Air filter element structure for wind generating set
By designing an air filter structure for wind turbines, using the combination of activated carbon plate and fan air components, the problem of motor corrosion caused by floating dust entering the cabin in the air is solved, and efficient air filtration and optimization of air flow are achieved.
Patent Information
- Application Number
- CN202510085490.8
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-01-20
- Publication Date
- 2025-05-06
- Estimated Expiration
- 2045-01-20
AI Technical Summary
When used, the existing air filter element structure that is easy to clean, the air dust can easily enter the cabin, causing corrosion and damage to the main body of the motor.
An air filter element structure for wind turbine units is designed, using components such as chassis, tank body, air intake pipe, conduit, filter plate, motor, activated carbon plate and fan air component to filter the dust in the air through the rotation of the activated carbon plate, and prevent air accumulation through the fan air component.
Effectively prevent air from carrying floating dust into the cabin, avoid corrosion and damage to the main body of the motor, and at the same time prevent air accumulation and improve the air intake effect of the equipment.
Smart Images

Figure CN119926066A_ABST
Abstract
Description
Technical Field
[0001] The invention relates to the technical field of air filtration, in particular to an air filter element structure for a wind power generator set. Background Art
[0002] An air filter structure is usually installed inside the cabin of a wind turbine. When the wind turbine is working, the turbine is in a high temperature state and needs air to cool it down. The main function of the air filter structure is to prevent floating dust in the air from adhering to the inside of the turbine, effectively remove pollutants in the air, and extend the overall service life of the turbine.
[0003] The patent with patent number CN214389278U discloses an air filter element structure that is easy to clean, including a base, the top of the base is fixedly connected to a driving motor, the output shaft of the driving motor is fixedly connected to a mounting base, the left and right sides of the bottom of the mounting base are fixedly connected to movable sliding rods, the bottom of the movable sliding rod is fixedly connected to a movable sliding block, the bottom of the movable sliding block is slidably connected to the base, the top of the mounting base is plugged with a plug-in block, the top of the plug-in block is fixedly connected to an air filter element body, the top of the air filter element body is movably connected with a cover plate, the top of the base is fixedly connected to a stabilizing seat, the left and right sides of the top of the stabilizing seat are fixedly connected to a supporting frame, and the top of the supporting frame is fixedly connected to a first vacuum cleaner. The air filter element structure that is easy to clean achieves the purpose of easy cleaning as a whole and greatly enhances the cleaning efficiency of the air filter element.
[0004] However, the current air filter structure that is easy to clean has the following problems: when the air filter structure that is easy to clean is in use, since the air filter structure is purifying the air, the floating dust in the air is easy to enter the cabin, which causes the motor body in the cabin to be easily corroded and damaged by the floating dust. Therefore, we propose an air filter structure for a wind turbine generator set. Summary of the invention
[0005] In view of the deficiencies in the prior art, the present invention provides an air filter element structure for a wind turbine generator set, which solves the problems raised in the above-mentioned background technology.
[0006] To achieve the above objectives, the present invention is implemented through the following technical solutions: an air filter element structure for a wind turbine generator set, comprising a nacelle, a motor body is fixedly installed at the bottom end of the nacelle, a heat dissipation module is fixedly installed on the top surface of the motor body, and a filter assembly is arranged at the top end of the nacelle;
[0007] The filter assembly includes a base frame, which is fixed to the bottom end of the cabin, the base frame is located on the right side of the motor body, a tank body is fixedly installed on the top surface of the base frame, three air intake pipes are passed through and fixed to the bottom of the right side of the tank body, one end of the three air intake pipes away from the tank body passes through and is fixedly connected to the left side of the cabin inner wall, a conduit is passed through and fixed to the top of the left side of the tank body, one end of the conduit away from the tank body is fixedly connected to the right side of the heat dissipation module, a filter disc is fixedly installed on the top of the inner wall of the tank body, a motor is fixedly installed on the bottom end of the base frame, the shaft of the motor passes through and is rotatably installed on the top end of the base frame, the shaft of the motor passes through and is rotatably installed in the middle of the bottom surface of the tank body, and the top surface of the shaft of the motor A disc 1 is fixed, the bottom surface of the disc 1 is rotatably connected to the inner bottom end of the tank body, four frame plates are fixed to the top surface of the disc 1, the outer walls of the four frame plates are provided with a plurality of air outlets, the inner walls of the four frame plates are respectively fixed with four activated carbon plates, disc 2 is fixed to the top surfaces of the four frame plates, the top surface of the disc 2 is rotatably connected to the bottom surface of the filter disc, the frame plate drives the activated carbon plate to rotate forward, the activated carbon plate contacts with a large area of the air during the rotation, the activated carbon plate rotates to filter impurities such as floating dust in the air, and the purified air is discharged from the air outlet holes of the frame plate, the activated carbon plate separates the floating dust and gas in the air during the rotation, so that the air will not carry floating dust into the cabin, and a fan assembly is arranged on the top surface of the disc 1;
[0008] The fan assembly includes four long rods, the four long rods are fixed on the top surface of the first disc, the top surfaces of the four long rods are fixedly connected to the bottom surface of the second disc, four long tubes are respectively fixed in the middle of the outer walls of the four long rods, and fan plates are respectively fixed on the outer walls of the four long tubes, and the fan plates fan the gas in the tank body to flow upward quickly, so that the air in the tank body will not accumulate in the tank body;
[0009] An anti-shake device is arranged in the middle of the second top surface of the disk, and a dehumidification device is arranged on the outer wall of the anti-shake device.
