A processing device and method for enameled copper flat wire for photovoltaic power generation inverter

By designing an automatic deburring and stirring component for copper flat wire processing, the problems of burrs and enamel sedimentation in existing technologies have been solved, achieving high-efficiency copper flat wire enameling quality and production stability.

CN116230394BActive Publication Date: 2026-07-21WELL ASCENT ELECTRONIC (GANZHOU) CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
WELL ASCENT ELECTRONIC (GANZHOU) CO LTD
Filing Date
2022-09-09
Publication Date
2026-07-21

AI Technical Summary

Technical Problem

Existing copper flat wire processing equipment fails to effectively remove burrs during painting, and uneven mixing of the paint leads to sedimentation. Furthermore, manual replenishment of the paint is required, affecting production efficiency and quality.

Method used

A processing device including an immersion tank, a stirring assembly, a collection assembly, and a liquid addition assembly was designed. By using a combination of guide wheels, pressure rollers, a deburring frame, and a brush frame, automatic deburring and paint mixing are achieved. Automatic liquid addition is controlled by magnetic attraction, avoiding resource waste and sedimentation.

Benefits of technology

This improved the enameling quality of copper flat wire, reduced resource waste, lowered the labor intensity of workers, and ensured production efficiency and quality stability.

✦ Generated by Eureka AI based on patent content.

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Abstract

The application discloses a kind of processing device and method for enameled copper flat wire of photovoltaic power generation inverter, it is related to enameled copper flat wire processing technical field, the application includes immersion liquid tank, the bottom surface of the inner chamber of immersion liquid tank is fixedly connected with guide wheel to left and right two side walls, copper flat wire is slidably connected with each guide wheel outer side wall, the bottom surface middle part of the inner chamber of immersion liquid tank is rotatably connected with press roll by multiple support plates, the upper portion of the right end surface of immersion liquid tank is fixedly connected with deburring frame;Stirring assembly, stirring assembly is arranged in the lower portion of the inner chamber of immersion liquid tank front and back two sides;Collecting assembly, collecting assembly is arranged in the lower portion of the left end surface of immersion liquid tank;Liquid adding assembly, liquid adding assembly is arranged in the front and back end surface of immersion liquid tank.The application is cooperated with press roll etc., realizes the function of paint liquid stirring, cooperated with deburring frame and collecting assembly etc., realizes the deburring of copper flat wire, realizes automatic liquid adding in the inner chamber of immersion liquid tank by the setting of liquid adding assembly.
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Description

Technical Field

[0001] This invention relates to the field of enameled copper flat wire processing technology, and in particular to a processing apparatus and method for enameled copper flat wire used in photovoltaic power generation inverters. Background Technology

[0002] Enameled copper flat 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.

[0003] However, existing copper flat wire processing equipment has some shortcomings. For example, it cannot deburr the surface of the copper flat wire before painting, resulting in unsatisfactory quality after painting; it cannot stir the paint in the immersion tank, causing trace elements in the paint to precipitate and affecting the quality of the copper flat wire painting; and it requires manual replenishment of paint in the immersion tank at regular intervals, increasing the labor intensity of workers and posing a risk of untimely paint replenishment, which greatly reduces the efficiency of factory production. Therefore, this application proposes a processing device and method for enameled copper flat wire for photovoltaic power generation inverters to solve these problems. Summary of the Invention

[0004] The purpose of this invention is to address the shortcomings of existing technologies by providing a processing apparatus and method for enameled copper flat wires used in photovoltaic power generation inverters.

[0005] To achieve the above objectives, the present invention adopts the following technical solution: A processing apparatus for enameled copper flat wires used in photovoltaic inverters includes: The immersion tank has guide wheels fixedly connected to the bottom surface of the inner cavity and the left and right side walls. Each guide wheel has a copper flat wire slidably connected to its outer side wall. A pressure roller is rotatably connected to the middle of the bottom surface of the inner cavity of the immersion tank through multiple support plates. A deburring frame is fixedly connected to the upper part of the right end face of the immersion tank, and a brush frame is fixedly connected to the upper part of the left end face of the immersion tank. A stirring assembly is provided on the front and rear sides of the lower part of the inner cavity of the immersion tank; A collection component is provided on the lower left end face of the immersion tank; Liquid addition assembly: The liquid addition assembly is provided on the front and rear end faces of the immersion tank.

