Metal wire hot-dip tin processing equipment
By introducing a scraper and scraper structure and an automated clamping mechanism into the hot-dip tinning equipment for metal wires, the problem of enamel residue affecting the cutting effect has been solved, the cutting efficiency and tinning quality have been improved, and the unloading process has been accelerated.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- GANZHOU BENGU ELECTRONIC TECHNOLOGY CO LTD
- Filing Date
- 2025-06-03
- Publication Date
- 2026-05-01
AI Technical Summary
Existing hot-dip tinning equipment for metal wires lacks a function to remove enamel residue, causing enamel residue to adhere to the cutting tool and affecting the cutting effect.
A device structure with scraper and scraper blades was designed to scrape off the paint sleeve residue on the upper and lower blade groups, and to realize the automated clamping, cutting, tinning and unloading process through cylinder and push rod mechanism.
It effectively avoids the impact of enamel residue on cutting results, improves cutting efficiency, reduces manual measurement and cutting time, ensures tinning quality, and speeds up material output.
Smart Images

Figure CN224190724U_ABST
Abstract
Description
A hot-dip tinning equipment for metal wires Technical Field
[0001] This utility model relates to the field of hot-dip tinning technology, and in particular to a hot-dip tinning equipment for metal wires. Background Technology
[0002] Hot-dip tinning of metal wires is used to improve the wires' solderability, oxidation resistance, and conductivity. This is achieved by immersing cleaned wires in molten tin, which forms a uniform tin coating on the surface.
[0003] Patent CN210092548U discloses a fully automatic wire stripping, soldering, and soldering machine. It includes a base and feeding device, a connecting device, a double-headed wire stripping device, a soldering device, a terminal stripping device, and a soldering shell insertion device. The double-headed wire stripping device includes a first drive mechanism, a twisting mechanism, a second drive mechanism, a front-end stripping mechanism, and a rear-end stripping mechanism. A wire pulling mechanism is also provided on the base, located on one side of the double-headed wire stripping device. When using this patent, the feeding device, connecting device, double-headed wire stripping device, soldering device, terminal stripping device, and soldering shell insertion device perform wire stripping and soldering operations on metal wires. However, the aforementioned patent still has some shortcomings in practical use. Because the aforementioned patent lacks a function to remove enamel residue, after the upper and lower wire cutting blades cut the wires, enamel residue on the wires adheres to the upper and lower wire cutting blades, thus affecting the sharpness of the blades and weakening the cutting effect.
[0004] Therefore, there is a need for a hot-dip tinning equipment for metal wires with the function of scraping off enamel residue. Summary of the Invention
[0005] In order to overcome the shortcomings of the existing patents that do not have a coating residue removal function, after the upper and lower cutting blades cut the wire, coating residue on the wire will adhere to the upper and lower cutting blades, thereby affecting the sharpness of the blades and weakening the cutting effect, this utility model provides a hot-dip tinning equipment for metal wires with a coating residue removal function.
[0006] To address the aforementioned problems, this utility model adopts the following technical solution: A metal wire hot-dip tinning processing equipment includes a support frame, a mounting plate, a connecting plate, a mounting bracket, a stepper motor, a bidirectional lead screw, a guide rod, a first fixed seat, a second fixed seat, an upper conveyor seat, an upper blade assembly, and a wire clamping mechanism. A connecting plate is fixedly connected to two support frames, and a mounting plate is fixedly connected to the connecting plate. A wire clamping mechanism is provided on the mounting plate, and a mounting bracket is mounted on the mounting plate. A stepper motor is mounted on the mounting bracket, and a bidirectional lead screw is mounted on the output shaft of the stepper motor via a coupling. An upper conveyor seat and a lower conveyor seat are threaded onto the bidirectional lead screw. The plate has two first fixed seats fixedly connected to it, and a second fixed seat fixedly connected to it. A guide rod is fixedly connected between the second fixed seat and the first fixed seat. The upper conveyor seat and the lower conveyor seat slide on the two guide rods. An upper blade assembly is fixedly connected to the upper conveyor seat. The plate also includes a lower conveyor seat, a lower blade assembly, a scraper, a guide protrusion, a scraper blade, a guide frame, and a collection box. A guide frame is fixedly connected to the lower conveyor seat, and a lower blade assembly is fixedly connected to the guide frame. Two guide grooves are opened on the mounting plate. A guide protrusion is slidably arranged in the guide groove. A scraper is fixedly connected to the guide protrusion. Multiple scraper blades are fixedly connected to the scraper. A collection box is slidably arranged on the connecting plate.
