Vertical coaxial multi-process continuous processing photovoltaic copper wire production equipment and process
By integrating tin plating, positioning, and drying mechanisms into a vertical coaxial multi-process continuous processing equipment, the problem of synchronous processing rhythm and conveying status in photovoltaic copper wire production has been solved, achieving efficient and uniform copper wire processing and improving the reliability and practicality of the equipment.
Patent Information
- Application Number
- CN202511456843.7
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-10-13
- Publication Date
- 2025-11-07
- Estimated Expiration
- Not applicable · inactive patent
AI Technical Summary
Existing photovoltaic copper wire production equipment struggles to synchronize the processing pace of each step with the copper wire conveying status, resulting in insufficient processing quality and efficiency, and low equipment reliability.
The vertical coaxial multi-process continuous processing equipment integrates components such as tin plating mechanism, positioning mechanism, and drying mechanism to realize synchronous conveying and multi-process processing of copper wire. The coordination of motor-driven rotating rod, reciprocating rod, lifting plate, brush, limiting plate, etc., ensures the coordination accuracy of each process.
This improves the reliability and practicality of photovoltaic copper wire production equipment, ensures the uniformity and convenience of copper wire processing, and enhances processing quality and efficiency.
Smart Images

Figure CN120900867A_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The present application relates to the technical field of photovoltaic copper wire production, in particular to a vertical coaxial multi-process continuous processing photovoltaic copper wire production equipment and process. BACKGROUND
[0002] The photovoltaic copper wire is a special copper wire for the photovoltaic industry, mainly used as a connecting wire inside the photovoltaic module and a winding wire of the photovoltaic inverter, which has the characteristics of high electrical conductivity, good flexibility and oxidation resistance, can ensure stable current transmission of the photovoltaic system and reduce line loss, and its specifications and performance need to meet the specific standards of the photovoltaic industry to ensure efficient operation and long-term reliability of the photovoltaic system. In order to facilitate the continuity of the photovoltaic copper wire processing, a vertical coaxial multi-process continuous processing photovoltaic copper wire production equipment and process are needed.
[0003] The vertical coaxial multi-process continuous processing photovoltaic copper wire production equipment is a special equipment with vertical layout, integrating melting, rolling, stretching, annealing and tin plating multi-process modules. Its production process is to make the copper raw material pass through each process continuously from top to bottom in the equipment to realize high-precision and high-efficiency production and output copper wire meeting the strict standards of the photovoltaic industry.
[0004] The photovoltaic copper wire production equipment on the market is composed of a vertical rack and coaxial processing modules. In use, the copper wire passes through each module vertically along the rack to facilitate multi-process continuous flow. In order to improve the processing continuity, the prior art adopts coaxial integrated layout of the modules for synchronous feeding. In order to drive the actions of each process, the prior art adopts multiple motors to drive different processing equipment for segmented and batch processing of the copper wire. However, this way is difficult to synchronize the processing rhythm of each process and the copper wire conveying state, and the coordination precision is insufficient when the multi-processes are connected, which affects the copper wire processing quality and production efficiency, thereby reducing the reliability of the device. SUMMARY
[0005] In view of the deficiencies of the prior art, the present application provides a vertical coaxial multi-process continuous processing photovoltaic copper wire production equipment and process, which solves the problem that the photovoltaic copper wire production equipment is difficult to synchronize the processing rhythm of each process and the copper wire conveying state.
[0006] To achieve the above purpose, the present application realizes the following technical scheme: a vertical coaxial multi-process continuous processing photovoltaic copper wire production equipment and process, comprising a mounting cover, a hollow plate is communicated to the right side of the mounting cover, a tin plating mechanism is arranged in the mounting cover, the tin plating mechanism is used for tin plating processing while conveying the copper wire, a positioning mechanism is arranged at the top of the mounting cover, the positioning mechanism is used for fixing and operating copper wires of different specifications, a drying mechanism is arranged at the bottom of the mounting cover, the drying mechanism can clean and dry the copper wire after tin plating.
[0007] The tinning mechanism includes a motor fixedly connected to the inner top of the mounting cover, an output end of the motor is fixedly connected with a rotating rod, the outer part of the rotating rod is fixedly connected with a reciprocating rod, the outer side of the reciprocating rod is threadedly connected with a lifting plate one, the outer side of the lifting plate one is fixedly connected with a brush, the outer side of the hollow plate is rotatably connected with a handle one, the outer side of the handle one penetrates through the hollow plate and is fixedly connected with a bidirectional threaded rod, the outer part of the bidirectional threaded rod is threadedly connected with a limiting plate on the upper side and the lower side, the outer left side of the mounting cover is fixedly connected with a plurality of supports, the left side of the mounting cover is provided with a spraying assembly, and the outer part of the mounting cover is provided with an observation assembly.
