Glass fiber forming system

By designing a glass fiber forming system, semi-automatic processing of fiber filaments is achieved, solving the problem of easy burns to operators in traditional equipment, improving safety and production efficiency, reducing work injury compensation costs, and ensuring production stability and economic benefits.

CN224118928UActive Publication Date: 2026-04-14GUANGDONG CHANGJIANG ZHILIAN EQUIPMENT ENGINEERING CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
GUANGDONG CHANGJIANG ZHILIAN EQUIPMENT ENGINEERING CO LTD
Filing Date
2025-05-20
Publication Date
2026-04-14

AI Technical Summary

Technical Problem

Traditional glass fiber production equipment poses safety hazards. Operators are easily burned by high-temperature glass molten metal during the fiber-drawing process, leading to work injury compensation and production delays, which affect the company's economic benefits and production stability.

Method used

Design a glass fiber forming system, including a pretreatment mechanism, a pneumatic wire-gathering mechanism, and a wire-leading mechanism, to achieve semi-automatic processing of fiber filaments, avoid direct contact between operators and high-temperature glass molten metal, and precisely control the traction and processing of fiber filaments through the pneumatic wire-gathering mechanism and the wire-leading mechanism.

Benefits of technology

It significantly reduces the risk of burns to operators, reduces workers' compensation costs, improves production efficiency and equipment continuity, and ensures production stability and economic benefits.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to the technical field of glass fiber production equipment, in particular to a glass fiber forming system which comprises an argil crucible, an oil coating roller, a bundling wheel, a steel wire flat cable and a soft barrel machine head which are sequentially arranged on the surface of a wall body, and further comprises a pretreatment mechanism which is arranged on the surface of the wall body and is positioned between the argil crucible and the oil coating roller, the pretreatment mechanism comprises a mounting seat; a pneumatic line concentration mechanism; and a wire mechanism. Therefore, according to the glass fiber forming system, through innovative structural design, semi-automatic assistance of filament pulling operation is achieved, traction and treatment of filaments can be accurately controlled, operators are prevented from making direct contact with a high-temperature glass solution, the scalding risk is reduced fundamentally, the operation safety is greatly improved, the industrial injury claim cost of enterprises is effectively reduced, and the production efficiency is improved. And in the aspect of efficiency, the device assists manual operation, production interruption caused by personnel injury is reduced, the working efficiency is improved by several times compared with that of traditional operation, and the use effect is good.
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Description

Technical Field

[0001] This utility model relates to the technical field of glass fiber production equipment, and in particular to a glass fiber forming system. Background Technology

[0002] In the field of glass fiber production, traditional glass fiber production and forming equipment mainly consists of a clay crucible, an oiling roller, a bundling wheel, a steel wire guide, and a flexible barrel head. When the equipment is running, fiber filaments are discharged from the bottom of the clay crucible. Operators need to manually bundle these fiber filaments into a single strand, then pass them around the oiling roller, the bundling wheel, and the steel wire guide in sequence, and finally wind them onto the flexible barrel head, where the winding operation is completed.

[0003] However, in actual production, this equipment has significant safety hazards and efficiency problems. Before the fiber filaments are wound around the coating roller, the operator must manually pull down the glass fiber until chunks of molten glass fall off the fiber filaments. Only after tearing off the fiber filaments with molten glass can the subsequent operation continue. Because the temperature of the molten glass is extremely high, the operator is very likely to be burned by the molten glass on the fiber filaments when performing this operation. Once a burn accident occurs, not only will the operator need to rest and be unable to work normally, but the company will also have to bear the cost of workers' compensation. Furthermore, the shortage of production personnel will cause delays in production progress, resulting in a series of problems such as reduced production efficiency and increased production costs, which seriously affect the company's economic benefits and production stability. Utility Model Content

[0004] This utility model aims to at least partially solve one of the technical problems in the related art.

