 508 is fixedly connected to a plurality of nozzles 509. The front and rear ends of the nozzle 508 are rotatably connected to the air intake pipe 3, and the rear end of the nozzle 508 is rotatably connected to a rotary joint 510. Through the above arrangement, when the external air flows from the right side of the air intake pipe 3 to the left, the dust can be intercepted by the curved filter 503. After a period of use, the curved filter becomes clogged. The curved filter frame 502 and the curved filter 503 are driven to flip by the flip shaft 504, so as to achieve the purpose of position exchange of the two curved filter screens 503, continuously intercept the dust in the air, and avoid the need to stop the operation of the induced air fan 4 when cleaning the curved filter screen 503. Subsequently, the intermittent rotation of the nozzle 508 realizes the swing spraying of the nozzle 509, which can self-clean the surface of the curved filter screen after use, effectively reducing the labor intensity of the workers.

[0024] like Figure 3 and Figure 6 As shown, the wind speed detection mechanism 6 includes a detection frame 601, which is fixedly connected to the inner wall of the air intake duct 3. A wind speed sensor 602 is installed in the middle section of the detection frame 601. Through the setting of the wind speed sensor 602, the wind speed inside the air intake duct 3 can be monitored. When the wind speed does not match the rotation speed of the air intake fan 4, it can be inferred that the arc filter 503 is blocked, and the flip shaft 504 can be used to drive the arc filter frame 502 to automatically flip. An indoor environment monitoring component 7 is provided inside the detection chamber 102.

[0025] like Figure 3 and Figure 7As shown, the environmental monitoring component includes a monitoring box 701, the front and rear ends of the monitoring box 701 are fixedly connected with monitoring tubes 702, the bottom ends of the two monitoring tubes 702 are fixedly embedded in the monitoring cavity, the interior of the monitoring box 701 is respectively installed with a humidity sensor 703, a dust sensor 704 and a temperature sensor 705 from left to right, the top of the monitoring box 701 is fixedly connected with an exhaust pipe 706, the top of the exhaust pipe 706 is fixedly connected to the exhaust cavity 101, and the inner walls of the bottom ends of the two monitoring tubes 702 are installed with micro fans 707. Through the above arrangement, the micro The fan 707 actively introduces indoor air into the interior of the monitoring box 701, monitors the air temperature and dust, and facilitates the adjustment of the working status of the air intake fan 4 and the exhaust fan 9. The bottom of the air intake pipe 3 is fixedly connected to a water tank 12, and the bottom of the water tank 12 is fixedly connected to a drain pipe 13. The bottom end of the drain pipe 13 is installed with a solenoid valve 14. Through the setting of the water tank 12, clean wastewater can be collected and automatically discharged after cleaning through the set solenoid valve 14. The interior of the exhaust pipe 2 is provided with a closing component 8 and an exhaust fan 9 from right to left.

[0026] like Figure 8-9 As shown, the closing assembly 8 includes a closing plate 801, the top of the closing plate 801 is rotatably connected to the front and rear inner walls of the exhaust duct 2, and an electric push rod 802 is provided on the left side of the closing plate 801. The top of the electric push rod 802 is hinged to the inner top wall of the exhaust duct 2, and the output end of the electric push rod 802 is hinged to the left side of the closing plate 801. Through the extension and retraction of the electric push rod 802, the closing plate 801 can be flipped and opened. When there is no ventilation, the exhaust duct 2 is closed by the closing plate 801, which can effectively prevent external dust gas from entering the room through the exhaust duct 2. A group of serpentine heating tubes 10 are fixedly installed inside the air inlet cavity 103. Through the setting of the serpentine heating tubes 10, the filtered air can be heated to achieve the effect of dehumidification.

[0027] like Figure 8-9 As shown, the number of exhaust fans 9 and induced air fans 4 is at least one. By increasing the number of exhaust fans 9 and induced air fans 4, the ventilation efficiency and air purification capacity of the system can be further improved, ensuring that the air quality in the clean room is always maintained at a high level. At the same time, the configuration of multiple fans can also achieve redundant design. When a fan fails, other fans can continue to work to ensure the continuous and stable operation of the system. Both ends of the exhaust duct 2 and the air intake duct 3 are fixedly connected with connecting plates 15, and one side of each connecting plate 15 is fixedly connected with a sealing gasket 16. A group of connecting holes 17 are opened on one side of each connecting plate 15. Through the setting of the connecting plate 15, the user can easily extend the length of the exhaust duct 2 and the air intake duct 3, and the overall air tightness can be improved by setting the sealing gasket 16.