[0007] Further explanation: The wire clamping mechanism includes an intermittent rotating plate, a first mounting base, a first cylinder, a first push rod, a first clamping plate, a first servo motor, a first roller, a first transmission belt, a second roller, a first rotating shaft, a transmission gear, a second servo motor, a third roller, a second transmission belt, a fourth roller, a second rotating shaft, and a rack frame. The first servo motor is mounted inside the mounting plate, and the first roller is mounted on the output shaft of the first servo motor. The first rotating shaft is rotatably mounted on the mounting plate, and the second roller is fixedly connected to the first rotating shaft. The first transmission belt is wound around both the second and first rollers. The transmission gear is fixedly connected to the first rotating shaft. A second rotating shaft is rotatably mounted on the plate. An intermittent rotating plate is fixedly connected to the second rotating shaft. A rack frame is slidably mounted inside the intermittent rotating plate and meshes with a transmission gear. A fourth roller is fixedly connected to the second rotating shaft. A second servo motor is mounted inside the mounting plate. A third roller is mounted on the output shaft of the second servo motor. A second transmission belt is wound around the third roller and the fourth roller. A first mounting base is fixedly connected to the rack frame. A first cylinder is mounted on the first mounting base. A first push rod is fixedly connected to the telescopic rod of the first cylinder. Two first clamping plates are rotatably mounted on the first cylinder and are rotatably connected to the first push rod.
[0008] Further explanation: It also includes a first electric guide rail, a first electric slider, a second cylinder, a second push rod, and a second clamping plate. The first electric guide rail is mounted on the connecting plate, and the first electric slider is mounted on the first electric guide rail. The first electric slider slides within the first electric guide rail. The second cylinder is mounted on the first electric slider, and the second push rod is mounted on the telescopic rod of the second cylinder. Two second clamping plates are slidably arranged on the second cylinder, and the two second clamping plates are rotatably connected to the second push rod.
[0009] Further explanation: It also includes a second mounting base, a third cylinder, a third push rod, a reciprocating push plate, a storage box, and a material storage frame. Two second mounting bases are mirror-shaped on the connecting plate. A third cylinder is mounted on the second mounting base. A third push rod is fixedly connected to the telescopic rod of the third cylinder. A reciprocating push plate is fixedly connected to the third push rod. Two material storage frames are mirror-shaped on the connecting plate. Two storage boxes are fixedly connected to the connecting plate.
[0010] Further explanation: It also includes a second electric guide rail, a second electric slider, a fourth cylinder, a fixed frame, a fourth push rod, a connecting block, and a fourth clamping plate. The second electric guide rail is mounted on the mounting plate, and the second electric slider is mounted on the second electric guide rail. The second electric slider slides on the second electric guide rail, and the fourth cylinder is mounted on the second electric slider. The fourth push rod is mounted on the telescopic rod of the fourth cylinder, and the connecting block is fixedly connected to the fourth push rod. The fixed frame is fixedly connected to the second electric slider, and the fourth clamping plate is rotatably mounted on the fixed frame. The connecting block is rotatably connected to the two fourth clamping plates.
[0011] To further explain, it also includes shock-absorbing silicone pads, with two shock-absorbing silicone pads embedded in the support frame.
[0012] Compared with the prior art, the present invention has the following technical effects: 1. The paint sleeves on the upper and lower blade groups are scraped off by the scraper and scraper blade, so that the paint sleeves fall into the collection box through the guide frame, thereby avoiding paint sleeve residue adhering to the upper and lower blade groups and avoiding affecting the cutting effect.
