Copper wire processing device for tinned copper wire preparation
The copper wire processing device addresses the issue of localized breakage by heating and filling gaps in broken wires, ensuring rapid reconnection and maintaining conductivity, while aiding in the identification of repaired sections for quality assurance.
Patent Information
- Application Number
- CN202510655732.2
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-05-21
- Publication Date
- 2025-07-15
- Estimated Expiration
- Not applicable · inactive patent
AI Technical Summary
During the straightening process of copper wire, uneven tension leads to local fracture. The prior art requires manual repair, which affects production efficiency and poor quality of the joint at the fracture.
Use thermal conductors to heat the broken copper wire to fuse and reconnect it, use a connecting pipe to fill the gap with copper liquid, and the rotating wheel marks the repair position.
It realizes rapid and automatic repair of copper wire, and the joint strength and conductivity are close to the original, reducing production interruptions, improving repair quality and facilitating detection.
Smart Images

Figure CN120306536A_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of metal material processing, and particularly to a copper wire processing device for preparing tinned copper wire. Background Art
[0002] In the modern electronics and power industries, tinned copper wire is widely used due to its excellent electrical conductivity, corrosion resistance, and good welding performance. To ensure that the copper wire has good straightness and flatness, it is necessary to straighten the copper wire, thereby effectively eliminating the bending of the copper wire and making its flatness meet the requirements. Moreover, the surface of the processed copper wire is clean and its activity increases, enabling the tin plating layer to adhere more firmly to it.
[0003] During the process of straightening the copper wire, when the tension distribution at different positions is uneven, some parts will bear excessive tensile force, resulting in local fracture. The fracture of the copper wire will cause the production to suddenly stop, requiring manual repair by operators, which not only wastes time but also affects the overall production efficiency.
[0004] Therefore, the present invention proposes a copper wire processing device for preparing tinned copper wire to make up for and improve the deficiencies of the existing technology. Summary of the Invention
[0005] Aiming at the defects existing in the prior art, the present invention provides a copper wire processing device for preparing tinned copper wire, which can effectively solve the above-mentioned technical problems.
[0006] The technical implementation solution of the present invention is as follows: A copper wire processing device for preparing tinned copper wire includes a wire drawing machine. A winding component is arranged on one side of the wire drawing machine, and a driving element is arranged inside the winding component. A wire drawing module is detachably connected to the upper surface of the wire drawing machine. Guide wheels are symmetrically rotatably connected to the upper surface of the wire drawing machine. A servo motor is fixedly connected to one side of the upper surface of the wire drawing machine. The output shaft of the servo motor is fixedly connected to a rotating lead screw. A moving part is threadedly connected to the outer surface of the rotating lead screw. A sliding frame is slidably connected to one side of the moving part. Both the moving part and one end of the sliding frame are slidably connected to the upper surface of the wire drawing machine. A support plate is fixedly connected to the inner side of the moving part. A sliding block is slidably connected to the outer surface of the top of the support plate. Heat conducting parts are fixedly connected between the inner sides of the support plate and the sliding block. A guide frame is fixedly connected to one side of the sliding frame. A chute is formed through the inside of the guide frame, and one end of the chute of the guide frame is inclined. The inside of the chute of the guide frame is in pressing fit with one end of the sliding block. A heater is detachably connected to the inside of the sliding frame. When the heater heats the copper wire inside the heat conducting part, the broken copper wire can be melted and reconnected.
[0007] More preferably, a liquid extraction pump is fixedly connected to one side of the wire drawing machine. The top end of the liquid extraction pump is connected to a spray head in a penetrating manner. The lower surface of the spray head is fixedly connected to the upper surface of the wire drawing machine. The bottom end of the liquid extraction pump is connected to a conveying pipeline in a penetrating manner. One end of the conveying pipeline is connected to a filter plate in a penetrating manner. The outer surface of the filter plate is fixedly connected to the inside of the wire drawing machine. Both ends of the heat conducting member are made of heat insulating materials, and the heat insulating materials at both ends of the heat conducting member can prevent the fuse at both ends of the heat conducting member from melting.
[0008] More preferably, a driving motor is fixedly connected to the upper surface of the moving member. The output shaft of the driving motor is fixedly connected to a rotating lead screw. The outer surface of the rotating lead screw is threadedly connected to the upper surface of one side of the sliding frame. When the driving motor drives the rotating lead screw to rotate, the sliding frame can automatically slide left and right.
