Enameled wire waste treatment equipment

By designing clamping, rotary and extruded paint removal components on the enameled wire waste treatment equipment, the problems of slow paint removal speed and poor removal effect of existing equipment are solved, and efficient and comprehensive paint removal and low-cost metal material reprocessing are achieved.

CN120452954APending Publication Date: 2025-08-08ZHEJIANG YIZHENG ELECTRICAL TECH CO LTD
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Patent Information

Application Number
CN202510901148.0
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-07-01
Publication Date
2025-08-08

AI Technical Summary

Technical Problem

The existing enameled wire waste treatment equipment has problems such as slow paint removal speed, poor removal effect and long and high cost of equipment, which affects the production efficiency and the reprocessing value of metal materials.

Method used

Design an enameled wire waste treatment equipment, using three types of paint removal components: clamping, rotary and extruded, to clean the surface of the enameled wire at multiple angles, including clamping paint removal components, rotary paint removal components and extruded paint removal components, to remove paint through a combination of various methods.

Benefits of technology

It achieves efficient and comprehensive paint removal, improves production efficiency, reduces equipment costs, and is suitable for enameled wire of different thicknesses, improving the reprocessing value of metal materials.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention discloses varnished wire waste treatment equipment, and relates to the field of varnished wires, the varnished wire waste treatment equipment comprises a high-temperature treatment tank and a treatment device, the treatment device is installed in the high-temperature treatment tank, and a wiring channel for varnished wires to penetrate through is arranged in the treatment device; a clamping type paint removing assembly, a rotary type paint removing assembly and an extrusion type paint removing assembly are sequentially installed on the processing device in the moving direction of the enameled wire. According to the invention, varnish structures in three different modes, namely the clamping type varnish removing assembly, the rotary type varnish removing assembly and the extrusion type varnish removing assembly, are sequentially mounted on the processing device in the moving direction of the enameled wire, so that the three varnish structures can clean the varnish on the surface of the enameled wire through the three different modes; therefore, paint on the surface of the enameled wire can be fully and comprehensively removed from multiple angles, and subsequent treatment and secondary utilization of the enameled wire are facilitated.
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Description

Technical Field

[0001] The invention relates to the field of secondary processing of enameled wires, and in particular to an enameled wire waste processing device. Background Art

[0002] Enameled wire is widely used in motors, transformers, electronic equipment, and other fields. Its surface is coated with an insulating varnish to improve its electrical insulation and mechanical strength. However, with changing market demands and product upgrades, much enameled wire is being discarded after it expires, and the disposal of this waste material has become a pressing issue.

[0003] At present, the main method for processing enameled wire waste is to recycle the copper or aluminum materials by removing the paint. However, the existing paint removal equipment has the following problems during the processing: (1) Slow paint removal speed: In actual operation, the existing paint removal device often requires a long processing time to effectively remove the insulating paint on the enameled wire, which not only affects the production efficiency but also increases the overall processing cost; (2) Poor removal effect: Many devices are unable to completely remove the paint layer during the paint removal process, resulting in residual paint film affecting subsequent recycling and reducing the reprocessing value of the metal material; (3) Lengthy equipment and high cost: In order to improve the efficiency of paint removal, many factories often need to configure multiple devices to work together, which not only increases the equipment footprint, but also leads to a significant increase in the overall investment cost. Summary of the Invention

[0004] (1) Purpose of the invention

[0005] In view of this, the purpose of the present invention is to propose an enameled wire waste processing equipment, which has three different types of varnish structures installed in sequence on the processing device along the moving direction of the enameled wire, namely a clamping paint removal component, a rotary paint removal component and an extrusion paint removal component. The three varnish structures can clean the paint on the surface of the enameled wire in three different ways, so that the paint on the surface of the enameled wire can be fully removed from multiple angles, thereby facilitating the subsequent processing and secondary utilization of the enameled wire.

[0006] (2) Technical solution

[0007] In order to achieve the above technical objectives, the present invention provides an enameled wire waste processing device, which includes a high-temperature processing tank;

[0008] A processing device is installed inside the high-temperature processing tank, and a wiring channel for the enameled wire to pass through is provided inside the processing device. A clamping paint removal component, a rotary paint removal component and an extrusion paint removal component are sequentially installed on the processing device along the moving direction of the enameled wire;

[0009] Among them, the clamping paint removal assembly includes two carriers that can move up and down to clamp the enameled wire and a scraping part installed on the carrier. The rotary paint removal assembly includes a carrier frame with a cylindrical channel inside and a rotor installed inside the carrier frame through a bearing. The rotor is provided with a rotor blade inside. The extrusion paint removal assembly includes two staggered extrusion cutter disc frames. The enameled wire passing through the wiring channel passes through the two scraping parts, the cylindrical channel inside the carrier frame and the two extrusion cutter disc frames in sequence.

