Energy-saving clean shed device capable of intelligently adjusting air
By combining the steel frame and roof structure with the coordinated work of the grille, fan, filter components and drive, the problems of incomplete air purification and insufficient rainwater collection and discharge in the cleanroom equipment are solved, realizing the stability of air purification efficiency and the efficient utilization of rainwater, and improving the energy efficiency and environmental protection of the cleanroom.
Patent Information
- Application Number
- CN202512018584.6
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-12-30
- Publication Date
- 2026-02-06
AI Technical Summary
Existing cleanroom equipment suffers from incomplete air purification, easily clogged filters, and insufficient rainwater collection and discharge regulation, leading to decreased purification efficiency and waterway blockage, thus failing to reliably meet the environmental regulation needs within the cleanroom.
The system employs a combined structure of steel frame and roof, along with the coordinated operation of grilles, fans, filter components, and actuators to achieve air purification. The design of cleaning auxiliary and sweeping components prevents filter clogging. The rainwater collection structure, in conjunction with the drainage pipe, enables rainwater purification and reuse, avoiding blockages in the water supply and sprinkler pipes.
It effectively removes large-scale impurities and fine dust from the air, ensures stable purification efficiency, improves rainwater collection efficiency, and achieves intelligent regulation of air cleanliness and humidity inside the cleanroom, taking into account both energy saving and environmental protection.
Smart Images

Figure CN121473618A_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of green building technology, and in particular to an energy-saving cleanroom device with intelligent air conditioning. Background Technology
[0002] The field of green building technology encompasses various building-related technologies that balance energy conservation and environmental protection. Its core is to achieve efficient resource utilization and environmental friendliness during building use by optimizing building structures and supporting devices. It covers the research and application of technologies related to building ventilation, energy conservation, and water supply. Among these, an energy-efficient cleanroom device with intelligent air conditioning refers to a device used for air purification and humidity control within the cleanroom. The technical aspects it addresses include air purification and rainwater harvesting and utilization. The methods employed include the coordinated operation of components such as air purification structures, rainwater harvesting structures, grille filters, fans, and spray pipes.
[0003] Existing technologies only mention that related functions are achieved through the coordinated operation of components such as air purification structures and rainwater collection structures, without specifying the specific cooperation methods within and between each structure. In actual operation, air purification is difficult to completely remove impurities of different particle sizes, and filter screens are prone to clogging, leading to a decrease in purification efficiency. During rainwater collection, incomplete filtration of impurities can easily cause blockages in water supply pipes and spray pipes. Insufficient regulation of rainwater collection and discharge can easily lead to overflow or low utilization rates. For example, filter screen blockage in cleanrooms during long-term use can affect ventilation, and the accumulation of rainwater impurities can lead to water system malfunctions, making it impossible to stably guarantee the environmental regulation needs inside the cleanroom.
[0004] Therefore, an energy-saving cleanroom device with intelligent air conditioning is proposed to address the above problems. Summary of the Invention
[0005] To address the shortcomings of existing technologies, such as the lack of clarity regarding the specific coordination of various structures leading to incomplete air purification, easy clogging of filters, insufficient rainwater filtration and discharge regulation causing water blockage or overflow, low utilization rate, and inability to stably guarantee the environmental regulation inside the shed, an energy-saving clean shed device with intelligent air regulation is proposed.
[0006] The technical solution adopted by the present invention to solve its technical problem is: an energy-saving cleanroom device with intelligent air regulation, including a base, a steel frame set at the top of the base, a support plate set on the inner wall of the steel frame, a door set on one side of the support plate, a canopy set at the upper end of the steel frame, drainage pipes are rectangularly distributed at the bottom of the canopy, a rainwater collection structure is set at the top of the canopy, and air purification structures are symmetrically arranged on the inner wall of the canopy. The air purification structure includes grilles symmetrically installed on the inner wall of the ceiling, a fan fixedly installed on the inner wall of the ceiling and communicating with the bottom of the ceiling, filter components symmetrically distributed on both sides of the fan, and a driver connected to the filter components on both sides is installed on the inner wall of the ceiling.