[0009] More preferably, a support frame is fixedly connected to the upper surface of the moving member. A storage tank is fixedly connected to the inside of the support frame. A feed inlet is formed in the upper surface of the storage tank in a penetrating manner. The bottom end of the storage tank is connected to a first liquid delivery pipe in a penetrating manner. The inner side of the bottom end of the first liquid delivery pipe is slidably connected to a second liquid delivery pipe in a penetrating manner. A plurality of communicating pipes are connected to the bottom of the second liquid delivery pipe in a penetrating manner. The outer surfaces of the communicating pipes are slidably connected to the inside of the top sliding block. Transverse grooves are symmetrically formed in the bottom ends of the communicating pipes in a penetrating manner. When the communicating pipes slide downward, copper liquid can be injected into the inside of the heat conducting member, so that the copper liquid can fill the gaps at the broken part of the copper wire.
[0010] More preferably, a fixing column is fixedly connected to the outer surface of the bottom end of the second liquid delivery pipe. A guide rod is fixedly connected to the upper surface of the top sliding block. The inner side of the fixing column is slidably connected to the outer surface of the guide rod. An extrusion member is fixedly connected to one side of the guide frame. The outer surface of one side of the fixing column is in extrusion fit with the outer surface of the extrusion member. When the extrusion member extrudes the fixing column, the communicating pipes can automatically slide downward.
[0011] More preferably, a return spring is fixedly connected to the lower surface of the top of the guide rod. The bottom end of the return spring is fixedly connected to the upper surface of the fixing column. A protective cover is fixedly connected to the upper surface of the fixing column. The return spring can drive the fixing column to move in a reset manner.
[0012] More preferably, fixing frames are fixedly connected to both ends of the bottom sliding block. Limiting frames are rotatably connected to one side of each fixing frame. When the copper wire is clamped by the limiting frames and the fixing frames, the copper wire can be fixed.
[0013] More preferably, a support member is fixedly connected to one side of the moving member. A rolling wheel is rotatably connected between the inner sides of the support member. A sliding member is slidably connected between the outer surfaces of the top of the support member. A rotating wheel is rotatably connected between the inner sides of the sliding member. Connecting springs are fixedly sleeved on the outer surfaces of the support member. The top ends of the connecting springs are fixedly connected to the bottom end of the sliding member. A fixing member is fixedly connected to one side of the nozzle. The bottom end of the fixing member is inclined. The inclined outer surface of the bottom end of the fixing member is in pressing fit with the outer surface of one of the sliding members. When the rotating wheel moves downward, it can mark the connection part of the copper wire, so as to help the staff quickly identify the repaired position.
[0014] More preferably, a storage frame is fixedly connected between the outer surfaces of the inner ends of the sliding member, and the storage frame can supply paint to the outer surface of the rotating wheel.
[0015] Compared with the prior art, the present invention has the following advantages:
[0016] 1. When the heat-conducting member at the top of the present invention moves downward, the heat-conducting members can clamp the break while the middle part of the heat-conducting member is heated by the heater, so as to heat the break of the copper wire, melt the two ends of the copper wire and reconnect them together, so that the repair of the copper wire can be completed in a short time, reduce the production interruption caused by pulling break, and the appropriate heating and fusing can make the joint at the break have high strength and good conductivity, so that the strength of the joint can be close to the quality level of the original copper wire.
[0017] 2. When the communicating pipe of the present invention moves downward, copper liquid can be injected into the break of the copper wire, and the copper liquid can fill the gap at the break of the copper wire, so that the fusing point can form a firm and uniform connection, improve the repair quality, and the joint formed after the copper liquid cools and solidifies has good conductivity, so that the conductivity of the copper wire after reconnecting can be close to the conductivity of the original copper wire.
[0018] 3. When the rotating wheel moves downward and fits on the outer surface of the copper wire for transmission, the paint can be used to mark the connection part of the copper wire, so as to help the staff quickly identify the repaired position, facilitate key inspection and testing of it, make the repaired quality meet the standard, and the marking can also remind the staff to pay attention during the operation process, avoiding potential safety hazards caused by ignoring the repair point. BRIEF DESCRIPTION OF THE DRAWINGS
[0019] Figure 1 It is a three-dimensional structural schematic diagram of the present invention.