[0013] 2. By activating the first electric guide rail, the first electric guide rail drives the second electric slider to move to the left. As the second electric slider moves, it drives the second cylinder and its upper components to move to the left. Then, the second cylinder is activated. The extension and retraction of the extension rod of the second cylinder drives the second push rod to move left and right. The left and right movement of the second push rod drives the two second clamping plates to move and rotate to clamp the end of the metal wire. Then, the first electric guide rail is activated, which drives the first electric slider to move to the right, thereby automatically pulling the metal wire to the appropriate length, reducing the time for manual measurement and cutting.
[0014] 3. By injecting an appropriate amount of molten solder into the storage tank, immersion is performed. After immersion is completed, the third cylinder is activated. The extension and retraction of the extension rod of the third cylinder drives the third push rod and the reciprocating push plate to move, so that the reciprocating push plate automatically scrapes the oxide layer on the molten solder into the storage frame, thereby ensuring the quality of immersion.
[0015] 4. By activating the fourth cylinder, the extension rod of the fourth cylinder extends, driving the connecting block forward. As the connecting block moves, it squeezes the two fourth clamping plates to rotate, causing the two fourth clamping plates to clamp the metal wires that have been dipped in tin. Finally, the second electric guide rail is operated, causing the second electric slider and the upper component to move, moving them to the collection area above the connecting plate. Then, the extension rod of the fourth cylinder is operated to retract, causing the fourth clamping plates to release the metal wires, thereby achieving the effect of automatic material discharge and thus accelerating the discharge efficiency. Attached Figure Description
[0016] Figure 1 is a three-dimensional structural diagram of this utility model.
[0017] Figure 2 is a three-dimensional structural diagram of the first electric guide rail and the second electric guide rail of this utility model.
[0018] Figure 3 is an enlarged view of point A in Figure 2 of this utility model.
[0019] Figure 4 is a three-dimensional cross-sectional view of the first servo motor and the second servo motor of this utility model.
[0020] Figure 5 is a three-dimensional structural diagram of the transmission gear and transmission rack of this utility model.
[0021] Figure 6 is a three-dimensional cross-sectional view of the upper conveyor seat, lower conveyor seat, and guide protrusion of this utility model.
[0022] Figure 7 is a three-dimensional structural diagram of the lower blade assembly, scraper, and guide protrusion of this utility model.
[0023] Figure 8 is an exploded view of the scraper and scraper blade of this utility model.
[0024] Figure 9 is an enlarged view of section B in Figure 2 of this utility model.
[0025] Figure 10 is a three-dimensional structural diagram of the storage box and reciprocating push plate of this utility model.
[0026] Figure 11 is a three-dimensional structural diagram of the fixing frame and connecting block of this utility model.
[0027] In the attached diagram: 1-Support frame, 2-Mounting plate, 3-Connecting plate, 4-Intermittent rotating plate, 5-First mounting seat, 6-First cylinder, 601-First push rod, 7-First clamping plate, 8-First servo motor, 801-First roller, 802-First transmission belt, 803-Second roller, 804-First rotating shaft, 9-Transmission gear, 10-Second servo motor, 1001-Third roller, 1002-Second transmission belt, 1003-Fourth roller, 1004-Second rotating shaft, 11-Rack frame, 12-Mounting frame, 13-Stepper motor, 14-Double-actuated lead screw, 15-Guide rod, 16-First fixed seat, 1601-Second fixed seat, 17-Upper conveyor seat. 18-Upper blade assembly, 19-Lower conveyor seat, 20-Lower blade assembly, 21-Scraper, 22-Guide protrusion, 2201-Guide groove, 23-Scraper blade, 25-Guide frame, 26-Collection box, 27-First electric guide rail, 28-First electric slider, 29-Second cylinder, 2901-Second push rod, 30-Second clamping plate, 31-Second mounting base, 32-Third cylinder, 3201-Third push rod, 33-Reciprocating push plate, 34-Storage box, 35-Storage frame, 36-Second electric guide rail, 37-Second electric slider, 38-Fourth cylinder, 3801-Fourth push rod, 39-Fourth clamping plate, 3901-Connecting block, 3902-Fixing frame, 40-Shock-absorbing silicone pad. Detailed Implementation
[0028] The present invention will be further described below with reference to specific embodiments. The illustrative embodiments and descriptions of the present invention are used to explain the present invention, but are not intended to limit the present invention.
