Anti-oxidation device for copper wire transmission process
By using a stainless steel mounting box and suction components to handle harmful gases, the problem of antioxidant leakage caused by the soft plastic bottle material was solved, ensuring effective oxidation resistance and safety during copper wire transmission.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- HAINAN MEIYA COPPER TECHNOLOGY CO LTD
- Filing Date
- 2025-06-12
- Publication Date
- 2026-05-26
AI Technical Summary
In the current copper wire transmission process, the plastic bottle material is relatively soft and has poor mechanical properties, making it easily damaged and causing the antioxidant to leak, which affects the copper wire's antioxidant function.
The fixed box, made of stainless steel, is equipped with a sealing gel and liquid inlet for delivering and covering the antioxidant, and a gas intake assembly to handle harmful gases, ensuring protection against antioxidant leakage and gas contamination.
It achieves effective coverage and sealing of antioxidants, prevents leakage, ensures the long-term antioxidant effect of copper wires, and reduces the health hazards of harmful gases.
Smart Images

Figure CN224287864U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of copper wire production and processing technology, specifically to an anti-oxidation device for copper wire transmission. Background Technology
[0002] Copper wires require oxidation resistance during production and transmission because they react with oxygen and moisture to form an oxide layer, leading to increased resistance, power loss, signal attenuation, weakened mechanical strength, and accelerated aging. A loose oxide layer is easily peeled off, potentially causing poor contact, localized overheating, or even short circuits, threatening equipment safety and power grid stability. Oxidation resistance ensures conductor performance, extends service life, and reduces the risk of failure.
[0003] After the copper wire is manufactured, its end is led out from the production equipment, pulled by a traction mechanism, and then wound up using a coil. During this process, a component for anti-oxidation is located at the initial contact point between the traction mechanism and the copper wire. This anti-oxidation component has a simple structure; typically, the bottom of a plastic bottle is broken open and placed laterally on the side of the traction mechanism. The plastic bottle contains an antioxidant, allowing the end of the copper wire to pass sequentially through the bottle opening, the inside of the plastic, and the side before entering the traction mechanism. However, the plastic bottle is relatively soft and has poor mechanical properties, making it easily damaged and causing antioxidant leakage, thus affecting the anti-oxidation process of the copper wire. Utility Model Content
[0004] The purpose of this invention is to provide an anti-oxidation device for copper wire transmission, in order to solve the technical problem that existing plastic bottles are made of soft material with poor mechanical properties and are easily damaged, leading to leakage of antioxidants and affecting the anti-oxidation work of copper wires.
[0005] The technical solution of this utility model is implemented as follows:
[0006] An anti-oxidation device for copper wire transmission includes a fixed box. The fixed box has a first liquid inlet pipe on its top surface and a first liquid outlet pipe on its bottom. The fixed box has a first opening and a second opening on both sides. An embedding groove is provided in the first opening and the second opening. A sealing colloid is adapted to be provided in the embedding groove. The sealing colloid has a through hole. Copper wires can pass through the through hole in sequence and make close contact. An antioxidant is introduced into the fixed box through the first liquid inlet pipe. The antioxidant covers the copper wire located in the fixed box.
[0007] A further technical solution is that the first drain pipe is extended and connected to a first water outlet pipe, and the first water outlet pipe is equipped with a first water stop valve.
[0008] A further technical solution is that the side of the fixed box is provided with a transparent window, and scale lines are engraved on the side of the transparent window.
[0009] A further technical solution is that the fixed box is provided with an air suction pipe, the top of the air suction pipe extends out of the fixed box and is connected to an air suction assembly located on the top surface of the fixed box, the output end of the air suction assembly is connected to an air delivery pipe, a processing box is connected to the side of the fixed box, and the bottom end of the air delivery pipe extends into the processing box.
[0010] A further technical solution is that the top surface of the processing tank is provided with a second liquid inlet pipe, the bottom side is provided with a second liquid outlet pipe, the second liquid outlet pipe extends and is connected to a second water outlet pipe, and the second water outlet pipe is provided with a second water stop valve.