[0020] Figure 2 It is a partial cross-sectional view of the cooling component of the present invention.
[0021] Figure 3 This is a schematic structural diagram of the marking component of the present invention.
[0022] Figure 4 This is a cross-sectional structural view of the heating component of the present invention.
[0023] Figure 5 This is a cross-sectional structural view of the hot melt component of the present invention.
[0024] Figure 6 This is a schematic structural diagram of the replenishing component of the present invention.
[0025] Figure 7 This is a cross-sectional structural view of the reset component of the present invention.
[0026] The reference numerals of each component in the drawings are as follows: 1 - wire drawing machine, 11 - winding component, 12 - wire drawing module, 13 - guide wheel, 14 - nozzle, 15 - liquid extraction pump, 16 - delivery pipeline, 17 - filter plate, 18 - servo motor, 19 - rotating lead screw, 110 - moving part, 111 - sliding frame, 112 - rotating lead screw, 113 - driving motor, 114 - guide frame, 115 - heater, 116 - sliding block, 1161 - support plate, 117 - heat conducting part, 2 - storage tank, 21 - support frame, 22 - first liquid passing pipe, 23 - second liquid passing pipe, 24 - guide rod, 25 - fixing column, 26 - extrusion part, 27 - reset spring, 28 - protective cover, 29 - communicating pipe, 210 - limiting frame, 211 - fixing frame, 3 - support part, 31 - rolling wheel, 32 - rotating wheel, 33 - storage frame, 34 - connecting spring, 35 - fixing part, 36 - sliding part. Detailed implementation manners
[0027] Next, the technical solutions in the embodiments of the present invention will be clearly and completely described in conjunction with the accompanying drawings in the embodiments of the present invention. Obviously, the described embodiments are only a part of the embodiments of the present invention, rather than all the embodiments. All other embodiments obtained by those of ordinary skill in the art based on the embodiments of the present invention without creative efforts shall fall within the protection scope of the present invention.
[0028] Next, in conjunction with the attached Figures 1 - 7 A specific implementation example of the present invention will be elaborated in detail.
[0029] Referring to the attached Figures 1 - 2, A copper wire processing device for preparing tinned copper wire, including a wire drawing machine 1. A winding assembly 11 is arranged on the right side of the wire drawing machine 1. A driving element is arranged inside the winding assembly 11. The winding assembly 11 is used for winding the processed copper wire. The upper surface of the wire drawing machine 1 is detachably connected with a wire drawing module 12, and the wire drawing module 12 is used for wire drawing of the copper wire. The upper surface of the wire drawing machine 1 is symmetrically and rotatably connected with guide wheels 13, and the guide wheels 13 are used for guiding the copper wire. A liquid extraction pump 15 is fixedly connected to the front side of the wire drawing machine 1. The top end of the liquid extraction pump 15 is connected through to a spray head 14. The liquid extraction pump 15 is used for delivering the coolant to the inside of the spray head 14. The lower surface of the spray head 14 is fixedly connected to the upper surface of the wire drawing machine 1, and the spray head 14 is used for cooling the copper wire. The bottom end of the liquid extraction pump 15 is connected through to a delivery pipeline 16, and the rear end of the delivery pipeline 16 is connected through to a filter plate 17. The outer surface of the filter plate 17 is fixedly connected to the inside of the wire drawing machine 1, and the filter plate 17 is used for filtering the coolant inside the wire drawing machine 1.
[0030] As described in the background art, during the process of straightening the copper wire, when the tension distribution at different positions is uneven, some parts will bear excessive tensile force, resulting in local fracture. And the fracture of the copper wire will cause the production to suddenly stop, requiring the operator to perform manual repair, which not only wastes time but also affects the overall production efficiency.
[0031] Refer to the attached Figures 3 - 5 , To solve the problem of manual repair, the following technical solution is adopted in this embodiment: A servo motor 18 is fixedly connected to the left side of the upper surface of the wire drawing machine 1. The output end of the servo motor 18 is fixedly connected with a rotating lead screw 19. The servo motor 18 is used to drive the rotating lead screw 19 to rotate. The outer surface of the rotating lead screw 19 is threadedly connected with a moving part 110. The rotating lead screw 19 is used to drive the moving part 110 to move left and right. The outer surface of the left side of the moving part 110 is slidably connected with a sliding frame 111. The rear ends of the moving part 110 and the sliding frame 111 are both slidably connected to the upper surface of the wire drawing machine 1.
