Antioxidant recycling and recycling device

Through the semi-enclosed circulation system, adjustable guide wetting components and rapid drying module, the pollution and uneven coating problems of protective liquid in the anti-oxidation treatment of conductors are solved, efficient recycling and uniform coating are achieved, and material utilization and operating efficiency are improved.

CN120438232APending Publication Date: 2025-08-08ZHENZHOU HENGTIAN COPPER CO LTD
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Patent Information

Application Number
CN202510614085.0
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-05-13
Publication Date
2025-08-08

AI Technical Summary

Technical Problem

In the prior art, during the antioxidant treatment of conductors, the open-air collection of protective liquid is easily contaminated, the sponge absorption efficiency is low, and the coating is uneven, resulting in high risk of material waste and environmental pollution.

Method used

The semi-enclosed circulation system is adopted, combined with an adjustable guide wetting assembly and a fast drying module, and efficient recycling and uniform coating of protective liquid is achieved through spraying cooling mechanisms and recycling mechanisms, and the guide wetting assembly and rapid drying assembly are used to improve coating efficiency and uniformity.

Benefits of technology

The efficient recovery rate of the protective liquid is achieved ≥80%, and the coating uniformity reaches ±0.05mm, reducing the risks of manual intervention and environmental pollution, and significantly improving the material utilization rate and operating efficiency.

✦ Generated by Eureka AI based on patent content.

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Abstract

The antioxidant recycling and recycling device comprises a supporting rack, the supporting rack is a frame of a rectangular structure, a traction roll shaft is arranged on one side of the supporting rack, the traction roll shaft is movably assembled on the supporting rack, a guide hood is arranged on the supporting rack, and the guide hood is movably assembled on the traction roll shaft. A guide shell is arranged on the guide hood, and a plurality of wire outlet holes are formed in the guide shell; the invention relates to the technical field of conductor anti-oxidation treatment, and the antioxidant recycling and recycling device solves the problems that in the prior art, protection liquid is prone to pollution due to open-air collection, sponge absorption efficiency is low, coating is uneven and the like through the synergistic effect of a semi-closed circulation system, an adjustable guide wetting assembly and a rapid drying module. The material utilization rate is increased, accurate coating is conducted on the copper guide wire through the multiple channels, the operation efficiency is improved, and meanwhile the manual intervention and environmental pollution risks are reduced.
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Description

Technical Field

[0001] The invention relates to the technical field of conductor antioxidant treatment, in particular to an antioxidant recycling and recovery device. Background Art

[0002] In the application of modern electromechanical equipment, conductors are the main component materials of cables. When the conductor is in operation, oxidation of the conductor will cause the conductor cross-section to become smaller. Oxidation will form oxides on the surface of the conductor, reducing the area for current to pass through and reducing the conductivity. In turn, the oxide film will hinder current conduction and also affect the conductivity.

[0003] In order to solve the oxidation problem of conductors and protect them, it is necessary to perform anti-oxidation operations on the conductors to improve their antioxidant capacity. At present, chemical passivation, anti-oxidation coatings and cathodic protection are mainly used in conductor production. Among them, anti-oxidation coatings mainly use aluminum oxide or boron carbide to form a protective layer at high temperature. This protective layer is more suitable for high temperature or extreme environments, but the protection against oxidation effects is relatively limited and the materials are relatively rare. At the same time, cathodic protection is mostly used for the protection of cables with larger diameters or submarine cables. It has a complex structure and is particularly expensive, and is not suitable for conventional cable applications. Therefore, chemical passivation is more commonly used for commonly used cable conductors.

[0004] The chemical passivation method is to form a passivation film on the surface of the conductor to prevent direct contact between oxygen and the conductor. It mainly uses benzotriazole (BTA) alcohol solution to coat it on the surface of the copper conductor to form a protective film or use citric acid (CA) and BTA composite coating to enhance the antioxidant performance. At this stage, the main method is to use a nozzle to spray the antioxidant onto the sponge, and use the conductor to complete the coating through the sponge, which can both cool down and form a protective film. However, in the production process, due to the dripping of chemical agents and the absorption of the sponge, in order to ensure the uniformity of the coating, the amount of protective liquid added is often large. If the sponge does not have time to absorb the liquid, excess liquid will drip, resulting in material waste. In order to improve material utilization, this part of the circulating liquid is often collected in a collection tank. However, this method often uses an open-air collection tank, which is easily contaminated by external dust and causes pollution of the protective liquid. Secondly, since a sponge pad is used to coat the conductor passing through, most of the sponge pads in this method do not have conductors passing through. However, due to the adsorption properties of the sponge, most of the protective liquid will be absorbed into the entire sponge, resulting in waste of the protective liquid. In view of this, an in-depth study was conducted on the above-mentioned problems, which led to the creation of this case. Summary of the Invention

[0005] In view of the shortcomings of the prior art, the present invention provides an antioxidant recycling and recovery device, which solves the problems of the prior art.