[0011] A further technical solution is that the air intake assembly includes an air intake box, a fixed seat is provided on the side of the air intake box, a rotating shaft is rotatably connected inside the fixed seat, an air intake fan is provided at the other end of the rotating shaft, the air intake fan rotates inside the air intake box, a vent is provided in the upper part of the fixed seat, the vent is connected to the air supply pipe, a drive mechanism is connected to one end of the rotating shaft, the drive mechanism is located in front of the fixed box and contacts the copper wire.
[0012] A further technical solution is that the driving mechanism includes a transmission belt, one end of which is sleeved on the outer circumference of the rotating shaft, and the other end of which is sleeved with a gear. The gear is connected to a rotating roller, and the other end of the rotating roller is provided with a drive wheel. The drive wheel is in contact with the copper wire. A connector is provided in front of the fixed box, and the rotating roller passes through the connector and is rotatably connected to the connector.
[0013] A further technical solution is that the connecting component is a bearing seat, which is sleeved on the outer circumferential surface of the rotating roller and connected to the front of the fixed box through a connecting block.
[0014] The beneficial effects of this utility model are as follows:
[0015] 1. Place the fixing box at the initial wiring end of the traction mechanism, and then pass the copper wire through the sealing colloid of the first and second openings. Pour the antioxidant into the solid box through the first liquid inlet pipe, and continuously flow in liquid to submerge the copper wire. The sealing colloid prevents excessive liquid leakage during copper wire transmission. Once the antioxidant has reached the preset standard, start the traction mechanism to pass the copper wire through the antioxidant in the solid box. The fixing box has high mechanical properties and good hardness, ensuring long-term use. This solves the technical problem of existing plastic bottles being too soft, having poor mechanical properties, and being easily damaged, leading to antioxidant leakage and affecting the antioxidant effect of the copper wire.
[0016] 2. A transparent window allows for easy observation of the antioxidants inside the solid container. If the amount of antioxidants decreases, add more as needed.
[0017] 3. The use of suction pipes and suction components can fuse the harmful gases produced by the reaction between copper wire and antioxidant, avoiding the health risks to workers caused by the long-term emission of small amounts of polluting gases. Attached Figure Description
[0018] Figure 1 This is a schematic diagram of the overall design of this utility model;
[0019] Figure 2 This is a schematic cross-sectional view of the present invention;
[0020] Figure 3 This is a side sectional view of the present invention.
[0021] In the diagram, 1. Fixed box; 2. First liquid inlet pipe; 3. First drain pipe; 4. First opening; 5. Second opening; 6. Sealing colloid; 7. First water outlet pipe; 8. First stop valve; 9. Transparent window; 10. Suction pipe; 11. Gas delivery pipe; 12. Processing box; 13. Second liquid inlet pipe; 14. Second drain pipe; 15. Second water outlet pipe; 16. Second stop valve; 17. Suction box; 18. Fixed base; 19. Rotating shaft; 20. Suction fan; 21. Vent hole; 22. Transmission belt; 23. Gear; 24. Rotating roller; 25. Drive wheel; 26. Bearing seat; 27. Connecting block. Detailed Implementation
[0022] To better understand the technical content of this utility model, specific embodiments are provided below, and the utility model will be further described in conjunction with the accompanying drawings.
[0023] Example 1
[0024] See Figures 1 to 3 This utility model provides an anti-oxidation device for copper wire transmission, including a fixed box 1. The fixed box 1 has a first liquid inlet pipe 2 on its top surface and a first drain pipe 3 on its bottom. The fixed box 1 has a first opening 4 and a second opening 5 on both sides. The first opening 4 and the second opening 5 have an embedding groove. A sealing colloid 6 is adapted to be placed in the embedding groove. The sealing colloid 6 has a through hole. The copper wire can pass through the through hole in sequence and make close contact. An antioxidant is introduced into the fixed box 1 through the first liquid inlet pipe 2. The antioxidant covers the copper wire located in the fixed box 1.
[0025] In this embodiment, the fixing box 1 is made of stainless steel. The fixing box 1 can be fixed to the initial end of the traction mechanism by welding.