[0006] Preferably, the pressure rollers on both the upper and lower sides are in contact with the copper flat wire, and the surface of the pressure rollers is provided with anti-slip texture.

[0007] Preferably, the copper flat wire is slidably connected to the deburring frame and the copper flat wire is slidably connected to the brush frame.

[0008] Preferably, the stirring assembly includes a transmission worm, a transmission worm wheel, a transmission rod, and a stirring frame. The front and rear ends of the pressure roller located on the upper side are fixedly connected to the transmission worm. The transmission worm wheel is meshed with the upper part of the transmission worm. The transmission rod is fixedly connected to the inner cavity of the transmission worm wheel. The stirring frame is fixedly connected to the left and right sides of the outer wall of the transmission rod.

[0009] Preferably, the transmission rod is rotatably connected to the immersion tank, and the transmission worm gear is rotatably connected to the immersion tank.

[0010] Preferably, the collection assembly includes a first bevel gear, a second bevel gear, a reciprocating threaded groove rod, a movable ring, a fur ring, a rubber rod, a support plate, and a collection trough. The first bevel gear is fixedly connected to the left end face of the transmission rod located at the front, and the second bevel gear is meshed with the rear part of the first bevel gear. The reciprocating threaded groove rod is fixedly connected to the lower part of the left end face of the immersion tank through a bracket. The movable ring is slidably connected to the middle part of the outer side wall of the reciprocating threaded groove rod. The rubber rod is fixedly connected to the upper part of the right end face of the immersion tank through a support plate, and the collection trough is fixedly connected to the inner side of the support plates on both the front and rear sides.

[0011] Preferably, a second bevel gear is fixedly connected to the front end face of the reciprocating threaded groove rod, the first bevel gear meshes with the second bevel gear, a limit post is slidably connected inside the threaded groove wall of the reciprocating threaded groove rod, and the moving ring is fixedly connected to the fur ring.

[0012] Preferably, the liquid addition assembly includes a float, an inlet pipe, a guide rail, a fixed pipe, and a baffle. The float is slidably connected to the middle of the immersion tank's inner cavity. The inlet pipe and guide rail are fixedly connected to the front end of the immersion tank. The fixed pipe is fixedly connected to the front end of the inlet pipe. First magnets are fixedly connected to both ends of the float. A second magnet is slidably connected to the inner cavity of the guide rail. A third magnet is fixedly connected to the inner cavity of the fixed pipe. A baffle is fixedly connected to the front of the inner cavity of the guide rail. Preferably, the first magnet is slidably connected to the immersion tank, the second magnet is slidably connected to the baffle, the second magnet is slidably connected to the inlet pipe, an attractive force is generated between the first magnet and the second magnet, an attractive force is generated between the second magnet and the third magnet, the attractive force generated between the first magnet and the second magnet is greater than the attractive force generated between the second magnet and the third magnet, the inlet pipe is connected to the immersion tank, and the guide rail is connected to the inlet pipe.

[0013] A method for processing enameled copper flat wire for photovoltaic power generation inverters, comprising the following steps: S1. The copper flat wires are sequentially led out from the outer walls of the four guide wheels and pass through the upper and lower pressure rollers in the middle of the immersion tank. S2. The moving copper flat wire can drive the pressure rollers on both sides to rotate, at which time the stirring assembly will be in operation, realizing the stirring of the liquid in the immersion tank; S3. When the stirring component is running, it can drive the collection component to move, and with the deburring frame, the burrs on the surface of the copper flat wire can be scraped off. S4. After the liquid in the immersion tank is gradually consumed to a certain extent, the liquid filling component will operate to realize the function of automatically filling the immersion tank with liquid.