[0007] Preferably, the filter assembly includes an installation plate mounted on the inner wall of the ceiling. A filter screen is provided on the inner wall of the installation plate. A sliding groove is symmetrically opened on one side of the installation plate. A drive belt that is slidably connected to the output shaft of the drive belt is slidably mounted on the inner wall of the sliding groove. A cleaning auxiliary assembly that is slidably connected to the inner wall of the sliding groove is provided on the leeward side of the installation plate. A cleaning component that is slidably connected to the inner wall of the installation plate is provided on the windward side of the filter screen. Both the cleaning auxiliary assembly and the cleaning component are fixedly connected to the drive belt on the same side.
[0008] Preferably, the cleaning auxiliary component includes a sliding box slidably installed on the inner wall of the chute, a connecting rod slidably connected to the inner wall of the sliding box, a plurality of rubber balls fixedly connected in an array on the outer surface of the connecting rod, ball sticks fixedly connected to both sides of the connecting rod, a corrugated plate symmetrically fixedly connected to one side of the mounting plate and fitting against the adjacent ball stick, and spring blocks symmetrically fixedly connected to the outer surface of the connecting rod and elastically connected to the top wall of the sliding box.
[0009] Preferably, the corrugated plate is corrugated and has a plurality of trapezoidal protrusions arranged in an array at its upper end.
[0010] Preferably, the cleaning assembly includes a cleaning box slidably mounted on the inner wall of the mounting plate, a cleaning brush rotatably mounted on the inner wall of the cleaning box, the cleaning brush being in close contact with the outer surface of the filter screen, connecting blocks fixedly mounted on both sides of the cleaning box and fixedly connected to the drive belt, racks fixedly connected to the inner walls of the two connecting blocks and fixedly connected to the inner wall of the mounting plate, and gears meshing with adjacent racks fixedly connected to the outer surfaces of the cleaning brushes extending through the cleaning box on both the left and right sides.
[0011] Preferably, the rainwater collection structure includes a water collection bucket installed at the top of the base and spray pipes installed above the fans on both sides. The top of the water collection bucket is provided with a grid, and water supply pipes connected to the adjacent spray pipes are provided on both sides of the water collection bucket. An isolation plate is fixedly installed on the inner wall of the water collection bucket, and a cleaning box is slidably connected to the inner wall of the water collection bucket. A connecting groove connected to the adjacent drain pipe is symmetrically opened on the inner wall of the canopy.
[0012] Preferably, a rectangular drive cable is symmetrically fixedly connected to the outer surface of the cleaning box, and the drive cable is driven by an electric winch installed on the inner wall of the water collection tank.
[0013] Preferably, the top of the isolation plate is a concave trapezoid with both sides of its inner wall being inclined, and the portion of the inner wall of the isolation plate located on the inclined surface is provided with a second connecting groove that communicates with the first connecting groove.
[0014] Preferably, a spring plate is slidably connected to the inner wall of the cleaning box, and mounting seats are symmetrically fixedly connected to the bottom end of the spring plate. Rollers are rotatably connected to the bottom ends of the two mounting seats, and several scrapers are rotatably connected to the lower end of the spring plate in an array.
[0015] Preferably, the scraper has limiting protrusions on both sides of its top end.
[0016] By adopting the above technical solution, the technical progress achieved by this invention compared to the prior art is as follows: 1. This invention provides an energy-saving cleanroom device with intelligent air regulation. The steel frame and roof provide stable support for the device and ensure the secure installation of each component. The door ensures the airtightness of the cleanroom and reduces the entry of unpurified air from the outside. The air purification structure, with its grilles, fans, filter components, and actuators, effectively removes large-scale impurities and fine dust and lint from the air, preventing component blockage and ensuring stable purification efficiency. The rainwater collection structure and drainage pipe enable rainwater collection, purification, and reuse, replacing tap water and reducing water consumption. The coordinated operation of all structures achieves intelligent regulation of air cleanliness and humidity inside the shed, taking into account both energy saving and environmental protection.
[0017] 2. This invention provides an energy-saving cleanroom device with intelligent air conditioning. Through the cooperation of the sliding box, connecting rod, rubber ball, ball rod, corrugated plate and spring block in the cleaning auxiliary component, the filter screen is fully and evenly tapped, efficiently removing dust without damaging the filter screen and ensuring its service life. Through the cooperation of the cleaning box, cleaning brush, connecting block, rack and gear in the cleaning component, the movement and rotation of the cleaning brush are synchronized, deeply removing fine dust and improving the cleanliness of the filter screen. The two work together to avoid filter screen clogging and ensure stable filtration efficiency.
