Braiding device

By introducing a drive component into the weaving device to drive the coordinated work of the weaving component and the draw rope component, the problems of high labor costs and low efficiency of existing weaving equipment are solved, and automated weaving and efficient production are realized.

CN224591138UActive Publication Date: 2026-08-04SHENZHEN KAIDU LINGHANG TECHNOLOGY CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
SHENZHEN KAIDU LINGHANG TECHNOLOGY CO LTD
Filing Date
2025-06-20
Publication Date
2026-08-04

AI Technical Summary

Technical Problem

Existing weaving equipment requires manual operation when weaving long ropes or producing in large quantities, resulting in high labor costs, low weaving efficiency and low yield of finished products, and the potential for finished products to be piled up and damaged.

Method used

By incorporating a drive component into the weaving device, the weaving component and the rope-pulling component work together to achieve simultaneous weaving and pulling out of the finished product, reducing manual intervention and improving weaving efficiency and product yield.

Benefits of technology

It achieves fully automated weaving without human intervention, improving weaving efficiency and finished product yield, while reducing labor costs and the risk of finished product damage.

✦ Generated by Eureka AI based on patent content.

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Abstract

This application relates to the field of weaving technology and proposes a weaving device, comprising: a housing with a receiving cavity, a weaving assembly, a driving assembly, and a drawstring assembly. The driving assembly is installed within the receiving cavity; the weaving assembly includes a body and at least two braided pieces, the body being installed within the receiving cavity and connected to the driving assembly, and the at least two braided pieces being installed on and connected to the body; the drawstring assembly is installed on one side of the weaving assembly, and includes a clamping member and a rotating member, the clamping member being connected to the housing, and the rotating member being engaged with the driving assembly and the clamping member; the driving assembly is used to drive the body to rotate, thereby causing at least two braided pieces to move in a direction closer to or away from the drawstring assembly, and also to drive the rotating member to rotate, the rotating member engaging with the clamping member to drive the clamping member to rotate, and the rotation of the clamping member causing the woven finished product to move away from the weaving assembly. Using the above-described weaving device is beneficial for meeting production needs.
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Description

Technical Field

[0001] This application relates to the field of weaving technology, and more particularly to a weaving apparatus. Background Technology

[0002] Currently, semi-automatic weaving equipment is mostly used to weave ropes. During the weaving process, the counterweight is manually adjusted continuously to pull out the finished product. However, if the required ropes are long or the production volume is large, the existing weaving equipment requires manual operation, which results in high labor costs and cannot meet current production demands. Utility Model Content

[0003] In view of this, this application provides a weaving apparatus that meets existing production requirements.

[0004] One embodiment of this application provides a weaving device. The weaving device includes: a housing having a receiving cavity, a weaving assembly, a driving assembly, and a drawstring assembly. The driving assembly is installed within the receiving cavity. The weaving assembly includes a body and at least two braided pieces. The body is installed within the receiving cavity and connected to the driving assembly. The at least two braided pieces are installed on the body and slidably connected to the body. The drawstring assembly is installed on one side of the weaving assembly. The drawstring assembly includes a clamping member and a rotating member. The clamping member is connected to the housing, and the rotating member is engaged between the driving assembly and the clamping member. The driving assembly is used to drive the body to rotate, thereby causing the at least two braided pieces to move in a direction closer to or away from the drawstring assembly. It is also used to drive the rotating member to rotate. The rotating member engages with the clamping member to drive the clamping member to rotate. The rotation of the clamping member causes the woven finished product to move away from the weaving assembly.

[0005] This application provides a weaving device that integrates both a weaving component and a stretching component on a drive component. The drive component drives the main body of the rope-braiding component to rotate, and the main body drives at least two braided parts to move in a direction closer to or away from the rope-stretching component to weave a finished product. The drive component also drives the rotating part of the stretching component to rotate. The rotating part engages with the clamping part to drive the clamping part to rotate. Simultaneously, the rotation of the clamping part drives the woven finished product to move away from the weaving component, achieving simultaneous weaving and pulling out of the finished product without manual intervention. This meets existing production needs and improves weaving efficiency and finished product yield.