[0032] When the wire drawing machine 1 processes the copper wire, at this time, the copper wire can be placed between the outer surfaces of the guide wheels 13, and the wire drawing module 12 can perform wire drawing on the copper wire. When the winding assembly 11 rotates, it can collect the copper wire. When the copper wire breaks during the wire drawing process, at this time, the output shaft of the servo motor 18 can drive the rotating lead screw 19 to rotate. When the rotating lead screw 19 rotates, it can drive the moving part 110 to move to the copper wire fracture point. When the moving part 110 moves, it can drive the sliding frame 111 to move simultaneously, so that the fracture point of the copper wire can be located between the inside of the moving part 110 and the sliding frame 111, thereby enabling the fracture position of the copper wire to be quickly confirmed.
[0033] A driving motor 113 is fixedly connected to the upper surface of the moving member 110. The output shaft of the driving motor 113 is fixedly connected to a rotating lead screw 112. The driving motor 113 is used to drive the rotating lead screw 112 to rotate. The outer surface of the left end of the rotating lead screw 112 is threadedly connected to the upper surface of the sliding frame 111. The rotating lead screw 112 is used to drive the sliding frame 111 to slide left and right. A support plate 1161 is fixedly connected to the inner side of the moving member 110. A sliding block 116 is slidably connected to the outer surface of the top of the support plate 1161. Heat conducting members 117 are fixedly connected to one side of the sliding block 116 and the support plate 1161 respectively. The sliding block 116 is used to drive the heat conducting member 117 at the top to move downward. The inner sides of the heat conducting members 117 are used to limit the broken copper wire. Both ends of the heat conducting member 117 are made of heat insulating materials.
[0034] A guide frame 114 is fixedly connected to the right side of the sliding frame 111. Through grooves are formed in the inner sides of the guide frame 114. The right end of the through groove of the guide frame 114 is inclined. The right end of the through groove of the guide frame 114 is in extrusion fit with the outer surface of the front side of the sliding block 116. When the guide frame 114 moves, it is used to drive the sliding block 116 to move up and down. A heater 115 is fixedly connected to the inner side of the sliding frame 111. The heater 115 is used to heat the outer surface of the heat conducting member 117.
[0035] After the moving member 110 and the sliding frame 111 locate the breakage point, when the driving motor 113 drives the rotating lead screw 112 to rotate at this time, the rotating lead screw 112 can cause the sliding frame 111 to slide to the right. As the sliding frame 111 drives the guide frame 114 to slide to the right, the inner side of the inclined groove at the right end of the guide frame 114 can squeeze the front side of the sliding block 116, prompting the sliding block 116 to drive the heat conducting member 117 at the top to move downward, so that the inner sides of the heat conducting members 117 can clamp the broken copper wire. And when the sliding frame 111 slides to the right, it can drive the heater 115 to slide at the same time. When the heater 115 slides to the right, it can be sleeved on the outer surface of the heat conducting member 117. As the heater 115 generates heat by itself, it can transfer the heat to the middle of the heat conducting member 117. When the middle of the heat conducting member 117 generates heat, it can transfer the heat to the breakage point of the copper wire, heat the breakage point of the copper wire, melt the two ends of the copper wire and reconnect them together, so that the repair of the copper wire can be completed in a short time and the production interruption caused by pulling breakage can be reduced.
[0036] Since both ends of the heat conducting member 117 are made of insulating materials, the heat generated by the heat conducting member 117 will not affect the two ends, so that the copper wire at both ends of the heat conducting member 117 can be prevented from being melted.
[0037] When the connection of the broken copper wire is completed, the output shaft of the driving motor 113 can drive the rotating screw rod 112 to rotate in the reverse direction, so that the sliding frame 111 can slide to the left. When the sliding frame 111 slides to the left, it can drive the heater 115 to slide at the same time, so that the heater 115 can be disengaged from the outer surface of the heat conducting member 117. And when the sliding frame 111 slides to the left, it can also drive the guiding frame 114 to slide at the same time. When the guiding frame 114 slides to the left, the inclined groove at the right end of the guiding frame 114 can squeeze the outer surface of the front side of the sliding block 116, so that the sliding block 116 can drive the heat conducting member 117 at the top to move upward and reset, prompting the inner sides of the heat conducting member 117 to disengage from the clamped connected copper wire. At this time, the winding assembly 11 can continue to drive the connected copper wire to move to the right and wind it up.
