Six-part glass fiber drawing machine

By designing a six-section glass fiber drawing machine, the impeller length is increased to six yarn bobbins, and a moving bundler and bundler assembly are provided, enabling simultaneous drawing of six yarn bobbins. This solves the problem of low efficiency in traditional drawing machines and improves production efficiency.

CN224147952UActive Publication Date: 2026-04-21TAIAN JIACHENG ELECTROMECHANICAL TECH LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
TAIAN JIACHENG ELECTROMECHANICAL TECH LTD
Filing Date
2024-08-05
Publication Date
2026-04-21

AI Technical Summary

Technical Problem

Traditional glass fiber drawing machines mainly use two-part and three-part drawing, resulting in low yarn drawing efficiency and difficulty in meeting the growing market demand.

Method used

Design a six-point glass fiber drawing machine with an impeller length greater than 6 yarn bobbins, equipped with a moving bundler and multiple bundler assemblies, and achieve simultaneous drawing of 6 yarn bobbins through the cooperation of the main shaft impeller mechanism, the arrangement mechanism and the water pipe assembly.

Benefits of technology

It improves yarn drawing efficiency, enabling the drawing of 6 yarn bobbins to be fully completed within one full bobbin time, significantly improving production efficiency.

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Abstract

The utility model belongs to the technical field of glass fiber drawing machines, and discloses a six-part-drawing glass fiber drawing machine which comprises a rack, a main shaft impeller mechanism, a turnover mechanism, an arranging mechanism, a yarn blocking mechanism, a water pipe assembly and a control system are arranged on the rack, and the length of an impeller of the main shaft impeller mechanism is larger than that of six bobbins; a movable buncher is arranged on the machine frame and comprises a mounting plate arranged in the machine frame, a first sliding rail is arranged on the mounting plate, a sliding pipe is arranged on the first sliding rail in a sliding mode, one end of the sliding pipe penetrates through a base plate of the machine frame and is provided with a reciprocating seat, and a first driving assembly for driving the sliding pipe to slide in a reciprocating mode is arranged on the mounting plate. Six buncher assemblies are arranged on the reciprocating seat in a sliding manner; and a second driving assembly for driving the six buncher assemblies to move is arranged on the mounting plate. According to the device, six bobbins can be subjected to wire drawing at the same time, and the wire drawing efficiency is greatly improved.
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Description

Technical Field

[0001] This utility model relates to the technical field of glass fiber drawing machines, and in particular to a six-point glass fiber drawing machine. Background Technology

[0002] A glass fiber drawing machine is a mechanical device that draws molten glass into fiber filaments at high speed and winds them into fiber rolls according to a certain pattern.

[0003] Currently, there are many types of glass fiber drawing on the market. Traditional glass fiber drawing mainly uses two-part and three-part drawing, which can only draw two to three rolls of yarn at a time. The drawing efficiency is low and it is difficult to meet the growing market demand. Utility Model Content

[0004] To solve the above problems, this utility model provides a six-point glass fiber drawing machine.

[0005] The above-mentioned technical objective of this utility model is achieved through the following technical solution: a six-point glass fiber drawing machine, including a frame, on which a main shaft impeller mechanism, a flipping mechanism, a arranging mechanism, a wire-blocking mechanism, a water pipe assembly, and a control system are provided. The length of the impeller of the main shaft impeller mechanism is greater than the length of six yarn bobbins. A movable bundler is also provided on the frame. The movable bundler includes a mounting plate disposed within the frame. A first slide rail with a length direction consistent with the length direction of the impeller is provided on the mounting plate. A sliding tube arranged along the length direction of the impeller is slidably disposed on the first slide rail. One end of the sliding tube passes through the base plate of the frame and a reciprocating seat is provided at the end. A first driving assembly is provided on the mounting plate to drive the sliding tube to reciprocate along the first slide rail. Six bundler assemblies are slidably disposed on the reciprocating seat. A second driving assembly is provided on the mounting plate to drive the six bundler assemblies to be arranged at intervals corresponding to the six yarn bobbins on the impeller or to drive the six bundler assemblies to move to one end of the reciprocating seat away from the frame.

