Magnetic suspension air compressor with efficient cooling structure
By introducing cleaning, extrusion and intercepting mechanisms into the air compressor, the problem of dust accumulation in the mesh plate is solved, and efficient cooling and cleaning effects are achieved, ensuring the heat dissipation and ventilation effect of the air compressor.
Patent Information
- Application Number
- CN202510529985.5
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-04-25
- Publication Date
- 2025-08-15
- Estimated Expiration
- Not applicable · inactive patent
AI Technical Summary
In the air-cooled cooling structure, dust gathering at the mesh plate causes the heat dissipation effect to be disturbed, affecting the ventilation efficiency of the air compressor.
A cooling structure with a cleaning mechanism, extrusion assembly and interceptor mechanism is designed. The cleaning brush is driven by the motor to drive the fan blade to remove dust, and the dust is collected by using centrifugal force and aspirator, combining the extrusion and interceptor mechanism to ensure that the dust does not accumulate anymore.
Effectively remove dust from the mesh board, ensure unobstructed ventilation, avoid secondary accumulation of dust, and improve the heat dissipation efficiency and cleanliness of the air compressor.
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Figure CN120487679A_ABST
Abstract
Description
Technical Field
[0001] The invention relates to the technical field of magnetic levitation air compressors, in particular to a magnetic levitation air compressor with a high-efficiency cooling structure. Background Art
[0002] Air compressors are fundamental products of industrial modernization, providing air power and serving as the core equipment of pneumatic systems. Initially, the Chinese market was dominated by piston compressors. Magnetic levitation air compressors are high-tech industrial products that integrate mature technologies such as magnetic bearings, frequency conversion, high-speed permanent magnet synchronous motors, and high-speed impellers. Active magnetic bearings maintain the compressor rotor in an optimal position, resolving issues such as high-speed drive, transmission, and friction losses. Frequency conversion technology enables low-current startup and intelligent regulation of the compressor under all operating conditions. The use of high-speed permanent magnet synchronous motors and high-speed impellers improves overall efficiency, reduces size, and reduces weight.
[0003] The air-cooled cooling structure uses a fan to allow air to flow through the heat-generating components of the compressor to remove heat. However, when the heat dissipation work is carried out for a long time, a large amount of dust will accumulate on the ventilation mesh plate, thereby interfering with the heat dissipation work. Summary of the Invention
[0004] To achieve the above objectives, the present invention is implemented through the following technical solutions: A magnetic levitation air compressor with an efficient cooling structure, comprising: A main body, with exhaust components fixedly connected to both sides of the main body; A cooling component, which is used to cool the inner side of the main body, and the side of the cooling component is fixedly connected to the inner side of the main body; The cooling component includes a mounting shell, a side surface of the mounting shell is fixedly connected to the inner side of the main body, a bracket is fixedly connected to the inner side of the mounting shell, a side surface of the bracket is fixedly connected to a motor, a side of the bracket away from the motor is rotatably connected to a fan blade, an output end of the motor is fixedly connected to the side surface of the fan blade, a side surface of the mounting shell away from the bracket is fixedly connected to a mesh plate, and a side surface of the mesh plate is rotatably connected to a cleaning mechanism; When the main body is performing heat dissipation work, the motor is turned on and the fan blades are driven to rotate on the bracket through the output end of the motor, thereby dissipating the internal temperature of the main body. At the same time, when the fan blades rotate on the bracket, the fan blades drive the cleaning mechanism to rotate on the mesh plate, so that the cleaning mechanism cleans the side of the mesh plate and rotates; Preferably, the cleaning mechanism includes a rotating shaft, the side surface of the rotating shaft is rotatably connected to the inner side of the mesh plate, the end of the rotating shaft close to the mesh plate is fixedly connected to the side of the fan blade away from the output end of the motor, both sides of the rotating shaft are fixedly connected to a cleaning rod, the side of the cleaning rod close to the mesh plate is fixedly connected to a cleaning brush, the side of the cleaning brush away from the cleaning rod contacts the side surface of the mesh plate, a rotating groove is provided on the side of the cleaning rod, a grabbing rod is rotatably connected to the inner side of the rotating groove, grabbing grooves are provided on both sides of the grabbing rod, and an extrusion assembly is fixedly connected to the inner side of the rotating groove; Preferably, when the fan blades are driven by the output end of the motor to rotate on the bracket, the fan blades drive the cleaning rods on both sides to rotate through the rotating shaft, so that the cleaning rods drive the cleaning brushes to clean the sides of the mesh plate, thereby preventing a large amount of dust from accumulating on the sides of the mesh plate during long-term heat dissipation work, thereby interfering with the ventilation effect of the mesh plate; Preferably, when the cleaning rod rotates, the