Cleaning device for enameled copper flat wire production

By using a clamping cleaning structure consisting of a main cleaning roller, a secondary cleaning roller, and a partition component in the production of enameled copper flat wire, combined with a hydrophilic sponge absorbent roller and a high-speed airflow fan, the problems of cumbersome connection of cleaning equipment and damage during transportation are solved, achieving efficient and seamless cleaning, dehydration, and drying processes.

CN121847495APending Publication Date: 2026-04-14JIANGXI JIANGTONG HUADONG ELECTRICAL NEW MATERIAL TECH CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2026-03-13
Publication Date
2026-04-14

AI Technical Summary

Technical Problem

In the current production process of enameled copper flat wire, the cleaning equipment is cumbersome to connect, resulting in a waste of time and manpower, and problems such as deviation, wrinkling or surface scratches are easy to occur during transportation.

Method used

The main cleaning roller and the auxiliary cleaning roller are combined with the elastic pressure roller to form a clamping cleaning structure. Combined with the internal partition component, the cleaning box is divided into multiple functional areas. Hydrophilic sponge water-absorbing rollers and high-speed airflow fans are used for water removal and drying, forming a continuous cleaning, water removal and drying process.

Benefits of technology

It improves cleaning efficiency, reduces friction and scratches, prevents enameled copper flat wire from deviating and wrinkling, and achieves seamless connection between various processes and efficient production.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention relates to enameled wires, in particular to a cleaning device for enameled copper flat wire production. Comprising a cleaning box and a cleaning device, the cleaning device is arranged in the cleaning box, the cleaning device comprises a main cleaning roller and an auxiliary cleaning roller which are rotationally connected with the interior of the cleaning box, a water removal device is arranged in the cleaning box, and the water removal device comprises two placement plates fixedly installed in the cleaning box; a blow-drying device is arranged in the cleaning box, the blow-drying device comprises a mounting groove formed in the cleaning box, a main cleaning roller and an auxiliary cleaning roller are arranged to be matched with an elastic pressing roller to form a clamping type cleaning structure, and a spring is elastically pressed to be adaptive to flat wires of different specifications; according to the water removal device, a hydrophilic sponge water absorption roller is matched with a sliding clamping roller to form a clamping water removal structure, blowing is conducted through a high-speed airflow fan of the blow-drying device, and the enameled copper flat wire is supported to be in a straight tensioning state through a top roller.
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Description

Technical Field

[0001] This invention relates to enameled wire, and more specifically, to a cleaning apparatus for the production of enameled copper flat wire. Background Technology

[0002] Enameled wire is a major type of winding wire, consisting of a conductor and an insulation layer. The bare wire is annealed and softened, then coated with enamel multiple times and baked. However, it is not easy to produce products that meet both standard requirements and customer requirements. It is affected by factors such as the quality of raw materials, process parameters, production equipment, and environment. Therefore, the quality characteristics of various enameled wires are different, but they all possess four major properties: mechanical properties, chemical properties, electrical properties, and thermal properties.

[0003] According to existing technology, there are many types of enameled wire, and enameled copper flat wire is one of the most commonly used. The production of this type of enameled copper flat wire requires cleaning, and spray cleaning is currently the most common method. Traditional cleaning equipment has separate cleaning, dewatering, and drying equipment, which are not smoothly connected to each other. After the enameled copper flat wire is cleaned, it needs to be manually transported or additional transfer equipment needs to be installed. First, it is moved from the cleaning machine to the dewatering machine, and after dewatering, it is moved to the drying machine. Because the entire process is complicated, it not only wastes time and manpower, but also, if the operation is not careful during the transfer, the enameled copper flat wire is prone to deviation, wrinkling, or even surface scratches. Summary of the Invention

[0004] This invention provides a cleaning device for the production of enameled copper flat wire. It features a clamping cleaning structure formed by a main cleaning roller, a secondary cleaning roller, and an elastic pressure roller. An internal partition component divides the cleaning box into multiple independent functional areas, each with its own cleaning solution, enabling coarse and fine cleaning operations. The dewatering device uses a hydrophilic sponge absorbent roller in conjunction with a sliding clamping roller to form a clamping dewatering structure. The device then uses a high-speed airflow fan to blow away the water, thus solving the problems mentioned in the background art. Specifically, the entire process is cumbersome, wasting time and manpower. Furthermore, during transport, even slight carelessness can easily cause the enameled copper flat wire to deviate, wrinkle, or even have its surface scratched.

