Safe filtering electric automation dust removal equipment

By combining the use of rotating, lifting, swinging, auxiliary, centrifugal, vibrating and reciprocating mechanisms, the problem of dust accumulation in the filter layer of the electrical dust removal equipment is solved, efficient cleaning and anti-clogging are achieved, and the equipment operation time is extended.

CN119656766BActive Publication Date: 2025-10-17SUZHOU BAISHENGRUI AUTOMATION EQUIP CO LTD
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Patent Information

Application Number
CN202411354279.3
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2024-09-27
Publication Date
2025-10-17
Estimated Expiration
2044-09-27

AI Technical Summary

Technical Problem

Existing electrostatic precipitators are prone to local dust accumulation during pulse cleaning of the filter layer, which affects dust removal efficiency and causes clogging of the filter layer.

Method used

It adopts a combined design of rotating mechanism, lifting mechanism, swing mechanism, auxiliary mechanism, centrifugal mechanism, vibration mechanism and reciprocating mechanism, and realizes efficient cleaning of the filter layer through the synergistic effect of gas flow and mechanical vibration.

Benefits of technology

It effectively prevents dust from accumulating on the surface of the filter layer, keeps the dust collector in good working condition, extends the continuous operation time of the equipment, improves dust removal efficiency and reduces wear of the filter layer.

✦ Generated by Eureka AI based on patent content.

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Abstract

The application relates to the technical field of automatic dust removal equipment, and discloses a safe and filtered electric automatic dust removal equipment, which comprises a main body, a partition plate fixedly connected in the main body, an adsorption pump fixedly connected to the top of the partition plate, an outlet bin fixedly connected to the bottom of the main body, a rotating ring arranged at the end of the partition plate away from the adsorption pump, a connecting disc rotatably connected to the outer surface of the rotating ring, and the end of the connecting disc close to the adsorption pump is bolted to the partition plate. The spiral structure in the arc-shaped lamina can guide the gas sprayed through the hollow ring, so that the gas forms a downward spiral flow mode when being sprayed, dust on the surface of the filter layer is sprayed and cleaned downward, stronger impact force and downward traction force can be generated on the dust on the surface of the dust remover, the dust can be more effectively cleaned, accumulation of the dust on the surface of the dust remover is avoided, and the filter layer is prevented from being blocked.
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Description

TECHNICAL FIELD

[0001] The present application relates to the technical field of automatic dust removal equipment, in particular to a safe and filtered electric automatic dust removal equipment. BACKGROUND

[0002] The electric dust removal equipment refers to removing the pollutants such as particles, harmful air and bacteria in the air in a certain space range, and controlling the temperature, cleanliness, indoor pressure, air flow velocity and distribution, noise vibration and lighting, and static electricity in a certain required range.

[0003] Generally, under the long-time work of the dust removal equipment, the surface of the internal dust removal device will appear dust pushing. Generally, the existing device cleans the dust removal device by the pulse dust cleaning method. Since there is a time difference after the pulse cleaning method is cleaned, since the outlet of the pulse nozzle is basically above the inside of the filter layer, and when the filter layer is cleaned by the pulse cleaning method, the filter layer is cleaned, the filter layer is easily partially dusty and not completely cleaned after cleaning, and the dust is easily accumulated in the filter layer and gradually blocked in the time difference after cleaning, which affects the dust removal efficiency. SUMMARY

[0004] The purpose of the present application is to provide a safe and filtered electric automatic dust removal equipment to solve the problems in the background art.

[0005] To solve the above technical problems, the present application is realized by the following technical scheme:

[0006] The present application is a safe and filtered electric automatic dust removal equipment, which comprises a main body, a partition plate fixedly connected inside the main body, an adsorption pump fixedly connected to the top of the partition plate, an outlet bin fixedly connected to the bottom of the main body, a rotating ring provided at one end of the partition plate away from the adsorption pump, a connecting disc rotatably connected to the outer surface of the rotating ring, the connecting disc being bolted to the partition plate at one end close to the adsorption pump, a filter layer fixedly connected to the end of the connecting disc away from the adsorption pump, an air inlet provided on the right side of the main body, an air outlet provided on the side wall of the main body, the air outlet being in communication with the outlet of the adsorption pump, and further comprising:

[0007] The rotating mechanism comprises a gear disc bolted to one side of the filter layer away from the adsorption pump, a rotating disc rotatably connected to the bottom of the gear disc, a fan shaft fixedly connected to the top of the rotating disc, the fan shaft extending to the inside of the filter layer through the top outer wall of the gear disc at one end away from the rotating disc, a rotating ring two rotatably connected to one side of the gear disc away from the rotating disc, a plurality of telescopic rods fixedly connected to one side of the rotating ring two away from the gear disc, and the plurality of telescopic rods being arranged in a circular array with the filter layer as the center.

[0008] The lifting mechanism comprises a plurality of air injection pipes fixedly connected to one side of the rotating ring 2 close to the telescopic rods, and a hollow ring fixedly connected to the ends of the air injection pipes away from the rotating ring 2, wherein the air injection pipes and the hollow ring are in communication, the inner wall of the hollow ring is in an open state, the inner wall of the side of the hollow ring close to the filter layer is provided with an annular wavy groove, and the side of the hollow ring close to the air injection pipe is fixedly connected with the telescopic rods.

[0009] Further, the side of the hollow ring close to the air injection pipe is fixedly connected with a plurality of bidirectional threaded sleeves, the inside of the bidirectional threaded sleeve is rotatably connected with a telescopic tooth rod, the end of the telescopic tooth rod away from the bidirectional threaded sleeve is rotatably connected with the rotating disc, the end of the telescopic tooth rod away from the rotating disc penetrates to the inner wall of the bottom of the hollow ring and extends to the inside, the top of the hollow ring is fixedly connected with a plurality of air inlet pipes, the end of the air inlet pipe away from the hollow ring penetrates to the side wall of the rotating ring and extends to the inside, the hollow ring and the air inlet pipe are in communication, the outer surface of the telescopic tooth rod is fixedly connected with a short rod, and the short rod is slidably connected in the inside of the bidirectional threaded sleeve.

