Self-cleaning air filtering equipment

Through the combination of the fan and cyclone device, combined with the high-pressure airflow flushing of the self-cleaning module, the problem of frequent disassembly and poor filtration of existing air filter equipment is solved, and the high-efficiency and low-noise multiple filtration and automatic cleaning effects are achieved.

CN223299768UActive Publication Date: 2025-09-05DONGGUAN SHUGUANG PRECISION MASCH CO LTD
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Patent Information

Application Number
CN202422583508.0
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-10-24
Publication Date
2025-09-05
Estimated Expiration
2034-10-24

AI Technical Summary

Technical Problem

Existing air filtration equipment requires frequent disassembly and cleaning, and the filtering range is limited, so it is impossible to efficiently filter particulate matter of different sizes. The airflow impacts the filtering mechanism, resulting in a decrease in the filtration effect.

Method used

The fan is used to generate negative pressure suction, combine the cyclone device and the filter barrel for multiple filtration, and use the self-cleaning module to flush the filter barrel for high-pressure airflow through the backblowing device to achieve automatic cleaning, and combine the first and second filters for multi-layer filtration and reduce noise.

Benefits of technology

It realizes multiple filtration effects, extends the service life of the filter barrel, reduces maintenance frequency and cost, and reduces noise.

✦ Generated by Eureka AI based on patent content.

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Patent Text Reader

Abstract

The utility model discloses self-cleaning air filtering equipment. The air purifier comprises a case, a fan, a cyclone device and a filter barrel, wherein the fan is arranged in the case and used for generating negative pressure suction to enable air to flow unidirectionally; the cyclone device is arranged in the case and used for centrifugally filtering the air; the filter barrel is arranged in the case and located between the fan and the cyclone device; the self-cleaning module is arranged in the case and is provided with stored gas for back-blowing and cleaning the filter barrel, the first dust collecting box and the second dust collecting box are arranged below the cyclone device and the filter barrel and are used for receiving impurities, and a first air inlet and a first air outlet of the case are in butt joint with a second air inlet of the cyclone device and a third air outlet of the fan respectively. External air is sucked in from the first air inlet of the case by the fan, is centrifugally separated by the cyclone device, is filtered by the filter barrel, enters the third cavity, is sucked into the fourth cavity by the fan and is discharged from the first air outlet, so that multiple filtration of the air is realized.
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Description

Technical Field

[0001] The utility model relates to the field of environmental protection equipment, in particular to a self-cleaning air filtering device. Background Art

[0002] Air filters are devices used to remove harmful substances from the air and are widely used in industrial production. Industrial processes such as machining, chemical production, and combustion generate large amounts of toxic and harmful exhaust gases and particulate matter, such as oil mist, dust, volatile organic compounds (VOCs), and smoke. These pollutants pose a threat to worker health and the normal operation of equipment. Industrial air filters utilize multi-stage filtration technologies, such as bag filters, HEPA filters, activated carbon filters, and electrostatic precipitators, to effectively remove particulate matter and harmful gases from exhaust gases, improving the workshop environment, reducing equipment wear, and ensuring compliance with environmental emission standards.

[0003] For example: The air filtration treatment device for machine tools with the Chinese patent authorization announcement number CN202962159U, in the technical solution disclosed in the patent, is provided with an air inlet 2 at one end of the box body 1, a negative pressure forming box 3 is provided at the other end of the box body 1, an air outlet 31 is provided on the negative pressure forming box 3, a filtering mechanism 4 is provided in the box body 1, the filtering mechanism 4 includes a bracket 41 arranged in the filter cavity, a diffusion guide structure 42 and a filtering structure 43 distributed along the axial direction of the air inlet 2 are provided on the bracket 41, a sewage discharge mechanism is provided at the lower part of the box body 1 and the negative pressure forming box 3 respectively, and a mounting port 11 for installing the filtering mechanism 4 is provided at the upper part of the box body 1, a cover plate 13 is connected to the mounting port 11 through an opening and closing mechanism 12, and a sealing structure is provided between the cover plate 13 and the mounting port 11. The arrangement of the diffusion guide structure 42 and the filtering structure 43 is beneficial to enhancing the filtering accuracy of the entire device, improving the filtering effect, and extending the service life of the filtering device. The arrangement of the installation port 11 and the opening and closing mechanism 12 is beneficial to the disassembly and cleaning of the filtering mechanism 4.