[0005] To achieve the above objectives, a cleaning device for producing enameled copper flat wire includes a cleaning box and a cleaning device. The cleaning device is disposed inside the cleaning box and includes a main cleaning roller and a secondary cleaning roller rotatably connected to the inside of the cleaning box. Placement blocks are fixedly installed inside the cleaning box at positions close to both ends of the main cleaning roller and the secondary cleaning roller, respectively. Sliding blocks are slidably connected inside the placement blocks. Pressure rollers are rotatably connected to the ends of the two sliding blocks that are close to each other. The pressure rollers are located directly above the main cleaning roller. The cleaning box is equipped with a water removal device, which includes two placement plates fixedly installed inside the cleaning box. The two placement plates are rotatably connected to a water absorption roller at their close ends, which is used to absorb the cleaning liquid and water film remaining on the surface of the enameled copper flat wire. The cleaning box is equipped with a drying device inside. The drying device includes a mounting slot inside the cleaning box, and a mounting plate is fixedly installed inside the mounting slot. Two fans are rotatably connected inside the mounting plate to generate high-speed airflow to blow away the residual water film on the surface of the enameled copper flat wire.

[0006] In the above technical solution, the bottom of the slider and the inside of the placement block are fixedly connected with springs, the main cleaning roller and the auxiliary cleaning roller are nylon filament cleaning rollers, the outside of the pressure roller is covered with a modified polyurethane coating layer, the inside of the cleaning box has two sliding grooves, and the inside of each of the two sliding grooves is slidably connected with a moving block. The ends of the two moving blocks that are close to each other are rotatably connected to a limit roller.

[0007] Secondly, the cleaning box is equipped with multiple partition components inside. Each partition component includes a partition plate inserted inside the cleaning box. The partition plate has a through groove inside and two support rollers are rotatably connected inside the partition plate. The partition components are used to divide the inner cavity of the cleaning box into multiple functional areas. The partition areas inside the cleaning box near the main cleaning roller and the auxiliary cleaning roller are all equipped with cleaning fluid.

[0008] Furthermore, each of the two placement plates has a sliding displacement block inside, and a clamping roller is rotatably connected to one end of the two displacement blocks that are close to each other. The clamping roller is located directly above the water-absorbing roller, which is a hydrophilic sponge roller. A limiting post is fixedly connected inside the placement plate, and the limiting post passes through the interior of the displacement block. Multiple top rollers are rotatably connected inside the cleaning box, and the multiple top rollers are located on one side of the two fans.

[0009] Based on the above, cleaning components are provided on both sides of the cleaning box. Each cleaning component includes a frame fixedly installed on the side wall of the cleaning box. A brush is fixedly connected inside the frame. A guide roller is rotatably connected inside the cleaning box near the brush. The brush is a modified nylon brush.

[0010] Meanwhile, the side wall of the cleaning box is equipped with a drive assembly, which includes a motor located directly below the main cleaning roller. The output end of the motor is connected to the inside of the main cleaning roller by a synchronous belt one. The main cleaning roller and the auxiliary cleaning roller are connected to the inside of a synchronous belt two. The main cleaning roller and the water suction roller are connected to the inside of a synchronous belt three. A gearbox is fixedly connected to the side wall of the cleaning box. The inside of the gearbox and the inside of the water suction roller are connected to a synchronous belt four. The inside of the fan near the gearbox is connected to the inside of the gearbox by a synchronous belt five. The inside of the two fans is connected to a synchronous belt six.

[0011] Compared with the prior art, the beneficial effects of the present invention are as follows: This cleaning device for enameled copper flat wire production utilizes a clamping cleaning structure formed by a main cleaning roller, a secondary cleaning roller, and an elastic pressure roller. The spring-loaded elastic pressure adapts to different specifications of flat wire, ensuring a tight fit between the brush roller and the flat wire's surface and edges. The flexible bristles can penetrate deep into cleaning hard-to-reach areas. Pre-cleaning and fine cleaning with modified nylon brushes on both sides of the cleaning box improve the cleanliness of the enameled copper flat wire. Simultaneously, guide rollers guide the enameled copper flat wire for smooth transport, reducing friction and scratches. An internal partition assembly divides the cleaning box into multiple independent functional areas. The cleaning solution is set up independently in each area to achieve graded coarse and fine washing operations, avoiding cross-contamination between processes. The support rollers and through grooves of the partition plate not only support the enameled copper flat wire to prevent scratches, but also limit the position of the enameled copper flat wire. With the lateral limiting and longitudinal guiding of the limiting roller, the enameled copper flat wire is effectively prevented from being deviated, wrinkled, or twisted during transport. The water removal device uses a hydrophilic sponge water-absorbing roller and a sliding clamping roller to form a clamping and water removal structure. Then, the high-speed airflow fan of the drying device blows the water away. The top roller supports the enameled copper flat wire in a straight and taut state to ensure uniform airflow. Attached Figure Description