[0010] Further, the inside of the hollow ring is provided with an oscillating mechanism, the oscillating mechanism comprises a second toothed disc rotatably connected to the inner wall of the top of the hollow ring, the outer surface of the second toothed disc is in meshing connection with the extended end of the telescopic tooth rod, the inside of the second toothed disc is rotatably connected with a plurality of arc-shaped lamella, the outer surface of the arc-shaped lamella is provided with a plurality of circular holes, the side of the arc-shaped lamella away from the second toothed disc is in a spiral shape, the side of the arc-shaped lamella away from the second toothed disc is rotatably connected with a connecting rod, the end of the connecting rod away from the arc-shaped lamella is rotatably connected with a rotating block, and the side wall of the rotating block is slidably connected in the inside of the annular wavy groove.

[0011] Further, the side wall of the hollow ring is provided with an auxiliary mechanism, the auxiliary mechanism comprises a plurality of rotating shafts rotatably connected to the inner wall of the bottom of the hollow ring, the side of the rotating shaft close to the second toothed disc is in contact with the side wall of the second toothed disc, the end of the rotating shaft away from the second toothed disc penetrates to the outer wall of the hollow ring and extends to the outside, the outer surface of the extended end of the rotating shaft is fixedly connected with a hollow cylinder, the inner wall of the hollow cylinder is provided with an inclined groove, the outer surface of the rotating shaft in the inside of the hollow cylinder is rotatably connected with an intermediate shaft, the bottom of the intermediate shaft is fixedly connected with a fan ring, the end of the rotating shaft away from the second toothed disc is fixedly connected with a conical spiral cylinder, and the outer surface of the hollow cylinder is provided with a right-angle groove.

[0012] Further, the inside of the hollow cylinder is provided with a centrifugal mechanism, the centrifugal mechanism comprises a limiting frame rotatably connected to the outer surface of the fan ring, the top of the limiting frame is fixedly connected with the bottom of the hollow ring, and the side of the limiting frame close to the hollow cylinder is fixedly connected with two hollow plates.

[0013] Further, the two hollow plates are symmetrically distributed with the intermediate shaft as the center, the inside of the hollow plate is slidably connected with a sliding rod, the end of the sliding rod close to the hollow cylinder is slidably connected in the inside of the inclined groove, and the end of the sliding rod away from the hollow cylinder is slidably connected in the inside of the right-angle groove.

[0014] Further, the top of the hollow ring is provided with a vibration mechanism, the vibration mechanism comprises a C-shaped frame fixedly connected to the outer wall of the top of the hollow ring, a rectangular groove is formed in the side of the C-shaped frame close to the filter layer, L-shaped rods are rotatably connected to the inner walls of the left side and the right side of the C-shaped frame, a diagonal rod is fixedly connected between the two L-shaped rods, the right side L-shaped rod penetrates through the outer wall of the C-shaped frame and extends to the outside at the end away from the diagonal rod, a worm wheel is fixedly connected to the extending end of the L-shaped rod, a worm is meshingly connected to the outer surface of the worm wheel, the bottom of the worm penetrates through the top inner wall of the hollow ring and extends to the outside, an auxiliary gear is fixedly connected to the extending end of the worm, the auxiliary gear is meshingly connected with the second toothed disc, and a T-shaped sliding rod is rotatably connected to the outer surface of the diagonal rod.

[0015] Further, the top of the C-shaped frame is provided with a reciprocating mechanism, the reciprocating mechanism comprises a movable plate rotatably connected to the outer wall of the top of the C-shaped frame, springs are fixedly connected to the side wall of the C-shaped frame, the springs are fixedly connected to the side wall of the C-shaped frame, an arc-shaped plate is rotatably connected to the end of the movable plate away from the C-shaped frame, a T-shaped plate is arranged on the side wall of the arc-shaped plate, the T-shaped plate is in an inclined state, the T-shaped plate is fixedly connected to the side wall of the C-shaped frame, a sliding frame is arranged at the end of the arc-shaped plate away from the movable plate, the sliding frame is slidingly connected in the rectangular groove, a bidirectional screw groove is formed in the inside of the sliding frame, the end of the sliding frame close to the T-shaped sliding rod is rotatably connected with the T-shaped sliding rod, a protruding rod is slidingly connected in the inside of the sliding frame, a plug rod is fixedly connected to the outer surface of the protruding rod, the plug rod is slidingly connected in the bidirectional screw groove, an L-shaped plate is rotatably connected to the end of the protruding rod close to the arc-shaped plate, the side wall of the L-shaped plate is rotatably connected with the arc-shaped plate, and a rubber block is fixedly connected to the outer surface of the protruding rod.

[0016] The present application has the following advantages:

[0017] 1. The application, when the adsorption pump is working and strong adsorption force is generated inside the filter layer, external gas will quickly enter the inside of the filter layer under the condition of adsorption force, when the gas enters the inside of the filter layer at a faster flow rate, the gas will impact the surface of the fan shaft, and then under the continuous entry of the gas, the fan shaft will drive the rotating disc to rotate, at the same time, when the rapidly flowing gas flows upwards in the inside of the filter layer, the gas will enter the hollow ring through the rotating ring two, and part of the gas will enter the jet pipe, then when the rotating disc is driven by the fan shaft to rotate, the rotation of the rotating disc will drive the hollow ring to rotate synchronously through the telescopic tooth rod, and the hollow ring will drive the rotating ring two and the jet pipe to rotate synchronously through the telescopic rod when rotating, at this time, when the rotating disc drives the telescopic tooth rod to rotate, the telescopic tooth rod will be in contact with the teeth on the surface of the tooth disc when rotating with the rotating disc, then when the rotating disc rotates, the telescopic tooth rod will appear self-rotation on the rotating disc, when the telescopic tooth rod rotates, the surface of the short rod will rotate in the inside of the double -screw thread sleeve, when the telescopic tooth rod rotates, the double -screw thread sleeve can drive the hollow ring to slide up and down, when the hollow ring slides down, the jet pipe will be in a relaxed state, then when the gas enters the jet pipe, the surface of the filter layer will be sprayed and cleaned through the jet pipe, then when the telescopic tooth rod rotates, the rotation of the telescopic tooth rod will drive the tooth disc two to rotate synchronously, and the tooth disc two will drive the arc-shaped lamella to rotate synchronously when rotating, when the arc-shaped lamella rotates, the connecting rod will drive the rotating block to slide up and down in the inside of the annular wave trough, at this time, the up and down sliding of the rotating block can drive the arc-shaped lamella to rotate back and forth on the inner wall of the tooth disc two through the connecting rod, then when the arc-shaped lamella rotates under the rotation of the tooth disc two, the spiral structure in the arc-shaped lamella can guide the gas sprayed through the hollow ring, so that the gas will form a downward spiral flow when sprayed, and the dust on the surface of the filter layer will be sprayed and cleaned downwards, which can produce stronger impact force and downward traction on the dust on the surface of the dust collector, and the dust can be more effectively cleaned, avoiding the accumulation of dust on the surface of the dust collector and preventing the filter layer from being blocked.