[0006] In some embodiments of this application, the driving assembly includes a driving member and a transmission assembly. The transmission assembly includes a first transmission assembly and a second transmission assembly. A first end of the first transmission assembly is connected to the driving member, a second end of the first transmission assembly is connected to the body, a third end of the first transmission assembly is connected to the first end of the second transmission assembly, and a second end of the second transmission assembly is engaged with the rotating member. The driving member drives the first transmission assembly to rotate, thereby driving the second transmission assembly and the body to rotate. The second transmission assembly engages with the rotating member to drive the rotating member to rotate.

[0007] In some embodiments of this application, the first transmission assembly includes a first transmission member, a second transmission member, and a third transmission member. The first transmission member is connected to the driving member, the second transmission member is engaged between the first transmission member and the third transmission member, and the third transmission member is connected to the body.

[0008] In some embodiments of this application, the weaving device further includes a knob connected to the second transmission member, the knob being used to drive the second transmission member to rotate clockwise or counterclockwise.

[0009] In some embodiments of this application, the clamping member includes a toggle part and a wire pressing assembly. The wire pressing assembly includes a rotating part and a wire pressing part. The toggle part is rotatably connected to the housing. The rotating part is rotatably connected to the toggle part. The wire pressing part is sleeved on the rotating part. The toggle part is used to drive the wire pressing assembly to press or release the rotating member.

[0010] In some embodiments of this application, the clamping member further includes a first elastic member, the housing is provided with a groove, the actuating part is provided with a protrusion, the first elastic member is sleeved on the protrusion and located between the groove and the actuating part, and the first elastic member is used to drive the actuating part to reset after the actuating part rotates.

[0011] In some embodiments of this application, the pull rope assembly further includes a fixing member, the fixing member including a first arm segment and a second arm segment extending from the first arm segment, the first arm segment and the second arm segment being arranged at an angle, the first arm segment being connected to the clamping member, and a gap existing between the second arm segment and the clamping member.

[0012] In some embodiments of this application, the braiding device further includes: a bracket and a wire fixing assembly, one end of the bracket being connected to the housing, the end of the bracket away from the housing being provided with a wire placement portion, and the wire fixing assembly being provided with a snap-fit ​​groove adapted to the wire placement portion, the wire placement portion snapping into the snap-fit ​​groove to fix the wire to be braided.

[0013] In some embodiments of this application, the wire fixing assembly includes a wire pressing member, a second elastic member, and a connecting member. The wire pressing member has a first recess that communicates with the snap-fit ​​groove. The connecting member has a second recess, and the bottom of the second recess has a connecting portion. The second elastic member is sleeved on the wire placement portion and is located between the bottom of the first recess and the bottom of the second recess. The connecting portion extends into the first recess and is connected to the wire placement portion.

[0014] In some embodiments of this application, the knitting device further includes a blocking member, the knitting member including a needle body and a hook tongue, the needle body having a hook portion at one end away from the pull cord assembly, the hook portion being rotatably connected to the hook tongue, and the blocking member being mounted on the body and capable of pressing down the hook tongue when the hook tongue moves in a direction away from the hook portion. Attached Figure Description

[0015] Figure 1 This is a perspective view of a weaving device according to an embodiment of this application.

[0016] Figure 2 This is a cross-sectional view of a weaving device according to an embodiment of this application.

[0017] Figure 3 This is a partial schematic diagram of a weaving device in one embodiment of this application.

[0018] Figure 4 This is a partial exploded view of the weaving device in one embodiment of this application.

[0019] Figure 5 This is an exploded view of the drawstring assembly of the braiding device in one embodiment of this application.

[0020] Figure 6 This is an exploded view of the wire-fixing assembly of the braiding device in one embodiment of this application.

[0021] Figure 7 for Figure 2 Enlarged view of section VII.