[0012] Figure 1 This is a schematic diagram of the overall structure of the present invention; Figure 2 This is an enlarged structural diagram of point A in this invention; Figure 3 This is a side view of the cleaning box in this invention. Figure 4 This is an enlarged structural diagram of point B in the present invention; Figure 5 This is a side view of the water removal device in this invention. Figure 6 This is a cross-sectional view of the cleaning box in this invention; Figure 7 This is an enlarged structural diagram of point C in the present invention; Figure 8 This is an enlarged structural diagram of point D in the present invention; Figure 9This is a bottom-view structural diagram of the motor in this invention.

[0013] The meanings of the labels in the diagram are as follows: 1. Cleaning box; 2. Cleaning device; 21. Main cleaning roller; 22. Placement block; 23. Slider; 24. Pressure roller; 25. Spring; 26. Secondary cleaning roller; 27. Slide groove; 28. Moving block; 29. ​​Limiting roller; 3. Partition assembly; 31. Partition plate; 32. Through groove; 33. Support roller; 4. Water removal device; 41. Placement plate; 42. Water suction roller; 43. Displacement block; 44. Clamping roller; 45. Limiting post; 5. Drying device; 51. Mounting groove; 52. Mounting plate; 53. Fan; 54. Top roller; 6. Cleaning assembly; 61. Frame; 62. Brush; 63. Guide roller; 7. Drive assembly; 71. Motor; 72. Synchronous belt one; 73. Synchronous belt two; 74. Synchronous belt three; 75. Gearbox; 76. Synchronous belt four; 77. Synchronous belt five; 78. Synchronous belt six. Detailed Implementation

[0014] The technical solutions of this invention will now be clearly and completely described with reference to the accompanying drawings. Obviously, the described embodiments are only a part of the embodiments of this invention, and not all of them. All other embodiments obtained by those skilled in the art based on the embodiments of this invention without creative effort are within the scope of protection of this invention.

[0015] Because the entire process is complicated, it not only wastes time and manpower, but also, if the operator is not careful during the transfer, the enameled copper flat wire is prone to deviation, wrinkling, or even surface scratches.

[0016] Therefore, in view of the above-mentioned problems, the present invention provides a cleaning apparatus for the production of enameled copper flat wire, with reference to... Figure 1 and Figure 2 As shown, it includes a cleaning box 1 and a cleaning device 2. The cleaning device 2 is located inside the cleaning box 1. The cleaning device 2 includes a main cleaning roller 21 and a secondary cleaning roller 26 that are rotatably connected to the inside of the cleaning box 1. The two rollers rotate synchronously to increase the contact cleaning range with the enameled copper flat wire, realize multi-face synchronous cleaning of the enameled copper flat wire, and improve cleaning efficiency. Inside the cleaning box 1, placement blocks 22 are fixedly installed at both ends near the main cleaning roller 21 and the auxiliary cleaning roller 26. The placement blocks 22 provide a stable mounting carrier for the subsequent sliding and pressing structure. The placement blocks 22 are slidably connected to sliders 23. The ends of the two sliders 23 that are close to each other are rotatably connected to pressure rollers 24. The pressure rollers 24 are located directly above the main cleaning roller 21. The pressure rollers 24 and the main cleaning roller 21 form an upper and lower clamping cleaning structure, which stably presses the enameled copper flat wire onto the surface of the main cleaning roller 21, ensuring that the nylon filament cleaning roller is in close contact with the surface of the flat wire. The bottom of the sliders 23 and the inside of the placement blocks 22 are fixedly connected to springs 25. The springs 25 provide elastic pressing force for the sliders 23 and the pressure rollers 24, so that the pressure rollers 24 can adapt to enameled copper flat wires of different thicknesses and specifications, and at the same time reduce the vertical jumping of the pressure rollers 24. The main cleaning roller 21 and the auxiliary cleaning roller 26 are nylon filament cleaning rollers. The pressure roller 24 is covered with a modified polyurethane coating. The cleaning box 1 has two grooves 27 inside. Each groove 27 has a sliding block 28 slidably connected inside. The two sliding blocks 28 are rotatably connected to a limit roller 29 at their close ends. The limit roller 29 can press the enameled copper flat wire into the cleaning box 1, allowing the enameled copper flat wire to be immersed in the cleaning solution.