[0010] According to the above technical solution, the air fan assembly also includes four short tubes, which are respectively fixed at the bottom of the outer walls of four long rods, and four strip plates are respectively fixed on the outer walls of the four short tubes. The strip plates fan the air under the tank body to prevent the air from accumulating under the tank body.
[0011] According to the above technical solution, the heat dissipation module's exhaust pipe is fixedly connected to the top of the cabin, the filter disc's top surface is provided with four arc-shaped notches, and four filter screens are respectively fixed to the inner walls of the four arc-shaped notches of the filter disc.
[0012] According to the above technical solution, the four long rods are respectively located between the four frame plates, and the four strip plates are respectively located under the four fan plates.
[0013] According to the above technical scheme, the anti-shake device includes an axial disc, a horizontal plate, two U-shaped frames and two rubber rollers, the axial disc is fixed in the middle of the top surface of the disc two, the bottom end of the axial disc penetrates and is rotatably connected to the top surface of the filter disc, the top surface of the axial disc is rotatably connected to the inner top of the tank body, the horizontal plate is fixed to the bottom of the outer wall of the axial disc, the two U-shaped frames are fixed to the two ends of the outer wall of the horizontal plate, the two rubber rollers are rotatably installed on the inner walls of the two U-shaped frames respectively, and the rubber rollers roll on the wall surface of the tank body, and under the limitation of friction, the jitter of the disc two during rotation is reduced, so that the frame plate on the disc two will not shake violently during rotation.
[0014] According to the above technical solution, the anti-shake device also includes two short rods, two double arc plates and two chamfered plates. The two short rods are fixed on the outer wall of the horizontal plate, the two double arc plates are respectively fixed on the ends of the two short rods away from the horizontal plate, and the two chamfered plates are respectively fixed on the outer walls of the two double arc plates. The double arc plates drive the chamfered plates to rotate forward. During the forward rotation of the chamfered plates, the chamfers of the chamfered plates scrape off impurities on the wall of the tank body, so that the wall of the tank body remains clean.
[0015] According to the above technical solution, the transverse plate is located above the filter disc, the outer walls of the two rubber rollers are in rolling contact with the inner wall of the tank body, and the chamfers of the two chamfered plates are in sliding contact with the inner wall of the tank body.
[0016] According to the above technical solution, the dehumidification device includes two straight ring blocks, an inclined plate, two mesh cylinders and two calcium chloride columns. The two straight ring blocks are respectively fixed on the outer walls of the two short rods, the inclined plate is fixed on the top surfaces of the two straight ring blocks, the two mesh cylinders are respectively fixedly installed on both sides of the top surfaces of the inclined plates, and the two calcium chloride columns are respectively fixedly installed on the inner bottom ends of the two mesh cylinders. The mesh cylinder drives the calcium chloride columns to rotate forward. During the forward rotation of the calcium chloride columns, the calcium chloride columns come into contact with the purified air, and the calcium chloride columns absorb moisture in the air.
[0017] According to the above technical scheme, the dehumidification device also includes two round rods, two ring blocks, two arc-shaped spring pieces and two sliding hole plates. The two round rods are respectively fixed on the top surface of the inclined plate, and the two round rods are respectively located on the side where the two net cylinders are close to each other. The two ring blocks are respectively fixed on the outer walls of the two round rods, and the two arc-shaped spring pieces are respectively fixed on the outer walls of the two ring blocks. The two sliding hole plates are respectively slidably installed on the top of the outer walls of the two round rods, and one end of the two arc-shaped spring pieces away from the two ring blocks is fixedly connected to the bottom surfaces of the two sliding hole plates. Under the elastic force of the arc-shaped spring pieces, the sliding hole plate is pressed against the top of the net cylinder to reduce the shaking of the net cylinder during rotation.
