Cable tin pick-up device

By designing components such as the conveying mechanism and the tinning mechanism of the cable tinning device, the problem of uneven coating of flux and solder was solved, which improved the conductivity and welding quality of the cable and extended its service life.

CN223492264UActive Publication Date: 2025-10-31KANGHONG (DONGGUAN) MEDICAL WIRE HARNESS TECHNOLOGY CO LTD
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Patent Information

Application Number
CN202422921728.X
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-11-28
Publication Date
2025-10-31
Estimated Expiration
2034-11-28

AI Technical Summary

Technical Problem

Existing cable tinning equipment struggles to evenly and adequately coat the cable core with flux and solder, resulting in poor cable conductivity and welding quality.

Method used

A cable tinning device was designed, including a conveying mechanism, a tinning mechanism, a tin scraping mechanism, a wire core bending mechanism, and a stripping mechanism. Through the coordinated action of multiple driving components, uniform coating of flux and solder is achieved.

Benefits of technology

This method achieves uniform coating of flux and solder on the cable workpiece core, improving the cable's conductivity and welding quality, and extending the cable's service life.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to the technical field of cable production equipment, in particular to a cable tin dipping device, which comprises a workbench, a conveying mechanism is rotatably arranged on the workbench, a jig is movably arranged on the conveying mechanism, and a cable workpiece is detachably arranged on the jig; the tin pick-up mechanism is arranged on the workbench and comprises a first driving assembly, a second driving assembly, a scaling powder box and a tin furnace, and the scaling powder box and the tin furnace are arranged in the conveying direction of the conveying mechanism; the number of the first driving assemblies is at least two. A power output shaft of each first driving assembly is in driving connection with the scaling powder box and the tin furnace. A power output shaft of the second driving assembly is in driving connection with the conveying mechanism. According to the utility model, the two first driving assemblies respectively push the soldering flux box or the tin furnace to ascend and move to a specified height, and then the second driving assembly drives the whole conveying mechanism to turn over until the wire core of the cable workpiece can be uniformly and fully coated by the soldering flux in the soldering flux box or the tin material in the tin furnace.
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Description

Technical Field

[0001] This utility model relates to the technical field of cable production equipment, and in particular to a cable tinning device. Background Technology

[0002] Cable tinning equipment is used to coat the surface of cable cores with molten tin to form a conductive layer, thereby improving the cable's conductivity, reducing resistance, ensuring smooth current transmission, preventing oxidation of the cable cores, and extending the cable's service life.

[0003] In some related technologies, the soldering mechanism includes a solder pot, a flux box, and a drive cylinder that controls the lifting and moving of the solder pot and flux box. The drive cylinder pushes the entire solder pot and flux box up until the cable core can be extended into the solder bath for soldering. This soldering mechanism has a defect: if the cable workpiece assembled on the fixture is in a parallel swing direction, it is difficult to ensure that the cable core is fully extended into the solder bath and flux box after the solder pot and flux box are raised. As a result, the flux and solder are not evenly and fully coated on the cable core. Utility Model Content

[0004] In order to overcome the technical problem that existing cable tinning devices are unable to uniformly and fully coat the core of the cable workpiece with flux and solder, this utility model provides a cable tinning device.

[0005] The technical solution adopted by this utility model to solve its technical problem is:

[0006] A cable tinning device, the cable tinning device comprising:

[0007] A workbench is provided with a rotatable conveying mechanism, and a fixture is provided on the conveying mechanism. The fixture is detachably provided with a cable workpiece.

[0008] A soldering mechanism is provided on a worktable. The soldering mechanism includes a first drive assembly, a second drive assembly, and a flux box and a solder pot arranged along the conveying direction of the conveying mechanism. At least two first drive assemblies are provided. The power output shaft of each first drive assembly is driven and connected to the flux box and the solder pot, respectively, and can drive the flux box and the solder pot to move vertically. The power output shaft of the second drive assembly is driven and connected to the conveying mechanism, and can drive the conveying mechanism to rotate relative to the worktable.

[0009] As a preferred technical solution of this utility model, the conveying mechanism is provided with a rotating shaft, and a linkage component is sleeved on one end of the rotating shaft;

[0010] The power output shaft of the second drive component is rotatably connected to the linkage.