[0017] refer to Figure 4 As shown, the cleaning box 1 is equipped with multiple partition components 3 inside. Through the coordinated arrangement of multiple partition components 3, the inner cavity of the cleaning box 1 is flexibly divided, effectively avoiding mutual interference between different processes. The partition component 3 includes a partition plate 31 inserted inside the cleaning box 1. The partition plate 31 adopts an insert-type installation structure, which makes the disassembly, assembly and adjustment of the partition plate 31 convenient. The partition plate 31 has a through groove 32 inside, which provides a channel for the continuous conveying of enameled copper flat wire. Two support rollers 33 are rotatably connected inside the partition plate 31. The support rollers 33 effectively support the enameled copper flat wire, reduce the conveying resistance, and at the same time avoid scratches caused by hard contact between the surface of the enameled copper flat wire and the through groove 32. The partition assembly 3 is used to divide the inner cavity of the cleaning box 1 into multiple functional areas. The partition area inside the cleaning box 1 near the main cleaning roller 21 and the auxiliary cleaning roller 26 is equipped with cleaning fluid. By setting two cleaning areas, different cleaning fluids can be stored to achieve the effect of coarse washing to remove large particles of impurities and fine washing to remove fine stains.

[0018] refer to Figure 3 and Figure 5As shown, the cleaning box 1 is equipped with a water removal device 4. The water removal device 4 includes two placement plates 41 fixedly installed inside the cleaning box 1. The two placement plates 41 provide the installation and support base for core water removal components such as water suction roller 42 and clamping roller 44. The water suction roller 42 is rotatably connected to one end of the two placement plates 41 that is close to each other. It is used to absorb the cleaning liquid and water film remaining on the surface of the enameled copper flat wire. The rotating water suction roller 42 can rotate synchronously with the enameled copper flat wire conveying to form dynamic adhesion water removal. Displacement blocks 43 are slidably connected inside both placement plates 41. A clamping roller 44 is rotatably connected to one end of the two displacement blocks 43 that is close to each other. The clamping roller 44 is located directly above the water absorption roller 42. The clamping roller 44 and the water absorption roller 42 form an upper and lower clamping water removal structure, which tightly presses the enameled copper flat wire onto the surface of the water absorption roller 42, eliminating the contact gap between the flat wire and the water absorption roller 42. The water absorption roller 42 is a hydrophilic sponge roller. The hydrophilic sponge material has excellent water absorption and water retention performance. A limiting post 45 is fixedly connected inside the placement plate 41. The limiting post 45 passes through the inside of the displacement block 43. The limiting post 45 guides and vertically limits the sliding trajectory of the displacement block 43, ensuring that the displacement block 43 drives the clamping roller 44 to move smoothly in the vertical direction.

[0019] refer to Figure 6 and Figure 7 As shown, the cleaning box 1 is equipped with a drying device 5 inside. The drying device 5 includes an installation slot 51 inside the cleaning box 1. A dedicated installation slot 51 is preset inside the cleaning box 1 to provide a suitable installation space for the core drying component. An installation plate 52 is fixedly installed inside the installation slot 51. The installation plate 52 provides a support base for the fan 53 to prevent the fan 53 from shifting and shaking during rotation. Two fans 53 are rotatably connected inside the installation plate 52 to generate high-speed airflow through rotation to blow away the residual water film on the surface of the enameled copper flat wire. The two fans 53 rotate synchronously to generate dual airflow, which increases the coverage of the airflow, improves the airflow intensity and blowing efficiency, and can blow away the trace amount of water film remaining on the surface of the flat wire after being adsorbed by the water absorption roller 42. The cleaning box 1 has multiple top rollers 54 rotatably connected inside. The top rollers 54 are located on one side of the two fans 53. The top rollers 54 support the enameled copper flat wire in the blowing area, lift the enameled copper flat wire and keep it straight and taut. At the same time, they can prolong the time the enameled copper flat wire is in the blowing area and increase the cleaning effect.

