Device for threading deconcentrator

By designing a coordinated working mechanism for wire feeding, wire transfer, and rotation positioning, seamless connection of wire cutting, transfer, and insertion is achieved, solving the problems of low production efficiency and positioning deviation in existing technologies, and improving threading accuracy and product quality.

CN121069576AActive Publication Date: 2025-12-05TIME INTERCONNECT TECH (HUIZHOU) LTD
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Patent Information

Application Number
CN202511204408.5
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-08-27
Publication Date
2025-12-05
Estimated Expiration
2045-08-27

AI Technical Summary

Technical Problem

In existing technologies, separating the wire cutting and threading processes leads to low production efficiency, high risk of positioning deviation, and affects product quality.

Method used

Design a cable splitter device, including a cable feeding, cable moving, cable insertion, and rotation positioning mechanism, to achieve seamless connection of cable cutting, transfer, and insertion. Through the coordinated work of the clamping component and the insertion component, ensure that the cable is accurately inserted into the splitter.

Benefits of technology

It improved production efficiency, reduced defect rate, and ensured the accuracy of threading and product quality.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention relates to the technical field of wire threading and branching, and discloses a deconcentrator threading device which comprises a wire feeding mechanism, a wire moving mechanism, a wire inserting mechanism and a rotary positioning mechanism. The wire feeding mechanism comprises a wire cutting assembly and a wire clamping assembly, and the wire clamping assembly is located on the downstream of the wire cutting assembly. The wire moving mechanism slides in the first horizontal direction and is located on the downstream of the wire feeding mechanism, the wire moving mechanism comprises a first clamping assembly, and the first clamping assembly is provided with a first position parallel to the wire clamping assembly; the wire inserting mechanism comprises a sliding seat, a sliding plate and a wire inserting assembly, the sliding seat is located on the downstream of the wire moving mechanism, the sliding plate is slidably connected to the sliding seat in the second horizontal direction, and the wire inserting assembly is slidably connected to the sliding plate in the first horizontal direction; the rotary positioning mechanism is located downstream of the wire plugging mechanism. According to the equipment for threading the deconcentrator, wire rod position deviation caused by factors such as vibration and friction is avoided, the rate of defective products is reduced, and threading accuracy and product quality are guaranteed.
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Description

TECHNICAL FIELD

[0001] The present application relates to the technical field of wire threading and splitting, and particularly relates to a device for threading and splitting. BACKGROUND

[0002] Inserting an optical fiber line into a splitter is a common operation in optical fiber communication systems, and the core purpose is to realize the distribution and multiplexing of optical signals to efficiently utilize optical fiber resources and meet the communication needs of multiple users or devices.

[0003] In the production process of the wire threading splitter, a series of consecutive and precise operation steps are involved: first, the wire needs to be accurately cut according to the production requirements to ensure that the length meets the standard; after cutting, the wire needs to be smoothly transported to the entrance position of the splitter by a conveying mechanism; then, the end of the processed wire needs to be aligned with the threading hole of the splitter to complete the insertion action.

[0004] In the prior art, after the device completes the cutting of the wire, an additional transmission or conversion mechanism is needed to transfer the cut wire to the threading station, which forces the cutting and threading processes to be separated into independent operation steps, breaking the continuity of the production process. On the one hand, the transfer process between the two processes consumes additional time, lengthening the overall production rhythm, significantly reducing the number of threads that can be completed per unit of time, and seriously affecting production efficiency. On the other hand, multiple process conversions increase the risk of wire positioning deviation. During the transfer process, the wire may deviate in position due to factors such as vibration and friction, thereby affecting the accuracy of subsequent threading and increasing the rate of defective products. SUMMARY

[0005] To solve the problems of the prior art, the present application provides a device for threading and splitting a splitter, which avoids wire position deviation caused by factors such as vibration and friction, reduces the rate of defective products, and ensures the accuracy of threading and product quality.

[0006] The technical effects achieved by the present application are realized by the following technical solutions: The present application provides a device for threading and splitting a splitter, comprising: a wire feeding mechanism, including a wire cutting assembly and a wire clamping assembly, the wire clamping assembly being located downstream of the wire cutting assembly; a wire moving mechanism, sliding along a first horizontal direction downstream of the wire feeding mechanism, the wire moving mechanism including a first clamping assembly, the first clamping assembly having a first position parallel to the wire clamping assembly; The wire inserting mechanism comprises a sliding seat, a sliding plate and a wire inserting assembly, the sliding seat is located downstream of the wire inserting mechanism, the sliding plate is slidably connected to the sliding seat along a second horizontal direction, the wire inserting assembly is slidably connected to the sliding plate along a first horizontal direction, and the first horizontal direction is perpendicular to the second horizontal direction; and The rotating positioning mechanism is located downstream of the wire inserting mechanism, and the rotating positioning mechanism comprises a clamping nozzle for clamping the wire distributor. When the first clamping assembly is parallel to the wire clamping assembly, the first clamping assembly clamps the wire and slides to a preset position, the wire inserting assembly slides to a preset position along the first horizontal direction and clamps the wire, the wire inserting assembly is reset and the wire is aligned with the threading hole of the wire distributor, and the sliding plate slides to drive the wire inserting assembly to move along the second horizontal direction to insert the wire into the threading hole of the wire distributor.

[0007] In some implementations, the wire inserting assembly comprises a wire clamping plate, a guide clamping structure and a pushing clamping structure, the wire clamping plate is slidably connected to the sliding plate along the first horizontal direction, the guide clamping structure is slidably connected to the wire clamping plate along the second horizontal direction, and the pushing clamping structure is connected to the wire clamping plate and located on the side of the guide clamping structure away from the clamping nozzle.

[0008] In the present implementation, the wire clamping plate slides along the first horizontal direction and approaches the first clamping assembly, the guide clamping structure and the pushing clamping structure clamp the wire respectively, the wire clamping plate slides along the first horizontal direction and approaches the rotating positioning mechanism, the guide clamping structure clamps the wire to slide along the second horizontal direction relative to the pushing clamping structure to a preset wire inserting position.

