Wire rod coating machine
By designing a wire coating machine, ultrasonic technology is used to achieve continuous coating and cleaning of wires, solving the problems of low efficiency and high labor costs of wire coating, improving production efficiency and reducing costs.
Patent Information
- Application Number
- CN202421315634.1
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-06-11
- Publication Date
- 2025-05-23
- Estimated Expiration
- 2034-06-11
AI Technical Summary
The efficiency of processing wires is low and the labor cost is high. It is mainly due to the residual plating solution, which requires multiple equipment conversion and cleaning treatment.
A wire coating machine is designed, including material discharge components, ultrasonic plating solution components and cleaning components. The plating solution is automatically cleaned through ultrasonic technology to achieve a continuous coating and cleaning process.
It improves the efficiency of wire coating, reduces manual operation, reduces plating solution residue and equipment pollution, and reduces overall production costs.
Smart Images

Figure CN222893225U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of metal plating, in particular to a wire coating machine. Background Art
[0002] In order to protect the wire structure, a coating is usually applied on the surface of the wire. When the wire is plated, the wire needs to be immersed in a plating solution to plate the surface of the wire. The wire is reeled after the plating operation is completed. Since there is usually residual plating solution on the wire after the plating, the reeled wire needs to be transferred to a cleaning device, and the wire needs to be cleaned by the cleaning device to remove the plating solution on the wire before the next processing step can be performed on the wire. When another coating is required on the wire, the cleaned reeled wire needs to be transferred to the next coating device, and the next coating device needs to perform a coating operation on the released wire. This results in low efficiency in wire processing and high labor costs. Utility Model Content
[0003] To this end, the utility model provides a wire coating machine, which solves the technical problems of low efficiency and high labor cost in processing wires.
[0004] To achieve the above-mentioned purpose, the utility model specifically provides the following technical solutions: a wire coating machine, comprising: a discharge component for discharging wires; an ultrasonic plating liquid component, wherein two ultrasonic plating liquid components are provided, and they are respectively a first ultrasonic plating liquid component and a second ultrasonic plating liquid component; the first ultrasonic plating liquid component is provided on one side of the discharge component; the first ultrasonic plating liquid component can receive the wire discharged from the discharge component, and can plate the plating liquid on the wire; a cleaning component, wherein two cleaning components are provided, and they are respectively a first cleaning component and a second cleaning component; the first cleaning component is provided on one side of the first ultrasonic plating liquid component, and the first cleaning component Able to receive the wire released from the first ultrasonic plating liquid component, and capable of cleaning and air-drying the wire; the second ultrasonic plating liquid component is arranged at one side of the first cleaning component, the second ultrasonic plating liquid component can receive the wire released from the first cleaning component, and can plate the plating liquid on the wire; the second cleaning component is arranged at one side of the second ultrasonic plating liquid component, the second cleaning component can receive the wire released from the second ultrasonic plating liquid component, and can clean and air-dry the wire; a material receiving component is arranged at one side of the second cleaning component; the material receiving component can receive the wire released from the second cleaning component, and can reel the wire.
[0005] Optionally, the ultrasonic plating assembly includes an ultrasonic device, a lifting drive, a liquid storage tank, an immersion rack and a first roller; the liquid storage tank is provided with a first opening and a liquid storage cavity, and the liquid storage cavity is used to contain the plating liquid; the first opening is arranged at the top of the liquid storage tank and is connected to the liquid storage cavity; the first roller is arranged on the immersion rack, and the immersion rack is arranged above the first opening and is connected to the lifting drive, and the lifting drive can drive the immersion rack to move up and down so that the first roller on the immersion rack can be immersed in the plating liquid in the liquid storage tank; the ultrasonic device is arranged on one side of the liquid storage tank, and can plate the plating liquid on the wire located in the plating liquid.
[0006] Optionally, a plurality of the first rollers are provided, and the plurality of the first rollers are respectively provided on both sides of the top end of the immersion rack.
[0007] Optionally, the rotation axis direction of the first roller is vertical.
[0008] Optionally, the ultrasonic plating liquid assembly further includes a liquid level sensing structure; the liquid level sensing structure is connected to the immersion rack; the liquid level sensing structure can sense the liquid level height of the plating liquid in the liquid storage tank.