[0022] Explanation of main component symbols

[0023] 100-Knitting device; 10-Housing shell; 11-Accommodating cavity; 12-Groove; 20-Knitting assembly; 21-Body; 210-Cylinder; 2100-Angled annular limiting groove; 211-Center post; 2110-Sliding track; 22-Knitting component; 220-Needle body; 2200-Hook; 2201-Protrusion; 221-Hook tongue; 30-Drive assembly; 31-Driver; 32-Transmission assembly; 320-First transmission assembly; 3200-First transmission component; 3201-Second transmission component; 3202-Third transmission component; 321-Second transmission assembly; 40-Pull cord Components; 41-Clamping element; 410-Actuating part; 4100-Protrusion; 411-Wire clamping assembly; 4110-Rotating part; 4111-Wire clamping part; 412-First elastic element; 42-Rotating element; 43-Fixing element; 430-First arm section; 431-Second arm section; 50-Knob; 60-Bracket; 61-Wire placement part; 62-Wire threading groove; 70-Wire fixing assembly; 71-Snap-fit ​​groove; 72-Wire clamping element; 720-First recess; 73-Second elastic element; 74-Connecting element; 740-Second recess; 7400-Connecting part; 80-Blocking element; 90-Speed ​​regulating element.

[0024] The following detailed description, in conjunction with the accompanying drawings, will further illustrate this application. Detailed Implementation

[0025] The technical solutions of the embodiments of this application will be described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of this application, and not all embodiments.

[0026] Unless otherwise defined, all technical and scientific terms used herein have the same meaning as commonly understood by one of ordinary skill in the art to which this application belongs. The terminology used herein is for the purpose of describing particular embodiments only and is not intended to be limiting of the application.

[0027] Currently, most weaving equipment on the market uses semi-automatic weaving machines to weave ropes. During the weaving process, the finished product is pulled out manually by continuously adjusting the counterweight. However, if the required ropes are long or the production volume is large, existing weaving equipment requires manual operation, resulting in high labor costs and failing to meet current production demands. Furthermore, manual operation may lead to finished products accumulating at the output port due to delayed pulling out, causing damage and resulting in low weaving efficiency and low product yield.

[0028] Therefore, in order to solve the above-mentioned technical problems, in the embodiments of this application, the braiding component and the stretching component are both disposed on the driving component. The driving component drives the body of the braiding component to rotate, and the body drives the at least two braiding parts to move in a direction close to or away from the stretching component to braid the finished product. The driving component is also used to drive the rotating part of the stretching component to rotate. The rotating part meshes with the clamping part to drive the clamping part to rotate. At the same time, the rotation of the clamping part drives the finished product to move away from the braiding component, so as to realize the simultaneous pulling out of the finished product while weaving. No manual intervention is required throughout the process, which meets the existing production needs and improves the weaving efficiency and finished product yield.

[0029] The following detailed description of some embodiments of this application is provided in conjunction with the accompanying drawings. Unless otherwise specified, the following embodiments and features can be combined with each other.

[0030] Please also refer to Figures 1 to 7 One embodiment of this application provides a braiding device 100. The braiding device 100 includes a housing 10 having a receiving cavity 11, a braiding assembly 20, a drive assembly 30, and a drawstring assembly 40. The drive assembly 30 is installed within the receiving cavity 11. The braiding assembly 20 includes a body 21 and at least two braided pieces 22. The body 21 is installed within the receiving cavity 11 and connected to the drive assembly 30. The at least two braided pieces 22 are mounted on the body 21 and slidably connected to it. The drawstring assembly 40 is installed on one side of the braiding assembly 20 and includes a clamping member 41 and a rotating member 42. The clamping member 41 is connected to the housing 10. The rotating member 42 is engaged between the drive assembly 30 and the clamping member 41. The drive assembly 30 drives the body 21 to rotate, thereby causing the at least two braided pieces 22 to move towards or away from the drawstring assembly 40. The drive assembly 30 is also used to drive the rotating member 42 to rotate. The rotating member 42 engages with the clamping member 41 to drive the clamping member 41 to rotate. The rotation of the clamping member 41 drives the finished product that has been woven to move away from the weaving assembly 20.