[0005] Therefore, the purpose of this utility model is to propose a glass fiber forming system that can assist operators in the fiber-drawing operation, significantly reducing the risk of burns to operators during the fiber-drawing process and improving operational safety. At the same time, due to the significant reduction in the incidence of safety accidents, the cost of workers' compensation for enterprises is significantly reduced, and production costs are effectively controlled. In addition, the production process can operate continuously and stably, avoiding production interruptions caused by accidents, thereby significantly improving overall work efficiency and bringing significant economic and production benefits to glass fiber manufacturing enterprises.

[0006] To achieve the above objectives, this utility model proposes a glass fiber forming system, comprising a clay crucible, an oiling roller, a bundling wheel, a steel wire guide, and a flexible drum head arranged sequentially along a vertical direction on a wall surface, and further comprising a pretreatment mechanism disposed on the wall surface and located between the clay crucible and the oiling roller, the pretreatment mechanism comprising:

[0007] Mounting base: Fixedly connected to the wall surface, a rotating disk is rotatably connected at the center of the disc surface of the mounting base, a toothed ring is integrally formed at the outer edge of the inner end of the rotating disk, one end of the toothed ring penetrates into the rectangular body of the mounting base and meshes with one end of the elastic reset mechanism set on the inner wall of the rectangular body, and a limit mechanism is provided on the surface of the disc body and located outside the rotating disk.

[0008] Pneumatic hub mechanism: It is set on the surface of the rotating disk and abuts and is fixed with the limiting mechanism. The pneumatic hub mechanism is connected to the controller fixedly connected to the outer end face of the rotating disk through the bus system to realize data transmission and control command reception.

[0009] Wire guiding mechanism: disposed in the C-shaped groove on the surface of the rotating disk.

[0010] This utility model discloses a glass fiber forming system. Compared with traditional glass fiber production equipment, which involves manually pulling down the fiber filaments and tearing off the portion containing the molten glass, easily leading to burns and consequently causing work injury compensation and production delays, this glass fiber forming system achieves semi-automatic assistance for the fiber pulling operation through innovative structural design. This device can precisely control the traction and handling of the fiber filaments, avoiding direct contact between operators and high-temperature molten glass, fundamentally reducing the risk of burns, significantly improving operational safety, effectively reducing enterprise work injury compensation costs, and effectively controlling production costs. In terms of efficiency, this device assists manual operation, reducing production interruptions caused by personnel injuries, and increasing work efficiency several times compared to traditional operations, resulting in excellent performance.

[0011] In addition, the glass fiber forming system proposed in the above application may also have the following additional technical features:

[0012] Specifically, the elastic reset mechanism includes a toothed rod, which is horizontally slidably connected to the inner wall of the rectangle and fixedly connected to the inner wall of the rectangle with a reset spring. A damping ring is provided at the connection between the rod end and the inner wall of the rectangle.

[0013] Specifically, the limiting mechanism includes a fixed limiting rod and an elastic telescopic limiting rod. The fixed limiting rod and the elastic telescopic limiting rod are respectively threaded onto the surface of the disc and located outside the rotating disc. A pneumatic hub mechanism is fixedly abutted against the surfaces of the fixed limiting rod and the elastic telescopic limiting rod, respectively.

[0014] The end of the elastic telescopic limit rod closest to the fixed limit rod is a tapered surface, while the end of the elastic telescopic limit rod furthest from the fixed limit rod is a vertical surface.

