An intelligent card thread burying head visual positioning adjusting device
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- 深圳市华昇精密科技有限公司
- Filing Date
- 2026-03-24
- Publication Date
- 2026-06-02
Smart Images

Figure CN121905704B_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of integrated circuit manufacturing technology, and in particular to a visual positioning and adjustment device for the embedded wire head of a smart card. Background Technology
[0002] A smart card is a CPU card that integrates both contact and contactless communication interfaces. It combines the advantages of contact and contactless IC cards, and features large storage capacity, high reliability, high security, and wide applicability. Therefore, it is widely used in finance, telecommunications, public transportation, social insurance and other fields.
[0003] A search revealed that patent CN121416309A discloses a high-efficiency smart card embedding head positioning and spacing adjustment device, which includes a fixed winding unit, a guide adjustment unit, a conveying unit, and an embedding unit. This device enables precise delivery of copper wire to the embedding assembly and smart card embedding operations. When adjusting the spacing, the device utilizes the coordinated drive of the guide and adjustment components to achieve multi-unit linkage spacing adjustment of the embedding assembly, as well as individual fine-tuning of a single embedding assembly.
[0004] While the aforementioned application achieves adjustment of the buried wire end spacing, it is only a single-dimensional design and lacks horizontal front-to-back adjustment functionality. The spacing and front-to-back position determine the coil width and chip pin alignment accuracy, respectively, and the two must be matched in coordination. Otherwise, it is easy to cause the problem of repeated manual calibration during production. Furthermore, it cannot be adjusted synchronously in two dimensions, resulting in long downtime and high accuracy errors when changing models or misaligning buried wires. It also cannot achieve multi-group linkage or single-group independent fine-tuning, making it difficult to adapt to production. There is an urgent need for buried wire end positioning and adjustment equipment that can be adjusted synchronously in two dimensions, supports single or multiple groups of independent fine-tuning, and requires less manual intervention. Summary of the Invention
[0005] In view of the problems existing in the current smart card embedding head visual positioning adjustment device, the present invention is proposed.
[0006] Therefore, the present invention provides a visual positioning adjustment device for smart card embedded wire ends, the purpose of which is to solve the problem that the front and rear dimensions cannot be adjusted synchronously, and manual calibration is still required, resulting in a cumbersome process, long time consumption, high cost and unstable accuracy.
[0007] To solve the above-mentioned technical problems, the present invention provides the following technical solution: a smart card embedding head visual positioning adjustment device, including a driving device, an adjustment unit fixedly installed on the driving device, and an embedding unit fixedly installed on the adjustment unit; the adjustment unit includes a moving component fixedly installed on the driving device, a spacing component slidably installed on the moving component, an extension component fixedly installed on the spacing component, and a pushing component fixedly installed on the spacing component, wherein the pushing component and the extension component are slidably connected; the embedding unit includes an embedding component fixedly installed on the spacing component.
[0008] As a preferred embodiment of the smart card embedded wire visual positioning adjustment device of the present invention, the moving component includes a mounting base plate fixedly mounted on the driving device, a connector fixedly mounted on the mounting base plate, a winding component fixedly mounted on the connector, a limiting component one fixedly mounted on the mounting base plate, a sliding buckle fixedly mounted on the limiting component one, and a driving component fixedly mounted on the mounting base plate.
[0009] As a preferred embodiment of the smart card embedded wire visual positioning adjustment device of the present invention, the spacing component includes a mounting plate fixedly mounted on the driving component, a connecting plate fixedly mounted on the mounting plate, a movable card strip fixedly mounted on the connecting plate, and a movable component fixedly mounted on the movable card strip.
[0010] As a preferred embodiment of the smart card embedded wire visual positioning adjustment device of the present invention, a driving part is fixedly installed on the moving part, and a moving groove is engaged on the driving part.
[0011] In a preferred embodiment of the smart card embedded wire visual positioning adjustment device of the present invention, a push plate is slidably mounted on the moving part, and the push plate is fixedly connected to the extension component.
[0012] As a preferred embodiment of the smart card embedded wire visual positioning adjustment device of the present invention, the extension component includes a sliding plate slidably installed on the inner wall of the moving groove, a connecting column fixedly installed on the sliding plate, and a moving toothed plate slidably installed inside the connecting column, wherein the other end of the moving toothed plate passes through the moving member and is fixedly connected to the push plate.
