Wire rod surface dust removal device

By designing dust removal brushes and suction components with adjustable spacing and deflection angles, the problem of poor dust removal effect on the surface of aluminum stranded wire was solved, achieving efficient cleaning and reducing secondary pollution.

CN224114899UActive Publication Date: 2026-04-14JIANGSU ZHONGTIAN TECH CO LTD +2
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2026-02-13
Publication Date
2026-04-14

AI Technical Summary

Technical Problem

Existing technologies have poor dust removal effects on the surface of aluminum stranded wires, especially in cleaning highly adhesive stains, and the detached dust causes secondary pollution.

Method used

A dust removal device for wire surfaces was designed, including a dust removal brush with adjustable spacing and deflection angle and a dust collection component. The dust removal brush is driven to rotate and sweep away dust by a drive component, and the dust is absorbed by the dust collection component. The dust collection hood restricts the dust from drifting.

Benefits of technology

It improves the cleaning effect of aluminum stranded wire surface, reduces secondary pollution of the environment by dust, and enhances the accuracy of visual surface quality inspection and the efficiency of quality management.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model provides a wire rod surface dust removal device, and relates to the technical field of dust removal equipment. The dust removal brush is provided with a driving part, and the driving part is used for driving the dust removal brush to rotate so as to clean dust on the surface of the wire; the dust removal brush is movably arranged on the rack, so that the distance and / or the deflection angle of the dust removal brush relative to the wire can be adjusted; and the dust suction assembly is used for sucking dust. According to the wire surface dust removal device provided by the invention, the problem that the dust removal effect on the surface of an aluminum stranded wire is poor is solved.
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Description

Technical Field

[0001] This application relates to the field of dust removal equipment technology, and in particular to a dust removal device for wire surfaces. Background Technology

[0002] Aluminum stranded wire is made by twisting together multiple aluminum monofilaments. During the drawing process, the surface of the aluminum monofilaments will absorb a large amount of dust (such as aluminum powder), which will affect the surface quality of the finished aluminum stranded wire.

[0003] In related technologies, high-pressure airflow is often used to blow the surface of aluminum stranded wire during the transportation process, thereby removing dust and other adhering substances from the surface of the aluminum stranded wire through air blowing.

[0004] However, some dust mixes with the wire drawing oil to form highly adhesive stains, resulting in poor cleaning effect of air blowing. Furthermore, the detached dust floats in the air, causing secondary pollution, which in turn makes the dust removal effect on the aluminum stranded wire surface poor. Utility Model Content

[0005] This application provides a dust removal device for wire surfaces to solve the problem of poor dust removal effect on the surface of aluminum stranded wires in related technologies.

[0006] This application provides a wire surface dust removal device, comprising:

[0007] frame;

[0008] A dust removal brush is provided with a driving component, which drives the dust removal brush to rotate to clean dust from the surface of the wire; the dust removal brush is movably mounted on the frame so that the spacing and / or deflection angle of the dust removal brush relative to the wire is adjustable.

[0009] A dust collection assembly for absorbing the dust.

[0010] In one possible implementation, at least two dust removal brushes are provided, and the at least two dust removal brushes are respectively provided on opposite sides of the wire.

[0011] In one possible implementation, it further includes two first connectors, which are respectively disposed on opposite sides of the wire, and each first connector is provided with at least one of the dust removal brushes.

[0012] The first connector is slidably connected to the frame so that the spacing between the dust removal brush and the wire is adjustable.

[0013] In one possible implementation, a second connector is rotatably mounted on the first connector, and the dust removal brush is mounted on the second connector so that the deflection angle of the dust removal brush relative to the wire is adjustable.

[0014] In one possible implementation, the rotation axis of the second connector is parallel to the axis of the wire, and the rotation axis of the dust removal brush is perpendicular to the axis of the wire.

[0015] In one possible implementation, a controller is also included, the drive unit and the controller being electrically connected, the controller being configured to control the drive unit to adjust the output rotation speed according to the conveying speed of the wire, thereby adjusting the rotation speed of the dust removal brush.

[0016] In one possible implementation, a dust collection hood is also included, which is used to cover the portion of the wire corresponding to the dust removal brush and the dust removal brush;

[0017] The dust collection component is connected to the interior of the dust collection hood.