[0029] Example 1: A metal wire hot-dip tinning equipment, as shown in Figures 1-8, includes a support frame 1, a mounting plate 2, a connecting plate 3, a mounting bracket 12, a stepper motor 13, a bidirectional lead screw 14, a guide rod 15, a first fixed seat 16, a second fixed seat 1601, an upper conveyor seat 17, an upper blade assembly 18, and a wire clamping mechanism. A connecting plate 3 is fixedly connected between the tops of the two support frames 1. The mounting plate 2 is mounted on the left side of the connecting plate 3. Wire clamping mechanisms for holding wires are symmetrically arranged on the front side of the mounting plate 2. The front side of the middle of the mounting plate 2 is connected by bolts. A mounting bracket 12 is provided, located between two wire clamping mechanisms. A stepper motor 13 is bolted to the mounting bracket 12. A bidirectional lead screw 14 is mounted on the output shaft of the stepper motor 13 via a coupling. An upper conveyor seat 17 is threaded onto the upper part of the bidirectional lead screw 14, and a lower conveyor seat 19 is threaded onto the lower part of the bidirectional lead screw 14. The lower conveyor seat 19 is threaded onto the upper part of the bidirectional lead screw 14. Two first fixed seats 16 and a second fixed seat 1601 are provided on the mounting plate 2. The second fixed seat 1601 is connected to the first fixed seats 1601. Guide rods 15 are fixedly connected between the fixed seats 16. A bidirectional lead screw 14 rotates on the second fixed seat 1601. The upper conveyor seat 17 and the lower conveyor seat 19 slide on the two guide rods 15. An upper blade assembly 18 is fixedly connected to the bottom of the upper conveyor seat 17. It also includes a lower conveyor seat 19, a lower blade assembly 20, a scraper 21, a guide protrusion 22, a scraper blade 23, a guide frame 25, and a collection box 26. A guide frame 25 is fixedly connected to the front side of the lower conveyor seat 19. The lower blade assembly 20 is fixedly connected to the upper part of the guide frame 25. Both the upper blade assembly 18 and the lower blade assembly 20 are... It consists of three blades, with the three blades arranged in a middle-long and side-short configuration. The mounting plate 2 has symmetrical guide grooves 2201 on the front side of the middle. Guide protrusions 22 are slidably arranged in the guide grooves 2201. Two guide protrusions 22 are located between the upper blade group 18 and the lower blade group 20. A scraper 21 is fixedly connected to the guide protrusion 22. Four scraper blades 23 are fixedly connected to the scraper 21. The scraper blades 23 and the scraper 21 can scrape off the paint sleeve residue on the corresponding blade group. A collection box 26 is slidably arranged at the bottom of the connecting plate 3. The collection box 26 is connected to the guide frame 25.
[0030] Referring to Figure 1, it also includes shock-absorbing silicone pads 40, and shock-absorbing silicone pads 40 are symmetrically embedded in the bottom of the support frame 1.