[0015] Specifically, the pneumatic hub mechanism includes a mounting cylinder, a pneumatic telescopic rod, an inner clamping rod, an outer clamping rod, a middle gear, a toothed portion, and a semi-circular portion. One end of the mounting cylinder is threaded to the inner wall of a positioning hole on the surface of the rotating disk. The pneumatic telescopic rod is fixedly connected to the inner wall of the mounting cylinder. The air inlet end of the pneumatic telescopic rod is connected to one end of an external air pipe. A solenoid valve is provided on the surface of the air inlet end of the pneumatic telescopic rod, and it is connected to the controller through a bus system to realize data transmission and control command reception. The inner clamping rod and the outer clamping rod are horizontally slidably connected to the inner wall of the mounting cylinder. One end of the inner clamping rod is fixedly connected to the output end of the pneumatic telescopic rod. The middle gear is rotatably connected to the inner wall of the mounting cylinder and is located between the inner clamping rod and the outer clamping rod. The middle gear meshes with the toothed portions on the surfaces of the inner clamping rod and the outer clamping rod, respectively. One end of the inner clamping rod and the outer clamping rod extends through the outside of the mounting cylinder and is integrally formed with a semi-circular portion. The semi-circular portion of the outer clamping rod is slidably connected to the smooth section surface of the inner clamping rod and abuts against the surface of the semi-circular portion of the inner clamping rod.

[0016] Specifically, the wire guide mechanism includes a semi-arc seat, which is slidably connected to the inner wall of the C-shaped groove. Elastic clips and clip holes are respectively provided on the surface of the semi-arc seat and at positions corresponding to the inner wall of the C-shaped groove. One end of the elastic clip is engaged and fixed with the clip hole. An adjusting rod is threadedly connected to the top of the semi-arc seat, and a guide wheel is rotatably connected to the top of the adjusting rod.

[0017] Specifically, an operating disc is fixedly connected to the outer end face of the rotating disk.

[0018] Additional aspects and advantages of this invention will be set forth in part in the description which follows, and in part will be obvious from the description, or may be learned by practice of the invention. Attached Figure Description

[0019] The above and / or additional aspects and advantages of this utility model will become apparent and readily understood from the following description of the embodiments taken in conjunction with the accompanying drawings, in which:

[0020] Figure 1 This is a schematic diagram of a glass fiber forming system according to the present invention;

[0021] Figure 2 This is a schematic diagram of the pretreatment mechanism in a glass fiber forming system according to the present invention.

[0022] Figure 3 This is a schematic diagram of the limiting mechanism in a glass fiber forming system according to the present invention.

[0023] Figure 4 This is a schematic diagram of the pneumatic wire gathering mechanism in a glass fiber forming system according to the present invention.

[0024] Figure 5 This is a schematic diagram of the wire mechanism in a glass fiber forming system according to the present invention.

[0025] As shown in the figure:

[0026] 1. Wall; 2. Clay crucible; 3. Oiling roller; 4. Bundling wheel; 5. Steel wire guide; 6. Soft bucket machine head; 7. Pre-treatment mechanism; 8. Mounting base; 81. Circular body; 82. Rectangular body; 9. Rotating disk; 91. Gear ring; 92. C-groove; 93. Control panel;

[0027] 10. Elastic reset mechanism; 11. Limiting mechanism; 12. Pneumatic hub mechanism; 13. Controller; 14. Wire mechanism;

[0028] 101. Gear rack; 102. Return spring; 103. Damping ring;

[0029] 111. Fixed limiting rod; 112. Elastic telescopic limiting rod;

[0030] 121. Mounting cylinder; 122. Pneumatic telescopic rod; 123. Solenoid valve; 124. Inner clamping rod; 125. Outer clamping rod; 126. Middle gear; 127. Toothed part; 128. Semicircular part;

[0031] 141. Semi-arc seat; 142. Elastic retainer; 143. Adjusting rod; 144. Guide wheel;

[0032] 113. Adjustment hole; 129. Key bar; 1210. Limiting groove; 1411. Limiting edge. Detailed Implementation

[0033] The embodiments of the present invention are described in detail below, examples of which are shown in the accompanying drawings, wherein the same or similar reference numerals denote the same or similar elements or elements having the same or similar functions throughout. The embodiments described below with reference to the accompanying drawings are exemplary and intended to explain the present invention, and should not be construed as limiting the present invention. Rather, the embodiments of the present invention include all variations, modifications, and equivalents falling within the spirit and scope of the appended claims.