[0014] Compared with the prior art, the beneficial effects of the present invention are as follows: 1. After the copper flat wire is conveyed through the guide rollers and pressure rollers, the brush frame provides a coating effect as the copper flat wire leaves the immersion tank, preventing the copper flat wire from carrying a large amount of paint and splashing out, thus avoiding resource waste. The moving copper flat wire drives the pressure rollers, causing the transmission worm gear to rotate. Since the transmission worm gear is meshed with the transmission worm wheel, the transmission worm wheel drives the transmission rod to rotate the stirring frame, realizing the function of stirring the paint in the immersion tank. This prevents the precipitation of internal trace elements due to prolonged static standing, which would affect the paint content adsorbed on the copper flat wire, thus ensuring the quality of the copper flat wire enameling process. 2. When the copper flat wire is conveyed into the deburring frame, the deburring frame can scrape off the burrs on the outer surface of the copper flat wire, avoiding the impact of burrs on the quality of the copper flat wire's enameling. When the transmission rod rotates, the first bevel gear will drive the second bevel gear to rotate the reciprocating threaded groove rod. Under the limit of the limit post and the fur ring, the moving ring will move back and forth on the reciprocating threaded groove rod. At this time, the fur ring will also move back and forth on the rubber rod. The fur and rubber will rub against each other, which can generate a large number of negative charges on the rubber rod. At this time, it can attract the debris scraped off the outer surface of the copper flat wire by the deburring frame, causing the debris to stick to the surface of the rubber rod. Since the fur ring continues to move back and forth on the rubber rod, it can scrape the debris to both ends of the rubber rod, and finally fall into the collection tank, which facilitates the unified collection and treatment by workers and improves the practicality of the entire device.

[0015] 3. As the copper flat wire continuously passes through the immersion tank, the liquid level of the paint in the tank gradually decreases. At the same time, the float plate also gradually lowers and moves towards the bottom of the immersion tank. When the float plate descends to be level with the bottom of the inlet pipe, because the attractive force between the first and second magnets is greater than the attractive force between the second and third magnets, the second magnet will move towards the first magnet (e.g., ...). Figure 6 As shown), at this time, the inlet pipe is open, allowing external paint to flow into the immersion tank through the inlet pipe, realizing the function of automatic liquid addition at the dripping level, ensuring the quality of the copper flat wire enameling. After a certain period of time (such as...), the paint is added... Figure 7 As shown), the float rises, and the first magnet drives the second magnet to rise synchronously. At this time, the second magnet slides inside the guide rail, and the water inlet pipe continues to open, continuously adding liquid to the immersion tank. When the float height is higher than the top surface of the guide rail cavity (as shown), Figure 8 As shown), the first magnet will no longer be able to attract the second magnet. Under the influence of gravity, the second magnet will gradually fall to the bottom of the guide rail. At this time, the attraction between the third magnet and the second magnet can make the second magnet move towards the third magnet, blocking the water pipe channel and preventing excessive external paint from entering and causing paint overflow, thereby increasing the processing cost and improving the practicality of the entire device. Attached Figure Description

[0016] Figure 1 This is a schematic diagram of the overall processing device and method for enameled copper flat wires for photovoltaic power generation inverters, as proposed in this invention. Figure 2 This is a partial cross-sectional view of the processing apparatus and method for enameled copper flat wires for photovoltaic power generation inverters proposed in this invention. Figure 3 This is a bottom-view partial cross-sectional view of the processing device and method for enameled copper flat wires for photovoltaic power generation inverters proposed in this invention. Figure 4 This invention provides a processing apparatus and method for enameled copper flat wires used in photovoltaic inverters. Figure 3 Enlarged structural diagram of region A in the middle; Figure 5 This is a schematic diagram of the left cross-sectional structure of a processing device and method for enameled copper flat wires for photovoltaic power generation inverters proposed in this invention. Figure 6 This is a schematic diagram showing the initial liquid addition process of the processing apparatus and method for enameled copper flat wires for photovoltaic power generation inverters proposed in this invention. Figure 7 This is a schematic diagram illustrating the liquid addition process of the processing apparatus and method for enameled copper flat wires used in photovoltaic inverters proposed in this invention. Figure 8 This is a schematic diagram showing the liquid addition process at the end of the liquid filling stage of the processing apparatus and method for enameled copper flat wires for photovoltaic power generation inverters proposed in this invention.

[0017] In the diagram: 1. Immersion tank; 2. Guide wheel; 3. Copper flat wire; 4. Pressure roller; 5. Deburring frame; 6. Brush frame; 71. Transmission worm gear; 72. Transmission worm wheel; 73. Transmission rod; 74. Stirring frame; 81. First bevel gear; 82. Second bevel gear; 83. Reciprocating threaded groove rod; 831. Limiting post; 84. Moving ring; 85. Fur ring; 86. Rubber rod; 87. Support plate; 88. Collection tank; 91. Float plate; 911. First magnet; 92. Liquid inlet pipe; 931. Second magnet; 93. Guide rail; 94. Fixed pipe; 941. Third magnet; 95. Baffle. Detailed Implementation

[0018] The technical solutions of the present invention will be clearly and completely described below with reference to the accompanying drawings of the embodiments of the present invention. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments.