[0008] Preferably, the positioning mechanism includes a hollow frame, the hollow frame is communicated at the top of the mounting cover, the inner left side of the hollow frame is slidably connected with a sliding groove ring, the bottom of the sliding groove ring is rotatably connected with a spring telescopic plate around, the bottom of the spring telescopic plate is rotatably connected with a rubber clamp, the top of the outer side of the rotating rod is fixedly connected with a circular gear one, the inner front side of the hollow frame is rotatably connected with a gear ring one, the gear ring one is meshingly connected with the circular gear one, the inner part of the gear ring one is fixedly connected with a spring block around, the outer side of the rubber clamp is fixedly connected with the spring block, the inner side of the hollow frame is provided with an operation assembly, and the outer wall of the mounting cover is provided with a holding assembly.
[0009] Preferably, the drying mechanism includes a hollow cover, the hollow cover is communicated at the bottom of the mounting cover, the inner bottom of the hollow cover is fixedly connected with a heating plate, the inner middle of the hollow cover is fixedly connected with a ventilation plate, the right side of the ventilation plate is rotatably connected with a fan blade, the outer side of the fan blade is fixedly connected with a bevel gear two, the bottom of the rotating rod is fixedly connected with a bevel gear one, the bevel gear one is meshingly connected with the bevel gear two, the left side of the hollow cover is provided with a winding assembly, and the bottom of the rotating rod is provided with a cleaning assembly.
[0010] Preferably, the spraying assembly includes a storage box, the storage box is fixedly connected to the left middle of the mounting cover, the right side of the storage box penetrates through the mounting cover and is communicated with a conveying belt, the outer side of the conveying belt is communicated with a spray head, and the spray head is fixedly connected with the lifting plate one.
[0011] Preferably, the observation assembly includes a positioning frame, two positioning frames are respectively communicated on the front side and the rear side of the outer part of the mounting cover, and the inner side of the observation assembly is fixedly connected with an observation window.
[0012] Preferably, the operation assembly includes a knob, the knob is rotatably connected to the top of the hollow frame, the bottom of the knob penetrates through the hollow frame and is fixedly connected with a threaded column, the outer side of the threaded column is threadedly connected with a lifting plate two, and the bottom of the lifting plate two is slidably connected with the sliding groove ring.
[0013] Preferably, the holding assembly comprises hollow blocks, two of which are fixedly connected to the front and rear sides of the outer wall of the mounting cover, and the inner side of the hollow block is rotatably connected with the handle two.
[0014] Preferably, the winding assembly comprises a clamping block, which is fixedly connected to the left side of the hollow cover, and the inner side of the clamping block is clamped with the winding disc.
[0015] Preferably, the cleaning assembly comprises a circular gear two, the bottom end of the rotating rod is fixedly connected with the circular gear two, the bottom left side of the inner wall of the mounting cover is rotatably connected with a gear ring two, the gear ring two is meshingly connected with the circular gear two, and the inner side of the gear ring two is fixedly connected with the cleaning cotton.
[0016] A production process of a vertical coaxial multi-process continuous processing photovoltaic copper wire production equipment, comprising the following steps:
[0017] S1, insert the copper wire into the mounting cover, start the motor to drive the rotating rod to rotate, the rotating rod synchronously drives the reciprocating rod to rotate, the reciprocating rod drives the lifting plate one to move up and down reciprocatingly, and then drives the brush to move up and down synchronously, the copper wire is coated with paint or electroplating solution on the brush for coating processing, and meanwhile, rotating the bidirectional threaded rod can drive the limiting plate to move up and down, so as to adjust the reciprocating position of the lifting plate one, realize the synchronization of copper wire conveying and spraying or electroplating.
[0018] S2, in the rotating process of the rotating rod, the circular gear one is synchronously driven to rotate, the circular gear one drives the gear ring one to rotate, and the copper wire in conveying is rotated, so that the uniformity of subsequent processing or spraying treatment is improved.
[0019] S3, move the sliding groove ring to drive the bottom spring expansion plate to rotate, the spring expansion plate expands or contracts itself when rotating, pushes the rubber clamp along the spring block, and fixes the copper wire of different specifications through the displacement of the rubber clamp, so as to realize the fixing and rotary driving of copper wires of different specifications.