[0011] As a preferred technical solution of this utility model, the cable tinning device further includes a tin scraping mechanism; the tin scraping mechanism includes a third driving component and a tin scraping block; the third driving component is disposed on the worktable, and the third driving component is drivenly connected to the tin scraping block.

[0012] As a preferred technical solution of this utility model, the tin scraping mechanism further includes a tin dross collection box disposed on the workbench, and the tin furnace is built into the tin dross collection box; a tin dross discharge port is opened on one side of the tin furnace, and a guide plate is provided at the tin dross discharge port.

[0013] As a preferred technical solution of this utility model, the cable tinning device further includes two wire core bending mechanisms. Each wire core bending mechanism includes a fourth driving component and a pressing and bending part. Each fourth driving component is disposed on the workbench and is located above the flux box and the tin furnace, respectively. The fourth driving component is drivenly connected to the pressing and bending part.

[0014] The bending section has a groove for bending the core wire of the cable workpiece.

[0015] As a preferred technical solution of this utility model, a heating unit is provided inside the tin furnace; the tinning mechanism also includes a tin wire conveying assembly disposed on the worktable.

[0016] As a preferred technical solution of this utility model, the solder wire feeding assembly includes a solder wire drum, a support base, a drive wheel, a driven wheel, and a motor; the support base is disposed on the worktable, the drive wheel and the driven wheel are both rotatably disposed on the support base, the solder wire output by the solder wire drum is clamped between the drive wheel and the driven wheel, and the power output shaft of the motor is drivenly connected to the drive wheel.

[0017] As a preferred technical solution of this utility model, the cable tinning device further includes a stripping mechanism and a fifth driving component disposed on the workbench, wherein the fifth driving component is drivenly connected to the stripping mechanism.

[0018] As a preferred technical solution of this utility model, the peeling mechanism includes a support frame, a fixture pressing component, a sixth drive component, and a first peeling knife group and a second peeling knife group arranged opposite to each other; the fixture pressing component and the sixth drive component are disposed on the support frame;

[0019] The sixth drive assembly is driven by the first peeling knife assembly, and the second peeling knife assembly is fixedly mounted on the support frame.

[0020] As a preferred technical solution of this utility model, the fixture pressing assembly includes a pressing block and a seventh driving assembly; the seventh driving assembly is disposed on the support frame, and the power output shaft of the seventh driving assembly is drivenly connected to the pressing block.

[0021] Compared with the prior art, the beneficial effects of this utility model are:

[0022] The jig for assembling the cable workpiece is transported to a position near the flux box by a conveying mechanism. The flux box is then pushed upward by the first drive component to a designated height. Subsequently, the second drive component drives the entire conveying mechanism to flip so that the core of the cable workpiece can be coated with flux from the flux box. After the second drive component drives the conveying mechanism to reset, the jig is transported to a designated position near the solder pot. The second drive component drives the entire conveying mechanism to flip so that the core of the cable workpiece can be coated with solder from the solder pot. Finally, the second drive component drives the conveying mechanism to reset, ensuring that flux and solder are evenly and fully coated on the core of the cable workpiece. Attached Figure Description

[0023] To more clearly illustrate the technical solutions of the embodiments of this utility model, the drawings used in the description of the embodiments will be briefly introduced below. Obviously, the drawings described below are some embodiments of this utility model. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort.

[0024] Figure 1 This is an overall structural diagram of an embodiment of the present utility model.

[0025] Figure 2 This is a usage state diagram of an embodiment of this utility model.

[0026] Figure 3 yes Figure 2 A magnified view of section A in the image.

[0027] Figure 4 This is an overall structural diagram of an embodiment of the present utility model.

[0028] Figure 5 yes Figure 4 A magnified view of section B in the image.

[0029] Figure 6 This is a structural diagram of the peeling mechanism according to an embodiment of the present invention.

