Energy-saving clean shed with intelligent air conditioning function
Through the centrifugal force of the turbine fan and the reverse rotation design of the double-layer conical filter plate, combined with the flow block and the stop plate, the problem of clogging of the clean shed filter is solved, and efficient purification and energy-saving operation are achieved.
Patent Information
- Application Number
- CN202510675652.3
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-05-23
- Publication Date
- 2025-08-15
- Estimated Expiration
- Not applicable · inactive patent
AI Technical Summary
Traditional clean shed filter cleaning systems are prone to clogging, resulting in increased ventilation resistance, increased energy consumption and increased equipment noise. Existing solutions such as filter replacement and reverse pulse purge are not effective.
The turbine fan is used to generate centrifugal force to remove large particles of dust, and the double-layer conical filter plate is reversely rotated to form a shear effect to prevent blockage. The airflow barrier is formed by combining the guide block and the barrier plate to achieve multi-stage filtration and dust settlement.
Effectively prevent filter clogging, improve purification efficiency, reduce energy consumption, reduce maintenance frequency, avoid secondary pollution, and realize self-cleaning function.
Smart Images

Figure CN120486793A_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of air purification, in particular to an energy-saving clean room with an intelligent air conditioning function. Background Art
[0002] As core infrastructure for modern industry, cleanrooms are valuable not only for providing a clean environment but also for helping companies reduce costs and improve quality through flexible design and efficient operation. From semiconductors to biopharmaceuticals, from laboratories to food processing plants, cleanrooms are reshaping production standards across various industries with their modular and intelligent design.
[0003] Air purification equipment is a crucial component in cleanrooms. Traditional filter-based purification systems have long faced the industry-wide challenge of filter clogging. Dust particles in the air accumulate on the filter surface, and small particles, in particular, easily embed themselves in the pores of the filter material. Over time, the effective filtration area decreases, leading to an exponential increase in ventilation resistance. This clogging not only significantly reduces air purification output but also increases noise levels and energy consumption due to the obstructed airflow. In severe cases, it can even cause motor overload and shutdown.
[0004] Existing technologies mainly rely on regular filter replacement or reverse pulse blowing to solve the blockage problem, but both solutions have obvious defects: the filter replacement mode requires frequent manual maintenance, and discarded filter materials cause secondary pollution; although pulse backflushing technology can temporarily restore flux, it cannot solve the problem of tiny particles being stuck. On the contrary, the backflushing airflow may break large particles into finer dust, exacerbating the deep blockage of the filter.
[0005] For example, Chinese invention publication CN117628598B provides a cleanroom air vent with a built-in filter assembly that filters the air passing through it, ensuring air quality within the cleanroom. The vent also features a reciprocating knocking mechanism within the vent housing that regularly knocks the top filter surface of the filter assembly, effectively preventing excessive accumulation of impurities. This allows for short-term normal use in emergency situations, avoiding maintenance conflicts. However, in actual use, the anti-clogging effect is less than ideal.
[0006] In view of this, the present invention proposes an energy-saving clean room with intelligent air conditioning function, which solves the above technical problems. Summary of the Invention
[0007] The purpose of this section is to summarize some aspects of the embodiments of the present invention and briefly introduce some preferred embodiments. Some simplifications or omissions may be made in this section and the abstract and title of this application to avoid obscuring the purpose of this section, the abstract and the title of the invention, and such simplifications or omissions should not be used to limit the scope of the present invention.
