Enameled round copper wire annealing equipment
By introducing a rotating cleaning brush and a synchronous winding mechanism into the annealing equipment, the problem of poor cleaning effect of existing equipment is solved, and efficient cleaning and uniform winding of copper round wire surface are achieved.
Patent Information
- Application Number
- CN202520600424.5
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-04-01
- Publication Date
- 2026-02-10
- Estimated Expiration
- 2035-04-01
AI Technical Summary
Existing annealing equipment for enameled copper round wire lacks a rotating brush function during the cleaning process, making it difficult to thoroughly remove firmly attached impurities such as oxide scale and stains formed by solidified oil.
An annealing device for enameled copper round wire was designed. The device uses a power transmission shaft to drive the meshing of bevel gears and spur gears, which causes the round shaft and rotating ring to rotate. This, in turn, drives the cleaning brush to rotate around the copper round wire. Combined with the design of a reciprocating screw and a timing belt, the device achieves both the rotational cleaning of the cleaning brush and the uniform winding of the round wire.
It effectively improves the cleaning effect on stubborn impurities on the surface of copper round wire, ensuring the cleanliness and winding quality of the copper round wire after annealing.
Smart Images

Figure CN223888562U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of annealing equipment technology, and in particular to annealing equipment for enameled copper round wire. Background Technology
[0002] Enamelled copper round wire annealing equipment is mainly used to anneal enamelled copper round wire to improve its physical and mechanical properties, and is widely used in many fields such as electronics, electrical appliances, and motor manufacturing. In the production of electronic equipment, annealed enamelled copper round wire can better meet the requirements of winding processes for flexibility and conductivity. Currently, enamelled copper round wire annealing equipment typically requires the following technologies in practical applications:
[0003] 1. Precise temperature control technology ensures that the temperature during annealing meets the material characteristics of the enameled copper round wire, so as to achieve the best annealing effect;
[0004] 2. The efficient cooling technology enables the annealed enameled copper round wire to cool down rapidly, ensuring the stability of its internal structure;
[0005] 3. Stable transmission technology ensures smooth feeding of enameled copper round wire during annealing, avoiding problems such as shaking and jamming that affect annealing quality;
[0006] 4. Excellent cleaning techniques remove impurities remaining on the surface of enameled copper round wires during processing, preventing impurities from affecting the annealing effect and subsequent performance.
[0007] 5. Reliable automated control technology enables automated operation and monitoring of the annealing process, improving production efficiency and product quality stability.
[0008] Currently, various equipment and methods are used to achieve the annealing function of enameled copper round wire. Some equipment uses a cleaning brush to clean the surface of the round wire during take-up.
[0009] However, the above method has a prominent problem: existing equipment only uses a fixed cleaning brush to scrape the surface of enameled copper wire, lacking a rotating cleaning function. This lack of a rotating cleaning function means that the friction and contact between the cleaning brush and the copper wire surface are relatively simple. For some firmly attached impurities, such as oxide scale or solidified oil stains, the scraping action of the fixed brush alone is insufficient to generate enough force to completely remove them. Utility Model Content
[0010] To address the shortcomings of existing technologies, this utility model provides an annealing device for enameled copper round wires. This device solves the problem that, when cleaning the surface of enameled copper round wires, the cleaning effect is achieved solely through scraping with a fixed cleaning brush, lacking a rotating cleaning function. The lack of a rotating cleaning function means that the friction and contact method between the cleaning brush and the copper round wire surface is relatively simple. For some firmly attached impurities, such as oxide scale and solidified oil stains, the scraping action of a fixed brush alone is insufficient to generate enough force to completely remove them.
[0011] To achieve the above objectives, this utility model provides the following technical solution:
[0012] An annealing device for enameled copper round wire includes a cleaning component mounting box. A rotating ring is rotatably connected to the upper end of the mounting box. A set of cleaning brushes is threaded inside the rotating ring. A round shaft is rotatably connected inside the mounting box. Spur gears are fitted onto the outer surfaces of both the rotating ring and the round shaft, and the two spur gears mesh. A power transmission shaft is rotatably connected inside the mounting box. Bevel gears are fitted onto the outer surfaces of both the power transmission shaft and the round shaft, and the two bevel gears mesh. An annealing table is fixedly connected to the lower end of the mounting box.