[0031] When hot-dip tinning is required on metal wires, the shock-absorbing silicone pad 40 absorbs ground vibrations to prevent them from affecting equipment operation. First, two wire clamping mechanisms clamp and straighten the metal wires. Then, two containers filled with molten tin are placed on the connecting plate 3, positioned below the corresponding wire clamping mechanisms. After fixing, the stepper motor 13 is started. The output shaft of the stepper motor 13 then drives the bidirectional lead screw 14 to rotate. The bidirectional lead screw 14 drives the upper conveyor seat 17 and the lower conveyor seat 19 to move towards each other. Simultaneously, the upper conveyor seat 17 drives the upper blade assembly 18 downwards, and the lower conveyor seat 19 simultaneously drives the guide frame 25 and the lower blade assembly 20 upwards. The upper blade assembly 18 and the lower blade assembly 20 pass through the scraper 21, allowing them to cut and... The opening is made, and then the wire clamping mechanism is operated to pull, so that the upper blade assembly 18 and the lower blade assembly 20 peel off the enamel sheath on the metal wire. During the tinning process, the output shaft of the stepper motor 13 is reversed, which drives the bidirectional lead screw 14 to reverse. The bidirectional lead screw 14 drives the upper conveyor seat 17 and the upper blade assembly 18 above it to move upward, while simultaneously driving the lower conveyor seat 19, the lower blade assembly 20 and the guide frame 25 to move downward. When the upper blade assembly 18 and the lower blade assembly 20 move, the enamel sheath on the upper blade assembly 18 and the lower blade assembly 20 is scraped off by the scraper 21 and the scraper blade 23, so that the enamel sheath falls into the collection box 26 through the guide frame 25. This can prevent the enamel sheath from adhering to the upper blade assembly 18 and the lower blade assembly 20, so as not to affect the cutting effect. Then the tinned metal wire is collected.
[0032] Example 2: Based on Example 1, referring to Figures 2-5, the wire clamping mechanism includes an intermittent rotating plate 4, a first mounting base 5, a first cylinder 6, a first push rod 601, a first clamping plate 7, a first servo motor 8, a first roller 801, a first transmission belt 802, a second roller 803, a first rotating shaft 804, a transmission gear 9, a second servo motor 10, a third roller 1001, a second transmission belt 1002, a fourth roller 1003, a second rotating shaft 1004, and a rack frame 11. The first servo motor 8 is bolted to the lower part of the mounting plate 2. The first roller 801 is mounted on the output shaft of the first servo motor 8. The first rotating shaft 804 is rotatably mounted on the mounting plate 2. The second roller 803 is fixedly connected to the first rotating shaft 804. The first transmission belt 802 is wound around the second roller 803 and the first roller 801. The transmission gear 9 is fixedly connected to the front end of the first rotating shaft 804. A second rotating shaft 1004 is rotatably mounted on plate 2. An intermittent rotating plate 4 is fixedly connected to the front end of the second rotating shaft 1004. A rack frame 11 is slidably mounted inside the intermittent rotating plate 4. The rack frame 11 meshes with a transmission gear 9. A fourth roller 1003 is fixedly connected to the second rotating shaft 1004. The fourth roller 1003 is located in front of the second roller 803. A second servo motor 10 is mounted inside the mounting plate 2 by bolt connection. A third roller 1001 is mounted on the output shaft of the second servo motor 10. A second transmission belt 1002 is wound around the third roller 1001 and the fourth roller 1003. A first mounting base 5 is fixedly connected to the front side of the rack frame 11. A first cylinder 6 is mounted to the front side of the first mounting base 5 by bolt connection. A first push rod 601 is fixedly connected to the telescopic rod of the first cylinder 6. First clamping plates 7 are rotatably mounted on both the upper and lower sides of the first cylinder 6. The two first clamping plates 7 are rotatably connected to the first push rod 601.