[0018] 2. According to the present invention, when the telescopic gear rod drives the hollow ring to rotate, the rotating hollow ring will drive multiple rotating shafts and the limit frame to rotate synchronously. When the hollow ring drives the rotating shaft to rotate, the rotating shaft will rotate and contact the side wall of the gear plate 2, and through the friction force, when the jet pipe drives the rotating shaft to rotate, the rotating shaft is rotated. When the rotating shaft rotates, it will drive the conical spiral cylinder and the conical spiral cylinder to rotate synchronously. At the same time, when the hollow cylinder rotates, the rotation of the hollow cylinder will drive the sliding rod to move back and forth inside the hollow plate through the inclined groove. When the sliding rod moves, the moving sliding rod will generate lateral force in the right-angle groove on the surface of the intermediate shaft and drive the intermediate shaft to rotate in the opposite direction to the intermediate shaft on the surface of the rotating shaft. Then, when the intermediate shaft rotates, the rotating intermediate shaft will drive the fan ring to rotate on the conical spiral cylinder. The interior of the spiral drum rotates synchronously, and the fan ring forms an adsorption force at the top when rotating, and adsorbs the dust cleaned from the outside into the conical spiral drum. The dust is blown downward under the rotation of the fan ring. When the dust is blown into the inside of the conical spiral drum, the dust is thrown to the inner wall under the rotation of the conical spiral drum and the action of centrifugal force, thereby realizing gas-solid separation. After that, the fan ring blows air downward inside the conical spiral drum, which not only blows the separated dust particles downward to prevent them from flying back into the air, but also forms a downward airflow, which helps to suppress the flying of other dust particles that are not completely separated, reduces the secondary flying of dust, and reduces the dust from flowing back to the surface of the filter layer during cleaning, helps to maintain the good working condition of the equipment and extend the continuous operation time of the equipment.

[0019] When the worm gear rotates, the L rod drives the inclined rod to rotate, and the inclined rod drives the T-shaped sliding rod to rotate back and forth left and right. When the T-shaped sliding rod rotates, the rotation of the T-shaped sliding rod drives the raised rod to rotate synchronously through the sliding frame. When the sliding frame drives the raised rod to rotate, the rotation of the raised rod will slide on the surface of the filter layer. Since the surface of the filter layer is in a folded structure, when the raised rod rotates, the rubber block on the raised rod will slide on the surface of the filter layer and generate a vibration force on the surface of the filter layer when sliding. This vibration can loosen or fall off the dust on the filter layer, effectively improving the cleaning effect of the filter layer, avoiding excessive accumulation of dust on the filter layer, maintaining good air permeability and filtering performance of the filter layer, and further enhancing the cleaning effect of the jet pipe.

[0020] 4、The application, when the rotation of the inclined rod drives the T-shaped sliding rod to rotate to the left, the rotation of the T-shaped sliding rod will drive the sliding frame to slide to the left inside the rectangular groove, when the sliding frame slides to the left, the sliding frame will drive the protruding rod to slide synchronously, the protruding rod will pull the arc-shaped plate through the L-shaped plate when sliding, when the arc-shaped plate is pulled, it will move to the left synchronously, when the arc-shaped plate moves to the left, it will press the T-shaped plate on the C-shaped frame, since the T-shaped plate is in an inclined state, when the arc-shaped plate presses the T-shaped plate, the reaction force generated by the T-shaped plate will push the arc-shaped plate to rotate the end connected with the movable plate, when the arc-shaped plate rotates, it will pull the L-shaped plate and the protruding rod to move backward, the protruding rod will drive the protruding rod to rotate in the bidirectional screw groove inside the sliding frame through the surface of the inserting rod, the protruding rod will drive the rubber block to rotate synchronously when rotating, the rubber block can reduce the case of continuous contact between the surface of the rubber block and the surface of the filter layer when rotating, reduce the wear of the rubber block, and also reduce the case that the rubber block causes wear to the surface of the filter layer when moving, reduce the possibility of damage to the surface of the filter layer, and improve the dust removal efficiency.

[0021] Of course, implementing any product of the present application does not necessarily require all the advantages described above. BRIEF DESCRIPTION OF DRAWINGS

[0022] In order to more clearly illustrate the technical solutions of the embodiments of the present application, the following will briefly introduce the drawings needed to be used in the embodiment description. Obviously, the drawings in the following description are only some embodiments of the present application, and other drawings can also be obtained by those skilled in the art without creative labor.

[0023] Figure 1 It is a schematic diagram of the overall structure of the present application;

[0024] Figure 2 It is a schematic diagram of the overall partial cross-sectional structure of the present application;

[0025] Figure 3 It is a schematic diagram of the overall internal parts of the present application;

[0026] Figure 4 It is a schematic diagram of the rotating mechanism structure of the present application;

[0027] Figure 5 It is a schematic diagram of the elevating mechanism bottom view structure of the present application;

[0028] Figure 6 It is a schematic diagram of the rotating mechanism bottom view structure of the present application;

[0029] Figure 7 It is an enlarged view of A in the present application Figure 6

[0030] ​Figure 8 Structure diagram of auxiliary mechanism of the application;

[0031] Figure 9 Exploded view of centrifugal mechanism of the application;

[0032] Figure 10 Partial exploded view of vibration mechanism of the application

[0033] In the drawings, the components represented by each reference numeral are listed as follows:

[0034] In the drawings, 1 is the main body, 101 is the partition plate, 102 is the adsorption pump, 103 is the outlet bin, 104 is the connecting disc, 105 is the rotating ring, 106 is the filter layer, 2 is the rotating mechanism, 201 is the gear disc, 202 is the rotating disc, 203 is the fan shaft, 204 is the telescopic rod, 205 is the rotating ring two, 3 is the lifting mechanism, 301 is the air jet pipe, 302 is the hollow ring, 303 is the telescopic gear rod, 304 is the two-way threaded sleeve, 305 is the air inlet pipe, 4 is the swinging mechanism, 401 is the gear disc two, 402 is the arc-shaped lamella, 403 is the connecting rod, 404 is the rotating block, 5 is the auxiliary mechanism, 501 is the rotating shaft, 502 is the hollow cylinder, 503 is the intermediate shaft, 504 is the fan ring, 505 is the conical spiral cylinder, 6 is the centrifugal mechanism, 601 is the limiting frame, 602 is the hollow plate, 603 is the sliding rod, 7 is the vibration mechanism, 701 is the C-shaped frame, 702 is the L-shaped rod, 703 is the inclined rod, 704 is the worm, 705 is the T-shaped sliding rod, 8 is the reciprocating mechanism, 801 is the movable plate, 802 is the arc-shaped plate, 803 is the sliding frame, 804 is the protruding rod. DETAILED DESCRIPTION

[0035] The technical solutions in the embodiments of the application will be clearly and completely described below with reference to the drawings in the embodiments of the application. Obviously, the described embodiments are only part of the embodiments of the application, rather than all the embodiments of the application. Based on the embodiments in the application, all other embodiments obtained by those skilled in the art without creative work fall within the protection scope of the application.

[0036] Please refer to Figures 1-10As shown, the present application is a safe filtering electrical automation dust removal equipment, including the main body 1, the inside fixed connection of main body 1 is connected with the baffle 101, the top of baffle 101 is fixedly connected with adsorption pump 102, the bottom of main body 1 is fixedly connected with outlet bin 103, the end away from adsorption pump 102 of baffle 101 is provided with rotating ring 105, the outer surface of rotating ring 105 is rotatably connected with connecting disc 104, the end close to adsorption pump 102 of connecting disc 104 is bolted with baffle 101, the end away from adsorption pump 102 of connecting disc 104 is fixedly connected with filter layer 106, the right side of main body 1 is provided with air inlet, the sidewall of main body 1 is provided with air outlet, the air outlet is in communication with the outlet of adsorption pump 102, further comprising;

[0037] Rotating mechanism 2, rotating mechanism 2 includes the gear disc 201 bolted on the side of filter layer 106 away from adsorption pump 102, the bottom of gear disc 201 is rotatably connected with rotating disc 202, the top of rotating disc 202 is fixedly connected with fan shaft 203, the end away from rotating disc 202 of fan shaft 203 penetrates to the top outer wall of gear disc 201 and extends to the inside of filter layer 106, the side away from gear disc 201 of rotating ring two 205 is rotatably connected with rotating ring two 205, the side away from gear disc 201 of rotating ring two 205 is fixedly connected with a plurality of telescopic rods 204, a plurality of telescopic rods 204 are arranged in a circular array with filter layer 106 as the center;

[0038] Lifting mechanism 3, lifting mechanism 3 includes a plurality of jet pipes 301 fixedly connected on the side of rotating ring two 205 close to telescopic rod 204, the end away from rotating ring two 205 of a plurality of jet pipes 301 is fixedly connected with hollow ring 302, jet pipe 301 is in communication with hollow ring 302, the inner wall of hollow ring 302 is in open setting, the side inner wall close to filter layer 106 of hollow ring 302 is provided with annular wave groove, the side close to jet pipe 301 of hollow ring 302 is fixedly connected with a plurality of telescopic rods 204, first, fan shaft 203 is inserted into the inside of filter layer 106, then gear disc 201 is connected with the bottom of filter layer 106 by bolt with rotating disc 202, then rotating ring 105 is connected with baffle 101 by bolt, then the collecting box for collecting dust is inserted through the sidewall of main body 1 and is located at the bottom of outlet bin 103, then the air outlet is connected with the external pipeline and the adsorption pump 102 is started, the strong adsorption force generated by adsorption pump 102 when working will adsorb the external gas containing dust into the inside of main body 1 through the air inlet on the sidewall of main body 1, then the gas containing dust is sucked into the inside of main body 1, then the dust in the gas is blocked on the surface of filter layer 106, then the filtered gas enters the inside of filter layer 106, then the gas is discharged outward through the air outlet of adsorption pump 102 under the adsorption force generated by adsorption pump 102.

[0039] The hollow ring 302 is fixedly connected with a plurality of two-way threaded sleeves 304 near one side of the air jet pipe 301, the two-way threaded sleeves 304 are rotatably connected with telescopic tooth rods 303, one end of the telescopic tooth rods 303 away from the two-way threaded sleeves 304 is rotatably connected with the rotating disc 202, the other end of the telescopic tooth rods 303 away from the rotating disc 202 penetrates to the bottom inner wall of the hollow ring 302 and extends to the inside, a plurality of air inlet pipes 305 are fixedly connected to the top of the hollow ring 302, one end of the air inlet pipes 305 away from the hollow ring 302 penetrates to the side wall of the rotating ring 105 and extends to the inside, the hollow ring 302 and the air inlet pipes 305 are in communication, short rods are fixedly connected to the outer surfaces of the telescopic tooth rods 303, the short rods are slidably connected in the two-way threaded sleeves 304, when the telescopic tooth rods 303 rotate, the short rods on the surfaces of the telescopic tooth rods 303 rotate in the two-way threaded sleeves 304, when the telescopic tooth rods 303 rotate, the short rods on the surfaces of the telescopic tooth rods 303 rotate in the two-way threaded sleeves 304.