[0031] In some embodiments of this application, by mounting both the braiding assembly 20 and the stretching assembly on the driving assembly 30, the driving assembly 30 drives the body 21 of the braiding assembly to rotate, and the body 21 drives the at least two braided pieces 22 to move in a direction closer to or away from the stretching assembly 40 to braid the finished product. The driving assembly 30 is also used to drive the rotating member 42 of the stretching assembly to rotate. The rotating member 42 engages with the pressing member 41 to drive the pressing member 41 to rotate. At the same time, the rotation of the pressing member 41 drives the finished product to move away from the braiding assembly 20, thereby realizing simultaneous weaving and pulling out of the finished product without manual intervention, meeting existing production needs, and improving weaving efficiency and finished product yield.

[0032] Understandably, the braiding assembly 20 is provided with a yarn outlet channel, the center line of which is located in the tangential direction of the rotating member 42, which can further improve the braiding efficiency and the efficiency of pulling out the finished product.

[0033] Further integration Figure 2 and Figure 3 As shown, the main body 21 includes a cylindrical body 210 and a central column 211. The cylindrical body 210 is fitted over the central column 211, and the central column 211 is fixedly connected to the drive assembly 30. The cylindrical body 210 is installed in the receiving cavity 11 and connected to the drive assembly 30. The cylindrical body 210 has an oblique annular limiting groove 2100. The braided component 22 is installed on the central column 211. The braided component 22 includes a needle body 220 and a hook tongue 221. The end of the needle body 220 away from the drawstring assembly 40 has a hook portion 2200. The end of the needle body 220 near the drawstring assembly 40 has a protrusion 2201. The hook portion 2200 is rotatably connected to the hook tongue 221. The protrusion 2201 is inserted into the oblique annular limiting groove 2100, and the oblique annular limiting groove 2100 pushes the protrusion 2201 to move, thereby driving the needle body 220 to move towards or away from the pull rope assembly 40.

[0034] Understandably, when the drive assembly 30 drives the cylinder 210 to rotate, the central column 211 remains stationary, and the braided piece 22 is pushed to move toward or away from the pull rope assembly 40 through the oblique annular limiting groove 2100 inside the cylinder 210 to achieve braiding.

[0035] In some embodiments of this application, the number of braided pieces 22 may include multiple, such as two, three, four or more, and this embodiment does not impose any limitation.

[0036] Understandably, multiple braided pieces 22 can be spaced around the central post 211, specifically, they can be arranged on the inner surface or the outer surface. Furthermore, to ensure smooth movement of the braided pieces 22, sliding tracks 2110 corresponding one-to-one with the at least two braided pieces 22 can be provided on the inner and / or outer surfaces of the central post 211, allowing the braided pieces to slide on the sliding tracks 2110.

[0037] In some embodiments of this application, the weaving device 100 further includes a blocking member 80. The blocking member 80 is mounted on the body 21 and is capable of pressing down on the hook tongue 221 when the hook tongue 221 moves away from the hook portion 2200.

[0038] Understandably, the blocking member 80 is mounted on the body 21, which is connected to the drive assembly 30. When the drive assembly 30 drives the body 21 to rotate, the body 21 can synchronously drive the blocking member 80 to rotate, so that the blocking member 80 can press the hook tongue 221 when the hook tongue 221 moves away from the hook portion 2200.