[0013] As a preferred embodiment of the smart card embedded wire visual positioning adjustment device of the present invention, a fixing component is fixedly installed on the sliding plate, a limiting component two is slidably installed inside the fixing component, a drive rod is rotatably installed inside the limiting component two, and the drive rod is slidably connected to the fixing component, a motor is fixedly installed on the mounting plate, and a worm gear is fixedly installed at the output end of the motor.
[0014] As a preferred embodiment of the visual positioning and adjustment device for the smart card embedded wire head described in this invention, a turbine is fixedly installed on the top of the drive rod and meshes with a worm gear, and a gear is fixedly installed on the bottom of the drive rod and meshes with a movable gear plate.
[0015] As a preferred embodiment of the smart card embedded wire visual positioning adjustment device of the present invention, the pushing component includes an electric push rod fixedly installed on the mounting base plate, a shrinking component fixedly installed on the output end of the electric push rod, and a second pushing plate slidably installed on the inner wall of the shrinking component, and the second pushing plate is slidably connected to the driving rod.
[0016] As a preferred embodiment of the smart card embedded wire visual positioning adjustment device of the present invention, the embedded wire assembly includes a movable connector fixedly installed on a push plate, a guide bracket fixedly installed on the movable connector, a rotational correction component fixedly installed on the guide bracket, a conveyor fixedly installed on the movable connector, a cooling fan fixedly installed on the conveyor, and an embedded wire component fixedly installed at the bottom of the cooling fan, wherein the embedded wire component is fixedly connected to the conveyor.
[0017] The beneficial effects of this invention are as follows: This invention achieves multi-dimensional linkage adjustment of the embedding assembly in height, spacing, and horizontal front-back direction through the coordinated cooperation of the moving component, driving device, extension component, spacing component, and pushing component. It can adjust a single embedding assembly individually, control multiple sets of embedding assemblies uniformly, and complete horizontal front-back alignment embedding in two sets as units, achieving synchronous adjustment of spacing and front-back dimensions. This avoids repetitive manual calibration of the embedding head, simplifies the process, reduces time consumption and labor costs, reduces manual accuracy errors, and improves embedding positioning accuracy, equipment debugging efficiency, and production stability. It solves the problems of existing technologies such as lack of dual-dimensional adjustment, long downtime due to misalignment embedding during type change, poor accuracy, and inability to link multiple sets or fine-tune a single set. It also meets the embedding production needs of smart cards with multiple specifications, high precision, and rapid order conversion. Attached Figure Description
[0018] To more clearly illustrate the technical solutions of the embodiments of the present invention, the drawings used in the following description of the embodiments will be briefly introduced. Obviously, the drawings described below are only some embodiments of the present invention. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort.
[0019] Figure 1 This is a schematic diagram of the overall structure of the smart card embedding head visual positioning adjustment device of the present invention.
[0020] Figure 2 This is a schematic diagram of the adjustment unit structure of the smart card embedded wire visual positioning adjustment device of the present invention.
[0021] Figure 3 This is a schematic diagram of the moving component structure of the smart card embedding head visual positioning adjustment device of the present invention.
[0022] Figure 4 This is a schematic diagram of the adjustment component structure of the smart card embedded wire visual positioning adjustment device of the present invention.
[0023] Figure 5 This is a schematic diagram of the extended component structure of the smart card embedded wire visual positioning adjustment device of the present invention.
[0024] Figure 6This is a diagram showing the internal structure of the extension component of the smart card embedded wire visual positioning adjustment device of the present invention.
[0025] Figure 7 The present invention relates to a visual positioning and adjustment device for the embedded wire head of a smart card. Figure 6 A magnified structural diagram at point A.
[0026] Figure 8 This is an exploded view of the extended component of the smart card embedded wire visual positioning adjustment device of the present invention.
[0027] Figure 9 This is an exploded structural diagram of the adjustment unit of the smart card embedded wire visual positioning adjustment device of the present invention.
[0028] Figure 10 This is an exploded side view of the adjustment unit of the smart card embedded wire visual positioning adjustment device of the present invention.