[0040] The inside of the hollow ring 302 is provided with an oscillating mechanism 4, the oscillating mechanism 4 comprises a tooth disc two 401 rotatably connected to the top inner wall of the hollow ring 302, the outer surface of the tooth disc two 401 is engagedly connected with the extended end of the telescopic tooth rod 303, a plurality of arc-shaped lamella 402 are rotatably connected in the inside of the tooth disc two 401, a plurality of circular holes are formed in the outer surface of the arc-shaped lamella 402, the side away from the tooth disc two 401 of the arc-shaped lamella 402 is helical, a connecting rod 403 is rotatably connected to the side away from the tooth disc two 401 of the arc-shaped lamella 402, a rotating block 404 is rotatably connected to one end of the connecting rod 403 away from the arc-shaped lamella 402, the side wall of the rotating block 404 is slidably connected in the inside of the annular wave groove, when the telescopic tooth rod 303 rotates, the rotation of the telescopic tooth rod 303 drives the tooth disc two 401 to rotate synchronously, when the tooth disc two 401 rotates, the tooth disc two 401 drives the arc-shaped lamella 402 to rotate synchronously, when the arc-shaped lamella 402 rotates, the arc-shaped lamella 402 drives the rotating block 404 to slide up and down in the inside of the annular wave groove through the connecting rod 403, at this time, the up and down sliding of the rotating block 404 can drive the arc-shaped lamella 402 to rotate back and forth on the inner wall of the tooth disc two 401 through the connecting rod 403.

[0041] The side wall of the hollow ring 302 is provided with an auxiliary mechanism 5, which comprises a plurality of rotating shafts 501 rotatably connected to the inner wall of the bottom of the hollow ring 302, the rotating shaft 501 is in contact with the side wall of the gear disc two 401 on the side close to the gear disc two 401, the end of the rotating shaft 501 away from the gear disc two 401 penetrates to the outer wall of the hollow ring 302 and extends to the outside, the outer surface of the extension end of the rotating shaft 501 is fixedly connected with a hollow cylinder 502, the inner wall of the hollow cylinder 502 is provided with an inclined groove, the outer surface of the rotating shaft 501 in the hollow cylinder 502 is rotatably connected with an intermediate shaft 503, the bottom of the intermediate shaft 503 is fixedly connected with a fan ring 504, the end of the rotating shaft 501 away from the gear disc two 401 is fixedly connected with a conical spiral cylinder 505, the outer surface of the hollow cylinder 502 is provided with a right angle groove, the rotating hollow ring 302 will drive the plurality of rotating shafts 501 and the limiting frame 601 to rotate synchronously, when the hollow ring 302 drives the rotating shaft 501 to rotate, the rotating shaft 501 will rotate and contact with the side wall of the gear disc two 401, and through the friction force when the rotating shaft 501 is driven to rotate by the jet pipe 301, the rotating shaft 501 is driven to rotate, when the rotating shaft 501 rotates, the conical spiral cylinder 505 and the conical spiral cylinder 505 rotate synchronously.

[0042] The inside of the hollow cylinder 502 is provided with a centrifugal mechanism 6, which comprises a limiting frame 601 rotatably connected to the outer surface of the fan ring 504, the top of the limiting frame 601 is fixedly connected with the bottom of the hollow ring 302, the side of the limiting frame 601 close to the hollow cylinder 502 is fixedly connected with two hollow plates 602, the rotating hollow ring 302 will drive the plurality of rotating shafts 501 and the limiting frame 601 to rotate synchronously.

[0043] The two hollow plates 602 are symmetrically distributed with the intermediate shaft 503 as the center, the inside of the hollow plate 602 is slidably connected with a slide rod 603, the end of the slide rod 603 close to the hollow cylinder 502 is slidably connected in the inside of the inclined groove, the end of the slide rod 603 away from the hollow cylinder 502 is slidably connected in the inside of the right angle groove, the rotation of the hollow cylinder 502 will drive the slide rod 603 to reciprocate in the inside of the hollow plate 602 through the inclined groove, when the slide rod 603 moves, the moving slide rod 603 will generate a lateral force in the right angle groove on the surface of the intermediate shaft 503 and drive the intermediate shaft 503 to rotate in the opposite direction on the surface of the rotating shaft 501.

[0044] The top of the hollow ring 302 is provided with a vibration mechanism 7, which comprises a C-shaped frame 701 fixedly connected to the outer wall of the top of the hollow ring 302, a rectangular slot is formed in the side of the C-shaped frame 701 close to the filter layer 106, L-shaped rods 702 are rotatably connected to the inner walls of the left side and the right side of the C-shaped frame 701, an inclined rod 703 is fixedly connected between the two L-shaped rods 702, one end of the right L-shaped rod 702 away from the inclined rod 703 penetrates through the outer wall of the C-shaped frame 701 and extends to the outside, a worm gear is fixedly connected to the extending end of the L-shaped rod 702, a worm 704 is meshingly connected to the outer surface of the worm gear, the bottom of the worm 704 penetrates through the top inner wall of the hollow ring 302 and extends to the outside, an auxiliary gear is fixedly connected to the extending end of the worm 704, the auxiliary gear is meshingly connected with the second toothed disc 401, and a T-shaped sliding rod 705 is rotatably connected to the outer surface of the inclined rod 703; when the rotation of the telescopic toothed rod 303 drives the second toothed disc 401 to rotate synchronously, the rotation of the second toothed disc 401 drives the worm 704 to rotate synchronously, and the rotation of the worm 704 drives the inclined rod 703 to rotate through the L-shaped rod 702, and the rotation of the inclined rod 703 drives the T-shaped sliding rod 705 to rotate left and right.

[0045] The top of the C-shaped frame 701 is provided with a reciprocating mechanism 8, which comprises a movable plate 801 rotatably connected to the top outer wall of the C-shaped frame 701, a spring is fixedly connected to the side wall of the C-shaped frame 701, the spring is fixedly connected to the side wall of the C-shaped frame 701, an arc-shaped plate 802 is rotatably connected to one end of the movable plate 801 away from the C-shaped frame 701, a T-shaped plate is arranged on the side wall of the arc-shaped plate 802, the T-shaped plate is in an inclined state, the T-shaped plate is fixedly connected to the side wall of the C-shaped frame 701, a sliding frame 803 is arranged at one end of the arc-shaped plate 802 away from the movable plate 801, the sliding frame 803 is slidingly connected in the rectangular slot, a bidirectional threaded slot is formed in the inside of the sliding frame 803, one end of the sliding frame 803 close to the T-shaped sliding rod 705 is rotatably connected with the T-shaped sliding rod 705, a protruding rod 804 is slidingly connected in the inside of the sliding frame 803, an insertion rod is fixedly connected to the outer surface of the protruding rod 804, the insertion rod is slidingly connected in the bidirectional threaded slot, an L-shaped plate is rotatably connected to one end of the protruding rod 804 close to the arc-shaped plate 802, the side wall of the L-shaped plate is rotatably connected with the arc-shaped plate 802, a rubber block is fixedly connected to the outer surface of the protruding rod 804; when the rotation of the inclined rod 703 drives the T-shaped sliding rod 705 to rotate left, the rotation of the T-shaped sliding rod 705 drives the sliding frame 803 to slide left in the rectangular slot; when the sliding frame 803 slides left, the sliding frame 803 drives the protruding rod 804 to slide synchronously, and the protruding rod 804 pulls and stretches the arc-shaped plate 802 through the L-shaped plate when sliding.