[0009] In some implementations, the guide clamping structure comprises a guide sliding seat, a first driving member, a guide clamping connecting rod, a first guide clamp and a second guide clamp, the guide sliding seat is slidably connected to the wire clamping plate along the second horizontal direction, the first driving member is connected to the guide sliding seat, the guide clamping connecting rod is connected to the driving output end of the first driving member, and the first guide clamp and the second guide clamp are oppositely and obliquely arranged at the two ends of the guide clamping connecting rod.

[0010] In some implementations, the wire inserting mechanism further comprises a mounting plate arranged between the sliding plate and the wire inserting assembly, the mounting plate is slidably connected to the sliding plate along a vertical direction, and the wire inserting assembly is slidably connected to the mounting plate along the first horizontal direction.

[0011] In some implementations, the rotating positioning mechanism further comprises a first gear, a second gear, a rotating shaft and a second driving member, the second gear is engaged with the first gear, the rotating shaft is arranged through the second gear, the clamping nozzle is inserted into one end of the rotating shaft, and the second driving member is drivingly connected to the first gear.

[0012] In the present implementation, the second driving member drives the first gear to rotate, the first gear drives the second gear to rotate, and the second gear drives the rotating shaft to rotate, so that the clamp nozzle rotates at a preset angle. In this way, multiple wires can be inserted into multiple wire passing holes of the wire distributor respectively.

[0013] In some implementations, the rotating positioning mechanism further comprises a fixing seat and a fixing assembly for fixing the clamp nozzle, the second gear is arranged on the fixing seat, the clamp nozzle comprises a first clamp nozzle and a second clamp nozzle, the first clamp nozzle is inserted into one end of the rotating shaft, the second clamp nozzle is sleeved with the first clamp nozzle, a groove is arranged on the outer periphery of the second clamp nozzle, the fixing assembly comprises a connecting arm and a third driving member, the connecting arm is sleeved in the groove, a first end of the connecting arm is rotationally connected to a first side of the fixing seat, and the third driving member is arranged on a second side of the fixing seat and is drivingly connected to a second end of the connecting arm.

[0014] In some implementations, the wire passing device further comprises a transition mechanism arranged between the wire moving mechanism and the wire inserting mechanism, the transition mechanism comprises a first transition clamp and multiple second transition clamps arranged in sequence along a first horizontal direction, the wire moving mechanism further comprises a second clamping assembly and multiple third clamping assemblies arranged in sequence along the first horizontal direction, the first clamping assembly further has a second position parallel to the first transition clamp. When the first clamping assembly is in the first position, the second clamping assembly is parallel to the first transition clamp, and multiple third clamping assemblies are respectively parallel to multiple second transition clamps.

[0015] In some implementations, the wire passing device further comprises a cutting mechanism, the cutting mechanism comprises a first cutting knife and a second cutting knife arranged oppositely, the first cutting knife and the second cutting knife jointly form a cutting station, and the cutting station is arranged parallel to the third clamping assembly close to the wire inserting mechanism.

[0016] In some implementations, the wire passing device further comprises a feeding mechanism, the feeding mechanism comprises a vibrating disc, a feeding clamp, a turnover rod body, and a fourth driving member, the feeding clamp is slidingly arranged between the vibrating disc and the turnover rod body, the turnover rod body is arranged opposite to the clamp nozzle along a vertical direction, and the fourth driving member drives the turnover rod body to turn over, so that the wire distributor is inserted into the clamp nozzle.

[0017] In the present implementation, the vibration disc is started to move the distributor to the feeding station, the feeding clamp clamps the distributor and moves above the turnover rod body, the feeding clamp releases the distributor to place the distributor on the turnover rod body, the fourth driving member drives the turnover rod body to turn over to insert the distributor into the clamping nozzle of the rotary positioning mechanism, thereby realizing feeding.

[0018] In some implementations, the distributor threading device further comprises a marking mechanism arranged between the wire shifting mechanism and the transition mechanism, and the marking mechanism is configured to mark the wire.

[0019] In some implementations, the wire feeding mechanism further comprises a straightener and a wire feeding wheel connected to an end of the straightener, the wire cutting assembly is located on a side of the wire feeding wheel away from the straightener, and the wire clamping assembly is located on a side of the wire cutting assembly away from the wire feeding wheel.

[0020] In some implementations, the wire cutting assembly comprises a cutter seat and a wire cutting knife, the cutter seat is provided with a wire passing hole and a sliding groove in communication with each other, the wire passing hole is configured to pass the wire, and the wire cutting knife is slidingly arranged in the sliding groove.

[0021] In some implementations, the wire clamping assembly comprises a connecting plate, a fifth driving member, and oppositely arranged first and second clamps, first ends of the first and second clamps are respectively pivotally connected to the connecting plate, and the fifth driving member is connected to the pivot to make the first and second clamps approach or move away from each other.

[0022] In summary, the present application has at least the following advantages: The distributor threading device provided by the present application realizes seamless connection of wire cutting, shifting, and inserting through cooperation of the wire feeding mechanism, the wire shifting mechanism, the wire inserting mechanism, and the rotary positioning mechanism. After the first clamping assembly clamps the wire, the wire clamping assembly and the wire cutting assembly can repeatedly clamp and cut the wire, and each mechanism works continuously, avoiding time consumption between processes, shortening the overall production rhythm, thereby improving production efficiency. Moreover, since the production process is continuous, the risk of positioning deviation of the wire in the shifting process is reduced, the position deviation of the wire caused by vibration and friction is avoided, the defective product rate is reduced, and the accuracy of threading and product quality are ensured. BRIEF DESCRIPTION OF DRAWINGS

[0023] Figure 1 FIG. 1 is a structural schematic diagram of the distributor threading device of Example 1; Figure 2 FIG. 2 is a structural schematic diagram of the wire feeding mechanism and the wire shifting mechanism shown in FIG. 1; Figure 1 Figure 3 FIG. 3 is a structural schematic diagram of the wire cutting assembly and the wire clamping assembly shown in FIG. 1; and Figure 1 ​Structure diagram of the wire inserting mechanism, the rotary positioning mechanism and the feeding mechanism shown; Figure 4 For Figure 3 Structure diagram of the wire inserting assembly shown; Figure 5 For Figure 4 Structure diagram of the wire inserting assembly shown from another perspective; Figure 6 Structure diagram of the rotary positioning mechanism of Example 2; Figure 7 For Figure 6 Sectional view diagram of the rotary positioning mechanism shown; Figure 8 Structure diagram of the cutting mechanism of Example 3; Figure 9 Structure diagram of the wire clamping assembly of Example 3.