[0013] Preferably, the annealing table has a cooling annealing tank inside.
[0014] Preferably, the outer surface of the annealing table is provided with a drain valve.
[0015] Preferably, the upper end of the annealing treatment table away from the drain valve is fixedly connected to two sets of arc-shaped mounting seats, and the two sets of arc-shaped mounting seats are rotatably connected to reciprocating lead screws.
[0016] Preferably, the reciprocating screw has a reciprocating sliding box threaded onto its outer surface, and a take-up shaft is sleeved at the end of each of the two sets of arc-shaped mounting seats away from the reciprocating screw.
[0017] Preferably, the power transmission shaft, the reciprocating lead screw, and the outer surfaces of the two sets of arc-shaped mounting seats are all fitted with synchronous pulleys, and the outer surfaces of the two sets of synchronous pulleys are fitted with synchronous belts.
[0018] Compared with the prior art, the present invention has the following beneficial effects:
[0019] 1. The power transmission shaft is driven to rotate. When the power transmission shaft rotates, it achieves vertical power transmission through the meshing of two bevel gears, causing the round rod shaft to rotate. When the round rod shaft rotates, it drives the rotating ring to rotate through the meshing of two spur gears. When the rotating ring rotates, it drives four cleaning brushes to rotate around the enameled copper round wire. The cleaning brush bristles come into contact with the surface of the enameled copper round wire to clean it, sweeping away the impurities remaining on the surface of the round wire after quenching. While the round wire is being pulled and collected, the cleaning brushes rotating around the surface of the round wire further improve the cleaning effect, more effectively breaking down and removing stubborn impurities remaining on the surface of the round wire.
[0020] 2. The winding shaft is driven by a drive motor to rotate, and the winding shaft rotates to take in the enameled copper round wire. During the winding process, multiple guide rollers play a guiding and limiting role. When the winding shaft rotates, the rotating shaft in the arc-shaped mounting base transmits power through the synchronous pulley and synchronous belt, so that the reciprocating screw and the winding shaft rotate synchronously. When the reciprocating screw rotates, it will drive the round wire to swing back and forth. The round wire wound by the swing is more evenly distributed on the winding shaft, which is conducive to improving the quality of the final wound product. Attached Figure Description
[0021] The above description is only an overview of the technical solution of this utility model. In order to better understand the technical means of this utility model and to implement it in accordance with the contents of the specification, the preferred embodiments of this utility model are described in detail below with reference to the accompanying drawings.
[0022] Figure 1 This is a three-dimensional structural diagram of the present invention;
[0023] Figure 2 This is a connection structure diagram of the cleaning component mounting box of this utility model;
[0024] Figure 3 This is an exploded view of the rotating ring connection of this utility model;
[0025] Figure 4 This is an exploded view of the cleaning brush connection of this utility model.
[0026] Legend: 11. Cleaning component mounting box; 12. Rotating ring; 13. Cleaning brush; 14. Round rod shaft; 15. Spur gear; 16. Power transmission shaft; 17. Bevel gear; 18. Annealing table; 19. Cooling annealing tank; 21. Drain valve; 22. Arc-shaped mounting base; 23. Reciprocating lead screw; 24. Reciprocating sliding box; 25. Rewinding shaft; 26. Synchronous pulley; 27. Synchronous belt. Detailed Implementation
[0027] This application provides an annealing device for enameled copper round wire, which effectively solves the problem that when cleaning the surface of enameled copper round wire, the device only achieves the cleaning effect by scraping with a fixed cleaning brush, and lacks a rotating cleaning function. The lack of a rotating cleaning function means that the friction and contact method between the cleaning brush and the surface of the copper round wire are relatively simple. For some firmly attached impurities, such as oxide scale and solidified oil stains, the scraping of a fixed brush alone is insufficient to generate enough force to completely remove them. The power transmission shaft is driven to rotate, and when the power transmission shaft rotates, it achieves vertical power transmission through the meshing of two bevel gears, causing the round rod shaft to rotate. When the round rod shaft rotates, it drives the rotating ring to rotate through the meshing of two spur gears. When the rotating ring rotates, it drives four cleaning brushes to rotate around the enameled copper round wire. The cleaning brush bristles come into contact with the surface of the enameled copper round wire to clean it, sweeping away the impurities remaining on the surface of the round wire after quenching. As the round wire is pulled and collected, the cleaning brushes rotating around the surface of the round wire further improve the cleaning effect, more effectively breaking down and removing stubborn impurities remaining on the surface of the round wire. Example