[0004] However, the above prior art still has the following problems:

[0005] 1. The filter mechanism 4 needs to be frequently disassembled and cleaned, which not only affects the operation of the machine tool, but also is time-consuming, labor-intensive and costly;

[0006] 2. The single filter mechanism 4 has a limited filtering range and cannot achieve efficient filtration of particles of different sizes. It is also very easy to cause the filtering effect of the filter mechanism 4 to decline, requiring frequent maintenance;

[0007] 3. The negative pressure forming box 3 and the air inlet 2 are respectively located at the two ends of the box body 1, causing the airflow to directly impact the filter mechanism 4. There is a lack of buffering and equalizing flow space, resulting in excessive flow speed, which reduces the filtering effect of the filter mechanism 4.

[0008] In view of this, the inventors propose the following technical solutions. Summary of the Invention

[0009] The purpose of the utility model is to overcome the deficiencies of the prior art and provide a self-cleaning air filtering device.

[0010] In order to solve the above technical problems, the utility model adopts the following technical solutions: a self-cleaning air filtration device, comprising: a chassis, a fan arranged in the chassis and used to generate negative pressure suction to make the gas flow in one direction, a cyclone device arranged in the chassis and used to centrifugally filter the air, a filter barrel arranged in the chassis and located between the fan and the cyclone device, a self-cleaning module arranged in the chassis and having storage gas for back-blowing cleaning of the filter barrel, and a first dust box and a second dust box arranged below the cyclone device and the filter barrel and used to receive impurities, wherein the first air inlet and the first air outlet of the chassis are respectively connected to the second air inlet of the cyclone device and the third air outlet of the fan.

[0011] Furthermore, in the above technical solution, a first cavity, a second cavity, a third cavity and a fourth cavity are provided in the chassis, wherein the first cavity is located at the dust exhaust port of the cyclone device, the second cavity is located at the second air outlet of the cyclone device, and the filter barrel is located in the second cavity, the third cavity connects the third air inlet of the fan and the filter barrel, and the fourth cavity is located at the third air outlet of the fan.

[0012] Furthermore, in the above technical solution, the chassis includes an upper box body and a lower box body, wherein the fan and self-cleaning module are located in the upper box body, the cyclone device and the filter barrel are located in the lower box body, the first dust box and the second dust box are symmetrically installed at the bottom of the lower box body and can be pulled out to both sides respectively; an inner shell body is installed in the upper box body, which is arranged above the filter barrel and forms a third cavity, the fan is installed on the inner shell body, and one end of the self-cleaning module extends through the inner shell body into the filter barrel.

[0013] Furthermore, in the above technical solution, a first mounting plate for installing a cyclone device is obliquely arranged in the lower box body, wherein the first cavity and the second cavity are respectively located on both sides of the first mounting plate, and the first dust box and the second dust box are respectively located at the bottom of the first cavity and the second cavity.

[0014] Furthermore, in the above technical solution, a first filter for filtering large particles is provided in the first air inlet, and a cyclone pipe connection is provided between the first air inlet and the second air inlet; the first air outlet is located next to the fan, and a second filter for air filtering is provided at the first air outlet, and the outer cover of the second filter is provided with a silencer for reducing airflow noise.

[0015] Furthermore, in the above technical solution, the cyclone device is installed obliquely in the chassis, with the second air outlet facing the periphery of the filter barrel, and the filter barrel is installed vertically in the chassis, and the fan is installed above the filter barrel.