[0029] Explanation of reference numerals in the attached drawings: 1. Drive device; 2. Adjustment unit; 21. Moving component; 211. Mounting base plate; 212. Connector; 213. Winding component; 214. Drive component; 215. Limiting component one; 216. Sliding buckle; 22. Spacing component; 221. Mounting plate; 222. Connecting plate; 223. Guide bracket; 224. Moving block; 225. Moving clip; 226. Moving component; 227. Push plate one; 228. Drive unit; 229. Moving groove; 23. Extension component; 231. Motor 232. Worm gear; 233. Turbine; 234. Drive rod; 235. Gear; 236. Fixing component; 237. Limiting component two; 238. Connecting column; 238-1. Sliding plate; 239. Moving toothed plate; 24. Pushing assembly; 241. Electric push rod; 242. Retracting component; 243. Pushing plate two; 3. Embedded wire unit; 31. Embedded wire assembly; 311. Moving connecting component; 312. Guide bracket; 313. Rotational straightening component; 314. Conveying component; 315. Cooling fan; 316. Embedded wire component. Detailed Implementation
[0030] To make the above-mentioned objects, features and advantages of the present invention more apparent and understandable, the specific embodiments of the present invention will be described in detail below with reference to the accompanying drawings.
[0031] Example 1, referring to Figure 1 - Figure 2 The first embodiment of the present invention provides a visual positioning adjustment device for a smart card embedded wire head. The device includes: a driving device 1, an adjustment unit 2 fixedly installed on the driving device 1, and an embedded wire unit 3 fixedly installed on the adjustment unit 2.
[0032] The adjustment unit 2 includes: a moving component 21 fixedly installed on the drive device 1 for adjusting the height of the wire embedding assembly 31; a spacing component 22 slidably installed on the moving component 21 for adjusting the wire embedding spacing between the wire embedding assemblies 31; an extension component 23 fixedly installed on the spacing component 22; and a pushing component 24 fixedly installed on the spacing component 22 and slidably connected to the extension component 23. The extension component 23, in cooperation with the pushing component 24, can horizontally adjust the wire embedding position of the wire embedding assembly 31. The wire embedding unit 3 includes a wire embedding assembly 31 fixedly installed on the spacing component 22 for performing wire embedding operations on the smart card.
[0033] In use, the present invention completes the wire embedding operation inside the smart card by winding the wire around the moving component 21 and conveying it to the wire embedding component 31 through the moving component 21, with the cooperation of the driving device 1. When adjusting the wire embedding, the moving component 21, in conjunction with the driving device 1, causes the extension component 23 to drive the spacing component 22 and the wire embedding component 31 to rise and fall synchronously to match different wire embedding height requirements. If it is necessary to adjust the spacing of a single wire embedding component 31, the spacing of the wire embedding component 31 can be adjusted by driving the spacing component 22 and cooperating with the extension component 23.
[0034] Meanwhile, the spacing component 22 can not only adjust the spacing of a single wire-laying component 31, but also uniformly adjust the spacing of multiple groups of components, thereby achieving adjustment of the wire-laying width. The cooperation between the extension component 23 and the push component 24 can further control the wire-laying component 31, enabling it to perform horizontal movement adjustment while completing height and spacing adjustments, to meet the operational requirements of smart card misaligned wire-laying. Through the cooperation of the extension component 23 and the push component 24, the wire-laying component 31 can be adjusted horizontally in groups of two, achieving adjustment of the height, spacing, and width of the wire-laying component 31. The multi-dimensional linkage adjustment in the front and rear directions can adjust a single wire embedding component individually, control multiple wire embedding components uniformly, and complete the horizontal front and rear alignment of wire embedding in two units. It can achieve synchronous adjustment of spacing and front and rear dimensions, effectively avoiding the repetitive operation of manual calibration of wire embedding heads, simplifying the process, reducing time consumption and labor costs, reducing manual accuracy errors, effectively improving the positioning accuracy of wire embedding, equipment debugging efficiency and production stability. It also solves the problems of lack of dual-dimensional adjustment, long downtime for wire embedding due to type change and misalignment, poor accuracy and inability to link multiple groups and fine-tune a single group in the existing technology.
[0035] Example 2, refer to Figure 1 - Figure 8This is the second embodiment of the present invention, which differs from the first embodiment in that: the moving component 21 includes a mounting base plate 211 fixedly mounted on the driving device 1 for connecting the driving device 1; a connector 212 fixedly mounted on the mounting base plate 211 for connecting the winding component 213; the winding component 213 fixedly mounted on the connector 212 for feeding the wire coil; a limiting component 215 fixedly mounted on the mounting base plate 211 for cooperating with the mounting plate 221 to achieve vertical movement; a sliding buckle 216 fixedly mounted on the limiting component 215 for further cooperating with the movement of the mounting plate 221; and a driving component 214 fixedly mounted on the mounting base plate 211 for driving the mounting plate 221 to move.