centrifugal force causes the grabbing rod to rotate in the rotating groove. At the same time, a grabbing groove is provided on the side of the grabbing rod, so that the grabbing rod can rotate and grab the dust swept off the screen by the cleaning brush, thereby preventing the dust from gathering into strips when the cleaning brush cleans the screen and entangled on the cleaning brush, thereby interfering with the normal cleaning work of the cleaning brush. Preferably, the grabbing rod uses centrifugal force to grab the dust swept by the cleaning brush, which can effectively prevent the dust from re-accumulating or gathering into strips near the mesh plate, collect and disperse the dust in time, ensure the cleanliness of the mesh plate surface and surrounding areas, prevent the secondary impact of dust residue on the ventilation effect, and make the cleaning effect more thorough; At the same time, when the grabbing rod rotates in the rotating groove, the grabbing groove and the squeezing assembly are in contact and rotated, and the squeezing assembly can squeeze out the flocculent dust strips stuck in the grabbing groove, thereby preventing a large amount of dust from accumulating in the grabbing groove and interfering with the normal grabbing work of the grabbing rod; Preferably, the extrusion assembly includes an extrusion block, the side surface of the extrusion block is fixedly connected to the inner side of the rotating groove, both sides of the inner cavity of the extrusion block are slidably connected to sliding rods, one end of the sliding rod away from the extrusion block is fixedly connected to an extrusion plate, the side surface of the extrusion plate is slidably connected to the inner side of the extrusion block, a first spring is sleeved on the sliding rod, one end of the first spring is fixedly connected to the inner side of the extrusion block, and the other end of the first spring is fixedly connected to the side surface of the extrusion plate; When the grabbing rod rotates in the rotating groove, the inner side of the grabbing groove is squeezed by the squeezing plates on both sides of the squeezing block, so that the squeezing plates squeeze out the flocculent dust strips stuck in the grabbing groove. The squeezing plates are made of rubber. When the squeezing plates are in squeezing contact with the grabbing groove, the squeezing force is greater than the tensile force of the first spring, so that the squeezing plates are stretched by the first spring, and the squeezing plates move toward the squeezing block through the sliding rod, thereby avoiding long-term squeezing contact between the squeezing plates and the grabbing groove. If the squeezing force between the squeezing plates and the grabbing groove is too large, it will cause scratches and damage to the inner side of the grabbing groove. Preferably, the exhaust component includes a collecting shell, which is symmetrically arranged on the side of the main body, the side of the collecting shell is fixedly connected to the side of the main body, a baffle is fixedly connected to the top of the inner cavity of the collecting shell, an exhaust fan is fixedly connected to the top of the collecting shell, the side of the exhaust fan is fixedly connected to the side of the main body, both sides of the bottom of the collecting shell are fixedly connected to sliders, the bottom of the slider is slidably connected to an air suction machine, and both sides of the inner cavity of the collecting shell are rotatably connected to interception mechanisms; Preferably, when the cleaning rod drives the cleaning brush to clean the dust accumulated on the side of the mesh plate, the suction machine is turned on, and the dust falling from the side of the mesh plate is swept by the cleaning rod through the suction force of the suction machine, and enters the inner cavity of the collection shell through the baffle for collection. At the same time, the suction force of the suction machine causes the interception mechanism to rotate inside the collection shell. At the same time, when it is necessary to clean the dust accumulated in the collection shell, the suction machine is disengaged from the slider by sliding, so as to process the dust in the collection shell. Preferably, the interception mechanism includes a rotating shaft, which is symmetrically arranged on the inner side of the collection shell, and both ends of the rotating shaft are rotatably connected to the inner side of the collection shell, and the side of the rotating shaft is fixedly connected to a rotating rod, and the number of the rotating rods is three, and the three rotating rods are evenly arranged with the rotating shaft as the center, the inner side of the rotating rod is rotatably connected to a circular shaft, and the side of the circular shaft is rotatably connected to an interception rod, and transverse grooves are provided on both sides of the interception rod; Preferably, when the cleaning rod cleans the dust that falls off the mesh plate and enters the collecting shell, the suction force of the vacuum machine works, so that the rotating rod drives the rotating shaft to rotate inside the collecting shell, so that the rotating rod collides with the dust entering the collecting shell. At the same time, an intercepting rod is provided on the inner side of the rotating rod. When the rotating rod rotates, the intercepting rod rotates inside the rotating rod, thereby forming multi-layer interception and blocking for the dust, increasing the contact area and collision chance between the dust and the intercepting rod, so that more dust is intercepted in the collecting shell, and reducing the possibility of dust escaping from the collecting shell, thereby improving the efficiency of dust collection.