[0008] An energy-saving clean room with intelligent air conditioning function includes a ventilation duct, a turbine fan is provided in the ventilation duct, a central shaft is provided at the lower end of the turbine fan, the central shaft is connected to the ventilation duct through a connecting frame, a channel is provided in the ventilation duct, and the central shaft is connected to a dredging mechanism through a bearing; The dredging mechanism includes an upper connecting member, a central shaft fixedly connected to the upper connecting member through a bearing, a lower connecting member provided below the upper connecting member, a gear ring rotatably connected between the upper connecting member and the lower connecting member, a main gear fixedly connected to the central shaft, the main gear meshing with the gear ring through a plurality of sub-gears, and the sub-gear rotatably connected to the lower end surface of the upper connecting member; The periphery of the gear ring is fixedly connected to a No. 1 filter plate, a No. 2 filter plate is provided below the No. 1 filter plate, and the No. 2 filter plate is fixedly connected to the periphery of the lower connecting piece. The No. 1 filter plate and the No. 2 filter plate form a secondary purification mechanism.
[0009] Preferably, it also includes a shed structure, which includes a steel frame, the steel frames are filled with acrylic panels, the top of the steel frame is connected to a shed roof, and a curtain door is provided in the middle of the steel frame.
[0010] Preferably, a purification chamber is provided on the lower end surface of the roof, and a plurality of exhaust fans are provided in the purification chamber.
[0011] Preferably, a central connecting frame is provided in the purification chamber, and a plurality of activated carbon adsorption units are provided in the central connecting frame.
[0012] Preferably, a pre-purification mechanism is also included, which includes an annular notch, which is provided on the ventilation pipe and located on the periphery of the turbine fan. A channel is provided below the annular notch, which is opened on the ventilation pipe. The lower end of the channel is connected to the collection bin, and the collection bin is connected to the lower end of the ventilation pipe.
[0013] Preferably, an annular guide block is provided on the annular notch, a material baffle is provided on one side of the guide block, and a guide plate is provided on one side of the material baffle.
[0014] Preferably, the channel is located between the guide block and the baffle plate, and the baffle plate is a porous structure.
[0015] Preferably, a sponge ring is provided above the guide block, the sponge ring is fixedly connected to the annular notch, and there is a gap between the sponge ring and the annular notch.
[0016] Preferably, the pores of filter plate No. 1 are larger than those of filter plate No. 2, and the distance between filter plate No. 1 and filter plate No. 2 is smaller than the diameter of the dust particles. Filter plate No. 1 and filter plate No. 2 are conical, and the periphery of filter plate No. 1 and filter plate No. 2 is fixedly and rotatably connected with an ash guide port, which is connected to the channel.
[0017] Preferably, the upper connecting member is fixedly connected to the ventilation pipe via a connecting frame, the lower connecting member is fixedly connected to the central shaft, and the central shaft is rotatably connected to the ventilation pipe via a bracket.
[0018] Beneficial effects of the present invention: The pre-purification mechanism in the present invention uses the centrifugal force generated by the rotation of the turbine fan to throw large particles of dust in the air toward the sponge ring. The loose and porous sponge structure effectively absorbs dust and reduces particle rebound, and cooperates with the bottom water seal collection bin to achieve dust sedimentation and avoid secondary dust. The secondary purification mechanism adopts a double-layer conical filter plate with reverse rotation design. The upper coarse filter plate intercepts large particles, and the lower fine filter plate intercepts secondary particles. The distance between the two filter plates is smaller than the dust particle size. The reverse rotation forms a shear effect, crushing the stuck particles and throwing them into the ash guide port with the help of centrifugal force, completely solving the problem of filter blockage. The air guide system composed of the guide block and the baffle plate can form a lateral airflow barrier to inhibit the escape of dust in the channel, while guiding part of the airflow to accelerate dust sedimentation. Compared with the traditional device that needs to be connected to external purification equipment, this device has better energy saving and does not require additional electricity input. BRIEF DESCRIPTION OF THE DRAWINGS
[0019] In order to more clearly illustrate the technical solutions of the embodiments of the present invention, the following briefly introduces the drawings required for use in the description of the embodiments. Obviously, the drawings described below are only some embodiments of the present invention. For ordinary technicians in this field, other drawings can be obtained based on these drawings without paying any creative labor.