[0006] To achieve the above objectives, the present invention is implemented through the following technical solutions: an antioxidant recycling and recovery device, comprising a support frame, the support frame being a rectangular frame, a traction roller being provided on one side of the support frame, the traction roller being movably assembled on the support frame, a guide cover being provided on the guide cover, and a guide housing being provided on the guide housing, wherein a plurality of wire outlet holes are provided on the guide housing;

[0007] The end of the traction roller is provided with a traction assembly, the traction assembly is connected to the end of the traction roller, and the plurality of support rollers correspond to the plurality of wire outlet holes;

[0008] The support frame is provided with a spray cooling mechanism, which includes a pair of brackets, the pair of brackets being arranged on both sides of the support frame, the pair of brackets being connected to a nozzle, the ends of the nozzles being connected to a liquid supply assembly, the bottom of the nozzle being provided with a plurality of nozzles arranged in a linear array, the plurality of nozzles corresponding to the plurality of outlet holes;

[0009] A circulation recovery mechanism is provided at the bottom of the spray cooling mechanism, and the circulation recovery mechanism includes a guide support, both ends of the guide support are connected to a pair of brackets, the guide support and the pair of brackets are separately connected through a pair of height adjustment components, a plurality of guide wetting components are provided on the guide support, a plurality of the guide wetting components are connected to a plurality of nozzles, and a plurality of recovery components are provided at the bottom of the plurality of the guide wetting components;

[0010] The plurality of guide wetting components correspond to the positions of the plurality of outlet holes, and a quick drying component is provided on one side of the plurality of guide wetting components;

[0011] The guide wetting assembly includes a pair of support shells, which are symmetrically arranged and are a pair of empty shells with semi-annular structures. A pair of absorbent cottons are installed on the inner sides of the support shells. A base is provided on the lower support shell, and a pair of fixing rods are provided on both sides of the base. A pair of ring sleeves are provided on both sides of the upper support shell, and the pair of fixing rods are inserted in the pair of ring sleeves. The pair of fixing rods are connected to the guide support.

[0012] The guide hood is a rectangular structural shell, and the guide shell is connected to the guide hood through two pairs of screws.

[0013] A plurality of the outlet holes are opened on the side wall of the guide housing, and a plurality of coaxial tubes are arranged inside the plurality of the outlet holes. The inner cavity of the coaxial tube is a tapered structure.

[0014] The recovery component includes a recovery tank, which is connected to the bottom of the support shell. The bottom of the recovery tank is connected to a recovery pipe. The bottom of the recovery pipe is connected to a collecting pipe. One side of the collecting pipe is connected to a recovery pump, and the recovery pump is connected to the liquid supply component.

[0015] The traction roller shaft is composed of a single drive shaft and a plurality of traction discs sleeved on the drive shaft. The traction assembly includes a traction motor, one side of which is connected to a reducer, and the reducer is provided with a coupling connected to the drive shaft.

[0016] The liquid supply assembly includes a liquid supply tank, one side of which is connected to a circulation pump, the circulation pump is connected to a liquid supply pipe, the liquid supply pipe is connected to the end of the nozzle through a flange, and a control valve is provided on the flange.

[0017] The guide support is a plate with a rectangular structure. The guide support is connected to the lower support shell, and the tail end of the guide support is connected to the height adjustment component.

[0018] The height adjustment assembly includes a height adjustment track, the bracket is provided with a height adjustment track, the height adjustment slider is assembled on the height adjustment track, the height adjustment screw is provided on the height adjustment track, the height adjustment screw is threadedly engaged with the height adjustment slider, and the height adjustment slider is connected to the side of the guide support.