[0028] like Figure 1 , Figure 2 , Figure 3 and Figure 4As shown, the technical solution in this application embodiment effectively solves the problem that when cleaning the surface of enameled copper round wire, the equipment only achieves the cleaning effect by scraping with a fixed cleaning brush, lacking a rotating cleaning function. The lack of a rotating cleaning function means that the friction and contact method between the cleaning brush and the copper round wire surface is relatively simple. For some firmly attached impurities, such as oxide scale and stains formed by solidified oil, the scraping with a fixed brush alone is insufficient to generate enough force to completely remove them. The overall idea is as follows: an enameled copper round wire annealing device includes a cleaning component mounting box 11. A rotating ring 12 is rotatably connected to the upper end of the cleaning component mounting box 11. A set of cleaning brushes 13 are threadedly connected inside the rotating ring 12. A round rod shaft 14 is rotatably connected inside the cleaning component mounting box 11. Spur gears 15 are sleeved on the outer surfaces of both the rotating ring 12 and the round rod shaft 14, and the two spur gears 15 mesh with each other. A power transmission shaft 16 is rotatably connected inside the cleaning component mounting box 11. The power transmission shaft 16 and the round rod shaft 14 are connected to each other. Each surface is fitted with bevel gears 17. Two bevel gears 17 mesh with each other, driving the power transmission shaft 16 to rotate. When the power transmission shaft 16 rotates, it achieves vertical power transmission through the meshing of the two bevel gears 17, causing the round rod shaft 14 to rotate. When the round rod shaft 14 rotates, it drives the rotating ring 12 to rotate through the meshing of two spur gears 15. When the rotating ring 12 rotates, it drives four cleaning brushes 13 to rotate around the enameled copper round wire. The cleaning brushes 13 clean the surface of the enameled copper round wire by contacting the surface of the brushes 13, cleaning the impurities remaining on the surface of the round wire after quenching. While the round wire is being pulled and collected, the cleaning brushes 13 rotating around the surface of the round wire further improve the cleaning effect.
[0029] An annealing table 18 is fixedly connected to the lower end of the cleaning component mounting box 11. A power transmission shaft 16 is rotatably connected inside the annealing table 18. A cooling annealing tank 19 is provided inside the annealing table 18. A drain valve 21 is provided on the outer surface of the annealing table 18, and the drain valve 21 is connected to the cooling annealing tank 19. Two sets of arc-shaped mounting seats 22 are fixedly connected to the upper end of the annealing table 18 away from the drain valve 21. A reciprocating screw 23 is rotatably connected inside the two sets of arc-shaped mounting seats 22. A reciprocating sliding box 24 is threaded onto the outer surface of the reciprocating screw 23. A winding shaft 25 is sleeved on the upper end of the two sets of arc-shaped mounting seats 22 away from the reciprocating screw 23. Synchronous pulleys 26 are sleeved on the outer surfaces of the power transmission shaft 16, the reciprocating screw 23, and the two sets of arc-shaped mounting seats 22. A winding shaft 25 is rotatably connected to the upper end of the cleaning component mounting box 11, the annealing table 18, the cooling annealing tank 19, and the reciprocating sliding box 24. The wire guide rollers inject coolant into the cooling annealing tank 19. The coolant in the cooling annealing tank 19 can be discharged by opening the drain valve 21. The round wire passes through the cooling annealing tank 19 and comes into contact with the coolant for cooling and annealing treatment. The quenched enameled copper round wire is then guided along multiple wire guide rollers to the surface of the take-up shaft 25 for storage. Two sets of arc-shaped mounting seats 22 are installed on the upper end of the annealing treatment table 18. One set of arc-shaped mounting seats 22 consists of two seats located at both ends of the reciprocating sliding box 24. The other set of arc-shaped mounting seats 22 consists of one seat with a rotating shaft inside. The take-up shaft 25 is sleeved on the outside of the rotating shaft, and a synchronous wheel 26 is sleeved on the surface of the rotating shaft. A drive motor is installed on the upper end of the annealing treatment table 18, and the output shaft of the drive motor is installed on the rotating shaft. The drive motor drives the take-up shaft 25 to rotate, and the rotation of the take-up shaft 25 winds up the enameled copper round wire. During the winding process, multiple wire guide rollers play a guiding and limiting role.