[0030] Numbers in the diagram

[0031] 1. Conveying mechanism; 11. Fixture; 12. Cable workpiece; 13. Rotating shaft; 14. Linkage component;

[0032] 2. Soldering mechanism; 21. First drive assembly; 22. Second drive assembly; 23. Flux box;

[0033] 3. Solder scraping mechanism; 31. Third drive assembly; 32. Solder scraper block;

[0034] 4. Tin furnace; 41. Tin dross collection box; 42. Guide plate;

[0035] 5. Core bending mechanism; 51. Fourth drive assembly; 52. Pressing and bending part; 53. Groove;

[0036] 6. Solder wire feed assembly; 61. Solder wire spool; 62. Support base; 63. Drive wheel; 64. Driven wheel; 65. Motor;

[0037] 7. Peeling mechanism; 71. Fifth drive assembly; 72. Support frame; 73. Fixture pressing assembly; 731. Pressing block; 74. Seventh drive assembly; 75. Sixth drive assembly; 76. First peeling knife assembly; 77. Second peeling knife assembly. Detailed Implementation

[0038] To make the technical problems, technical solutions and beneficial effects to be solved by this application clearer, the following describes this application in further detail with reference to the accompanying drawings and embodiments.

[0039] It should be understood that the specific embodiments described herein are merely illustrative of this application and are not intended to limit this application.

[0040] It should be noted that when a component is referred to as "fixed to" or "set on" another component, it can be directly on the other component or indirectly on that other component.

[0041] When a component is said to be "connected to" another component, it can be directly connected to the other component or indirectly connected to that other component.

[0042] It should be understood that the terms "length", "width", "upper", "lower", "front", "rear", "left", "right", "vertical", "horizontal", "top", "bottom", "inner", "outer", etc., indicate the orientation or positional relationship based on the orientation or positional relationship shown in the accompanying drawings. They are only for the convenience of describing this application and simplifying the description, and do not indicate or imply that the device or element referred to must have a specific orientation, or be constructed and operated in a specific orientation. Therefore, they should not be construed as limitations on this application.

[0043] Furthermore, the terms "first" and "second" are used for descriptive purposes only and should not be construed as indicating or implying relative importance or implicitly specifying the number of technical features indicated. Thus, a feature defined with "first" or "second" may explicitly or implicitly include one or more of that feature.

[0044] In the description of this application, "multiple" means two or more, unless otherwise expressly and specifically defined.

[0045] In order to solve the technical problem that existing cable tinning devices have difficulty in uniformly and fully coating the flux and solder onto the core of the cable workpiece 12, this utility model provides a cable tinning device.

[0046] The following describes in detail the specific structure of a cable tinning device provided by an embodiment of this utility model, according to the appendix. Figure 1-6 As shown, the specific structure of the cable tinning device includes a worktable and a tinning mechanism 2.

[0047] A conveying mechanism 1 is rotatably mounted on the workbench, and a fixture 11 is movably mounted on the conveying mechanism 1. A cable workpiece 12 is detachably mounted on the fixture 11.

[0048] Specifically, since the assembly slot of the fixture 11 is set according to the shape and size of the cable workpiece 12, when the cable workpiece 12 is assembled into the assembly slot of the fixture 11, the cable workpiece 12 can be fixedly clamped, thereby preventing the cable workpiece 12 from shifting during the subsequent soldering process, and accurately positioning the cable workpiece 12. The conveying mechanism 1 is used to smoothly move the cable workpiece 12. According to the speed and direction set by the program, the fixture 11 with the cable workpiece 12 is automatically moved from one processing station to the next station. For example, the fixture 11 is conveyed to the soldering mechanism 2 for soldering. This arrangement improves the continuity of the production process and the production efficiency of the cable.

[0049] according to Figure 1 and Figure 2 As shown, the soldering mechanism 2 is disposed on the worktable. The soldering mechanism 2 includes a first drive assembly 21, a second drive assembly 22, and a flux box 23 and a solder pot 4 disposed along the conveying direction of the conveying mechanism 1. At least two first drive assemblies 21 are provided. The power output shaft of each first drive assembly 21 is drivenly connected to the flux box 23 and the solder pot 4 respectively and can drive the flux box 23 and the solder pot 4 to move in the vertical direction respectively. The power output shaft of the second drive assembly 22 is drivenly connected to the conveying mechanism 1 and can drive the conveying mechanism 1 to rotate relative to the worktable.