[0036] Compared to Embodiment 1, this embodiment further optimizes the structure of the spacing component 22, which includes: a mounting plate 221 fixedly installed on the driving component 214 for cooperating with the driving component 214 to complete vertical movement; a connecting plate 222 fixedly installed on the mounting plate 221 for connecting the moving component 226; a moving clip 225 fixedly installed on the connecting plate 222 for cooperating with the moving component 226 to limit movement; and a moving component 226 fixedly installed on the moving clip 225 for connecting the buried wire component 31.
[0037] Furthermore, a drive unit 228 is fixedly installed on the moving part 226 for adjusting the spacing of the moving part 226; a moving groove 229 is engaged on the drive unit 228, which not only moves with the sliding plate 238-1, but also meets the spacing adjustment requirements of the drive unit 228; a push plate 227 is slidably installed on the moving part 226, and the push plate 227 is fixedly connected to the extension component 23 for sliding connection with the moving part 226 and fixed connection with the moving toothed plate 239, thereby realizing the horizontal movement adjustment of the buried wire component 31.
[0038] Furthermore, the extension component 23 includes a sliding plate 238-1 slidably mounted on the inner wall of the moving groove 229 for adjusting the spacing of the drive unit 228; a connecting post 238 fixedly mounted on the sliding plate 238-1 for moving the moving toothed plate 239; and a moving toothed plate 239 slidably mounted inside the connecting post 238, the other end of which passes through the moving member 226 and is fixedly connected to the push plate 227 for pushing the plate 227 to move, thereby driving the buried wire component 31 to complete the movement adjustment synchronously.
[0039] Furthermore, a fixing member 236 is fixedly installed on the sliding plate 238-1 for connecting the limiting member 237; the limiting member 237 is slidably installed inside the fixing member 236 for limiting the movement of the drive rod 234; the drive rod 234 is rotatably installed inside the limiting member 237, and the drive rod 234 is slidably connected to the fixing member 236; a motor 231 is fixedly installed on the mounting plate 221, and a worm gear 232 is fixedly installed at the output end of the motor 231. The worm gear 232 is driven to rotate by the motor 231, so that the worm 233 can drive the drive rod 234 and the gear 235 to rotate synchronously.
[0040] Furthermore, a turbine 233 is fixedly installed on the top of the drive rod 234, and the turbine 233 is meshed with the worm gear 232; a gear 235 is fixedly installed on the bottom of the drive rod 234, and the gear 235 is meshed with the movable gear plate 239; the meshing action of the turbine 233 and the worm gear 232 enables the drive rod 234 to synchronously drive the gear 235 to rotate.
[0041] Furthermore, the pushing component 24 includes an electric push rod 241 fixedly mounted on the mounting base plate 211 for pushing the shrinking member 242 to move; a shrinking member 242 fixedly mounted on the output end of the electric push rod 241 for cooperating with the push plate 243 when the spacing is adjusted in the drive unit 228; and a push plate 243 slidably mounted on the inner wall of the shrinking member 242, and the push plate 243 is slidably connected to the drive rod 234, so that the push plates 243 on both sides of the shrinking member 242 can move and cooperate when the spacing of the buried wire assembly 31 is adjusted in the drive unit 228.
[0042] During use, firstly, before burying the wire, the mounting plate 221 is moved up and down by the driving component 214 to adjust the burying height. At the same time, the limiting component 215 and the sliding buckle 216 work together to move the mounting plate 221 up and down. After the moving component 21 completes the height adjustment, the burying component 31 starts and begins normal burying operation.
[0043] When the wire embedding assembly 31 is performing wire embedding operations, if it is necessary to adjust its spacing and front-back position, the drive unit 228 can drive multiple sets of wire embedding assemblies 31 to adjust the spacing to adapt to different wire embedding requirements. At the same time, the motor 231 drives the worm gear 232 to rotate, and the worm gear 233, through meshing with the worm gear 232, drives the drive rod 234 and gear 235 to rotate synchronously. The gear 235 then meshes with the movable toothed plate 239 inside the connecting column 238, causing the movable toothed plate 239 to extend inside the connecting column 238, pushing the connecting column 238 through the fixing member 236 and driving the push plate 227 to move forward, ultimately realizing the horizontal position adjustment of the wire embedding assembly 31 on the push plate 227.