[0005] The present invention provides a magnetic levitation air compressor with a high-efficiency cooling structure. It has the following beneficial effects: 1. This magnetic levitation air compressor with an efficient cooling structure is equipped with a cleaning mechanism. The cleaning brush continuously cleans the side of the mesh plate, which can promptly remove attached dust, fibers and other debris to prevent the mesh plate pores from being blocked, ensuring that air can smoothly pass through the mesh plate for heat exchange with the interior of the equipment.
[0006] 2. The magnetic levitation air compressor with an efficient cooling structure is equipped with an extrusion component to promptly squeeze out the flocculent dust strips stuck in the grabbing groove, preventing dust from accumulating in the grabbing groove. This ensures that the grabbing rod is always in a clean and unblocked working state, continuously plays the function of grabbing dust, maintains the efficient operation of the cleaning system, and ensures the cleaning effect around the screen.
[0007] 3. The magnetic levitation air compressor with an efficient cooling structure is equipped with an exhaust component. The suction force generated by the aspirator can promptly suck the dust swept by the cleaning rod into the collection shell to prevent the dust from flying and spreading again around the equipment.
[0008] 4. The magnetic levitation air compressor with an efficient cooling structure is equipped with an interception mechanism. Under the suction force of the air intake machine, the moving rod drives the rotating shaft to rotate in the collection shell, and impacts the dust entering the collection shell, which can break up larger dust clumps or accumulated dust and turn them into finer particles, which is convenient for subsequent collection and processing, and also avoids local accumulation of dust in the collection shell. BRIEF DESCRIPTION OF THE DRAWINGS
[0009] Figure 1 This is a schematic structural diagram of a magnetic levitation air compressor with a high-efficiency cooling structure according to the present invention; Figure 2 is an axonometric view of the present invention; Figure 3 It is a schematic structural diagram of the cooling component of the present invention; Figure 4 It is a structural schematic diagram of the cleaning mechanism of the present invention; Figure 5 It is a structural schematic diagram of the extrusion assembly of the present invention; Figure 6 It is a schematic structural diagram of the exhaust component of the present invention; Figure 7 This is a schematic structural diagram of the collection housing of the present invention; Figure 8 It is a structural schematic diagram of the intercepting mechanism of the present invention.
[0010] In the figure: 1. main body; 3. exhaust component; 31. collecting shell; 32. suction machine; 33. exhaust machine; 34. baffle; 35. slider; 36. intercepting mechanism; 361. rotating shaft; 362. rotating rod; 363. circular shaft; 364. intercepting rod; 365. transverse groove; 4. cooling component; 41. mounting shell; 42. bracket; 43. motor; 44. fan blade; 45. mesh plate; 46. cleaning mechanism; 461. rotating shaft; 462. cleaning rod; 463. cleaning brush; 464. rotating groove; 465. grabbing rod; 466. grabbing groove; 467. extrusion assembly; 4671. extrusion block; 4672. sliding rod; 4673. extrusion plate; 4674. first spring. DETAILED DESCRIPTION
[0011] The following will clearly and completely describe the technical solutions in the embodiments of the present invention in conjunction with the accompanying drawings. Obviously, the described embodiments 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 efforts are within the scope of protection of the present invention.