[0010] As a further description of the above technical solution: a first through groove running through the upper and lower parts is provided on the processing device at the position of the clamping paint removal component, and the two carriers are respectively installed at the upper and lower positions of the first through groove, and the scraping parts are correspondingly engaged in the first through groove. The scraping parts of the two carriers are semicircular in structure relative to one end in the first through groove, so that after the two scraping parts are docked, the docking position can allow the enameled wire to pass through, thereby achieving preliminary varnishing of the surface of the enameled wire.

[0011] As a further description of the above technical solution: guide rails are installed on the surface of the processing device at both ends of the carrier, and guide grooves are provided on the inner side of the guide rails in the vertical direction. Slides are provided at both ends of the carrier, and the slides are slidably engaged in the guide grooves, so that the carrier can move in the vertical direction, thereby clamping the enameled wire passing through and improving the varnish effect. Furthermore, in order to improve the stability of the carrier during movement, the cross-section of the slide is T-shaped.

[0012] As a further description of the above technical solution: a first fixed plate is installed on the surface of the processing device in the middle of the carrier, and the first fixed plate adopts an inverted L-shaped structure. A first electric telescopic rod is installed on the horizontal end of the first fixed plate. The piston rod of the first electric telescopic rod is connected to the carrier. The first electric telescopic rod can be used to control the up and down movement of the carrier, so as to ensure that the scraping part on the carrier can clamp the enameled wire passing through, thereby improving the efficiency of the first varnish removal.

[0013] As a further description of the above technical solution: the scraping part is composed of a plurality of scraping blades, and the plurality of scraping blades can slide independently in the vertical direction.

[0014] A cavity is provided inside the carrier at the position for installing the scraping part, and the bottom of each scraping blade is inserted into the cavity and connected to the cavity through a first spring. Based on this, for enameled wires of different thicknesses, each scraping blade can maintain relative tightness to the enameled wire by squeezing, thereby improving its paint scraping effect, and this can improve the overall applicability of the device.

[0015] As a further description of the above technical solution: each scraper blade is provided with at least one limit block on its side, and a limit groove is installed on the inner wall of the cavity in the vertical direction. The limit block can slide in the limit groove, and the scraper blade will not fall off out of control due to the limitation of the limit groove.

[0016] As a further description of the above technical solution: a second through groove running through the upper and lower parts is provided on the processing device at the position of the rotary paint removal component, the carrier frame is installed in the second through groove, a plurality of rotor blades are provided, and the plurality of rotor blades are inclined and distributed in a circular array inside the rotor, the front end of the rotor blade extends to the inside of the rotor, and a control component for driving the rotor to rotate is installed on the upper surface of the processing device. Such a structural arrangement enables the rotor blade inside to rotate and scrape off the paint of the enameled wire due to the rotation of the rotor, thereby achieving a second varnishing.

[0017] As a further description of the above technical solution: the control component includes:

[0018] a motor, which is fixedly mounted above the processing device via a mounting plate, and a driving sprocket is connected to the output shaft of the motor;

[0019] A bearing seat is fixedly mounted above the processing device, a rotating shaft is rotatably mounted on the bearing seat, a gear is mounted on one end of the rotating shaft, and a driven sprocket is mounted on the other end, and the driven sprocket is connected to the driving sprocket through a chain belt;

[0020] The gear ring is sleeved on one end of the rotor, and an opening is provided in the area above the carrier frame located on the rotor. The gear is engaged with the gear ring at the opening position. Therefore, when the motor is running, the rotating shaft is driven to rotate through the driving sprocket, chain belt and driven sprocket, and the rotor is driven to rotate through the gear and gear ring to achieve secondary varnishing.