[0046] When in use, first pass the fan shaft 203 into the interior of the filter layer 106, then connect the gear disc 201 together with the rotating disc 202 to the bottom of the filter layer 106 by bolts, then connect the rotating ring 105 to the partition 101 by bolts, then pass the dust collection box through the side wall of the main body 1 and be at the bottom of the outlet bin 103, then connect the air outlet to the external pipe and start the adsorption pump 102. The strong adsorption force generated by the adsorption pump 102 during operation will adsorb the external dust-containing gas into the interior of the main body 1 through the air inlet on the side wall of the main body 1, and then the dust-containing gas sucked in will contact the filter layer 106. At this time, the dust inside the gas will be blocked on the surface of the filter layer 106, and then the filtered gas will enter the interior of the filter layer 106, and then be discharged outward through the air outlet of the adsorption pump 102 under the adsorption force generated by the adsorption pump 102.

[0047] When the adsorption pump 102 is working and strong adsorption force is generated inside the filter layer 106, the external gas will quickly enter the inside of the filter layer 106 under the condition of adsorption force. When the gas enters the inside of the filter layer 106 at a faster flow rate, the gas will impact the surface of the fan shaft 203, and then the fan shaft 203 will be driven to rotate under the continuous entry of the gas. When the fan shaft 203 rotates, it will drive the rotating disc 202 to rotate. At the same time, when the rapidly flowing gas flows upwards in the inside of the filter layer 106, the gas will enter the hollow ring 302 through the rotating ring two 205, and part of the gas will also enter the jet pipe 301. Then, when the fan shaft 203 drives the rotating disc 202 to rotate, the rotation of the rotating disc 202 will drive the hollow ring 302 to rotate synchronously through the telescopic tooth rod 303. When the hollow ring 302 rotates, it will drive the rotating ring two 205 and the jet pipe 301 to rotate synchronously through the telescopic rod 204. At this time, when the rotating disc 202 drives the telescopic tooth rod 303 to rotate, the telescopic tooth rod 303 will be in contact with the teeth on the surface of the tooth disc 201 while rotating with the rotating disc 202. Then, when the rotating disc 202 rotates, the telescopic tooth rod 303 will appear to rotate on the rotating disc 202. When the telescopic tooth rod 303 rotates, the short rod on its surface will rotate in the inside of the double -screw thread sleeve 304. When the telescopic tooth rod 303 rotates, the rotation of the short rod on its surface in the inside of the double -screw thread sleeve 304 can drive the hollow ring 302 to slide up and down through the double -screw thread sleeve 304. When the hollow ring 302 slides down, it will make the jet pipe 301 in a relaxed state. Then, when the gas enters the jet pipe 301, it will spray and clean the surface of the filter layer 106 through the jet pipe 301. Then, when the telescopic tooth rod 303 rotates, the rotation of the telescopic tooth rod 303 will drive the tooth disc two 401 to rotate synchronously. When the tooth disc two 401 rotates, it will drive the arc-shaped lamella 402 to rotate synchronously. When the arc-shaped lamella 402 rotates, it will drive the rotating block 404 to slide up and down in the inside of the annular wave trough through the connecting rod 403. At this time, the up and down sliding of the rotating block 404 can drive the arc-shaped lamella 402 to rotate back and forth on the inner wall of the tooth disc two 401 through the connecting rod 403. Then, when the rotation of the tooth disc two 401 drives the arc-shaped lamella 402 to rotate, the spiral structure in the arc-shaped lamella 402 can guide the gas sprayed through the hollow ring 302. When the gas is sprayed, it will form a downward spiral flow mode and flow, and the dust on the surface of the filter layer 106 will be sprayed and cleaned downward. It can produce stronger impact force and downward traction on the dust on the surface of the dust collector, and can more effectively clean the dust. It can avoid the accumulation of dust on the surface of the dust collector and prevent the filter layer 106 from being blocked.

[0048] When the telescopic tooth rod 303 drives the hollow ring 302 to rotate, the rotating hollow ring 302 drives the plurality of rotating shafts 501 and the limiting frame 601 to rotate synchronously. When the hollow ring 302 drives the rotating shafts 501 to rotate, the rotating shafts 501 will rotate and contact the side wall of the tooth disc two 401, and through the friction force, the rotating shafts 501 will rotate when the air jet pipe 301 drives the rotating shafts 501 to rotate, so that the rotating shafts 501 rotate. When the rotating shafts 501 rotate, the conical spiral cylinder 505 and the conical spiral cylinder 505 rotate synchronously. At the same time, when the hollow cylinder 502 rotates, the rotation of the hollow cylinder 502 will drive the sliding rod 603 to reciprocate in the hollow plate 602 through the inclined groove. When the sliding rod 603 moves, the sliding rod 603 will generate a lateral force in the right-angle groove on the surface of the intermediate shaft 503 and drive the intermediate shaft 503 to rotate in the opposite direction of the surface of the rotating shaft 501. Then, when the intermediate shaft 503 rotates, the rotating intermediate shaft 503 will drive the fan ring 504 to rotate synchronously in the conical spiral cylinder 505. The fan ring 504 will form a suction force at the top when rotating, and will adsorb the dust cleaned outside into the conical spiral cylinder 505. Under the rotation of the fan ring 504, the dust is blown downward. When the dust is blown into the conical spiral cylinder 505, under the rotation of the conical spiral cylinder 505 and under the action of centrifugal force, the dust is thrown to the inner wall to realize gas-solid separation. Then, the fan ring 504 blows downward in the conical spiral cylinder 505, which not only blows the separated dust particles downward to prevent them from flying back into the air, but also forms a downward airflow, which helps to suppress the flying of other dust particles that have not been completely separated, reduces the secondary flying of dust, reduces the backflow of dust to the surface of the filter layer 106 during cleaning, and helps to maintain the good working condition of the equipment and prolong the continuous operation time of the equipment.