[0038] When the copper wire is fuse-connected, voids will be generated at the break of the copper wire, and these voids will cause the strength of the joint to be lower than that of the original copper wire, resulting in a decrease in the repair quality of the copper wire and making it prone to break again.
[0039] Reference appendix Figures 5 - 7 Referring to the attached
[0040] As the heat conducting member 117 at the top moves downward to limit the broken copper wire, the heat conducting member 117 at the top can drive the second liquid passage pipe 23 and the connecting pipe 29 to move downward. As the moving member 110 drives the guide frame 114 to move to the right, the extrusion member 26 can move simultaneously with the guide frame 114, and when the guide frame 114 moves to the right, it can drive the extrusion member 26 to move simultaneously. When the extrusion member 26 moves to the right, the outer surface of the extrusion member 26 can squeeze the outer surface of the front side of the fixed column 25, so that the fixed column 25 can move downward. When the outer surface of the guide rod 24 slides downward, the fixed column 25 can pass through the second The liquid through pipe 23 drives the connecting pipe 29 to slide downward, and the copper liquid inside the storage tank 2 can flow into the second liquid through pipe 23 along the first liquid through pipe 22. The second liquid through pipe 23 can transport the copper liquid to the inside of the connecting pipe 29. When the connecting pipe 29 slides downward, the transverse groove at the bottom of the connecting pipe 29 can be interconnected with the inner side of the heat conductor 117. At this time, the copper liquid can be injected into the inner side of the heat conductor 117 along the transverse groove at the bottom of the connecting pipe 29, so that the copper liquid can be injected into the broken part of the copper wire, filling the gap at the broken part of the copper wire, so that the melting point can form a strong and uniform connection, thereby improving the repair quality.
[0041] A return spring 27 is fixedly connected to the lower surface of the top of the guide rod 24, and the bottom end of the return spring 27 is fixedly connected to the upper surface of the fixed column 25. The return spring 27 is used to drive the fixed column 25 to return and slide. A protective cover 28 is fixedly connected to the upper surface of the fixed column 25. The protective cover 28 is used to protect the return spring 27. When the fixed column 25 moves downward, the protective cover 28 can be driven to move at the same time, and the return spring 27 can also be prompted to move to a stretched state.
[0042] Both ends of the heat conducting member 117 at the bottom are fixedly connected to a fixing frame 211, and the front end of the fixing frame 211 is rotatably connected to a limiting frame 210. When the heat conducting member 117 at the top moves downward, the copper wire can be clamped between the limiting frame 210 and the inner side of the fixing frame 211, thereby preventing the copper wire from moving during connection.
[0043] When the broken copper wire is connected, the guide frame 114 can drive the extrusion piece 26 to return to its original position and slide to the left. When the extrusion piece 26 slides to the left, it will be out of contact with the outer surface of the fixed column 25, and the return spring 27 in the pulled state can drive the fixed column 25 to slide upward. When the fixed column 25 slides upward on the outer surface of the guide rod 24, the connecting tube 29 can be driven by the second liquid passing tube 23 to slide at the same time. When the connecting tube 29 slides upward on the inner side of the top heat conductor 117, the transverse groove at the bottom of the connecting tube 29 can slide to the inner side of the top heat conductor 117, so that the inner side of the top heat conductor 117 can block the transverse groove at the bottom of the connecting tube 29, thereby preventing the copper liquid from flowing out.
[0044] When the guiding frame 114 slides leftward for reset, the heat-conducting member 117 at the top can move upward. As the heat-conducting member 117 at the top moves upward, it can drive the second liquid pipe 23 to slide inward of the first liquid pipe 22 through the connecting pipe 29. When the heat-conducting member 117 at the top moves upward, it can also cause the copper wire to be disengaged from the clamping between the inner sides of the limiting frame 210 and the fixed frame 211. As the winding assembly 11 rotates, the connected copper wire can be wound.
[0045] When the broken copper wire is connected, it is difficult for subsequent workers to quickly and accurately identify the repaired position during the inspection of the copper wire, resulting in the inability to conduct key inspections and tests on it, increasing the risk of missed inspections.