[0030] Two sets of synchronous pulleys 26 are fitted with synchronous belts 27 on their outer surfaces. When the take-up shaft 25 rotates, the rotating shaft in the arc-shaped mounting base 22 transmits power through the synchronous pulleys 26 and synchronous belts 27, causing the reciprocating screw 23 and the take-up shaft 25 to rotate synchronously. When the reciprocating screw 23 rotates, it will drive the reciprocating sliding box 24 to slide back and forth. The guide roller on the reciprocating sliding box 24 will drive the round wire to swing. The round wire wound by the swing is more evenly distributed on the take-up shaft 25, which is beneficial to improving the quality of the final wound product. The reciprocating sliding box 24 is provided with a limit block for reversing. A reversing groove is opened in the limit block. When the reciprocating sliding box 24 slides to the outermost position of the reciprocating screw 23, under the guidance of the reversing groove, the movement direction of the reciprocating sliding box 24 changes, and it begins to move along the spiral groove of the reciprocating screw 23 in the opposite direction, thereby realizing reciprocating motion.
[0031] To address the problems existing in the prior art, this utility model provides an annealing device for enameled copper round wire. The power transmission shaft 16 is driven to rotate. When the power transmission shaft 16 rotates, it achieves vertical power transmission through the meshing of two bevel gears 17, causing the round rod shaft 14 to rotate. When the round rod shaft 14 rotates, it drives the rotating ring 12 to rotate through the meshing of two spur gears 15. When the rotating ring 12 rotates, it drives four cleaning brushes 13 to rotate around the enameled copper round wire. The cleaning brushes 13 clean the surface of the enameled copper round wire by contacting the surface of the brushes 13, cleaning the impurities remaining on the surface of the round wire after quenching. While the round wire is being pulled and collected, the cleaning brushes 13 rotating around the surface of the round wire further improve the cleaning effect, more effectively breaking down and removing stubborn impurities remaining on the surface of the round wire.
[0032] Cleaning component mounting box 11: Serves as the carrier of the cleaning structure, providing installation space for components such as the rotating ring 12, round rod shaft 14, and power transmission shaft 16; its upper end is rotatably connected to the rotating ring 12, and its lower end is fixedly connected to the annealing treatment table 18, connecting the cleaning part and the annealing treatment part into a single unit; at the same time, the wire roller rotatably connected to the cleaning component mounting box 11 plays a guiding role during the threading of the enameled copper round wire, ensuring that the round wire smoothly enters the subsequent cleaning, annealing, and winding stages;
[0033] Rotating ring 12: Rotatably connected to the upper end of the cleaning component mounting box 11, with a set of cleaning brushes 13 internally threaded; When the round rod shaft 14 rotates under the drive of the spur gear 15, the rotating ring 12 carries the cleaning brushes 13 to rotate around the enameled copper wire, so that the cleaning brushes 13 can contact the surface of the copper wire in all directions, realize the rotational cleaning of the wire, and effectively improve the cleaning effect.
[0034] Cleaning brush 13: It is threaded inside the rotating ring 12. Its surface bristles contact the surface of the enameled copper wire. Under the drive of the rotating ring 12, it rotates around the wire to clean the impurities remaining on the surface of the wire after quenching. It works in conjunction with the rotating ring 12 to more effectively break down and remove stubborn impurities remaining on the surface of the wire through rotational brushing.