[0019] The quick drying component includes a through sleeve, which is installed together with a guide support. The through sleeve is provided with a cooling fan blade. The central axis of the cooling fan blade is provided with a pipe sleeve. The outside of the pipe sleeve is provided with a reinforced heat sink, and the reinforced heat sink corresponds to the cooling fan blade.

[0020] The quick drying component also includes a control motor, which is assembled on the guide support. The driving end of the control motor is connected to the control main shaft. The outer sleeve of the control main shaft is provided with a number of control gears. A number of drive gears are meshed with one side of the control gears. The number of drive gears are linked to the cooling fan blades through transmission gears.

[0021] Beneficial effects

[0022] The present invention provides an antioxidant recycling and recovery device. This device, through the synergistic effects of a semi-closed circulation system, an adjustable guide wetting assembly, and a rapid drying module, addresses existing issues such as the contamination of protective liquid collected in the open air, low sponge absorption efficiency, and uneven coating. This device improves material utilization, precisely coats the copper guide wire through multiple channels, and improves operational efficiency while reducing the risk of manual intervention and environmental pollution. It also offers the following additional benefits.

[0023] 1. The integrated recovery pump, negative pressure pipeline and guide wetting components can efficiently recover excess protective liquid to the liquid supply tank, reducing material loss and avoiding secondary pollution caused by open-air collection. The recovery rate is ≥80%, which is significantly better than the intermittent recovery mode of traditional collection tanks.

[0024] 2. The height adjustment component supports fine-tuning of the spacing between absorbent cottons. Combined with the perforated guide sleeve, the absorption rate of the protective liquid is improved, and the coating uniformity reaches ±0.05mm, which reduces the amount used compared to the traditional sponge pad method.

[0025] 3. The multi-stage cooling fan blades driven by the gear set are combined with the reinforced heat sink to reduce the curing time of the coating and energy consumption compared with traditional methods, thus avoiding the loss of protective liquid due to volatilization. BRIEF DESCRIPTION OF THE DRAWINGS

[0026] Figure 1 This is a first stereoscopic structural diagram of an antioxidant recycling and recovery device according to the present invention.

[0027] Figure 2 This is a second three-dimensional structural schematic diagram of an antioxidant recycling and recovery device according to the present invention.

[0028] Figure 3 This is a side sectional structural schematic diagram of an antioxidant recycling and recovery device according to the present invention.

[0029] Figure 4 This is a schematic top view of the structure of an antioxidant recycling and recovery device according to the present invention.

[0030] Figure 5 This is a schematic diagram of the partial blasting structure of an antioxidant recycling and recovery device described in the present invention.

[0031] Figure 6 This is a schematic diagram of the traction roller structure of the antioxidant recycling and recovery device described in the present invention.

[0032] Figure 7 This is a partial cross-sectional structural schematic diagram of an antioxidant recycling and recovery device according to the present invention.

[0033] Figure 8 This is a schematic diagram of the blasting structure of an antioxidant recycling and recovery device described in the present invention.

[0034] Figure 9 This is an antioxidant recycling and recovery device described in the present invention Figure 3 Schematic diagram of the local enlarged structure.

[0035] Figure: 1. Support frame; 2. Traction roller; 3. Guide cover; 4. Traction assembly; 5. Spray cooling mechanism; 6. Circulation recovery mechanism; 7. Quick drying assembly; 31. Guide housing; 32. Wire outlet; 33. Coaxial tube; 41. Traction motor; 42. Reducer; 43. Coupling; 51. Bracket; 52. Nozzle; 53. Liquid supply assembly; 54. Nozzle; 55. Guide support; 56. Guide wetting assembly; 61. Height adjustment assembly; 62. Recovery assembly; 71. Through sleeve; 72. Cooling fan blade; 73 , pipe sleeve; 74, reinforced heat sink; 75, control spindle; 76, control gear; 77, drive gear; 78, transmission gear; 531, liquid supply tank; 532, circulation pump; 533, liquid supply pipe; 534, control valve; 561, support sleeve; 562, absorbent cotton; 563, base; 564, fixing rod; 565, ring sleeve; 611, height adjustment track; 612, height adjustment slider; 613, height adjustment screw; 621, recovery tank; 622, recovery pipe; 623, collecting pipe; 624, recovery pump. DETAILED DESCRIPTION

[0036] The following will clearly and completely describe the technical solutions in the embodiments of the present invention in conjunction with the accompanying drawings. Obviously, the described embodiments are only part of the embodiments of the present invention, not all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without making creative efforts are within the scope of protection of the present invention.