[0009] Optionally, the cleaning component includes a first guide wheel, a liquid outlet piece and an air outlet piece; the first guide wheel is provided in plurality and is respectively located on both sides of the liquid outlet piece and the air outlet piece; the liquid outlet piece has a liquid outlet end, and the liquid outlet piece can discharge the cleaning liquid from the liquid outlet end to clean the wire; the air outlet piece has an air outlet end, and the air outlet piece can spray gas from the air outlet end to air dry the wire.
[0010] Optionally, the cleaning component also includes a solution tank, which is located below the liquid outlet and the air outlet; the solution tank is provided with a second opening and a solution cavity, the second opening is provided at the top of the solution tank and is connected to the solution cavity, and the second opening is located below the liquid outlet and the air outlet.
[0011] Optionally, a guide surface arranged obliquely downward is provided on a side wall of the solution chamber, and the solution tank is provided with a through opening, and the through opening is provided on the bottom wall of the solution chamber.
[0012] Optionally, both side ends of the solution tank are provided with limit openings connected to the solution cavity, and the two limit openings are respectively arranged opposite to the first guide wheels located on both sides of the liquid outlet and the air outlet, and the limit openings are used to limit the direction of the wire.
[0013] Optionally, a second guide wheel is also included, the second ultrasonic plating liquid component is arranged on one side of the first cleaning component, and the second guide wheel is arranged on one side of the second ultrasonic plating liquid component and one side of the first cleaning component.
[0014] Compared with the prior art, the utility model has the following beneficial effects: the discharge component can discharge the wire to be coated, the first ultrasonic plating liquid component can receive the wire discharged from the discharge component, the plating liquid can be plated on the wire through the first ultrasonic plating liquid component to coat a film layer on the outer surface of the wire, the first cleaning component can receive the wire discharged from the first ultrasonic plating liquid component, the wire can be cleaned through the first cleaning component, and the plating liquid on the wire can be air-dried to reduce the residual plating liquid on the wire to avoid the plating liquid on the residual wire from contaminating the wire, and to reduce the degree to which the wire carries the plating liquid and contaminates the second ultrasonic plating liquid component, the second ultrasonic plating liquid component can receive the wire discharged from the first cleaning component, the plating liquid can be plated on the wire through the second ultrasonic plating liquid component to coat a film layer on the outer surface of the wire, the film layer can be plated on the wire again through the second ultrasonic plating liquid component, the second cleaning component can receive the wire discharged from the second ultrasonic plating liquid component, and the second cleaning component can clean the wire The wire is washed and the plating liquid on the wire is air-dried to reduce the residual plating liquid on the wire, to avoid the plating liquid on the residual wire from contaminating the wire, and to reduce the degree of contamination between the wires caused by the plating liquid after the receiving component reels the wire. The wire coating machine can coat the wire discharged by the discharging component through the first ultrasonic plating liquid component to coat the surface of the wire. The plating liquid on the wire can be reduced through the first cleaning component to reduce the contamination of the wire by the residual plating liquid on the wire. The wire discharged by the first cleaning component can be coated by the second ultrasonic plating liquid component to coat different film layers on the surface of the wire again. The plating liquid on the wire can be reduced through the second cleaning component to reduce the residual plating liquid on the wire and reduce the degree of mutual contamination between the wires in the receiving component. The wire coating machine can successively coat two film layers on the surface of the wire through the first ultrasonic plating liquid component and the second ultrasonic plating liquid component, and has a high degree of automation, so that the processing efficiency is high and the labor cost is reduced. BRIEF DESCRIPTION OF THE DRAWINGS
[0015] In order to more clearly illustrate the embodiments of the utility model or the technical solutions in the prior art, the drawings required for use in the embodiments or the description of the prior art will be briefly introduced below. Obviously, the drawings described below are only some embodiments of the utility model. For ordinary technicians in this field, other drawings can be obtained based on these drawings without paying creative labor.
[0016] Figure 1 A schematic structural diagram of a wire coating machine provided by an embodiment of the utility model;
[0017] Figure 2 A schematic structural diagram of an ultrasonic plating liquid assembly of a wire coating machine provided in an embodiment of the utility model;
[0018] Figure 3 A schematic structural diagram of a cleaning component of a wire coating machine provided in an embodiment of the utility model.
