Dust removal apparatus for wireless charging base production

By designing a dust removal device for wireless charging stand production, the impact of dust on the use of the charging stand and the low dust removal efficiency are solved, efficient dust collection and treatment are achieved, and the service life of the equipment is extended.

WO2025107256A1PCT designated stage expired Publication Date: 2025-05-30ANFU XIN WEIJIA TECHNOLOGY CO LTD

Patent Information

Application Number
PCT/CN2023/133775
Authority / Receiving Office
WO · WO
Patent Type
Applications
Current Assignee / Owner
Filing Date
2023-11-23
Publication Date
2025-05-30

AI Technical Summary

Technical Problem

During the production process of wireless charging stand, dust is easy to adhere to the charging stand, affecting subsequent use, and dust is not easy to collect inside the equipment, resulting in low dust removal efficiency, and dust may cause equipment to be blocked and shorten the service life of the equipment.

Method used

A dust removal device for the production of wireless charging stands is designed, including a vacuum tube, a processing box, a partition plate and a filter assembly. The vacuum tube collects dust through the suction fan and pretreats and filters the dust through the partition plate and filter assembly to ensure that the dust is effectively collected and processed.

Benefits of technology

It effectively avoids the impact of dust on the use of the charging stand, improves dust removal efficiency, prevents dust clogging, and extends the service life of the equipment.

✦ Generated by Eureka AI based on patent content.

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    Figure CN2023133775_30052025_PF_FP_ABST
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Abstract

A dust removal apparatus for wireless charging base production, comprising a treatment box (2) and a dust suction pipe (1), wherein the dust suction pipe (1) is provided with a suction fan for collecting dust; the inner surface of the dust suction pipe (1) is fixedly connected to a pretreatment assembly (4); the end of the dust suction pipe (1) close to the pretreatment assembly (4) is communicated with the treatment box (2); the inner surface of the treatment box (2) is fixedly connected to a partition plate (8); the side of the partition plate (8) away from the treatment box (2) is fixedly connected to a filtering assembly (6); the top of the partition plate (8) is communicated with an exhaust fan (7); the bottom of the treatment box (2) is communicated with a collecting assembly (5); the top of the treatment box (2) is communicated with a discharging assembly (3). According to the dust removal apparatus for wireless charging base production, it is convenient for the collecting assembly (5) to collect dust, thereby preventing the cleaning difficulty from being increased as a result of dust being scattered in the treatment box (2); and when the exhaust fan (7) works, the suction force of the interior of the filtering assembly (6) in a treatment cavity is increased, thereby preventing the dust removal efficiency from being affected as a result of blockage occurring during dust circulation.
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Description

A dust removal device for wireless charging station production Technical Field

[0001] The present invention relates to the technical field of charging stand production, and in particular to a dust removal device for producing wireless charging stands. Background Art

[0002] Wireless charging technology originates from wireless power transmission technology and can be divided into two types: low-power wireless charging and high-power wireless charging. Low-power wireless charging often uses electromagnetic induction; high-power wireless charging often uses resonance, where the power supply device transmits energy to the power-consuming device. Wireless charging stations can be used to charge electrical devices and other electrical equipment. They can be divided into two categories: vertical wireless charging stations and horizontal wireless charging stations. Wireless chargers are devices that use the principle of electromagnetic induction for charging. By placing a coil at each end, the transmitting coil sends an electromagnetic signal to the outside world under the action of electricity. The receiving coil receives the electromagnetic signal and converts it into current, thereby achieving the purpose of wireless charging. However, the production of charging stations is prone to dust generation. Dust adheres to the charging station and affects subsequent use. Dust adhered to the charging station is easily dispersed during equipment processing, causing problems for workers. Dust is easily re-fallen during dust removal at the processing position of the charging station, reducing the dust removal quality. Dust is not easily collected inside the equipment, resulting in some dust being directly discharged from the device, reducing the efficiency of the equipment's dust treatment. Dust easily causes blockage when circulating inside the equipment, thereby increasing the difficulty of dust removal and reducing the service life of the equipment.

[0003] To sum up, the production of charging stations is prone to generate dust, and the dust adheres to the charging station and affects subsequent use. In addition, the dust is not easy to collect inside the device, resulting in some dust being directly discharged from the device, reducing the efficiency of the device in handling dust. When dust circulates inside the device, it is easy to cause blockage, thereby increasing the difficulty of dust removal. Summary of the Invention

[0004] In view of the shortcomings of the prior art, the present invention solves the technical problems by adopting the following technical solutions: the dust removal device for the production of wireless charging stations of the present invention comprises a processing box,

[0005] The dust suction pipe is provided with a suction fan for collecting dust, the inner surface of the dust suction pipe is fixedly connected to a pre-treatment component, the end of the dust suction pipe close to the pre-treatment component is connected to the treatment box, the inner surface of the treatment box is fixedly connected to a partition plate, the side of the partition plate away from the treatment box is fixedly connected to a filter component, the top of the partition plate is connected to an exhaust fan, the bottom of the treatment box is connected to a collection component, and the top of the treatment box is connected to a discharge component. The suction fan on the dust suction pipe generates suction, so that the dust suction pipe collects dust around the charging base, and the treatment box The processing chamber is formed by cooperating with the partition plate. The partition plate has an inclined surface near the collecting component to guide the falling of dust. The partition plate contacts the pre-processing component, so that the pre-processing component pre-processes the dust and transports the processed gas and dust to a position close to the filter component. There is a movable space between the filter component and the partition plate, and the dust falling from the pre-processing component directly enters the collecting component for collection. When the exhaust fan is working, it can increase the suction force inside the filter component inside the processing chamber, so that the filter component transports the fixed gas to the exhaust component through the exhaust fan for discharge;