[0037] See also Figure 1-9 The present invention provides an implementation scheme: During the production process of conductor copper wire, due to the dripping of chemical agents and the absorption by the sponge, in order to ensure the uniformity of the coating, a large amount of protective liquid is often dripped. The sponge does not have enough time to absorb it, and excess liquid drips, resulting in material waste. In order to improve material utilization, this part of the circulating liquid is often collected in a collection tank. However, this method is not only because the collection tank is often open-air and easily contaminated by external dust, causing contamination of the protective liquid, but also because the sponge pad is used to coat the conductor passing through. In this method, most of the sponge pad has no conductor passing through it. However, due to the adsorption property of the sponge, most of the protective liquid will be absorbed by the entire sponge, resulting in waste of protective liquid.

[0038] According to the instruction manual Figure 1-9It can be seen that in response to the above problems, the present application discloses an antioxidant recycling and recovery device, including a support frame 1, the support frame 1 is a rectangular frame, a traction roller 2 is provided on one side of the support frame 1, the traction roller 2 is movably assembled on the support frame 1, and a stable rotation is achieved through a bearing, a guide cover 3 is provided on the support frame 1, a guide shell 31 is provided on the guide cover 3, and a plurality of outlet holes 32 are provided on the guide shell 31, the guide shell 31 is installed and fixed through the guide cover 3, and the guide The cover 3 is a rectangular structural shell. The guide shell 31 is connected to the guide shell 3 by two pairs of screws to ensure the stability of the structure. The several outlet holes 32 on the guide shell 31 are used as guide devices to allow the conductor copper wire to pass through. The tapered coaxial tube 33 on the inside of the outlet hole 32 guides the copper wire to pass through the center through the tapered structure. Several outlet holes 32 are opened on the side wall of the guide shell. Several coaxial tubes 33 are arranged on the inside of the several outlet holes 32. The inner cavity of the coaxial tube 33 is a tapered structure, which effectively guides the copper wire to run in the center and prevents it from running deflected.

[0039] According to the instruction manual Figure 1-9 It can be seen that a traction assembly 4 is provided at the end of the traction roller 2, and the traction assembly 4 is connected to the end of the traction roller 2. The traction motor 41 drives the traction roller 2 to rotate at a constant speed through the reducer 42 and the coupling 43 to ensure stable copper wire transportation. Several support rollers correspond to several wire outlet holes 32 to form a complete transportation path.

[0040] According to the instruction manual Figure 1-9 It can be seen that a spray cooling mechanism 5 is provided on the specific support frame 1, and the spray cooling mechanism 5 includes a pair of brackets 51, and the pair of brackets 51 are arranged on both sides of the support frame 1. The pair of brackets 51 are connected to a nozzle 52, and the end of the nozzle 52 is connected to a liquid supply component 53. The liquid supply component 53 transports the protective liquid to the nozzle 52. The bottom of the nozzle 52 is arranged in a linear array with a plurality of nozzles 54. The plurality of nozzles 54 correspond to a plurality of wire outlet holes 32. Under the diversion effect of the nozzle 52, the protective liquid is sprayed through the plurality of nozzles 54 to coat the copper wires passing through the wire outlet holes 32 with the protective liquid.

[0041] According to the instruction manual Figure 1-9It can be seen that a circulation recovery mechanism 6 is provided at the bottom of the above-mentioned spray cooling mechanism 5, and the circulation recovery mechanism 6 includes a guide support 55. The two ends of the guide support 55 are connected to a pair of brackets 51. The guide support 55 and the pair of brackets 51 are separately connected through a pair of height adjustment components 61. The height adjustment screw 613 drives the slider to move to achieve vertical fine-tuning. A number of guide wetting components 56 are provided on the guide support 55. The number of guide wetting components 56 are connected to a number of nozzles 54. After the protective liquid is sprayed into the guide wetting component 56 through the nozzle 54, it wets the copper guide wire to form a protective film. Then, a number of recovery components 62 are provided at the bottom of the number of guide wetting components 56. The recovery component 62 collects the excess protective liquid and returns it to the liquid supply component 53 to form a closed circulation system.