[0033] When the wire clamping mechanism is needed to hold the metal wire, first place the metal wire between the two first clamping plates 7 on the right. Then, activate the first cylinder 6 on the right, causing the telescopic rod of the first cylinder 6 to retract and move the first push rod 601 outward. Simultaneously, the movement of the first push rod 601 causes the two first clamping plates 7 to rotate, thus fixing the metal wire. After fixing, straighten the metal wire and pull it between the two first clamping plates 7 on the left, repeating the above operation to fix the metal wire between the two first clamping plates 7 on the left. After fixing, cut the wire using the upper blade assembly 18 and the lower blade assembly 20. After cutting, activate the first servo motor 8. The output shaft of the first servo motor 8 drives the first roller 801 to rotate, and through the first transmission belt 802, drives the second roller 803 to rotate. The rotation of the second roller 803 drives the first rotating shaft 804. The transmission gear 9 above it rotates, meshing with the rack frame 11. This causes the rack frame 11 to move the first mounting base 5, the first servo motor 8, and the stepper above it outwards, thereby causing the first clamping plate 7 to pull out the cut metal wire. After pulling it out, the second servo motor 10 is started. The output shaft of the second servo motor 10 drives the third roller 1001 to rotate, and drives the fourth roller 1003 to rotate through the second transmission belt 1002. The rotation of the fourth roller 1003 drives the second rotating shaft 1004 and the intermittent rotating plate 4 to rotate. The intermittent rotating plate 4 drives the rack frame 11, the first mounting base 5 above it, the first servo motor 8, and the components above them to rotate, thereby automatically driving the metal wire to rotate and immerse it in tin, thus speeding up the work efficiency. After the tinning is completed, the operation of the second servo motor 10 is turned off, causing the corresponding components and the metal wire to reverse back to their original positions.
[0034] Referring to Figures 1, 2, and 9, the system also includes a first electric guide rail 27, a first electric slider 28, a second cylinder 29, a second push rod 2901, and a second clamping plate 30. The first electric guide rail 27 is bolted to the upper front side of the connecting plate 3. The first electric slider 28 is mounted on the first electric guide rail 27 and slides within the first electric guide rail 27. The second cylinder 29 is mounted on the first electric slider 28. The second push rod 2901 is mounted on the telescopic rod of the second cylinder 29. The second clamping plate 30 is symmetrically slidably mounted on the left side of the second cylinder 29. The two second clamping plates 30 are rotatably connected to the second push rod 2901.
[0035] After the tinning process is completed and the metal wires on the two right-side first clamping plates 7 are removed, the first electric guide rail 27 is activated. The first electric guide rail 27 drives the second electric slider 37 to move to the left. As the second electric slider 37 moves, it also drives the second cylinder 29, the second push rod 2901, and the second clamping plate 30 to move to the left. When the metal wires are positioned to the right of the two left-side first clamping plates 7 and between the two second clamping plates 30, the second cylinder 29 is activated. The extension and retraction of the extension rod of the second cylinder 29 drives the second push rod 2901 to move left and right. The left and right movement of the second push rod 2901 drives the two second clamping plates 30 to move and rotate, so that the two second clamping plates 30 automatically clamp the ends of the metal wires. Then, the first electric guide rail 27 is activated, which drives the first electric slider 28 to move to the right, thereby automatically pulling the metal wires to the appropriate length, reducing the time for manual measurement and cutting. Then, the metal wire clamping operation, cutting, and tinning can be performed.
[0036] Referring to Figures 4 and 10, the system also includes a second mounting base 31, a third cylinder 32, a third push rod 3201, a reciprocating push plate 33, a storage box 34, and a storage frame 35. The connecting plate 3 has two second mounting bases 31 arranged in a mirror image on its left side. The second mounting bases 31 are located below the clamping mechanism. The third cylinder 32 is mounted on the second mounting base 31. The third push rod 3201 is fixedly connected to the telescopic rod of the third cylinder 32. The reciprocating push plate 33 is welded onto the third push rod 3201. The connecting plate 3 has two storage frames 35 arranged in a mirror image. The storage frames 35 are located inside the adjacent second mounting bases 31. The connecting plate 3 has two storage boxes 34 fixedly connected to it. The storage boxes 34 are located inside the adjacent storage frames 35.
[0037] Before tinning, an appropriate amount of molten tin is injected into the storage tank 34 before tinning. After tinning is completed, the third cylinder 32 is activated. The extension and retraction of the extension rod of the third cylinder 32 drives the third push rod 3201 and the reciprocating push plate 33 to move, so that the reciprocating push plate 33 automatically scrapes the oxide layer on the molten tin into the storage frame 35, thereby ensuring the quality of tinning.