[0019] Reference Figure 1-8 A processing apparatus for enameled copper flat wire for photovoltaic power generation inverters, comprising: The immersion tank 1 has guide wheels 2 fixedly connected to the bottom surface of the inner cavity of the immersion tank 1 and the left and right side walls. Each guide wheel 2 has a copper flat wire 3 slidably connected to the outer side wall. The middle of the bottom surface of the inner cavity of the immersion tank 1 is rotatably connected to a pressure roller 4 through multiple support plates. The upper part of the right end face of the immersion tank 1 is fixedly connected to a deburring frame 5. The upper part of the left end face of the immersion tank 1 is fixedly connected to a brush frame 6. A stirring assembly is provided on the front and rear sides of the lower part of the inner cavity of the immersion tank 1; A collection component is provided on the lower left end face of the immersion tank 1; Liquid addition assembly: Liquid addition assembly is provided on the front and rear ends of the immersion tank 1.

[0020] Reference Figure 1-2 The upper and lower pressure rollers 4 are in contact with the copper flat wire 3. The surface of the pressure roller 4 is provided with anti-slip texture. The copper flat wire 3 is slidably connected to the deburring frame 5 and the copper flat wire 3 is slidably connected to the brush frame 6. The stirring assembly includes a transmission worm 71, a transmission worm wheel 72, a transmission rod 73 and a stirring frame 74. The front and rear ends of the pressure roller 4 located on the upper side are fixedly connected to the transmission worm 71. The upper part of the transmission worm 71 is meshed with the transmission worm wheel 72. The inner cavity of the transmission worm wheel 72 is fixedly connected to the transmission rod 73. The left and right sides of the outer wall of the transmission rod 73 are fixedly connected to the stirring frame 74. After the copper flat wire 3 is conveyed through the four guide wheels and two pressure rollers 4, the brush frame 6 provides a certain coating effect when the copper flat wire 3 leaves the immersion tank 1, preventing the copper flat wire 3 from splashing out a large amount of paint and wasting resources. The moving copper flat wire 3 will drive the pressure rollers 4 to rotate the transmission worm gear 71. Since the transmission worm gear 71 is meshed with the transmission worm wheel 72, the transmission worm wheel 72 will drive the transmission rod 73 to rotate the stirring frame 74, realizing the function of stirring the paint in the immersion tank 1. This avoids the precipitation of internal trace elements due to long-term static standing, which would affect the content of paint adsorbed on the copper flat wire 3, thus ensuring the quality of copper flat wire enameling processing.

[0021] Reference Figure 3-4The transmission rod 73 is rotatably connected to the immersion tank 1, and the transmission worm gear 71 is rotatably connected to the immersion tank 1. The collection assembly includes a first bevel gear 81, a second bevel gear 82, a reciprocating threaded rod 83, a moving ring 84, a fur ring 85, a rubber rod 86, a support plate 87, and a collection groove 88. The first bevel gear 81 is fixedly connected to the left end face of the transmission rod 73 located on the front side, and the second bevel gear 82 is meshed with the rear part of the first bevel gear 81. The lower part of the left end face of the immersion tank 1 is fixedly connected to a reciprocating threaded rod via a bracket. The grooved rod 83 has a sliding ring 84 connected to the middle of the outer side wall of the reciprocating threaded grooved rod 83. A rubber rod 86 is fixedly connected to the upper part of the right end face of the immersion tank 1 through a support plate 87. A collection trough 88 is fixedly connected to the inner side of the support plates 87 on both the front and rear sides. A second bevel gear 82 is fixedly connected to the front end face of the reciprocating threaded grooved rod 83. The first bevel gear 81 and the second bevel gear 82 are meshed. A limit post 831 is slidably connected inside the threaded groove wall of the reciprocating threaded grooved rod 83. The sliding ring 84 is fixedly connected to the fur ring 85. When the copper flat wire 3 is conveyed and passes through the deburring frame 5, the deburring frame 5 can scrape off the burrs on the outer surface of the copper flat wire 3, preventing the presence of burrs on the copper flat wire 3 from affecting the quality of the enameling of the copper flat wire 3. When the transmission rod 73 rotates, the first bevel gear 81 will drive the second bevel gear 82 to rotate the reciprocating threaded groove rod 83. Under the limitation of the limit post 831 and the fur ring 85, the moving ring 84 will move back and forth on the reciprocating threaded groove rod 83. At this time, the fur ring 85 will also be on the rubber The reciprocating movement of the rubber rod 86 causes continuous friction between the fur and the rubber, generating a large amount of negative charge on the rubber rod 86. This charge attracts the debris scraped off the outer surface of the copper flat wire 3 by the deburring frame 5, causing the debris to adhere to the surface of the rubber rod 86. As the fur ring 85 continues to reciprocate on the rubber rod 86, it scrapes the debris to both ends of the rubber rod 86, eventually causing it to fall into the collection tank 88. This facilitates unified collection and processing by workers and improves the practicality of the entire device.