[0050] Specifically, when it is necessary to tin the core of the cable workpiece 12, the jig 11 holding the cable workpiece 12 is first transported to the side of the flux box 23 by the conveying mechanism 1. One of the first drive components 21 pushes the entire flux box 23 upwards and moves it a certain distance. Then, the second drive component 22 pulls the entire conveying mechanism 1 to rotate relative to the worktable. During this process, the jig 11 can be tilted until the core of the cable workpiece 12 can extend into the flux box 23. After the core of the cable workpiece 12 is fully coated with flux, the second drive component 22 pushes the entire conveying mechanism 1 to rotate relative to the worktable. After the core of the cable workpiece 12 extends out of the flux box 23, the flux can be evenly and fully coated on the core of the cable workpiece 12. Then, the first drive assembly 21 and the second drive assembly 22 respectively drive the flux box 23 and the conveying mechanism 1 to reset. Subsequently, the jig 11 is transported to the side of the solder pot 4 by the conveying mechanism 1. The first drive assembly 21 pushes the entire solder pot 4 to rise and move a certain distance. Then, the second drive assembly 22 pulls the entire conveying mechanism 1 to rotate relative to the worktable until the core of the cable workpiece 12 can extend into the solder pot 4 and the core of the cable workpiece 12 is fully coated with solder.

[0051] It should be noted that the purpose of applying flux before tinning the core of cable workpiece 12 is to remove oxides, oil, and other impurities from the surface of the cable core, clean the core surface, prevent the cable core from being oxidized during the welding process, protect the core from the generation and influence of oxides, thereby ensuring the quality of the welding. Moreover, the flux helps to coat the tin onto the core, forming a uniform and complete coating, avoiding defects such as voids and incomplete coverage during the coating process.

[0052] according to Figure 1 and Figure 2 As shown, in order to accurately and efficiently control the rotation of the conveying mechanism 1, in some specific embodiments, the conveying mechanism 1 is provided with a rotating shaft 13, and a linkage 14 is sleeved on one end of the rotating shaft 13; the power output shaft of the second drive assembly 22 is rotatably connected to the linkage 14.

[0053] Specifically, when the entire conveying mechanism 1 needs to be rotated, the linkage 14 is equipped with a rotating shaft, the power output shaft of the second drive assembly 22 is rotatably sleeved on the rotating shaft, and the rotating shaft 13 of the conveying mechanism 1 is fixedly connected to the linkage 14. Thus, when the power output shaft of the second drive assembly 22 pushes or pulls the linkage 14, the linkage 14 can be rotated around the circumference of the rotating shaft due to the action of the rotating shaft. The rotating shaft 13 of the conveying mechanism 1 is fixedly connected to the linkage 14, so that when the linkage 14 rotates, the rotating shaft 13 of the conveying mechanism 1 also rotates, thereby driving the entire conveying mechanism 1 to rotate so that the wire core of the cable workpiece 12 can be extended into the flux box 23 or the solder pot 4. This configuration makes the rotation of the conveying mechanism 1 more flexible and convenient, and also achieves precise and efficient control of the rotation of the conveying mechanism 1.

[0054] It is understood that the second drive component 22 in this embodiment of the present invention is a cylinder.

[0055] according to Figure 1 , Figure 2 and Figure 4 As shown, in some specific embodiments, the cable soldering device further includes a solder scraping mechanism 3 disposed on the worktable; the solder scraping mechanism 3 includes a third drive component 31 and a solder scraping block 32; the third drive component 31 is disposed on the worktable, and the third drive component 31 is drivenly connected to the solder scraping block 32.

[0056] Specifically, when the tin is melted and stored in the tin furnace 4, impurities and lumps may appear on the surface of the tin due to the adhesion of impurities in the air or the natural oxidation of the tin. Therefore, the third drive component 31 is used to push the entire tin scraper 32 to move along the surface of the tin until the tin scraper 32 scrapes the surface of the tin in the tin furnace 4. During this process, a certain pressure is applied by the third drive component 31, and the scraper of the tin scraper 32 comes into contact with the surface of the tin to cut the surface of the tin, so that the oxide layer and deposits on the surface of the tin are removed, and the smoothness of the surface of the tin is also improved.

[0057] It is understandable that the solder scraper 32 is made of hard materials, such as copper, aluminum and other metals. The specific type is not limited here. This type of solder scraper 32 has high hardness and wear resistance and can effectively scrape off the oxide layer and impurities on the surface of the solder.