[0019] Reference numerals:
[0020] The material discharging component 100; the ultrasonic plating liquid component 200; the first ultrasonic plating liquid component 201; the second ultrasonic plating liquid component 202; the lifting drive component 210; the liquid storage tank 220; the first opening 221; the liquid storage cavity 222; the immersion rack 230; the first roller 240; the cleaning component 300; the first cleaning component 301; the second cleaning component 302; the first guide wheel 310; the liquid outlet component 320; the liquid outlet end 321; the air outlet component 330; the air outlet end 331; the solution tank 340; the second opening 341; the solution cavity 342; the through port 343; the guide surface 344; the limit port 345; the material receiving component 400; the liquid level sensing structure 500; the second guide wheel 600. DETAILED DESCRIPTION
[0021] In order to make the utility model's purpose, features, and advantages more obvious and easy to understand, the following will be combined with the drawings in the utility model embodiments to clearly and completely describe the technical solutions in the utility model embodiments. Obviously, the embodiments described below are only part of the utility model embodiments, not all of the embodiments. Based on the embodiments in the utility model, all other embodiments obtained by ordinary technicians in this field without creative work are within the scope of protection of the utility model.
[0022] The technical solution of the utility model is further explained below with reference to the accompanying drawings and through specific implementation methods.
[0023] In the description of the present invention, it is necessary to understand that the terms "upper", "lower", "top", "bottom", "inside", "outside", etc., indicating orientations or positional relationships, are based on the orientations or positional relationships shown in the accompanying drawings, and are only for the convenience of describing the present invention and simplifying the description, rather than indicating or implying that the device or element referred to must have a specific orientation, be constructed and operated in a specific orientation, and therefore cannot be understood as a limitation on the present invention.
[0024] Reference below Figures 1 to 3 A wire coating machine according to an embodiment of the utility model is described.
[0025] According to the wire coating machine of the embodiment of the utility model, the wire coating machine includes a feeding assembly 100, an ultrasonic plating liquid assembly 200, a cleaning assembly 300 and a receiving assembly 400; the feeding assembly 100 is used to feed out the wire; there are two ultrasonic plating liquid assemblies 200, which are respectively a first ultrasonic plating liquid assembly 201 and a second ultrasonic plating liquid assembly 202; the first ultrasonic plating liquid assembly 201 is arranged on one side of the feeding assembly 100; the first ultrasonic plating liquid assembly 201 can receive the wire fed from the feeding assembly 100, and can plate the plating liquid on the wire; there are two cleaning assemblies 300, which are respectively a first cleaning assembly 301 and a second cleaning assembly 302; the first cleaning assembly 301 is arranged on one side of the first ultrasonic plating liquid assembly 201 On the side, the first cleaning component 301 can receive the wire released from the first ultrasonic plating liquid component 201, and can clean and air-dry the wire; the second ultrasonic plating liquid component 202 is arranged on one side of the first cleaning component 301, and the second ultrasonic plating liquid component 202 can receive the wire released from the first cleaning component 301, and can plate the plating liquid on the wire; the second cleaning component 302 is arranged on one side of the second ultrasonic plating liquid component 202, and the second cleaning component 302 can receive the wire released from the second ultrasonic plating liquid component 202, and can clean and air-dry the wire; the receiving component 400 is arranged on one side of the second cleaning component 302; the receiving component 400 can receive the wire released from the second cleaning component 302, and can reel the wire.
[0026] The discharge assembly 100 can discharge the wire to be coated, the first ultrasonic plating liquid assembly 201 can receive the wire discharged from the discharge assembly 100, and the plating liquid can be plated on the wire through the first ultrasonic plating liquid assembly 201 to plate a film layer on the outer surface of the wire, the first cleaning assembly 301 can receive the wire discharged from the first ultrasonic plating liquid assembly 201, and the wire can be cleaned and the plating liquid on the wire can be air-dried to reduce the residual plating liquid on the wire to prevent the residual plating liquid on the wire from contaminating the wire. , and can reduce the degree to which the wire is contaminated by the plating solution and the second ultrasonic plating solution assembly 202, the second ultrasonic plating solution assembly 202 can receive the wire released from the first cleaning assembly 301, the plating solution can be plated on the wire through the second ultrasonic plating solution assembly 202 to plate a film layer on the outer surface of the wire, the film layer can be plated on the wire again through the second ultrasonic plating solution assembly 202, the second cleaning assembly 302 can receive the wire released from the second ultrasonic plating solution assembly 202, and the wire can be cleaned through the second cleaning assembly 302, The plating liquid on the wire is dried by air to reduce the residual plating liquid on the wire, to avoid the plating liquid on the residual wire from contaminating the wire, and to reduce the degree of contamination of the wire by the plating liquid after the wire is wound by the receiving component 400. The wire coating machine can coat the wire discharged by the discharging component 100 through the first ultrasonic plating liquid component 201, so as to coat a film layer on the surface of the wire. The plating liquid on the wire can be reduced through the first cleaning component 301 to reduce the contamination of the wire by the residual plating liquid on the wire, and the second ultrasonic The plating liquid component 202 can coat the wire released by the first cleaning component 301 so that different film layers can be plated on the surface of the wire again. The plating liquid on the wire can be reduced through the second cleaning component 302 to reduce the residual plating liquid on the wire and reduce the degree of mutual contamination of the wires in the receiving component 400. The wire coating machine can successively plate two film layers on the surface of the wire through the first ultrasonic plating liquid component 201 and the second ultrasonic plating liquid component 202, and has a high degree of automation, so as to increase the processing efficiency and reduce labor costs.