[0006] The pretreatment component includes a guide cylinder, which is used to guide the circulation of gas, the inner surface of the guide cylinder is fixedly connected to a blocking ring, the inner surface of the blocking ring is rotatably connected to a movable plate, the blocking ring is fixedly connected to a stretching rod at a position close to the movable plate, the stretching rod is fixedly connected to a filter plate at one end away from the blocking ring, and the filter plate is fixedly connected to a vibration plate at a side away from the stretching rod, the outer surface of the guide cylinder is fixedly connected to the partition plate, and the circulation of gas is guided by the guide cylinder, and the movable plates are evenly distributed inside the blocking ring so that the movable plates are driven by the gas to rotate, and the filter plate gradually leaves the guide cylinder under the thrust of the gas, and a vibration plate is provided between the two filter plates, so that the vibration plate generates vibration when it moves, thereby utilizing the vibration to transmit to the filter plate to drop the residual dust, and when the filter plate loses thrust, the stretching rod contracts, so that the stretching rod drives the filter plate to return to its initial position, and the vibration plate can perform telescopic movement when it vibrates.

[0007] Preferably, one end of the guide tube close to the partition plate extends to the outside of the dust suction pipe, and the inner surface of the guide tube is slidably connected to the filter plate.

[0008] Preferably, the bottom of the exhaust assembly passes through the processing box and extends to the interior of the processing box, and the top of the exhaust fan is fixedly connected to the processing box.

[0009] Preferably, the discharge assembly includes a discharge shell, the inner surface of the discharge shell is fixedly connected to a connecting sleeve, the bottom of the connecting sleeve is fixedly connected to a side support plate, the wind force circulated by the exhaust fan is discharged through the discharge shell, and the discharge shell passes through the treatment box, the connecting sleeve inside the discharge shell can separate the movable space, the side support plates are evenly distributed on the connecting sleeve, so that the side support plates support the connecting sleeve, the position of the connecting sleeve near the side support plate is fixedly connected to an adsorption purification cylinder, the position of the discharge shell near the connecting sleeve is fixedly connected to a filter sleeve, the filter sleeve cooperates with the connecting sleeve inside the discharge shell, so that the filter sleeve filters the discharged gas, and at the same time the adsorption purification cylinder adsorbs and purifies the gas on the connecting sleeve, and the adsorption purification cylinder cooperates with the side support plates, and there is a movable space between the filter sleeve and the connecting sleeve, and the inner surface of the filter sleeve is rotatably connected to a linkage frame, and the top of the linkage frame is fixedly connected to the discharge shell.

[0010] Preferably, the side of the side support plate away from the filter sleeve is fixedly connected to the discharge shell, and the bottom end of the adsorption purification cylinder passes through the connecting sleeve and extends to the outside of the connecting sleeve.

[0011] Preferably, the linkage frame includes an inner connecting ring, the inner surface of the inner connecting ring is rotatably connected to a linkage rod, the outer surface of the linkage rod is fixedly connected to a support plate, and the support plate is fixedly connected to a fixed plate at a position away from the linkage rod. The linkage rod is driven by wind force to rotate on the inner connecting ring, so that the linkage rod drives the support plate to rotate, and the inner connecting ring contacts the discharge shell to keep the linkage rod placed vertically, and the support plate has a groove, and the two ends of the fixed plate are fixedly connected to a clamping plate, and the clamping plate is fixedly connected to a scraper at a position away from the fixed plate, and is supported by the fixed plate through the clamping plate, so that the scraper contacts the filter sleeve when rotating with the linkage rod, and the scraper generates vibration when contacting the filter sleeve, causing the filter sleeve to shake for self-cleaning of adhered dust, and multiple clamping plates are arranged on the scraper.

[0012] Preferably, the bottom end of the linkage rod passes through the inner connecting ring and extends to the outside of the inner connecting ring, and the position of the fixing plate close to the clamping plate passes through the support plate and extends to the outside of the support plate.

[0013] The dust collecting box is a container which is provided with a humidifying box at the top of the inner cavity of the collection box, and the dust falling from the processing box is collected by the collection box. As the dust enters the collection box, the humidifying box sprays an atomized water flow to humidify the dust, and the water flow splashes into the processing box when spraying, thereby utilizing the water flow to humidify the dust inside the processing box, and the inlet of the collection box corresponds to the processing box, and the humidifying box is kept horizontal on the collection box. The collection box is fixedly connected to a clamping plate at a position close to the humidifying box, and the inner surface of the clamping plate is rotatably connected to a swing bar, and the bottom of the inner cavity of the collection box is fixedly connected to an adsorption plate, and the adsorption plate is used to adsorb the dust falling in the collection box, and the clamping plate is provided with a plurality of swinging bars, so that dust and gas entering the collection box drive the swinging bars to swing, and the swinging bars adjust the activity space when they move, so that the two swinging bars cooperate with each other to block the flow of dust, and the swinging bars cooperate with the clamping plate to separate the inside of the collection box, and the inner surface of the collection box is fixedly connected to an assembly frame.