[0058] The third drive assembly 31 includes a lead screw, a movable seat, a guide rail, and a motor. The power output shaft of the motor is connected to the lead screw. The movable seat is movably mounted on the guide rail. The movable seat is provided with a nut seat for fitting onto the lead screw. The solder scraper 32 is mounted on the movable seat. Thus, when the motor drives the lead screw to rotate through the power output shaft, the nut seat moves along the axial direction of the lead screw. At the same time, the movable seat moves synchronously on the guide rail following the moving direction of the nut seat, thereby moving the solder scraper 32 to the surface of the solder in the solder pot 4 for scraping.

[0059] according to Figure 1 As shown, in a further embodiment, the tin scraping mechanism 3 also includes a tin dross collection box 41 disposed on the workbench, and the tin furnace 4 is built into the tin dross collection box 41; a tin dross discharge port is opened on one side of the tin furnace 4, and a guide plate 42 is provided at the tin dross discharge port.

[0060] Specifically, when the tin scraper 32 scrapes the surface of the tin material in the tin furnace 4, since the tin dross outlet is located in the moving direction of the tin scraper 32, the scraped tin dross can be quickly guided into the tin dross collection box 41 by the guide plate 42, so that the tin dross is automatically discharged into the tin dross collection box 41, effectively preventing the tin dross from scattering in the work area, keeping the workbench clean and hygienic, and also preventing it from adhering to other parts after cooling.

[0061] according to Figures 1-3 As shown, in some specific embodiments, the cable tinning device further includes two wire core bending mechanisms 5 disposed on the worktable. Each wire core bending mechanism 5 includes a fourth drive assembly 51 and a bending pressure part 52. Each fourth drive assembly 51 is disposed on the worktable and is located above the flux box 23 and the tin pot 4, respectively. The fourth drive assembly 51 is drivenly connected to the bending pressure part 52. The bending pressure part 52 forms a groove 53 for bending the core wire of the cable workpiece 12.

[0062] Specifically, since some of the core wires of the cable workpiece 12 are relatively short and difficult to extend into the flux box 23 or the solder pot 4, the shorter core wires of the cable workpiece are transported by the conveying mechanism 1 to the groove 53 located below the bending section 52. The power output shaft of the fourth drive assembly 51 drives the entire bending section 52 to move vertically, that is, the bending section 52 moves along the shorter core wires in the cable workpiece 12 until the groove 53 of the bending section 52 is used to press the core wire so that the core wire is bent. Then, when the conveying mechanism 1 rotates, each core wire of the cable workpiece 12 can extend into the flux box 23 or the solder pot 4.

[0063] It is understood that the fourth drive component 51 in this embodiment of the present invention is a cylinder.

[0064] In some specific embodiments, a heating unit is provided inside the tin furnace 4; the tinning mechanism 2 also includes a tin wire conveying assembly 6 disposed on the worktable.

[0065] Specifically, as the solder scraper 32 scrapes the surface of the solder in the solder furnace 4, the amount of solder in the solder furnace 4 will continuously decrease, so it is necessary to replenish the solder in the solder furnace 4; the solder wire conveying assembly 6 continuously conveys the solder wire into the solder furnace 4, and a heating unit is set in the solder furnace 4 to provide a stable heat source so that the temperature in the solder furnace 4 reaches the specified temperature, and the solder wire can be quickly melted to form solder when it is conveyed into the solder furnace 4.

[0066] according to Figure 5 As shown, specifically, the solder wire feeding assembly 6 includes a solder wire drum 61, a support base 62, a drive wheel 63, a driven wheel 64, and a motor; the support base 62 is disposed on the worktable, and the drive wheel 63 and the driven wheel 64 are both rotatably disposed on the support base 62. The solder wire output from the solder wire drum 61 is clamped between the drive wheel 63 and the driven wheel 64, and the power output shaft of the motor is drivenly connected to the drive wheel 63.

[0067] Specifically, since the solder wire is pre-tensioned and fixed between the drive wheel 63 and the driven wheel 64, and one end of the solder wire extends into the solder pot 4, the drive wheel 63 is driven to rotate by the power output shaft of the motor while it is being continuously fed into the solder pot 4. Under the friction of the solder wire, the driven wheel 64 also rotates, so that the solder wire is continuously pulled out from the solder wire spool 61 and continuously fed into the solder pot 4, thereby achieving continuous and stable feeding of the solder wire.