[0042] According to the instruction manual Figure 1-9 It can be seen that the above-mentioned several guiding wetting components 56 correspond to the positions of several wire outlet holes 32, and a quick drying component 7 is provided on one side of the several guiding wetting components 56. The control motor drives the cooling fan blades 72 to rotate through the gear set to accelerate the curing of the coating. On the one hand, it improves the forming efficiency of the coating, and on the other hand, it can avoid the loss of protective liquid.

[0043] According to the instruction manual Figure 1-9 It can be seen that the above-mentioned guiding wetting component 56 includes a pair of supporting shells 561, the pair of supporting shells 561 are symmetrically arranged, the pair of supporting shells 561 are a pair of empty shells of semi-annular structure, the inner side of the pair of supporting shells 561 is equipped with a pair of absorbent cottons 562, the lower supporting shell 561 is provided with a base 563, and a pair of fixing rods 564 are provided on both sides of the base 563. A pair of ring sleeves 565 are provided on both sides of the upper supporting shell 561, and a pair of fixing rods 564 are inserted in the pair of ring sleeves 565. The pair of fixing rods 564 are connected to the guiding support 55 to realize opening and closing locking. The height of the pair of supporting shells 561 can be adjusted by the height adjustment component 61, so that the perforations of the pair of supporting shells 561 correspond to the positions of the through holes, and the absorbent cotton 562 can absorb the spray The protective liquid sprayed out by the head 54 is perforated on the corresponding side of the support sleeve 561, and the copper guide wire is passed through the perforation to make the coating effect more uniform. Then, a pair of fixing rods 564 and a pair of ring sleeves 565 cooperate so that a pair of upper and lower structure support sleeves 561 can correspond to each other up and down. Then, the guide support 55 is a rectangular structure plate. The guide support 55 is connected to the lower support sleeve 561, and the tail end of the guide support 55 is connected to the height adjustment component 61 to realize the height adjustment of the lower support sleeve 561, so that the distance between the pair of support sleeves 561 can be adjusted, so that a pair of absorbent cottons 562 can be squeezed, which on the one hand ensures that the protective liquid absorbed by the absorbent cotton 562 can be precipitated to the greatest extent, and on the other hand ensures the smooth recovery of the recovery component 62.

[0044] According to the instruction manual Figure 1-9 It can be seen that the above-mentioned recovery component 62 includes a recovery tank 621, which is connected to the bottom of the support shell 561, and the bottom of the recovery tank 621 is connected to a recovery pipe 622. The bottom of the recovery pipe 622 is connected to a collecting pipe 623, and one side of the collecting pipe 623 is connected to a recovery pump 624. The recovery pump 624 is connected to the liquid supply component 53. Under the action of the recovery pump 624, a negative pressure is generated on one side of the recovery pipe 622. Under the action of the negative pressure, the protective liquid flows downward into the recovery tank 621, passes through the recovery pipe 622, and flows back to the liquid supply tank 531 from the collecting pipe 623 to realize the recycling of the protective liquid.

[0045] According to the instruction manual Figure 1-9 It can be seen that the above-mentioned traction roller 2 is composed of a single drive shaft and a plurality of traction disks sleeved on the drive shaft. The spacing between the traction disks can be adjusted according to the diameter of the copper wire. The traction assembly 4 includes a traction motor 41. A reducer 42 is connected to one side of the traction motor 41. A coupling 43 is provided on the reducer 42 to be connected to the drive shaft. The traction motor 41 is used as the power, and the reducer 42 is rotated in conjunction with the traction motor 41, so that the coupling 43 is linked to the drive shaft, so that the drive shaft drives the traction roller 2 to rotate, ensuring smooth transmission of torque.

[0046] According to the instruction manual Figure 1-9 It can be seen that the above-mentioned liquid supply component 53 includes a liquid supply storage tank 531, one side of the liquid supply storage tank 531 is connected to a circulation pump 532, the circulation pump 532 is connected to a liquid supply pipe 533, the liquid supply pipe 533 is connected to the end of the nozzle 52 through a flange, and a control valve 534 is provided on the flange. The protective liquid in the liquid supply storage tank 531 is extracted by the circulation pump 532 and supplied to the nozzle 52 via the liquid supply pipe 533. The flow rate of the protective liquid can be accurately adjusted by the control valve 534 on the flange.