[0046] Reference appendix Figures 2 - 3 To solve the problem of difficult detection of the specific position after the copper wire is repaired, the following technical solution is adopted in this embodiment: Symmetrically fixed connections are provided on the right side of the moving member 110 with support members 3. The moving member 110 is used to drive the support members 3 to move. A rolling wheel 31 is rotatably connected between the inner sides of the support members 3. The rolling wheel 31 is used to guide the copper wire. The outer surfaces of the tops of the support members 3 are all slidably connected with fixing members 35. A rotating wheel 32 is rotatably connected between the inner sides of the sliding members 36. The sliding members 36 are used to drive the rotating wheel 32 to move up and down. The rotating wheel 32 is used to mark the connection of the copper wire. The right side of the guiding frame 114 is fixedly connected with a fixing member 35. The bottom end of the fixing member 35 is inclined. The inclined outer surface of the bottom end of the fixing member 35 is in extrusion fit with the outer surface of the rear sliding member 36. The fixing member 35 is used to drive the sliding member 36 to slide downward.
[0047] Connection springs 34 are fixedly sleeved on the outer surfaces of the support members 3. The tops of the connection springs 34 are fixedly connected to the bottoms of the sliding members 36. The connection springs 34 are used to drive the sliding members 36 to move for reset. A storage frame 33 is rotatably connected between the mutually adjacent ends of the sliding members 36. The inside of the storage frame 33 is used to fill pigments. The storage frame 33 is used to supplement the pigments on the outer surface of the rotating wheel 32.
[0048] When the connection of the broken copper wire is completed, the moving member 110 can drive the sliding member 36 to move simultaneously through the support member 3. When the sliding member 36 moves to the right, the outer surface of the rear sliding member 36 can be squeezed by the inclined surface of the fixing member 35, prompting the rear sliding member 36 to slide downward on the outer surface of the rear support member 3. When the rear sliding member 36 slides, it can drive the front rotating wheel 32 to slide simultaneously through the rotating wheel 32. When the two sliding members 36 slide simultaneously, the connecting spring 34 can be moved to a compressed state, and the pigment inside the storage frame 33 can be coated on the outer surface of the rotating wheel 32. As the rotating wheel 32 moves downward, the outer surface of the rotating wheel 32 can be attached to the outer surface of the copper wire. When the winding assembly 11 drives the copper wire to be wound, the rotating wheel 32 can adhere the pigment to the outer surface of the copper wire, thereby being able to mark the connected copper wire, helping the quality inspection personnel quickly identify the repaired position, facilitating key inspection and testing thereof, and making the quality after repair meet the standard.
[0049] When the marking of the copper wire by the rotating wheel 32 is completed, the moving member 110 can drive the sliding member 36 to move leftward for reset through the support member 3. When the rear sliding member 36 moves leftward, it can be separated from the inclined surface of the fixing member 35. The connecting spring 34 in a compressed state can drive the sliding member 36 to move upward. When the sliding member 36 moves upward, it can drive the rotating wheel 32 to move simultaneously, so that the outer surface of the rotating wheel 32 can be separated from the outer surface of the copper wire, thereby avoiding continuous marking of the copper wire by the rotating wheel 32.
[0050] Although the present disclosure has been shown and described with reference to specific exemplary embodiments thereof, those skilled in the art should understand that various changes in form and detail may be made therein without departing from the spirit and scope of the present disclosure as defined by the appended claims and their equivalents. Therefore, the scope of the present disclosure should not be limited to the above embodiments, but should be determined not only by the appended claims but also by the equivalents of the appended claims.
Claims
1. A copper wire processing device for preparing tinned copper wire, comprising a wire drawing machine (1), a winding assembly (11) is arranged on one side of the wire drawing machine (1), a driving element is arranged inside the winding assembly (11), a wire drawing module (12) is detachably connected to the upper surface of the wire drawing machine (1), and guide wheels (13) are symmetrically and rotatably connected to the upper surface of the wire drawing machine (1), characterized in that, A servo motor (18) is fixedly connected to one side of the upper surface of the wire drawing machine (1), a rotating screw (19) is fixedly connected to the output shaft of the servo motor (18), a moving member (110) is threadedly connected to the outer surface of the rotating screw (19), a sliding frame (111) is slidably connected to one side of the moving member (110), one end of the moving member (110) and the sliding frame (111) are both slidably connected to the upper surface of the wire drawing machine (1), a support plate (1161) is fixedly connected to the inner side of the moving member (110), and the support plate (1161) is ) is slidably connected to a sliding block (116) on the outer surface of the top, a heat conducting member (117) is fixedly connected between the support plate (1161) and the inner side of the sliding block (116), a guide frame (114) is fixedly connected to one side of the sliding frame (111), a sliding groove is provided on the inner side of the guide frame (114), and one end of the sliding groove of the guide frame (114) is inclined, the inner side of the sliding groove of the guide frame (114) is squeezed and matched with one end of the sliding block (116), and a heater (115) is detachably connected to the inner side of the sliding frame (111).