[0027] Reference Figure 1 and Figure 2It can be understood that the ultrasonic plating liquid assembly 200 includes a lifting drive member 210, a liquid storage tank 220, an immersion rack 230 and a first roller 240; the liquid storage tank 220 is provided with a first opening 221 and a liquid storage cavity 222, and the liquid storage cavity 222 is used to contain the plating liquid; the first opening 221 is provided at the top of the liquid storage tank 220 and is connected to the liquid storage cavity 222; the first roller 240 is provided on the immersion rack 230, and the immersion rack 230 is provided above the first opening 221 and is connected to the lifting drive member 210, and the lifting drive member 210 can drive the immersion rack 230 to move up and down so that the first roller 240 on the immersion rack 230 can be immersed in the plating liquid of the liquid storage tank 220; the ultrasonic device is provided on one side of the liquid storage tank 220, and can plate the plating liquid on the wire located in the plating liquid.
[0028] The liquid storage tank 220 contains the plating liquid through the liquid storage cavity 222, and the plating liquid can be poured into the liquid storage cavity 222; the first roller 240 is arranged on the immersion rack 230, and the wire released by the discharge assembly 100 can be wound on the first roller 240 on the immersion rack 230, and the wire is output from the first roller 240. The immersion rack 230 is located above the first opening 221, so that the lifting drive 210 can drive the immersion rack 230 to move up and down, so as to drive the first roller 240 and the wire on the first roller 240 to move up and down. The immersion rack 230 is driven downward by the lifting drive 210, so that the first roller 240 and the wire wound on the first roller 240 can be immersed in the wire, so that part of the wire can be wrapped by the immersion liquid, thereby improving the coating quality.
[0029] Specifically, the plating solution in the liquid storage chamber 222 of the first ultrasonic plating solution assembly 201 and the plating solution in the liquid storage chamber 222 of the second ultrasonic plating solution assembly 202 may be different plating solutions so as to plate different plating layers on the outer surface of the wire.
[0030] Specifically, the lifting drive member 210 may be a slider guide drive structure, or may be a lead screw drive structure or other drive forms.
[0031] Reference Figure 1 and Figure 2 It can be understood that there are multiple first rollers 240 , and the multiple first rollers 240 are respectively arranged on both sides of the top of the immersion rack 230 .
[0032] By setting a plurality of first rollers 240, the wire can be wound around the plurality of first rollers 240 to increase the length of the wire wound around the first roller 240. Thus, when the lifting drive 210 drives the immersion rack 230 to move downward until the first roller 240 on the immersion rack 230 is immersed in the plating solution of the liquid storage tank 220, the area of the wire that can be immersed in the plating solution can be increased, so that more wire can be immersed in the plating solution.
[0033] Among them, multiple first rollers 240 are respectively arranged on both sides of the top of the immersion rack 230, and the first rollers 240 arranged on both sides of the top of the immersion rack 230 are spaced apart. The wire surrounds a first roller 240 on one side of the immersion rack 230, and then surrounds a first roller 240 on the other side of the immersion rack 230. The above steps are repeated until the wire surrounds each first roller 240, so as to increase the area of the wire that can be immersed in the plating solution.
[0034] Reference Figure 2 It can be understood that the rotation axis direction of the first roller 240 is in the vertical direction, so as to control the height of the wire after it wraps around the first roller 240, thereby reducing the difficulty of the lifting drive 210 driving the immersion rack 230 to move downward until the first roller 240 on the immersion rack 230 is immersed in the plating solution in the liquid storage tank 220.
