Surface floating dust cleaner for automobile parts to be machined

By generating a spiral cyclone through an annular vortex airflow nozzle and airflow nozzle, combined with a dust adsorption component and a ventilation component, the problem of adding process steps in existing cleaning equipment is solved, achieving efficient cleaning and directional dust collection, and improving the working efficiency of the production line.

CN223916161UActive Publication Date: 2026-02-17WULIAN COUNTY HUIDA MASCH CO LTD +1
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Patent Information

Application Number
CN202520764603.2
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-04-22
Publication Date
2026-02-17
Estimated Expiration
2035-04-22

AI Technical Summary

Technical Problem

Existing automotive parts cleaning equipment adds steps to the cleaning and drying process, resulting in a decrease in production line efficiency.

Method used

It uses a ring-shaped vortex airflow nozzle and airflow nozzle to generate a spiral cyclone, which, together with the dust adsorption component and the ventilation component, adsorbs dust through Coulomb force and uses HEPA and ULPA filters to achieve directional dust collection and cleaning.

Benefits of technology

It achieves efficient cleaning of parts surfaces, avoids additional drying steps, and improves the efficiency and cleanliness of the production line.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses a cleaner for floating dust on the surface of an automobile part to be machined, and particularly relates to the technical field of cleaning equipment, the cleaner comprises a base, a cleaning box body, a box body door, a display control screen, a ventilation assembly, a cleaning assembly and a floating dust adsorption assembly, a box door is connected to the edge of the side end face of the cleaning box through a hinge, a display control screen is arranged on the side end face of the cleaning box, and a cleaning assembly is arranged on the top end face of an inner cavity of the cleaning box. A part is placed on the placement table, the surface of the part is cleaned through a first annular vortex airflow spray head, a second annular vortex airflow spray head, a first airflow nozzle and a second airflow nozzle in the annular cleaning head, air exchange is conducted in time through the air exchange assembly, floating dust adsorption is conducted through the floating dust adsorption assembly, and the cleaning effect is achieved; the annular airflow nozzle set is used for generating outward spiral cyclone, directional dust collection is achieved in cooperation with the floating dust adsorption assembly, and the effect of cleaning the surfaces of parts is achieved.
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Description

TECHNICAL FIELD

[0001] The utility model relates to the technical field of cleaning equipment more specifically, the utility model relates to a kind of surface dust cleaner of automobile accessory to be processed. BACKGROUND

[0002] Automobile accessory surface dust cleaner is a kind of equipment for removing dust and impurities on the surface of automobile parts, its main function is to remove the floating dust on the surface of parts quickly through efficient dust removal technology, so as to improve the cleanliness and production efficiency of parts, such equipment usually adopts advanced technologies such as electrostatic neutralization, high-frequency cyclone dust removal or negative pressure dust collection, which can avoid damage to automobile parts, and has good compatibility and flexibility, and can seamlessly connect various production lines.

[0003] For example, application No. CN201920756294.9 discloses an automobile accessory cleaning device, which can effectively clean automobile accessories placed in the metal hollow net through an ultrasonic generator and an ultrasonic vibration plate. The winding motor can drive the winding shaft to rotate, thereby lifting the lifting ring at one end of the steel wire rope, and then lifting the metal hollow net out of the cleaning box for easy removal of the automobile accessories. The hot air blower and nozzle can effectively accelerate the drying efficiency of the automobile accessories in the metal hollow net. The above device cleans the parts and then dries them, which increases the cleaning time and the time for cleaning the parts, which is not conducive to the operation of the production line.

[0004] Therefore, a surface dust cleaner for automobile accessories to be processed is proposed to solve the above problems. UTILITY MODEL CONTENTS

[0005] In order to overcome the above-mentioned defects of the prior art, the utility model provides a surface dust cleaner for automobile accessories to be processed to solve the problems raised in the above background.

[0006] In order to achieve the above object, the utility model provides the following technical scheme: a kind of to be processed automobile accessory surface floating dust cleaner, including base, cleaning box, box door, display control screen, ventilation component, cleaning assembly and floating dust adsorption component, the upper end surface of the base is provided with cleaning box, and the edge of cleaning box side end surface is connected with box door by hinge, the side end surface of the cleaning box is provided with display control screen, the top end surface of the cleaning box inner chamber is provided with cleaning assembly, and cleaning assembly includes mechanical arm and ring type cleaning head, the mechanical arm is installed in the top end surface of cleaning box inner chamber, and the moving end of mechanical arm is provided with ring type cleaning head, the just below of the mechanical arm is provided with placing table, the ring type cleaning head includes first ring type vortex airflow spray head and second ring type vortex airflow spray head, the second ring type vortex airflow spray head is installed below the first ring type vortex airflow spray head, and first ring type vortex airflow spray head and second ring type vortex airflow spray head are in the same center, the bottom end surface of the first ring type vortex airflow spray head is installed with first airflow nozzle, the bottom end surface of the second ring type vortex airflow spray head is installed with second airflow nozzle.