[0016] Furthermore, in the above technical solution, the cyclone device includes a second air inlet located in the center, a number of second air outlets and dust exhaust ports arranged on the periphery of the second air inlet and facing upward and downward respectively, and a number of guide air ducts connected to the central second air inlet and spirally coiled outward one by one on the second air outlet, wherein the dust exhaust port is funnel-shaped facing downward, and the end of the guide air duct is wrapped around the inner wall of the dust exhaust port.

[0017] Furthermore, in the above technical solution, the self-cleaning module includes a back-blowing device rotatably installed in the filter barrel, an air storage tank arranged in the chassis, a connecting hose connecting the air storage tank and the back-blowing device, an air valve arranged on the connecting hose, and an oil-water separation device arranged on the connecting pipe between the storage tank and the external air source, wherein the back-blowing device is located at the upper end of the filter barrel and the air storage tank is located next to the fan.

[0018] Furthermore, in the above technical solution, the chassis is also provided with a one-way valve located next to the filter barrel and used to quickly discharge gas when the back-blowing device blows air. A fifth cavity is provided on the outside of the one-way valve, and a filtering device is provided in the fifth cavity.

[0019] Furthermore, in the above technical solution, the back-blowing device is a rotating back-blowing device. When the gas in the gas tank is ejected from the back-blowing device, the back-blowing device will rotate; the gas valve is a solenoid valve and has two switchable modes of timed gas explosion and manual gas explosion, and a selection switch for switching between timed gas explosion and manual gas explosion is provided on the chassis; a timer for controlling the timed gas explosion of the gas valve and a pulse meter located next to the timer are provided in the chassis.

[0020] After adopting the above technical solution, the present invention has the following beneficial effects compared with the prior art:

[0021] 1. The utility model adopts a fan to generate negative pressure suction in the chassis, sucking in external air from the first air inlet of the chassis, first undergoing centrifugal separation through a cyclone device, separating large dust particles in the air and dropping them into the first dust collection box, and the air entering the second cavity is filtered through the filter barrel and then enters the third cavity, and is drawn out by the fan and discharged into the fourth cavity, and finally discharged from the first air outlet, thereby realizing multiple filtration of the air; and when a certain thickness of dust is deposited on the filter barrel, a high-speed airflow is sprayed into the filter barrel through the self-cleaning module to generate an air explosion, and the dust attached to the filter barrel is blown into the second dust collection box under the impact of the airflow, realizing back flushing of the filter barrel, thereby greatly improving the service life of the filter barrel, reducing the number of replacement times of the filter barrel, and reducing the cost of use.

[0022] 2. In the utility model, a first filter made of a metal mesh is arranged in the first air inlet. The first filter is used to intercept large particles of impurities such as debris mixed in the air to achieve the first layer of filtration, and a second filter is installed at the first air outlet. The second filter is used to perform the final filtration on the discharged air to ensure that the discharged air is completely purified and meets the standards. A silencer cover is added on the outside of the second filter and is filled with silencer cotton. The silencer cotton is used to reduce the noise generated by the airflow passing through the second filter.

[0023] 3. In the present invention, the gas stored in the gas storage tank is quickly guided through the connecting hose and sprayed into the filter barrel through the air valve. When the high-pressure gas enters the filter barrel from the connecting hose, it is quickly released and pressed downward. The gas explosion caused by the rapid pressure release is used to perform high-pressure air flushing on the filter barrel, thereby blowing the dust on the side wall of the filter barrel into the second dust collection box. When the air flow blows from the connecting hose to the backflush device, the backflush device will generate high-speed rotation under the impact of the air flow, thereby continuously rotating the high-speed air flow to impact the outer wall of the filter barrel, achieving 360° no-dead-angle flushing. In addition, an oil-water separator is provided at the front end of the connection between the gas storage tank and the gas source. The oil-water separator is used to separate and filter the gas entering the gas storage tank to ensure that the air for backwashing cleaning does not contain moisture, so as to avoid water vapor being sprayed onto the non-woven fabric of the filter barrel with the backwash gas, and to prevent the non-woven fabric from being wet and affecting normal filtration, thereby ensuring that backwashing does not damage the filter barrel and extending the service life of the filter barrel. BRIEF DESCRIPTION OF THE DRAWINGS