[0018] In one possible implementation, the dust collection assembly includes a dust collection bin and a dust collection pipe, the dust collection pipe connecting the interior of the dust collection bin to the interior of the dust collection hood;

[0019] The dust collection bin is equipped with a negative pressure component, which is used to create a negative pressure state inside the dust collection bin.

[0020] In one possible implementation, at least two dust collection hoods are provided, and at least two of the dust collection hoods are distributed circumferentially along the wire.

[0021] In one possible implementation, an elastic layer is provided on the inner surface of the dust collection hood.

[0022] This application provides a wire surface dust removal device, comprising: a frame; a dust removal brush, the dust removal brush being equipped with a driving component for rotating the dust removal brush to clean dust from the wire surface; the dust removal brush is movably mounted on the frame so that the distance and / or deflection angle of the dust removal brush relative to the wire is adjustable; and a dust collection component for absorbing dust. Thus, the dust removal brush can be rotated by the driving component to clean dust from the surface of wires (such as aluminum stranded wire), while effectively cleaning highly adhesive stains (such as dust mixed with drawing oil), improving the cleaning effect on the aluminum stranded wire surface. The dust collection component absorbs scattered dust, reducing the possibility of secondary pollution to the surrounding environment. Furthermore, the distance and / or deflection angle of the dust removal brush relative to the aluminum stranded wire can be adaptively adjusted according to actual needs to ensure effective contact between the dust removal brush and the aluminum stranded wire surface, while also facilitating multi-angle contact, thereby optimizing the dust removal effect. This solves the problem of poor dust removal effect on the surface of aluminum stranded wire in related technologies. Attached Figure Description

[0023] The accompanying drawings, which are incorporated in and form part of this specification, illustrate embodiments consistent with this application and, together with the description, serve to explain the principles of this application.

[0024] Figure 1 This is a schematic diagram of the structure of a wire surface dust removal device provided in an embodiment of this application;

[0025] Figure 2 for Figure 1 Schematic diagram of the installation structure of the dust removal brush;

[0026] Figure 3 for Figure 1 A schematic diagram of the structure of the central dust collection hood.

[0027] Explanation of reference numerals in the attached figures:

[0028] 10-Aluminum stranded wire;

[0029] 100-rack;

[0030] 200-Dust Removal Brush;

[0031] 300 - Vacuum suction assembly; 310 - Dust collection bin; 320 - Vacuum suction pipe;

[0032] 400 - First connector;

[0033] 500 - Second connector;

[0034] 600 - Dust collection hood; 610 - Folding section; 620 - Elastic layer.

[0035] The accompanying drawings have illustrated specific embodiments of this application, which will be described in more detail below. These drawings and descriptions are not intended to limit the scope of the concept in any way, but rather to illustrate the concept of this application to those skilled in the art through reference to specific embodiments. Detailed Implementation

[0036] Exemplary embodiments will now be described in detail, examples of which are illustrated in the accompanying drawings. When the following description relates to the drawings, unless otherwise indicated, the same numbers in different drawings denote the same or similar elements. The embodiments described in the following exemplary embodiments do not represent all embodiments consistent with this application. Rather, they are merely examples of apparatuses and methods consistent with some aspects of this application as detailed in the appended claims.

[0037] In related technologies, aluminum stranded wire is the core conductor material for power transmission and communication cables. It is made by twisting multiple aluminum monofilaments together, and its production process usually includes two key steps: wire drawing and stranding. During the wire drawing process (which uses wire drawing oil), a large amount of dust (such as aluminum powder) is adsorbed on the surface of the aluminum monofilaments, affecting the surface quality of the finished aluminum stranded wire.

[0038] Therefore, after aluminum monofilaments are twisted into aluminum stranded wire, high-pressure airflow is often used to blow the surface of the aluminum stranded wire during the transportation process (i.e., when it moves along its own axis), so as to remove dust and other adhering substances from the surface of the aluminum stranded wire by air blowing.

[0039] However, some dust on the aluminum stranded wire mixes with the drawing oil used in the drawing process to form highly adhesive stains, resulting in poor cleaning effect of air blowing; and the dust that falls off floats in the air, causing secondary pollution, which in turn makes the overall dust removal effect poor.