[0012] See also Figure 1-Figure 2 The present invention provides a technical solution: a magnetic levitation air compressor with an efficient cooling structure, comprising: The main body 1 has exhaust components 3 fixedly connected to both sides of the main body 1; A cooling component 4 is used to cool the inner side of the main body 1 , and a side surface of the cooling component 4 is fixedly connected to the inner side of the main body 1 ; See also Figure 1-Figure 3 The cooling component 4 includes a mounting shell 41, a side of the mounting shell 41 is fixedly connected to the inner side of the main body 1, a bracket 42 is fixedly connected to the inner side of the mounting shell 41, a side of the bracket 42 is fixedly connected to a motor 43, a side of the bracket 42 away from the motor 43 is rotatably connected to a fan blade 44, an output end of the motor 43 is fixedly connected to the side of the fan blade 44, a side of the mounting shell 41 away from the bracket 42 is fixedly connected to a mesh plate 45, and a side of the mesh plate 45 is rotatably connected to a cleaning mechanism 46; When the main body 1 is performing heat dissipation, the motor 43 is turned on, and the output end of the motor 43 drives the fan blades 44 to rotate on the bracket 42, thereby dissipating the internal temperature of the main body 1. At the same time, when the fan blades 44 rotate on the bracket 42, the fan blades 44 drive the cleaning mechanism 46 to rotate on the mesh plate 45, so that the cleaning mechanism 46 cleans the side of the mesh plate 45. See also Figures 1-4The cleaning mechanism 46 includes a rotating shaft 461, the side of the rotating shaft 461 is rotatably connected to the inner side of the mesh plate 45, the end of the rotating shaft 461 close to the mesh plate 45 is fixedly connected to the side of the fan blade 44 away from the output end of the motor 43, and cleaning rods 462 are fixedly connected on both sides of the rotating shaft 461. A cleaning brush 463 is fixedly connected to the side of the cleaning rod 462 close to the mesh plate 45, and the side of the cleaning brush 463 away from the cleaning rod 462 contacts the side of the mesh plate 45. A rotating groove 464 is provided on the side of the cleaning rod 462, and a grabbing rod 465 is rotatably connected to the inner side of the rotating groove 464. Grabbing grooves 466 are provided on both sides of the grabbing rod 465, and an extrusion assembly 467 is fixedly connected to the inner side of the rotating groove 464. When the fan blades 44 are driven by the output end of the motor 43 to rotate on the bracket 42, the fan blades 44 drive the cleaning rods 462 on both sides to rotate through the rotating shaft 461, so that the cleaning rods 462 drive the cleaning brushes 463 to clean the sides of the mesh plate 45, thereby preventing a large amount of dust from accumulating on the sides of the mesh plate 45 during long-term heat dissipation work, thereby preventing the ventilation effect of the mesh plate 45 from being affected. At the same time, when the cleaning rod 462 rotates, the centrifugal force causes the grabbing rod 465 to rotate in the rotating groove 464. At the same time, the grabbing groove 466 is provided on the side of the grabbing rod 465, so that the grabbing rod 465 can rotate and grab the dust swept by the cleaning brush 463 on the mesh plate 45, thereby preventing the dust from gathering into strips when the cleaning brush 463 cleans the mesh plate 45 and entangles on the cleaning brush 463, thereby interfering with the normal cleaning work of the cleaning brush 463. The grabbing rod 465 uses centrifugal force to grab the dust swept by the cleaning brush 463, which can effectively prevent the dust from re-accumulating or gathering into strips near the mesh plate 45. The dust is collected and dispersed in time, ensuring the cleanliness of the surface of the mesh plate 45 and the surrounding area, preventing the secondary impact of dust residue on the ventilation effect, and making the cleaning effect more thorough. At the same time, when the grabbing rod 465 rotates in the rotating groove 464, the grabbing groove 466 contacts and rotates with the squeezing assembly 467, and the squeezing assembly 467 can squeeze out the flocculent dust strips stuck in the grabbing groove 466, thereby preventing a large amount of dust from accumulating in the grabbing groove 466 and interfering with the normal grabbing work of the grabbing rod 465. See also Figure 1-Figure 5The extrusion assembly 467 includes an extrusion block 4671, the side of the extrusion block 4671 is fixedly connected to the inner side of the rotating groove 464, and sliding rods 4672 are slidably connected to both sides of the inner cavity of the extrusion block 4671. The end of the sliding rod 4672 away from the extrusion block 4671 is fixedly connected to the extrusion plate 4673, and the side of the extrusion plate 4673 is slidably connected to the inner side of the extrusion block 4671. A first spring 4674 is sleeved on the sliding rod 4672, one end of the first spring 4674 is