[0035] Round shaft 14: Rotatably connected inside the cleaning component mounting box 11, with a spur gear 15 sleeved on its outer surface, meshing with the spur gear 15 on the outer surface of the rotating ring 12, thereby transmitting its own rotational motion to the rotating ring 12; at the same time, a bevel gear 17 is also sleeved on its outer surface, meshing with the bevel gear 17 on the outer surface of the power transmission shaft 16, receiving power from the power transmission shaft 16, realizing vertical power transmission, driving the rotating ring 12 and the cleaning brush 13 to rotate, and completing the cleaning action of the enameled copper round wire;
[0036] Spur gear 15: It is respectively sleeved on the outer surface of the rotating ring 12 and the round rod shaft 14. Through mutual meshing, it transmits the rotational power of the round rod shaft 14 to the rotating ring 12, so that the rotating ring 12 can make a circular motion around the enameled copper wire, thereby driving the cleaning brush 13 to rotate and realize the rotational cleaning of the wire. It is a key connecting component for power transmission and cleaning action.
[0037] Power transmission shaft 16: Rotatably connected inside the cleaning component mounting box 11 and the annealing treatment table 18, with bevel gear 17 sleeved on its outer surface and meshing with bevel gear 17 on the outer surface of the round rod shaft 14 to realize vertical power transmission, transmitting power to the round rod shaft 14, thereby driving the rotating ring 12 and cleaning brush 13 to rotate; at the same time, a synchronous pulley 26 is sleeved on its outer surface, which is connected to the reciprocating screw 23 and the synchronous pulley 26 on the outer surface of the arc mounting base 22 through a synchronous belt 27 to realize power transmission, so that the cleaning action is coordinated with the winding, reciprocating oscillation and other actions;
[0038] Bevel gear 17: It is respectively sleeved on the outer surface of the power transmission shaft 16 and the round rod shaft 14. Through mutual meshing, it realizes the vertical power transmission from the power transmission shaft 16 to the round rod shaft 14, changes the power transmission direction, and ensures that the round rod shaft 14 can obtain power and rotate, thereby driving the rotating ring 12 and the cleaning brush 13 to clean the enameled copper round wire.
[0039] Annealing treatment table 18: Fixedly connected to the lower end of the cleaning component mounting box 11, providing a mounting base for components such as the cooling annealing tank 19 and the arc mounting seat 22; the internal cooling annealing tank 19 is used to hold coolant to cool and anneal the enameled copper round wire; at the same time, a drive motor is installed on the upper end of the annealing treatment table 18 and connected to the winding shaft 25 through the rotating shaft to provide power for winding the enameled copper round wire; in addition, it works with the cleaning component mounting box 11 to integrate the two key processes of cleaning and annealing into one piece of equipment, ensuring the continuity of the production process;
[0040] Cooling annealing tank 19: It is located inside the annealing table 18 and is used to inject coolant. When the enameled copper round wire passes through it, it comes into contact with the coolant and undergoes cooling annealing treatment to change the physical properties of the copper round wire and meet the requirements of subsequent use. The drain valve 21 set on the outer surface of the cooling annealing tank 19 can control the discharge of coolant and facilitate the replacement or cleaning of coolant.
[0041] Drain valve 21: Located on the outer surface of the annealing treatment table 18 and connected to the cooling annealing tank 19, it is used to control the discharge of coolant in the cooling annealing tank 19, so as to facilitate the replacement, cleaning or adjustment of coolant volume when needed, and ensure the normal progress of the cooling annealing process.
[0042] Arc-shaped mounting base 22: Fixed to the upper end of the annealing table 18, divided into two groups; one group consists of two, located at both ends of the reciprocating sliding box 24, which supports and guides the reciprocating sliding box 24, ensuring that the reciprocating sliding box 24 can slide back and forth smoothly when the reciprocating screw 23 rotates; the other group consists of one, with a rotating shaft inside, and the winding shaft 25 is sleeved on the outside of the rotating shaft, providing installation and rotation support for the winding shaft 25; at the same time, the outer surface of the arc-shaped mounting base 22 is sleeved with a synchronous wheel 26, which is connected to the power transmission shaft 16 and the synchronous wheel 26 on the outer surface of the reciprocating screw 23 through the synchronous belt 27, realizing the transmission and coordination of power, so that the winding, reciprocating oscillation and cleaning actions are performed synchronously;
[0043] Reciprocating screw 23: Rotatably connected inside the two sets of arc-shaped mounting seats 22, and threadedly connected to the reciprocating sliding box 24 on its outer surface; When the rotating shaft inside the arc-shaped mounting seat 22 transmits power to rotate through the synchronous pulley 26 and the synchronous belt 27, the reciprocating screw 23 drives the reciprocating sliding box 24 to slide back and forth; At the same time, it is connected to the power transmission shaft 16 through the synchronous pulley 26 and the synchronous belt 27, and transmits power to the power transmission shaft 16, thereby driving the cleaning brush 13 to rotate, realizing the coordinated work of cleaning, winding, and reciprocating oscillation.