[0007] Preferably, the first airflow nozzle of the first ring type vortex airflow spray head in the ring type cleaning head is inclined, and the first airflow nozzle is provided with several groups, and the output end of the first airflow nozzle is specifically inclined towards the center of the first ring type vortex airflow spray head, the second airflow nozzle of the second ring type vortex airflow spray head in the ring type cleaning head is inclined, and the second airflow nozzle is provided with several groups, and the output end of the second airflow nozzle is specifically inclined towards the center of the second ring type vortex airflow spray head, and the output directions of the first airflow nozzle and the second airflow nozzle are opposite.

[0008] Preferably, the inner cavity of the cleaning box is provided with a ventilation component, and the ventilation component is installed on the top end surface and the bottom end surface of the cleaning box inner cavity, the ventilation component includes an air inlet and a frame, the air inlet is specifically excavated on the upper end surface of the cleaning box, and the inner side of the air inlet is provided with a frame, the inner side of the frame is provided with a HEPA filter screen and a ULPA filter screen, the bottom end surface of the cleaning box inner cavity is provided with an air outlet, and the air outlet is connected with a dust collection box through an air pipe, and the dust collection box is connected with a suction pump.

[0009] Preferably, the inner cavity of the cleaning box is provided with a floating dust adsorption component, and the floating dust adsorption component is installed on the side wall of the cleaning box inner cavity, the floating dust adsorption component is provided with two groups, and the two groups of floating dust adsorption components are symmetrically arranged, the floating dust adsorption component includes an insulating plate, a corona wire and a conductive adsorption plate, the insulating plate is arranged between the corona wire and the conductive adsorption plate, and the corona wire is provided with several groups, and the several groups of corona wires are arranged in array.

[0010] Preferably, the air inlet is connected to the exhaust outlet via the cleaning chamber, and the air pump is connected to the exhaust outlet and the dust collection box via an air pipe.

[0011] Preferably, the insulating plate is made of insulating ceramic material, the corona wire is made of stainless steel bent into shape, the conductive adsorption plate is made of aluminum material, the conductive adsorption plate is connected to the positive terminal of the high voltage DC power supply, and the surface of the conductive adsorption plate is provided with an aluminum oxide insulating coating.

[0012] The technical effects and advantages of this utility model are as follows:

[0013] Compared with existing technologies, this surface dust cleaner for automotive parts undergoing processing involves placing the parts on a platform and cleaning their surfaces using a ring-shaped cleaning head with a first ring-shaped vortex airflow nozzle, a second ring-shaped vortex airflow nozzle, a first airflow nozzle, and a second airflow nozzle. Simultaneously, an air exchange component provides timely ventilation, and a dust adsorption component adsorbs floating dust, achieving a cleaning effect. This eliminates the need to dry the parts; the ring-shaped airflow nozzle assembly generates an outward spiral vortex, which, combined with the dust adsorption component, achieves directional dust collection, resulting in a clean surface for the parts.

[0014] Compared with the prior art, this surface dust cleaner for automotive parts undergoing processing involves placing the parts on a placement table, activating the robotic arm in the cleaning assembly, and rotating the annular cleaning head. The annular cleaning head generates a spiraling outward vortex through the first annular vortex airflow nozzle, the second annular vortex airflow nozzle, the first airflow nozzle, and the second airflow nozzle, creating two sets of airflows in opposite directions, thus facilitating the cleaning of the parts surface.

[0015] Compared with existing technologies, this surface dust cleaner for automotive parts undergoing processing utilizes an insulating plate, corona wire, and conductive adsorption plate in the dust adsorption component. Through high-voltage electrodes, the surface of the parts and the dust carry the same charge. Coulomb force is used to detach the dust from the surface, thereby achieving the effect of adsorbing the dust. The cleaning component uses an annular airflow nozzle group to generate a spiral outward cyclone, which, together with the dust adsorption component, achieves directional dust collection, thereby achieving the effect of cleaning the surface of the parts.