[0024] Markings in the figure: 100, wire feeding mechanism; 110, wire cutting assembly; 111, cutting knife seat; 1111, wire passing hole; 1112, sliding groove; 112, wire cutting knife; 120, wire clamping assembly; 121, connecting plate; 122, fifth driving member; 123, first clamp; 124, second clamp; 130, straightener; 140, wire feeding wheel; 200, wire moving mechanism; 210, first clamping assembly; 220, second clamping assembly; 230, third clamping assembly; 300, wire inserting mechanism; 310, sliding seat; 320, sliding plate; 330, wire inserting assembly; 331, wire clamping plate; 332, guide clamping structure; 3321, guide sliding seat; 3322, first driving member; 3323, guide clamping connecting rod; 3324, first guide clamp; 3325, second guide clamp; 333, pushing clamping structure; 3331, pushing clamp; 3332, wire supporting clamp; 340, mounting plate; 400, rotary positioning mechanism; 410, clamping nozzle; 411, first clamping nozzle; 412, second clamping nozzle; 4121, groove; 420, first gear; 430, second gear; 440, rotating shaft; 450, second driving member; 460, fixed seat; 470, fixed assembly; 471, connecting arm; 472, third driving member; 480, limiting rod body; 500, transition mechanism; 510, first transition clamp; 520, second transition clamp; 600, cutting mechanism; 610, first cutting knife; 620, second cutting knife; 630, cutting station; 700, feeding mechanism; 710, vibrating disc; 720, feeding clamp; 730, overturning rod body; 740, fourth driving member; 800, line drawing mechanism; 900, wire; 1000, wire distributor. DETAILED DESCRIPTION

[0025] In order to make the objects, technical solutions and advantages of the embodiments of the present application clearer, the technical solutions in the embodiments of the present application will be described clearly and completely below with reference to the drawings in the embodiments of the present application. The described embodiments are part of the embodiments of the present application, but not all the embodiments of the present application.

[0026] Therefore, the following detailed description of the embodiments of the present application provided in the drawings is not intended to limit the scope of the claimed present application, but only represents selected embodiments of the present application. Based on the embodiments in the present application, all other embodiments obtained by those of ordinary skill in the art without creative work under the premise that the scope of the present application belongs to the protection scope of the present application.

[0027] Example 1: Please refer to the accompanying Figure 1 ~attached Figure 3 The device of the present application includes a wire feeding mechanism 100, a wire moving mechanism 200, a wire inserting mechanism 300 and a rotating positioning mechanism 400.

[0028] Among them, please combine Figures 1 to 3 , Figure 1 The structural relationship of the wire feeding mechanism 100, the wire moving mechanism 200, the wire inserting mechanism 300 and the rotating positioning mechanism 400 in the embodiments of the present application is shown, Figure 2 and Figure 3 The specific structure of the wire feeding mechanism 100 and the wire moving mechanism 200 in the embodiments of the present application is shown. In order to facilitate the description, an example of the first horizontal direction, the second horizontal direction and the vertical direction is defined, and the specific structure is shown in Figure 1 The X-Y-Z coordinate axis is defined, wherein the first horizontal direction is parallel to the X axis, the second horizontal direction is parallel to the Y axis, and the vertical direction is parallel to the Z axis. It can be understood that the first direction, the second direction and the third direction can also be not orthogonal, or partially orthogonal.

[0029] Specifically, the wire feeding mechanism 100 comprises a wire cutting assembly 110 and a wire clamping assembly 120, the wire clamping assembly 120 is located downstream of the wire cutting assembly 110; the wire moving mechanism 200 is located downstream of the wire feeding mechanism 100 and slides along a first horizontal direction, the wire moving mechanism 200 comprises a first clamping assembly 210, the first clamping assembly 210 has a first position which is parallel to the wire clamping assembly 120; the wire inserting mechanism 300 comprises a sliding seat 310, a sliding plate 320 and a wire inserting assembly 330, the sliding seat 310 is located downstream of the wire moving mechanism 200, the sliding plate 320 is slidably connected to the sliding seat 310 along a second horizontal direction, the wire inserting assembly 330 is slidably connected to the sliding plate 320 along a first horizontal direction, the first horizontal direction is perpendicular to the second horizontal direction; the rotary positioning mechanism 400 is located downstream of the wire inserting mechanism 300, the rotary positioning mechanism 400 comprises a clamping nozzle 410 for clamping the wire distributor 1000.

[0030] When the first clamping assembly 210 is parallel to the wire clamping assembly 120, the first clamping assembly 210 clamps the wire 900 and slides to a preset position, the wire inserting assembly 330 slides to the preset position along the first horizontal direction and clamps the wire 900, the wire inserting assembly 330 resets and aligns the wire 900 with the threading hole of the wire distributor 1000, and the sliding plate 320 slides to drive the wire inserting assembly 330 to move along the second horizontal direction, so as to insert the wire 900 into the threading hole of the wire distributor 1000.