[0044] Reciprocating sliding box 24: threadedly connected to the outer surface of reciprocating screw 23, it slides back and forth driven by reciprocating screw 23; its upper end is rotatably connected to guide roller, during the winding process of enameled copper round wire, the guide roller drives the round wire to swing, so that the round wire is more evenly distributed on the winding shaft 25, improving the quality of the final winding product; in addition, a limit block for reversing is set in the reciprocating sliding box 24. When it slides to the outermost position of reciprocating screw 23, the direction of movement is changed under the guidance of the reversing groove in the limit block, so as to realize continuous reciprocating motion;
[0045] Take-up shaft 25: It is sleeved on the outer shaft inside the arc mounting base 22 and rotates under the drive of the drive motor to take up the enameled copper round wire after cleaning and annealing. By cooperating with components such as the arc mounting base 22, synchronous pulley 26, and synchronous belt 27, it achieves synchronous rotation with the reciprocating screw 23, ensuring that the round wire can be evenly wound on the take-up shaft 25 during the winding process, thus ensuring the winding quality.
[0046] Synchronous pulley 26: It is respectively sleeved on the outer surface of the power transmission shaft 16, the reciprocating screw 23 and the two sets of arc-shaped mounting seats 22, and connected by the synchronous belt 27 to realize the transmission of power between the components, so that the power transmission shaft 16, the reciprocating screw 23 and the winding shaft 25 can rotate synchronously, thereby ensuring that the cleaning, winding and reciprocating oscillation actions are coordinated and ensuring the stable operation of the entire enameled copper round wire annealing equipment;
[0047] Synchronous belt 27: Sleeves on the outer surface of two sets of synchronous pulleys 26, connecting the synchronous pulleys 26 on the outer surface of the power transmission shaft 16, the reciprocating screw 23 and the arc-shaped mounting base 22, realizing the transmission and synchronization of power between various components, ensuring that the actions of various parts of the equipment are coordinated and consistent, and enabling the cleaning, annealing, winding and reciprocating oscillation of enameled copper round wire to be carried out in an orderly manner.
[0048] Working principle:
[0049] The first step involves rotatably connecting guide rollers to the upper ends of the cleaning component mounting box 11, annealing table 18, cooling annealing tank 19, and reciprocating sliding box 24. Coolant is injected into the cooling annealing tank 19, which can be drained by opening the drain valve 21. The round wire passes through the cooling annealing tank 19 and comes into contact with the coolant for cooling and annealing treatment. The quenched enameled copper round wire is then guided along multiple guide rollers to the surface of the take-up shaft 25 for storage. Two sets of arc-shaped mounting seats 22 are installed on the upper end of the annealing table 18. One set consists of two arc-shaped mounting seats 22 located at both ends of the reciprocating sliding box 24, while the other set consists of one arc-shaped mounting seat 22 with a rotating shaft inside. The take-up shaft 25 is sleeved on the outside of the rotating shaft, and a synchronous pulley 26 is sleeved on the surface of the rotating shaft. A drive motor is installed on the upper end of the annealing table 18, and the output shaft of the drive motor is mounted on the rotating shaft. The drive motor drives the take-up shaft 25. 5. Rotation: The take-up shaft 25 rotates to take in the enameled copper round wire. During the take-up process, multiple guide rollers act as guides and limiters. When the take-up shaft 25 rotates, the rotating shaft in the arc-shaped mounting base 22 transmits power through the synchronous pulley 26 and the synchronous belt 27, causing the reciprocating screw 23 and the take-up shaft 25 to rotate synchronously. When the reciprocating screw 23 rotates, it drives the reciprocating sliding box 24 to slide back and forth. The guide rollers on the reciprocating sliding box 24 drive the round wire to swing. The round wire wound by the swing is more evenly distributed on the take-up shaft 25, which is beneficial to improving the quality of the final wound product. The reciprocating sliding box 24 is provided with a limit block for reversing direction. The limit block has a reversing groove. When the reciprocating sliding box 24 slides to the outermost position of the reciprocating screw 23, under the guidance of the reversing groove, the movement direction of the reciprocating sliding box 24 changes, and it begins to move along the spiral groove of the reciprocating screw 23 in the opposite direction, thereby realizing reciprocating motion.