[0021] As a further description of the above technical solution: a knife groove for installing the rotor blade is provided on the surface of the rotor, and oblique grooves parallel to the knife groove are opened on both sides of the rotor blade on the rotor, and sliders are provided on both sides of the rotor blade. The sliders are correspondingly slidably assembled in the oblique groove and are connected to one end of the oblique groove through a second spring. Such a structural setting enables the rotor blade to move along the direction of the knife groove to achieve the movement of approaching or moving away from the center of the rotor, and the second spring can provide it with a tendency to make the rotor blade approach the center of the rotor. Therefore, when the rotor blade rotates to clean the paint on the surface of the enameled wire, it has a closer contact with the enameled wire, so that the varnishing effect is better.

[0022] As a further description of the above technical solution: a third through groove running through the upper and lower parts is provided on the processing device at the position of the extrusion paint removal component, and the two extrusion cutter disc holders are respectively installed at the upper and lower positions of the second through groove, and the extrusion cutter disc holder is staggered and inserted into the second through groove, and a groove with an arc structure is provided on one side of the extrusion cutter disc holder inserted into the second through groove, and a second fixed plate with an L-shaped structure is installed at the center of the extrusion cutter disc holder on the processing device, and a second electric telescopic rod is fixedly installed on the vertical end of the second fixed plate, and the piston rod of the second electric telescopic rod is connected to the center of the extrusion cutter disc holder, so that the second electric telescopic rod can push the extrusion cutter disc holder to move in the vertical direction, so that the two mutually staggered extrusion cutter disc holders can clamp the upper and lower parts of the enameled wire respectively under the push of the second electric telescopic rod, and perform a third tight paint scraping.

[0023] In the above technical scheme, the present invention provides an enameled wire waste processing equipment, which has three different types of varnish structures installed in sequence on the processing device along the moving direction of the enameled wire, namely a clamping type paint removal component, a rotary paint removal component and an extrusion type paint removal component. The three varnish structures can clean the paint on the surface of the enameled wire in three different ways, so that the paint on the surface of the enameled wire can be fully removed from multiple angles, thereby facilitating the subsequent processing and secondary utilization of the enameled wire. Moreover, through the clever design of the three varnish structures, it can be thoroughly varnished when dealing with varnish operations on enameled wires of different thicknesses, thereby improving the overall applicability of the device. At the same time, this triple varnish structure can solve the problem of lengthy and high cost of equipment, and can varnish continuously with high efficiency and high speed. BRIEF DESCRIPTION OF THE DRAWINGS

[0024] In order to more clearly illustrate the embodiments of the present invention or the technical solutions in the prior art, the following briefly introduces the drawings required for use in the embodiments or the description of the prior art. Obviously, the drawings described below are merely embodiments of the present invention. For ordinary technicians in this field, other drawings can be obtained based on the provided drawings without paying any creative work.

[0025] Figure 1 A schematic diagram of the overall structure of an enameled wire waste processing device provided by the present invention;

[0026] Figure 2 A schematic diagram of the installation structure of a processing device in an enameled wire waste processing device provided by the present invention;

[0027] Figure 3 A schematic structural diagram of a processing device in an enameled wire waste processing device provided by the present invention;

[0028] Figure 4This is a schematic diagram of the installation structure of a clamping type paint removal component in an enameled wire waste processing device provided by the present invention;

[0029] Figure 5 A schematic structural diagram of a clamping-type paint removal assembly in an enameled wire waste processing device provided by the present invention;

[0030] Figure 6 A schematic diagram of the installation structure of a scraper blade in an enameled wire waste processing device provided by the present invention;

[0031] Figure 7 A schematic diagram of the installation structure of a rotary paint removal component in an enameled wire waste processing device provided by the present invention;

[0032] Figure 8 This is a schematic diagram of the rotor installation structure in an enameled wire waste processing device provided by the present invention;

[0033] Figure 9 A schematic diagram of the control component structure of an enameled wire waste processing device provided by the present invention;

[0034] Figure 10 Schematic diagram of the rotor structure in an enameled wire waste processing device provided by the present invention Figure 1 ;

[0035] Figure 11 Schematic diagram of the rotor structure in an enameled wire waste processing device provided by the present invention Figure 2 ;

[0036] Figure 12 This is a schematic structural diagram of an extrusion-type paint removal component in an enameled wire waste processing device provided by the present invention.