[0018] According to the above technical solution, the inclined plate is sleeved on the bottom of the outer wall of the shaft disc, and the two sliding hole plates are respectively located on the top surfaces of the two net cylinders.
[0019] The present invention provides an air filter element structure for a wind power generator set, which has the following beneficial effects:
[0020] (1) The present invention comprises a base frame, a tank body, an air intake pipe, a duct, a filter plate, a motor, a disc 1, a frame plate, an activated carbon plate, a disc 2, a long rod, a long tube, a fan plate and a short tube in conjunction with a strip plate. The frame plate drives the activated carbon plate to rotate forward. The activated carbon plate contacts the air with a large area during rotation. The activated carbon plate rotates to filter impurities such as floating dust in the air. The purified air is discharged from the air outlet of the frame plate. The activated carbon plate separates floating dust and gas in the air during rotation, so that the air does not carry floating dust into the cabin, and the air is prevented from carrying floating dust into the cabin, which causes the motor body in the cabin to be easily corroded and damaged by the floating dust. The fan plate fans the gas in the tank body to flow upward rapidly, so that the air in the tank body does not accumulate in the tank body, and a large amount of air is prevented from accumulating in the tank body, causing poor air intake effect of the equipment. At the same time, the strip plate fans the air below the tank body, so that the air does not accumulate below the tank body, and the air is prevented from accumulating below the tank body, which causes the air below the tank body to be difficult to discharge.
[0021] (2) The present invention sets an anti-shake device so that the shaft disk, the horizontal plate, the U-shaped frame, the rubber roller, the short rod and the double arc plate cooperate with the chamfer plate. The rubber roller rolls on the wall surface of the tank body. Under the limitation of friction, the shaking of the second disk during rotation is reduced, so that the frame plate on the second disk will not shake violently during rotation, and the frame plate on the second disk will not shake violently during rotation, causing the equipment to run unsmoothly. In addition, the double arc plate drives the chamfer plate to rotate forward. During the forward rotation of the chamfer plate, the chamfer of the chamfer plate scrapes off impurities on the wall surface of the tank body, so that the wall surface of the tank body is kept clean, and a large amount of impurities attached to the wall surface of the tank body are prevented from being easily corroded and damaged by the impurities.
[0022] (3) The present invention arranges a dehumidification device so that the straight ring block, the inclined plate, the mesh cylinder, the calcium chloride column, the round rod, the ring block and the arc-shaped spring piece cooperate with the sliding hole plate, and the mesh cylinder drives the calcium chloride column to rotate forward. During the forward rotation of the calcium chloride column, the calcium chloride column contacts the purified air, and the calcium chloride column absorbs moisture in the air to prevent the motor body from being easily affected by moisture due to high moisture content in the air. In addition, under the elastic force of the arc-shaped spring piece, the sliding hole plate abuts against the top of the mesh cylinder to reduce the shaking of the mesh cylinder during rotation, and prevent the mesh cylinder from shaking violently during rotation, which may cause the calcium chloride column in the mesh cylinder to be damaged. BRIEF DESCRIPTION OF THE DRAWINGS
[0023] Figure 1 A schematic diagram of the present invention as a whole;
[0024] Figure 2 is a schematic diagram of the internal components of the present invention;
[0025] Figure 3 It is a cross-sectional schematic diagram of the filter assembly of the present invention;
[0026] Figure 4 For the present invention Figure 3 A local enlarged schematic diagram of the middle A;
[0027] Figure 5 is a schematic diagram of an anti-shake device of the present invention;
[0028] Figure 6 For the present invention Figure 5 A partial enlarged schematic diagram of point B in the middle;
[0029] Figure 7 is a cross-sectional schematic diagram of a dehumidification device of the present invention;
[0030] Figure 8 For the present invention Figure 7 A partial enlarged schematic diagram of point C in the middle.