[0044] If it is necessary to adjust the horizontal position of a single group of buried wire assemblies 31, the electric push rod 241 will drive the retracting member 242 to apply a thrust to the drive rod 234, causing the drive rod 234 to move inside the fixing member 236 under the constraint of the limiting member 237, thereby disengaging the turbine 233 from the worm gear 232. At this time, even if the worm gear 232 continues to rotate, the disengaged turbine 233 will no longer rotate, and only the buried wire assembly 31 that remains engaged with the worm gear 232 will move horizontally. Through this mechanism, the overall horizontal adjustment and individual adjustment of multiple groups of buried wire assemblies 31 can be completed.
[0045] When the drive unit 228 adjusts the spacing of the movable connector 311, the electric push rod 241 will simultaneously push multiple sets of turbines 233 to disengage from the worm gear 232 to cooperate with the spacing adjustment operation of the drive unit 228; at the same time, the sliding plate 238-1 will slide in the moving groove 229 as the buried wire assembly 31 moves, further adapting to the spacing adjustment requirements of multiple sets of buried wire assemblies 31.
[0046] In this way, the device can not only adjust the spacing of the burying components 31, but also adjust their horizontal position. With the cooperation of the pushing component 24, it can simultaneously adjust multi-station burying components 31, or adjust them individually for different configurations such as dual-station and four-station configurations, thereby completing burying processes of different specifications and achieving multi-dimensional burying operations. It can even complete double-staggered burying on the same smart card, simultaneously adjusting the spacing and front / back dimensions. This eliminates the need for repeated manual drawing, measurement, adjustment, and calibration of multiple burying heads, effectively simplifying the debugging process, reducing time and labor costs, minimizing accuracy errors caused by manual adjustment, and improving burying positioning accuracy. Simultaneously, it can realize the burying group... Component 31 features multi-dimensional linkage adjustment in height, spacing, and horizontal front-back direction. It can adjust a single wire embedding component individually, control multiple wire embedding components uniformly, and complete horizontal front-back alignment wire embedding in two-unit units. It can simultaneously adjust the spacing and front-back dimensions, avoiding repetitive manual calibration of the wire embedding head, simplifying the process, reducing time consumption and labor costs, and reducing manual accuracy errors. It effectively improves the wire embedding accuracy, equipment debugging efficiency, and production stability of the wire embedding positioning equipment in the overall production line. It solves the problems of existing technologies such as lack of dual-dimensional adjustment, long downtime due to misalignment during wire embedding, poor accuracy, and inability to link multiple groups or fine-tune a single group. It also meets the wire embedding production needs of smart cards with multiple specifications, high precision, and rapid order conversion.
[0047] The remaining structure is the same as that in Example 1.
[0048] Example 3, referring to Figure 1 - Figure 10This is the third embodiment of the present invention. The difference between this embodiment and the second embodiment is that the buried wire assembly 31 includes a movable connector 311 fixedly installed on the push plate 227, which can move in the front and back dimensions while cooperating with the spacing assembly 22 to complete the spacing adjustment; a guide bracket 312 fixedly installed on the movable connector 311 for correcting the wire; and a rotary corrector 313 fixedly installed on the guide bracket 312, which works in conjunction with the guide bracket 312 to synchronously complete the correction and transport of the wire.
[0049] Furthermore, a conveyor 314 fixedly installed on the movable connector 311 is used to limit the conveying of the rectified wire; a cooling fan 315 fixedly installed on the conveyor 314 cooperates with the wire embedding component 316 to perform heat dissipation operation; and a wire embedding component 316 fixedly installed at the bottom of the cooling fan 315, which is fixedly connected to the conveyor 314. Through the limiting conveying of the conveyor 314, the wire can directly enter the interior of the wire embedding component 316 and be used to embed the smart card at the bottom.
[0050] During use: First, the position of the buried wire is adjusted by adjusting unit 2. After adjusting unit 2 completes the position adjustment, the guide bracket 223 inside the spacing component 22 conveys the wire to the guide bracket 312 on the moving connector 311. The guide bracket 312 stretches the wire, and the rotating straightening component 313 straightens the wire conveyed by the guide bracket 312 through rolling action, and conveys the straightened wire into the conveying component 314. Subsequently, through the limiting action of the conveying component 314, the wire is conveyed into the buried wire component 316, and the buried wire operation is started with the cooperation of the cooling fan 315. In addition, with the synergistic effect of adjusting unit 2, the equipment can realize the combination operation of multi-station simultaneous buried wire and single-station adjusted buried wire, effectively improving the buried wire positioning accuracy, equipment debugging efficiency and production stability, and meeting the buried wire production needs of smart cards with multiple specifications, high precision and fast order conversion.