[0024] Figure 1 This is a schematic diagram of the airflow in the filtering state of the utility model;

[0025] Figure 2 This is a schematic diagram of the airflow in the self-cleaning state of the utility model;

[0026] Figure 3 This is a three-dimensional Figure 1 ;

[0027] Figure 4 This is a three-dimensional Figure 2 ;

[0028] Figure 5 It is a cross-sectional view of the utility model;

[0029] Figure 6 It is a schematic diagram of the internal structure of the utility model. DETAILED DESCRIPTION

[0030] The present invention will be further described below with reference to specific embodiments and accompanying drawings.

[0031] See Figures 1 to 6As shown, a self-cleaning air filtration device includes: a chassis 1, a fan 2 arranged in the chassis 1 and used to generate negative pressure suction to make the gas flow in one direction, a cyclone device 3 arranged in the chassis 1 and used to centrifugally filter the air, a filter barrel 4 arranged in the chassis 1 and located between the fan 2 and the cyclone device 3, a self-cleaning module 5 arranged in the chassis 1 and having storage gas to back-blow clean the filter barrel 4, and a first dust box 6 and a second dust box 7 arranged below the cyclone device 3 and the filter barrel 4 and used to receive impurities, wherein the first air inlet 101 and the first air outlet 102 of the chassis 1 are respectively connected to the second air inlet 31 of the cyclone device 3 and the third air outlet 2B of the fan 2. The fan 2 is used to generate negative pressure suction in the chassis 1, and the external air is sucked in from the first air inlet 101 of the chassis 1. The air is first centrifuged by the cyclone device 3 to separate the large particles of dust in the air and fall into the first dust collection box 6. The air entering the second cavity B is filtered by the filter barrel 4 and then enters the third cavity C, and is drawn out by the fan 2 and discharged to the fourth cavity D, and finally discharged from the first air outlet 102, thereby realizing multiple filtration of the air; and when a certain thickness of dust is deposited on the filter barrel 4, a high-speed airflow is sprayed into the filter barrel 4 through the self-cleaning module 5 to generate an air explosion. Under the impact of the airflow, the dust attached to the filter barrel 4 is blown into the second dust collection box 7, realizing back flushing of the filter barrel 4, thereby greatly improving the service life of the filter barrel 4, reducing the number of replacements of the filter barrel 4, and reducing the cost of use.

[0032] The first air inlet 101 is provided with a first filter 8 for filtering large particles, and a cyclone pipe 35 is provided between the first air inlet 101 and the second air inlet 31. The first air outlet 102 is located beside the fan 2, and a second filter 9 for air filtering is provided at the first air outlet 102. The outer cover of the second filter 9 is provided with a silencer 90 for reducing airflow noise. A first filter 8 made of a metal mesh is provided in the first air inlet 101. The first filter 8 intercepts large particles such as debris mixed in the air to achieve the first layer of filtration. The second filter 9 is installed at the first air outlet 102. The second filter 9 performs the final filtration on the discharged air to ensure that the discharged air is completely purified and meets the standards. The silencer 90 provided on the outer side of the second filter 9 is filled with silencer cotton. The silencer cotton 90 is used to reduce the noise generated by the airflow passing through the second filter 9.