[0038] Referring to Figures 1, 2, and 11, the system also includes a second electric guide rail 36, a second electric slider 37, a fourth cylinder 38, a fixing frame 3902, a fourth push rod 3801, a connecting block 3901, and a fourth clamping plate 39. The second electric guide rail 36 is bolted to the front of the mounting plate 2. The second electric slider 37 is mounted on the second electric guide rail 36 and slides on the second electric guide rail 36. The fourth cylinder 38 is mounted on the second electric slider 37. The fourth push rod 3801 is mounted on the telescopic rod of the fourth cylinder 38. The connecting block 3901 is fixedly connected to the fourth push rod 3801. The fixing frame 3902 is fixedly connected to the second electric slider 37. The fourth clamping plate 39 is rotatably mounted on the fixing frame 3902. The connecting block 3901 is rotatably connected to the two fourth clamping plates 39.
[0039] When material needs to be retrieved, the second electric guide rail 36 is activated, driving the second electric slider 37 and its clamping components to move. After moving to the appropriate position, the fourth cylinder 38 is activated, extending its telescopic rod to move the connecting block 3901 forward. As the connecting block 3901 moves, it squeezes the two fourth clamping plates 39 to rotate, causing them to clamp the tin-soaked metal wires. Then, the first servo motor 8 on the right is operated to release the metal wires from the two first clamping plates 7 above it. Finally, the second electric guide rail 36 is operated, driving the second electric slider 37 and its components above it to move to the collection area on the connecting plate 3. Then, the telescopic rod of the fourth cylinder 38 is retracted, causing the fourth clamping plates 39 to release the metal wires, thus achieving automatic material discharge and accelerating the discharge efficiency.
[0040] The above description is merely an embodiment of this utility model and is not intended to limit the scope of this utility model. All equivalent substitutions made within the principles of this utility model should be included within the protection scope of this utility model. Contents not described in detail in this utility model are existing technologies known to those skilled in the art.
Claims
1. A metal wire hot-dip tinning equipment, comprising a support frame (1), a mounting plate (2), a connecting plate (3), a mounting bracket (12), a stepper motor (13), a bidirectional lead screw (14), a guide rod (15), a first fixed seat (16), a second fixed seat (1601), an upper conveyor seat (17), an upper blade assembly (18), and a wire clamping mechanism. The two support frames (1) are fixedly connected to the connecting plate (3), and the mounting plate (2) is fixedly connected to the connecting plate (3). The mounting plate (2) is provided with a wire clamping mechanism. The mounting bracket (12) is mounted on the mounting plate (2), and the stepper motor (13) is mounted on the mounting bracket (12). A double-acting lead screw (14) is mounted on the output shaft of 13) via a coupling. An upper conveyor seat (17) and a lower conveyor seat (19) are threaded onto the double-acting lead screw (14). Two first fixed seats (16) are fixedly connected to the mounting plate (2). A second fixed seat (1601) is fixedly connected to the mounting plate (2). A guide rod (15) is fixedly connected between the second fixed seat (1601) and the first fixed seat (16). The upper conveyor seat (17) and the lower conveyor seat (19) slide on the two guide rods (15). An upper blade assembly (18) is fixedly connected to the upper conveyor seat (17). The characteristic is that... It also includes a lower conveyor seat (19), a lower blade assembly (20), a scraper (21), a guide protrusion (22), a scraper blade (23), a guide frame (25), and a collection box (26). The guide frame (25) is fixedly connected to the lower conveyor seat (19), and the lower blade assembly (20) is fixedly connected to the guide frame (25). Two guide grooves (2201) are opened on the mounting plate (2). The guide protrusion (22) is slidably arranged in the guide groove (2201). The scraper (21) is fixedly connected to the guide protrusion (22), and multiple scraper blades (23) are fixedly connected to the scraper (21). The collection box (26) is slidably arranged on the connecting plate (3).