[0018] 3. This invention provides an energy-saving cleanroom device with intelligent air regulation. The rainwater collection structure utilizes a combination of a water collection bucket and a grid to block impurities, preventing blockages in the water supply and spray pipes and ensuring smooth water flow. The concave trapezoidal structure and inclined surfaces of the isolation plate enhance rainwater collection efficiency and purification effect. The cleaning box, spring plate, rollers, scraper, and limiting protrusions work together to thoroughly clean the isolation plate, preventing dust accumulation. The connection between connecting channels one and two drains excess rainwater, preventing overflow from the collection bucket. The water supply and spray pipes work together to reuse rainwater, improving the device's energy and water conservation effects. Attached Figure Description
[0019] Figure 1 This is a schematic diagram of the overall structure of the present invention; Figure 2 This is a cross-sectional structural diagram of the roof of the present invention; Figure 3 This is a schematic diagram of the air purification structure of the present invention; Figure 4 This is a schematic diagram of the structure of the filter assembly of the present invention; Figure 5 This is a schematic diagram of the cleaning auxiliary component of the present invention; Figure 6 This is a schematic diagram of the cleaning assembly of the present invention; Figure 7 This is a schematic diagram of the rainwater harvesting structure of the present invention; Figure 8 This is a schematic diagram showing the position of the second connecting groove in the present invention; Figure 9 This is a schematic diagram of the cleaning box of the present invention; Figure 10 for Figure 9 A magnified schematic diagram of the local structure at point A.
[0020] In the diagram: 1. Base; 2. Steel frame; 3. Door; 4. Support plate; 5. Drain pipe; 6. Air purification structure; 61. Grille; 62. Filter assembly; 621. Mounting plate; 622. Slide rail; 623. Cleaning auxiliary assembly; 6231. Sliding box; 6232. Connecting rod; 6233. Rubber ball; 6234. Spring block; 6235. Cue stick; 6236. Corrugated plate; 624. Filter screen; 625. Cleaning assembly; 6251. Cleaning 6252. Cleaning brush; 6253. Connecting block; 6254. Rack; 626. Drive belt; 63. Driver; 64. Fan; 7. Rainwater collection structure; 71. Water collection bucket; 72. Spray pipe; 73. Connecting channel one; 74. Isolation plate; 741. Connecting channel two; 75. Sweeping box; 751. Spring plate; 752. Roller; 753. Scraper; 754. Mounting base; 755. Drive cable; 76. Water supply pipe; 8. Canopy. Detailed Implementation
[0021] The technical solutions of the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of the present invention.
[0022] Specific implementation examples are given below.
[0023] An energy-efficient cleanroom device with intelligent air conditioning, see [link / reference]. Figure 1 , Figure 2 and Figure 3The system includes a base 1, a steel frame 2 at the top of the base 1 (the steel frame 2 provides a stable support foundation for the entire device, ensuring the structural stability of each component after installation), a support plate 4 on the inner wall of the steel frame 2 (the support plate 4 provides a load-bearing support surface for placing related equipment or auxiliary components), a door 3 on one side of the support plate 4 (the door 3 facilitates the entry and exit of personnel and materials while ensuring the airtightness of the cleanroom and reducing the entry of unpurified air from the outside, which could affect the internal cleanliness), and a canopy 8 at the top of the steel frame 2 (the canopy 8 not only shelters from the wind and rain but also provides a mounting surface for the rainwater collection structure 7 and the air purification structure 6). The bottom of the canopy 8 is rectangular. Drainage pipes 5 are distributed throughout the structure to discharge excess rainwater from the rainwater collection structure 7, preventing rainwater accumulation that could damage the components. A rainwater collection structure 7 is installed at the top of the canopy 8, enabling the collection, purification, and reuse of rainwater for humidity control within the cleanroom. This replaces tap water, significantly reducing water consumption and improving the energy efficiency and environmental friendliness of the device. Air purification structures 6 are symmetrically arranged on the inner wall of the canopy 8. These structures purify the air entering the cleanroom, removing large-scale impurities and fine dust and lint to ensure air cleanliness within the canopy. Simultaneously, their self-cleaning structure prevents component blockage and ensures stable purification efficiency.