[0049] When the rotation of the telescopic gear rod 303 drives the gear plate 2 401 to rotate synchronously, the rotation of the gear plate 2 401 will drive the worm 704 to rotate synchronously. When the worm 704 rotates, it will drive the inclined rod 703 to rotate through the L rod 702. When the inclined rod 703 rotates, it will drive the T-shaped sliding rod 705 to rotate back and forth. When the T-shaped sliding rod 705 rotates, the rotation of the T-shaped sliding rod 705 will drive the raised rod 804 to rotate synchronously through the sliding frame 803. When the sliding frame 803 drives the raised rod 804 to rotate, the rotation of the raised rod 804 will rotate on the filter layer 1. 06 slides on the surface of the filter layer 106. Since the surface of the filter layer 106 is in a folded structure, when the raised rod 804 rotates, the rubber block on the raised rod 804 will slide on the surface of the filter layer 106 and generate a vibration force on the surface of the filter layer 106 during sliding. This vibration can make the dust on the filter layer 106 loosen or fall off, effectively improving the cleaning effect of the filter layer 106, avoiding excessive accumulation of dust on the filter layer 106, maintaining good air permeability and filtering performance of the filter layer, and further enhancing the cleaning effect of the air jet pipe 301.

[0050] When the rotation of the inclined rod 703 drives the T-shaped sliding rod 705 to rotate to the left, the rotation of the T-shaped sliding rod 705 will drive the sliding frame 803 to slide to the left inside the rectangular groove. When the sliding frame 803 slides to the left, the sliding frame 803 will drive the protruding rod 804 to slide synchronously. When the protruding rod 804 slides, it will pull the arc plate 802 through the L plate. When the arc plate 802 is pulled, it will move to the left synchronously. When the arc plate 802 moves to the left, it will squeeze the T-shaped plate on the C-shaped frame 701. Since the T-shaped plate is in an inclined state, when the arc plate 802 squeezes the T-shaped plate, the reaction force generated by the T-shaped plate will push the arc plate 802 to make the arc The end of the curved plate 802 connected to the movable plate 801 rotates. When the curved plate 802 rotates, it will pull the L plate and the raised rod 804 to move backward. When the raised rod 804 moves backward, it drives the raised rod 804 to rotate in the two-way thread groove inside the sliding frame 803 through the inserted rod on the surface. When the raised rod 804 rotates, it will drive the rubber block to rotate synchronously. When the rubber block rotates, it can reduce the continuous contact between the surface of the rubber block and the surface of the filter layer 106, reduce the loss of the rubber block, and also reduce the wear of the rubber block on the surface of the filter layer 106 when it moves, reduce the possibility of damage to the surface of the filter layer 106, and improve the dust removal efficiency.

[0051] The preferred embodiments of the application disclosed above are only to facilitate the elucidation of the application. The preferred embodiments do not describe all the details of the application and limit the application to the specific embodiments described. Obviously, many modifications and variations can be made in light of the teachings above. The description is chosen and described in order to best explain the principles of the application and its practical application to thereby enable others skilled in the art to best utilize the application and get the best results from the application. The application is only limited by the claims and their full scope and equivalents.

Claims

1. An electrical automatic dust removal device for safe filtration, comprising a main body (1), wherein a partition (101) is fixedly connected inside the main body (1), a top of the partition (101) is fixedly connected to an adsorption pump (102), an outlet bin (103) is fixedly connected to the bottom of the main body (1), a rotating ring (105) is provided at one end of the partition (101) away from the adsorption pump (102), a connecting disk (104) is rotatably connected to the outer surface of the rotating ring (105), an end of the connecting disk (104) close to the adsorption pump (102) is bolted to the partition (101), an end of the connecting disk (104) away from the adsorption pump (102) is fixedly connected to a filter layer (106), an air inlet is provided on the right side of the main body (1), an air outlet is provided on the side wall of the main body (1), and the air outlet is connected to the outlet of the adsorption pump (102), wherein the main body (1) is provided with an air inlet. Also includes; A rotating mechanism (2), the rotating mechanism (2) comprising a toothed disc (201) bolted to a side of the filter layer (106) away from the adsorption pump (102), the bottom of the toothed disc (201) rotating to condense a rotating disc (202), the top of the rotating disc (202) fixedly connected to a fan shaft (203), one end of the fan shaft (203) away from the rotating disc (202) passing through the top outer wall of the toothed disc (201) and extending into the interior of the filter layer (106), the side of the toothed disc (201) away from the rotating disc (202) being rotatably connected to a rotating ring 2 (205), the side of the rotating ring 2 (205) away from the toothed disc (201) being fixedly connected to a plurality of telescopic rods (204), the plurality of telescopic rods (204) being arranged in a circular array with the filter layer (106) as the center; A lifting mechanism (3), the lifting mechanism (3) comprising a plurality of jet tubes (301) fixedly connected to a side of the rotating ring 2 (205) close to the telescopic rod (204), a hollow ring (302) fixedly connected to one end of the plurality of jet tubes (301) away from the rotating ring 2 (205), the jet tubes (301) and the hollow ring (302) being connected, the inner wall of the hollow ring (302) being open, an annular wave groove being provided on the inner wall of the hollow ring (302) close to the filter layer (106), and a side of the hollow ring (302) close to the jet tube (301) being fixedly connected to the plurality of telescopic rods (204); A plurality of bidirectional threaded sleeves (304) are fixedly connected to one side of the hollow ring (302) close to the air injection pipe (301), a telescopic gear rod (303) is rotatably connected to the interior of the bidirectional threaded sleeve (304), an end of the telescopic gear rod (303) away from the bidirectional threaded sleeve (304) is rotatably connected to the rotating disk (202), an end of the telescopic gear rod (303) away from the rotating disk (202) penetrates the bottom inner wall of the hollow ring (302) and extends to the interior, a plurality of air inlet pipes (305) are fixedly connected to the top of the hollow ring (302), an end of the air inlet pipe (305) away from the hollow ring (302) penetrates the side wall of the rotating ring (105) and extends to the interior, the hollow ring (302) and the air inlet pipe (305) are connected, a short rod is fixedly connected to the outer surface of the telescopic gear rod (303), and the short rod is slidably connected to the interior of the bidirectional threaded sleeve (304); The hollow ring (302) is provided with a swing mechanism (4) inside, and the swing mechanism (4) includes a toothed disc 2 (401) rotatably connected to the inner wall of the top of the hollow ring (302), the outer surface of the toothed disc 2 (401) is meshed with the extended end of the telescopic gear rod (303), and the inside of the toothed disc 2 (401) is rotatably connected to a plurality of arcuate vertebral plates (402), the outer surface of the arcuate vertebral plates (402) is provided with a plurality of circular holes, the side of the arcuate vertebral plates (402) away from the toothed disc 2 (401) is spiral, the side of the arcuate vertebral plates (402) away from the toothed disc 2 (401) is rotatably connected to a connecting rod (403), and one end of the connecting rod (403) away from the arcuate vertebral plate (402) is rotatably connected to a rotating block (404), and the side wall of the rotating block (404) is slidably connected to the inside of the annular wave groove.