[0031] In the figure: 1, cabin; 2, motor body; 3, heat dissipation module; 31, filter assembly; 301, chassis; 302, tank; 303, air intake pipe; 304, duct; 305, filter plate; 306, motor; 307, disc one; 308, frame plate; 309, activated carbon plate; 310, disc two; 32, fan assembly; 321, long rod; 322, long tube; 323, Fan plate; 324, short tube; 325, strip plate; 4, anti-shake device; 41, shaft disc; 42, horizontal plate; 43, U-shaped frame; 44, rubber roller; 45, short rod; 46, double arc plate; 47, chamfered plate; 5, dehumidification device; 51, straight ring block; 52, inclined plate; 53, mesh cylinder; 54, calcium chloride column; 55, round rod; 56, ring block; 57, arc spring piece; 58, sliding hole plate. DETAILED DESCRIPTION
[0032] The technical solutions in the embodiments of the present invention will be described clearly and completely below in conjunction with the drawings in the embodiments of the present invention. Obviously, the described embodiments are only part of the embodiments of the present invention, rather than all the embodiments.
[0033] See also Figure 1-Figure 8 One embodiment of the present invention is: an air filter element structure for a wind turbine generator set, comprising a nacelle 1, a motor body 2 is fixedly installed at the bottom end of the nacelle 1, a heat dissipation module 3 is fixedly installed on the top surface of the motor body 2, and a pipe of the heat dissipation module 3 is fixedly connected to the top end of the nacelle 1;
[0034] A filter assembly 31 is provided at the top of the cabin 1. The filter assembly 31 includes a base frame 301. The base frame 301 is fixed to the bottom of the cabin 1. The base frame 301 is located on the right side of the motor body 2. A tank body 302 is fixedly installed on the top surface of the base frame 301. Three air inlet pipes 303 are passed through and fixed to the bottom of the right side of the tank body 302. One end of the three air inlet pipes 303 away from the tank body 302 passes through and is fixedly connected to the left side of the inner wall of the cabin 1. A conduit 304 is passed through and fixed to the top of the left side of the tank body 302. The conduit 304 is away from the tank body. One end of 302 is fixedly connected to the right side of the heat dissipation module 3, a filter plate 305 is fixedly installed on the top of the inner wall of the tank body 302, a motor 306 is fixedly installed on the bottom end of the bottom frame 301, the shaft of the motor 306 passes through and is rotatably installed on the top of the bottom frame 301, the shaft of the motor 306 passes through and is rotatably installed in the middle of the bottom surface of the tank body 302, a disc 307 is fixed on the top surface of the shaft of the motor 306, the bottom surface of the disc 307 is rotatably connected to the bottom end of the tank body 302, and the top surface of the disc 307 is fixed Four frame plates 308, the outer walls of the four frame plates 308 are provided with a plurality of air outlet holes, the inner walls of the four frame plates 308 are respectively fixed with four activated carbon plates 309, the top surfaces of the four frame plates 308 are fixed with disc 2 310, the top surface of disc 2 310 is rotatably connected with the bottom surface of the filter plate 305, the top surface of the filter plate 305 is provided with four arc-shaped notches, the inner walls of the four arc-shaped notches of the filter plate 305 are respectively fixed with four filter screens, the rotating shaft of the motor 306 drives the disc 1 307 to rotate forward, and the disc 1 307 drives the frame plate 308 to rotate forward. The frame plate 308 drives the activated carbon plate 309 to rotate forward. The activated carbon plate 309 contacts the air with a large area during the rotation. The activated carbon plate 309 rotates to filter impurities such as floating dust in the air. The purified air is discharged from the air outlet of the frame plate 308. The activated carbon plate 309 separates the floating dust and gas in the air during the rotation, so that the air does not carry floating dust into the cabin 1, and avoids the air filter element structure from carrying floating dust into the cabin 1 when the air filter element is in use, causing the motor body 2 in the cabin 1 to be easily corroded and damaged by the floating dust.
[0035] The top surface of the disc 1 307 is provided with a fan assembly 32, and the fan assembly 32 includes four long rods 321, and the four long rods 321 are fixed on the top surface of the disc 1 307, and the top surfaces of the four long rods 321 are fixedly connected to the bottom surface of the disc 2 310, and four long tubes 322 are respectively fixed in the middle of the outer walls of the four long rods 321, and fan plates 323 are respectively fixed on the outer walls of the four long tubes 322. When the fan plates 323 rotate forward, the fan plates 323 fan the gas in the tank body 302 to flow upward quickly, so that the air in the tank body 302 will not accumulate in the tank body 302, and avoid the air filter element from being blocked. When the structure is in use, a large amount of air accumulates in the tank body 302, resulting in poor air intake effect of the equipment. The fan assembly 32 also includes four short tubes 324, and the four short tubes 324 are respectively fixed to the bottom of the outer wall of the four long rods 321. The outer walls of the four short tubes 324 are respectively fixed with four strip plates 325. When the strip plates 325 are in the process of forward rotation, the strip plates 325 fan the air under the tank body 302 to prevent the air from accumulating under the tank body 302, thereby avoiding the air from accumulating under the tank body 302 when the air filter element structure is in use, making it difficult to discharge the air under the tank body 302.