[0014] Preferably, the assembly frame includes an assembly plate, the outer surface of the assembly plate is fixedly connected to a side connecting block, the inner surface of the side connecting block is fixedly connected to a telescopic rod, and the side of the telescopic rod away from the assembly plate is fixedly connected to a knocking ball, and the telescopic rod itself has a thrust, so that the telescopic rod is subjected to the pressure of the swing bar by the knocking ball to extend and retract, thereby adjusting the position of the knocking ball, and knocking is performed when the knocking ball contacts the swing bar, and the telescopic rod is horizontally installed on the assembly plate, and the assembly plate is fixedly connected to a reset plate on the side close to the telescopic rod, and the reset plate is fixedly connected to the outward extension plate at a position away from the assembly plate, and is horizontally installed on the collection box through the side connecting block, so that the side connecting block clamps the assembly plate, and the outward extension plate on the assembly plate rotates when gas circulates inside the collection box, so that the outward extension plate approaches the position of the swing bar to limit the range of movement of the swing bar, and a collision is generated when the outward extension plate contacts the swing bar. When the outward extension plate moves, the reset plate is stretched, thereby using the reset plate to reset the outward extension plate.

[0015] Preferably, the outwardly extending plate is rotatably connected to the assembly plate at a position away from the telescopic rod, and the end of the telescopic rod close to the striking ball passes through the assembly plate and extends to the outside of the assembly plate.

[0016] Preferably, the filter assembly includes a transition pipe, the bottom end of the transition pipe is connected to a circulation shell, the bottom of the circulation shell is connected to a filter sleeve, the incoming gas is filtered through the filter sleeve, and the filtered gas is transported to the circulation shell for circulation, the circulation shell is connected to multiple filter sleeves, so that the filter sleeve can receive the gas inside the processing box, and the transition pipe transmits the suction generated by the exhaust fan, the bottom end of the filter sleeve is fixedly connected to a middle solid plate, the top of the middle solid plate is fixedly connected to a mounting frame, the mounting frame is rotatably connected to a contact block near the filter sleeve, the outer surface of the contact block is slidably connected to the filter sleeve, the filter sleeve and the mounting frame are supported by the middle solid plate, so that the contact block on the mounting frame is driven by the gas to rotate, and the contact block knocks on the filter sleeve when rotating, and the mounting frame and the contact block cooperate to limit the two filter sleeves.

[0017] The present invention provides a dust removal device for wireless charging station production, which has the following beneficial effects:

[0018] The dust removal device for the production of wireless charging bases generates suction along with the dust collection pipe, the processing box and the partition plate, and the suction fan on the dust collection pipe generates suction, thereby preventing dust from adhering to the charging base during processing and affecting subsequent use. The partition plate has an inclined surface near the collecting component, which can guide the falling of dust, making it easier for the collecting component to collect dust and preventing dust from being scattered in the processing box and increasing the difficulty of cleaning. When the exhaust fan is working, it can increase the suction inside the filter component inside the processing chamber, thereby preventing blockage in the dust circulation process and affecting the dust removal efficiency.

[0019] The dust removal device used in the production of wireless charging stations guides the flow of gas through a guide tube to avoid leakage during gas circulation. The filter disc gradually leaves the guide tube under the thrust of the gas. A vibration plate is provided between the two filter discs to prevent dust adhering to the surface of the filter disc from clogging the filter holes. This facilitates the stretching rod to extend to support the filter disc, preventing the filter disc from tilting after leaving the guide tube and affecting subsequent movement, so that the filter disc can filter the gas multiple times.

[0020] The dust removal device for the production of wireless charging stations discharges the wind force circulated by the exhaust fan through the discharge shell, avoiding the occurrence of gaps at the connection position of the discharge shell that may cause gas leakage. The connecting sleeve inside the discharge shell can separate the activity space and reinforce the discharge shell by using the connecting sleeve. The side support plates are evenly distributed on the connecting sleeve, which is convenient for limiting the installation position of the connecting sleeve when the side support plates contact the discharge shell.

[0021] The dust removal device for the production of wireless charging stations prevents the exhausted gas from containing odor and affecting its use by cooperating with the connecting sleeve inside the exhaust shell through the filter sleeve. A movable space is provided between the filter sleeve and the connecting sleeve to facilitate the flow of gas through the filter sleeve and the circulation of gas when it circulates inside the exhaust shell, so that the connecting sleeve and the filter sleeve cooperate to block falling dust.

[0022] The dust removal device used in the production of wireless charging stations rotates on the inner ring through the linkage rod driven by wind. The inner ring contacts the discharge shell to keep the linkage rod vertically placed, avoiding the linkage rod from tilting and getting stuck when rotating. The support plate has a groove to facilitate air circulation when the support plate is not rotating, and the groove of the support plate is used to fix the fixing plate, avoiding the fixing plate from loosening after installation.

[0023] The dust removal device for the production of wireless charging stations has a clamping plate supported by a fixing plate, so that the clamping plate fixes the scraper, which makes it easy for the scraper to drop dust adhered to the filter sleeve, and generates vibration when the scraper contacts the filter sleeve, causing the filter sleeve to shake and self-clean the adhered dust. A plurality of clamping plates are provided on the scraper, so that the clamping plates fix different positions of the scraper, avoiding tilting of the contact position of the scraper and ensuring full contact between the scraper and the filter sleeve for cleaning.