[0033] The cyclone device 3 includes a second air inlet 31 located in the center, a plurality of second air outlets 32 and dust exhaust ports 33 disposed on the periphery of the second air inlet 31 and facing upward and downward, respectively, and a plurality of air guide ducts 34 connected to the central second air inlet 31 and spirally wound outwardly around the second air outlet 32. The dust exhaust port 33 is funnel-shaped and faces downward, and the ends of the air guide ducts 34 wind around the inner wall of the dust exhaust port 33. A first cavity A, a second cavity B, a third cavity C, and a fourth cavity D are disposed within the chassis 1. The first cavity A is located at the dust exhaust port 33 of the cyclone device 3, the second cavity B is located at the second air outlet 32 ​​of the cyclone device 3, and the filter barrel 4 is located within the second cavity B. The third cavity C connects the third air inlet 2A of the fan 2 and the filter barrel 4. The fourth cavity D is located at the third air outlet 2B of the fan 2. The cyclone device 3 is arranged between the first cavity A and the second cavity B. When the air flow enters the box body 1 from the first air inlet 101, it will first enter the second air inlet 31 of the cyclone device 3 from the cyclone pipe 35, and then enter the centrifugal cavity between the dust exhaust port 33 and the second air outlet 32 ​​along several guide air ducts 34. When the air flow enters the funnel-shaped centrifugal cavity under the guidance of the spiral guide air duct 34, a spiral vortex is generated, so that dust particles larger than 0.02 mm fall from the dust exhaust port 33 under the action of centrifugal force into the first dust collecting box 6 at the bottom of the first cavity A, and the air will pass through the second air outlet 32 ​​into the second cavity B under the suction of the fan 2, thereby realizing centrifugal separation and filtration of the air.

[0034] The chassis 1 includes an upper box body 11 and a lower box body 12, wherein the fan 2 and the self-cleaning module 5 are located in the upper box body 11, the cyclone device 3 and the filter barrel 4 are located in the lower box body 12, and the first dust box 6 and the second dust box 7 are symmetrically installed at the bottom of the lower box body 12 and can be pulled out to both sides respectively; an inner shell 13 is installed in the upper box body 11, which is covered above the filter barrel 4 and forms a third cavity C, the fan 2 is installed on the inner shell body 13, and one end of the self-cleaning module 5 passes through the inner shell body 13 and extends into the filter barrel 4. The filter barrel 4 is a HEPA filter barrel, the upper end outlet of the filter barrel 4 is connected to the third cavity C, and the self-cleaning module 5 extends into the upper end outlet of the filter barrel 4. After the air flowing out through the second air outlet 32 ​​of the cyclone device 3 enters the second cavity B, it enters the filter barrel 4 from the periphery of the filter barrel 4 to realize the third filtration. At this time, the dust is intercepted and deposited on the outer side wall of the filter barrel 4. When the self-cleaning module 5 sprays high-pressure airflow into the filter barrel 4, the dust deposited on the outer wall of the filter barrel 4 will be blown into the second dust collection box 7 at the bottom of the second cavity B, thereby realizing the self-cleaning of the filter barrel 4.

[0035] A first mounting plate 14 for mounting the cyclone device 3 is tiltedly provided in the lower case 12, wherein the first cavity A and the second cavity B are respectively located on either side of the first mounting plate 14, and the first dust box 6 and the second dust box 7 are respectively located at the bottom of the first cavity A and the second cavity B. The cyclone device 3 is tiltedly mounted in the chassis 1, with the second air outlet 32 ​​facing the periphery of the filter barrel 4, and the filter barrel 4 is vertically mounted in the chassis 1, with the fan 2 mounted above the filter barrel 4. The cyclone device 3 is tiltedly mounted in the chassis 1 so that the second air outlet 32 ​​of the cyclone device 3 can be tilted to one side of the filter barrel 4, so that the air flowing out of the cyclone device 3 can quickly enter the filter barrel 4 from the periphery of the filter barrel 4, while also ensuring that the suction force generated by the fan 2 is smoothly transmitted to the cyclone device 3.