[0031] In this embodiment, the wire 900 passes through the wire cutting assembly 110 and the wire clamping assembly 120 in sequence, when the wire clamping assembly 120 clamps the wire 900, the wire cutting assembly 110 starts to act, thereby cutting the wire 900 into a preset length, the wire moving mechanism 200 moves along the first horizontal direction to make the first clamping assembly 210 parallel to the wire clamping assembly 120 along the second horizontal direction, that is, at this time, the first clamping assembly 210 is located at the first position, so that the first clamping assembly 210 can clamp the wire 900, when the first clamping assembly 210 clamps the wire 900, the wire clamping assembly 120 releases the wire 900, the wire moving mechanism 200 moves again along the first horizontal direction, so that the first clamping assembly 210 moves away from the wire clamping assembly 120 and moves close to the wire inserting mechanism 300, the sliding plate 320 slides along the second horizontal direction, thereby driving the wire inserting assembly 330 to slide along the second horizontal direction to the preset position, the wire inserting assembly 330 slides relative to the sliding plate 320 along the first horizontal direction, so that the wire inserting assembly 330 is parallel to the first clamping assembly 210 along the second horizontal direction, after the wire inserting assembly 330 clamps the wire 900, the first clamping assembly 210 releases the wire 900 and resets, and the wire clamping and wire moving are performed again, the wire inserting assembly 330 slides along the first horizontal direction to move close to the rotary positioning mechanism 400, so that the wire 900 is aligned with the threading hole of the wire distributor 1000, the sliding plate 320 slides along the second horizontal direction, thereby driving the wire inserting assembly 330 and the wire 900 to move, and then the wire 900 is inserted into the threading hole of the wire distributor 1000.

[0032] It can be understood that when the first clamping assembly 210 clamps the wire 900, the wire clamping assembly 120 releases the wire 900, and when the first clamping assembly 210 slides along the first horizontal direction to approach the wire inserting mechanism 300, the wire clamping assembly 120 and the wire cutting assembly 110 repeat the wire clamping and cutting process again; when the wire inserting assembly 330 clamps the wire 900, the first clamping assembly 210 releases the wire 900, and slides along the first horizontal direction to approach the wire clamping assembly 120 again to repeat the wire clamping and wire moving process; in this way, through the uninterrupted cooperation of the wire feeding mechanism 100, the wire moving mechanism 200, the wire inserting mechanism 300 and the rotating positioning mechanism 400, the continuity of the equipment production is ensured, and the production efficiency is improved.

[0033] The above-mentioned wire distributor equipment realizes seamless connection of the wire 900 cutting, transferring and inserting processes through the cooperation of the wire feeding mechanism 100, the wire moving mechanism 200, the wire inserting mechanism 300 and the rotating positioning mechanism 400. When the first clamping assembly 210 clamps the wire 900, the wire clamping assembly 120 and the wire cutting assembly 110 can repeat the wire clamping and cutting process again, and each mechanism works uninterruptedly, avoiding time consumption between processes, shortening the overall production rhythm, thereby improving the production efficiency. Moreover, since the production process has continuity, the positioning deviation risk of the wire 900 in the transfer process is reduced, the position deviation of the wire 900 caused by factors such as vibration and friction is avoided, the defective product rate is reduced, the threading accuracy and product quality are ensured.

[0034] Embodiment 2 The difference between this embodiment and embodiment 1 is that this embodiment further optimizes the structure of the wire distributor equipment of the present application. Please refer to the accompanying drawings Figure 3 Figure 7 .

[0035] Among them, please combine Figure 4 and Figure 5 , Figure 4 and Figure 5 to show the structural relationship of the wire clamping plate 331, the guide clamping structure 332 and the pushing clamping structure 333 in the embodiment of the present application. Specifically, the wire inserting assembly 330 includes the wire clamping plate 331, the guide clamping structure 332 and the pushing clamping structure 333, the wire clamping plate 331 is slidably connected to the sliding plate 320 along the first horizontal direction, the guide clamping structure 332 is slidably connected to the wire clamping plate 331 along the second horizontal direction, and the pushing clamping structure 333 is connected to the wire clamping plate 331 and located on the side of the guide clamping structure 332 away from the clamping nozzle 410.

[0036] ​In the embodiment, the wire clamping plate 331 slides along the first horizontal direction and approaches the first clamping assembly 210, the guide clamping structure 332 and the pushing clamping structure 333 clamp the wire 900 respectively, the wire clamping plate 331 slides along the first horizontal direction and approaches the rotating positioning mechanism 400, the guide clamping structure 332 clamps the wire 900 to slide along the second horizontal direction relative to the pushing clamping structure 333 to a preset wire inserting position, so as to avoid the wire 900 from being bent and make the end of the wire 900 align with the wire passing hole 1111 of the wire distributor 1000, then the guide clamping structure 332 releases the wire 900 and resets, and the wire inserting assembly 330 as a whole slides along the second horizontal direction and approaches the rotating positioning mechanism 400, so that the pushing clamping structure 333 clamps the wire 900 and inserts it into the wire passing hole 1111 of the wire distributor 1000.

[0037] Further, the pushing clamping structure 333 comprises a pushing clamp 3331 and a wire supporting clamp 3332, the pushing clamp 3331 and the wire supporting clamp 3332 are sequentially connected to the wire clamping plate 331 along the second horizontal direction, and the pushing clamp 3331 and the wire supporting clamp 3332 clamp the wire 900 together, so as to keep the wire 900 in a flat state, thereby ensuring the reliability of the wire 900 inserted into the wire passing hole 1111 of the wire distributor 1000.

[0038] It should be noted that the length of the wire 900 inserted into the wire passing hole 1111 of the wire distributor 1000 is about 40 mm, that is, the position of the pushing clamping structure 333 clamping the wire 900 is about 40 mm away from the end of the wire 900, and there is a gap between the guide clamping structure 332 and the wire 900, so that the wire 900 extends flatly along the moving direction of the guide clamping structure 332 in the process of the guide clamping structure 332 sliding along the second horizontal direction, thereby ensuring that the end of the wire 900 aligns with the wire passing hole 1111 of the wire distributor 1000.