[0026] Specifically, the fixing box 1 is placed at the initial wiring end of the traction mechanism, and then the copper wire is passed through the sealing colloid 6 of the first opening 4 and the second opening 5. Antioxidant is poured into the solid box through the first liquid inlet pipe 2, and liquid is continuously supplied to submerge the copper wire. Under the sealed condition of the sealing colloid 6, large-scale liquid leakage is prevented during copper wire transmission. After the antioxidant has reached the preset standard, the traction mechanism is activated, and the copper wire is passed through the antioxidant in the solid box. The fixing box 1 has high mechanical properties and good hardness, ensuring long-term use. This solves the technical problem that existing plastic bottles are relatively soft, have poor mechanical properties, and are easily damaged, leading to antioxidant leakage and affecting the antioxidant operation of the copper wire.
[0027] Preferably, the first drain pipe 3 is extended and connected to a first outlet pipe 7, and the first outlet pipe 7 is provided with a first stop valve 8.
[0028] In this embodiment, the first stop valve 8 can be a ball valve. By controlling the opening and closing state of the first outlet pipe 7 through the first stop valve 8, all the antioxidant in the fixed box 1 can be discharged and replaced with a new antioxidant.
[0029] Preferably, the side of the fixed box 1 is provided with a transparent window 9, and scale lines are engraved on the side of the transparent window 9.
[0030] In this embodiment, a transparent window 9 allows for real-time observation of the antioxidant level within the solid container. If the antioxidant level decreases, an appropriate amount is added. Furthermore, the level of antioxidant can be determined using graduated markings.
[0031] Example 2
[0032] Please refer to Figures 1 to 3 As a further improvement of Embodiment 1, the fixed box 1 is provided with an air suction pipe 10. The top of the air suction pipe 10 extends out of the fixed box 1 and is connected to an air suction assembly located on the top surface of the fixed box 1. The output end of the air suction assembly is connected to an air delivery pipe 11. The side of the fixed box 1 is connected to a processing box 12, and the bottom end of the air delivery pipe 11 extends into the processing box 12.
[0033] In this embodiment, the suction pipe 10 and suction assembly are used to fuse the harmful gases produced by the reaction between the copper wire and the antioxidant, avoiding the health hazards to workers caused by the long-term emission of small amounts of polluting gases. The liquid in the treatment box 12 can be a sodium carbonate solution, used to neutralize acidic gases such as HCl and SO2 produced by the copper wire and antioxidant.
[0034] Specifically, by activating the suction assembly, the suction assembly absorbs the waste gas generated by the antioxidant and copper wire in the fixed box 1 through the suction pipe 10, and discharges the waste gas into the treatment box 12 through the output pipe. The waste gas is then mixed with liquid in the treatment box 12 to reduce the amount of waste gas discharged.
[0035] Preferably, the top surface of the treatment tank 12 is provided with a second liquid inlet pipe 13, the bottom side is provided with a second liquid outlet pipe 14, the second liquid outlet pipe 14 extends and is connected to a second water outlet pipe 15, and the second water outlet pipe 15 is provided with a second water stop valve 16.
[0036] In this embodiment, the processing box 12 is made of the same material as the fixed box 1; the second liquid inlet pipe 13, the second liquid outlet pipe 14, the second water outlet pipe 15, the second water stop valve 16 and the first water stop valve 8 are all the same as the first liquid inlet pipe 2, the first liquid outlet pipe 3, the first water outlet pipe 7 and the first water stop valve 8, and will not be described again here.
[0037] Preferably, the air intake assembly includes an air intake box 17, a fixed seat 18 on the side of the air intake box 17, a rotating shaft 19 rotatably connected inside the fixed seat 17, an air intake fan 20 at the other end of the rotating shaft 19, the air intake fan 20 rotating inside the air intake box 17, a vent 21 at the upper part of the fixed seat 18, the vent 21 communicating with the air supply pipe 11, a drive mechanism connected to one end of the rotating shaft 19, the drive mechanism being located in front of the fixed box 1 and in contact with the copper wire.
[0038] In this embodiment, the copper wire generates forward kinetic energy when it is pulled. After the drive mechanism comes into contact with the copper wire, it starts to rotate and rotates within the fixed base 18 via the drive shaft 19, driving the suction fan 20 to rotate. Then, the suction box 17 receives the exhaust gas through the suction pipe 10, and the exhaust gas enters the air delivery pipe 11 through the vent 21. The air delivery pipe 11 transports the exhaust gas to the treatment box 12 for neutralization treatment.