[0036] During use, the operator starts the motor body 2 in the cabin 1, and the motor body 2 supports the heat dissipation module 3. The motor body 2 generates a large amount of heat during use, and the heat dissipation module 3 dissipates the heat for the motor body 2. As the air filter element structure is in the process of purifying the air, the floating dust in the air is easy to enter the cabin 1. At this time, the chassis 301 supports the tank body 302, and the operator starts the motor 306 on the chassis 301. The shaft of the motor 306 starts to rotate forward, and the shaft of the motor 306 drives the disc 1 307 to rotate forward, and the disc 1 307 drives the frame plate 308 to rotate forward, and the frame plate 308 drives the activated carbon plate 309 to rotate forward, and the frame plate 308 drives the disc 2 310 to rotate forward, and the disc 2 310 rotates under the filter disc 305. At the same time, the air enters the air inlet pipe 303, and the air inlet pipe 303 delivers the air into the tank body 302. The activated carbon plate 309 contacts with the air over a large area during the rotation process. The activated carbon plate 309 rotates to filter impurities such as floating dust in the air, and the purified air is discharged from the air outlet of the frame plate 308. At the same time, the purified air passes through the filter screen of the filter disc 305, and the purified air enters the top of the tank body 302. The purified air enters the duct 304, and the duct 304 transports the purified air to the heat dissipation module 3. The heat dissipation module 3 cools the motor body 2, so that the activated carbon plate 309 separates the floating dust and gas in the air during the rotation process, so that the air will not carry floating dust into the cabin 1, and prevent the air from carrying floating dust into the cabin 1 when the equipment is in use, thereby avoiding the problem that the motor body 2 in the cabin 1 is easily corroded and damaged by floating dust when the air filter element structure is in use.
[0037] When the rotating shaft of the motor 306 drives the disc 1 307 to rotate forward, the disc 1 307 drives the long rod 321 to rotate forward, the long rod 321 drives the long tube 322 to rotate forward, and the long tube 322 drives the fan plate 323 to rotate forward. During the forward rotation of the fan plate 323, the fan plate 323 fans the gas in the tank body 302 to flow upward rapidly, so that the air in the tank body 302 will not accumulate in the tank body 302, thereby preventing a large amount of air from accumulating in the tank body 302 when the equipment is in use, thereby avoiding the air filter element structure from accumulating in the tank body 302 when a large amount of air is used. To solve the problem of poor air intake effect of the equipment, while the disc 307 drives the long rod 321 to rotate forward, the long rod 321 also drives the short tube 324 to rotate forward, and the short tube 324 drives the strip plate 325 to rotate forward. During the process of the strip plate 325 rotating forward, the strip plate 325 fans the air under the tank body 302 to prevent the air from accumulating under the tank body 302, thereby preventing the air from accumulating under the tank body 302 when the equipment is in use, thereby avoiding the problem that the air filter element structure accumulates under the tank body 302 when it is in use, making it difficult to discharge the air under the tank body 302.
[0038] See also Figure 1-Figure 8 On the basis of the above embodiment, another embodiment of the present invention further includes an anti-shake device 4 and a dehumidification device 5, wherein an anti-shake device 4 is arranged in the middle of the top surface of the second disk 310, and the anti-shake device 4 includes a shaft disk 41, a horizontal plate 42, two U-shaped frames 43 and two rubber rollers 44, the shaft disk 41 is fixed in the middle of the top surface of the second disk 310, the bottom end of the shaft disk 41 penetrates and is rotatably connected to the top surface of the filter disk 305, the top surface of the shaft disk 41 is rotatably connected to the inner top of the tank body 302, the horizontal plate 42 is fixed to the bottom of the outer wall of the shaft disk 41, and the two U-shaped frames 43 are fixed to the horizontal plate 42. At both ends of the outer wall, two rubber rollers 44 are rotatably installed on the inner walls of the two U-shaped frames 43 respectively, and the cross plate 42 is located above the filter disc 305. The outer walls of the two rubber rollers 44 are in rolling contact with the inner wall of the tank body 302. The rubber rollers 44 roll on the wall surface of the tank body 302. Under the limitation of friction, the vibration of the second disc 310 during rotation is reduced, so that the frame plate 308 on the second disc 310 will not vibrate violently during rotation, thereby avoiding the frame plate 308 on the second disc 310 from vibrating violently during rotation when the air filter element structure is in use, causing the equipment to run unsmoothly.