[0039] In some preferred embodiments, the guide clamp structure 332 comprises a guide slide 3321, a first driving member 3322, a guide clamp connecting rod 3323, a first guide clamp 3324 and a second guide clamp 3325, the guide slide 3321 is slidingly connected to the clamping plate 331 along the second horizontal direction, the first driving member 3322 is connected to the guide slide 3321, the guide clamp connecting rod 3323 is connected to the driving output end of the first driving member 3322, and the first guide clamp 3324 and the second guide clamp 3325 are oppositely and obliquely arranged at the two ends of the guide clamp connecting rod 3323. The first driving member 3322 drives the guide clamp connecting rod 3323 to descend, so that the first guide clamp 3324 and the second guide clamp 3325 descend and approach each other, thereby realizing the clamping state, and the guide slide 3321 slides to approach the rotary positioning mechanism 400, so that the end of the wire 900 is aligned with the wire passing hole 1111 of the wire distributor 1000; the first driving member 3322 drives the guide clamp connecting rod 3323 to ascend, so that the first guide clamp 3324 and the second guide clamp 3325 ascend and move away from each other, thereby realizing the releasing state, and the guide slide 3321 slides away from the rotary positioning mechanism 400 and returns to the original position.

[0040] Further, the wire inserting assembly 330 further comprises a finished product clamp connected to the clamping plate 331, when the wire inserting process of the wire distributor 1000 is completed, the clamping plate 331 slides along the first horizontal direction to make the finished product clamp approach the clamping nozzle 410 and clamp the wire distributor 1000 after wire inserting, and then the clamping plate 331 slides along the first horizontal direction to the preset discharging position, thereby realizing the discharging of the product.

[0041] In some preferred embodiments, please refer to Figure 3 , Figure 3 The structural relationship between the mounting plate 340 and the wire inserting assembly 330 in the embodiments of the present application is shown. Specifically, the wire inserting mechanism 300 further comprises a mounting plate 340 arranged between the sliding plate 320 and the wire inserting assembly 330, the mounting plate 340 is slidingly connected to the sliding plate 320 along the vertical direction, and the wire inserting assembly 330 is slidingly connected to the mounting plate 340 along the first horizontal direction. The mounting plate 340 slides along the vertical direction, drives the wire inserting assembly 330 to slide along the vertical direction, and adjusts the distance between the wire inserting assembly 330 and the clamping nozzle 410 in the vertical direction, and at the same time, the distance between the wire inserting assembly 330 and the first clamping assembly 210 in the vertical direction can also be adjusted, so that the cooperation between the wire moving mechanism 200, the wire inserting mechanism 300 and the rotary positioning mechanism is more reliable.

[0042] In some preferred embodiments, please refer to Figure 6 and Figure 7 , Figure 6 and Figure 7The specific structure of the rotating positioning mechanism 400 in the embodiment of the present application is shown. Specifically, the rotating positioning mechanism 400 further comprises a first gear 420, a second gear 430, a rotating shaft 440, and a second driving member 450, the second gear 430 is engaged with the first gear 420, the rotating shaft 440 is arranged in the second gear 430, the material clamping nozzle 410 is inserted into one end of the rotating shaft 440, and the second driving member 450 is drivingly connected to the first gear 420. The second driving member 450 drives the first gear 420 to rotate, the first gear 420 drives the second gear 430 to rotate, and then drives the rotating shaft 440 to rotate, so that the material clamping nozzle 410 rotates at a preset angle. In this way, the plurality of wires 900 can be inserted into the plurality of wire passing holes 1111 of the wire distributor 1000 one by one.

[0043] It should be noted that in the present embodiment, the wire distributor 1000 has 16 wire passing holes 1111, and by driving the rotating shaft 440 to rotate, the wire distributor 1000 is driven to rotate with the rotating shaft 440, so that the plurality of wires 900 can be inserted into the 16 wire passing holes 1111 one by one.

[0044] In some more preferred embodiments, the rotating positioning mechanism 400 further comprises a fixing seat 460 and a fixing assembly 470 for fixing the material clamping nozzle 410, the second gear 430 is arranged on the fixing seat 460, the material clamping nozzle 410 comprises a first clamping nozzle 411 and a second clamping nozzle 412, the first clamping nozzle 411 is inserted into one end of the rotating shaft 440, the second clamping nozzle 412 is sleeved with the first clamping nozzle 411, a groove 4121 is formed in the outer periphery of the second clamping nozzle 412, the fixing assembly 470 comprises a connecting arm 471 and a third driving member 472, the connecting arm 471 is sleeved in the groove 4121, a first end of the connecting arm 471 is rotationally connected to a first side of the fixing seat 460, and the third driving member 472 is arranged on a second side of the fixing seat 460 and is drivingly connected to a second end of the connecting arm 471. The first clamping nozzle 411 and the second clamping nozzle 412 are both arranged as conical nozzles. When the third driving member 472 drives the connecting arm 471, the connecting arm 471 moves the second clamping nozzle 412 away from one end of the rotating shaft 440, i.e. towards the conical tip of the first clamping nozzle 411 and the second clamping nozzle 412, so that the second clamping nozzle 412 moves relative to the first clamping nozzle 411 and clamps the tip of the first clamping nozzle 411 under the guidance of the conical structure, and then the first clamping nozzle 411 clamps the wire distributor 1000.

[0045] Further, the rotating positioning mechanism 400 further comprises a limiting rod body 480, the limiting rod body 480 abuts against the material clamping nozzle 410, and is used for limiting the insertion depth of the wire 900.

[0046] Embodiment 3: The difference between the present embodiment and the embodiment 2 is that the device for threading the wire distributor in the present embodiment is further structurally optimized, please refer to the attachedFigure 2 ~Appendix Figure 3 Appendix Figure 8 ~Appendix Figure 9 .

[0047] Please see below. Figure 2 , Figure 2 The diagram illustrates the structural relationship between the transition mechanism 500 and the wire-moving mechanism 200 in an embodiment of the present invention. Specifically, the wire-splitter device further includes a transition mechanism 500 disposed between the wire-moving mechanism 200 and the wire-inserting mechanism 300. The transition mechanism 500 includes a first transition clamp 510 and a plurality of second transition clamps 520 arranged sequentially along a first horizontal direction. The wire-moving mechanism 200 also includes a second clamping assembly 220 and a plurality of third clamping assemblies 230 arranged sequentially along the first horizontal direction. The first clamping assembly 210 also has a second position parallel to the first transition clamp 510. When the first clamping assembly 210 is in the first position, the second clamping assembly 220 is parallel to the first transition clamp 510, and the plurality of third clamping assemblies 230 are respectively parallel to the plurality of second transition clamps 520.