[0006] By adopting the above technical solution, the length of the impeller is greater than the length of 6 yarn bobbins, so that 6 yarn bobbins can be placed on the impeller at one time. Then, a moving bundler is set up, and the 6 bundler components drive 6 strands of yarn to correspond to one yarn bobbin respectively. Then, under the action of the main shaft impeller, the arrangement mechanism, the water pipe assembly, and the moving bundler, the 6 yarn bobbins are drawn at the same time. In this way, it only takes one full bobbin time to draw 6 yarn bobbins, which greatly improves the drawing efficiency.

[0007] Furthermore, the clustering assembly includes a sliding seat slidably disposed on a reciprocating seat, a fixing plate disposed on the sliding seat, and a cantilever arm suspended on the fixing plate and arranged perpendicularly to the reciprocating seat, with two clustering rods arranged at intervals at the cantilever ends of the cantilever arm and perpendicular to the reciprocating seat.

[0008] By adopting the above technical solution, a sliding seat is set to facilitate the movement of the bundler assembly on the reciprocating seat. Through the fixed plate, the cantilever arm and the bundler rod, the yarn can be held between the two bundler rods, thereby ensuring that the yarn corresponds to the yarn bobbin and avoiding interference between the yarns of adjacent yarn bobbins during yarn drawing.

[0009] Furthermore, the second drive assembly includes a connecting seat disposed on the sliding tube. A first rodless cylinder with a length direction consistent with the length direction of the sliding tube is fixedly disposed on the connecting seat. A push-pull rod is fixedly disposed on the slide of the first rodless cylinder. One end of the push-pull rod passes through the base plate of the frame and is fixedly connected to the fixing plate of the cluster assembly adjacent to the frame. The fixing plate is provided with a first through hole and a second through hole. A first pull rod is suspended from the fixing plates of the five cluster assemblies away from the frame direction. The first pull rod passes through the first through hole on the fixing plate adjacent to the frame side and is provided with a first fixing nut at the end with a diameter larger than the diameter of the first through hole. The cavity of the second through hole allows the first pull rod of the cluster assembly away from the frame side to pass through.

[0010] By adopting the above technical solution, a first rodless cylinder, a push-pull rod, a first through hole, a second through hole, and a first pull rod are set up. The first rodless cylinder drives the push-pull rod to pull the cluster assembly near the frame. Then, under the combined action of the first through hole, the first pull rod, and the first fixing nut, the cluster assembly on the side away from the frame is pulled towards the frame in sequence, thereby opening up the 6 cluster assemblies and arranging them respectively corresponding to the 6 yarn bobbins.

[0011] Furthermore, a limiting plate is provided at the end of the reciprocating seat away from the frame. A second tie rod is suspended on the limiting plate toward the frame. The second tie rod passes through a first through hole on an adjacent fixed plate and has a second fixing nut at its end with a diameter larger than that of the first through hole.

[0012] By adopting the above technical solution, a limiting plate, a second pull rod, and a second fixing nut are also provided at the end of the reciprocating seat away from the frame. The second pull rod and the second fixing nut cooperate with the bundle assembly away from the frame. In this way, when the first rodless cylinder drives the push-pull rod to pull the bundle assembly to move, the movement of the bundle assembly away from the frame is restricted, so as to avoid excessive pulling that makes it impossible to correspond with the yarn bobbin.

[0013] Furthermore, the limiting plate and the fixing plates of the five cluster assemblies away from the frame are all provided with limiting posts that extend toward the frame, and the end of the limiting post near the frame is provided with a rubber post.

[0014] By adopting the above technical solution, limiting posts and rubber posts are set on the limiting plate and the fixing plate, so that when the first rodless cylinder drives the push-pull rod to push the cluster assembly to move away from the frame end of the reciprocating seat after the cylinder is full, the adjacent cluster assemblies are in contact through the limiting posts and rubber posts, which plays a role in buffering and protecting the cluster assembly.

[0015] Furthermore, the first drive assembly includes a lead screw rotatably mounted on a mounting plate, a drive motor being mounted at one end of the lead screw, and a nut seat being helically connected to the lead screw, the nut seat being fixedly connected to a sliding tube.

[0016] By adopting the above technical solution, a lead screw, a drive motor, and a nut seat are set up. The drive motor drives the lead screw to rotate, thereby driving the sliding tube to move through the nut seat.