[0020] refer to Figure 8As shown, cleaning components 6 are provided on both sides of the cleaning box 1. The cleaning components 6 are arranged at the inlet and outlet ends of the cleaning box 1 to form a dual-end auxiliary cleaning structure of pre-cleaning and fine cleaning. The pre-cleaning removes large particles of impurities and dust from the surface of the enameled copper flat wire in advance, reducing the workload of the main cleaning roller 21 in the box. The rear cleaning can clean the fine stains remaining on the surface of the enameled copper flat wire in a second time. The cleaning component 6 includes a frame 61 fixedly installed on the side wall of the cleaning box 1. The frame 61 provides a stable mounting and support carrier for the brush 62. The brush 62 is fixedly connected inside the frame 61. The brush 62 directly contacts the surface of the enameled copper flat wire entering and leaving the box, and can quickly remove the impurities attached to the surface of the enameled copper flat wire, realizing the basic function of auxiliary cleaning. Inside the cleaning box 1, near the brush 62, there is a rotatably connected guide roller 63. The guide roller 63 guides and stably supports the enameled copper flat wire that is about to enter the cleaning brush 62 and the main cleaning structure inside the box, ensuring that the contact angle and contact force between the enameled copper flat wire and the brush 62 are uniform. The brush 62 is a modified nylon brush 62. The modified nylon material has both excellent wear resistance and flexibility, and its hardness is suitable for the cleaning needs of the enameled copper flat wire. It ensures sufficient cleaning force to effectively remove attached impurities, but will not scratch the surface of the enameled copper flat wire due to excessive rigidity.

[0021] refer to Figure 6 and Figure 9 As shown, the side wall of the cleaning box 1 is provided with a drive assembly 7. The drive assembly 7 includes a motor 71 located directly below the main cleaning roller 21. The single motor 71 serves as the core power source of the entire device, replacing the traditional structure of multiple motors 71 driving separately. This reduces the number of motors 71, effectively reducing the manufacturing cost and energy consumption of the equipment, while also reducing the number of failure points. The output end of the motor 71 and the internal transmission of the main cleaning roller 21 are connected by a synchronous belt 72. The synchronous belt 72 enables the smooth transmission of power from the motor 71 to the main cleaning roller 21. The synchronous belt transmission ratio is constant, ensuring that the main cleaning roller 21 rotates at a stable speed without slippage. The main cleaning roller 21 and the auxiliary cleaning roller 26 are internally connected by a synchronous belt 73, which enables the main cleaning roller 21 and the auxiliary cleaning roller 26 to rotate synchronously at the same speed. This ensures that the cleaning rhythm of the double brush rollers 62 on the enameled copper flat wire is highly matched, and that the cleaning force on each part of the enameled copper flat wire is uniform. The main cleaning roller 21 and the water suction roller 42 are internally connected by a synchronous belt 74, which enables the power linkage between the rollers in the cleaning process and the water removal process. This allows the speed of the water suction roller 42 to match the speed of the main cleaning roller 21 and the conveying speed of the enameled copper flat wire, so that the rhythm of the water removal operation is seamlessly connected with the previous cleaning process. A gearbox 75 is fixedly connected to the side wall of the cleaning box 1. The gearbox 75 is added to the power transmission path to realize the speed adjustment function of the fan 53 of the subsequent drying device 5. A synchronous belt 76 is connected to the inside of the gearbox 75 and the inside of the suction roller 42. The synchronous belt 76 transmits power from the suction roller 42 to the gearbox 75, providing a basis for the gearbox 75 to output power to the fan 53 after speed adjustment. A synchronous belt 77 is connected to the inside of the fan 53 near the gearbox 75. The synchronous belt 77 transmits the power of the gearbox 75 after speed adjustment to the fan 53, ensuring that the speed of the fan 53 is stably output according to production requirements and realizing the control of the drying airflow intensity. The two fans 53 are internally connected by a synchronous belt 6 78, which enables the two fans 53 to rotate synchronously at the same speed, ensuring that the high-speed airflow intensity and sweeping rhythm generated by the two fans 53 are consistent, so that the airflow on the surface of the enameled copper flat wire is evenly sweeped.