[0036] The self-cleaning module 5 includes a back-blowing device 51 rotatably installed in the filter barrel 4, an air storage tank 52 arranged in the chassis 1, a connecting hose 53 connecting the air storage tank 52 and the back-blowing device 51, an air valve 54 arranged on the connecting hose 53, and an oil-water separation device 55 arranged on the connecting pipe between the storage tank and the external air source, wherein the back-blowing device 51 is located at the upper end of the filter barrel 4, and the air storage tank 52 is located next to the fan 2. The back-blowing device 51 is a rotating back-blowing device. When the gas in the gas tank 52 is ejected from the back-blowing device 51, the back-blowing device 51 will rotate. Specifically, the gas stored in the gas tank 52 is quickly guided through the connecting hose 53 through the air valve 54 and sprayed into the filter barrel 4. When the high-pressure gas enters the filter barrel 4 from the connecting hose 53, it is quickly released and pressed down. The gas explosion generated when the pressure is quickly released is used to perform high-pressure blowing and flushing on the filter barrel 4, thereby blowing the dust on the side wall of the filter barrel 4 into the second dust collection box 7. When the airflow blows from the connecting hose 53 to the back-blowing device 51, under the impact of the airflow, the back-blowing device 51 will generate high-speed rotation, thereby continuously rotating the high-speed airflow to impact the outer wall of the filter barrel 4, achieving 360° flushing without dead angles. In addition, an oil-water separator 55 is provided at the front end of the connection between the gas storage tank 52 and the gas source. The gas entering the gas storage tank 52 is separated from the water vapor and filtered by the oil-water separator 55 to ensure that the air for backwashing cleaning does not contain moisture, so as to avoid water vapor being sprayed onto the non-woven fabric of the filter barrel 4 along with the backwash gas, and prevent the non-woven fabric from being affected by water and affecting normal filtration, thereby ensuring that backwashing will not cause damage to the filter barrel 4 and improving the service life of the filter barrel 4.

[0037] The back-blowing device 51 can be an umbrella-shaped structure that evenly guides the airflow to all sides to achieve circumferential cleaning of the filter barrel 4, or it can be a rotatable cone that rotates 360° freely under the impact of the airflow to achieve cleaning of the filter barrel 4.

[0038] The chassis 1 is also provided with a one-way valve 15 located beside the filter barrel 4 and used to quickly discharge gas when the backflush device 51 blows air. A fifth cavity E is provided outside the one-way valve 15, and a filter device 16 is installed inside the fifth cavity E. By providing a one-way exhaust check valve 15 on the outer wall of the chassis 1, when the self-cleaning module 5 is in operation, a large amount of gas is sprayed into the chassis 1. At this time, the air pressure in the second cavity B increases, which opens the one-way valve 15 and achieves rapid exhaust. This prevents the gas from being diverted and blowing dust out of the first air inlet 101. To ensure that the gas discharged from the one-way valve 15 is clean, a fifth cavity E is added outside the one-way valve 15 to buffer and balance the flow, and a filter device 16 is added inside the fifth cavity E to filter the discharged gas, thereby ensuring that the gas flowing out of the one-way valve 15 is sufficiently clean. The filter device 16 is a HEPA filter barrel.

[0039] The gas valve 54 is a solenoid valve with two switchable modes: timed gas explosion and manual gas explosion. A selector switch 56 for switching between timed gas explosion and manual gas explosion is provided on the chassis 1. A timer 57 for controlling the timed gas explosion of the gas valve 54 is provided inside the chassis 1, as well as a pulse meter 58 located next to the timer 57. A self-locking switch 17 is provided next to the pulse meter 58. The chassis 1 is also provided with a start switch 18 and a potentiometer 19 located next to the start switch 18.

[0040] One side of the chassis 1 is provided with a first sealing plate 1A1 and a second sealing plate 1B1 corresponding to the first cavity A and the second cavity B respectively, and the second sealing plate 1B1 is provided with a transparent window 1B2 for observing the interior. The transparent window 1B2 is "L"-shaped and can observe the internal filter barrel 4.