[0037] Description of the drawings: 1. High-temperature treatment tank; 2. Top cover; 3. Treatment device; 30. Wiring channel; 31. Heating plate; 32. First through-slot; 33. Second through-slot; 34. Third through-slot; 4. Clamp-type paint stripping assembly; 40. Carrier; 400. Limiting groove; 401. Cavity; 41. Scraping part; 410. Scraping blade; 411. Limiting block; 42. Guide rail; 420. Guide groove; 43. First fixed plate; 44. First electric telescopic rod; 45. Sliding seat; 46. First spring; 5. Rotary paint stripping assembly; 50 , carrier frame; 51, rotor; 510, rotor blade; 511, bearing; 512, gear ring; 513, through port; 514, inclined slot; 515, slider; 516, second spring; 517, knife groove; 52, control component; 520, motor; 521, mounting plate; 522, driving sprocket; 523, chain belt; 524, driven sprocket; 525, bearing seat; 526, gear; 527, rotating shaft; 6, extrusion paint removal component; 60, extrusion cutter disc holder; 61, second fixed plate; 62, second electric telescopic rod. DETAILED DESCRIPTION

[0038] The following description is merely illustrative in nature and is not intended to limit the present disclosure, its applications, or uses. It should be understood that throughout the drawings, identical or similar reference numerals indicate identical or similar parts and features. The drawings merely schematically illustrate the concepts and principles of the embodiments of the present disclosure and do not necessarily depict the specific dimensions and proportions of the various embodiments of the present disclosure. Certain portions of certain drawings may be exaggerated to illustrate relevant details or structures of the embodiments of the present disclosure.

[0039] Example 1

[0040] like Figures 1-12 As shown: This embodiment provides a technical solution: an enameled wire waste processing equipment, including a high-temperature processing tank 1 and a processing device 3, wherein the processing device 3 is installed inside the high-temperature processing tank 1, and a wire routing channel 30 for the enameled wire to pass through is provided inside the processing device 3, and a clamping paint removal component 4, a rotary paint removal component 5 and an extrusion paint removal component 6 are sequentially installed on the processing device 3 along the moving direction of the enameled wire, the clamping paint removal component 4 includes two carriers 40 that can move up and down to clamp the enameled wire and a scraping part 41 installed on the carrier 40, the rotary paint removal component 5 includes a carrier frame 50 with a cylindrical channel inside and a rotor 51 rotatably installed inside the carrier frame 50 through a bearing 511, and a rotor blade 510 is provided inside the rotor 51, and the extrusion paint removal component 6 includes two staggered extrusion cutter disc frames 60, and the enameled wire passing through the routing channel 30 passes through the two scraping parts 41, the cylindrical channel inside the carrier frame 50 and the two extrusion cutter disc frames 60 in sequence;

[0041] Working principle: This device is mainly used to process expired enameled wires and remove the paint coating on the surface of the enameled wires. Due to the high temperature inside the high-temperature treatment tank 1, the paint on the surface of the enameled wires can gradually soften or melt when the enameled wires pass through the wiring channel 30. Based on this, when in use, first pass one end of the enameled wire to be processed through the wiring channel 30 inside the processing device 3 and out from the other end. When the enameled wire passes through the wiring channel 30, it will successively pass through the cylindrical channel between the two scraping parts 41, the cylindrical channel inside the carrier frame 50 and the Between the two extrusion cutter discs 60, since the paint on the surface of the enameled wire has gradually softened or melted, the scraping part 41, the rotor blade 510, and the extrusion cutter disc 60 act in sequence, which can fully and comprehensively remove the paint on the surface of the enameled wire from multiple angles, thereby facilitating the subsequent processing and secondary utilization of the enameled wire. It should also be noted that: a top cover 2 that can be opened by hoisting is installed on the top of the high-temperature treatment tank 1, and a heating plate 31 that can assist in heating and softening the enameled wire is provided inside the processing device 3 within the range of the wiring channel 30.

[0042] Example 2

[0043] like Figure 2-Figure 6 As shown: This embodiment provides a technical solution: In order to achieve the first varnishing of the enameled wire, in this embodiment, on the basis of Example 1, a first through groove 32 running through the upper and lower parts is opened on the processing device 3 at the position of the clamping paint removal component 4, and two carriers 40 are respectively installed at the upper and lower positions of the first through groove 32, and the scraping parts 41 are correspondingly engaged in the first through groove 32. The scraping parts 41 of the two carriers 40 are semicircular in structure relative to one end in the first through groove 32, so that after the two scraping parts 41 are docked, the docking position can allow the enameled wire to pass through, thereby achieving preliminary varnishing of the surface of the enameled wire.