[0020] in: Figure 1 This is a schematic diagram of the overall structure of an energy-saving clean room with intelligent air conditioning function; Figure 2 This is a schematic diagram of the internal connection structure of an energy-saving clean room with intelligent air conditioning function; Figure 3 This is a schematic diagram of the connection structure between the middle connecting frame and the activated carbon adsorption unit in an energy-saving clean booth with intelligent air conditioning function; Figure 4 This is a schematic diagram of the connection structure of the pre-purification mechanism in an energy-saving clean room with intelligent air conditioning function; Figure 5 for Figure 4 A magnified schematic diagram of the structure at A in the middle; Figure 6 for Figure 5 A magnified schematic diagram of the structure at B in the middle; Figure 7 This is a schematic diagram of the connection structure of the dredging mechanism in an energy-saving clean room with intelligent air conditioning function; Figure 8 for Figure 7 A magnified schematic diagram of the structure at C in the middle; Figure 9 This is a schematic diagram of the connection structure between the dredging mechanism and the roof of an energy-saving clean booth with intelligent air conditioning function; Figure 10 for Figure 9 A magnified schematic diagram of the structure at D in the middle; Figure 11 Schematic diagram of the structure of filter plate No. 1, filter plate No. 2 and dust particles.
[0021] In the picture: 1. Shed structure; 11. Steel frame; 12. Acrylic panels; 13. Curtain doors; 14. Shed roof; 15. Cleanroom; 16. Induction fans; 2. Middle connecting frame; 21. Activated carbon adsorption unit; 3. Pre-purification mechanism; 31. Ventilation pipe; 32. Turbofan; 33. Annular notch; 34. Passage; 35. Collection chamber; 36. Guide block; 37. Baffle plate; 38. Guide plate; 39. Sponge ring; 310. Center axis; 4. Secondary purification mechanism; 41. Filter plate No. 1; 42. Filter plate No. 2; 43. Ash guide port; 5. Dredging mechanism; 51. Upper connecting piece; 52. Main gear; 53. Sub-gear; 54. Lower connecting piece; 55. Gear ring; 99. Dust particles. DETAILED DESCRIPTION
[0022] In order to make the purpose, features, and advantages of the present invention more obvious and easy to understand, the technical solutions in the embodiments of the present invention will be clearly and completely described below in conjunction with the drawings in the embodiments of the present invention. Obviously, the embodiments described below are only part of the embodiments of the present invention, not all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without making creative work are within the scope of protection of the present invention.
[0023] Example: like Figure 1 、 Figure 4 、 Figure 5 、 Figure 6 、 Figure 7 、 Figure 8 、 Figure 9 、 Figure 10 and Figure 11 As shown, an energy-saving clean room with intelligent air conditioning function includes a ventilation duct 31, a turbine fan 32 is provided in the ventilation duct 31, a central shaft 310 is provided at the lower end of the turbine fan 32, and the central shaft 310 is connected to the ventilation duct 31 through a connecting frame. A channel 34 is provided in the ventilation duct 31, and the central shaft 310 is connected to a dredging mechanism 5 through a bearing; The dredging mechanism 5 includes an upper connecting member 51, a central shaft 310 is fixedly connected to the upper connecting member 51 through a bearing, a lower connecting member 54 is provided below the upper connecting member 51, a gear ring 55 is rotatably engaged between the upper connecting member 51 and the lower connecting member 54, a main gear 52 is fixedly connected to the central shaft 310, the main gear 52 is meshed with the gear ring 55 through a plurality of sub-gears 53, and the sub-gear 53 is rotatably connected to the lower end surface of the upper connecting member 51; the central shaft 310 drives the sub-gear 53 to rotate through the main gear 52, and since the sub-gear 53 is rotatably connected to the lower end of the upper connecting member 51, and the upper connecting