[0039] Preferably, the drive mechanism includes a transmission belt 22, one end of which is sleeved on the outer circumference of the rotating shaft 19, and the other end is sleeved with a gear 23. The gear 23 is connected to a rotating roller 24, and the other end of the rotating roller 24 is provided with a drive wheel 25. The drive wheel 25 is in contact with the copper wire. A connector is provided in front of the fixed box 1, and the rotating roller 24 passes through the connector and is rotatably connected to the connector.
[0040] In this embodiment, when the copper wire is pulled, it generates forward kinetic energy, and the drive wheel 25 in contact with the copper wire begins to rotate, driving the rotating roller 24 to rotate within the connector. The gear 23 at the other end of the rotating roller 24 drives the rotating shaft 19 to rotate via the transmission belt 22, thereby driving the suction fan 20 to rotate.
[0041] Preferably, the connecting member is a bearing seat 26, which is sleeved on the outer circumferential surface of the rotating roller 24 and connected to the front of the fixed box 1 through the connecting block 27.
[0042] In this embodiment, the bearing housing 26 can support the rotating roller 24 to rotate in the correct direction.
[0043] The above description is only a preferred embodiment of the present utility model and is not intended to limit the present utility model. Any modifications, equivalent substitutions, improvements, etc., made within the spirit and principles of the present utility model should be included within the protection scope of the present utility model.
Claims
1. An anti-oxidation device for copper wire transmission, characterized in that, The device includes a fixed box, with a first liquid inlet pipe on the top surface and a first drain pipe on the bottom. The fixed box has a first opening and a second opening on both sides, with an embedding groove inside the first and second openings. A sealing colloid is fitted into the embedding groove, and the sealing colloid has through holes through which copper wires can pass and make close contact. An antioxidant is introduced into the fixed box through the first liquid inlet pipe, and the antioxidant covers the copper wires located in the fixed box portion.
2. The anti-oxidation device for copper wire transmission process according to claim 1, characterized in that, The first drain pipe extends and is connected to a first outlet pipe, and the first outlet pipe is equipped with a first stop valve.
3. The anti-oxidation device for copper wire transmission process according to claim 1, characterized in that, The side of the fixed box is provided with a transparent window, and scale lines are engraved on the side of the transparent window.
4. The anti-oxidation device for copper wire transmission process according to claim 1, characterized in that, The fixed box is equipped with an air suction pipe. The top of the air suction pipe extends out of the fixed box and is connected to an air suction assembly located on the top surface of the fixed box. The output end of the air suction assembly is connected to an air delivery pipe. A processing box is connected to the side of the fixed box, and the bottom end of the air delivery pipe extends into the processing box.
5. The anti-oxidation device for copper wire transmission process according to claim 4, characterized in that, The top surface of the treatment tank is provided with a second liquid inlet pipe, and the bottom side is provided with a second liquid outlet pipe. The second liquid outlet pipe extends and is connected to a second water outlet pipe, and the second water outlet pipe is provided with a second water stop valve.
6. The anti-oxidation device for copper wire transmission process according to claim 4, characterized in that, The air intake assembly includes an air intake box, a fixed seat on the side of the air intake box, a rotating shaft rotatably connected inside the fixed seat, an air intake fan at the other end of the rotating shaft, the air intake fan rotating inside the air intake box, a vent hole at the upper part of the fixed seat, the vent hole communicating with the air supply pipe, a drive mechanism connected to one end of the rotating shaft, the drive mechanism being located in front of the fixed box and in contact with the copper wire.
7. The anti-oxidation device for copper wire transmission process according to claim 6, characterized in that, The driving mechanism includes a transmission belt, one end of which is sleeved on the outer circumference of the rotating shaft, and the other end of which is sleeved with a gear. The gear is connected to a rotating roller, and the other end of the rotating roller is provided with a drive wheel. The drive wheel is in contact with the copper wire. A connector is provided in front of the fixed box, and the rotating roller passes through the connector and is rotatably connected to the connector.
8. The anti-oxidation device for copper wire transmission process according to claim 7, characterized in that, The connecting component is a bearing seat, which is sleeved on the outer circumferential surface of the rotating roller and connected to the front of the fixed box through a connecting block.