[0044] Specifically, such as Figure 2-Figure 6 As shown, in order to improve the effect of the first varnishing, in this embodiment, guide rails 42 are installed at both ends of the carrier 40 on the surface of the processing device 3, and guide grooves 420 are provided on the inner side of the guide rails 42 in the vertical direction. Slides 45 are provided at both ends of the carrier 40, and the slides 45 are slidably engaged in the guide grooves 420, so that the carrier 40 can move in the vertical direction, thereby clamping the enameled wire passing through, thereby improving the varnishing effect. Furthermore, in order to improve the stability of the carrier 40 during movement, the cross-section of the slide 45 is T-shaped.

[0045] Specifically, such as Figure 2-Figure 6 As shown, in order to realize the movement control of the carrier 40, in this embodiment, a first fixed plate 43 is installed on the surface of the processing device 3 at the middle position of the carrier 40. The first fixed plate 43 adopts an inverted L-shaped structure. A first electric telescopic rod 44 is installed on the horizontal end of the first fixed plate 43. The piston rod of the first electric telescopic rod 44 is connected to the carrier 40. The carrier 40 can be controlled to move up and down through the first electric telescopic rod 44, which can ensure that the scraping part 41 on the carrier 40 can clamp the enameled wire passing through, thereby improving the efficiency of the first varnishing.

[0046] Specifically, such as Figure 2-Figure 6 As shown, in order to further improve the first varnish removal efficiency of the clamping paint removal assembly 4, in this embodiment, the scraping portion 41 is composed of a plurality of scraping blades 410, and the plurality of scraping blades 410 can slide independently in the vertical direction.

[0047] A cavity 401 is provided inside the carrier 40 at the position for installing the scraping part 41. The bottom of each scraping blade 410 is inserted into the cavity 401 and is connected to the cavity 401 through a first spring 46. Based on this, for enameled wires of different thicknesses, each scraping blade 410 can maintain relative tightness to the enameled wire by squeezing, thereby improving its paint scraping effect, and this can improve the overall applicability of the device.

[0048] Specifically, such as Figure 2-Figure 6 As shown, in order to avoid excessive movement of the scraper blade 410 in the wireless case, which may cause the scraper blade 410 to fall off, in this embodiment, each scraper blade 410 is provided with at least one limit block 411 on the side, and the inner wall of the cavity 401 is installed with a limit groove 400 in the vertical direction. The limit block 411 can slide in the limit groove 400, and through the limitation of the limit groove 400, the scraper blade 410 will not fall off out of control.

[0049] Example 3

[0050] like Figure 7-11 As shown: This embodiment provides a technical solution: In order to achieve the second varnishing, this embodiment is based on Example 1, and a second through groove 33 running through the upper and lower parts is opened at the position of the rotary paint removal component 5 on the processing device 3, and the carrier frame 50 is installed in the second through groove 33. There are a plurality of rotor blades 510, and the plurality of rotor blades 510 are inclined and distributed in a circular array inside the rotor 51. The front end of the rotor blade 510 extends to the inside of the rotor 51, and the upper surface of the processing device 3 is installed with a control component 52 for driving the rotor 51 to rotate. Such a structural arrangement enables when the enameled wire passes through the rotor 51, due to the rotation of the rotor 51, the rotor blade 510 inside it can rotate and scrape off the paint of the enameled wire, thereby achieving the second varnishing.

[0051] Specifically, such as Figure 7-11 As shown, in order to realize the rotation control of the rotor 51, in this embodiment, the control component 52 includes a motor 520, a bearing seat 525 and a gear ring 512, wherein the motor 520 is fixedly mounted above the processing device 3 through a mounting plate 521, and a driving sprocket 522 is connected to the output shaft of the motor 520, the bearing seat 525 is fixedly mounted above the processing device 3, and a rotating shaft 527 is rotatably inserted on the bearing seat 525, one end of the rotating shaft 527 is mounted with a gear 526, and the other end is mounted with a driven chain. Wheel 524, the driven sprocket 524 is connected to the driving sprocket 522 through the chain belt 523, the gear ring 512 is sleeved on one end of the rotor 51, and an opening is provided in the area above the carrier frame 50 located on the rotor 51, and the gear 526 is engaged with the gear ring 512 at the opening position. Therefore, when the motor 520 is running, the driving sprocket 522, the chain belt 523 and the driven sprocket 524 drive the rotating shaft 527 to rotate, thereby driving the rotor 51 to rotate through the gear 526 and the gear ring 512 to achieve secondary varnishing.