[0050] In the second step, during the winding operation of the round wire, the reciprocating screw 23 transmits power to the power transmission shaft 16 through the synchronous pulley 26 and the synchronous belt 27. The power transmission shaft 16 is driven to rotate. When the power transmission shaft 16 rotates, it achieves vertical power transmission through the meshing of two bevel gears 17, causing the round rod shaft 14 to rotate. When the round rod shaft 14 rotates, it drives the rotating ring 12 to rotate through the meshing of two spur gears 15. When the rotating ring 12 rotates, it drives four cleaning brushes 13 to rotate around the enameled copper round wire. The cleaning brushes 13 clean the surface of the enameled copper round wire by contacting the surface of the brushes, cleaning the impurities remaining on the surface of the round wire after quenching. While the round wire is being pulled and wound, the cleaning brushes 13 rotating around the surface of the round wire further improve the cleaning effect.
[0051] Finally, it should be noted that the above embodiments are merely examples for clearly illustrating the present invention and are not intended to limit the implementation. Those skilled in the art can make other variations or modifications based on the above description. It is neither necessary nor possible to exhaustively list all possible implementations. However, obvious variations or modifications derived therefrom are still within the protection scope of this invention.
Claims
1. An annealing device for enameled copper round wire, comprising a cleaning component mounting box (11), wherein a rotating ring (12) is rotatably connected to the upper end of the cleaning component mounting box (11), characterized in that, A set of cleaning brushes (13) is threaded inside the rotating ring (12). A round rod shaft (14) is rotatably connected inside the cleaning component mounting box (11). Spur gears (15) are sleeved on the outer surfaces of both the rotating ring (12) and the round rod shaft (14). The two spur gears (15) mesh with each other. A power transmission shaft (16) is rotatably connected inside the cleaning component mounting box (11). Bevel gears (17) are sleeved on the outer surfaces of both the power transmission shaft (16) and the round rod shaft (14). The two bevel gears (17) mesh with each other. The cleaning component mounting box (11) is fixedly connected to an annealing treatment table (18) at its lower end.
2. The annealing equipment for enameled copper round wire as described in claim 1, characterized in that, The power transmission shaft (16) is rotatably connected inside the annealing table (18); The annealing station (18) has a cooling annealing tank (19) inside.
3. The annealing equipment for enameled copper round wire as described in claim 2, characterized in that, The outer surface of the annealing table (18) is provided with a drain valve (21); The drain valve (21) and the cooling annealing tank (19) are connected.
4. The annealing equipment for enameled copper round wire as described in claim 3, characterized in that, Two sets of arc-shaped mounting seats (22) are fixedly connected to the upper end of the annealing table (18) away from the drain valve (21). Among them, the two sets of arc-shaped mounting seats (22) are rotatably connected to reciprocating lead screws (23).
5. The annealing equipment for enameled copper round wire as described in claim 4, characterized in that, The reciprocating lead screw (23) is threadedly connected to a reciprocating sliding box (24) on its outer surface. Among them, the two sets of arc-shaped mounting seats (22) are connected to a winding shaft (25) at the end away from the reciprocating screw (23).
6. The annealing equipment for enameled copper round wire as described in claim 5, characterized in that, Synchronous pulleys (26) are fitted onto the outer surfaces of the power transmission shaft (16), the reciprocating lead screw (23), and the two sets of arc-shaped mounting seats (22). Among them, the outer surfaces of the two sets of synchronous pulleys (26) are fitted with synchronous belts (27).