[0017] Furthermore, the wire-blocking mechanism includes a second rodless cylinder disposed within the frame and a wire-blocking rod slidably disposed on the frame substrate along the length direction of the impeller. The second rodless cylinder is spaced apart from the substrate at one end and connected to the substrate via a connecting plate. One end of the wire-blocking rod is fixedly connected to the slide of the second rodless cylinder, and the other end passes through the frame substrate and is provided with a vertically arranged connecting rod. An arc-shaped plate is provided at each of the upper and lower ends of the connecting rod, and a wire-blocking carbon rod is rotatably disposed between the two ends of the arc-shaped plate.

[0018] By adopting the above technical solution, the second rodless cylinder is arranged at an interval between the end near the base plate and the base plate and connected by a connecting plate, so that when the wire guide rod is fully extended, part of its end will remain in the frame, which can reduce the vibration of the front end of the wire guide rod; setting two upper and lower bow-shaped plates and wire guide carbon rods can ensure that the yarn bundle is pushed to the front end of the impeller, and adding carbon rods can effectively reduce friction, protect the yarn, and improve the success rate of bobbin changing.

[0019] Furthermore, the flipping mechanism includes a turntable rotatably mounted on the frame base plate and a drive mechanism mounted inside the frame to drive the turntable to rotate. An S-plate is provided on the front side of the turntable, the length of which is the same as that of the impeller, and a reinforcing plate is provided at the bend of the S-plate.

[0020] By adopting the above technical solution, a reinforcing plate is set at the bend of the S-plate, which can effectively improve the strength of the S-plate and reduce the amplitude of the front end of the S-plate.

[0021] Furthermore, the main shaft impeller mechanism includes a support sleeve disposed on the tilting mechanism. A motor housing is disposed inside the support sleeve. A stator and a rotor shaft are disposed inside the motor housing. A shaft core is disposed at the front end of the motor housing. The rotor shaft passes through the shaft core and is fixedly connected to the impeller at the front end. Several annular grooves are spaced apart on the outer walls of both the motor housing and the shaft core. O-rings are disposed in the annular grooves.

[0022] By adopting the above technical solution, several annular grooves are opened at intervals on the outer wall of the motor housing and the shaft cylinder, and O-rings are set in the annular grooves, which can be used to absorb the vibration caused by the elongation of the impeller.

[0023] In summary, this utility model has the following beneficial effects: In this application, by setting the length of the impeller to be greater than the length of 6 yarn bobbins, 6 yarn bobbins can be placed on the impeller at one time. Then, a moving bundler is set up, and the 6 bundler components drive 6 strands of yarn to correspond to one yarn bobbin respectively. Then, under the action of the main shaft impeller, the arrangement mechanism, the water pipe assembly, and the moving bundler, the 6 yarn bobbins are drawn at the same time. In this way, it only takes one full bobbin time to draw 6 yarn bobbins, which greatly improves the drawing efficiency. Attached Figure Description

[0024] Figure 1 This is a schematic diagram of the overall structure of an embodiment of the present utility model;

[0025] Figure 2 This is a schematic diagram of the structure of the moving clusterer according to an embodiment of the present invention;

[0026] Figure 3 This is a schematic diagram of the structure of the movable cluster in the open state of the cluster assembly according to an embodiment of the present invention;

[0027] Figure 4 This is a schematic diagram of the structure of a cluster assembly according to an embodiment of the present invention;

[0028] Figure 5 This is a schematic diagram of the structure of the wire-stopping mechanism according to an embodiment of the present invention;

[0029] Figure 6 This is a schematic diagram of the structure of the main shaft impeller mechanism according to an embodiment of the present invention;

[0030] Figure 7 This is a partial structural cross-sectional view of the main shaft impeller mechanism according to an embodiment of the present invention;

[0031] Figure 8 This is a schematic diagram of the structure of the S-plate portion of this utility model embodiment.