[0020] S4, the rotating rod rotates synchronously to drive the bevel gear one to rotate, the bevel gear one drives the bevel gear two and the fan blade to rotate through meshing transmission, after starting the heating plate, the fan blade drives the airflow to circulate, the heating plate heats the airflow, the hot airflow circulates in the hollow cover and passes through the ventilation plate, the copper wire after spraying or electroplating is dried, the paint pollution of the device is prevented, and subsequent storage or processing is facilitated.
[0021] The application provides a vertical coaxial multi-process continuous processing photovoltaic copper wire production equipment and process.
[0022] 1. The application is characterized in that the copper wire is inserted into the installation cover, the motor is started to drive the rotating rod to rotate, the rotating rod synchronously drives the reciprocating rod, the reciprocating rod drives the lifting plate to move up and down, the lifting plate synchronously drives the brush to move up and down, and the copper wire is coated with the paint or electroplating solution on the brush, at this time, the rotating bidirectional threaded rod drives the limiting plate to move up and down, the reciprocating position of the lifting plate is limited and adjusted by the limiting plate, the processing rhythm of each process is synchronized with the copper wire conveying, and therefore the reliability of the device is improved.
[0023] 2. The application is characterized in that the rotating rod drives the circular gear to rotate, the circular gear drives the gear ring to rotate, the copper wire in the conveying process rotates, the uniformity of the copper wire in the subsequent processing or spraying is effectively improved, at this time, the moving sliding groove ring drives the bottom spring expansion plate to rotate, the spring expansion plate expands and contracts itself while rotating, and the rubber clamp is moved along the spring block, different specifications of copper wires are fixed by the movement of the rubber clamp, and therefore the fixing and rotating drive of different specifications of copper wires are realized, and the practicability of the device is improved.
[0024] 3. The application is characterized in that the rotating rod drives the bevel gear to rotate, the bevel gear drives the bevel gear two to rotate, the bevel gear two drives the fan blades to rotate, at this time, the heating plate is started, the fan blades drive the airflow to circulate, the heating plate heats the airflow, the heated airflow circulates in the hollow cover, and then passes through the ventilation plate to act on the copper wire after spraying or spraying electroplating solution, the copper wire is dried, the paint on the outer wall of the copper wire does not pollute the device, the copper wire is directly stored or processed subsequently, and therefore the convenience of the device is improved. BRIEF DESCRIPTION OF DRAWINGS
[0025] Figure 1 It is a perspective view of the application;
[0026] Figure 2 It is a front view of the application;
[0027] Figure 3 It is a side view of the application;
[0028] Figure 4 It is a partial structure schematic view of the application;
[0029] Figure 5 It is a partial structure exploded view of the application;
[0030] Figure 6 It is a partial structure display view of the tinning mechanism of the application;
[0031] Figure 7 It is a partial structure exploded view of the positioning mechanism of the application;
[0032] Figure 8 Partial structure exploded view of the drying mechanism of the present application.
[0033] Wherein, 1, installation cover; 2, tinning mechanism; 21, motor; 22, rotating rod; 23, reciprocating rod; 24, lifting plate one; 25, brush; 26, two-way threaded rod; 27, spraying assembly; 271, storage box; 272, conveying belt; 273, spray head; 28, observation assembly; 281, positioning frame; 282, observation window; 209, handle one; 210, limiting plate; 211, support; 3, positioning mechanism; 31, circular gear one; 32, gear ring one; 33, sliding groove ring; 34, spring telescopic plate; 35, rubber clamp; 36, spring block; 37, hollow frame; 38, operation assembly; 381, threaded column; 382, lifting plate two; 383, knob; 39, holding assembly; 391, hollow block; 392, handle two; 4, drying mechanism; 41, hollow cover; 42, heating plate; 43, ventilation plate; 44, bevel gear one; 45, bevel gear two; 46, fan blade; 47, winding assembly; 471, clamping block; 472, winding disc; 48, cleaning assembly; 481, circular gear two; 482, gear ring two; 483, cleaning cotton; 5, hollow plate. DETAILED DESCRIPTION
[0034] The technical solutions in the embodiments of the present application will be clearly and completely described below with reference to the drawings in the specification of the present application. Obviously, the described embodiments are only part of the embodiments of the present application, rather than all the embodiments. Based on the embodiments in the present application, all other embodiments obtained by those skilled in the art without creative work fall within the scope of protection of the present application.