[0039] In practical applications, when the target braid 22 of at least two braided pieces 22 moves away from the pull rope assembly 40, the hook 2200 moves away from the tension assembly. The thread in the hook 2200 will detach from the hook 2200 and pull the hook tongue 221 to move away from the hook 2200, so that the thread detaches from the hook 2200. During the process of the thread detaching from the hook 2200, the hook tongue 221 may move towards the hook tongue 221 due to inertia or being pushed by the thread, causing the hook 2200 and the hook tongue 221 to close, resulting in the target braided piece 22 being unable to hook the thread. In this embodiment, during the braiding process, after the hook 2200 detaches from the thread, the blocking part presses down the hook tongue 221 in time, solving the problem that the braided piece 22 cannot hook the thread. Specifically, since the movement trajectory of the hook tongue 221 towards the hook 2200 is different for multiple braided pieces 22 during the braiding process, this embodiment installs the blocking part on the main body to achieve the simultaneous rotation and pressing down of the hook tongue 221 of the corresponding braided piece 22. This helps prevent any knitted piece 22 from failing to catch the thread or from skipping stitches, thus improving the yield of the finished knitted product.

[0040] In some embodiments of this application, the blocking member 80 is installed on the movement trajectory of the hook tongue 221 of the target knitted piece 22 as it moves away from the hook 2200 after the hook 2200 has come loose. The blocking member 80 may include a fixing part and a blocking part. One end of the fixing part is fixed to the body 21, and the other end of the fixing part is detachably connected to the blocking part. The blocking part is made of a flexible material. The flexible material may include a silicone brush, a nylon brush, a bristle brush, etc. Pressing the hook tongue 221 with a flexible material helps to avoid damage to the finished product during the blocking process, thus improving the yield of the knitted product.

[0041] like Figure 3 As shown, the drive assembly 30 includes a drive member 31 and a transmission assembly 32. The transmission assembly 32 includes a first transmission assembly 320 and a second transmission assembly 321. A first end of the first transmission assembly 320 is connected to the drive member 31, a second end of the first transmission assembly 320 is connected to the body 21, a third end of the first transmission assembly 320 is connected to the first end of the second transmission assembly 321, and a second end of the second transmission assembly 321 is engaged with the rotating member 42. The drive member 31 drives the first transmission assembly 320 to rotate, thereby driving the second transmission assembly 321 and the body 21 to rotate. The second transmission assembly 321 engages with the rotating member 42 to drive the rotating member 42 to rotate.

[0042] In some embodiments of this application, the first transmission component 320 is connected to the braiding component 20, and the second transmission component 321 is connected to the stretching component, which enables the braided finished product to be pulled out simultaneously while weaving, thereby improving the weaving efficiency and ensuring the yield of the finished product.

[0043] In some embodiments of this application, the drive component 31 can be a motor. The motor's speed and output power can be precisely adjusted according to the materials required for the finished woven product, thereby precisely controlling the speed of the weaving assembly 20 and the stretching assembly, which helps improve weaving efficiency.

[0044] In some embodiments of this application, the first transmission assembly 320 includes a first transmission member 3200, a second transmission member 3201, and a third transmission member 3202. The first transmission member 3200 is connected to the drive member 31, the second transmission member 3201 is engaged between the first transmission member 3200 and the third transmission member 3202, and the third transmission member 3202 is connected to the body 21.

[0045] In some embodiments of this application, the first transmission component 3200 can be a single-stage bevel gear, the second transmission component 3201 can be a two-stage bevel gear, and the third transmission component can include a three-stage bevel gear, a three-stage spur gear, and a four-stage spur gear. The two-stage bevel gear drives the three-stage bevel gear to rotate, the three-stage bevel gear is fixedly connected to the three-stage spur gear, the three-stage spur gear is meshed with the four-stage spur gear, and the three-stage spur gear drives the four-stage spur gear to rotate. Through multi-stage gear transmission, the weaving assembly 20 is driven to weave. On the one hand, this can significantly reduce speed fluctuations and torque transmission errors, ensure the smooth operation of the weaving assembly 20, and improve weaving accuracy and product consistency. On the other hand, by adjusting the number of gear stages, gear ratio, or combination method, the transmission ratio can be flexibly changed to adapt to the process requirements of different weaving densities, speeds, or complex patterns, and meet the diverse product production requirements.