[0022] The working principle of this invention is as follows: The motor 71 is started, and power is smoothly transmitted from the motor 71 to the main cleaning roller 21 via synchronous belt 1 72, causing the main cleaning roller 21 to rotate at a constant speed. The main cleaning roller 21 then drives the auxiliary cleaning roller 26 to rotate synchronously at the same speed via synchronous belt 2 73, and drives the water suction roller 42 to rotate synchronously via synchronous belt 3 74. The water suction roller 42 transmits power to the gearbox 75 via synchronous belt 4 76. After adjusting the speed according to production needs, the gearbox 75 drives the single-sided fan 53 to rotate via synchronous belt 5 77. This fan 53 then drives the other fan 53 to rotate synchronously at the same speed via synchronous belt 6 78. Simultaneously, cleaning solutions of different concentrations and types are added to the cleaning areas of the main and auxiliary cleaning rollers 26, which are separated by the partition component 3, within the cleaning box 1.

[0023] The enameled copper flat wire is fed from the cleaning component 6 on one side of the cleaning box 1. The enameled copper flat wire is first guided by the guide roller 63, so that the enameled copper flat wire and the modified nylon brush 62 on the frame 61 maintain a uniform contact angle and contact force. The brush 62 removes large particles of impurities and floating dust from the surface of the enameled copper flat wire, completing the pre-cleaning. The guide roller 63 simultaneously converts the sliding friction between the enameled copper flat wire and the brush 62 and the box into rolling friction.

[0024] The pre-cleaned enameled copper flat wire enters the cleaning box 1 and is first pressed into the cleaning solution by the limiting roller 29. Then, the enameled copper flat wire passes through multiple cleaning areas along a preset trajectory. The cleaning solutions in different areas achieve graded cleaning effects, namely coarse cleaning to remove large particles of impurities and fine cleaning to remove fine stains and oxide scale. During the conveying of the enameled copper flat wire, the through groove 32 of the partition plate 31 provides lateral limiting, and the support roller 33 provides effective support. In the core cleaning area, the main cleaning roller 21 and the pressure roller 24 directly above it form a clamping cleaning structure. The spring 25 at the bottom of the slider 23 provides elastic clamping force to the pressure roller 24, so that the pressure roller 24 adapts to enameled copper flat wires of different thicknesses and ensures that the nylon filament cleaning roller is in close contact with the surface of the flat wire. The main brush roller 62 and the auxiliary brush roller 62 rotate synchronously to clean the enameled copper flat wire from multiple sides simultaneously.

[0025] After undergoing multi-stage cleaning, the enameled copper flat wire enters the dewatering device 4 area. Supported by the placement plate 41, the absorbent roller 42 and clamping roller 44 form a clamping dewatering structure. Under the vertical guidance and limiting action of the limiting post 45, the displacement block 43 drives the clamping roller 44 to adapt to the thickness of the enameled copper flat wire, tightly pressing the wire against the surface of the hydrophilic sponge-material absorbent roller 42, eliminating contact gaps. The absorbent roller 42 rotates dynamically and synchronously with the conveyed enameled copper flat wire, forming a dynamic contact with the wire for dewatering. Utilizing the excellent water absorption and retention properties of the hydrophilic sponge, a large amount of cleaning liquid and water film on the surface of the enameled copper flat wire are absorbed. After the enameled copper flat wire is dewatered, it enters the drying device 5 area. Multiple top rollers 54 support the enameled copper flat wire, keeping the wire straight and taut. The dual fans 53, after speed regulation by the gearbox 75, rotate synchronously at the same speed, generating dual airflow to blow away the trace water film remaining on the surface of the enameled copper flat wire after being absorbed by the water absorption roller 42.

[0026] After the enameled copper flat wire has been dried, it is discharged from the cleaning component 6 on the other side of the cleaning box 1, and is guided again by the guide roller 63. The modified nylon brush 62 brushes away any fine stains that may remain on the surface of the enameled copper flat wire.

[0027] The foregoing has shown and described the basic principles, main features, and advantages of the present invention. Those skilled in the art should understand that the present invention is not limited to the above embodiments. The embodiments and descriptions in the specification are merely preferred examples and are not intended to limit the invention. Various changes and modifications can be made to the invention without departing from its spirit and scope, and all such changes and modifications fall within the scope of the present invention as claimed. The scope of protection of the present invention is defined by the appended claims and their equivalents.