[0022] Reference Figure 5-8The liquid addition assembly includes a float 91, an inlet pipe 92, a guide rail 93, a fixed pipe 94, and a baffle 95. The float 91 is slidably connected to the middle of the immersion tank 1. The inlet pipe 92 and guide rail 93 are fixedly connected to the front end of the immersion tank 1. The fixed pipe 94 is fixedly connected to the front end of the inlet pipe 92. First magnets 911 are fixedly connected to both ends of the float 91. A second magnet 931 is slidably connected to the inner cavity of the guide rail 93. A third magnet 941 is fixedly connected to the inner cavity of the fixed pipe 94. A baffle 95 is fixedly connected to the front of the inner cavity of the guide rail 93. Plate 95, first magnet 911 is slidably connected to immersion tank 1, second magnet 931 is slidably connected to baffle 95, second magnet 931 is slidably connected to inlet pipe 92, first magnet 911 and second magnet 931 generate attraction force, second magnet 931 and third magnet 941 generate attraction force, the attraction force between first magnet 911 and second magnet 931 is greater than the attraction force between second magnet 931 and third magnet 941, inlet pipe 92 is connected to immersion tank 1, guide rail 93 is connected to inlet pipe 92; As the copper flat wire 3 continues to pass through the immersion tank 1, the liquid level of the paint in the immersion tank 1 gradually decreases. At this time, the height of the float 91 also gradually decreases and moves towards the lower part of the immersion tank 1. When the float 91 descends to be flush with the bottom surface of the inlet pipe 92, because the attraction between the first magnet 911 and the second magnet 931 is greater than the attraction between the second magnet 931 and the third magnet 941, the second magnet 931 will move towards the first magnet 911 (e.g., ...). Figure 6 As shown), at this time, the channel of the inlet pipe 92 is opened, and the external paint can flow into the immersion tank 1 through the inlet pipe 92, realizing the function of automatic liquid addition at the dripping level, ensuring the quality of the copper flat wire enameling. After the paint is added for a certain period of time (such as...), Figure 7 As shown), the float 91 rises, and the first magnet 911 drives the second magnet 931 to rise synchronously. At this time, the second magnet 931 slides inside the guide rail 93, and the channel of the liquid inlet pipe 92 continues to open, continuously realizing the function of adding liquid to the immersion tank 1. When the height of the float 91 is higher than the top surface of the inner cavity of the guide rail 93 (as shown), Figure 8 As shown), the first magnet 911 will no longer be able to attract the second magnet 931. Under the influence of gravity, the second magnet 931 will gradually fall to the bottom of the guide rail 93. At this time, the attraction between the third magnet 941 and the second magnet 931 can make the second magnet 931 move towards the third magnet 941, blocking the channel of the liquid inlet pipe 92, preventing excessive external paint liquid from entering and causing paint liquid to overflow, thereby increasing the processing cost and improving the practicality of the entire device.