[0047] According to the instruction manual Figure 1-9 It can be seen that the above-mentioned height adjustment component 61 includes a height adjustment rail 611, a height adjustment rail 611 is provided on the bracket 51, a height adjustment slider 612 is assembled on the height adjustment rail 611, a height adjustment screw 613 is provided on the height adjustment rail 611, the height adjustment screw 613 is threadedly engaged with the height adjustment slider 612, and the height adjustment slider 612 is connected to the side of the guide support 55 to facilitate fine-tuning of the position of the guide wetting component 56.

[0048] According to the instruction manual Figure 1-9 It can be seen that the above-mentioned quick drying component 7 includes a through sleeve 71, which is installed together with the guide support 55. A cooling fan blade 72 is provided on the through sleeve 71, and a pipe sleeve 73 is provided on the central axis of the cooling fan blade 72. A reinforced heat sink 74 is provided outside the pipe sleeve 73. The reinforced heat sink 74 corresponds to the cooling fan blade 72 to enhance the heat dissipation effect.

[0049] Furthermore, the quick drying component 7 also includes a control motor, which is assembled on the guide support 55. The driving end of the control motor is connected to the control main shaft 75. The outer sleeve of the control main shaft 75 is provided with a plurality of control gears 76. A plurality of drive gears 77 are meshed on one side of the plurality of control gears 76. The plurality of drive gears 77 are linked to the cooling blades 72 through the transmission gear 78 to achieve synchronous operation. The control main shaft 75 is driven to rotate by the driving end of the control motor, and the control main shaft 75 is used to drive the plurality of control gears 76 to rotate. The control gear 76 is then meshed with the plurality of drive gears 77. Under the drive of the plurality of drive gears 77, the transmission gear 78 drives the cooling blades 72 to rotate, so that the cooling blades 72 generate an air flow through the through sleeve 71. The air flow flows through the pipe sleeve 73, and the pipe sleeve 73 is used for the copper wire to pass through. The copper wire dissipates its own temperature through contact heat dissipation, thereby accelerating the curing of the coating.

[0050] In summary, it can be seen that the antioxidant recycling and recovery device, through the synergistic effect of a semi-closed circulation system, an adjustable guide wetting component 56, and a rapid drying module, solves the problems of easy contamination of the protective liquid collected in the open air, low sponge absorption efficiency, and uneven coating in the prior art, thereby improving material utilization. The copper guide wire is accurately coated through multiple channels, improving operational efficiency, while reducing the risk of manual intervention and environmental pollution. The integrated recovery pump 624, negative pressure pipeline, and guide wetting component 56 efficiently recover excess protective liquid to the liquid supply tank 531, reducing material loss and avoiding secondary pollution caused by open air collection. The recovery rate is ≥80%, which is significantly better than the intermittent recovery mode of the traditional collection tank. The height adjustment component 61 supports fine adjustment of the spacing of the absorbent cotton 562. Combined with the perforated guide sleeve, the protective liquid absorption rate is improved, the coating uniformity reaches ±0.05mm, and the amount used is reduced compared to the traditional sponge pad method. The multi-stage cooling fan blades 72 driven by the gear set, combined with the reinforced heat sink 74, reduce the curing time of the coating compared to traditional means, reduce energy consumption, and avoid the loss of protective liquid by volatilization.

[0051] While embodiments of the present invention have been shown and described, it will be appreciated by those skilled in the art that various changes, modifications, substitutions, and variations may be made to these embodiments without departing from the principles and spirit of the invention, and that the scope of the invention is defined by the appended claims and their equivalents.