fixedly connected to the inner side of the extrusion block 4671, and the other end of the first spring 4674 is fixedly connected to the side of the extrusion plate 4673; When the grabbing rod 465 rotates in the rotating groove 464, the inner side of the grabbing groove 466 is squeezed by the squeezing plates 4673 on both sides of the squeezing block 4671, so that the squeezing plates 4673 squeeze out the flocculent dust strips stuck in the grabbing groove 466. The squeezing plates 4673 are made of rubber material. When the squeezing plates 4673 are squeezed and contacted with the grabbing groove 466, the squeezing force is greater than the tensile force of the first spring 4674, so that the squeezing plates 4673 are stretched by the first spring 4674, and the squeezing plates 4673 move toward the squeezing block 4671 through the sliding rod 4672, thereby preventing the squeezing plates 4673 from being squeezed and contacted with the grabbing groove 466 for a long time. If the squeezing force between the squeezing plates 4673 and the grabbing groove 466 is too large, it will cause scratches and damage to the inner side of the grabbing groove 466. See also Figure 1-Figure 7 The present invention provides a technical solution: the exhaust component 3 includes a collection shell 31, which is symmetrically arranged on the side of the main body 1. The side of the collection shell 31 is fixedly connected to the side of the main body 1. A baffle 34 is fixedly connected to the top of the inner cavity of the collection shell 31. An exhaust fan 33 is fixedly connected to the top of the collection shell 31. The side of the exhaust fan 33 is fixedly connected to the side of the main body 1. Sliders 35 are fixedly connected to both sides of the bottom of the collection shell 31. The bottom of the slider 35 is slidably connected to the air suction machine 32. Intercepting mechanisms 36 are rotatably connected to both sides of the inner cavity of the collection shell 31. When the cleaning rod 462 drives the cleaning brush 463 to clean the dust accumulated on the side of the mesh plate 45, the suction machine 32 is turned on, and the dust dropped by the cleaning rod 462 on the side of the mesh plate 45 is swept by the suction force of the suction machine 32, and enters the inner cavity of the collection shell 31 through the baffle 34 for collection. At the same time, the suction force of the suction machine 32 causes the interception mechanism 36 to rotate inside the collection shell 31. At the same time, when it is necessary to clean the dust accumulated in the collection shell 31, the suction machine 32 is disengaged from the slider 35 by sliding, so as to process the dust in the collection shell 31. See also Figures 1-8The interception mechanism 36 includes a rotating shaft 361, which is symmetrically arranged on the inner side of the collection shell 31. Both ends of the rotating shaft 361 are rotatably connected to the inner side of the collection shell 31. A rotating rod 362 is fixedly connected to the side of the rotating shaft 361. There are three rotating rods 362, which are evenly arranged around the rotating shaft 361. A circular shaft 363 is rotatably connected to the inner side of the rotating rod 362. An interception rod 364 is rotatably connected to the side of the circular shaft 363. A transverse groove 365 is provided on both sides of the interception rod 364. When the cleaning rod 462 cleans the dust that falls from the mesh plate 45 and enters the collecting shell 31, the suction force of the vacuum machine 32 works, so that the rotating rod 362 drives the rotating shaft 361 to rotate inside the collecting shell 31, so that the rotating rod 362 collides with the dust entering the collecting shell 31. At the same time, an intercepting rod 364 is provided on the inner side of the rotating rod 362. When the rotating rod 362 rotates, the intercepting rod 364 rotates inside the rotating rod 362, thereby forming multi-layer interception and blocking for the dust, increasing the contact area and collision chance between the dust and the intercepting rod 364, so that more dust is intercepted in the collecting shell 31, and the possibility of dust escaping from the collecting shell 31 is reduced, thereby improving the efficiency of dust collection.
[0013] Specific workflow When the magnetic levitation air compressor is working, the temperature inside the main body 1 is dissipated by opening the cooling component 4 , and dust and impurities dropped from the cooling component 4 can be collected by the exhaust component 3 .
[0014] Obviously, the embodiments described are only some of the embodiments of the present invention, not all of them. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field and related fields without making creative efforts should fall within the scope of protection of the present invention. Structures, devices, and operating methods not specifically described and explained in the present invention shall be implemented in accordance with conventional means in the field unless otherwise specified or limited.