[0032] In the diagram: 10. Frame; 20. Main shaft impeller mechanism; 21. Impeller; 22. Support sleeve; 23. Motor housing; 24. Stator; 25. Rotor shaft; 26. Shaft cylinder; 27. Annular groove; 28. O-ring; 30. Tilting mechanism; 31. Turntable; 32. S-plate; 33. Reinforcing plate; 40. Arrangement mechanism; 50. Wire-stopping mechanism; 51. Second rodless cylinder; 52. Wire-stopping rod; 53. Connecting plate; 54. Connecting rod; 55. Bow-shaped plate; 56. Wire-stopping carbon rod; 60. Water pipe assembly; 70. Moving bundler; 71. Mounting plate; 72. First slide rail; 73. Sliding... 74. Pipe; 75. Reciprocating seat; 76. First drive assembly; 771. Lead screw; 78. Drive motor; 79. Nut seat; 70. Bundle assembly; 71. Sliding seat; 72. Fixing plate; 73. Cantilever arm; 74. Bundle rod; 75. First through hole; 766. Second through hole; 777. Limiting post; 78. Rubber post; 79. Second drive assembly; 701. Connecting seat; 712. First rodless cylinder; 713. Push-pull rod; 724. First pull rod; 735. First fixing nut; 746. Limiting plate; 757. Second pull rod; 768. Second fixing nut. Detailed Implementation

[0033] The technical solutions in the embodiments of this application will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of this application, and not all embodiments. All other embodiments obtained by those skilled in the art based on the embodiments of this application without creative effort are within the scope of protection of this application.

[0034] like Figure 1-8 As shown in the embodiment of this application, a six-point glass fiber drawing machine is disclosed, including a frame 10. The frame 10 is provided with a main shaft impeller mechanism 20, a flipping mechanism 30, a arranging mechanism 40, a wire blocking mechanism 50, a water pipe assembly 60, a moving bundler 70, and a control system. The control system controls the operation of each mechanism according to a preset program.

[0035] Specifically, the flipping mechanism 30 includes a turntable 31 rotatably mounted on the base plate of the frame 10. A drive mechanism for rotating the turntable 31 is installed inside the frame 10. A main shaft impeller mechanism 20 is mounted on the turntable 31. The main shaft impeller mechanism 20 includes a support sleeve 22 mounted on the flipping mechanism 30. A motor housing 23 is installed inside the support sleeve 22. A stator 24 and a rotor shaft 25 are installed inside the motor housing 23. A shaft core 26 is installed at the front end of the motor housing 23. The rotor shaft 25 passes through the shaft core 26 and is fixedly connected to the impeller 21 at its front end. The length of the impeller 21 is greater than the length of six yarn bobbins, allowing six yarn bobbins to be placed on the impeller 21 simultaneously. With the cooperation of various mechanisms, the six yarn bobbins can be drawn simultaneously, greatly improving the working efficiency of the drawing machine. To reduce the vibration caused by the extended impeller 21 during rotation, several annular grooves 27 are spaced apart on the outer walls of the motor housing 23 and the shaft cylinder 26. O-rings 28 are installed within the annular grooves 27, absorbing some vibration and thus ensuring the smooth operation of the main shaft impeller 21 mechanism 20. An S-plate 32 is installed on the front side of the turntable 31, with a length matching that of the impeller 21. To ensure the strength of the S-plate 32, a reinforcing plate 33 is installed at the bend of the S-plate 32. The reinforcing plate 33 not only effectively improves the strength of the S-plate 32 but also reduces the amplitude of vibration at the front end of the S-plate 32.

[0036] The wire-blocking mechanism 50 includes a second rodless cylinder 51 disposed within the frame 10 and a wire-blocking rod 52 slidably disposed on the base plate of the frame 10 along the length direction of the impeller 21. A linear bearing is disposed between the wire-blocking rod 52 and the base plate of the frame 10, and the linear bearing is lined with pure copper. The end of the second rodless cylinder 51 adjacent to the base plate is spaced apart from the base plate and connected by a connecting plate 53. One end of the wire-blocking rod 52 is fixedly connected to the slide of the second rodless cylinder 51, and the other end passes through the linear bearing on the base plate of the frame 10. This allows a portion of the inner end of the wire-blocking rod 52 to remain inside the frame 10 when it is fully extended. This effectively supports the wire-blocking rod 52 at its end and under the action of the linear bearing, effectively preventing problems such as vibration at the front end of the wire-blocking rod 52 due to excessive length. A vertically arranged connecting rod 54 is provided at the front end of the wire guide rod 52. An arc-shaped plate 55 is provided at each of the upper and lower ends of the connecting rod 54. A wire-blocking carbon rod 56 is rotatably mounted between the two ends of the arc-shaped plate 55. The two wire-blocking carbon rods 56 effectively reduce friction with the wire bundle, improving the success rate of bobbin changing. A protective cover is also provided outside the second rodless cylinder 51 to prevent debris from falling onto the second rodless cylinder 51 and affecting the smooth movement of the wire guide rod 52. To prevent vibration of the protective cover during the operation of the wire drawing machine, several support plates are provided inside the protective cover for support.