[0016] Compared with existing technologies, this surface dust cleaner for automotive parts undergoing processing uses an air exchange component for ventilation. The air pump is activated, generating suction through an air pipe, dust collection box, and exhaust port. Air is also drawn in through an air inlet, and dust is filtered through HEPA and ULPA filters inside the frame to prevent impurities from entering the cleaning chamber. The system is also monitored via a display control panel to facilitate environmental monitoring during the cleaning process. Attached Figure Description

[0017] Figure 1 This is a schematic diagram of the overall three-dimensional structure of this utility model.

[0018] Figure 2 This is a schematic diagram of the cross-sectional structure of the cleaning box of this utility model.

[0019] Figure 3 This is a cross-sectional view of the cleaning component of this utility model.

[0020] Figure 4 This is a top view schematic diagram of the first annular vortex airflow nozzle of this utility model.

[0021] Figure 5 This is a top view schematic diagram of the second annular vortex airflow nozzle of this utility model.

[0022] Figure 6 This is a cross-sectional view of the ventilation component of this utility model.

[0023] Figure 7 This is a top view of the dust adsorption component of this utility model.

[0024] Figure 8 This is a schematic diagram of a partial cross-sectional structure of the dust adsorption component of this utility model.

[0025] The attached diagram is labeled as follows: 1. Base; 2. Cleaning chamber; 3. Chamber door; 4. Display and control panel; 5. Ventilation assembly; 51. Air inlet; 52. Frame; 53. HEPA filter; 54. ULPA filter; 55. Exhaust port; 56. Air pipe; 57. Dust collection box; 58. Air pump; 6. Cleaning assembly; 61. Robotic arm; 62. Annular cleaning head; 63. Placement platform; 64. First annular vortex airflow nozzle; 65. Second annular vortex airflow nozzle; 66. First airflow nozzle; 67. Second airflow nozzle; 7. Dust adsorption assembly; 71. Insulating board; 72. Corona wire; 73. Conductive adsorption plate. Detailed Implementation

[0026] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the protection scope of the present utility model. Example

[0027] As attached Figures 1 to 8The illustrated dust cleaner for automotive parts includes a base 1, a cleaning chamber 2, a chamber door 3, a display and control screen 4, a ventilation component 5, a cleaning component 6, and a dust adsorption component 7. The cleaning chamber 2 is located on the upper surface of the base 1, and the chamber door 3 is hinged to the edge of the side surface of the cleaning chamber 2. The display and control screen 4 is located on the side surface of the cleaning chamber 2, and the cleaning component 6 is located on the top surface of the inner cavity of the cleaning chamber 2. The cleaning component 6 includes a robotic arm 61 and a ring-shaped cleaning head 62. The robotic arm 61 is installed inside the cleaning chamber 2. The top surface of the cavity and the moving end of the robotic arm 61 are provided with an annular cleaning head 62. A placement platform 63 is provided directly below the robotic arm 61. The annular cleaning head 62 includes a first annular vortex airflow nozzle 64 and a second annular vortex airflow nozzle 65. The second annular vortex airflow nozzle 65 is installed below the first annular vortex airflow nozzle 64, and the first annular vortex airflow nozzle 64 and the second annular vortex airflow nozzle 65 are at the same center. A first airflow nozzle 66 is installed on the bottom surface of the first annular vortex airflow nozzle 64, and the second annular vortex airflow nozzle 65... A second airflow nozzle 67 is installed on the bottom end face of the nozzle 65. The first airflow nozzle 66 of the first annular vortex airflow nozzle 64 in the annular cleaning head 62 is arranged at an angle, and several sets of the first airflow nozzle 66 are provided. The output end of the first airflow nozzle 66 is specifically inclined towards the center of the first annular vortex airflow nozzle 64. The second airflow nozzle 67 of the second annular vortex airflow nozzle 65 in the annular cleaning head 62 is arranged at an angle, and several sets of the second airflow nozzle 67 are provided. The output end of the second airflow nozzle 67 is specifically inclined towards the center of the second annular vortex airflow nozzle 64. The vortex airflow nozzle 65 is arranged at an angle, and the first airflow nozzle 66 and the second airflow nozzle 67 output in opposite directions. By placing the accessory on the placement platform 63, the robotic arm 61 in the cleaning assembly 6 is activated, and the robotic arm 61 drives the annular cleaning head 62 to rotate. The first annular vortex airflow nozzle 64, the second annular vortex airflow nozzle 65, the first airflow nozzle 66 and the second airflow nozzle 67 in the annular cleaning head 62 generate a spiraling vortex, and generate two sets of airflow in opposite directions, which facilitates cleaning the surface of the parts.