[0035] Embodiment one:
[0036] With reference to Figure 1 , Figure 4 and Figure 6 , the present application provides a vertical coaxial multi-process continuous processing photovoltaic copper wire production equipment and process, which comprises an installation cover 1, a hollow plate 5 is communicated to the right side of the installation cover 1, a tinning mechanism 2 is arranged in the installation cover 1, the tinning mechanism 2 is used for tinning processing while conveying the copper wire, a positioning mechanism 3 is arranged at the top of the installation cover 1, the positioning mechanism 3 is used for fixing and operating copper wires of different specifications, a drying mechanism 4 is arranged at the bottom of the installation cover 1, the drying mechanism 4 can clean and dry the copper wire after tinning;
[0037] The output end of the motor 21 is fixedly connected with a rotating rod 22, the outer side of the rotating rod 22 is fixedly connected with a reciprocating rod 23, the rotation of the rotating rod 22 drives the outer reciprocating rod 23 to rotate, the outer side of the reciprocating rod 23 is screwedly connected with a lifting plate one 24, the outer side of the lifting plate one 24 is fixedly connected with a brush 25, the rotation of the reciprocating rod 23 drives the lifting plate one 24 and the brush 25 to move up and down, the outer side of the hollow plate 5 is rotatably connected with a handle one 209, the outer side of the handle one 209 penetrates through the hollow plate 5 and is fixedly connected with a bidirectional threaded rod 26, rotating the handle one 209 can drive the bidirectional threaded rod 26 to rotate, the outer side of the bidirectional threaded rod 26 is screwedly connected with a limiting plate 210 on the upper side and the lower side, the rotation of the bidirectional threaded rod 26 drives the limiting plate 210 to move, the outer side of the left side of the mounting cover 1 is fixedly connected with a plurality of supports 211, the left side of the mounting cover 1 is provided with a spraying assembly 27, and the outer side of the mounting cover 1 is provided with an observation assembly 28;
[0038] Specifically, after the copper wire is inserted into the mounting cover 1, the motor 21 is started to drive the rotating rod 22 to rotate, the rotating rod 22 synchronously drives the reciprocating rod 23 to rotate, and then the reciprocating rod 23 drives the lifting plate one 24 to move up and down, the movement of the lifting plate one 24 drives the brush 25 to move up and down synchronously, the copper wire is coated by using the coating or electroplating solution on the brush 25, and meanwhile rotating the bidirectional threaded rod 26 can drive the limiting plate 210 to move up and down, the reciprocating stroke of the lifting plate one 24 is adjusted and limited through the limiting plate 210, the synchronization of copper wire conveying, spraying and electroplating operation is realized, and the motor 21 can use a YL90-750W vertical motor.
[0039] With reference to Figure 3 , Figure 5 and Figure 7 , the positioning mechanism 3 includes a hollow frame 37, the hollow frame 37 is communicated at the top of the mounting cover 1, the inner left side of the hollow frame 37 is slidably connected with a sliding groove ring 33, the bottom of the sliding groove ring 33 is rotatably connected with a spring telescopic plate 34 around, the sliding groove ring 33 can drive the spring telescopic plate 34 to move by moving, the bottom of the spring telescopic plate 34 is rotatably connected with a rubber clamp 35, the spring telescopic plate 34 can drive the rubber clamp 35 to move by rotating and stretching, the outer top of the rotating rod 22 is fixedly connected with a circular gear one 31, the inner front side of the hollow frame 37 is rotatably connected with a gear ring one 32, the gear ring one 32 is meshedly connected with the circular gear one 31, the circular gear one 31 can drive the gear ring one 32 to rotate by rotating, the inner side of the gear ring one 32 is fixedly connected with a spring block 36 around, the outer side of the rubber clamp 35 is fixedly connected with the spring block 36, and the rubber clamp 35 can move along the spring block 36, the inner side of the hollow frame 37 is provided with an operation assembly 38, and the outer wall of the mounting cover 1 is provided with a holding assembly 39;
[0040] Specific, rotating rod 22 rotation will drive the circular gear 31 rotation, circular gear 31 further drive ring 32 rotation, the copper wire in the conveying with rotation, improve the uniformity of subsequent processing or spray processing, while moving the chute ring 33 will push the bottom of the spring expansion plate 34 rotation, spring expansion plate 34 in the rotation process with its own expansion, along the spring block 36 push rubber clamp 35 movement, through the displacement of rubber clamp 35 to realize the fixed different specifications of copper wire, so as to achieve different specifications of copper wire fixed and rotating drive function.