[0028] like Figure 1-5 As shown, a control host 18 is fixedly installed at the bottom of the main box 1, and the front ends of the flip shaft 504 and the nozzle 508 are fixedly connected to the external motor output end respectively. It can automatically adjust the working status of the exhaust fan 9, the induced air fan 4, the serpentine heating tube 10 and the filter self-cleaning component 5 according to the data collected in real time by the indoor environment monitoring component 7, such as humidity, dust concentration, temperature, etc. For example, when the dust concentration exceeds the standard, the control host 18 will automatically increase the speed of the induced air fan 4. When the arc filter is blocked, it can automatically drive the flip shaft 504 to rotate. When the humidity is too high, the serpentine heating tube 10 will be started for dehumidification.

[0029] Working principle: First, the rotary joint 510 is connected to the external pump output end, and the indoor environment monitoring component 7 collects the environmental data of the clean room in real time through the humidity sensor 703, dust sensor 704 and temperature sensor 705 in the monitoring box 701. The micro fan 707 set at the bottom of the monitoring tube 702 can actively and continuously send the indoor air into the interior of the monitoring box 701 to improve the monitoring accuracy and efficiency. When purification is required, the control host 18 can be driven, and the air intake fan 4 starts to work and inhales the outside air from the right side of the air intake duct 3. The air first passes through the filtering self-cleaning component 5, which consists of two symmetrically arranged arc-shaped filter screens 503. They can effectively intercept dust and impurities in the air. As the use time increases, the arc-shaped filter screen 503 may gradually become clogged. At this time, the system monitors the wind speed inside the air intake duct 3 through the wind speed detection mechanism 6, and compares it with the speed of the air intake fan 4. After comparison, when it is found that the wind speed does not match the rotation speed, the system infers that the arc filter 503 is blocked and automatically drives the flip shaft 504 to rotate, so as to realize the position exchange of the two arc filters 503, thereby continuously intercepting the dust in the air. The air that has been preliminarily filtered then enters the air inlet chamber 103, where a group of serpentine heating tubes 10 heat the air. By heating, the moisture in the air can be effectively removed to achieve the effect of dehumidification. This step is crucial to ensuring the dryness and comfort of the air in the clean room. The treated air eventually enters the room through the bottom grille 11 of the air inlet chamber 103. At the same time, the exhaust fan 9 can draw the indoor air out through the exhaust duct 2, thereby improving the indoor ventilation efficiency. When the system is not working, the closing plate 801 tightly closes the exhaust duct 2 through the telescopic action of the electric push rod 802, effectively preventing external dust gas from entering the room through the exhaust duct 2.

[0030] Although specific embodiments of the present invention have been shown and described, it will be understood by those skilled in the art that various changes, modifications, substitutions and variations can be made to these specific embodiments without departing from the principles and spirit of the invention, and the scope of the invention is defined by the appended claims and their equivalents.

Claims

1. An intelligent self-adaptive clean room environment control system, comprising a main body box (1) and an exhaust duct (2) and an air intake duct (3) fixedly connected to the left and right sides of the main body box (1), characterized in that: The interior of the main box (1) comprises, from right to left, an exhaust chamber (101), a detection chamber (102), and an air intake chamber (103); The interior of the air intake duct (3) is provided with an air intake fan (4), a filtering self-cleaning component (5), and a wind speed detection mechanism (6) in sequence from right to left; An indoor environment monitoring component (7) is provided inside the detection cavity (102); The exhaust duct (2) is provided with a sealing component (8) and an exhaust fan (9) from right to left. A group of serpentine heating tubes (10) are fixedly installed inside the air inlet cavity (103).