2. The copper wire processing device for preparing tinned copper wire according to claim 1, characterized in that, A liquid extraction pump (15) is fixedly connected to one side of the wire drawing machine (1), the top end of the liquid extraction pump (15) is connected to a nozzle (14), the lower surface of the nozzle (14) is fixedly connected to the upper surface of the wire drawing machine (1), the bottom end of the liquid extraction pump (15) is connected to a delivery pipeline (16), one end of the delivery pipeline (16) is connected to a filter plate (17), the outer surface of the filter plate (17) is fixedly connected to the inner side of the wire drawing machine (1), and both ends of the heat conductive member (117) are made of heat insulating material.
3. The copper wire processing device for preparing tinned copper wire according to claim 2, characterized in that, The upper surface of the moving member (110) is fixedly connected to a driving motor (113), the output shaft of the driving motor (113) is fixedly connected to a rotating screw rod (112), and the outer surface of the rotating screw rod (112) is threadedly connected to the upper surface of one side of the sliding frame (111).
4. The copper wire processing device for preparing tinned copper wire according to claim 1, characterized in that, The upper surface of the movable member (110) is fixedly connected to a support frame (21), the inner side of the support frame (21) is fixedly connected to a storage tank (2), the upper surface of the storage tank (2) is provided with a feed port, the bottom end of the storage tank (2) is provided with a first liquid pipe (22), the inner side of the bottom end of the first liquid pipe (22) is slidably provided with a second liquid pipe (23), the bottom of the second liquid pipe (23) is provided with a plurality of connecting pipes (29), the outer surfaces of the connecting pipes (29) are slidably connected to the inner side of the top sliding block (116), and the bottom ends of the connecting pipes (29) are symmetrically provided with transverse grooves.
5. A copper wire processing device for preparing tinned copper wire according to claim 4, characterized in that, A fixing column (25) is fixedly connected to the outer surface of the bottom end of the second liquid passing pipe (23). A guiding rod (24) is fixedly connected to the upper surface of the top sliding block (116). The inner side of the fixing column (25) is slidably connected to the outer surface of the guiding rod (24). An extrusion member (26) is fixedly connected to one side of the guiding frame (114). The outer surface of one side of the fixing column (25) is in extrusion fit with the outer surface of the extrusion member (26).
6. The copper wire processing device for preparing tinned copper wire according to claim 5, characterized in that, A return spring (27) is fixedly connected to the lower surface of the top of the guiding rod (24). The bottom end of the return spring (27) is fixedly connected to the upper surface of the fixing column (25). A protective cover (28) is fixedly connected to the upper surface of the fixing column (25).
7. A copper wire processing device for preparing tinned copper wire according to claim 6, characterized in that, Fixing frames (211) are fixedly connected to both ends of the bottom sliding block (116). Limiting frames (210) are rotatably connected to one side of each of the fixing frames (211).
8. The copper wire processing device for preparing tinned copper wire according to claim 1, characterized in that, A support member (3) is fixedly connected to one side of the moving member (110). A rolling wheel (31) is rotatably connected between the inner sides of the support member (3). A sliding member (36) is slidably connected between the outer surfaces of the top of the support member (3). A rotating wheel (32) is rotatably connected between the inner sides of the sliding member (36). Connecting springs (34) are fixedly sleeved on the outer surfaces of the support member (3). The top ends of the connecting springs (34) are fixedly connected to the bottom end of the sliding member (36). A fixing member (35) is fixedly connected to one side of the spray head (14). The bottom end of the fixing member (35) is inclined. The inclined outer surface of the bottom end of the fixing member (35) is in extrusion fit with the outer surface of one of the sliding members (36).
9. The copper wire processing device for preparing tinned copper wire according to claim 8, characterized in that, A storage frame (33) is fixedly connected between the outer surfaces of the inner ends of the sliding member (36).