[0041] With reference to Figure 2 , Figure 4 and Figure 8 , drying mechanism 4 includes hollow cover 41, hollow cover 41 is communicated in the bottom of the installation cover 1, the inner side of the bottom of the hollow cover 41 is fixedly connected with the heating plate 42, starting the heating plate 42 can heat the inside of the hollow cover 41, the inner side of the middle of the hollow cover 41 is fixedly connected with the ventilation plate 43, the right side of the ventilation plate 43 is rotatably connected with the fan blade 46, the outer side of the fan blade 46 is fixedly connected with the bevel gear two 45, the bevel gear two 45 can drive the fan blade 46 rotation, the bottom of the rotating rod 22 is fixedly connected with the bevel gear one 44, the bevel gear one 44 is engaged with the bevel gear two 45, rotating the bevel gear one 44 can drive the bevel gear two 45 engaged with it rotation, the left side of the hollow cover 41 is provided with winding assembly 47, the bottom of the rotating rod 22 is provided with cleaning assembly 48;
[0042] Specific, rotating rod 22 rotation will drive the circular gear 31 rotation, circular gear 31 further drive ring 32 rotation, the copper wire in the conveying with rotation, improve the uniformity of subsequent processing or spray processing, while moving the chute ring 33 will push the bottom of the spring expansion plate 34 rotation, spring expansion plate 34 in the rotation process with its own expansion, along the spring block 36 push rubber clamp 35 movement, through the displacement of rubber clamp 35 to realize the fixed different specifications of copper wire, so as to achieve different specifications of copper wire fixed and rotating drive function, wherein the heating plate 42 can use JRD-DJR aluminum alloy heater.
[0043] With reference to Figure 1 , Figure 5 and Figure 6The spraying assembly 27 comprises a storage box 271 fixedly connected to the left middle part of the mounting cover 1, the right side of the storage box 271 penetrates through the mounting cover 1 and is communicated with a conveying belt 272, the outer side of the conveying belt 272 is communicated with a spray head 273, the spray head 273 can draw the coating or electroplating liquid in the storage box 271 out through the conveying belt 272, the spray head 273 is fixedly connected with the lifting plate 1, and the spray head 273 moves along with the movement of the lifting plate 1; the observation assembly 28 comprises a positioning frame 281, two positioning frames 281 are respectively communicated on the front and rear sides of the outer side of the mounting cover 1, and the inner side of the observation assembly 28 is fixedly connected with an observation window 282; the running process inside the device can be observed through the observation window 282, and operation can be performed in time.
[0044] Specifically, the coating or electroplating liquid in the storage box 271 can be sprayed on the surface of the copper wire through the conveying belt 272 by starting the spray head 273, so as to cooperate with the spraying or electroplating of the brush 25 on the copper wire, and the spraying position of the spray head 273 can be moved synchronously with the brush 25 through the flexible characteristics of the conveying belt 272 and the fixation of the spray head 273 and the lifting plate 1, the running state inside the device can be observed in real time through the observation window 282 on the inner side of the positioning frame 281, operation or adjustment can be performed in time, and the spray head 273 can use a YL-300 electric lifting spray head.
[0045] With reference to Figure 2 , Figure 4 and Figure 7 , the operation assembly 38 comprises a knob 383 rotationally connected to the top of the hollow frame 37, the bottom of the knob 383 penetrates through the hollow frame 37 and is fixedly connected with a threaded column 381, the outer side of the threaded column 381 is threadedly connected with a lifting plate 2 382, the bottom of the lifting plate 2 382 is slidingly connected with the sliding groove ring 33, the lifting plate 2 382 can be moved up and down by rotating the knob 383 and the threaded column 381 thereon, so as to move the sliding groove ring 33 up and down by the sliding movement of the lifting plate 2 382; the holding assembly 39 comprises a hollow block 391, two hollow blocks 391 are respectively fixedly connected to the front and rear sides of the outer wall of the mounting cover 1, the inner side of the hollow block 391 is rotationally connected with a handle 2 392, the device can be conveniently stored and carried by holding the hollow block 391 and the handle 2 392 thereon;
[0046] Specifically, the threaded column 381 can be rotated by rotating the knob 383, and the lifting plate 2 382 can be moved up and down by the rotation of the threaded column 381, so as to adjust the height position of the sliding groove ring 33 when moving up and down by the sliding movement of the lifting plate 2 382 and the sliding groove ring 33, the device can be conveniently held and carried by holding the handle 2 392 which can rotate along the hollow block 391, and the comfort during holding can be improved by the rotation of the hollow block 391.