[0028] The cleaning chamber 2 has an internal cavity equipped with a ventilation assembly 5, which is installed on the top and bottom surfaces of the cavity. The ventilation assembly 5 includes an air inlet 51 and a frame 52. The air inlet 51 is specifically recessed into the top surface of the cleaning chamber 2, and the frame 52 is located inside the air inlet 51. A HEPA filter 53 and a ULPA filter 54 are located inside the frame 52. An exhaust port 55 is located on the bottom surface of the cleaning chamber 2, and the exhaust port 55 is connected to a dust collection box 57 via an air pipe 56. The dust collection box 57 is connected to an air pump 58. Air inlet 51 is connected to exhaust outlet 55 through cleaning chamber 2. Air pump 58 is connected to exhaust outlet 55 and dust collection box 57 through air pipe 56. Air exchange is performed through air exchange component 5. When air pump 58 is started, it generates suction through air pipe 56, dust collection box 57 and exhaust outlet 55. Air is introduced through air inlet 51. Dust is filtered through HEPA filter 53 and ULPA filter 54 inside frame 52 to prevent impurities from entering the inner cavity of cleaning chamber 2. The display control screen 4 is used for monitoring, which is conducive to monitoring the cleaning environment.

[0029] The inner cavity of the cleaning chamber 2 is equipped with a dust adsorption assembly 7, which is installed on the side wall of the inner cavity of the cleaning chamber 2. Two sets of dust adsorption assemblies 7 are provided, and the two sets of dust adsorption assemblies 7 are arranged symmetrically. Each dust adsorption assembly 7 includes an insulating plate 71, corona wires 72, and a conductive adsorption plate 73. An insulating plate 71 is provided between the corona wires 72 and the conductive adsorption plate 73. Several sets of corona wires 72 are provided and arranged in an array. The insulating plate 71 is made of insulating ceramic material, the corona wires 72 are made of bent stainless steel, and the conductive adsorption plate 73 is made of gold... Made of aluminum, the conductive adsorption plate 73 is connected to the positive terminal of a high-voltage DC power supply to adsorb negatively charged dust particles. The surface of the conductive adsorption plate 73 is coated with an aluminum oxide insulating coating to prevent back corona discharge. The insulating plate 71, corona wire 72 and conductive adsorption plate 73 in the dust adsorption component 7 use high-voltage electrodes to make the surface of the accessory and the dust carry the same charge. The Coulomb force is used to detach the dust from the surface, thus achieving the effect of adsorbing the dust. The cleaning component 6 uses an annular airflow nozzle group to generate a spiral outward cyclone, which, together with the dust adsorption component 7, achieves directional dust collection and achieves the effect of cleaning the surface of the parts.

[0030] The working process of this utility model is as follows: First, the parts are placed on the placement platform 63. The robotic arm 61 in the cleaning component 6 is started, and the robotic arm 61 drives the annular cleaning head 62 to rotate. The first annular vortex airflow nozzle 64, the second annular vortex airflow nozzle 65, the first airflow nozzle 66, and the second airflow nozzle 67 in the annular cleaning head 62 generate spiraling outward vortices, and generate two sets of airflows in opposite directions to clean the surface of the parts. The insulating plate 71, the corona wire 72, and the conductive adsorption plate 73 in the dust adsorption component 7 use high-voltage electrodes to make the surface of the parts and the dust carry the same charge, and through Coulomb force... The cleaning component 6 uses an annular airflow nozzle group to generate a spiral outward cyclone, which, together with the dust adsorption component 7, achieves directional dust collection, resulting in a clean surface for the parts. The ventilation component 5 is used for ventilation, and the suction pump 58 is started. The suction pump 58 generates suction through the air pipe 56, dust collection box 57 and exhaust port 55, and air is drawn in through the air inlet 51. The HEPA filter 53 and ULPA filter 54 on the inner side of the frame 52 are used to filter dust, preventing impurities from entering the inner cavity of the cleaning box 2. The display control screen 4 is used for monitoring, which is conducive to monitoring the cleaning environment.