2. The electrical automatic dust removal equipment for safety filtration according to claim 1, characterized in that: The side wall of the hollow ring (302) is provided with an auxiliary mechanism (5), and the auxiliary mechanism (5) includes a plurality of rotating shafts (501) rotatably connected to the inner wall of the bottom of the hollow ring (302), and the side of the rotating shaft (501) close to the second toothed disc (401) contacts the side wall of the second toothed disc (401), and the end of the rotating shaft (501) away from the second toothed disc (401) penetrates the outer wall of the hollow ring (302) and extends to the outside, and the extended end of the rotating shaft (501) is A hollow cylinder (502) is fixedly connected to the surface, an inner wall of the hollow cylinder (502) is provided with an inclined groove, an outer surface of the rotating shaft (501) located inside the hollow cylinder (502) is rotatably connected to an intermediate shaft (503), a fan ring (504) is fixedly connected to the bottom of the intermediate shaft (503), an end of the rotating shaft (501) away from the second toothed disc (401) is fixedly connected to a conical spiral cylinder (505), and a right-angled groove is provided on the outer surface of the hollow cylinder (502).

3. The electrical automatic dust removal equipment for safety filtration according to claim 2, characterized in that: A centrifugal mechanism (6) is provided inside the hollow cylinder (502), and the centrifugal mechanism (6) comprises a limiting frame (601) rotatably connected to the outer surface of the fan ring (504), the top of the limiting frame (601) is fixedly connected to the bottom of the hollow ring (302), and two hollow plates (602) are fixedly connected to one side of the limiting frame (601) close to the hollow cylinder (502).

4. The electrical automatic dust removal equipment for safety filtration according to claim 3, characterized in that: The two hollow plates (602) are symmetrically distributed with the middle axis (503) as the center. The hollow plates (602) are slidably connected to the inside of the sliding rod (603). The end of the sliding rod (603) close to the hollow cylinder (502) is slidably connected to the inside of the inclined groove, and the end of the sliding rod (603) away from the hollow cylinder (502) is slidably connected to the inside of the right-angle groove.

5. The electrical automatic dust removal equipment for safety filtration according to claim 4, characterized in that: A vibration mechanism (7) is provided on the top of the hollow ring (302), and the vibration mechanism (7) comprises a C-shaped frame (701) fixedly connected to the outer wall of the top of the hollow ring (302), a rectangular groove is provided on the side of the C-shaped frame (701) close to the filter layer (106), and L-shaped rods (702) are rotatably connected to the left and right inner walls of the C-shaped frame (701), an oblique rod (703) is fixedly connected between the two L-shaped rods (702), and the right L-shaped rod (702) is away from the oblique rod (703). One end penetrates the outer wall of the C-shaped frame (701) and extends to the outside, the extended end of the L-rod (702) is fixedly connected to a worm wheel, the outer surface of the worm wheel is meshedly connected to a worm (704), the bottom of the worm (704) penetrates the top inner wall of the hollow ring (302) and extends to the outside, the extended end of the worm (704) is fixedly connected to an auxiliary gear, the auxiliary gear is meshedly connected to the second gear wheel (401), and the outer surface of the inclined rod (703) is rotatably connected to a T-shaped sliding rod (705).

6. The electrical automatic dust removal equipment for safety filtration according to claim 5, characterized in that: A reciprocating mechanism (8) is provided on the top of the C-shaped frame (701), and the reciprocating mechanism (8) includes a movable plate (801) rotatably connected to the outer wall of the top of the C-shaped frame (701), a spring is fixedly connected to the side wall of the C-shaped frame (701), and the spring is fixedly connected to the side wall of the C-shaped frame (701), and an end of the movable plate (801) away from the C-shaped frame (701) is rotatably connected to an arc-shaped plate (802), and a T-shaped plate is provided on the side wall of the arc-shaped plate (802), and the T-shaped plate is in an inclined state, and the T-shaped plate is fixedly connected to the side wall of the C-shaped frame (701), and a sliding frame (803) is provided on the end of the arc-shaped plate (802) away from the movable plate (801). The sliding frame (803) is slidably connected to the inside of the rectangular groove, a bidirectional threaded groove is provided inside the sliding frame (803), one end of the sliding frame (803) close to the T-shaped sliding rod (705) is rotatably connected to the T-shaped sliding rod (705), the interior of the sliding frame (803) is slidably connected to a protruding rod (804), the outer surface of the protruding rod (804) is fixedly connected to an insertion rod, the insertion rod is slidably connected to the inside of the bidirectional threaded groove, one end of the protruding rod (804) close to the arc plate (802) is rotatably connected to an L plate, the side wall of the L plate is rotatably connected to the arc plate (802), and the outer surface of the protruding rod (804) is fixedly connected to a rubber block.

Citation Information

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