[0048] In this embodiment, the first clamping assembly 210 takes the wire 900 from the wire clamping assembly 120 and moves to the second position along the first horizontal direction. The first clamping assembly 210 is parallel to the first transition clamp 510 in the second horizontal direction, so that the first transition clamp 510 can take the wire 900 held by the first clamping assembly 210. After the first clamping assembly 210 releases the wire 900, it returns to being parallel to the wire clamping assembly 120. At this time, the second clamping assembly 220 is parallel to the first transition clamp 510, and the first clamping assembly 210 takes the wire 900 from the wire clamping assembly 120 again. At the same time, the wire 900 in the first transition clamp 510... The wire 900 is clamped by the second clamping component 220; the first clamping component 210 moves to the second position again, allowing the first transition clamp 510 to take over the wire 900 held by the first clamping component 210, and simultaneously the second transition clamp 520 takes over the wire 900 held by the second clamping component 220; after releasing the wire 900, the first clamping component 210 returns to its original position parallel to the clamping component 120, and takes over the wire 900 from the clamping component 120 again. At the same time, the wire 900 in the first transition clamp 510 is clamped by the second clamping component 220, and the wire 900 in the second transition clamp 520 is clamped by the third clamping component 230. The above process is repeated continuously. When the wire 900 in the second transition clamp 520 is clamped by the third clamping component 230, and the first clamping component 210 moves to the second position, the insertion mechanism 300 takes over the wire 900 held by the third clamping component 230, thereby realizing the insertion process.

[0049] It is understood that the number of the second transition clamp 520 and the third clamping assembly 230 can be set according to actual production needs. Preferably, the number of the second transition clamp 520 and the third clamping assembly 230 is one each.

[0050] In some preferred embodiments, see Figure 8 , Figure 8 The specific structure of the cutting mechanism 600 in the embodiments of the present application is shown. Specifically, the device for threading the wire separator further comprises a cutting mechanism 600, which comprises a first cutting knife 610 and a second cutting knife 620 arranged oppositely, and the first cutting knife 610 and the second cutting knife 620 jointly form a cutting station 630, which is arranged in parallel with the third clamping assembly 230 close to the threading mechanism 300. When the first clamping assembly 210 is in the first position, the cutting station 630, the second transition clamp 520, and the third clamping assembly 230 are arranged in parallel along the second horizontal direction, so that the first cutting knife 610 and the second cutting knife 620 can cut the wire 900, and at the same time, the third clamping assembly 230 receives the wire 900 after cutting. In this way, the continuity of the entire device is realized.

[0051] Further, a wire holder is arranged between the wire moving mechanism 200 and the wire threading mechanism 300, and the third clamping assembly 230 places the wire 900 after cutting on the wire holder, and the wire threading assembly 330 is moved to the position of the wire holder at the same time, so as to clamp the wire 900, and the third clamping assembly 230 is reset after releasing the wire 900. The wire holder plays an auxiliary role to support the wire 900, so that the wire 900 remains flat, facilitating the clamping of the wire threading assembly 330.

[0052] In some preferred embodiments, see Figure 3 , Figure 3 The structural relationship between the feeding mechanism 700 and the rotary positioning mechanism 400 in the embodiments of the present application is shown. Specifically, the device for threading the wire separator further comprises a feeding mechanism 700, which comprises a vibrating disc 710, a feeding clamp 720, a turnover rod body 730, and a fourth driving member 740. The feeding clamp 720 is slidingly arranged between the vibrating disc 710 and the turnover rod body 730, the turnover rod body 730 is arranged opposite to the clamping nozzle 410 along the vertical direction, and the fourth driving member 740 drives the turnover rod body 730 to turn, so as to insert the wire separator 1000 into the clamping nozzle 410. The vibrating disc 710 is started to move the wire separator 1000 to the feeding station, the feeding clamp 720 clamps the wire separator 1000 and moves to the upper side of the turnover rod body 730, the feeding clamp 720 releases the wire separator 1000 to place the wire separator 1000 on the turnover rod body 730, and the fourth driving member 740 drives the turnover rod body 730 to turn, so as to insert the wire separator 1000 into the clamping nozzle 410 of the rotary positioning mechanism 400, thereby realizing feeding.

[0053] In some preferred embodiments, the device further comprises a marking mechanism 800 between the wire shifting mechanism 200 and the transition mechanism 500, which is configured to mark the wire 900. The marking mechanism 800 comprises a marking brush arranged in a vertical direction. During the movement of the first clamping assembly 210 to the second position, the wire 900 is marked by the marking brush, facilitating the subsequent cutting process.

[0054] In some preferred embodiments, the device further comprises a marking mechanism 800 between the wire shifting mechanism 200 and the transition mechanism 500, which is configured to mark the wire 900. The marking mechanism 800 comprises a marking brush arranged in a vertical direction. During the movement of the first clamping assembly 210 to the second position, the wire 900 is marked by the marking brush, facilitating the subsequent cutting process. Figure 2 Figure 2 The structure of the straightener 130 and the wire feeding wheel 140 in the embodiments of the present application is shown. Specifically, the wire feeding mechanism 100 further comprises a straightener 130 and a wire feeding wheel 140 connected to the end of the straightener 130. The wire cutting assembly 110 is located on the side of the wire feeding wheel 140 away from the straightener 130, and the wire clamping assembly 120 is located on the side of the wire cutting assembly 110 away from the wire feeding wheel 140. The wire 900 is placed on the straightener 130 to keep the wire 900 straight. The wire feeding wheel 140 rotates to move the wire 900 to the position of the wire cutting assembly 110, thereby achieving the cutting of the wire 900.