[0041] In summary, the utility model has two working states, one is air filtration state, the other is feedback self-cleaning state, and the specific working mode is as follows:

[0042] First, during air filtration, dust-laden air is sucked in through the first air inlet 101. Inside the first air inlet 101, after passing through the first filter 8 to intercept large objects and evenly distribute the air, the air enters the cyclone pipe 35. Further, the inclined cyclone device 3 separates and filters finer particles. Dust particles larger than 0.02 mm fall from the dust outlet 33 into the first dust collection box 6 of the first cavity A. The air that has undergone two layers of pre-filtration enters the second cavity B through the second air outlet 32 ​​of the cyclone device 3. A fine-filtering HEPA filter barrel 4 is provided in the second cavity B, and a filter is provided in the filter barrel 4. A rotating and sealed back-blowing device 51 is provided, and a one-way valve 15 is provided on the upper left side of the second cavity B, which can quickly discharge the back-blown gas. A HEPA filter barrel 16 can be added at the air outlet to meet harsh environmental requirements. A second dust box D 7 is provided below the second cavity B. The clean air that has undergone multiple filtrations enters the third cavity C through the top of the filter barrel 4. The third cavity C is directly connected to the negative pressure fan 2, and then blows the clean air into the fourth cavity D. After slow flow and silencing, it enters the second filter screen 9 and the silencer cover 90, and finally discharges the clean and low-noise air to achieve the purpose of filtering and noise reduction.

[0043] Second, during the feedback self-cleaning, the commonly used compressed air is connected to the oil-water separator 55 for filtration and then connected to the air tank 52. The other end of the air tank 52 is connected to a large-sized air valve 54. The air valve 54 is controlled by an electromagnetic coil and can switch between two modes: timed air explosion and manual air explosion. When the air valve 54 is energized, the valve opens instantly, and the air in the air tank 52 is instantly released. The air is rushed into the back-blowing device 51 through the connecting hose 53. Driven by pressure, the back-blowing device 51 presses the filter barrel 4 downward to form a closed space. The compressed air generates positive pressure in the filter barrel 4, and cooperates with the rotating blowing device 51 to comprehensively clean the filter barrel 4, so that the filter barrel 4 remains unobstructed for a long time, reducing the replacement frequency, and saving cost and time.

[0044] Of course, the above description is only a specific embodiment of the present invention and is not intended to limit the scope of implementation of the present invention. Any equivalent changes or modifications made based on the structure, features and principles described in the scope of the patent application of the present invention should be included in the scope of the patent application of the present invention.

Claims

1. A self-cleaning air filtration device, characterized in that: include: A chassis (1), a fan (2) disposed in the chassis (1) and used to generate negative pressure suction to cause gas to flow in one direction, a cyclone device (3) disposed in the chassis (1) and used to centrifugally filter air, a filter barrel (4) disposed in the chassis (1) and located between the fan (2) and the cyclone device (3), a self-cleaning module (5) disposed in the chassis (1) and having stored gas for back-blowing cleaning of the filter barrel (4), and a first dust box (6) and a second dust box (7) disposed below the cyclone device (3) and the filter barrel (4) and used to receive impurities, wherein the first air inlet (101) and the first air outlet (102) of the chassis (1) are respectively connected to the second air inlet (31) of the cyclone device (3) and the third air outlet (2B) of the fan (2).

2. A self-cleaning air filtration device according to claim 1, characterized in that: The chassis (1) is provided with a first cavity (A), a second cavity (B), a third cavity (C) and a fourth cavity (D), wherein the first cavity (A) is located at the dust exhaust port (33) of the cyclone device (3), the second cavity (B) is located at the second air outlet (32) of the cyclone device (3), and the filter barrel (4) is located in the second cavity (B), the third cavity (C) connects the third air inlet (2A) of the fan (2) and the filter barrel (4), and the fourth cavity (D) is located at the third air outlet (2B) of the fan (2).