[0052] Specifically, such as Figure 7-11As shown, in order to improve the effect of secondary varnishing, in this embodiment, a knife groove 517 for mounting a rotor blade 510 is provided on the surface of the rotor 51, and an inclined groove 514 parallel to the knife groove 517 is opened on both sides of the rotor blade 510 on the rotor 51. Sliders 515 are provided on both sides of the rotor blade 510. The sliders 515 are correspondingly slidably assembled in the inclined groove 514 and are connected to one end of the inclined groove 514 through a second spring 516. Such a structural arrangement enables the rotor blade 510 to move along the direction of the knife groove 517 to achieve a movement close to or away from the center of the rotor 51, and the second spring 516 can provide it with a tendency to move the rotor blade 510 close to the center of the rotor 51. Therefore, when the rotor blade 510 rotates to clean the paint on the surface of the enameled wire, it has a closer contact with the enameled wire, thereby achieving a better varnishing effect. It should also be noted that: a plurality of through openings 513 are provided on the rotor 51, and the through openings 513 are used to allow the scraped paint to fall into the interior of the high-temperature treatment tank 1.

[0053] Example 4

[0054] like Figure 12 As shown: This embodiment provides a technical solution. In order to achieve the third varnishing, in this embodiment, based on Example 1, a third through-groove 34 is provided on the processing device 3 at the position of the extrusion paint removal component 6, and two extrusion cutter disc racks 60 are respectively installed at the upper and lower positions of the second through-groove 33, and the extrusion cutter disc racks 60 are staggered and inserted into the second through-groove 33. A groove with an arc-shaped structure is provided on one side of the extrusion cutter disc rack 60 inserted into the second through-groove 33. A second fixed plate 61 with an L-shaped structure is installed at the center of the extrusion cutter disc rack 60 on the processing device 3, and a second electric telescopic rod 62 is fixedly installed on the vertical end of the second fixed plate 61. The piston rod of the second electric telescopic rod 62 is connected to the center of the extrusion cutter disc rack 60, so that the second electric telescopic rod 62 can push the extrusion cutter disc rack 60 to move in the vertical direction. Therefore, the two mutually staggered extrusion cutter disc racks 60 can clamp the upper and lower parts of the enameled wire respectively under the push of the second electric telescopic rod 62 to perform a third tight paint scraping.

[0055] The exemplary implementation schemes proposed in the present disclosure are described in detail above with reference to preferred embodiments. However, it will be understood by those skilled in the art that, without departing from the concept of the present disclosure, various modifications and variations can be made to the above-mentioned specific embodiments, and various technical features and structures proposed in the present disclosure can be combined in various ways without exceeding the scope of protection of the present disclosure, which is determined by the appended claims.

Claims

1. An enameled wire waste processing device, characterized in that: It includes: High temperature treatment tank (1); A processing device (3) is installed inside the high-temperature processing tank (1), wherein a wire routing channel (30) is provided inside the processing device (3) for the enameled wire to pass through, and a clamping type paint removal component (4), a rotary paint removal component (5) and an extrusion type paint removal component (6) are sequentially installed on the processing device (3) along the moving direction of the enameled wire; The clamping paint removal assembly (4) includes two carriers (40) capable of moving up and down to clamp the enameled wire and a scraping portion (41) mounted on the carrier (40); the rotary paint removal assembly (5) includes a carrier frame (50) with a cylindrical channel provided therein and a rotor (51) rotatably mounted inside the carrier frame (50) via a bearing (511); a rotor blade (510) is provided inside the rotor (51); and the extrusion paint removal assembly (6) includes two offset-mounted extrusion cutter discs (60); the enameled wire passing through the wiring channel (30) passes in sequence between the two scraping portions (41), the cylindrical channel inside the carrier frame (50), and the two extrusion cutter discs (60).

2. The enameled wire waste processing equipment according to claim 1, characterized in that: The processing device (3) is provided with a first through slot (32) running through the first through slot (32) at the position of the clamping paint removal assembly (4), and the two carriers (40) are respectively installed at the upper position and the lower position of the first through slot (32), and the scraping portion (41) is correspondingly engaged in the first through slot (32). The scraping portion (41) of the two carriers (40) is in a semicircular structure relative to one end in the first through slot (32).