[0046] In some embodiments of this application, the second transmission component 321 can be a worm gear, which is connected to the first transmission component 320. The first transmission component 320 drives the worm gear to rotate, and the worm gear meshes with the rope assembly 40. The rotation of the worm gear drives the rope assembly 40 to rotate.

[0047] In some embodiments of this application, the weaving device 100 further includes a knob 50. The knob 50 is connected to the second transmission member 3201. The knob 50 is used to drive the second transmission member 3201 to rotate clockwise or counterclockwise.

[0048] The second transmission component 3201 can be driven to rotate by the knob 50, which in turn drives the third transmission component 3202 to rotate, and the third transmission component 3202 further drives the braiding assembly and the wire pulling assembly to rotate, thus enabling manual operation.

[0049] Understandably, if a thread jam or skipped stitch occurs during the knitting process, the movement of the knitting component 22 can be manually adjusted by rotating the second transmission component 3201 clockwise or counterclockwise, preventing the knitting device 100 from getting stuck and being damaged, thus reducing maintenance costs.

[0050] Further integration Figure 4 and Figure 5 As shown, the clamping member 41 includes a toggle part 410 and a wire clamping assembly 411. The wire clamping assembly 411 includes a rotating part 4110 and a wire clamping part 4111. The toggle part 410 is rotatably connected to the housing 10. The rotating part 4110 is rotatably connected to the toggle part 410. The wire clamping part 4111 is sleeved on the rotating part 4110. The toggle part 410 is used to drive the wire clamping assembly 411 to clamp or loosen the rotating member 42.

[0051] Understandably, the actuating part 410 is connected to the housing 10 via a pin. The rotating part 4110 is connected to the actuating part 410 via a rotating shaft.

[0052] In some embodiments of this application, the pressing assembly 411 is driven by the dialing part to press or release the rotating part 42. When the pressing assembly 411 releases the rotating part 4110, the thread to be braided can be placed between the pressing assembly 411 and the rotating part 42. The rotating part 42 is further pressed by the dialing part 410. During the braiding process, the braided finished product is pulled out by the meshing and rotation of the pressing assembly 411 and the rotating part 42. No manual intervention is required, which improves the pulling efficiency and thus improves the braiding efficiency of the braiding device 100.

[0053] In some embodiments of this application, the crimping portion 4111 can be made of an elastic material to prevent damage to the finished product and ensure product yield. For example, the crimping portion 4111 can be a crimping silicone roller.

[0054] In some embodiments of this application, the crimping part 4111 is sleeved on the rotating part 4110 to achieve a detachable connection, which facilitates the replacement and assembly of the crimping part 4111 and improves the assembly and disassembly efficiency of the crimping part 4111.

[0055] In some embodiments of this application, the clamping member 41 further includes a first elastic member 412. The housing 10 is provided with a groove 12. The actuating part 410 is provided with a protrusion 4100. The first elastic member 412 is sleeved on the protrusion 4100 and is located between the groove 12 and the actuating part 410. The first elastic member 412 is used to drive the actuating part 410 to reset after the actuating part 410 is rotated.

[0056] In some embodiments of this application, by providing a first elastic member 412 between the housing 10 and the actuating part 410, the elastic force of the first elastic member 412 helps to ensure that after the actuating part 410 is reset, the pressing assembly 411 can press the rotating part 4110, avoiding the problem of finished product accumulation due to the pressing assembly 411 and the rotating part 4110 not being pressed tightly during the pulling out of the finished product, thus improving the weaving efficiency.

[0057] In some embodiments of this application, the pull cord assembly 40 further includes a fixing member 43. The fixing member 43 includes a first arm segment 430 and a second arm segment 431 extending from the first arm segment 430, with the first arm segment 430 and the second arm segment 431 arranged at an angle. The first arm segment 430 is connected to the clamping member 41. A gap exists between the second arm segment 431 and the clamping member 41. The gap ensures that the finished product can be pulled out smoothly.