[0035] Specifically, the plurality of first rollers 240 are located at the same height; the first roller 240 is provided with a recessed groove structure in the axial direction, and the wire can be embedded in the groove structure, so as to reduce the possibility of the wire accidentally escaping from the first roller 240 .
[0036] Reference Figure 2 It can be understood that the ultrasonic plating liquid assembly 200 also includes a liquid level sensing structure 500 ; the liquid level sensing structure 500 is connected to the immersion rack 230 ; the liquid level sensing structure 500 can sense the liquid level height of the plating liquid in the liquid storage tank 220 .
[0037] After the lifting drive 210 drives the immersion rack 230 to move downward, it can drive the liquid level sensing structure 500 and the first roller 240 to move downward, so that the liquid level sensing structure 500 is below the liquid level of the plating solution in the liquid storage tank 220. The liquid level sensing structure 500 can sense the liquid level of the plating solution, so as to determine the position of the first roller 240 relative to the liquid level of the plating solution, so as to facilitate the control of the first roller 240 and the wire surrounding the first roller 240 to be immersed in the plating solution, thereby ensuring the coating effect.
[0038] Specifically, since the wire will drive the plating solution during the continuous coating process, causing the liquid level of the plating solution to drop, the liquid level sensing structure 500 is connected to the lifting drive 210 by signal, so that the liquid level sensing structure 500 can transmit the liquid level of the plating solution to the lifting drive 210, so that the lifting drive 210 can control the downward movement distance according to the liquid level of the plating solution, so as to ensure that the wire on the first roller 240 is immersed in the plating solution.
[0039] Reference Figure 1 and Figure 3It can be understood that the cleaning component 300 includes a first guide wheel 310, a liquid outlet part 320 and an air outlet part 330; the first guide wheel 310 is provided with multiple parts and respectively located on both sides of the liquid outlet part 320 and the air outlet part 330; the liquid outlet part 320 has a liquid outlet end 321, and the liquid outlet part 320 can discharge the cleaning liquid from the liquid outlet end 321 to clean the wire; the air outlet part 330 has an air outlet end 331, and the air outlet part 330 can spray gas from the air outlet end 331 to air-dry the wire.
[0040] After the wire material output from the ultrasonic plating liquid assembly 200 is coated, the wire material will carry part of the plating liquid. The wire material can be guided by the first guide wheel 310 and can be moved to the lower end of the liquid outlet member 320 and the gas outlet member 330. The liquid outlet end 321 of the liquid outlet member 320 is located at the lower end of the liquid outlet member 320. The liquid outlet member 320 sprays the cleaning liquid from the liquid outlet end 321 so that the cleaning liquid flows through the wire material located below the liquid outlet member 320. The cleaning liquid is used to clean the plating liquid on the wire material. It has the effect of cleaning the liquid outlet part 320; the air outlet end 331 of the air outlet part 330 is located at the lower end of the air outlet part 330, and the air outlet part 330 discharges the gas from the air outlet end 331 so that the gas flows through the wire below the liquid outlet part 320, and the gas is used to air-dry the plating liquid and the cleaning liquid on the wire, so as to have the effect of air-drying the liquid outlet part 320; wherein the cleaning liquid can be water or other liquid that can clean the plating liquid, and the air outlet part 330 can be air or other inert gas.
[0041] Specifically, a first guide wheel 310 is respectively provided on both sides of the liquid outlet part 320 and the air outlet part 330, and the wire is wound around the first guide wheel 310 located on both sides of the liquid outlet part 320 and the air outlet part 330. The first guide wheel 310 can guide the wire so that the wire can stably pass through the lower ends of the liquid outlet part 320 and the air outlet part 330.
[0042] Reference Figure 2 It can be understood that the cleaning component 300 also includes a solution tank 340, which is located below the liquid outlet 320 and the air outlet 330; the solution tank 340 is provided with a second opening 341 and a solution cavity 342, the second opening 341 is provided at the top of the solution tank 340, and is connected to the solution cavity 342, and the second opening 341 is located below the liquid outlet 320 and the air outlet 330.