[0047] With reference to Figure 4 、 Figure 5 and Figure 8 , the winding assembly 47 includes a clamping block 471 fixedly connected to the left side of the hollow cover 41, the inner side of the clamping block 471 is clamped with a winding disc 472, the copper wire can be conveniently wound through the winding disc 472, and the winding disc 472 can be conveniently replaced through clamping with the clamping block 471; the cleaning assembly 48 includes a circular gear two 481 fixedly connected to the bottom end of the rotating rod 22, a tooth ring two 482 is rotatably connected to the inner wall bottom left side of the mounting cover 1, the tooth ring two 482 is in meshing connection with the circular gear two 481, the inner side of the tooth ring two 482 is fixedly connected with cleaning cotton 483, the rotation of the rotating rod 22 can drive the circular gear two 481 and the tooth ring two 482 to rotate, and the cleaning cotton 483 is driven to rotate with the rotation of the tooth ring two 482, and further cleaning is performed;
[0048] Specifically, the copper wire processed is wound through the winding disc 472, and the winding disc 472 can be conveniently replaced through clamping with the clamping block 471, and the circular gear two 481 can be driven to rotate through the rotation of the rotating rod 22, and the tooth ring two 482 and the cleaning cotton 483 thereon in meshing connection with the circular gear two 481 are driven to rotate with the rotation, so that the copper wire is cleaned through the rotation of the cleaning cotton 483.
[0049] Embodiment two:
[0050] A production process of a vertical coaxial multi-process continuous processing photovoltaic copper wire production equipment, comprising the following steps:
[0051] S1, insert the copper wire into the mounting cover 1, start the motor 21 to drive the rotating rod 22 to rotate, the rotating rod 22 synchronously drives the reciprocating rod 23 to rotate, the reciprocating rod 23 drives the lifting plate one 24 to move up and down reciprocatingly, and in turn drives the brush 25 to move up and down synchronously, the copper wire is coated with the coating or electroplating liquid on the brush 25 for coating processing, and meanwhile the two-way threaded rod 26 is rotated to drive the limiting plate 210 to move up and down, so as to adjust the reciprocating position of the lifting plate one 24, realize the synchronization of copper wire conveying and spraying or electroplating, and realize the synchronization of copper wire conveying and spraying or electroplating;
[0052] S2, in the rotating process of the rotating rod 22, the circular gear one 31 is synchronously driven to rotate, the circular gear one 31 drives the tooth ring one 32 to rotate, and the copper wire in conveying is rotated, so as to improve the uniformity of subsequent processing or spraying treatment;
[0053] S3, move the sliding groove ring 33 to drive the bottom spring expansion plate 34 to rotate, the spring expansion plate 34 is accompanied by self expansion when rotating, the rubber clamp 35 is moved along the spring block 36, different specifications of copper wires are fixed through the displacement of the rubber clamp 35, so as to realize the fixation and rotary drive of different specifications of copper wires;
[0054] S4, rotating the rod 22 rotates the synchronous belt drive bevel gear one 44 rotation, bevel gear one 44 through meshing transmission drive bevel gear two 45 and fan blade 46 rotation, start heating plate 42, fan blade 46 after the copper wire is sprayed or electroplated, the fan blade 46 drives the airflow circulation, the heating plate 42 heats the airflow, the hot airflow flows in the hollow cover 41 and passes through the ventilation plate 43, and the copper wire after being sprayed or electroplated is dried to prevent the coating from polluting the device and facilitate subsequent storage or processing.