[0058] Understandably, the included angle between the first arm segment 430 and the second arm segment 431 can be set to 90 degrees. This embodiment does not impose any restrictions on this. For example, the included angle between the first arm segment 430 and the second arm segment 431 can be set according to the shape of the clamping member 41.

[0059] In some embodiments of this application, by setting the first arm segment 430 and the second arm segment 431 at an angle, and by having a gap between the second arm segment 431 and the clamping member 41, the problem of finished product blockage during the process of the clamping member 41 rotating to drive the woven finished product to move away from the weaving assembly 20 can be avoided, thereby improving weaving efficiency.

[0060] Further integration Figure 6 and Figure 7 As shown, the braiding device 100 further includes a support 60 and a wire securing assembly 70. One end of the support 60 is connected to the housing 10. The end of the support 60 away from the housing 10 is provided with a wire holding portion 61. The wire securing assembly 70 is provided with a snap-fit ​​groove 71 adapted to the wire holding portion 61. The wire holding portion 61 snaps into the snap-fit ​​groove 71 to secure the wire to be braided.

[0061] In practical applications, by placing the thread in the thread placement part 61, the thread fixing component 70 is further snapped into the thread placement part 61 to fix the thread to be braided, ensuring the tightness of the thread to be braided before braiding, and avoiding the hook part 2200 from hooking in the middle of the thread to be braided due to uneven tightness of the thread to be braided, which would affect the braiding efficiency and the finished product effect.

[0062] In some embodiments of this application, the thread placement part 61 is provided with a threading groove 62. The threading groove 62 is used for the thread to be braided to pass through, which helps to prevent the thread to be braided from getting tangled, thereby improving the stability of the position of the thread to be braided.

[0063] In some embodiments of this application, the material to be braided may include, but is not limited to, braidable materials such as thread and rope.

[0064] In some embodiments of this application, the wire securing assembly 70 includes a connector 74, a second elastic member 73, and a wire clamping member 72. The wire clamping member 72 has a first recess 720. The first recess 720 communicates with the snap-fit ​​groove 71. The connector 74 has a second recess 740. The bottom of the second recess 740 has a connecting portion 7400. The second elastic member 73 is sleeved on the wire placement portion 61 and is located between the bottom of the first recess 720 and the bottom of the second recess 740. The connecting portion 7400 extends into the first recess 720 and connects to the wire placement portion 61.

[0065] In some embodiments of this application, pressure is applied to the spring by rotating the clamping member 41, so as to press the wire to be braided by the wire clamping member 72, which further ensures the tightness of the wire to be braided before braiding, thereby avoiding the hook 2200 from hooking in the middle of the wire to be braided due to uneven tightness of the wire to be braided, which would affect the braiding efficiency and the finished product effect.

[0066] Furthermore, by setting the center line of the wire outlet channel to be located at the wire pressing point, that is, at the connection between the wire placement part 61 and the wire pressing part 72, the tightness of the wire to be braided before braiding is further ensured.

[0067] In some embodiments of this application, the weaving device 100 further includes a speed regulating component 90 and a control board (not shown in the figure). The speed regulating component 90 is mounted on the control board. The control board is electrically connected to the drive component 31. The speed regulating component 90 is used to adjust the transmission speed of the drive component 31.

[0068] For example, if the speed regulating component 90 can achieve three-speed regulation, by rotating the speed regulating component 90, the corresponding analog voltage signal is output. The control board collects the voltage signal and adjusts the transmission speed of the drive component 31 based on the collected voltage signal to adapt to the process requirements of different weaving densities, speeds or complex patterns, and meet the diverse product production requirements.

[0069] The above embodiments are only used to illustrate the technical solutions of this application and are not intended to limit it. Although this application has been described with reference to the embodiments, those skilled in the art should understand that modifications or equivalent substitutions can be made to the technical solutions of this application without departing from the spirit and substance of the technical solutions of this application.