[0037] The mobile clusterer 70 includes a mounting plate 71 disposed within the frame 10. A first slide rail 72 with a length direction aligned with that of the impeller 21 is disposed on the mounting plate 71. A sliding tube 73 arranged along the length direction of the impeller 21 is slidably disposed on the first slide rail 72. One end of the sliding tube 73 passes through the base plate of the frame 10 and has a reciprocating seat 74 at its end. A first drive assembly 75 for driving the sliding tube 73 to reciprocate along the first slide rail 72 is disposed on the mounting plate 71. The first drive assembly 75 includes a lead screw 751 (the thread on which is not shown in the figure) rotatably disposed on the mounting plate 71. A drive motor 752 is disposed at one end of the lead screw 751. A nut seat 753 is screwed onto the lead screw 751 and is fixedly connected to the sliding tube 73. The drive motor 752 drives the lead screw 751 to rotate, which in turn drives the nut seat to move, thereby driving the sliding tube 73 and the reciprocating seat 74 to move. Under the forward and reverse rotation of the drive motor 752, the sliding tube 73 and the reciprocating seat 74 reciprocate during the wire drawing process.

[0038] Furthermore, six bundler assemblies 76 are slidably disposed on the reciprocating seat 74. Each bundler assembly 76 includes a sliding seat 761 slidably disposed on the reciprocating seat 74, a fixing plate 762 disposed on the sliding seat 761, and a cantilever arm 763 extending from the fixing plate 762 and arranged perpendicularly to the reciprocating seat 74. Two bundler rods 764 perpendicular to the reciprocating seat 74 are arranged at intervals at the cantilever ends of the cantilever arms 763. The yarn is arranged between the two bundler rods 764. During the yarn drawing process, the yarn can be driven to reciprocate and wrap around the yarn bobbin through the two bundler rods 764. To reduce the friction between the bundler rods 764 and the yarn and to protect the yarn, the bundler rods 764 are made of carbon rod material.

[0039] A second drive assembly 77 is provided on the mounting plate 71. The second drive assembly 77 is used to drive the six cluster assemblies 76 to be arranged at intervals corresponding to the six yarn bobbins on the impeller 21, or to drive the six cluster assemblies 76 to move to the end of the reciprocating seat 74 away from the frame 10. Specifically, the second drive assembly 77 includes a connecting seat 771 provided on the sliding tube 73. A first rodless cylinder 772 with the same length direction as the sliding tube 73 is fixedly provided on the connecting seat 771. A push-pull rod 773 is fixedly provided on the slide of the first rodless cylinder 772. One end of the push-pull rod 773 passes through the base plate of the frame 10 and is fixedly connected to the fixing plate 762 of the cluster assembly 76 adjacent to the frame 10. In this way, the cluster assembly 76 can be pushed and pulled on the reciprocating seat 74 by the push-pull rod 773. To ensure the movement of the six clusterer assemblies 76, first tie rods 774 are suspended from the frame 10 on the fixing plates 762 of the five clusterer assemblies 76 located away from the frame 10. The positions of the first tie rods 774 on each fixing plate 762 are different and avoid each other. Each fixing plate 762 of the clusterer assembly 76 has a first through hole 765 and a second through hole 766. The position of the first through hole 765 corresponds to the position of the first tie rod 774 on the clusterer assembly 76 located away from the frame 10, and the diameter of the first through hole 765 is slightly larger than the diameter of the first tie rod 774. The position of the second through hole 766 corresponds to the position of the first tie rod 774 of the other clusterer assembly 76 located away from the frame 10, and its diameter is larger, allowing the first tie rod 774 of the clusterer assembly 76 located away from the frame 10 to pass through, thus avoiding the other first tie rods 774. Each first pull rod 774 passes through a first through hole 765 on the fixing plate 762 on the side adjacent to the frame 10 and has a first fixing nut 775 at its end with a diameter larger than that of the first through hole 765. Thus, when the push-pull rod 773 pulls the cluster assembly 76 on the side adjacent to the frame 10 to move a certain distance toward the frame 10, its fixing plate 762 contacts the first fixing nut 775 of the cluster assembly 76 on the side away from the frame 10, thereby driving the corresponding second cluster assembly 76 to move toward the frame 10, and so on, until the sixth cluster assembly 76 is driven to move toward the frame 10. To prevent excessive movement, a limit plate 776 is provided at the end of the reciprocating seat 74 away from the frame 10. A second pull rod 777 extends from the limit plate 776 toward the frame 10. The second pull rod 777 passes through a first through hole 765 on the adjacent fixing plate 762 and has a second fixing nut 778 at its end with a diameter larger than that of the first through hole 765. Thus, when the fixing plate 762 of the sixth bundler assembly 76 contacts the second fixing nut 778, the sixth bundler assembly 76 cannot continue to move, thereby moving into place. The length of the first pull rod 774 is set according to the length between the centers of the yarn bobbins, so that each of the six bundler assemblies 76 corresponds exactly to one yarn bobbin when fully extended.