[0039] The anti-shake device 4 also includes two short rods 45, two double-arc plates 46 and two chamfered plates 47. The two short rods 45 are fixed on the outer wall of the horizontal plate 42. The two double-arc plates 46 are respectively fixed on the ends of the two short rods 45 away from the horizontal plate 42. The two chamfered plates 47 are respectively fixed on the outer walls of the two double-arc plates 46. The chamfers of the two chamfered plates 47 are in sliding contact with the inner wall of the tank body 302. The double-arc plates 46 drive the chamfered plates 47 to rotate forward. During the forward rotation of the chamfered plates 47, the chamfers of the chamfered plates 47 scrape off impurities on the wall of the tank body 302, so that the wall of the tank body 302 remains clean, thereby preventing the rubber roller 44 from being easily corroded and damaged by impurities due to a large amount of impurities attached to the wall of the tank body 302 when the air filter element structure is in use.
[0040] The outer wall of the anti-shake device 4 is provided with a dehumidification device 5, which includes two straight ring blocks 51, an inclined plate 52, two mesh cylinders 53 and two calcium chloride columns 54. The two straight ring blocks 51 are respectively fixed on the outer walls of the two short rods 45, the inclined plate 52 is fixed on the top surfaces of the two straight ring blocks 51, the two mesh cylinders 53 are respectively fixedly installed on both sides of the top surfaces of the inclined plates 52, and the two calcium chloride columns 54 are respectively fixedly installed on the inner bottom ends of the two mesh cylinders 53. The inclined plate 52 is sleeved on the bottom of the outer wall of the shaft disc 41, and the mesh cylinder 53 drives the calcium chloride columns 54 to rotate forward. During the forward rotation of the calcium chloride columns 54, the calcium chloride columns 54 are in contact with the purified air, and the calcium chloride columns 54 absorb moisture in the air to avoid the air filter structure from being easily affected by moisture when the air contains high moisture in the air.
[0041] The dehumidifier 5 also includes two round rods 55, two ring blocks 56, two arc-shaped spring pieces 57 and two sliding holes 58. The two round rods 55 are respectively fixed on the top surface of the inclined plate 52, and the two round rods 55 are respectively located on the side where the two net cylinders 53 are close to each other. The two ring blocks 56 are respectively fixed on the outer walls of the two round rods 55, and the two arc-shaped spring pieces 57 are respectively fixed on the outer walls of the two ring blocks 56. The two sliding holes 58 are respectively slidably installed on the top of the outer walls of the two round rods 55. One end of the two arc-shaped spring pieces 57 away from the two ring blocks 56 is fixedly connected to the bottom surfaces of the two sliding holes 58. The two sliding holes 58 are respectively located on the top surfaces of the two net cylinders 53. Under the elastic force of the arc-shaped spring pieces 57, the sliding holes 58 are pressed against the top of the net cylinder 53 to reduce the shaking of the net cylinder 53 during rotation, so as to avoid the net cylinder 53 from shaking violently when the air filter element structure is in use, causing the calcium chloride column 54 in the net cylinder 53 to be damaged.
[0042] While the frame plate 308 drives the second disk 310 to rotate forward, the second disk 310 drives the shaft disk 41 to rotate forward, the shaft disk 41 drives the cross plate 42 to rotate forward, the cross plate 42 drives the U-shaped frame 43 to rotate forward, the U-shaped frame 43 drives the rubber roller 44 to rotate forward, and the rubber roller 44 rolls on the wall of the tank body 302. Under the limitation of friction, the vibration of the second disk 310 during rotation is reduced, so that the frame plate 308 on the second disk 310 will not vibrate violently during rotation, thereby preventing the frame plate 308 on the second disk 310 from vibrating violently during rotation when the equipment is in use, thereby avoiding the problem of the frame plate 308 on the second disk 310 vibrating violently during rotation when the air filter element structure is in use, causing the equipment to run unsmoothly.