member 51 is fixed in the ventilation pipe 31 by a fixing frame, the sub-gear 53 drives the gear ring 55 to rotate, and the rotation direction of the gear ring 55 is opposite to that of the central shaft 310, and the rotation speed of the gear ring 55 is reduced through the transmission of the main gear 52 and the sub-gear 53; The outer periphery of the gear ring 55 is fixedly connected to the No. 1 filter plate 41. The No. 2 filter plate 42 is provided below the No. 1 filter plate 41. The No. 2 filter plate 42 is fixedly connected to the outer periphery of the lower connecting member 54. The No. 1 filter plate 41 and the No. 2 filter plate 42 form a secondary purification mechanism 4. The pores of the No. 1 filter plate 41 are larger than the pores of the No. 2 filter plate 42, and the distance between the No. 1 filter plate 41 and the No. 2 filter plate 42 is smaller than the diameter of the dust particles 99. The No. 1 filter plate 41 and the No. 2 filter plate 42 are conical, and the periphery of the No. 1 filter plate 41 and the No. 2 filter plate 42 is fixedly and rotatably connected with an ash guide port 43, and the ash guide port 43 is connected to the channel 34; the conical shape of the No. 1 filter plate 41 and the No. 2 filter plate 42 allows the dust to be guided to the surroundings and finally enter the channel 34 through the ash guide port 43 for collection.
[0024] The upper connecting member 51 is fixedly connected to the ventilation pipe 31 through a connecting frame, the lower connecting member 54 is fixedly connected to the central shaft 310, and the central shaft 310 is rotatably connected to the ventilation pipe 31 through a bracket.
[0025] In this embodiment, a filtering effect is achieved when air passes through filter plate 1 41 and filter plate 2 42. Dust is blocked on filter plates 1 41 and 42. Simultaneously, the apertures of filter plates 1 41 and 42 decrease from large to small, creating a multi-stage filtration effect and improving the filtration efficiency. After passing through the aperture of filter plate 1 41 , some dust particles 99 are blocked by filter plate 2 42 . Accumulated dust can enter ash guide port 43 through the inclined filter plate 2 42 and then enter collection bin 35 through channel 34 for collection. Collection bin 35 is filled with water, which allows dust particles 99 to come into contact with the water and prevents them from dispersing again.
[0026] It should also be noted that the first filter plate 41 is fixedly connected to the gear ring 55, and the second filter plate 42 is connected to the lower connecting piece 54, so that the first filter plate 41 and the second filter plate 42 rotate in opposite directions, which reduces the probability of dust particles 99 blocking the pores, and the distance between the first filter plate 41 and the second filter plate 42 is short, so some dust particles such as Figure 11 As shown, the dust particles 99 are stuck between the first filter plate 41 and the second filter plate 42. Therefore, the counter-rotation of the first filter plate 41 and the second filter plate 42 can form a mutual cutting effect, which shreds the stuck dust particles 99, thereby preventing clogging. In addition, the rotation of the second filter plate 42 generates centrifugal force, causing the dust particles 99 on the second filter plate 42 to be thrown to the ash guide port 43 for collection, further improving the anti-clogging effect and improving the purification efficiency.
[0027] like Figure 1 、 Figure 2 、 Figure 3 and Figure 4 As shown, the present invention further includes a shed structure 1, which includes a steel frame 11. The steel frames 11 are filled with acrylic panels 12. A roof 14 is connected above the steel frames 11. A curtain door 13 is provided in the middle of the steel frames 11. A clean room 15 is provided on the lower end surface of the roof 14, and a plurality of exhaust fans 16 are provided in the clean room 15; A middle connecting frame 2 is provided in the purification chamber 15 , and a plurality of activated carbon adsorption units 21 are provided in the middle connecting frame 2 .