[0040] A further feature is that limiting posts 767 extending toward the frame 10 are provided on the limiting plate 776 and the fixing plates 762 of the five cluster assemblies 76 in the direction away from the frame 10. A rubber post 768 is provided at the end of the limiting post 767 near the frame 10, so that adjacent cluster assemblies 76 are blocked by the limiting post 767 and the rubber post 768, so as to avoid collision and damage to the cluster assemblies 76 when the push rod 773 pushes the cluster assemblies 76 to move toward the reciprocating seat 74 away from the end of the frame 10.

[0041] The water pipe mechanism is set in two sets, each set with 6 nozzles. One set corresponds to the moving cluster 70, and the other set corresponds to the impeller 21.

[0042] The operating principle of a six-strand glass fiber drawing machine in this embodiment is as follows: Before loading, the six bundlers 76 are arranged at the end of the reciprocating seat 74 away from the frame 10. When loading, the yarn is divided into six strands and placed between the bundlers 764 of the six bundlers 76. Then, the first rodless cylinder 772 drives the push-pull rod 773 to retract, which drives the six bundlers 76 to move towards the frame 10 in sequence until they are completely distributed, so that each strand of yarn corresponds to a yarn bobbin. Then, under the cooperation of the main shaft impeller mechanism 20, the braiding mechanism 40, the water pipe assembly 60, etc., the drawing begins. The drive motor 752 drives the lead screw 751 to rotate, which drives the sliding tube 73 and the reciprocating seat 74 to move back and forth, so that the yarn is evenly wound on the yarn bobbin.

[0043] The above description is merely a preferred embodiment of this utility model. The protection scope of this utility model is not limited to the above embodiments. All technical solutions falling within the scope of this utility model's concept are protected. It should be noted that for those skilled in the art, any improvements and modifications made without departing from the principle of this utility model should also be considered within the protection scope of this utility model.

Claims

1. A six-cavities glass fiber drawing machine, comprising a frame (10) provided with a main shaft vane mechanism (20), a turnover mechanism (30), a arranging mechanism (40), a blocking mechanism (50), a water pipe assembly (60) and a control system, characterized in that: The length of the impeller (21) of the main shaft impeller mechanism (20) is greater than the length of 6 yarn bobbins, and a movable clusterer (70) is further arranged on the rack (10), the movable clusterer (70) comprises a mounting plate (71) arranged in the rack (10), a first sliding rail (72) with the length direction consistent with the length direction of the impeller (21) is arranged on the mounting plate (71), a sliding tube (73) arranged along the length direction of the impeller (21) is slidably arranged on the first sliding rail (72), one end of the sliding tube (73) penetrates through the base plate of the rack (10) and is provided with a reciprocating seat (74) at the end, the first driving assembly (75) for driving the sliding tube (73) to reciprocate along the first sliding rail (72) is arranged on the mounting plate (71), and six clusterer assemblies (76) are slidably arranged on the reciprocating seat (74), the second driving assembly (77) for driving the six clusterer assemblies (76) to be arranged at intervals on the six yarn bobbins of the impeller (21) or driving the six clusterer assemblies (76) to move away from one end of the rack (10) is arranged on the mounting plate (71).

2. A six-cathete glass fiber drawing machine according to claim 1, characterized in that: The clusterer assembly (76) comprises a sliding seat (761) slidably arranged on the reciprocating seat (74), a fixed plate (762) is arranged on the sliding seat (761), the fixed plate (762) is provided with a cantilever arm (763) arranged perpendicularly to the reciprocating seat (74), and two cluster rods (764) arranged perpendicularly to the reciprocating seat (74) are arranged at intervals at the cantilever end of the cantilever arm (763).