[0023] A method for processing enameled copper flat wire for photovoltaic power generation inverters, comprising the following steps: S1. After the copper flat wire 3 is passed through the four guide wheels and two pressure rollers 4, the brush frame 6 can play a certain coating role when the copper flat wire 3 leaves the immersion tank 1, thus avoiding the copper flat wire 3 carrying a large amount of paint splashing out and causing waste of resources. S2. The moving copper flat wire 3 will drive the pressure roller 4 to rotate the transmission worm 71. Since the transmission worm 71 is meshed with the transmission worm wheel 72, the transmission worm wheel 72 will drive the transmission rod 73 to rotate the stirring frame 74, thus realizing the function of stirring the paint liquid in the immersion tank 1. This avoids the precipitation of internal trace elements due to long-term static standing, which affects the content of paint liquid adsorbed on the copper flat wire 3, and ensures the quality of copper flat wire enameling processing. S3. When the copper flat wire 3 is conveyed and passes through the deburring frame 5, the deburring frame 5 can scrape off the burrs on the outer surface of the copper flat wire 3, avoiding the presence of burrs on the copper flat wire 3 affecting the quality of the enameling of the copper flat wire 3. When the transmission rod 73 rotates, the first bevel gear 81 will drive the second bevel gear 82 to rotate the reciprocating threaded groove rod 83. Under the limitation of the limit post 831 and the fur ring 85, the moving ring 84 will move back and forth on the reciprocating threaded groove rod 83. At this time, the fur ring 85 will also move back and forth on the rubber. The rubber rod 86 moves back and forth, and the fur and rubber rub against each other continuously, which can generate a large number of negative charges on the rubber rod 86. At this time, it can attract the debris scraped off the outer surface of the copper flat wire 3 by the deburring frame 5, so that the debris sticks to the surface of the rubber rod 86. At this time, as the fur ring 85 continues to move back and forth on the rubber rod 86, it can scrape the debris to both ends of the rubber rod 86 and finally fall into the collection tank 88, which facilitates the unified collection and treatment by workers and improves the practicality of the whole device. S4. As the copper flat wire 3 continues to pass through the immersion tank 1, the liquid level of the paint in the immersion tank 1 gradually decreases. At this time, the height of the float 91 also gradually decreases and moves towards the lower part of the immersion tank 1. When the float 91 descends to be flush with the bottom surface of the inlet pipe 92, because the attraction between the first magnet 911 and the second magnet 931 is greater than the attraction between the second magnet 931 and the third magnet 941, the second magnet 931 will move towards the first magnet 911 (e.g., ...). Figure 6 At this time, the channel of the inlet pipe 92 is opened, and the external paint can flow into the immersion tank 1 through the inlet pipe 92, realizing the function of automatic liquid addition at the dripping level, ensuring the quality of the copper flat wire enameling. After the paint is added for a certain period of time (such as...), Figure 7 As shown), the float 91 rises, and the first magnet 911 drives the second magnet 931 to rise synchronously. At this time, the second magnet 931 slides inside the guide rail 93, and the channel of the liquid inlet pipe 92 continues to open, continuously realizing the function of adding liquid to the immersion tank 1. When the height of the float 91 is higher than the top surface of the inner cavity of the guide rail 93 (as shown), Figure 8As shown), the first magnet 911 will no longer be able to attract the second magnet 931. Under the influence of gravity, the second magnet 931 will gradually fall to the bottom of the guide rail 93. At this time, the attraction between the third magnet 941 and the second magnet 931 can make the second magnet 931 move towards the third magnet 941, blocking the channel of the liquid inlet pipe 92, preventing excessive external paint liquid from entering and causing paint liquid to overflow, thereby increasing the processing cost and improving the practicality of the entire device.

[0024] The above description is only a preferred embodiment of the present invention, but the scope of protection of the present invention is not limited thereto. Any equivalent substitutions or modifications made by those skilled in the art within the scope of the technology disclosed in the present invention, based on the technical solution and inventive concept of the present invention, should be covered within the scope of protection of the present invention.