Claims

1. A weaving device, characterized in that, The weaving device includes: a housing with a cavity, a weaving assembly, a drive assembly, and a draw rope assembly; The drive assembly is installed inside the accommodating cavity; The braiding assembly includes a body and at least two braided components. The body is installed in the accommodating cavity and connected to the driving assembly. The at least two braided components are installed on the body and slidably connected to the body. The pull rope assembly is installed on one side of the braiding assembly. The pull rope assembly includes a clamping member and a rotating member. The clamping member is connected to the housing, and the rotating member is engaged between the drive assembly and the clamping member. The drive assembly is used to drive the body to rotate, so as to drive the at least two braided pieces to move in a direction close to or away from the pull rope assembly. It is also used to drive the rotating piece to rotate, the rotating piece engaging with the clamping piece to drive the clamping piece to rotate, and the rotation of the clamping piece drives the finished braided product to move away from the braiding assembly.

2. The weaving device according to claim 1, characterized in that, The driving assembly includes a driving member and a transmission assembly. The transmission assembly includes a first transmission assembly and a second transmission assembly. A first end of the first transmission assembly is connected to the driving member, a second end of the first transmission assembly is connected to the body, a third end of the first transmission assembly is connected to the first end of the second transmission assembly, and a second end of the second transmission assembly is engaged with the rotating member. The driving member drives the first transmission assembly to rotate, thereby driving the second transmission assembly and the body to rotate. The second transmission assembly engages with the rotating member to drive the rotating member to rotate.

3. The weaving device according to claim 2, characterized in that, The first transmission assembly includes a first transmission member, a second transmission member, and a third transmission member. The first transmission member is connected to the driving member, the second transmission member is engaged between the first transmission member and the third transmission member, and the third transmission member is connected to the body.

4. The weaving device according to claim 3, characterized in that, The weaving device further includes a knob, which is connected to the second transmission component and is used to drive the second transmission component to rotate clockwise or counterclockwise.

5. The weaving device according to claim 1, characterized in that, The clamping component includes a toggle part and a wire pressing assembly. The wire pressing assembly includes a rotating part and a wire pressing part. The toggle part is rotatably connected to the housing. The rotating part is rotatably connected to the toggle part. The wire pressing part is sleeved on the rotating part. The toggle part is used to drive the wire pressing assembly to press or release the rotating component.

6. The weaving device according to claim 5, characterized in that, The clamping member further includes a first elastic member. The housing is provided with a groove, and the actuating part is provided with a protrusion. The first elastic member is sleeved on the protrusion and located between the groove and the actuating part. The first elastic member is used to drive the actuating part to reset after the actuating part rotates.

7. The weaving device according to claim 6, characterized in that, The pull rope assembly also includes a fixing member, which includes a first arm segment and a second arm segment that bends and extends from the first arm segment. The first arm segment and the second arm segment are arranged at an angle. The first arm segment is connected to the clamping member, and there is a gap between the second arm segment and the clamping member.

8. The weaving device according to claim 1, characterized in that, The braiding device further includes a bracket and a wire fixing assembly. One end of the bracket is connected to the housing, and the end of the bracket away from the housing is provided with a wire placement part. The wire fixing assembly is provided with a snap-fit ​​groove adapted to the wire placement part. The wire placement part snaps into the snap-fit ​​groove to fix the wire to be braided.

9. The weaving device according to claim 8, characterized in that, The wire fixing assembly includes a wire pressing member, a second elastic member, and a connector. The wire pressing member has a first recess that communicates with the snap-fit ​​groove. The connector has a second recess, and the bottom of the second recess has a connecting part. The second elastic member is sleeved on the wire placement part and is located between the bottom of the first recess and the bottom of the second recess. The connecting part extends into the first recess and is connected to the wire placement part.

10. The weaving device according to any one of claims 1 to 9, characterized in that, The knitting device further includes a blocking member. The knitting member includes a needle body and a hook tongue. The end of the needle body away from the pull cord assembly is provided with a hook portion. The hook portion is rotatably connected to the hook tongue. The blocking member is installed on the body and can press down the hook tongue when the hook tongue moves in a direction away from the hook portion.