2. The hot-dip tinning equipment for metal wires according to claim 1, characterized in that, The wire clamping mechanism includes an intermittent rotating plate (4), a first mounting base (5), a first cylinder (6), a first push rod (601), a first clamping plate (7), a first servo motor (8), a first roller (801), a first transmission belt (802), a second roller (803), a first rotating shaft (804), a transmission gear (9), a second servo motor (10), a third roller (1001), a second transmission belt (1002), a fourth roller (1003), and a second rotating shaft (804). 1004) and rack frame (11), a first servo motor (8) is installed in the mounting plate (2), a first roller (801) is installed on the output shaft of the first servo motor (8), a first rotating shaft (804) is rotatably arranged on the mounting plate (2), a second roller (803) is fixedly connected to the first rotating shaft (804), a first transmission belt (802) is wound around the second roller (803) and the first roller (801), and a transmission gear is fixedly connected to the first rotating shaft (804). 9) A second rotating shaft (1004) is rotatably mounted on the mounting plate (2). An intermittent rotating plate (4) is fixedly connected to the second rotating shaft (1004). A rack frame (11) is slidably mounted inside the intermittent rotating plate (4). The rack frame (11) meshes with the transmission gear (9). A fourth roller (1003) is fixedly connected to the second rotating shaft (1004). A second servo motor (10) is mounted inside the mounting plate (2). A third roller is mounted on the output shaft of the second servo motor (10). A second transmission belt (1002) is wound around the wheel (1001), the third roller (1001) and the fourth roller (1003). A first mounting seat (5) is fixedly connected to the rack frame (11). A first cylinder (6) is mounted on the first mounting seat (5). A first push rod (601) is fixedly connected to the telescopic rod of the first cylinder (6). Two first clamping plates (7) are rotatably arranged on the first cylinder (6). The two first clamping plates (7) are rotatably connected to the first push rod (601).
3. The hot-dip tinning equipment for metal wires according to claim 2, characterized in that, It also includes a first electric guide rail (27), a first electric slider (28), a second cylinder (29), a second push rod (2901), and a second clamping plate (30). The first electric guide rail (27) is installed on the connecting plate (3), and the first electric slider (28) is installed on the first electric guide rail (27). The first electric slider (28) slides in the first electric guide rail (27). The second cylinder (29) is installed on the first electric slider (28). The second push rod (2901) is installed on the telescopic rod of the second cylinder (29). Two second clamping plates (30) are slidably arranged on the second cylinder (29). The two second clamping plates (30) are rotatably connected to the second push rod (2901).
4. The hot-dip tinning equipment for metal wires according to claim 3, characterized in that, It also includes a second mounting base (31), a third cylinder (32), a third push rod (3201), a reciprocating push plate (33), a storage box (34), and a storage frame (35). Two second mounting bases (31) are mirror-arranged on the connecting plate (3). A third cylinder (32) is mounted on the second mounting base (31). A third push rod (3201) is fixedly connected to the telescopic rod of the third cylinder (32). A reciprocating push plate (33) is fixedly connected to the third push rod (3201). Two storage frames (35) are mirror-arranged on the connecting plate (3). Two storage boxes (34) are fixedly connected to the connecting plate (3).
5. The apparatus for processing a metal wire with hot-dipped tin according to claim 4, wherein It also includes a second electric guide rail (36), a second electric slider (37), a fourth cylinder (38), a fixed frame (3902), a fourth push rod (3801), a connecting block (3901), and a fourth clamping plate (39). The second electric guide rail (36) is installed on the mounting plate (2). The second electric slider (37) is installed on the second electric guide rail (36). The second electric slider (37) slides on the second electric guide rail (36). The fourth cylinder (38) is installed on the second electric slider (37). The fourth push rod (3801) is installed on the telescopic rod of the fourth cylinder (38). The connecting block (3901) is fixedly connected to the fourth push rod (3801). The fixed frame (3902) is fixedly connected to the second electric slider (37). The fourth clamping plate (39) is rotatably set on the fixed frame (3902). The connecting block (3901) is rotatably connected to the two fourth clamping plates (39).
6. The hot-dip tinning equipment for metal wires according to claim 5, characterized in that, It also includes shock-absorbing silicone pads (40), and two shock-absorbing silicone pads (40) are embedded in the support frame (1).
Citation Information
Patent Citations
Full-automatic terminal crimping, shell inserting and tin dipping machine
CN210092548U