[0028] In this embodiment, the main body of the clean shed is composed of a steel frame 11, which is filled with acrylic panels 12. A curtain door 13 for personnel to enter and exit is provided in the middle, and a trapezoidal roof 14 is provided at the top. Multiple exhaust fans 16 are used to operate the clean room 15 to create a negative pressure. Then, external air is sucked in through the ventilation pipe 31 and purified by the activated carbon adsorption unit 21 (the activated carbon adsorption unit 21 is an activated carbon barrel available on the market, which is a prior art and will not be described in detail here). The purified air is then filled into the clean shed, and the original gas in the clean shed is squeezed out from the bottom, completing the air purification and conditioning.
[0029] like Figure 4、 Figure 5 and Figure 7 As shown, the present invention further includes a pre-purification mechanism 3, which includes an annular notch 33. The annular notch 33 is provided on the ventilation pipe 31 and is located on the periphery of the turbine fan 32. A channel 34 is provided below the annular notch 33. The channel 34 is opened on the ventilation pipe 31. The lower end of the channel 34 is connected to the collection bin 35. The collection bin 35 is clamped to the lower end of the ventilation pipe 31. An annular guide block 36 is provided on the annular notch 33 , a baffle plate 37 is provided on one side of the guide block 36 , and a guide plate 38 is provided on one side of the baffle plate 37 ; The channel 34 is located between the guide block 36 and the baffle plate 37. The baffle plate 37 has a porous structure. The baffle plate 37 allows air to pass through and blocks dust from passing through. A sponge ring 39 is provided above the guide block 36 . The sponge ring 39 is fixedly connected to the annular notch 33 , and a gap exists between the sponge ring 39 and the annular notch 33 .
[0030] In this embodiment, when air enters the ventilation pipe 31, it drives the turbine fan 32 to rotate, and the rotation of the turbine fan 32 drives the central shaft 310 to rotate. When the turbine fan 32 rotates, when there are dust particles 99 in the air, the dust particles 99 are affected by centrifugal force, or the dust particles 99 are hit by the turbine fan 32, causing the dust particles 99 to move around the turbine fan 32, and then the dust particles 99 collide with the sponge ring 39. Since the sponge ring 39 has a loose and porous structure, the dust particles 99 cannot bounce back. The dust particles 99 enter the channel 34 due to gravity, and then enter the collection bin 35.
[0031] It should be noted that after the dust particles 99 collide with the sponge ring 39, due to the gap between the sponge ring 39 and the annular notch 33, the sponge ring 39 has the ability to move backward, which makes the ability of the dust particles 99 and the sponge ring 39 to rebound upon contact smaller. At the same time, a small amount of wind from the turbine fan 32 will also enter the channel 34, which guides the dust particles 99 and accelerates the falling of the dust particles 99, thereby improving the purification efficiency.
[0032] It should also be noted that a small amount of wind will come into contact with the guide block 36 after entering the channel 34. The guide block 36 will guide the wind to blow towards the baffle plate 37. Then the wind will pass through the baffle plate 37 and then be guided by the guide plate 38, and finally return to the ventilation pipe 31 again. The wind is guided by the guide block 36 to become a horizontal wind direction, which has a blocking effect on the dust particles 99 and can effectively inhibit the escape of the dust particles 99 below.