[0043] While the shaft disc 41 drives the cross plate 42 to rotate forward, the cross plate 42 drives the short rod 45 to rotate forward, the short rod 45 drives the double arc plate 46 to rotate forward, and the double arc plate 46 drives the chamfer plate 47 to rotate forward. During the process of the chamfer plate 47 rotating forward, the chamfer of the chamfer plate 47 scrapes off impurities on the wall surface of the tank body 302, so that the wall surface of the tank body 302 remains clean, preventing a large amount of impurities from adhering to the wall surface of the tank body 302 when the equipment is in use, thereby avoiding the problem that a large amount of impurities are attached to the wall surface of the tank body 302 when the air filter element structure is in use, causing the rubber roller 44 to be easily corroded and damaged by impurities.
[0044] While the horizontal plate 42 drives the short rod 45 to rotate forward, the short rod 45 drives the straight ring block 51 to rotate forward, the straight ring block 51 drives the inclined plate 52 to rotate forward, the inclined plate 52 drives the mesh cylinder 53, and the mesh cylinder 53 drives the calcium chloride column 54 to rotate forward. During the forward rotation of the calcium chloride column 54, the calcium chloride column 54 comes into contact with the purified air, and the calcium chloride column 54 absorbs moisture in the air to prevent the air from containing high moisture when the equipment is in use, thereby avoiding the problem that the motor body 2 is easily affected by moisture when the air filter element structure is in use and the air contains high moisture.
[0045] While the straight ring block 51 drives the inclined plate 52 to rotate forward, the inclined plate 52 drives the round rod 55 to rotate forward, the round rod 55 drives the ring block 56 to rotate forward, the ring block 56 drives the arc-shaped spring piece 57 to rotate forward, and the arc-shaped spring piece 57 drives the sliding hole plate 58 to rotate forward. Under the elastic force of the arc-shaped spring piece 57, the sliding hole plate 58 abuts against the top of the mesh cylinder 53, reducing the shaking of the mesh cylinder 53 during rotation, preventing the mesh cylinder 53 from shaking violently when the equipment is in use, thereby avoiding the problem of the calcium chloride column 54 in the mesh cylinder 53 shaking and being damaged due to the violent shaking of the mesh cylinder 53 during rotation when the air filter element structure is in use.
[0046] The above description is only a preferred specific implementation manner of the present invention, but the protection scope of the present invention is not limited thereto. Any technician familiar with the technical field can make equivalent replacements or changes according to the technical scheme and inventive concept of the present invention within the technical scope disclosed by the present invention, which should be covered by the protection scope of the present invention.
Claims
1. An air filter element structure for a wind turbine generator set, comprising a nacelle (1), wherein a motor body (2) is fixedly mounted at the bottom of the nacelle (1), and characterized in that: A heat dissipation module (3) is fixedly mounted on the top surface of the motor body (2), and a filter assembly (31) is arranged at the top of the interior of the cabin (1); The filter assembly (31) comprises a base frame (301), the base frame (301) is fixed to the bottom end of the cabin (1), the base frame (301) is located on the right side of the motor body (2), a tank body (302) is fixedly mounted on the top surface of the base frame (301), three air intake pipes (303) are passed through and fixed to the bottom of the right side of the tank body (302), one end of the three air intake pipes (303) away from the tank body (302) passes through and is fixedly connected to the left side of the inner wall of the cabin (1), a conduit (304) is passed through and fixed to the top of the left side of the tank body (302), one end of the conduit (304) away from the tank body (302) is fixedly connected to the right side of the heat dissipation module (3), a filter disc (305) is fixedly mounted on the top of the inner wall of the tank body (302), a motor (306) is fixedly mounted on the bottom end of the base frame (301), and the The rotating shaft of the motor (306) passes through and is rotatably mounted on the top of the bottom frame (301). The rotating shaft of the motor (306) passes through and is rotatably mounted in the middle of the bottom surface of the tank body (302). A disc 1 (307) is fixed on the top surface of the rotating shaft of the motor (306). The bottom surface of the disc 1 (307) is rotatably connected to the bottom end of the tank body (302). Four frame plates (308) are fixed on the top surface of the disc 1 (307). The outer walls of the four frame plates (308) are each provided with a plurality of air outlet holes. Four activated carbon plates (309) are respectively fixedly mounted on the inner walls of the four frame plates (308). A disc 2 (310) is fixed on the top surface of the four frame plates (308). The top surface of the disc 2 (310) is rotatably connected to the bottom surface of the filter plate (305). The top surface of the disc 1 (307) is provided with a fan assembly (32). The fan assembly (32) comprises four long rods (321), the four long rods (321) are fixed on the top surface of the first disk (307), the top surfaces of the four long rods (321) are fixedly connected to the bottom surface of the second disk (310), four long tubes (322) are respectively fixed in the middle of the outer walls of the four long rods (321), and fan plates (323) are respectively fixed on the outer walls of the four long tubes (322); An anti-shake device (4) is arranged in the middle of the top surface of the second disk (310), and a dehumidification device (5) is arranged on the outer wall of the anti-shake device (4).