[0055] In some preferred embodiments, the wire cutting assembly 110 comprises a cutter seat 111 and a wire cutting knife 112. The cutter seat 111 is provided with a wire passing hole 1111 and a sliding groove 1112 that are in communication with each other. The wire passing hole 1111 is used for the wire 900 to pass through, and the wire cutting knife 112 is slidingly arranged in the sliding groove 1112. After the wire 900 passes through the wire passing hole 1111 and the wire clamping assembly 120 clamps the wire 900, the wire cutting knife 112 slides along the sliding groove 1112 to cut off the wire 900.

[0056] In some preferred embodiments, the device further comprises a marking mechanism 800 between the wire shifting mechanism 200 and the transition mechanism 500, which is configured to mark the wire 900. The marking mechanism 800 comprises a marking brush arranged in a vertical direction. During the movement of the first clamping assembly 210 to the second position, the wire 900 is marked by the marking brush, facilitating the subsequent cutting process. Figure 9 Figure 9 The specific structure of the wire clamping assembly 120 in the embodiments of the present application is shown. Specifically, the wire clamping assembly 120 comprises a connecting plate 121, a fifth driving member 122, and oppositely arranged first and second clamps 123 and 124. The first ends of the first and second clamps 123 and 124 are respectively pivotally connected to the connecting plate 121, and the fifth driving member 122 is drivingly connected to the pivot to make the first and second clamps 123 and 124 approach or move away from each other. When the fifth driving member 122 drives the pivot to descend, it in turn drives the first and second clamps 123 and 124 to move away from each other, achieving a loosening state. When the fifth driving member 122 drives the pivot to ascend, it in turn drives the first and second clamps 123 and 124 to approach each other, achieving a clamping state.

[0057] ​​The device of the wire penetrating device of the application realizes seamless connection of the wire 900 cutting, transferring and inserting processes through cooperation of the wire feeding mechanism 100, the wire transferring mechanism 200, the wire inserting mechanism 300 and the rotating positioning mechanism 400. When the first clamping assembly 210 clamps the wire 900, the wire clamping assembly 120 and the wire cutting assembly 110 can repeat the wire clamping and cutting processes again, and each mechanism works uninterruptedly, avoids time consumption between processes, shortens the overall production rhythm, thereby improving the production efficiency. In addition, since the production process has continuity, the positioning deviation risk of the wire 900 in the transferring process is reduced, the position deviation of the wire 900 caused by vibration, friction and other factors is avoided, the defective product rate is reduced, and the precision of the wire penetrating and the product quality are ensured.

[0058] In the present application, unless otherwise explicitly specified and limited, the terms "mounting", "connection", "connecting", "fixing" and the like should be understood in a broad sense, for example, can be fixed connection, can also be detachable connection, or integral; can be mechanical connection, can also be electrical connection; can be directly connected, can also be indirectly connected through an intermediate medium, can be the internal communication of two elements or the interaction relationship between two elements. For those skilled in the art, the specific meaning of the above terms in the present application can be understood according to the specific circumstances.

[0059] In the description of the present application, it should be noted that the orientations or positional relationships indicated by the terms "center", "upper", "lower", "left", "right", "vertical", "horizontal", "inner", "outer" and the like are based on the orientations or positional relationships shown in the drawings, or the orientations or positional relationships of the product of the present application when it is usually placed, and are only for the convenience of describing the present application and simplifying the description, and therefore cannot be understood as indicating or implying that the devices or elements referred to must have a particular orientation, be constructed and operated in a particular orientation, and therefore cannot be understood as limiting the present application. In addition, the terms "first", "second", "third" and the like are only used for differentiation and description, and cannot be understood as indicating or implying relative importance.

[0060] In addition, the terms "horizontal", "vertical", "overhanging" and the like do not mean that the components must be absolutely horizontal or overhanging, but can be slightly inclined. For example, "horizontal" only means that its direction is relatively more horizontal than "vertical", and does not mean that the structure must be completely horizontal, but can be slightly inclined.

[0061] In the present application, unless specifically stated and limited otherwise, a first feature on or under a second feature can include the first and second features being in direct contact, or can include the first and second features not being in direct contact but being in contact through another feature therebetween. Also, a first feature on, above and over a second feature includes the first feature being directly above and obliquely above the second feature, or simply means the first feature being horizontally higher than the second feature. A first feature under, below and under a second feature includes the first feature being directly below and obliquely below the second feature, or simply means the first feature being horizontally lower than the second feature.

[0062] Although the present application has been described in connection with the above specific embodiments, it will be readily apparent to those skilled in the art that numerous substitutions, modifications and changes can be made thereto without departing from the spirit and scope of the application as set forth in the appended claims.

Claims

1. A device for a wire splitter, characterized in that, include: The wire feeding mechanism (100) includes a wire cutting assembly (110) and a wire clamping assembly (120), the wire clamping assembly (120) being located downstream of the wire cutting assembly (110); A wire transfer mechanism (200) slides along a first horizontal direction downstream of the wire feeding mechanism (100). The wire transfer mechanism (200) includes a first clamping assembly (210) having a first position parallel to the wire clamping assembly (120). A cable insertion mechanism (300) includes a sliding base (310), a sliding plate (320), and a cable insertion assembly (330). The sliding base (310) is located downstream of the cable transfer mechanism (200). The sliding plate (320) is slidably connected to the sliding base (310) along a second horizontal direction. The cable insertion assembly (330) is slidably connected to the sliding plate (320) along a first horizontal direction, which is perpendicular to the second horizontal direction. A rotary positioning mechanism (400) is located downstream of the wire insertion mechanism (300), and the rotary positioning mechanism (400) includes a clamping nozzle (410) for clamping the wire separator (1000). When the first clamping assembly (210) and the wire clamping assembly (120) are side by side, the first clamping assembly (210) clamps the wire (900) and slides to a preset position. The wire insertion assembly (330) slides to the preset position along the first horizontal direction and clamps the wire (900). The wire insertion assembly (330) resets and aligns the wire (900) with the wire hole of the splitter (1000). The sliding plate (320) slides to drive the wire insertion assembly (330) to move along the second horizontal direction so as to insert the wire (900) into the wire hole of the splitter (1000).