[0055] Working principle: by inserting the copper wire into the installation cover 1, and starting the motor 21 to drive the rotating rod 22 to rotate, at this time the rotating rod 22 also synchronously drives the reciprocating rod 23 to rotate, at this time the reciprocating rod 23 drives the lifting plate one 24 to move up and down, the movement of the lifting plate one 24 synchronously drives the brush 25 to move up and down, and the copper wire is coated with the coating or electroplating liquid on the brush 25, at this time the rotating bidirectional screw rod 26 drives the limiting plate 210 to move up and down, and the reciprocating position of the lifting plate one 24 is limited and adjusted by the limiting plate 210, so that the copper wire can be sprayed or electroplated while being conveyed;
[0056] And the rotation of the rotating rod 22 will simultaneously drive the circular gear one 31 to rotate, at this time the rotation of the circular gear one 31 will drive the gear ring one 32 to rotate, so that the copper wire can rotate when conveying the copper wire, improving the uniformity of subsequent processing or spraying, at this time the moving sliding groove ring 33 can drive the bottom spring expansion plate 34 to rotate, and along with the rotation of the spring expansion plate 34 and the expansion of itself, the rubber clamp 35 is pushed to move along the spring block 36, so that the rubber clamp 35 is moved to fix the copper wire of different specifications, so that the copper wire of different specifications can be fixed and rotated;
[0057] Finally, the rotation of the rotating rod 22 will synchronously drive the bevel gear one 44 to rotate, and at the same time the bevel gear one 44 rotates, the bevel gear two 45 engaged with it and the fan blade 46 thereon rotate, at this time the heating plate 42 is started, the airflow can be heated by the heating plate 42 when the fan blade 46 drives the airflow to circulate, at this time the hot airflow flows in the hollow cover 41 and passes through the ventilation plate 43 to dry the copper wire after being sprayed or electroplated with the coating, preventing the coating from polluting the device and facilitating subsequent direct storage or processing.
[0058] Although embodiments of the present application have been shown and described, it is to be understood that various changes, modifications, substitutions and alterations can be made to these embodiments without departing from the principles and spirit of the present application, the scope of which is defined by the appended claims and their equivalents.
Claims
1. A vertical coaxial multi-process continuous processing photovoltaic copper wire production device comprising a mounting cover (1), characterized in that, The right side of the installation cover (1) is communicated with a hollow plate (5), the inside of the installation cover (1) is provided with a tinning mechanism (2), the tinning mechanism (2) is used for tinning processing while conveying copper wire, the top of the installation cover (1) is provided with a positioning mechanism (3), the positioning mechanism (3) is used for fixing and operating copper wire of different specifications, the bottom of the installation cover (1) is provided with a drying mechanism (4), the drying mechanism (4) can clean and dry the copper wire after tinning; The tinning mechanism (2) includes a motor (21), the motor (21) is fixedly connected to the inside top of the installation cover (1), the output end of the motor (21) is fixedly connected with a rotating rod (22), the outside of the rotating rod (22) is fixedly connected with a reciprocating rod (23), the outside of the reciprocating rod (23) is screw connected with a lifting plate one (24), the outside of the lifting plate one (24) is fixedly connected with a brush (25), the outside of the hollow plate (5) is rotatably connected with a handle one (209), the outside of the handle one (209) penetrates through the hollow plate (5) and is fixedly connected with a bidirectional threaded rod (26), the outside of the bidirectional threaded rod (26) is screw connected with a limiting plate (210) on the upside and downside, the outside left side of the installation cover (1) is fixedly connected with a plurality of supports (211), the left side of the installation cover (1) is provided with a spraying assembly (27), the outside of the installation cover (1) is provided with an observation assembly (28).
2. A vertical coaxial multi-process continuous processing photovoltaic copper wire production apparatus according to claim 1, characterized in that, The positioning mechanism (3) includes a hollow frame (37), the hollow frame (37) is communicated at the top of the installation cover (1), the inside left side of the hollow frame (37) is slidably connected with a sliding groove ring (33), the bottom of the sliding groove ring (33) is rotatably connected with a spring expansion plate (34) around, the bottom of the spring expansion plate (34) is rotatably connected with a rubber clamp (35), the outside top of the rotating rod (22) is fixedly connected with a circular gear one (31), the inside front side of the hollow frame (37) is rotatably connected with a gear ring one (32), the gear ring one (32) is meshedly connected with the circular gear one (31), the inside of the gear ring one (32) is fixedly connected with a spring block (36) around, the outside of the rubber clamp (35) is fixedly connected with the spring block (36), the inside of the hollow frame (37) is provided with an operating assembly (38), the outer wall of the installation cover (1) is provided with a holding assembly (39).
3. A vertical coaxial multi-process continuous processing photovoltaic copper wire production apparatus according to claim 1, characterized in that, The drying mechanism (4) includes a hollow cover (41) which is communicated at the bottom of the mounting cover (1), the inner bottom of the hollow cover (41) is fixedly connected with a heating plate (42), the inner middle of the hollow cover (41) is fixedly connected with a ventilation plate (43), the right side of the ventilation plate (43) is rotatably connected with a fan blade (46), the outer side of the fan blade (46) is fixedly connected with a bevel gear two (45), the bottom of the rotating rod (22) is fixedly connected with a bevel gear one (44), the bevel gear one (44) is meshedly connected with the bevel gear two (45), the left side of the hollow cover (41) is provided with a winding assembly (47), and the bottom of the rotating rod (22) is provided with a cleaning assembly (48).