[0040] Based on this, this application provides a wire surface dust removal device, including: a frame; a dust removal brush, the dust removal brush being equipped with a driving component, the driving component being used to drive the dust removal brush to rotate to clean dust from the surface of the wire; the dust removal brush is movably mounted on the frame so that the distance and / or deflection angle of the dust removal brush relative to the wire is adjustable; and a dust collection component, the dust collection component being used to absorb dust. Thus, the dust removal brush can be driven to rotate by the driving component to clean dust from the surface of the wire (such as aluminum stranded wire), while effectively cleaning highly adhesive stains (such as dust mixed with drawing oil), improving the cleaning effect of the aluminum stranded wire surface. The dust collection component absorbs scattered dust, reducing the possibility of secondary pollution to the surrounding environment. Furthermore, the distance and / or deflection angle of the dust removal brush relative to the aluminum stranded wire can be adaptively adjusted according to actual needs to ensure the contact effect between the dust removal brush and the aluminum stranded wire surface, while facilitating multi-angle contact, thereby optimizing the dust removal effect. This solves the problem of poor dust removal effect on the surface of aluminum stranded wire in related technologies.

[0041] The technical solution of this application and how the technical solution of this application solves the above-mentioned technical problems are described in detail below with specific embodiments. These specific embodiments can be combined with each other, and the same or similar concepts or processes may not be described again in some embodiments. The embodiments of this application will be described below with reference to the accompanying drawings.

[0042] like Figure 1 and Figure 2 As shown in the figure, an embodiment of this application provides a wire surface dust removal device, comprising:

[0043] 100 racks;

[0044] Dust removal brush 200 is provided with a driving component, which is used to drive the dust removal brush 200 to rotate to clean the dust on the surface of the wire; the dust removal brush 200 is movably mounted on the frame 100 so that the distance and / or deflection angle of the dust removal brush 200 relative to the wire can be adjusted.

[0045] The dust collection component 300 is used to absorb dust.

[0046] It should be noted that in this embodiment, aluminum stranded wire 10 is used as an example. Of course, this wire surface dust removal device can also be applied to wires in other fields, such as cables and steel cables.

[0047] The structure of the frame 100 is not limited. The dust removal brush 200 is movably mounted on the frame 100, so that the spacing and deflection angle of the dust removal brush 200 relative to the aluminum stranded wire 10 are adjustable. The dust removal brush 200 can be a cylindrical brush or other types of brushes, and there are no restrictions on this.

[0048] The rotation axis of the dust removal brush 200 can extend along the length or width of the aluminum stranded wire 10, and can also form a certain angle with the aluminum stranded wire 10; in this embodiment, the rotation axis of the dust removal brush 200 extends along the width of the aluminum stranded wire 10, that is, the dust removal brush 200 is perpendicular to the aluminum stranded wire 10.

[0049] The driving component (not shown in the figure) is a motor, and the model is not limited, but a servo motor is preferred. The driving component can be mounted on the frame 100 by screwing, welding or other means, so that the driving component can drive the dust removal brush 200 to rotate. For example, the output shaft of the driving component can be directly coaxially connected to the dust removal brush 200; the output shaft of the driving component can also be connected to the dust removal brush 200 through gear transmission, chain transmission or other transmission methods.

[0050] Therefore, during use, when conveying the aluminum stranded wire 10 (i.e., when the aluminum stranded wire 10 moves along its own axis), the dust removal brush 200 can contact the surface of the aluminum stranded wire 10, and then the drive component drives the dust removal brush 200 to rotate, thereby cleaning the dust on the surface of the aluminum stranded wire 10. It can also effectively clean highly adhesive stains (such as dust mixed with drawing oil), improving the cleaning effect on the surface of the aluminum stranded wire 10. This solves the problem of poor dust removal effect on the surface of the aluminum stranded wire 10 in related technologies. This makes subsequent visual surface quality inspection of the aluminum stranded wire 10 more accurate, improving quality management efficiency.

[0051] At the same time, the dust collection component 300 absorbs the scattered dust, reducing the possibility of secondary pollution to the surrounding environment.