[0024] The air purification structure 6 includes grilles 61 symmetrically installed on the inner wall of the ceiling 8. The grilles 61 can effectively block large-scale impurities such as fallen leaves and branches from entering the device, preventing blockage of subsequent components and ensuring smooth airflow. A fan 64 is fixedly installed on the inner wall of the ceiling 8 and connected to the bottom of the ceiling 8. The fan 64 can achieve a two-way function of inward air intake and outward air exhaust. When inward air intake, it introduces outside air into the purification process. When outward air exhaust, it can promptly discharge particles cleaned from the surface of the filter screen 624, preventing impurity accumulation and ensuring the continuity of air purification effect. Filter components 62 are symmetrically distributed on both sides of the fan 64. The filter components 62 are the core components of air purification and are mainly used to treat fine impurities such as dust and lint in the air to improve air cleanliness. A driver 63 is installed on the inner wall of the ceiling 8 and is connected to the filter components 62 on both sides. The driver 63 provides power to the cleaning structure inside the filter components 62, driving the movement of related components to achieve automatic cleaning of the filter screen 624 and ensure the stable working state of the filter components 62.
[0025] It should be noted that fan 64 is a mature ventilation drive technology and device in the existing technology, and its internal structure, connection method and principle will not be described further.
[0026] It should be noted that the driver 63 is a mature power drive technology and device in the existing technology, and its internal structure, connection method and principle will not be described further.
[0027] For further details, please refer to [link / reference]. Figure 4The filter assembly 62 includes a mounting plate 621 installed on the inner wall of the ceiling 8. The mounting plate 621 provides mounting support for other components of the filter assembly 62, ensuring the positional stability and coordinated movement of each component. A filter screen 624 is provided on the inner wall of the mounting plate 621. The filter screen 624 is the core component for filtering fine impurities, and its cleanliness directly affects the air purification effect. A sliding groove 622 is symmetrically opened on one side of the mounting plate 621. The sliding groove 622 provides guidance for the sliding of the drive belt 626, ensuring that the drive belt 626 moves along a fixed trajectory, thereby driving the cleaning component to accurately act on the filter screen 624. The drive belt 626, which is connected to the output shaft of the driver 63, is slidably installed on the inner wall of the sliding groove 622. The drive belt 626 can transmit the power of the driver 63 to the cleaning auxiliary component 623 and the sweeping component 625 to achieve synchronous movement and lifting of the two components. For improved cleaning efficiency, a cleaning auxiliary component 623 is provided on the leeward side of the mounting plate 621, which is slidably connected to the inner wall of the slide groove 622. The cleaning auxiliary component 623 knocks on the filter screen 624, causing dust on the windward side of the filter screen 624 to fall off, preventing the filter screen 624 from clogging and ensuring stable filtration efficiency. A sweeping component 625 is provided on the windward side of the filter screen 624, which is slidably connected to the inner wall of the mounting plate 621. The sweeping component 625 can thoroughly clean the surface of the filter screen 624, further improving the cleanliness of the filter screen 624. Together with the cleaning auxiliary component 623, it achieves efficient cleaning. Both the cleaning auxiliary component 623 and the sweeping component 625 are fixedly connected to the drive belt 626 on the same side. This connection method ensures that the two components can move synchronously under the drive belt 626, achieving a synergistic effect of knocking and sweeping, improving the cleaning effect while ensuring the synchronization of movement.