[0068] according to Figure 6 As shown, in some specific embodiments, the cable tinning device further includes a stripping mechanism 7 and a fifth drive assembly 71 disposed on the workbench, the fifth drive assembly 71 being drivenly connected to the stripping mechanism 7.

[0069] Specifically, before tinning the cable workpiece 12, it is necessary to ensure that the core conductor of the cable workpiece 12 is exposed so that the tinning operation can be performed. Therefore, the fifth drive component 71 pushes the entire stripping mechanism 7 to move along a preset path until the protective layer of the cable workpiece 12 is fixedly clamped by the stripping mechanism 7. Then, the fifth drive component 71 pulls the entire stripping mechanism 7 to reset and move, so as to accurately strip the cable and expose the core conductor of the cable workpiece 12.

[0070] The specific structure of the fifth drive assembly 71 is similar to that of the third drive assembly 31. Both include a lead screw, a moving base, a guide rail, and a motor, etc. Therefore, the connection method and operating principle of each component will not be described in detail here.

[0071] according to Figure 6As shown, specifically, the peeling mechanism 7 includes a support frame 72, a fixture pressing assembly 73, a sixth drive assembly 74, and a first peeling knife assembly 75 and a second peeling knife assembly 76 arranged opposite to each other; the fixture pressing assembly 73 and the sixth drive assembly 74 are disposed on the support frame 72; the sixth drive assembly 74 is drivenly connected to the first peeling knife assembly 75, and the second peeling knife assembly 76 is fixedly disposed on the support frame 72.

[0072] Specifically, when the fifth drive assembly 71 pushes the support frame 72 to move until one end of the cable workpiece 12 is located between the first stripping knife group 75 and the second stripping knife group 76, the fixture pressing assembly 73 is used to fix and press the fixture 11 on which the cable workpiece 12 is mounted, to prevent the fixture 11 from shaking when stripping the cable workpiece 12. Then, the sixth drive assembly 74 is used to drive the first stripping knife group 75 to move along the direction of the second stripping knife group 76 until the first stripping knife group 75 and the second stripping knife group 76 can simultaneously clamp the protective layer of the cable workpiece 12. At this time, the fifth drive assembly 71 is used to pull the support frame 72 to reset and move so that one end of the fixedly clamped cable workpiece 12 is stripped, that is, after removing the protective layer of the cable workpiece 12, the core wire of one end of the cable workpiece 12 is exposed.

[0073] It is understood that the sixth drive assembly 74 of this utility model embodiment includes a motor, a drive gear, a driven gear, a transmission belt, a lead screw, and a nut seat sleeved on the lead screw; the power output shaft of the motor is connected to the drive gear, the driven gear is sleeved on one end of the lead screw, the inner side of the transmission belt is sleeved on both the drive gear and the driven gear, and the first peeling knife assembly 75 is disposed on the nut seat; when the motor starts, its power output shaft drives the drive gear to rotate, and the drive gear transmits power to the driven gear through the transmission belt so that the driven gear follows the drive gear to rotate, and at the same time drives the lead screw to rotate, and when the lead screw rotates, it drives the nut seat to move along the axial direction of the lead screw, thereby driving the first peeling knife assembly 75 to move in the direction of the second peeling knife assembly 76.

[0074] In a further embodiment, both the first stripping knife group 75 and the second stripping knife group 76 include cutting blades for cutting the protective layer of the cable. The cutting blades are serrated. This type of cutting blade can increase the friction between the cutting blade and the protective layer of the cable workpiece 12. When the cutting blade is cutting or peeling, it can more firmly clamp the outer protective layer of the cable, reducing the possibility of incomplete stripping or damage to the wire core due to slippage.

[0075] The aforementioned jig pressing assembly 73 includes a pressing block 731 and a seventh drive assembly 732; the seventh drive assembly 732 is disposed on the support frame 72, and the power output shaft of the seventh drive assembly 732 is drivenly connected to the pressing block 731.