2. The device for the wire splitter according to claim 1, characterized in that, The wire insertion assembly (330) includes a wire clamping plate (331), a guide clamping structure (332), and a push clamping structure (333). The wire clamping plate (331) is slidably connected to the sliding plate (320) along a first horizontal direction. The guide clamping structure (332) is slidably connected to the wire clamping plate (331) along a second horizontal direction. The push clamping structure (333) is connected to the wire clamping plate (331) and is located on the side of the guide clamping structure (332) opposite to the clamping nozzle (410).

3. The device for a wire splitter according to claim 2, characterized in that, The guide clamp structure (332) includes a guide slide (3321), a first driving member (3322), a guide clamp connecting rod (3323), a first guide clamp (3324), and a second guide clamp (3325). The guide slide (3321) is slidably connected to the clamping plate (331) along the second horizontal direction. The first driving member (3322) is connected to the guide slide (3321). The guide clamp connecting rod (3323) is connected to the driving output end of the first driving member (3322). The first guide clamp (3324) and the second guide clamp (3325) are relatively inclined at both ends of the guide clamp connecting rod (3323).

4. The device for a wire splitter according to claim 1, characterized in that, The insertion mechanism (300) further includes a mounting plate (340) disposed between the sliding plate (320) and the insertion assembly (330), the mounting plate (340) being slidably connected to the sliding plate (320) in a vertical direction, and the insertion assembly (330) being slidably connected to the mounting plate (340) in a first horizontal direction.

5. The device for a wire splitter according to claim 1, characterized in that, The rotary positioning mechanism (400) further includes a first gear (420), a second gear (430), a rotating shaft (440), and a second driving member (450). The second gear (430) meshes with the first gear (420), the rotating shaft (440) passes through the second gear (430), the clamping nozzle (410) is inserted into one end of the rotating shaft (440), and the second driving member (450) is driven and connected to the first gear (420).

6. The device for a wire splitter according to claim 5, characterized in that, The rotary positioning mechanism (400) further includes a fixed base (460) and a fixing assembly (470) for fixing the clamping nozzle (410). The second gear (430) is disposed on the fixed base (460). The clamping nozzle (410) includes a first clamping nozzle (411) and a second clamping nozzle (412). The first clamping nozzle (411) is inserted into one end of the rotating shaft (440), and the second clamping nozzle (412) is sleeved on the first clamping nozzle (411). The clamp (412) has a groove (4121) on its outer periphery. The fixing component (470) includes a connecting arm (471) and a third driving member (472). The connecting arm (471) is sleeved in the groove (4121), and the first end of the connecting arm (471) is rotatably connected to the first side of the fixing seat (460). The third driving member (472) is disposed on the second side of the fixing seat (460) and is drivenly connected to the second end of the connecting arm (471).

7. The device for a wire splitter according to claim 1, characterized in that, It also includes a transition mechanism (500) disposed between the wire-moving mechanism (200) and the wire-inserting mechanism (300). The transition mechanism (500) includes a first transition clamp (510) and a plurality of second transition clamps (520) arranged sequentially along a first horizontal direction. The wire-moving mechanism (200) also includes a second clamping assembly (220) and a plurality of third clamping assemblies (230) arranged sequentially along a first horizontal direction. The first clamping assembly (210) also has a second position parallel to the first transition clamp (510). When the first clamping assembly (210) is in the first position, the second clamping assembly (220) is parallel to the first transition clamp (510), and the plurality of third clamping assemblies (230) are parallel to the plurality of second transition clamps (520).

8. The device for a wire splitter according to claim 7, characterized in that, It also includes a cutting mechanism (600), which includes a first cutter (610) and a second cutter (620) arranged opposite to each other. The first cutter (610) and the second cutter (620) together form a cutting station (630), which is arranged side by side with a third clamping assembly (230) near the insertion mechanism (300).

9. The device for a wire splitter according to claim 1, characterized in that, It also includes a feeding mechanism (700), which includes a vibratory feeder (710), a feeding clamp (720), a flipping rod (730), and a fourth driving member (740). The feeding clamp (720) is slidably disposed between the vibratory feeder (710) and the flipping rod (730). The flipping rod (730) and the clamping nozzle (410) are disposed opposite each other in the vertical direction. The fourth driving member (740) drives the flipping rod (730) to flip so that the splitter (1000) is inserted into the clamping nozzle (410).

10. The device for a wire splitter according to claim 7, characterized in that, It also includes a drawing mechanism (800) located between the line moving mechanism (200) and the transition mechanism (500), the drawing mechanism (800) being used to draw lines on the wire (900).

11. The device for a wire splitter according to claim 1, characterized in that, The wire feeding mechanism (100) further includes a straightener (130) and a wire feeding wheel (140), the wire feeding wheel (140) being connected to the end of the straightener (130), the wire cutting assembly (110) being located on the side of the wire feeding wheel (140) away from the straightener (130), and the wire clamping assembly (120) being located on the side of the wire cutting assembly (110) away from the wire feeding wheel (140).

12. The device for a wire splitter according to claim 11, characterized in that, The wire cutting assembly (110) includes a cutter holder (111) and a wire cutting blade (112). The cutter holder (111) has a wire passage hole (1111) and a groove (1112) that are interconnected. The wire passage hole (1111) is used for the wire (900) to pass through, and the wire cutting blade (112) is slidably disposed in the groove (1112).

13. The device for a wire splitter according to claim 1, characterized in that, The clamping assembly (120) includes a connecting plate (121), a fifth driving member (122), and a first clamp (123) and a second clamp (124) disposed opposite to each other. The first ends of the first clamp (123) and the second clamp (124) are respectively pivotally connected to the connecting plate (121). The fifth driving member (122) is driven to be connected to the pivot so that the first clamp (123) and the second clamp (124) move closer to or further away from each other.

Citation Information

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