[0052] In addition, the spacing and / or deflection angle of the dust removal brush 200 relative to the aluminum stranded wire 10 can be adaptively adjusted according to actual needs to ensure the contact effect between the dust removal brush 200 and the surface of the aluminum stranded wire 10, while facilitating multi-angle contact and thus optimizing the dust removal effect.

[0053] In some embodiments, such as Figure 1 and Figure 2 As shown, at least two dust removal brushes 200 are provided, and at least two dust removal brushes 200 are respectively provided on opposite sides of the wire.

[0054] In other words, the number of dust removal brushes 200 can be two, three, four, etc. In this embodiment, only two dust removal brushes 200 are provided, and the two dust removal brushes 200 respectively contact the opposite sides of the aluminum stranded wire 10.

[0055] Understandably, during the conveying process, the aluminum stranded wire 10 can pass between the two dust removal brushes 200, and the two dust removal brushes 200 respectively contact the opposite sides of the aluminum stranded wire 10.

[0056] Therefore, multiple dust brushes 200 can be used simultaneously to clean the surface of the aluminum stranded wire 10, effectively increasing the cleaning area and making dust removal more comprehensive and efficient.

[0057] During implementation, two driving components can be set up to drive the two dust removal brushes 200 to rotate respectively.

[0058] In some embodiments, such as Figure 2 As shown, the wire surface dust removal device also includes two first connectors 400, which are respectively arranged on opposite sides of the wire, and each first connector 400 is provided with at least one dust removal brush 200.

[0059] The first connector 400 is slidably connected to the frame 100 so that the spacing between the dust removal brush 200 and the wire is adjustable.

[0060] The shape of the first connecting member 400 is not limited, and can be block-shaped, strip-shaped, plate-shaped, or irregularly shaped. It should be noted that the two first connecting members 400 are respectively disposed on opposite sides of the aluminum stranded wire 10, and both first connecting members 400 are slidably connected to the frame 100 in the direction pointing towards the aluminum stranded wire 10. In this embodiment, the two dust removal brushes 200 are respectively disposed on the two first connecting members 400.

[0061] Therefore, the distance between the dust removal brush 200 and the aluminum stranded wire 10 can be adjusted by sliding the two first connecting parts 400 to ensure effective contact between the dust removal brush 200 and the aluminum stranded wire 10.

[0062] In addition, in some scenarios, any of the first connectors 400 can be slid to adjust the distance between one of the dust removal brushes 200 and the aluminum stranded wire 10, which is equivalent to adjusting the distance between the two dust removal brushes 200. At this time, the aluminum stranded wire 10 can pass between the two dust removal brushes 200, which can also achieve the purpose of ensuring effective contact between the dust removal brush 200 and the aluminum stranded wire 10.

[0063] For the sliding drive method of the first connecting member 400, a cylinder, hydraulic cylinder, electric telescopic rod, lead screw motor or other drive methods (not shown in the figure) can be used to drive it to achieve the purpose of automatically controlling the sliding of the first connecting member 400.

[0064] In practice, a guide rail can be installed on the frame 100, extending along the sliding direction of the first connector 400, with the first connector 400 slidably engaged with the guide rail. This guide rail can then guide the sliding process of the first connector 400, effectively ensuring the stability of the first connector 400 during sliding.

[0065] Furthermore, in some embodiments, such as Figure 2 As shown, a second connector 500 is rotatably mounted on the first connector 400, and a dust removal brush 200 is mounted on the second connector 500 so that the deflection angle of the dust removal brush 200 relative to the wire is adjustable.

[0066] The shape of the second connector 500 is not limited, and it can be block-shaped, strip-shaped, plate-shaped, or irregularly shaped. The second connector 500 can be rotatably connected to the first connector 400 via a rotating shaft. At this time, the two dust removal brushes 200 can be rotatably connected to the second connectors 500 on the two first connectors 400 via rotating shafts respectively.