2. The air filter element structure for a wind turbine generator set according to claim 1, characterized in that: The fan assembly (32) further comprises four short tubes (324), wherein the four short tubes (324) are respectively fixed to the bottom of the outer walls of the four long rods (321), and four strip plates (325) are respectively fixed to the outer walls of the four short tubes (324).
3. The air filter element structure for a wind turbine generator set according to claim 2, characterized in that: The exhaust pipe of the heat dissipation module (3) is fixedly connected to the top of the interior of the cabin (1); the top surface of the filter plate (305) is provided with four arc-shaped notches; and the inner walls of the four arc-shaped notches of the filter plate (305) are respectively fixed with four filter screens.
4. The air filter element structure for a wind turbine generator set according to claim 3, characterized in that: The four long rods (321) are respectively located between the four frame plates (308), and the four strip plates (325) are respectively located below the four fan plates (323).
5. The air filter element structure for a wind turbine generator set according to claim 4, characterized in that: The anti-shake device (4) comprises an axial disc (41), a transverse plate (42), two U-shaped frames (43) and two rubber rollers (44); the axial disc (41) is fixed in the middle of the top surface of the second disc (310); the bottom end of the axial disc (41) penetrates and is rotatably connected to the top surface of the filter disc (305); the top surface of the axial disc (41) is rotatably connected to the top of the inner part of the tank body (302); the transverse plate (42) is fixed to the bottom of the outer wall of the axial disc (41); the two U-shaped frames (43) are fixed to the two ends of the outer wall of the transverse plate (42); and the two rubber rollers (44) are rotatably mounted on the inner walls of the two U-shaped frames (43) respectively.
6. The air filter element structure for a wind turbine generator set according to claim 5, characterized in that: The anti-shake device (4) further comprises two short rods (45), two double-arc plates (46) and two chamfered plates (47); the two short rods (45) are fixed on the outer wall of the horizontal plate (42); the two double-arc plates (46) are respectively fixed on one end of the two short rods (45) away from the horizontal plate (42); and the two chamfered plates (47) are respectively fixed on the outer walls of the two double-arc plates (46).
7. The air filter element structure for a wind turbine generator set according to claim 6, characterized in that: The transverse plate (42) is located above the filter disc (305), the outer walls of the two rubber rollers (44) are in rolling contact with the inner wall of the tank body (302), and the chamfers of the two chamfered plates (47) are in sliding contact with the inner wall of the tank body (302).
8. The air filter element structure for a wind turbine generator set according to claim 7, characterized in that: The dehumidification device (5) comprises two straight ring blocks (51), an inclined plate (52), two net cylinders (53) and two calcium chloride columns (54); the two straight ring blocks (51) are respectively fixed on the outer walls of two short rods (45); the inclined plate (52) is fixed on the top surfaces of the two straight ring blocks (51); the two net cylinders (53) are respectively fixedly mounted on both sides of the top surface of the inclined plate (52); and the two calcium chloride columns (54) are respectively fixedly mounted on the inner bottom ends of the two net cylinders (53).
9. The air filter element structure for a wind turbine generator set according to claim 8, characterized in that: The dehumidification device (5) further comprises two round rods (55), two ring blocks (56), two arc-shaped spring sheets (57) and two sliding hole plates (58); the two round rods (55) are respectively fixed on the top surface of the inclined plate (52); the two round rods (55) are respectively located on the side of the two net cylinders (53) close to each other; the two ring blocks (56) are respectively fixed on the outer walls of the two round rods (55); the two arc-shaped spring sheets (57) are respectively fixed on the outer walls of the two ring blocks (56); the two sliding hole plates (58) are respectively slidably mounted on the top of the outer walls of the two round rods (55); and the ends of the two arc-shaped spring sheets (57) away from the two ring blocks (56) are fixedly connected to the bottom surfaces of the two sliding hole plates (58).
10. The air filter element structure for a wind turbine generator set according to claim 9, characterized in that: The inclined plate (52) is sleeved on the bottom of the outer wall of the shaft disc (41), and the two sliding hole plates (58) are respectively located on the top surfaces of the two net cylinders (53).
Citation Information
Patent Citations
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