[0028] For further details, please refer to [link / reference]. Figure 5The cleaning auxiliary component 623 includes a sliding box 6231 slidably installed on the inner wall of the slide groove 622. The sliding box 6231 provides installation and movement space for components such as the connecting rod 6232. Simultaneously, it slides along the slide groove 622 with the drive belt 626, driving the entire cleaning auxiliary component 623 to move and achieve comprehensive tapping and cleaning of the filter screen 624. The connecting rod 6232 is slidably connected to the inner wall of the sliding box 6231. The connecting rod 6232 is the core component that drives the rubber ball 6233 to move. Its up and down movement can directly drive the rubber ball 6233 to tap the filter screen 624. Several rubber balls 6233 are fixedly connected in an array on the outer surface of the connecting rod 6232. The rubber balls 6233 are soft in texture. When tapping the filter screen 624, they can effectively promote the removal of dust without damaging the filter screen 624, thus protecting the filter screen 624. To extend the service life, ball rods 6235 are fixedly connected to both sides of the connecting rod 6232. The ball rods 6235 and the corrugated plate 6236 work together to provide power for the up-and-down movement of the connecting rod 6232. Corrugated plates 6236 that fit against the adjacent ball rods 6235 are symmetrically fixedly connected to one side of the mounting plate 621. The corrugated structure of the corrugated plate 6236 allows the ball rods 6235 to undulate during sliding, thereby driving the connecting rod 6232 to move up and down. Spring blocks 6234 that are elastically connected to the top wall of the sliding box 6231 are symmetrically fixedly connected to the outer surface of the connecting rod 6232. The elasticity of the spring blocks 6234, together with the action of the ball rods 6235 and the corrugated plate 6236, assists the connecting rod 6232 to achieve stable up-and-down movement, improves the force and frequency of the rubber ball 6233's tapping, and enhances the cleaning effect.
[0029] For further details, please refer to [link / reference]. Figure 5 The corrugated plate 6236 is corrugated and has several trapezoidal protrusions arranged in an array on its upper end. This trapezoidal protrusion structure enables the cue stick 6235 to produce a smooth undulating motion during sliding, avoiding movement jamming, while providing continuous and stable power for the connecting rod 6232 to move up and down. The rubber ball 6233 ensures the uniformity of the tapping effect on the filter screen 624, thereby efficiently promoting the dust to fall off the windward side of the filter screen 624, preventing local blockage of the filter screen 624, and ensuring the overall stability of the filtration efficiency.
[0030] For further details, please refer to [link / reference]. Figure 6The cleaning assembly 625 includes a cleaning box 6251 slidably mounted on the inner wall of the mounting plate 621. The cleaning box 6251 provides installation protection for components such as the cleaning brush 6252, and slides with the drive belt 626 to move the cleaning brush 6252 along the surface of the filter screen 624 to achieve comprehensive cleaning. The cleaning brush 6252 is rotatably mounted on the inner wall of the cleaning box 6251. The cleaning brush 6252 is in close contact with the outer surface of the filter screen 624. During its rotation, it can penetrate into the gaps on the surface of the filter screen 624 to effectively remove the attached fine dust and further improve the cleanliness of the filter screen 624. Connecting blocks 6253 are fixedly mounted on both sides of the cleaning box 6251 and fixedly connected to the drive belt 626. The connecting blocks 6253 serve to connect the cleaning box 6251 and the drive belt 626, so that the drive belt 626 can move. The cleaning box 6251 can be used to drive the entire cleaning assembly 625 to move. The inner walls of the two connecting blocks 6253 are slidably connected to racks 6254 that are fixedly connected to the inner wall of the mounting plate 621. The racks 6254 provide a meshing basis for the rotation of the gears, which in turn enable the cleaning brush 6252 to rotate. The cleaning brush 6252 extends through the cleaning box 6251 to the connecting blocks 6253 on both sides. The outer surfaces of the connecting blocks 6252 are fixedly connected to gears that mesh with the adjacent racks 6254. When the connecting blocks 6253 slide with the drive belt 626, the gears mesh with the fixed racks 6254, thereby driving the cleaning brush 6252 to rotate. This enables the cleaning brush 6252 to rotate synchronously during the movement of the cleaning assembly 625, improving the cleaning effect on the surface of the filter screen 624 and preventing impurities from remaining.
[0031] For further details, please refer to [link / reference]. Figure 2 and Figure 7 The rainwater harvesting structure 7 includes a water collection tank 71 installed at the top of the base 1 and spray pipes 72 installed above the fans 64 on both sides. The water collection tank 71 is used to store the collected rainwater to provide a water source for subsequent humidity regulation. A grid is provided at the top of the water collection tank 71 to prevent impurities such as fallen leaves and branches from entering the water collection tank 71, thus preventing blockage of the water supply pipes 76 and spray pipes 72 and ensuring smooth water flow. Water supply pipes 76 are provided on both sides of the water collection tank 71 and are connected to the adjacent spray pipes 72. The water supply pipes 76 are used to transport the collected and purified rainwater in the water collection tank 71 to the spray pipes 72. For the reuse of rainwater, an isolation plate 74 is fixedly installed on the inner wall of the water collection tank 71. The isolation plate 74 is used to settle and filter dust particles in the rainwater, improve the rainwater purification effect, facilitate the reuse of rainwater, and achieve energy and water conservation. A cleaning box 75 is slidably connected to the inner wall of the water collection tank 71. The cleaning box 75 can clean the dust accumulated on the surface of the isolation plate 74 to avoid the dust accumulation affecting the filtration effect of the isolation plate 74. The inner wall of the canopy 8 is symmetrically provided with a connecting groove 73 that connects to the adjacent drain pipe 5. The connecting groove 73 is used to collect excess rainwater and guide it into the drain pipe 5 for discharge.