[0033] The workflow is as follows: First, multiple induced fans 16 work to make the purification chamber 15 negative pressure, and then the outside air is sucked in from the ventilation pipe 31. After the air enters the ventilation pipe 31, the turbine fan 32 is driven to rotate. When the turbine fan 32 is rotating, when there are dust particles 99 in the air, the dust particles 99 are subjected to centrifugal force, or the dust particles 99 are hit by the turbine fan 32, so that the dust particles 99 move to the surroundings of the turbine fan 32, and then the dust particles 99 collide with the sponge ring 39. Since the sponge ring 39 has a loose and porous structure, the dust particles 99 cannot rebound. The dust particles 99 enter the channel 34 due to gravity and then enter the collection bin 35. In this process, after the dust particles 99 collide with the sponge ring 39, the sponge There is a gap between the ring 39 and the annular notch 33, so that the sponge ring 39 has the ability to move backward, which makes the dust particles 99 less capable of rebounding in contact with the sponge ring 39. At the same time, a small part of the wind from the turbine fan 32 will also enter the channel 34, which guides the dust particles 99 and accelerates the falling of the dust particles 99, thereby improving the purification efficiency. After a small part of the wind enters the channel 34, it will contact the guide block 36, and the guide block 36 will guide the wind to the baffle plate 37. Then the wind passes through the baffle plate 37 and is guided by the guide plate 38, and finally returns to the ventilation pipe 31 again. The wind is guided by the guide block 36 to become a horizontal wind direction, which has a blocking effect on the dust particles 99 and can effectively suppress the escape of the dust particles 99 below. Then the air continues to move downward, and a filtering effect is formed when the air passes through the first filter plate 41 and the second filter plate 42. The dust will be blocked on the first filter plate 41 and the second filter plate 42. At the same time, the apertures of the first filter plate 41 and the second filter plate 42 are reduced from large to small, forming a multi-stage filtering effect and improving the filtering effect. After some dust particles 99 pass through the aperture of the No. 1 filter plate 41, they are blocked by the No. 2 filter plate 42. The accumulated dust can enter the ash guide port 43 from the inclined No. 2 filter plate 42, and then enter the collection bin 35 through the channel 34 for collection. The collection bin 35 is filled with water, which can make the dust particles 99 contact with the water to prevent the dust particles 99 from floating again. At the same time, the rotation of the turbine fan 32 drives the central shaft 310 to rotate, and the central shaft 310 drives the sub-gear 53 to rotate through the main gear 52. Since the sub-gear 53 is rotatably connected to the lower end of the upper connecting member 51, and the upper connecting member 51 is fixed in the ventilation pipe 31 by the fixing frame, the sub-gear 53 drives the gear ring 55 to rotate, and the direction of rotation of the gear ring 55 is opposite to that of the central shaft 310, and the rotation speed of the gear ring 55 is reduced through the transmission of the main gear 52 and the sub-gear 53. The first filter plate 41 is fixedly connected to the gear ring 55, and the second filter plate 42 is connected to the lower connecting piece 54, so that the first filter plate 41 and the second filter plate 42 rotate in opposite directions, which reduces the probability of dust particles 99 blocking the pores. In addition, the distance between the first filter plate 41 and the second filter plate 42 is short, and some dust particles such as Figure 11As shown, the dust particles 99 are stuck between the first filter plate 41 and the second filter plate 42. Therefore, the counter-rotation of the first filter plate 41 and the second filter plate 42 can form a mutual cutting effect, which shreds the stuck dust particles 99, thereby preventing clogging. In addition, the rotation of the second filter plate 42 generates centrifugal force, causing the dust particles 99 on the second filter plate 42 to be thrown to the ash guide port 43 for collection, further improving the anti-clogging effect and improving the purification efficiency.
[0034] The basic principles, main features, and advantages of the present invention are shown and described above. Those skilled in the art should understand that the present invention is not limited to the above-described embodiments. The above-described embodiments and descriptions are merely illustrative of the principles of the present invention. Various changes and modifications may be made to the present invention without departing from the spirit and scope of the present invention. Such changes and modifications are intended to fall within the scope of the present invention. The scope of the present invention is defined by the appended claims and their equivalents.