[0067] Therefore, in addition to adjusting the distance between the dust removal brush 200 and the aluminum stranded wire 10 (or the distance between the two dust removal brushes 200) by sliding the first connecting member 400, the deflection angle of the dust removal brush 200 relative to the aluminum stranded wire 10 can also be adjusted by rotating the second connecting member 500. In other words, the deflection angle of the rotation axis of the dust removal brush 200 relative to the aluminum stranded wire 10 can be adjusted accordingly, allowing the dust removal brush 200 to contact the aluminum stranded wire 10 from different directions, resulting in more comprehensive dust removal and a better dust removal effect.

[0068] The rotation of the second connecting member 500 can be driven by a motor (not shown in the figure) mounted on the first connecting member 400. The type of motor is not limited, but a servo motor is preferred. In implementation, the motor can be fixed to the first connecting member 400 by welding, screwing, or other methods. The motor's output shaft can be directly coaxially connected to the rotating shaft of the second connecting member 500, or it can be connected to the rotating shaft of the second connecting member 500 via gear transmission, chain transmission, or other transmission methods. There are no restrictions on this, as long as the motor can automatically drive the second connecting member 500 to deflect.

[0069] In general, the sliding of the first connector 400 and the rotation of the second connector 500 can be automatically controlled by the corresponding drive source, thereby automatically adjusting the spacing and deflection angle of the dust removal brush 200 relative to the aluminum stranded wire 10, improving the overall automation performance of the device, enhancing ease of use, and ensuring that dirt on the surface of the aluminum stranded wire 10 can be cleaned.

[0070] Therefore, since the dust removal brush 200 needs to be deflected via the second connector 500, the drive unit that controls the rotation of the dust removal brush 200 can be installed on the second connector 500 during implementation to ensure that the drive unit can normally drive the dust removal brush 200 to rotate when it deflects.

[0071] It should be noted that, in this embodiment, the rotation axis of the second connector 500 is parallel to the axis of the wire (i.e., aluminum stranded wire 10), and the rotation axis of the dust removal brush 200 is perpendicular to the axis of the wire (i.e., aluminum stranded wire 10).

[0072] Therefore, when rotating the second connector 500, the deflection angle of the dust removal brush 200 relative to the aluminum stranded wire 10 is adjusted more effectively.

[0073] In other embodiments, the rotation axis of the second connector 500 may also form other angles with the aluminum stranded wire 10, and there are no restrictions on this.

[0074] In implementation, the wire surface dust removal device also includes a controller (not shown in the figure). The drive unit and the controller are electrically connected. The controller is used to control the drive unit to adjust the output speed according to the conveying speed of the wire (i.e., aluminum stranded wire 10), so as to dynamically adjust the speed of the dust removal brush 200. The controller can be an existing product, and its structure is not limited.

[0075] For example, under the control of the controller, the output speed of the drive unit (i.e., the speed of the dust removal brush 200) can be made proportional to the conveying speed of the aluminum stranded wire 10. For instance, when the conveying speed of the aluminum stranded wire 10 is high, the speed of the dust removal brush 200 is also high; conversely, when the conveying speed of the aluminum stranded wire 10 is low, the speed of the dust removal brush 200 is also low.

[0076] Therefore, based on the conveying speed of the aluminum stranded wire 10, the controller can automatically calculate and match the appropriate drive unit output speed, thereby automatically adjusting the speed of the dust removal brush 200 to ensure dust removal effect and reasonable energy consumption control.

[0077] In some embodiments, such as Figure 1 As shown, the wire surface dust removal device also includes a dust collection hood 600, which is used to cover the part of the wire corresponding to the dust removal brush 200 and the dust removal brush 200.

[0078] The dust collection component 300 is internally connected to the dust collection hood 600.

[0079] The dust collection hood 600 can be mounted on the frame 100, or it can be supported by a bracket to ensure that the dust collection hood 600 is securely mounted on the side of the aluminum stranded wire 10 and covers the corresponding parts of the aluminum stranded wire 10 and the dust removal brush 200. In practice, the dust collection hood 600 can be connected to the frame 100 or the bracket by screwing, welding or other means.

[0080] The dust collection component 300 is internally connected to the dust collection hood 600.

[0081] Therefore, when the dust brush 200 cleans the surface of the aluminum stranded wire 10, the dust collection hood 600 can effectively limit the range of dust dispersion, further reducing the possibility of secondary pollution to the surrounding environment. Subsequently, the dust can be absorbed by the dust collection component 300. Since the dust collection hood 600 also has a certain airflow gathering effect, the dust absorption effect is even better.