3. A self-cleaning air filtration device according to claim 2, characterized in that: The chassis (1) comprises an upper box body (11) and a lower box body (12), wherein the fan (2) and the self-cleaning module (5) are located in the upper box body (11), the cyclone device (3) and the filter barrel (4) are located in the lower box body (12), and the first dust collecting box (6) and the second dust collecting box (7) are symmetrically mounted on the bottom of the lower box body (12) and can be respectively withdrawn to both sides; an inner shell (13) is mounted in the upper box body (11) and is arranged above the filter barrel (4) to form a third cavity (C), the fan (2) is mounted on the inner shell body (13), and one end of the self-cleaning module (5) passes through the inner shell body (13) and extends into the filter barrel (4).

4. A self-cleaning air filtration device according to claim 3, characterized in that: A first mounting plate (14) for mounting the cyclone device (3) is obliquely arranged in the lower box (12), wherein the first cavity (A) and the second cavity (B) are respectively located on both sides of the first mounting plate (14), and the first dust collecting box (6) and the second dust collecting box (7) are respectively located at the bottom of the first cavity (A) and the second cavity (B).

5. The self-cleaning air filtration device according to claim 1, characterized in that: A first filter (8) for filtering large particles is provided in the first air inlet (101), and a cyclone pipe (35) is provided between the first air inlet (101) and the second air inlet (31); the first air outlet (102) is located beside the fan (2), and a second filter (9) for air filtering is provided at the first air outlet (102), and a silencer (90) for reducing airflow noise is provided on the outer cover of the second filter (9).

6. The self-cleaning air filtration device according to claim 1, characterized in that: The cyclone device (3) is installed in an inclined manner in the chassis (1), with the second air outlet (32) facing the periphery of the filter barrel (4), and the filter barrel (4) is installed vertically in the chassis (1), and the fan (2) is installed above the filter barrel (4).

7. The self-cleaning air filtration device according to claim 6, characterized in that: The cyclone device (3) includes a second air inlet (31) located in the center, a plurality of second air outlets (32) and dust exhaust ports (33) arranged on the periphery of the second air inlet (31) and facing upward and downward respectively, and a plurality of guide air ducts (34) connected to the central second air inlet (31) and spirally wound outwardly on the second air outlet (32) one by one, wherein the dust exhaust port (33) is funnel-shaped and faces downward, and the end of the guide air duct (34) is wound around the inner wall of the dust exhaust port (33).

8. A self-cleaning air filtration device according to any one of claims 1 to 7, characterized in that: The self-cleaning module (5) includes a back-blowing device (51) rotatably mounted in the filter barrel (4), an air storage tank (52) disposed in the chassis (1), a connecting hose (53) connecting the air storage tank (52) and the back-blowing device (51), an air valve (54) disposed on the connecting hose (53), and an oil-water separation device (55) disposed on a pipe connecting the storage tank (52) and an external air source, wherein the back-blowing device (51) is located at the upper end of the filter barrel (4), and the air storage tank (52) is located beside the fan (2).

9. The self-cleaning air filtration device according to claim 8, characterized in that: The chassis (1) is further provided with a one-way valve (15) located beside the filter barrel (4) and used for quickly discharging gas when the back-blowing device (51) blows air. A fifth cavity (E) is provided on the outside of the one-way valve (15), and a filtering device (16) is provided in the fifth cavity (E).

10. The self-cleaning air filtering device according to claim 8, characterized in that: The back-blowing device (51) is a rotating back-blowing device. When the gas in the gas storage tank (52) is ejected from the back-blowing device (51), the back-blowing device (51) will rotate. The gas valve (54) is a solenoid valve and has two switchable modes: timed gas explosion and manual gas explosion. A selection switch (56) for switching between timed gas explosion and manual gas explosion is provided on the chassis (1). A timer (57) for controlling the gas valve (54) to cause a timed gas explosion is provided in the chassis (1), as well as a pulse meter (58) located next to the timer (57).

Citation Information

Patent Citations

  • Air filtration treatment device for machine tool

    CN202962159U