[0024] The dust removal device used in the production of wireless charging stations collects dust that has fallen into a processing box through a collection box, and splashes water into the processing box when sprayed, thereby utilizing the water flow to humidify the dust inside the processing box, thereby preventing the dust from floating everywhere in the processing box. The inlet of the collection box corresponds to the processing box, so that the dust is not easily deviated when it falls, and the humidification box is convenient for guiding the falling dust.

[0025] The dust removal device for the production of wireless charging stations absorbs fallen dust in a collection box through an adsorption plate, so that the dust gathers at the position of the adsorption plate. The swing bar and the snap plate cooperate to separate the interior of the collection box, which is convenient for filtering the collected dust and ensures that the dust is accumulated together when it falls, thereby increasing the contact area between the adsorption plate and the dust.

[0026] The dust removal device for the production of wireless charging stations is horizontally installed on a collection box via a side connection block, so that the assembly plate can limit the swing range of the swing bar. The swing bar is knocked by a knocking ball when it contacts it, thereby increasing the shaking force of the swing bar and cleaning the swing bar at different positions. The telescopic rod is horizontally installed on the assembly plate so that the telescopic rod reinforces the assembly plate, thereby increasing the bearing capacity of the connection position between the assembly plate and the telescopic rod.

[0027] The dust removal device for the production of wireless charging stations filters the incoming gas through the filter sleeve to prevent direct discharge of gas from the inside of the processing box. The transition pipe transmits the suction force generated by the exhaust fan, thereby reducing the difficulty of gas entering the filter sleeve. The contact block knocks the filter sleeve when rotating, making it easy for the filter sleeve to be knocked to drop residual dust, avoiding dust accumulation inside the filter sleeve and causing blockage, thereby ensuring the circulation speed inside the filter sleeve. BRIEF DESCRIPTION OF THE DRAWINGS

[0028] FIG1 is a schematic diagram of the overall structure of the present invention;

[0029] FIG2 is a cross-sectional view of the present invention as a whole;

[0030] FIG3 is a schematic structural diagram of a pretreatment component of the present invention;

[0031] FIG4 is an enlarged view of the vibration plate of the present invention;

[0032] FIG5 is a schematic structural diagram of a discharge assembly according to the present invention;

[0033] FIG6 is an enlarged view of the side support plate of the present invention;

[0034] FIG7 is a schematic structural diagram of a linkage frame according to the present invention;

[0035] FIG8 is an enlarged view of the splint of the present invention;

[0036] FIG9 is a schematic structural diagram of a collecting assembly according to the present invention;

[0037] FIG10 is a schematic structural diagram of the adsorption disk of the present invention;

[0038] FIG11 is a schematic structural diagram of an assembly stand according to the present invention;

[0039] FIG12 is an enlarged view of a hitting ball according to the present invention;

[0040] FIG13 is a schematic structural diagram of a filter assembly according to the present invention;

[0041] FIG14 is a schematic structural diagram of the filter sleeve of the present invention;

[0042] FIG15 is an enlarged view of the contact block of the present invention.

[0043] Figure: 1, dust suction pipe; 2, treatment box; 3, discharge assembly; 31, discharge shell; 32, connecting sleeve; 33, side support plate; 34, filter sleeve; 35, linkage frame; 351, inner ring; 352, linkage rod; 353, clamping plate; 354, support plate; 355, scraper; 356, fixed plate; 36, adsorption purification cylinder; 4, pretreatment assembly; 41, guide cylinder; 42, blocking ring; 43, movable plate; 44, stretching rod; 45, vibration plate; 46, filter Plate; 5. Collection assembly; 51. Collection box; 52. Humidification box; 53. Adsorption plate; 54. Snap-in plate; 55. Swing bar; 56. Assembly frame; 561. Side block; 562. Assembly plate; 563. Telescopic rod; 564. Reset plate; 565. Extension plate; 566. Knocking ball; 6. Filter assembly; 61. Middle solid plate; 62. Circulation shell; 63. Mounting frame; 64. Filter sleeve; 65. Transition pipe; 66. Contact block; 7. Exhaust fan; 8. Partition plate. DETAILED DESCRIPTION

[0044] The present invention will be described in further detail below with reference to the accompanying drawings and specific embodiments. The embodiments of the present invention are provided for purposes of illustration and description and are not intended to be exhaustive or to limit the invention to the disclosed forms. Many modifications and variations will be apparent to those skilled in the art. The embodiments are chosen and described to better illustrate the principles of the invention and its practical application, and to enable those skilled in the art to understand the invention and design various embodiments with various modifications suitable for specific applications.

[0045] Example 1, please refer to Figures 1 to 15. The present invention provides a technical solution: a dust removal device for the production of wireless charging stations, comprising a processing box 2,