[0032] For further details, please refer to [link / reference]. Figure 8A rectangular drive cable 755 is symmetrically fixed to the outer surface of the cleaning box 75. The drive cable 755 is driven by an electric winch installed on the inner wall of the water collection tank 71. The power provided by the electric winch can drive the cleaning box 75 to slide smoothly on the inner wall of the water collection tank 71 through the drive cable 755 to achieve a comprehensive cleaning of the isolation plate 74. It should be noted that the electric winch is a mature traction drive technology and equipment in the existing technology. Its internal structure, connection method and principle will not be described.
[0033] For further details, please refer to [link / reference]. Figure 8 and Figure 9 The top of the isolation plate 74 is a concave trapezoid with sloping sides on both sides of its inner wall. This concave trapezoidal structure and sloping sides can guide the flow of rainwater and improve the rainwater collection efficiency. At the same time, it can extend the residence time of rainwater on the surface of the isolation plate 74, so that dust particles can be fully settled and filtered. The sloping part of the inner wall of the isolation plate 74 is provided with a connecting groove 2 741 that communicates with the connecting groove 1 73. The connecting groove 2 741 can not only guide the excess rainwater that the isolation plate 74 cannot handle in time into the connecting groove 1 73 and then discharge it through the drain pipe 5 to avoid the overflow of the water collection bucket 71, but also guide the dust swept down by the cleaning box 75 into the connecting groove 1 73 and discharge it with the rainwater to prevent dust accumulation.
[0034] For further details, please refer to [link / reference]. Figure 9 A spring plate 751 is slidably connected to the inner wall of the cleaning box 75. The elasticity of the spring plate 751 ensures that the scraper 753 remains in close contact with the surface of the isolation plate 74, guaranteeing the cleaning effect. Mounting seats 754 are symmetrically fixed to the bottom of the spring plate 751. Rollers 752 are rotatably connected to the bottom of both mounting seats 754. The rollers 752 assist the cleaning box 75 in moving smoothly on the inner wall of the water collection bucket 71, reducing sliding resistance and preventing the cleaning box 75 from getting stuck. Several scrapers 753 are rotatably connected in an array at the lower end of the spring plate 751. The scrapers 753 are used to directly clean the dust on the surface of the isolation plate 74, improving the cleanliness of the isolation plate 74.
[0035] For further details, please refer to [link / reference]. Figure 10 Limiting protrusions are provided on both sides of the top of the scraper 753. The limiting protrusions can prevent the scraper 753 from rotating excessively during the cleaning process, ensure the contact angle between the scraper 753 and the surface of the isolation plate 74, improve the cleaning effect, and avoid incomplete cleaning due to excessive rotation angle of the scraper 753.