Claims
1. A magnetic levitation air compressor with an efficient cooling structure, characterized in that: include: A main body (1), with exhaust components (3) fixedly connected to both sides of the main body (1); A cooling component (4), the cooling component (4) is used to cool the inner side of the main body (1), and the side surface of the cooling component (4) is fixedly connected to the inner side of the main body (1); The cooling component (4) includes a mounting shell (41), the side of the mounting shell (41) is fixedly connected to the inner side of the main body (1), the inner side of the mounting shell (41) is fixedly connected to a bracket (42), the side of the bracket (42) is fixedly connected to a motor (43), the side of the bracket (42) away from the motor (43) is rotatably connected to a fan blade (44), the output end of the motor (43) is fixedly connected to the side of the fan blade (44), the side of the mounting shell (41) away from the bracket (42) is fixedly connected to a mesh plate (45), and the side of the mesh plate (45) is rotatably connected to a cleaning mechanism (46).
2. The magnetic levitation air compressor with a high-efficiency cooling structure according to claim 1, characterized in that: The cleaning mechanism (46) includes a rotating shaft (461), cleaning rods (462) are fixedly connected to both sides of the rotating shaft (461), a cleaning brush (463) is fixedly connected to the side of the cleaning rod (462) close to the mesh plate (45), a rotating groove (464) is provided on the side of the cleaning rod (462), a grabbing rod (465) is rotatably connected to the inner side of the rotating groove (464), grabbing grooves (466) are provided on both sides of the grabbing rod (465), and an extrusion assembly (467) is fixedly connected to the inner side of the rotating groove (464).
3. The magnetic levitation air compressor with a high-efficiency cooling structure according to claim 2, characterized in that: The side surface of the rotating shaft (461) is rotatably connected to the inner side of the mesh plate (45), the end of the rotating shaft (461) close to the mesh plate (45) is fixedly connected to the side of the fan blade (44) away from the output end of the motor (43), and the side of the cleaning brush (463) away from the cleaning rod (462) is in contact with the side surface of the mesh plate (45).
4. The magnetic levitation air compressor with a high-efficiency cooling structure according to claim 2, characterized in that: The extrusion assembly (467) includes an extrusion block (4671), and both sides of the inner cavity of the extrusion block (4671) are slidably connected to sliding rods (4672), and one end of the sliding rod (4672) away from the extrusion block (4671) is fixedly connected to an extrusion plate (4673), and a first spring (4674) is sleeved on the sliding rod (4672).
5. The magnetic levitation air compressor with a high-efficiency cooling structure according to claim 4, characterized in that: The side surface of the extrusion block (4671) is fixedly connected to the inner side of the rotating groove (464), the side surface of the extrusion plate (4673) is slidingly connected to the inner side of the extrusion block (4671), one end of the first spring (4674) is fixedly connected to the inner side of the extrusion block (4671), and the other end of the first spring (4674) is fixedly connected to the side surface of the extrusion plate (4673).
6. The magnetic levitation air compressor with a high-efficiency cooling structure according to claim 1, characterized in that: The exhaust component (3) comprises a collecting shell (31), a baffle (34) is fixedly connected to the top of the inner cavity of the collecting shell (31), an exhaust machine (33) is fixedly connected above the collecting shell (31), sliders (35) are fixedly connected to both sides of the bottom of the collecting shell (31), an air suction machine (32) is slidably connected to the bottom of the slider (35), and an interception mechanism (36) is rotatably connected to both sides of the inner cavity of the collecting shell (31).
7. The magnetic levitation air compressor with a high-efficiency cooling structure according to claim 6, characterized in that: The collecting shell (31) is symmetrically arranged on the side of the main body (1), the side of the collecting shell (31) is fixedly connected to the side of the main body (1), and the side of the exhaust fan (33) is fixedly connected to the side of the main body (1).
8. The magnetic levitation air compressor with a high-efficiency cooling structure according to claim 6, characterized in that: The interception mechanism (36) comprises a rotating shaft (361), a rotating rod (362) fixedly connected to the side of the rotating shaft (361), a circular shaft (363) rotatably connected to the inner side of the rotating rod (362), an interception rod (364) rotatably connected to the side of the circular shaft (363), and transverse grooves (365) are provided on both sides of the interception rod (364).
9. The magnetic levitation air compressor with a high-efficiency cooling structure according to claim 8, characterized in that: The rotating shaft (361) is symmetrically arranged on the inner side of the collection shell (31), and both ends of the rotating shaft (361) are rotatably connected to the inner side of the collection shell (31). The number of the rotating rods (362) is three, and the three rotating rods (362) are evenly arranged with the rotating shaft (361) as the center.
Citation Information
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