3. A six-cathete glass fiber drawing machine according to claim 2, characterized in that: The second driving assembly (77) comprises a connecting seat (771) arranged on the sliding tube (73), a first rodless air cylinder (772) with the length direction consistent with the length direction of the sliding tube (73) is fixedly arranged on the connecting seat (771), a push-pull rod (773) is fixedly arranged on the sliding seat of the first rodless air cylinder (772), one end of the push-pull rod (773) penetrates through the base plate of the rack (10) and is fixedly connected with the fixed plate (762) of the clusterer assembly (76) adjacent to the rack (10), the fixed plate (762) is provided with a first through hole (765) and a second through hole (766), the fixed plate (762) of each of the five clusterer assemblies (76) away from the rack (10) is provided with a first pull rod (774) cantilevered towards the rack (10), the first pull rod (774) penetrates through the first through hole (765) in the fixed plate (762) adjacent to the rack (10) side and is provided with a first fixed nut (775) with a diameter greater than that of the first through hole (765) at the end, and the hole cavity of the second through hole (766) is for the first pull rod (774) of the clusterer assembly (76) away from the rack (10).

4. A six-cathete glass fiber drawing machine according to claim 3, characterized in that: The reciprocating seat (74) is also provided with a limiting plate (776) away from the rack (10), the second pull rod (777) is provided on the limiting plate (776) and extends towards the rack (10), the second pull rod (777) passes through the first through hole (765) on the adjacent fixed plate (762) and is provided with the second fixed nut (778) with a diameter larger than that of the first through hole (765) at the end.

5. A six-cathete glass fiber drawing machine according to claim 4, characterized in that: The limiting plate (776) and the fixed plate (762) of the five cluster assemblies (76) away from the rack (10) are all provided with the limiting column (767) extending towards the rack (10), and the limiting column (767) is provided with the rubber column (768) near the end of the rack (10).

6. A six-cathete glass fiber drawing machine according to claim 1, characterized in that: The first driving assembly (75) comprises a screw rod (751) rotatably arranged on the mounting plate (71), the screw rod (751) is provided with the driving motor (752) at one end, and the screw rod (751) is spirally connected with the nut seat (753) fixedly connected with the sliding pipe (73).

7. A six-cathete glass fiber drawing machine according to claim 1, characterized in that: The blocking mechanism (50) comprises a second rodless cylinder (51) arranged in the rack (10) and a blocking rod (52) slidingly arranged on the base plate of the rack (10) along the length direction of the impeller (21), the second rodless cylinder (51) is arranged at intervals between the base plate and the end adjacent to the base plate and is connected through the connecting plate (53), one end of the blocking rod (52) is fixedly connected with the sliding seat of the second rodless cylinder (51), the other end passes through the base plate of the rack (10) and is provided with the vertically arranged connecting rod (54), one arc plate (55) is arranged on each of the upper and lower ends of the connecting rod (54), and the blocking carbon rod (56) is rotatably arranged between the two ends of the arc plate (55).

8. A six-cathete glass fiber drawing machine according to claim 1, characterized in that: The turnover mechanism (30) comprises a rotating disc (31) rotatably arranged on the base plate of the rack (10) and a driving mechanism arranged in the rack (10) to drive the rotating disc (31) to rotate, the front side of the rotating disc (31) is provided with an S plate (32), the length of the S plate (32) is consistent with the length of the impeller (21), and the reinforcing plate (33) is arranged at the bending part of the S plate (32).

9. A six-cathete glass fiber drawing machine according to claim 8, characterized in that: The main shaft impeller (21) mechanism (20) comprises a supporting sleeve (22) arranged on the turnover mechanism (30), the supporting sleeve (22) is provided with a motor housing (23) inside, the motor housing (23) is provided with a stator (24) and a rotor shaft (25) inside, the motor housing (23) is provided with a shaft center cylinder (26) at the front end, the rotor shaft (25) passes through the shaft center cylinder (26) and is fixedly connected with the impeller (21) at the front end, a plurality of annular grooves (27) are arranged at intervals on the outer walls of the motor housing (23) and the shaft center cylinder (26), and the O-shaped rubber ring (28) is arranged in the annular groove (27).