Claims

1. An antioxidant recycling and recovery device, comprising a support frame (1), wherein the support frame (1) is a rectangular frame, a traction roller (2) is provided on one side of the support frame (1), and the traction roller (2) is movably assembled on the support frame (1), characterized in that: A guide cover (3) is provided on the support frame (1), a guide housing (31) is provided on the guide cover (3), and a plurality of wire outlet holes (32) are provided on the guide housing (31); The end of the traction roller shaft (2) is provided with a traction assembly (4), the traction assembly (4) is connected to the end of the traction roller shaft (2), and a plurality of the support rollers correspond to a plurality of wire outlet holes (32); The support frame (1) is provided with a spray cooling mechanism (5), the spray cooling mechanism (5) comprises a pair of brackets (51), the pair of brackets (51) are arranged on both sides of the support frame (1), a pair of brackets (51) are connected to a nozzle (52), the end of the nozzle (52) is connected to a liquid supply assembly (53), the bottom of the nozzle (52) is provided with a plurality of nozzles (54) arranged in a linear array, and the plurality of nozzles (54) correspond to a plurality of outlet holes (32); A recycling mechanism (6) is provided at the bottom of the spray cooling mechanism (5), and the recycling mechanism (6) includes a guide support (55), both ends of the guide support (55) are connected to a pair of brackets (51), the guide support (55) and the pair of brackets (51) are separately connected through a pair of height adjustment components (61), a plurality of guide wetting components (56) are provided on the guide support (55), a plurality of the guide wetting components (56) are connected to a plurality of spray heads (54), and a plurality of recovery components (62) are provided at the bottom of the plurality of the guide wetting components (56); The plurality of guide wetting components (56) correspond to the positions of the plurality of outlet holes (32), and a quick drying component (7) is provided on one side of the plurality of guide wetting components (56); The guide wetting assembly (56) includes a pair of support shells (561), the pair of support shells (561) are symmetrically arranged, the pair of support shells (561) are a pair of empty shells with semi-annular structures, the inner sides of the pair of support shells (561) are equipped with a pair of absorbent cottons (562), a base (563) is provided on the lower support shell (561), a pair of fixing rods (564) are provided on both sides of the base (563), a pair of ring sleeves (565) are provided on both sides of the upper support shell (561), the pair of fixing rods (564) are inserted in the pair of ring sleeves (565), and the pair of fixing rods (564) are connected to the guide support (55).

2. The antioxidant recycling and recovery device according to claim 1, characterized in that: The guide hood (3) is a rectangular structural shell, and the guide shell (31) is connected to the guide hood (3) via two pairs of screws.

3. The antioxidant recycling and recovery device according to claim 2, characterized in that: A plurality of the outlet holes (32) are opened on the side wall of the guide housing, and a plurality of coaxial tubes (33) are arranged inside the plurality of the outlet holes (32). The inner cavity of the coaxial tube (33) is a conical structure.

4. The antioxidant recycling and recovery device according to claim 3, characterized in that: The recovery assembly (62) comprises a recovery tank (621), the recovery tank (621) being connected to the bottom of the support casing (561), the bottom of the recovery tank (621) being connected to a recovery pipe (622), the bottom of the recovery pipe (622) being connected to a collecting pipe (623), one side of the collecting pipe (623) being connected to a recovery pump (624), and the recovery pump (624) being connected to the liquid supply assembly (53).

5. The antioxidant recycling and recovery device according to claim 4, characterized in that: The traction roller shaft (2) is composed of a single drive shaft and a plurality of traction discs sleeved on the drive shaft. The traction assembly (4) includes a traction motor (41), one side of the traction motor (41) is connected to a reducer (42), and the reducer (42) is provided with a coupling (43) connected to the drive shaft.

6. The antioxidant recycling and recovery device according to claim 5, characterized in that: The liquid supply assembly (53) comprises a liquid supply tank (531), one side of the liquid supply tank (531) is connected to a circulation pump (532), the circulation pump (532) is connected to a liquid supply pipe (533), the liquid supply pipe (533) is connected to the end of the nozzle (52) via a flange, and a control valve (534) is provided on the flange.

7. The antioxidant recycling and recovery device according to claim 6, characterized in that: The guide support (55) is a plate with a rectangular structure. The guide support (55) is connected to the lower support shell (561), and the tail end of the guide support (55) is connected to the height adjustment component (61).

8. The antioxidant recycling and recovery device according to claim 7, characterized in that: The height adjustment assembly (61) comprises a height adjustment track (611), the bracket (51) is provided with the height adjustment track (611), the height adjustment slider (612) is assembled on the height adjustment track (611), the height adjustment screw (613) is provided on the height adjustment track (611), the height adjustment screw (613) is threadedly engaged with the height adjustment slider (612), and the height adjustment slider (612) is connected to the side of the guide support (55).

9. The antioxidant recycling and recovery device according to claim 8, characterized in that: The quick drying assembly (7) comprises a through sleeve (71), the through sleeve (71) being mounted together with a guide support (55), a cooling blade (72) being provided on the through sleeve (71), a pipe sleeve (73) being provided on the central axis of the cooling blade (72), and a reinforced heat sink (74) being provided outside the pipe sleeve (73), and the reinforced heat sink (74) corresponding to the cooling blade (72).