Claims
1. An energy-saving clean room with intelligent air conditioning function, comprising a ventilation pipe (31), a turbine fan (32) is provided in the ventilation pipe (31), and is characterized in that: A central shaft (310) is provided at the lower end of the turbine fan (32), and the central shaft (310) is connected to the ventilation pipe (31) via a connecting frame. A passage (34) is provided in the ventilation pipe (31), and the central shaft (310) is connected to a dredging mechanism (5) via a bearing. The dredging mechanism (5) includes an upper connecting member (51), a central shaft (310) fixedly connected to the upper connecting member (51) via a bearing, a lower connecting member (54) provided below the upper connecting member (51), a gear ring (55) rotatably engaged between the upper connecting member (51) and the lower connecting member (54), a main gear (52) fixedly connected to the central shaft (310), the main gear (52) meshing with the gear ring (55) via a plurality of sub-gears (53), and the sub-gears (53) rotatably connected to the lower end surface of the upper connecting member (51); The outer periphery of the gear ring (55) is fixedly connected to a No. 1 filter plate (41), a No. 2 filter plate (42) is provided below the No. 1 filter plate (41), and the No. 2 filter plate (42) is fixedly connected to the outer periphery of the lower connecting member (54). The No. 1 filter plate (41) and the No. 2 filter plate (42) form a secondary purification mechanism (4).
2. The energy-saving clean room with intelligent air conditioning function as claimed in claim 1, characterized in that: The invention also includes a shed structure (1), which includes a steel frame (11), the steel frame (11) is filled with acrylic panels (12), the top of the steel frame (11) is connected to a shed roof (14), and a curtain door (13) is provided in the middle of the steel frame (11).
3. The energy-saving clean room with intelligent air conditioning function as claimed in claim 2, characterized in that: A purification chamber (15) is provided on the lower end surface of the roof (14), and a plurality of exhaust fans (16) are provided in the purification chamber (15).
4. The energy-saving clean room with intelligent air conditioning function as claimed in claim 3, characterized in that: A middle connecting frame (2) is provided in the purification chamber (15), and a plurality of activated carbon adsorption units (21) are provided in the middle connecting frame (2).
5. The energy-saving clean room with intelligent air conditioning function as claimed in claim 1, characterized in that: The device further comprises a pre-purification mechanism (3), the pre-purification mechanism (3) comprising an annular notch (33), the annular notch (33) being provided on the ventilation pipe (31) and being located at the periphery of the turbine fan (32), a channel (34) being provided below the annular notch (33), the channel (34) being provided on the ventilation pipe (31), the lower end of the channel (34) being communicated with a collecting bin (35), and the collecting bin (35) being clamped to the lower end of the ventilation pipe (31).
6. The energy-saving clean room with intelligent air conditioning function as claimed in claim 5, characterized in that: An annular guide block (36) is provided on the annular notch (33), a material baffle (37) is provided on one side of the guide block (36), and a guide plate (38) is provided on one side of the material baffle (37).
7. The energy-saving clean room with intelligent air conditioning function as claimed in claim 6, characterized in that: The channel (34) is located between the guide block (36) and the baffle plate (37), and the baffle plate (37) is a porous structure.
8. The energy-saving clean room with intelligent air conditioning function as claimed in claim 5, characterized in that: A sponge ring (39) is provided above the guide block (36). The sponge ring (39) is fixedly connected to the annular notch (33), and a gap exists between the sponge ring (39) and the annular notch (33).
9. The energy-saving clean room with intelligent air conditioning function as claimed in claim 1, characterized in that: The pores of the first filter plate (41) are larger than the pores of the second filter plate (42), and the distance between the first filter plate (41) and the second filter plate (42) is smaller than the diameter of the dust particles (99). The first filter plate (41) and the second filter plate (42) are conical. The outer peripheries of the first filter plate (41) and the second filter plate (42) are fixedly rotatably connected with an ash guide port (43), and the ash guide port (43) is communicated with the channel (34).
10. The energy-saving clean booth with intelligent air conditioning function as claimed in claim 9, characterized in that: The upper connecting member (51) is fixedly connected to the ventilation pipe (31) via a connecting frame, the lower connecting member (54) is fixedly connected to the central shaft (310), and the central shaft (310) is rotatably connected to the ventilation pipe (31) via a bracket.
Citation Information
Patent Citations
Clean room air outlet
CN117628598B