[0046] The dust suction pipe 1 is provided with a suction fan for collecting dust. The inner surface of the dust suction pipe 1 is fixedly connected with a pre-treatment component 4. The end of the dust suction pipe 1 close to the pre-treatment component 4 is connected to the treatment box 2. The inner surface of the treatment box 2 is fixedly connected with a partition plate 8. The side of the partition plate 8 away from the treatment box 2 is fixedly connected with a filter component 6. The top of the partition plate 8 is connected with an exhaust fan 7. The bottom of the treatment box 2 is connected with a collection component 5. The top of the treatment box 2 is connected with a discharge component 3. The suction fan on the dust suction pipe 1 generates suction, so that the dust suction pipe 1 collects dust around the charging seat, which is convenient for transporting the collected dust to the inside of the treatment box 2 for treatment, avoiding the influence of dust adhesion during the processing of the charging seat on subsequent use. The treatment box 2 cooperates with the partition plate 8 to form a treatment chamber, which can use the partition plate 8 to separate the inside of the treatment box 2. The position of 8 near the collecting component 5 has an inclined surface, which can guide the falling of dust, making it convenient for the collecting component 5 to collect dust, avoiding the dust from being scattered in the processing box 2 and increasing the difficulty of cleaning. The partition plate 8 contacts the pre-treatment component 4, so that the pre-treatment component 4 pre-treats the dust and transports the treated gas and dust to a position close to the filter component 6, which is convenient for the filter component 6 to perform secondary filtration of the gas, thereby improving the efficiency of dust cleaning. There is a movable space between the filter component 6 and the partition plate 8, and the dust dropped from the pre-treatment component 4 directly enters the collecting component 5 for collection. When the exhaust fan 7 is working, it can increase the suction force inside the filter component 6 inside the processing chamber, so that the filter component 6 transports the solidified gas through the exhaust fan 7 to the exhaust component 3 for discharge, avoiding blockage in the dust circulation process that affects the efficiency of dust removal;

[0047] The pretreatment component 4 includes a guide tube 41, which is used to guide the circulation of gas. The inner surface of the guide tube 41 is fixedly connected to a blocking ring 42, and the inner surface of the blocking ring 42 is rotatably connected to a movable plate 43. The blocking ring 42 is fixedly connected to a stretching rod 44 near the movable plate 43, and the end of the stretching rod 44 away from the blocking ring 42 is fixedly connected to a filter plate 46, and the side of the filter plate 46 away from the stretching rod 44 is fixedly connected to a vibration plate 45. The outer surface of the guide tube 41 is fixedly connected to the partition plate 8, and the circulation of gas is guided by the guide tube 41 to avoid leakage during gas circulation. The movable plates 43 are evenly distributed inside the blocking ring 42, so that the movable plates 43 are driven by the gas to rotate, thereby utilizing the rotation of the movable plates 43 to divert the circulating gas, and the movable plates 43 cooperate with the blocking ring 42 to reinforce the guide tube 41, thereby increasing the size of the guide tube. 41 itself is stable, the filter disc 46 is gradually separated from the guide tube 41 by the thrust of the gas, and a vibration plate 45 is provided between the two filter discs 46, so that the vibration plate 45 generates vibration when it moves, thereby using the vibration to transmit the residual dust to the filter disc 46 to fall off, thereby preventing the dust adhering to the surface of the filter disc 46 from clogging the filter holes. When the filter disc 46 moves, it flows on the stretching rod 44, which facilitates the stretching rod 44 to extend and support the filter disc 46, thereby preventing the filter disc 46 from tilting after leaving the guide tube 41 and affecting the subsequent movement. When the filter disc 46 loses thrust, the stretching rod 44 contracts, so that the stretching rod 44 drives the filter disc 46 to return to its initial position. The vibration plate 45 can perform telescopic movement when it vibrates, which facilitates the vibration plate 45 to adjust the distance between the two filter discs 46, thereby ensuring that the filter disc 46 remains horizontally placed, so that the filter disc 46 filters the gas multiple times.

[0048] One end of the guide tube 41 close to the partition plate 8 extends to the outside of the dust suction pipe 1 , and the inner surface of the guide tube 41 is slidably connected to the filter plate 46 .

[0049] The bottom of the exhaust assembly 3 passes through the processing box 2 and extends to the interior of the processing box 2 , and the top of the exhaust fan 7 is fixedly connected to the processing box 2 .

[0050] The exhaust assembly 3 includes an exhaust shell 31, the inner surface of the exhaust shell 31 is fixedly connected to a connecting sleeve 32, and the bottom of the connecting sleeve 32 is fixedly connected to a side support plate 33, and the wind force circulated by the exhaust fan 7 is discharged through the exhaust shell 31, and the exhaust shell 31 passes through the processing box 2, avoiding the situation where there is a gap at the connection position of the exhaust shell 31 and causing gas leakage. The connecting sleeve 32 inside the exhaust shell 31 can separate the activity space and use the connecting sleeve 32 to reinforce the exhaust shell 31, and the side support plates 33 are evenly distributed on the connecting sleeve 32, so that the side support plates 33 support the connecting sleeve 32, thereby increasing the bearing capacity of the connecting sleeve 32, and facilitating the side support plates 33 to limit the installation position of the connecting sleeve 32 when contacting the exhaust shell 31, and the position of the connecting sleeve 32 near the side support plates 33 is fixedly connected to the adsorption purification cylinder 36, and the exhaust shell 31 A filter sleeve 34 is fixedly connected to a position near the connecting sleeve 32. The filter sleeve 34 cooperates with the connecting sleeve 32 inside the discharge shell 31 to enable the filter sleeve 34 to filter the discharged gas. At the same time, the adsorption purification cylinder 36 adsorbs and purifies the gas on the connecting sleeve 32 to prevent the discharged gas from containing odor and affecting use. The adsorption purification cylinder 36 cooperates with the side support plate 33 so that multiple adsorption purification cylinders 36 are provided on the connecting sleeve 32 to increase the purification range. There is a movable space between the filter sleeve 34 and the connecting sleeve 32 to facilitate the circulation of gas through the filter sleeve 34 and the circulation of gas when it circulates inside the discharge shell 31, so that the connecting sleeve 32 cooperates with the filter sleeve 34 to block the falling dust. The inner surface of the filter sleeve 34 is rotatably connected to the linkage frame 35, and the top of the linkage frame 35 is fixedly connected to the discharge shell 31.