[0036] The specific working principle of this invention is as follows: When the energy-saving cleanroom device with intelligent air regulation is working, the air purification structure 6 is activated first to achieve clean ventilation. The fan 64 draws air inward, causing outside air to pass through the grille 61. The grille 61 can effectively block large-scale impurities such as fallen leaves and branches from entering the device, preventing blockage of subsequent components and ensuring smooth airflow. Subsequently, the air enters the filter assembly 62 to process fine impurities such as dust and lint to improve air cleanliness. The driver 63 drives the drive belt 626 to rotate. The drive belt 626 synchronously drives the cleaning auxiliary assembly 623 and the sweeping assembly 625 to move along the surface of the filter screen 624. During the movement of the cleaning auxiliary assembly 623, the ball rod 6235 slides on the corrugated plate 6236 and, in conjunction with the elastic action of the spring block 6234, moves the air. The moving link 6232 moves up and down relative to the filter screen 624. The rubber ball 6233 on the link 6232 taps the filter screen 624, effectively causing dust on the windward side of the filter screen 624 to fall off, preventing clogging and ensuring stable filtration efficiency. Simultaneously, the cleaning component 625 slides along the filter screen 624 driven by the drive belt 626. The gear and rack 6254 in the connecting block 6253 mesh, driving the cleaning brush 6252 to rotate, thoroughly cleaning the surface of the filter screen 624 and further improving its cleanliness. At this time, the fan 64 exhausts air outward, promptly discharging the swept and tapped particles through the grille 61, preventing impurities from accumulating and ensuring continuous air purification. Simultaneously, the rainwater collection structure 7 collects rainwater and controls humidity. After the water falls onto the top of the canopy 8, it flows to the water collection tank 71. The grille on the upper side of the water collection tank 71 blocks fallen leaves, branches, and other impurities from entering, preventing blockage of the water supply pipe 76 and the sprinkler pipe 72. After the rainwater enters the water collection tank 71, the concave trapezoidal structure at the top of the baffle plate 74 and the sloping surfaces on both sides guide the flow of rainwater. At the same time, it settles and filters dust particles in the rainwater, improving the rainwater purification effect and facilitating rainwater reuse to achieve energy and water conservation. When there is too much rainwater or rainwater that the baffle plate 74 cannot handle in time, it will enter the connecting groove 73 on the inner wall of the canopy 8 through the connecting groove 2 741 on the inner wall of the baffle plate 74, and then be discharged to the ground through the drain pipe 5 to prevent the water collection tank 71 from overflowing. The electric winch drives the cleaning box 75 to slide on the inner wall of the water collection tank 71 through the drive cable 755. The spring inside the cleaning box 75 Under the action of the spring, the scraper 753 is pressed tightly against the surface of the isolation plate 74. The roller 752 assists the cleaning box 75 to move smoothly. The limiting protrusion at the top of the scraper 753 prevents the scraper 753 from rotating excessively to ensure the cleaning effect. The dust swept down enters the drain pipe 5 through the connecting groove 2 741 and the connecting groove 1 73 to avoid dust accumulation affecting the filtration effect of the isolation plate 74. The collected rainwater is transported to the spray pipe 72 through the water supply pipe 76. The spray pipe 72 sprays water mist to control the humidity in the clean room. The use of rainwater resources to replace tap water greatly reduces water consumption and improves the energy efficiency of the device. Through the coordinated work of the air purification structure 6 and the rainwater collection structure 7, the air cleanliness and humidity in the clean room are intelligently regulated, while taking into account both energy efficiency and environmental protection.
[0037] The foregoing has shown and described the basic principles, main features, and advantages of the present invention. Those skilled in the art should understand that the present invention is not limited to the above embodiments. The embodiments and descriptions in the specification are merely illustrative of the principles of the invention. Various changes and modifications can be made to the invention without departing from its spirit and scope, and all such changes and modifications fall within the scope of the present invention as claimed. The scope of protection of this invention is defined by the appended claims and their equivalents.
Claims
1. An energy-saving cleanroom device with intelligent air conditioning, comprising a base (1), a steel frame (2) disposed at the top of the base (1), a support plate (4) disposed on the inner wall of the steel frame (2), a door (3) disposed on one side of the support plate (4), and a canopy (8) disposed at the upper end of the steel frame (2), characterized in that: The bottom of the canopy (8) is provided with a rectangular distribution of drainage pipes (5), the top of the canopy (8) is provided with a rainwater collection structure (7), and the inner wall of the canopy (8) is symmetrically provided with an air purification structure (6). The air purification structure (6) includes a grille (61) symmetrically installed on the inner wall of the ceiling (8), a fan (64) fixedly installed on the inner wall of the ceiling (8) and communicating with the bottom of the ceiling (8), filter components (62) symmetrically distributed on both sides of the fan (64), and a driver (63) connected to the filter components (62) on both sides is installed on the inner wall of the ceiling (8).