3. The enameled wire waste processing equipment according to claim 2, characterized in that: Guide rails (42) are installed on the surface of the processing device (3) at both ends of the carrier (40), and guide grooves (420) are provided on the inner side of the guide rails (42) along the vertical direction. Slide seats (45) are provided at both ends of the carrier (40), and the slide seats (45) are slidably engaged in the guide grooves (420) so that the carrier (40) can move in the vertical direction.

4. The enameled wire waste processing equipment according to claim 3, characterized in that: A first fixed plate (43) is installed on the surface of the processing device (3) at the middle position of the carrier (40). The first fixed plate (43) adopts an inverted L-shaped structure. A first electric telescopic rod (44) is installed on the horizontal end of the first fixed plate (43). The piston rod of the first electric telescopic rod (44) is connected to the carrier (40). The carrier (40) can be controlled to move up and down through the first electric telescopic rod (44).

5. The enameled wire waste processing equipment according to any one of claims 2 to 4, characterized in that: The scraping portion (41) is composed of a plurality of scraping blades (410) spliced together, and the plurality of scraping blades (410) are capable of sliding independently in the vertical direction. A cavity (401) is provided inside the carrier (40) at a position for mounting the scraping portion (41), and the bottom of each scraping blade (410) is inserted into the cavity (401) and connected to the cavity (401) via a first spring (46).

6. The enameled wire waste processing equipment according to claim 5, characterized in that: At least one limiting block (411) is provided on the side of each scraping blade (410), and a limiting groove (400) is installed on the inner wall of the cavity (401) in a vertical direction, and the limiting block (411) can slide in the limiting groove (400).

7. The enameled wire waste processing equipment according to claim 1, characterized in that: A second through slot (33) running through the processing device (3) is provided at the position of the rotary paint removal component (5), and the carrier frame (50) is installed in the second through slot (33). A plurality of rotor blades (510) are provided, and the plurality of rotor blades (510) are tilted and distributed in a ring array inside the rotor (51). The front ends of the rotor blades (510) extend to the inside of the rotor (51). A control component (52) for driving the rotor (51) to rotate is installed on the upper surface of the processing device (3).

8. The enameled wire waste processing equipment according to claim 7, characterized in that: The control component (52) includes: A motor (520) is fixedly mounted above the processing device (3) via a mounting plate (521), and a driving sprocket (522) is connected to the output shaft of the motor (520); A bearing seat (525) is fixedly mounted above the processing device (3); a rotating shaft (527) is rotatably mounted on the bearing seat (525); a gear (526) is mounted on one end of the rotating shaft (527); and a driven sprocket (524) is mounted on the other end of the rotating shaft (527); the driven sprocket (524) is connected to the driving sprocket (522) via a chain belt (523); A gear ring (512) is sleeved on one end of the rotor (51), an opening is provided in the region above the carrier frame (50) and located at the rotor (51), and the gear (526) is meshedly connected with the gear ring (512) at the opening.

9. The enameled wire waste processing equipment according to claim 8, characterized in that: The surface of the rotor (51) is provided with a knife groove (517) for mounting the rotor blade (510), and the rotor (51) is provided with an inclined groove (514) parallel to the knife groove (517) at positions on both sides of the rotor blade (510), and a slider (515) is provided on both sides of the rotor blade (510), and the slider (515) is slidably assembled in the inclined groove (514) and connected to one end of the inclined groove (514) via a second spring (516).

10. The enameled wire waste processing equipment according to claim 1, characterized in that: A third through slot (34) extending vertically through the processing device (3) is provided at the position of the extrusion paint removal component (6), and two extrusion blade holders (60) are respectively installed at the upper and lower positions of the second through slot (33), and the extrusion blade holders (60) are inserted into the second through slot (33) in a staggered manner. A groove with an arc-shaped structure is provided on one side of the extrusion blade holder (60) inserted into the second through slot (33), and a second fixed plate (61) with an L-shaped structure is installed at the center of the extrusion blade holder (60) on the processing device (3), and a second electric telescopic rod (62) is fixedly installed on the vertical end of the second fixed plate (61), and a piston rod of the second electric telescopic rod (62) is connected to the center of the extrusion blade holder (60), so that the second electric telescopic rod (62) can push the extrusion blade holder (60) to move in the vertical direction.