[0051] The remaining structure is the same as that in Example 2.
[0052] It should be noted that the above embodiments are only used to illustrate the technical solutions of the present invention and are not intended to limit it. Although the present invention has been described in detail with reference to preferred embodiments, those skilled in the art should understand that modifications or equivalent substitutions can be made to the technical solutions of the present invention without departing from the spirit and scope of the technical solutions of the present invention, and all such modifications or substitutions should be covered within the scope of the claims of the present invention.
Claims
1. A visual positioning and adjustment device for a smart card embedded wire head, characterized in that: It includes a drive device (1), an adjustment unit (2) fixedly installed on the drive device (1), and a wire embedding unit (3) fixedly installed on the adjustment unit (2). The adjustment unit (2) includes a movable component (21) fixedly mounted on the drive device (1), a spacing component (22) slidably mounted on the movable component (21), an extension component (23) fixedly mounted on the spacing component (22), and a push component (24) fixedly mounted on the spacing component (22), wherein the push component (24) and the extension component (23) are slidably connected; The extension assembly (23) includes a sliding plate (238-1) slidably mounted on the inner wall of the moving groove (229), a connecting column (238) fixedly mounted on the sliding plate (238-1), and a moving toothed plate (239) slidably mounted inside the connecting column (238), and the other end of the moving toothed plate (239) passes through the moving member (226) and is fixedly connected to the push plate (227); A fixing member (236) is fixedly installed on the sliding plate (238-1). A limiting member (237) is slidably installed inside the fixing member (236). A drive rod (234) is rotatably installed inside the limiting member (237), and the drive rod (234) is slidably connected to the fixing member (236). A motor (231) is fixedly installed on the mounting plate (221), and a worm gear (232) is fixedly installed at the output end of the motor (231). A turbine (233) is fixedly installed on the top of the drive rod (234), and the turbine (233) is meshed with the worm (232). A gear (235) is fixedly installed on the bottom of the drive rod (234), and the gear (235) is meshed with the movable gear plate (239). The buried wire unit (3) includes a buried wire assembly (31) fixedly mounted on the spacing assembly (22).
2. The smart card embedding head visual positioning adjustment device according to claim 1, characterized in that: The moving component (21) includes a mounting base plate (211) fixedly mounted on the drive device (1), a connector (212) fixedly mounted on the mounting base plate (211), a winding component (213) fixedly mounted on the connector (212), a limiting component (215) fixedly mounted on the mounting base plate (211), a sliding buckle (216) fixedly mounted on the limiting component (215), and a drive component (214) fixedly mounted on the mounting base plate (211).
3. The smart card embedding head visual positioning adjustment device according to claim 2, characterized in that: The spacing assembly (22) includes a mounting plate (221) fixedly mounted on the drive member (214), a connecting plate (222) fixedly mounted on the mounting plate (221), a movable clip (225) fixedly mounted on the connecting plate (222), and a movable member (226) fixedly mounted on the movable clip (225).
4. The smart card embedding head visual positioning adjustment device according to claim 3, characterized in that: A drive unit (228) is fixedly mounted on the moving part (226), and a moving groove (229) is engaged on the drive unit (228).
5. The smart card embedding head visual positioning adjustment device according to claim 4, characterized in that: A push plate (227) is slidably mounted on the movable part (226), and the push plate (227) is fixedly connected to the extension component (23).
6. The smart card embedding head visual positioning adjustment device according to claim 5, characterized in that: The push assembly (24) includes an electric push rod (241) fixedly mounted on the mounting base plate (211), a retractable part (242) fixedly mounted on the output end of the electric push rod (241), and a push plate two (243) slidably mounted on the inner wall of the retractable part (242), and the push plate two (243) is slidably connected to the drive rod (234).
7. The smart card embedding head visual positioning adjustment device according to claim 6, characterized in that: The wire embedding assembly (31) includes a movable connector (311) fixedly mounted on a push plate (227), a guide bracket (312) fixedly mounted on the movable connector (311), a rotational straightener (313) fixedly mounted on the guide bracket (312), a conveyor (314) fixedly mounted on the movable connector (311), a cooling fan (315) fixedly mounted on the conveyor (314), and a wire embedding component (316) fixedly mounted on the bottom of the cooling fan (315), wherein the wire embedding component (316) is fixedly connected to the conveyor (314).