[0076] Specifically, in order to fix the fixture 11 on which the cable workpiece 12 is mounted, the power output shaft of the seventh drive assembly 732 pushes the pressing block 731 to move along the direction of the fixture 11 until the bottom surface of the pressing block 731 contacts the surface of the fixture 11 and generates sufficient pressure to fix the fixture 11. After stripping one end of the cable workpiece 12, the seventh drive assembly 732 pulls the pressing block 731 up and moves it until its bottom surface separates from the fixture 11. At this time, the fixture 11 can be transported to the soldering mechanism 2 by the conveying mechanism 1.

[0077] It is understood that the seventh drive component 732 in this embodiment of the present invention is a cylinder.

[0078] The above description is merely a specific embodiment of this utility model, but the protection scope of this utility model is not limited thereto. Any person skilled in the art can easily conceive of various equivalent modifications or substitutions within the technical scope disclosed in this utility model, and these modifications or substitutions should all be covered within the protection scope of this utility model. Therefore, the protection scope of this utility model should be determined by the scope of the claims.

Claims

1. A cable tinning device, characterized in that, The cable tinning device includes: A workbench, on which a conveying mechanism is rotatably mounted, the conveying mechanism is equipped with a movable fixture, and the fixture is equipped with a detachable cable workpiece; A soldering mechanism is provided on a worktable. The soldering mechanism includes a first drive assembly, a second drive assembly, and a flux box and a solder pot arranged along the conveying direction of the conveying mechanism. At least two first drive assemblies are provided. The power output shaft of each first drive assembly is driven and connected to the flux box and the solder pot, respectively, and can drive the flux box and the solder pot to move vertically. The power output shaft of the second drive assembly is driven and connected to the conveying mechanism, and can drive the conveying mechanism to rotate relative to the worktable.

2. The cable tinning device according to claim 1, characterized in that, The conveying mechanism is provided with a rotating shaft, and a linkage component is sleeved on one end of the rotating shaft; The power output shaft of the second drive component is rotatably connected to the linkage.

3. The cable tinning device according to claim 1, characterized in that, The cable tinning device further includes a tin scraping mechanism; the tin scraping mechanism includes a third drive component and a tin scraping block; the third drive component is disposed on the worktable, and the third drive component is drivenly connected to the tin scraping block.

4. The cable tinning device according to claim 3, characterized in that, The tin scraping mechanism also includes a tin dross collection box disposed on the workbench, and the tin furnace is built into the tin dross collection box; a tin dross discharge port is provided on one side of the tin furnace, and a guide plate is provided at the tin dross discharge port.

5. The cable tinning device according to claim 1, characterized in that, The cable tinning device further includes two wire core bending mechanisms. Each wire core bending mechanism includes a fourth drive component and a bending pressure part. Each fourth drive component is disposed on the workbench and is located above the flux box and the tin furnace, respectively. The fourth drive component is drivenly connected to the bending pressure part. The bending section has grooves for bending the core wire of the cable workpiece.

6. The cable tinning device according to claim 1, characterized in that, A heating unit is provided inside the tin furnace; the tinning mechanism also includes a tin wire feeding assembly disposed on the worktable.

7. The cable tinning device according to claim 6, characterized in that, The solder wire feeding assembly includes a solder wire spool, a support base, a drive wheel, a driven wheel, and a motor; the support base is disposed on the worktable, the drive wheel and the driven wheel are both rotatably disposed on the support base, the solder wire output by the solder wire spool is clamped between the drive wheel and the driven wheel, and the power output shaft of the motor is drivenly connected to the drive wheel.

8. The cable tinning apparatus according to any one of claims 1-7, characterized in that, The cable tinning device also includes a stripping mechanism and a fifth drive assembly disposed on the workbench, the fifth drive assembly being drivenly connected to the stripping mechanism.

9. The cable tinning device according to claim 8, characterized in that, The peeling mechanism includes a support frame, a fixture pressing assembly, a sixth drive assembly, and a first peeling knife group and a second peeling knife group arranged opposite to each other; the fixture pressing assembly and the sixth drive assembly are both disposed on the support frame; The sixth drive assembly is driven by the first peeling knife assembly, and the second peeling knife assembly is fixedly mounted on the support frame.

10. The cable tinning device according to claim 9, characterized in that, The fixture pressing assembly includes a pressing block and a seventh drive assembly; the seventh drive assembly is disposed on the support frame, and the power output shaft of the seventh drive assembly is drivenly connected to the pressing block.