[0043] After cleaning the wire, the cleaning liquid discharged by the liquid outlet 320 can enter the solution cavity 342 in the solution tank 340 from the second opening 341. The solution tank 340 can contain the cleaning liquid to prevent the cleaning liquid from splashing and affecting other working structures. After the gas outlet 330 sprays gas, the gas will take away the liquid on the wire, and the sprayed gas will enter the solution cavity 342 to prevent the gas carrying liquid from affecting other working structures.
[0044] Reference Figure 2 It can be understood that the side wall of the solution cavity 342 has a guide surface 344 arranged obliquely downward, and the solution tank 340 is provided with a through opening 343 , and the through opening 343 is arranged on the bottom wall of the solution cavity 342 .
[0045] The cleaning liquid in the solution cavity 342 flows to the through port 343 and is discharged from the through port 343; specifically, the through port 343 is connected to other containers for storing waste liquid to facilitate the collection of the cleaning liquid.
[0046] Among them, the guide surface 344 is inclined in a downward direction, and there are two guide surfaces 344 arranged opposite to each other, so as to guide the cleaning liquid discharged from the liquid outlet end 321, making it convenient for the cleaning liquid discharged from the liquid outlet end 321 to enter the opening 343 and be discharged outward.
[0047] Reference Figure 2 It can be understood that both side ends of the solution tank 340 are provided with limit openings 345 connected to the solution cavity 342, and the two limit openings 345 are respectively arranged opposite to the first guide wheels 310 located on both sides of the liquid outlet 320 and the air outlet 330, and the limit openings 345 are used to limit the direction of the wire.
[0048] The limiting openings 345 are arranged at the two side ends of the solution tank 340, and the wire can enter the solution cavity 342 through the limiting opening 345 on one side of the solution tank 340, and leave the solution cavity 342 from the limiting opening 345 on the other side. The limiting openings 345 are arranged opposite to a first guide wheel 310 to facilitate the wire output from the first guide wheel 310 to enter the limiting opening 345, and also facilitate the wire output from the limiting opening 345 to be wound around the first guide wheel 310.
[0049] Specifically, the limiting opening 345 is V-shaped.
[0050] Reference Figure 1 It can be understood that a second guide wheel 600 is also included, the second ultrasonic plating liquid component 202 is arranged on one side of the first cleaning component 301, and the second guide wheel 600 is arranged on one side of the second ultrasonic plating liquid component 202 and one side of the first cleaning component 301.
[0051] The second guide wheel 600 can guide the wire, so that the guide wheel on the first cleaning component 301 can pass through the second guide wheel 600 and enter the second ultrasonic plating liquid component 202 .
[0052] It should be noted that, in this article, relational terms such as first and second, etc. are only used to distinguish one entity or operation from another entity or operation, and do not necessarily require or imply any such actual relationship or order between these entities or operations. Moreover, the terms "include", "comprise" or any other variants thereof are intended to cover non-exclusive inclusion, so that a process, method, article or device including a series of elements includes not only those elements, but also other elements not explicitly listed, or also includes elements inherent to such process, method, article or device.
[0053] Although 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 the embodiments without departing from the principles and spirit of the present invention, and that the scope of the present invention is defined by the appended claims and their equivalents.
[0054] The above embodiments are only used to illustrate the technical solutions of the present invention, rather than to limit the same. Although the present invention has been described in detail with reference to the aforementioned embodiments, those skilled in the art should understand that the technical solutions described in the aforementioned embodiments may still be modified, or some of the technical features thereof may be replaced by equivalents. However, these modifications or replacements do not deviate the essence of the corresponding technical solutions from the spirit and scope of the technical solutions of the various embodiments of the present invention.
Claims
1. Wire coating machine, characterized in that, include: A discharge assembly (100) for discharging wire; An ultrasonic plating liquid component (200), wherein two ultrasonic plating liquid components (200) are provided, namely a first ultrasonic plating liquid component (201) and a second ultrasonic plating liquid component (202); the first ultrasonic plating liquid component (201) is provided on one side of the discharge component (100); the first ultrasonic plating liquid component (201) is capable of receiving a wire discharged from the discharge component (100) and of plating the plating liquid on the wire; A cleaning assembly (300), wherein the cleaning assembly (300) is provided with two, namely a first cleaning assembly (301) and a second cleaning assembly (302); the first cleaning assembly (301) is provided at one side of the first ultrasonic plating liquid assembly (201), and the first cleaning assembly (301) is capable of receiving wires discharged from the first ultrasonic plating liquid assembly (201), and is capable of cleaning and air-drying the wires; the second ultrasonic plating liquid assembly (202) is provided at one side of the first cleaning assembly (301), and the second ultrasonic plating liquid assembly (202) is capable of receiving wires discharged from the first cleaning assembly (301), and is capable of plating plating liquid on the wires; the second cleaning assembly (302) is provided at one side of the second ultrasonic plating liquid assembly (202), and the second cleaning assembly (302) is capable of receiving wires discharged from the second ultrasonic plating liquid assembly (202), and is capable of cleaning and air-drying the wires; The material receiving component (400) is arranged on one side of the second cleaning component (302); the material receiving component (400) can receive the wire released from the second cleaning component (302) and can reel in the wire.