2. The energy-saving cleanroom device with intelligent air conditioning according to claim 1, characterized in that: The filter assembly (62) includes an installation plate (621) installed on the inner wall of the ceiling (8). The inner wall of the installation plate (621) is provided with a filter screen (624). A sliding groove (622) is symmetrically opened on one side of the installation plate (621). A drive belt (626) that is connected to the output shaft of the driver (63) is slidably installed on the inner wall of the sliding groove (622). A cleaning auxiliary assembly (623) that is slidably connected to the inner wall of the sliding groove (622) is provided on the leeward side of the installation plate (621). A cleaning assembly (625) that is slidably connected to the inner wall of the installation plate (621) is provided on the windward side of the filter screen (624). The cleaning auxiliary assembly (623) and the cleaning assembly (625) are both fixedly connected to the drive belt (626) on the same side.
3. The energy-saving cleanroom device with intelligent air conditioning according to claim 2, characterized in that: The cleaning auxiliary component (623) includes a sliding box (6231) slidably installed on the inner wall of the slide groove (622). A connecting rod (6232) is slidably connected to the inner wall of the sliding box (6231). Several rubber balls (6233) are fixedly connected in an array on the outer surface of the connecting rod (6232). Ball sticks (6235) are fixedly connected to both sides of the connecting rod (6232). A corrugated plate (6236) that fits against the adjacent ball stick (6235) is symmetrically fixedly connected to one side of the mounting plate (621). A spring block (6234) that is elastically connected to the top wall of the sliding box (6231) is symmetrically fixedly connected to the outer surface of the connecting rod (6232).
4. The energy-saving cleanroom device with intelligent air conditioning according to claim 3, characterized in that: The corrugated plate (6236) is corrugated and has several trapezoidal protrusions arranged in an array at its upper end.
5. The energy-saving cleanroom device with intelligent air conditioning according to claim 2, characterized in that: The cleaning assembly (625) includes a cleaning box (6251) slidably mounted on the inner wall of the mounting plate (621). A cleaning brush (6252) is rotatably mounted on the inner wall of the cleaning box (6251). The cleaning brush (6252) is in close contact with the outer surface of the filter screen (624). Connecting blocks (6253) that are fixedly connected to the drive belt (626) are fixedly mounted on both sides of the cleaning box (6251). A rack (6254) that is fixedly connected to the inner wall of the mounting plate (621) is slidably connected to the inner wall of the two connecting blocks (6253). The cleaning brush (6252) extends through the cleaning box (6251) to the connecting blocks (6253) on both the left and right sides. Gears that mesh with the adjacent racks (6254) are fixedly connected to the outer surface of the connecting blocks (6253).
6. The energy-saving cleanroom device with intelligent air conditioning according to claim 1, characterized in that: The rainwater collection structure (7) includes a water collection bucket (71) installed on the top of the base (1) and a spray pipe (72) installed above the fans (64) on both sides. The top of the water collection bucket (71) is provided with a grid. Water supply pipes (76) connected to the adjacent spray pipes (72) are provided on both sides of the water collection bucket (71). An isolation plate (74) is fixedly installed on the inner wall of the water collection bucket (71). A cleaning box (75) is slidably connected to the inner wall of the water collection bucket (71). A connecting groove (73) connected to the adjacent drain pipe (5) is symmetrically opened on the inner wall of the canopy (8).
7. The energy-saving cleanroom device with intelligent air conditioning according to claim 6, characterized in that: The outer surface of the cleaning box (75) is symmetrically fixed with a rectangular drive cable (755), which is driven by an electric winch installed on the inner wall of the water collection tank (71).
8. The energy-saving cleanroom device with intelligent air conditioning according to claim 6, characterized in that: The top of the isolation plate (74) is a concave trapezoid with both sides of its inner wall being inclined. The part of the inner wall of the isolation plate (74) located on the inclined surface is provided with a second connecting groove (741) that communicates with the first connecting groove (73).
9. The energy-saving cleanroom device with intelligent air conditioning according to claim 7, characterized in that: The inner wall of the cleaning box (75) is slidably connected to a spring plate (751), and the bottom end of the spring plate (751) is symmetrically fixedly connected to a mounting base (754). The bottom ends of the two mounting bases (754) are rotatably connected to rollers (752), and the lower end of the spring plate (751) is rotatably connected to several scrapers (753) in an array.
10. An energy-saving cleanroom device with intelligent air conditioning according to claim 9, characterized in that: Limiting protrusions are provided on both sides of the top of the scraper (753).