Claims

1. A surface dust cleaner for automotive parts to be processed, comprising a base (1), a cleaning chamber (2), a chamber door (3), a display and control screen (4), a ventilation assembly (5), a cleaning assembly (6), and a dust adsorption assembly (7), characterized in that: The upper surface of the base (1) is provided with a cleaning box (2), and the edge of the side surface of the cleaning box (2) is connected to a box door (3) by a hinge. The side surface of the cleaning box (2) is provided with a display control screen (4). The top surface of the inner cavity of the cleaning box (2) is provided with a cleaning component (6), and the cleaning component (6) includes a robotic arm (61) and a ring-shaped cleaning head (62). The robotic arm (61) is installed on the top surface of the inner cavity of the cleaning box (2), and the moving end of the robotic arm (61) is provided with a ring-shaped cleaning head (62). A placement platform (63) is provided directly below the robotic arm (61).

2. The surface dust cleaner for automotive parts to be processed according to claim 1, characterized in that: The annular cleaning head (62) includes a first annular vortex airflow nozzle (64) and a second annular vortex airflow nozzle (65). The second annular vortex airflow nozzle (65) is installed below the first annular vortex airflow nozzle (64), and the first annular vortex airflow nozzle (64) and the second annular vortex airflow nozzle (65) are at the same center. A first airflow nozzle (66) is installed on the bottom end face of the first annular vortex airflow nozzle (64), and a second airflow nozzle (67) is installed on the bottom end face of the second annular vortex airflow nozzle (65).

3. The surface dust cleaner for automotive parts to be processed according to claim 1, characterized in that: The first airflow nozzle (66) of the first annular vortex airflow nozzle (64) in the annular cleaning head (62) is arranged at an angle, and several sets of the first airflow nozzle (66) are provided. The output end of the first airflow nozzle (66) is specifically arranged at an angle toward the center of the first annular vortex airflow nozzle (64). The second airflow nozzle (67) of the second annular vortex airflow nozzle (65) in the annular cleaning head (62) is arranged at an angle, and several sets of the second airflow nozzle (67) are provided. The output end of the second airflow nozzle (67) is specifically arranged at an angle toward the center of the second annular vortex airflow nozzle (65). The output directions of the first airflow nozzle (66) and the second airflow nozzle (67) are opposite.

4. The surface dust cleaner for automotive parts to be processed according to claim 1, characterized in that: The cleaning chamber (2) is provided with an air exchange component (5) in its inner cavity. The air exchange component (5) is installed on the top and bottom surfaces of the inner cavity of the cleaning chamber (2). The air exchange component (5) includes an air inlet (51) and a frame (52). The air inlet (51) is specifically excavated on the upper surface of the cleaning chamber (2). The frame (52) is provided on the inner side of the air inlet (51). The HEPA filter (53) and ULPA filter (54) are provided on the inner side of the frame (52). The exhaust port (55) is provided on the bottom surface of the inner cavity of the cleaning chamber (2). The exhaust port (55) is connected to a dust collection box (57) through an air pipe (56). The dust collection box (57) is connected to a vacuum pump (58).

5. A surface dust cleaner for automotive parts to be processed according to claim 1, characterized in that: The cleaning box (2) is provided with a dust adsorption component (7) in its inner cavity. The dust adsorption component (7) is installed on the side wall of the inner cavity of the cleaning box (2). There are two sets of the dust adsorption component (7), and the two sets of the dust adsorption component (7) are arranged symmetrically. The dust adsorption component (7) includes an insulating plate (71), a corona wire (72) and a conductive adsorption plate (73). An insulating plate (71) is provided between the corona wire (72) and the conductive adsorption plate (73). There are several sets of corona wires (72), and the several sets of corona wires (72) are arranged in an array.

6. The surface dust cleaner for automotive parts to be processed according to claim 4, characterized in that: The air inlet (51) is connected to the exhaust outlet (55) through the cleaning box (2), and the air pump (58) is connected to the exhaust outlet (55) and the dust collection box (57) through the air pipe (56).

7. A surface dust cleaner for automotive parts to be processed according to claim 5, characterized in that: The insulating plate (71) is made of insulating ceramic material, the corona wire (72) is made of stainless steel bent, the conductive adsorption plate (73) is made of aluminum material, the conductive adsorption plate (73) is connected to the positive terminal of the high voltage DC power supply, and the surface of the conductive adsorption plate (73) is provided with an aluminum oxide insulating coating.

Citation Information

Patent Citations

  • Automobile part cleaning equipment

    CN210138898U