[0051] The side of the side support plate 33 away from the filter sleeve 34 is fixedly connected to the discharge shell 31 , and the bottom end of the adsorption purification cylinder 36 passes through the connecting sleeve 32 and extends to the outside of the connecting sleeve 32 .

[0052] The linkage frame 35 includes an inner connecting ring 351, the inner surface of the inner connecting ring 351 is rotatably connected to the linkage rod 352, the outer surface of the linkage rod 352 is fixedly connected to the support plate 354, and the support plate 354 is fixedly connected to the position away from the linkage rod 352 with the fixing plate 356. The linkage rod 352 is driven by the wind to rotate on the inner connecting ring 351, so that the linkage rod 352 drives the support plate 354 to rotate, so that the linkage rod 352 and the support plate 354 cooperate to promote the circulation of wind. The inner connecting ring 351 contacts the discharge shell 31 to keep the linkage rod 352 in a vertical position, avoiding the linkage rod 352 from tilting and getting stuck when rotating, and the support plate 354 has a groove, which is convenient for air circulation when the support plate 354 is not rotating, and the fixing plate 356 is fixed by the groove of the support plate 354 to avoid The cam 353 is used to move the filter bag 355 upwards and downwards to move the filter bag 356 downwards so that the filter bag 355 can move freely.

[0053] The bottom end of the linkage rod 352 passes through the inner connecting ring 351 and extends to the outside of the inner connecting ring 351 . The position of the fixing plate 356 close to the clamping plate 353 passes through the supporting plate 354 and extends to the outside of the supporting plate 354 .

[0054] The collecting assembly 5 includes a collecting box 51, and the top of the inner cavity of the collecting box 51 is connected to a humidifying box 52, through which the dust falling from the inside of the processing box 2 is collected. As the dust enters the collecting box 51, the humidifying box 52 sprays atomized water flow to humidify the dust, so that the dust is gathered in the collecting box 51. When the water flow is sprayed, it splashes into the processing box 2, thereby utilizing the water flow to humidify the dust inside the processing box 2, and preventing the dust from floating everywhere in the processing box 2. The inlet of the collecting box 51 corresponds to the processing box 2, so that the dust is not easily offset when it falls. The humidifying box 52 remains horizontal on the collecting box 51, which is convenient for the humidifying box 52 to guide the falling dust. The collecting box 51 is fixedly connected to a clamping plate 54 near the humidifying box 52, and the inner surface of the clamping plate 54 is rotatably connected It is connected to a swing bar 55, and an adsorption plate 53 is fixedly connected to the bottom of the inner cavity of the collection box 51. The adsorption plate 53 adsorbs the fallen dust in the collection box 51, so that the dust gathers at the position of the adsorption plate 53, thereby reducing the difficulty of cleaning. The clamping plate 54 is provided with multiple swing bars 55, so that dust and gas enter the collection box 51 and drive the swing bar 55 to swing. The swing bar 55 adjusts the activity space when it moves, so that the two swing bars 55 cooperate with each other to block the flow of dust, thereby improving the efficiency of dust collection. The swing bar 55 cooperates with the clamping plate 54 to separate the interior of the collection box 51, which is convenient for filtering the collected dust and ensuring that the dust is piled up when it falls, thereby increasing the contact area between the adsorption plate 53 and the dust. The inner surface of the collection box 51 is fixedly connected to an assembly frame 56.

[0055] Among them, the assembly frame 56 includes an assembly plate 562, the outer surface of the assembly plate 562 is fixedly connected to a side block 561, the inner surface of the side block 561 is fixedly connected to a telescopic rod 563, and the side of the telescopic rod 563 away from the assembly plate 562 is fixedly connected to a knocking ball 566. The telescopic rod 563 has its own thrust, so that the telescopic rod 563 is retracted and extended by the pressure of the swing bar 55 through the knocking ball 566, thereby adjusting the position of the knocking ball 566, and the knocking ball 566 is used to knock when it contacts the swing bar 55, thereby increasing the shaking force of the swing bar 55, so that it can clean the swing bar 55 at different positions. The telescopic rod 563 is horizontally installed on the assembly plate 562, so that the telescopic rod 563 reinforces the assembly plate 562, thereby increasing the bearing capacity of the connection position between the assembly plate 562 and the telescopic rod 563. The cam 565 is fixedly connected to the side of the mounting plate 562 close to the telescopic rod 563 to form a spring 566. The cam 566 is fixedly connected to the side of the mounting plate 562 close to the telescopic rod 563 to form a spring 566. The cam 566 is fixedly connected to the side of the mounting plate 562 away from the mounting plate 562 to form a spring 566. The cam 566 is installed on the collecting box 51 for horizontal installation through the side connecting block 561, so that the side connecting block 561 clamps the mounting plate 562, so that the mounting plate 562 can limit the swing range of the swing bar. The cam 566 on the mounting plate 562 rotates when gas circulates inside the collecting box 51, so that the cam 566 is close to the swing bar 55 to limit the range of movement of the swing bar 55. When the cam 566 contacts the swing bar 55, a collision is generated, thereby cleaning the dust adhered to the swing bar 55 and the cam 566. When the cam 566 moves, the reset plate 564 is stretched, so that the reset plate 564 is used to reset the cam 566.