2. The intelligent adaptive clean room environment control system according to claim 1, characterized in that: A set of grilles (11) are respectively installed at the bottom of the air inlet cavity (103) and the bottom of the air outlet cavity (101).

3. The intelligent adaptive clean room environment control system according to claim 1, characterized in that: The filtering self-cleaning component (5) comprises two symmetrically arranged sealing blocks (501), and the sides of the two sealing blocks (501) close to each other are both set to arc shape. Two symmetrically arranged arc-shaped filter frames (502) are provided between the two sealing blocks (501), and arc-shaped filter screens (503) are fixedly installed inside the two arc-shaped filter frames (502). A turning shaft (504) is provided between the two arc-shaped filter screens (503), and the front and rear ends of the turning shaft (504) are both fixedly connected to the turning frame (505). The two arc-shaped filter screens (503) are both fixedly connected to the turning frame (505). The two sealing blocks (501) are provided with two symmetrically arranged arc-shaped filter frames (502). The arcuate surfaces of the block (501) are in close contact with the arcuate filter frame (502) adjacent thereto, the right sides of the two arcuate filter screens (503) are fixedly connected to two symmetrically arranged connecting frames (506), the left ends of the two arcuate filter screens (503) are fixedly connected to a cleaning frame (507), the left end of the cleaning frame (507) is rotatably connected to a nozzle (508), the outer surface of the nozzle (508) is fixedly connected to a plurality of nozzles (509), the front and rear ends of the nozzle (508) are rotatably connected to the air intake pipe (3), and the rear end of the nozzle (508) is rotatably connected to a rotary joint (510).

4. The intelligent adaptive clean room environment control system according to claim 1, characterized in that: The wind speed detection mechanism (6) comprises a detection frame (601), the detection frame (601) is fixedly connected to the inner wall of the air intake duct (3), and a wind speed sensor (602) is installed at the middle end of the detection frame (601).

5. The intelligent adaptive clean room environment control system according to claim 1, characterized in that: The bottom of the air intake pipe (3) is fixedly connected to a water storage tank (12), the bottom of the water storage tank (12) is fixedly connected to a drainage pipe (13), and the bottom end of the drainage pipe (13) is installed with a solenoid valve (14).

6. The intelligent adaptive clean room environment control system according to claim 1, characterized in that: The environmental monitoring component comprises a monitoring box (701), wherein both front and rear ends of the monitoring box (701) are fixedly connected to monitoring tubes (702), the bottom ends of the two monitoring tubes (702) are fixedly embedded in the monitoring cavity, a humidity sensor (703), a dust sensor (704) and a temperature sensor (705) are respectively installed inside the monitoring box (701) from left to right, the top end of the monitoring box (701) is fixedly connected to an exhaust pipe (706), the top end of the exhaust pipe (706) is fixedly connected to the exhaust cavity (101), and a micro fan (707) is installed on the inner wall of the bottom end of the two monitoring tubes (702).

7. The intelligent adaptive clean room environment control system according to claim 1, characterized in that: The closing assembly (8) comprises a closing plate (801), the top end of the closing plate (801) being rotatably connected to the front and rear inner side walls of the exhaust duct (2), an electric push rod (802) being provided on the left side of the closing plate (801), the top end of the electric push rod (802) being hinged to the inner top wall of the exhaust duct (2), and the output end of the electric push rod (802) being hinged to the left side of the closing plate (801).

8. The intelligent adaptive clean room environment control system according to claim 1, characterized in that: The number of the exhaust fan (9) and the induced air fan (4) is at least one.

9. The intelligent adaptive clean room environment control system according to claim 1, characterized in that: Both ends of the exhaust pipe (2) and the intake pipe (3) are fixedly connected with connecting pieces (15), one side of each connecting piece (15) is fixedly connected with a sealing gasket (16), and one side of each connecting piece (15) is provided with a group of connecting holes (17).

10. The intelligent adaptive clean room environment control system according to claim 3, characterized in that: A control host (18) is fixedly mounted on the bottom of the main body box (1), and the front ends of the flip shaft (504) and the nozzle (508) are respectively fixedly connected to the external motor output end.

Citation Information

Patent Citations

  • Self-adaptive variable air volume control system for clean room

    CN221375905U