4. A vertical coaxial multi-process continuous processing photovoltaic copper wire production apparatus according to claim 1, characterized in that, The spraying assembly (27) includes a storage box (271) which is fixedly connected to the left middle of the mounting cover (1), the right side of the storage box (271) penetrates the mounting cover (1) and is communicated with a conveying belt (272), the outer side of the conveying belt (272) is communicated with a spray head (273), and the spray head (273) is fixedly connected with the lifting plate one (24).
5. A vertical in-line multi-station continuous process photovoltaic copper wire production apparatus as claimed in claim 1, wherein, The observation assembly (28) includes positioning frames (281), two positioning frames (281) are respectively communicated on the outer front and rear sides of the mounting cover (1), and the inner side of the observation assembly (28) is fixedly connected with an observation window (282).
6. A vertical in-line multi-station continuous process photovoltaic copper wire production apparatus as claimed in claim 2, wherein, The operation assembly (38) includes a knob (383) which is rotatably connected to the top of the hollow frame (37), the bottom of the knob (383) penetrates the hollow frame (37) and is fixedly connected with a threaded column (381), the outer side of the threaded column (381) is threadedly connected with a lifting plate two (382), and the bottom of the lifting plate two (382) is slidably connected with the sliding groove ring (33).
7. A vertical in-line multi-station continuous process photovoltaic copper wire production apparatus as claimed in claim 2, wherein, The holding assembly (39) includes hollow blocks (391), two hollow blocks (391) are respectively fixedly connected to the outer walls of the front and rear sides of the mounting cover (1), and the inner side of the hollow block (391) is rotatably connected with a handle two (392).
8. A vertical coaxial multi-process continuous processing photovoltaic copper wire production apparatus according to claim 3, characterized in that, The winding assembly (47) includes a clamping block (471) which is fixedly connected to the left side of the hollow cover (41), and the inner side of the clamping block (471) is clamped with a winding disc (472).
9. A vertical coaxial multi-process continuous processing photovoltaic copper wire production apparatus according to claim 3, characterized in that, The cleaning assembly (48) includes a circular gear two (481), the bottom end of the rotating rod (22) is fixedly connected with the circular gear two (481), the inner wall bottom left side of the mounting cover (1) is rotatably connected with a gear ring two (482), the gear ring two (482) is meshedly connected with the circular gear two (481), and the inner side of the gear ring two (482) is fixedly connected with cleaning cotton (483).
10. A production process of a vertical coaxial multi-process continuous processing photovoltaic copper wire production apparatus, characterized by A vertical coaxial multi-process continuous processing photovoltaic copper wire production equipment according to any one of claims 1-9, comprising the following steps: S1, the copper wire is inserted into the installation cover (1), the motor (21) is started to drive the rotating rod (22) to rotate, the rotating rod (22) synchronously drives the reciprocating rod (23) to rotate, the reciprocating rod (23) drives the lifting plate one (24) to reciprocate up and down, and then drives the brush (25) to reciprocate up and down synchronously, the copper wire is coated with the coating or the electroplating solution on the brush (25), the two-way threaded rod (26) is rotated, the limiting plate (210) is driven to move up and down, the reciprocating position of the lifting plate one (24) is adjusted, the synchronization of copper wire conveying and spraying or electroplating is realized; S2, in the rotating process of the rotating rod (22), the circular gear one (31) is synchronously driven to rotate, the circular gear one (31) drives the gear ring one (32) to rotate, the copper wire in conveying is rotated, and the uniformity of subsequent processing or spraying treatment is improved; S3, the spring expansion plate (34) at the bottom is pushed to rotate by moving the sliding groove ring (33), the spring expansion plate (34) is accompanied by expansion when rotating, the rubber clamp (35) is pushed to move along the spring block (36), different specifications of copper wires are fixed through the displacement of the rubber clamp (35), so that the fixing and rotating drive of different specifications of copper wires are realized; S4, the bevel gear one (44) is synchronously driven to rotate by the rotating rod (22), the bevel gear one (44) drives the bevel gear two (45) and the fan blade (46) to rotate through meshing transmission, after the heating plate (42) is started, the fan blade (46) drives the airflow to circulate, the heating plate (42) heats the airflow, the hot airflow circulates in the hollow cover (41) and passes through the ventilation plate (43), the copper wire after spraying or electroplating is dried, the coating pollution of the device is prevented, and subsequent storage or processing is facilitated.