Claims

1. A cleaning device for the production of enameled copper flat wire, comprising a cleaning box (1) and a cleaning device (2), characterized in that: The cleaning device (2) is installed inside the cleaning box (1). The cleaning device (2) includes a main cleaning roller (21) and a secondary cleaning roller (26) that are rotatably connected to the inside of the cleaning box (1). Placement blocks (22) are fixedly installed at both ends of the cleaning box (1) near the main cleaning roller (21) and the secondary cleaning roller (26). A slider (23) is slidably connected inside the placement block (22). A pressure roller (24) is rotatably connected to one end of the two sliders (23) that are close to each other. The pressure roller (24) is located directly above the main cleaning roller (21). The cleaning box (1) is equipped with a water removal device (4). The water removal device (4) includes two placement plates (41) fixedly installed inside the cleaning box (1). The two placement plates (41) are rotatably connected to a water absorption roller (42) at one end close to each other, which is used to absorb the cleaning liquid and water film remaining on the surface of the enameled copper flat wire. The cleaning box (1) is equipped with a drying device (5). The drying device (5) includes an installation slot (51) inside the cleaning box (1). An installation plate (52) is fixedly installed inside the installation slot (51). Two fans (53) are rotatably connected inside the installation plate (52) to generate high-speed airflow and blow away the residual water film on the surface of the enameled copper flat wire.

2. The cleaning device for producing enameled copper flat wire according to claim 1, characterized in that: The bottom of the slider (23) and the interior of the placement block (22) are fixedly connected with springs (25). The main cleaning roller (21) and the auxiliary cleaning roller (26) are nylon filament cleaning rollers. The pressure roller (24) is covered with a modified polyurethane coating.

3. The cleaning device for producing enameled copper flat wire according to claim 1, characterized in that: The cleaning box (1) has two sliding grooves (27) inside, and each of the two sliding grooves (27) is slidably connected to a moving block (28). The two moving blocks (28) are rotatably connected to a limit roller (29) at one end that is close to each other.

4. The cleaning device for producing enameled copper flat wire according to claim 1, characterized in that: The cleaning box (1) is provided with multiple partition components (3). The partition components (3) include partition plates (31) inserted inside the cleaning box (1). The partition plates (31) have through slots (32) inside. Two support rollers (33) are rotatably connected inside the partition plates (31). The partition components (3) are used to divide the inner cavity of the cleaning box (1) into multiple functional areas. The partition areas inside the cleaning box (1) near the main cleaning roller (21) and the auxiliary cleaning roller (26) are all provided with cleaning fluid.

5. The cleaning device for producing enameled copper flat wire according to claim 1, characterized in that: The interior of each of the two placement plates (41) is slidably connected with a displacement block (43). The two displacement blocks (43) are rotatably connected to a clamping roller (44) at one end close to each other. The clamping roller (44) is located directly above the water-absorbing roller (42). The water-absorbing roller (42) is a hydrophilic sponge roller.

6. The cleaning apparatus for producing enameled copper flat wire according to claim 5, characterized in that: The placement plate (41) is fixedly connected to a limiting post (45), which penetrates the interior of the displacement block (43).

7. The cleaning device for producing enameled copper flat wire according to claim 5, characterized in that: The cleaning box (1) is internally rotatably connected to a plurality of top rollers (54), which are located on one side of two fans (53).

8. The cleaning device for producing enameled copper flat wire according to claim 1, characterized in that: The cleaning box (1) is provided with cleaning components (6) on both sides. The cleaning components (6) include a frame (61) fixedly installed on the side wall of the cleaning box (1). A brush (62) is fixedly connected inside the frame (61).

9. The cleaning device for producing enameled copper flat wire according to claim 8, characterized in that: Inside the cleaning box (1), near the brush (62), there is a rotatably connected guide roller (63), and the brush (62) is a modified nylon brush (62).

10. The cleaning device for producing enameled copper flat wire according to claim 1, characterized in that: The cleaning box (1) has a drive assembly (7) on its side wall. The drive assembly (7) includes a motor (71) located directly below the main cleaning roller (21). The output end of the motor (71) is connected to the inside of the main cleaning roller (21) by a synchronous belt one (72). The main cleaning roller (21) and the auxiliary cleaning roller (26) are connected to the inside by a synchronous belt two (73). The main cleaning roller (21) and the water suction roller (42) are connected to the inside by a synchronous belt three (74). The side wall of the cleaning box (1) is fixedly connected to a gearbox (75). The inside of the gearbox (75) and the inside of the water suction roller (42) are connected to a synchronous belt four (76). The inside of the fan (53) near the gearbox (75) and the inside of the gearbox (75) are connected to a synchronous belt five (77). The inside of the two fans (53) are connected to a synchronous belt six (78).