Claims

1. A processing apparatus for enameled copper flat wire for photovoltaic power generation inverters, characterized in that, include: The immersion tank (1) has guide wheels (2) fixedly connected to the bottom surface of the inner cavity and the left and right side walls. Each guide wheel (2) has a copper flat wire (3) slidably connected to the outer side wall. The middle part of the bottom surface of the immersion tank (1) is rotatably connected to a pressure roller (4) through multiple support plates. The upper part of the right end face of the immersion tank (1) is fixedly connected to a deburring frame (5). The upper part of the left end face of the immersion tank (1) is fixedly connected to a brush frame (6). The stirring assembly is provided on the front and rear sides of the lower part of the immersion tank (1); the stirring assembly includes a transmission worm (71), a transmission worm wheel (72), a transmission rod (73) and a stirring frame (74). The front and rear ends of the pressure roller (4) located on the upper side are fixedly connected to the transmission worm (71), the upper part of the transmission worm (71) is meshed with the transmission worm wheel (72), the inner cavity of the transmission worm wheel (72) is fixedly connected to the transmission rod (73), and the left and right sides of the outer wall of the transmission rod (73) are fixedly connected to the stirring frame (74). A collection assembly is provided on the lower left end face of the immersion tank (1); the collection assembly includes a first bevel gear (81), a second bevel gear (82), a reciprocating threaded groove rod (83), a moving ring (84), a fur ring (85), a rubber rod (86), a support plate (87), and a collection trough (88). The transmission rod (73) located on the front side is fixedly connected to the left end face of the first bevel gear (81), and the second bevel gear (82) is meshed with the rear part of the first bevel gear (81). The reciprocating threaded groove rod (83) is fixedly connected to the lower left end face of the immersion tank (1) through a bracket. The moving ring (84) is slidably connected to the middle of the outer side wall of the reciprocating threaded groove rod (83). The rubber rod (86) is fixedly connected to the upper right end face of the immersion tank (1) through a support plate (87). The collection trough (88) is fixedly connected to the inner side of the support plate (87) on both the front and rear sides. The liquid adding assembly is provided on the front and rear ends of the immersion tank (1); the liquid adding assembly includes a float (91), an inlet pipe (92), a guide rail (93), a fixed pipe (94) and a baffle (95). The float (91) is slidably connected to the middle of the inner cavity of the immersion tank (1). The inlet pipe (92) and the guide rail (93) are fixedly connected to the front end of the immersion tank (1). The fixed pipe (94) is fixedly connected to the front end of the inlet pipe (92). The first magnet (911) is fixedly connected to the front and rear ends of the float (91). The second magnet (931) is slidably connected to the inner cavity of the guide rail (93). The third magnet (941) is fixedly connected to the inner cavity of the fixed pipe (94). The baffle (95) is fixedly connected to the front part of the inner cavity of the guide rail (93).

2. The processing apparatus and method for enameled copper flat wire for photovoltaic power generation inverters according to claim 1, characterized in that, The pressure rollers (4) on both the upper and lower sides are in contact with the copper flat wire (3), and the surface of the pressure rollers (4) is provided with anti-slip texture.

3. The processing apparatus for enameled copper flat wire for photovoltaic power generation inverters according to claim 1, characterized in that, The copper flat wire (3) is slidably connected to the deburring frame (5), and the copper flat wire (3) is slidably connected to the brush frame (6).

4. The processing device for enameled copper flat wire for photovoltaic power generation inverters according to claim 1, characterized in that, The transmission rod (73) is rotatably connected to the immersion tank (1), and the transmission worm (71) is rotatably connected to the immersion tank (1).

5. The processing apparatus for enameled copper flat wire for photovoltaic power generation inverters according to claim 1, characterized in that, The reciprocating threaded groove rod (83) is fixedly connected to the front end face of the second bevel gear (82), the first bevel gear (81) and the second bevel gear (82) are meshed and connected, the reciprocating threaded groove rod (83) is slidably connected to the threaded groove wall of the threaded groove rod (83), and the moving ring (84) is fixedly connected to the fur ring (85).

6. The processing apparatus for enameled copper flat wire for photovoltaic power generation inverters according to claim 1, characterized in that, The first magnet (911) is slidably connected to the immersion tank (1), the second magnet (931) is slidably connected to the baffle (95), the second magnet (931) is slidably connected to the inlet pipe (92), the first magnet (911) and the second magnet (931) generate an attractive force, the second magnet (931) and the third magnet (941) generate an attractive force, the attractive force generated between the first magnet (911) and the second magnet (931) is greater than the attractive force generated between the second magnet (931) and the third magnet (941), the inlet pipe (92) is connected to the immersion tank (1), and the guide rail (93) is connected to the inlet pipe (92).

7. A method for processing enameled copper flat wire for photovoltaic inverters, the method employing the processing apparatus for enameled copper flat wire for photovoltaic inverters as described in any one of claims 1 to 6, characterized in that... The steps are as follows: S1. The copper flat wires are sequentially drawn out from the outer wall of the four guide wheels (2) and pass through the upper and lower pressure rollers (4) in the middle of the immersion tank (1). S2. The moving copper flat wire can drive the two pressure rollers (4) to rotate. At this time, the stirring assembly will be in operation, realizing the stirring of the liquid in the immersion tank (1). S3. When the stirring component is running, it can drive the collection component to move, and with the deburring frame (5), the burrs on the surface of the copper flat wire can be scraped off. S4. After the liquid in the immersion tank (1) is gradually consumed to a certain extent, the liquid addition component is operated to realize the function of automatically adding liquid to the immersion tank (1).