[0082] In some embodiments, such as Figure 1 As shown, at least two dust collection hoods 600 can be provided, and at least two dust collection hoods 600 are distributed circumferentially along the wire. In this case, the dust collection assembly 300 is in communication with the interior of each dust collection hood 600.

[0083] Therefore, by setting up multiple dust collection hoods 600, dust can be covered from multiple different directions, further reducing the possibility of dust drifting to the surrounding environment and causing secondary pollution.

[0084] When implementing, such as Figure 1 and Figure 3 As shown, the opening edge of the dust collection hood 600 can also be folded outward to form a folded part 610, so that the dust collection hood 600 forms an open structure, appropriately increasing the coverage area and dust collection area of ​​the dust collection hood 600, and improving the dust absorption effect.

[0085] In some embodiments, such as Figure 3 As shown, an elastic layer 620 is provided on the inner surface of the dust collection hood 600.

[0086] The elastic layer 620 can be a rubber layer or a silicone layer, and can be laid on the inner surface of the dust collection hood 600 by bonding, screwing or other means. Thus, the elastic layer 620 can seal the gaps on the dust collection hood 600, increasing the dust collection capacity of the dust collection hood 600; at the same time, it reduces the noise generated by dust impacting the inner surface of the dust collection hood 600 when absorbing dust.

[0087] In some embodiments, such as Figure 1 As shown, the dust collection assembly 300 includes a dust collection bin 310 and a dust collection pipe 320, the dust collection pipe 320 connecting the interior of the dust collection bin 310 to the interior of the dust collection hood 600;

[0088] The dust collection bin 310 is equipped with a negative pressure component, which is used to create a negative pressure state inside the dust collection bin 310.

[0089] The structure of the dust collection bin 310 is not limited, as long as it has an internal cavity capable of holding dust. A negative pressure component (not shown in the figure) is installed on the dust collection bin 310. This component can be a vacuum pump, and the model is not limited. The suction end of the negative pressure component is connected to the interior of the dust collection bin 310, allowing the air inside the dust collection bin 310 to be extracted during operation, creating a negative pressure state inside the dust collection bin 310.

[0090] The suction pipe 320 can be a flexible tube (such as silicone) or a rigid tube (such as plastic, stainless steel, etc.), and there are no restrictions on its material. It should be noted that the number of suction pipes 320 corresponds to the number of dust collection hoods 600, so that each suction pipe 320 can connect the inside of the dust collection bin 310 to the inside of each dust collection hood 600.

[0091] In addition, the suction pipe 320 can be divided into a main pipe and multiple branch pipes, with the number of branch pipes corresponding to the number of dust collection hoods 600, so that the main pipe is connected to the dust collection bin 310, and each branch pipe is connected to the main pipe and each dust collection hood 600 respectively.

[0092] Therefore, when in use, the negative pressure component is activated, which creates an airflow that flows into the dust collection bin 310 within the dust collection hood 600, the dust collection pipe 320, and the dust collection bin 310. This airflow draws in the dust inside the dust collection hood 600 and collects it in the dust collection bin 310, thereby achieving the purpose of dust absorption.

[0093] In some embodiments, the dust collection bin 310 of the dust collection assembly 300 can be filled with water to a certain depth. In this case, one end of the dust collection pipe 320 connected to the dust collection bin 310 can extend below the water surface, while the part of the negative pressure component connected to the dust collection bin 310 is above the water surface. As a result, the dust entering the dust collection bin 310 can settle in the water, reducing the possibility of dust affecting the negative pressure component.

[0094] In some embodiments, the dust collection component 300 may also be equipped with a filter screen at the end of the negative pressure component that is connected to the dust collection bin 310, depending on actual needs, to filter out certain impurities and reduce the possibility of impurities affecting the negative pressure component.

[0095] It should be noted that the dust brush 200 can also be replaced with other cleaning tools depending on the type of cord.