2. The wire coating machine according to claim 1, characterized in that: The ultrasonic plating liquid assembly (200) comprises an ultrasonic device, a lifting drive member (210), a liquid storage tank (220), a liquid immersion frame (230) and a first roller (240); the liquid storage tank (220) is provided with a first opening (221) and a liquid storage cavity (222), and the liquid storage cavity (222) is used to contain plating liquid; the first opening (221) is provided at the top end of the liquid storage tank (220) and is connected to the liquid storage cavity (222); the first roller (240) is provided at the top end of the liquid storage tank (220) and is connected to the liquid storage cavity (222); On the liquid rack (230), the immersion rack (230) is arranged above the first opening (221) and is connected to the lifting drive member (210), and the lifting drive member (210) can drive the immersion rack (230) to move up and down, so that the first roller (240) on the immersion rack (230) can be immersed in the plating liquid of the liquid storage tank (220); the ultrasonic device is arranged on one side of the liquid storage tank (220) and can plate the plating liquid on the wire located in the plating liquid.
3. The wire coating machine according to claim 2, characterized in that: A plurality of the first rollers (240) are provided, and the plurality of the first rollers (240) are respectively arranged on both sides of the top end of the immersion rack (230).
4. The wire coating machine according to claim 3, characterized in that: The rotation axis direction of the first roller (240) is in the vertical direction.
5. The wire coating machine according to claim 2, characterized in that: The ultrasonic plating liquid assembly (200) further comprises a liquid level sensing structure (500); the liquid level sensing structure (500) is connected to the immersion rack (230); the liquid level sensing structure (500) is capable of sensing the liquid level height of the plating liquid in the liquid storage tank (220).
6. The wire coating machine according to claim 1, characterized in that: The cleaning component (300) comprises a first guide wheel (310), a liquid outlet part (320) and an air outlet part (330); the first guide wheel (310) is provided with a plurality of parts and respectively located on both sides of the liquid outlet part (320) and the air outlet part (330); the liquid outlet part (320) has a liquid outlet end (321), and the liquid outlet part (320) can discharge cleaning liquid from the liquid outlet end (321) to clean the wire; the air outlet part (330) has an air outlet end (331), and the air outlet part (330) can spray gas from the air outlet end (331) to air dry the wire.
7. The wire coating machine according to claim 6, characterized in that: The cleaning component (300) further comprises a solution tank (340), wherein the solution tank is located below the liquid outlet component (320) and the gas outlet component (330); the solution tank (340) is provided with a second opening (341) and a solution cavity (342), wherein the second opening (341) is provided at the top of the solution tank (340) and is connected to the solution cavity (342), and the second opening (341) is located below the liquid outlet component (320) and the gas outlet component (330).
8. The wire coating machine according to claim 7, characterized in that: The side wall of the solution cavity (342) is provided with a guide surface (344) arranged obliquely downward, and the solution tank (340) is provided with a through opening (343), and the through opening (343) is arranged on the bottom wall of the solution cavity (342).
9. The wire coating machine according to claim 7, characterized in that: Both side ends of the solution tank (340) are provided with limiting openings (345) which are connected to the solution cavity (342); the two limiting openings (345) are respectively arranged opposite to the first guide wheel (310) located on both sides of the liquid outlet (320) and the gas outlet (330); the limiting openings are used to limit the direction of the wire.
10. The wire coating machine according to claim 1, characterized in that: It also includes a second guide wheel (600), the second ultrasonic plating liquid component (202) is arranged on one side of the first cleaning component (301), and the second guide wheel (600) is arranged on one side of the second ultrasonic plating liquid component (202) and one side of the first cleaning component (301).