[0056] The outward extension plate 565 is rotatably connected to the assembly plate 562 at a position away from the telescopic rod 563 , and one end of the telescopic rod 563 close to the striking ball 566 passes through the assembly plate 562 and extends to the outside of the assembly plate 562 .

[0057] The filter assembly 6 includes a transition pipe 65, the bottom end of the transition pipe 65 is connected to a circulation shell 62, and the bottom of the circulation shell 62 is connected to a filter sleeve 64. The incoming gas is filtered through the filter sleeve 64, and the filtered gas is transported to the circulation shell 62 for circulation, while dust gradually falls from the inside of the filter sleeve 64. The circulation shell 62 is connected to multiple filter sleeves 64, so that the filter sleeve 64 receives the gas inside the processing box 2, avoiding the direct discharge of gas from the inside of the processing box 2, and the transition pipe 65 transmits the suction force generated by the exhaust fan 7 to ensure that the circulation shell 62 and the filter sleeve 64 have sufficient suction force for gas circulation, thereby reducing the difficulty of gas entering the filter sleeve 64, and the bottom of the filter sleeve 64 The end is fixedly connected with a middle fixed plate 61, and the top of the middle fixed plate 61 is fixedly connected with a mounting frame 63. The mounting frame 63 is rotatably connected with a contact block 66 near the filter sleeve 64. The outer surface of the contact block 66 is slidably connected to the filter sleeve 64. The filter sleeve 64 and the mounting frame 63 are supported by the middle fixed plate 61, so that the contact block 66 on the mounting frame 63 is driven by the gas to rotate. When the contact block 66 rotates, it knocks on the filter sleeve 64, which makes it convenient for the filter sleeve 64 to be knocked and the residual dust falls off, avoiding the accumulation of dust inside the filter sleeve 64 and causing blockage, ensuring the circulation speed inside the filter sleeve 64, and the mounting frame 63 and the contact block 66 can cooperate to limit the two filter sleeves 64, thereby increasing the bearing capacity of the filter sleeve 64.

[0058] Example 2, referring to Figures 1 to 15, based on Example 1, the present invention provides a technical solution: a method for using a dust removal device for wireless charging station production, step 1: placing a processing box 2 near the charging station production location, so that the dust suction pipe 1 is close to the charging station, the suction fan on the dust suction pipe 1 generates suction to collect dust around the charging station, and the collected dust is transported to the guide tube 41 through the dust suction pipe 1. The movable plate 43 inside the guide tube 41 is driven by the wind to rotate inside the blocking ring 42;

[0059] Step 2: Utilize wind force to circulate inside the guide cylinder 41, so that the filter discs 46 are gradually pushed away from the guide cylinder 41 by the wind force. When the filter discs 46 are exposed to the wind force, they filter dust. The vibration plate 45 vibrates as the filter discs 46 move, causing the vibration plate 45 to expand and contract to adjust the distance between the two filter discs 46. The movement of the filter discs 46 drives the stretching rod 44 to expand and contract. The expansion and contraction of the stretching rod 44 can retract the flow filter discs 46 and return them to the inside of the guide cylinder 41 when the wind force disappears.

[0060] Step 3: The dust and gas discharged by the guide tube 41 enter the processing chamber formed by the processing box 2 and the partition plate 8. The middle fixing plate 61 supports the filter sleeve 64 on the partition plate 8. The exhaust fan 7 generates suction and transports the dust and gas through the transition pipe 65 to the circulation shell 62. When the dust and gas enter the filter sleeve 64, they are filtered and then transported to the circulation shell 62 for circulation along with the filtered gas. The gas inside the circulation shell 62 enters the discharge shell 31 through the transition pipe 65 to be discharged.

[0061] Step 4: The contact block 66 on the mounting frame 63 is rotated by the gas, so that the contact block 66 contacts the filter sleeve 64 and knocks it. Then, the dust collected inside the filter sleeve 64 falls into the collection box 51. The humidification box 52 inside the collection box 51 sprays atomized water flow on the fallen dust, so that the water flow humidifies and collects the dust. Part of the water flow enters the processing chamber to humidify the dust, and the adsorption disk 53 adsorbs and purifies the humidified dust. The swing bar 55 is rotated by the gas on the clamping plate 54, so that the distance between the two swing bars 55 is adjusted.

[0062] Step 5: When the swing bar 55 rotates until it contacts the striking ball 566, the striking ball 566 drives the telescopic rod 563 to extend and retract on the assembly plate 562. The assembly plate 562 is mounted horizontally via the side connecting blocks 561. This causes the assembly plate 562 to wobble when the telescopic rod 563 extends and retracts, causing the extended plate 565 to rotate on the assembly plate 562 and squeeze the reset plate 564. The elastic force of the reset plate 564 pushes the extended plate 565.

[0063] Step six: The treated gas enters the exhaust shell 31, so that the filter sleeve 34 filters the gas, and the adsorption purification cylinder 36 adsorbs and purifies the circulating gas. The connecting sleeve 32 diverts the gas circulating inside the exhaust shell 31. When the gas circulates inside the filter sleeve 34, the linkage rod 352 rotates on the inner ring 351, so that the linkage rod 352 drives the fixed plate 356 and the clamping plate 353 to rotate through the support plate 354, and the scraper 355 clamped by the clamping plate 353 rotates on the filter sleeve 34, thereby cleaning the filter sleeve 34.