[0096] In summary, the wire surface dust removal device provided in this application embodiment, during the conveying of the aluminum stranded wire 10 (i.e., when the aluminum stranded wire 10 moves along its own axis), allows the dust removal brush 200 to contact the surface of the aluminum stranded wire 10. The drive component then rotates the dust removal brush 200 to clean the dust on the surface of the aluminum stranded wire 10. Simultaneously, it effectively cleans highly adhesive stains (such as dust mixed with drawing oil), improving the cleaning effect on the surface of the aluminum stranded wire 10. This solves the problem of poor dust removal effect on the surface of the aluminum stranded wire 10 in related technologies. It makes subsequent visual surface quality inspection of the aluminum stranded wire 10 more accurate, improving quality management efficiency.

[0097] Meanwhile, the dust collection component 300 absorbs scattered dust, reducing the possibility of secondary pollution to the surrounding environment. In addition, the spacing and / or deflection angle of the dust removal brush 200 relative to the aluminum stranded wire 10 can be adaptively adjusted according to actual needs to ensure the contact effect between the dust removal brush 200 and the surface of the aluminum stranded wire 10, while facilitating multi-angle contact and thus optimizing the dust removal effect.

[0098] Finally, it should be noted that other embodiments of this utility model will readily occur to those skilled in the art upon consideration of the specification and practice of the utility model disclosed herein. This utility model is intended to cover any variations, uses, or adaptations of this utility model that follow the general principles of this utility model and include common knowledge or customary techniques in the art not disclosed herein, and is not limited to the precise structures described above and shown in the accompanying drawings, and various modifications and changes can be made without departing from its scope. The scope of this utility model is limited only by the appended claims.

Claims

1. A dust removal device for wire surfaces, characterized in that, include: Rack (100); A dust removal brush (200) is provided with a driving member, which is used to drive the dust removal brush (200) to rotate to clean the dust on the surface of the wire; the dust removal brush (200) is movably mounted on the frame (100) so that the spacing and / or deflection angle of the dust removal brush (200) relative to the wire is adjustable; A dust collection assembly (300) is used to absorb the dust.

2. The wire surface dust removal device according to claim 1, characterized in that, At least two dust removal brushes (200) are provided, and at least two dust removal brushes (200) are respectively provided on opposite sides of the wire.

3. The wire surface dust removal device according to claim 2, characterized in that, It also includes two first connectors (400), which are respectively disposed on opposite sides of the wire, and each first connector (400) is provided with at least one of the dust removal brushes (200). The first connector (400) is slidably connected to the frame (100) so that the spacing between the dust removal brush (200) and the wire is adjustable.

4. The wire surface dust removal device according to claim 3, characterized in that, A second connector (500) is rotatably disposed on the first connector (400), and the dust removal brush (200) is disposed on the second connector (500) so that the deflection angle of the dust removal brush (200) relative to the wire is adjustable.

5. The wire surface dust removal device according to claim 4, characterized in that, The rotation axis of the second connector (500) is parallel to the axis of the wire, and the rotation axis of the dust removal brush (200) is perpendicular to the axis of the wire.

6. The wire surface dust removal device according to claim 1, characterized in that, It also includes a controller, the drive unit and the controller are electrically connected, the controller is used to control the drive unit to adjust the output speed according to the conveying speed of the wire, so as to adjust the speed of the dust removal brush (200).

7. The wire surface dust removal device according to any one of claims 1-6, characterized in that, It also includes a dust collection hood (600) for covering the portion of the wire corresponding to the dust removal brush (200) and the dust removal brush (200). The dust collection assembly (300) is connected to the interior of the dust collection hood (600).

8. The wire surface dust removal device according to claim 7, characterized in that, The dust collection assembly (300) includes a dust collection bin (310) and a dust collection pipe (320), the dust collection pipe (320) connecting the interior of the dust collection bin (310) to the interior of the dust collection hood (600); The dust collection bin (310) is provided with a negative pressure component, which is used to create a negative pressure state inside the dust collection bin (310).

9. The wire surface dust removal device according to claim 7, characterized in that, At least two dust collection hoods (600) are provided, and at least two of the dust collection hoods (600) are distributed circumferentially along the wire.

10. The wire surface dust removal device according to claim 7, characterized in that, An elastic layer (620) is provided on the inner surface of the dust collection hood (600).