[0064] Obviously, the embodiments described are only some of the embodiments of the present invention, not all of them. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field and related fields without making creative efforts should fall within the scope of protection of the present invention. Structures, devices, and operating methods not specifically described and explained in the present invention shall be implemented in accordance with conventional means in the field unless otherwise specified or limited.

Claims

1. A dust removal device for the production of wireless charging stands, including a processing box (2), Characterized in that: A dust suction pipe (1), which has a suction fan for dust collection. The inner surface of the dust suction pipe (1) is fixedly connected with a pretreatment component (4). One end of the dust suction pipe (1) close to the pretreatment component (4) is communicated with the processing box (2). The inner surface of the processing box (2) is fixedly connected with a partition plate (8). A filtering component (6) is fixedly connected to the side of the partition plate (8) away from the processing box (2). A suction fan (7) is communicated with the top of the partition plate (8). A collection component (5) is communicated with the bottom of the processing box (2). An exhaust component (3) is communicated with the top of the processing box (2); The pretreatment component (4) includes a diversion cylinder (41) for guiding the flow of gas. The inner surface of the diversion cylinder (41) is fixedly connected with a blocking ring (42). The inner surface of the blocking ring (42) is rotatably connected with a movable plate (43). A tension rod (44) is fixedly connected to the position of the blocking ring (42) close to the movable plate (43). One end of the tension rod (44) away from the blocking ring (42) is fixedly connected with a filtering disc (46). A vibration plate (45) is fixedly connected to the side of the filtering disc (46) away from the tension rod (44). The outer surface of the diversion cylinder (41) is fixedly connected with the partition plate (8).

2. A dust removal device for the production of wireless charging stands according to claim 1, Characterized in that: One end of the diversion cylinder (41) close to the partition plate (8) extends to the outside of the dust suction pipe (1), and the inner surface of the diversion cylinder (41) is slidably connected with the filtering disc (46).

3. A dust removal device for the production of wireless charging stands according to claim 1, Characterized in that: The bottom of the exhaust component (3) penetrates through the processing box (2) and extends to the inside of the processing box (2), and the top of the suction fan (7) is fixedly connected with the processing box (2).

4. A dust removal device for the production of wireless charging stands according to claim 1, Characterized in that: The exhaust component (3) includes an exhaust shell (31). The inner surface of the exhaust shell (31) is fixedly connected with a connecting sleeve (32). A side support plate (33) is fixedly connected to the bottom of the connecting sleeve (32). An adsorption and purification cylinder (36) is fixedly connected to the position of the connecting sleeve (32) close to the side support plate (33). A filtering sleeve (34) is fixedly connected to the position of the exhaust shell (31) close to the connecting sleeve (32). The inner surface of the filtering sleeve (34) is rotatably connected with a linkage frame (35). The top of the linkage frame (35) is fixedly connected with the exhaust shell (31).

5. A dust removal device for the production of wireless charging stands according to claim 4, Characterized in that: One side of the side support plate (33) away from the filtering sleeve (34) is fixedly connected with the exhaust shell (31), and the bottom end of the adsorption and purification cylinder (36) penetrates through the connecting sleeve (32) and extends to the outside of the connecting sleeve (32).

6. The dust removal device for the production of wireless charging stands according to claim 4, characterized in that: The linkage frame (35) includes an inner connecting ring (351), the inner surface of the inner connecting ring (351) is rotatably connected to a linkage rod (352), the outer surface of the linkage rod (352) is fixedly connected to a support plate (354), the support plate (354) is fixedly connected to a fixing plate (356) at a position away from the linkage rod (352), both ends of the fixing plate (356) are fixedly connected to clamping plates (353), and the clamping plates (353) are fixedly connected to scraping plates (355) at positions away from the fixing plate (356).

7. The dust removal device for the production of wireless charging stands according to claim 6, characterized in that: The bottom end of the linkage rod (352) penetrates through the inner connecting ring (351) and extends to the outside of the inner connecting ring (351), and the fixing plate (356) penetrates through the support plate (354) and extends to the outside of the support plate (354) at a position close to the clamping plate (353).

8. The dust removal device for the production of wireless charging stands according to claim 1, characterized in that: The collection assembly (5) includes a collection box (51), a humidifying box (52) is communicated with the top of the inner cavity of the collection box (51), a clamping plate (54) is fixedly connected to the collection box (51) at a position close to the humidifying box (52), a swinging bar (55) is rotatably connected to the inner surface of the clamping plate (54), an adsorption plate (53) is fixedly connected to the bottom of the inner cavity of the collection box (51), and an assembly frame (56) is fixedly connected to the inner surface of the collection box (51).

9. The dust removal device for the production of wireless charging stands according to claim 8, characterized in that: The assembly frame (56) includes an assembly plate (562), a side connection block (561) is fixedly connected to the outer surface of the assembly plate (562), a telescopic rod (563) is fixedly connected to the inner surface of the side connection block (561), a knocking ball (566) is fixedly connected to one side of the telescopic rod (563) away from the assembly plate (562), a reset plate (564) is fixedly connected to one side of the assembly plate (562) close to the telescopic rod (563), and an extension plate (565) is fixedly connected to the reset plate (564) at a position away from the assembly plate (562).

10. The dust removal device for the production of wireless charging stands according to claim 9, characterized in that: The extension plate (565) is rotatably connected to the assembly plate (562) at a position away from the telescopic rod (563), and one end of the telescopic rod (563) close to the knocking ball (566) penetrates through the assembly plate (562) and extends to the outside of the assembly plate (562).

Citation Information

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