[0034] A glass fiber forming system according to an embodiment of the present invention will now be described with reference to the accompanying drawings.

[0035] like Figures 1-5 As shown, a glass fiber forming system according to an embodiment of the present invention includes a clay crucible 2, an oiling roller 3, a bundling wheel 4, a steel wire guide 5, and a flexible drum head 6 arranged sequentially along the surface of a wall 1 in a vertical direction. It also includes a pretreatment mechanism 7 disposed on the surface of the wall 1 and located between the clay crucible 2 and the oiling roller 3. The pretreatment mechanism 7 includes:

[0036] Mounting base 8: It is fixedly connected to the surface of the wall 1. A rotating disk 9 is rotatably connected to the center of the surface of the disc body 81 of the mounting base 8. A toothed ring 91 is integrally formed at the outer edge of the inner end of the rotating disk 9. One end of the toothed ring 91 penetrates into the interior of the rectangular body 82 of the mounting base 8 and engages with one end of the elastic reset mechanism 10 provided on the inner wall of the rectangular body 82. A limit mechanism 11 is provided on the surface of the disc body 81 and is located outside the rotating disk 9.

[0037] Pneumatic hub mechanism 12: It is set on the surface of the rotating disk 9 and abuts against the limiting mechanism 11. The pneumatic hub mechanism 12 is connected to the controller 13 fixedly connected to the outer end face of the rotating disk 9 through the bus system to realize data transmission and control command reception.

[0038] Wire guiding mechanism 14: set in the C-shaped groove 92 on the surface of the rotating disk 9.

[0039] It should be noted that the clay crucible 2, oiling roller 3, bundling wheel 4, steel wire 5, and soft barrel head 6 described in this embodiment are all existing technologies, and therefore will not be described in detail here.

[0040] It should be noted that the soft drum head 6 has its own drive mechanism.

[0041] Specifically, in actual operation, when the fiber filaments fall to the location of the pneumatic gathering mechanism 12, the controller 13 activates the pneumatic gathering mechanism 12. The pneumatic gathering mechanism 12 operates according to the instructions, quickly collecting the falling fiber filaments and converging them into a tight bundle. Subsequently, the operator manually rotates the rotating disk 9. The rotation of the rotating disk 9 synchronously drives the pneumatic gathering mechanism 12 to rotate and the guide wire mechanism 14 to move. While the pneumatic gathering mechanism 12 rotates, it simultaneously pulls the fiber filaments downwards. When the distributed fiber filaments reach the set length, the molten glass begins to appear and move along with the fiber filaments. When the molten glass descends to a pre-set specific height, the guide wire mechanism 14 moves precisely to the location of the fiber filaments and makes contact with them, providing guidance and... The pneumatic coiling mechanism 12 provides support to ensure the stability of the fiber filaments during subsequent operations. When the pneumatic coiling mechanism 12 rotates to the set angle and comes into contact with the limiting mechanism 11, the operator releases the rotating disk 9. Then, the fiber bundle located below the wire guide mechanism 14 is broken off, and the fiber bundle is sequentially wound around the oiling roller 3, the bundling wheel 4, and the steel wire guide 5 before being wound onto the soft barrel head 6. Subsequently, the soft barrel head 6 starts to run and automatically completes the winding operation of the fiber bundle. After the fiber filaments are broken, their ends will lose balance and become unstable, causing the glass solution to hang on the pneumatic coiling mechanism 12. The controller 13 controls the pneumatic coiling mechanism 12 to release the bundle, and the bundle and the glass solution will automatically fall to the ground under the natural force of gravity. Afterward, only the fallen bundle and glass solution need to be collected and processed.

[0042] In one embodiment of this utility model, such as Figure 3 As shown, the elastic reset mechanism 10 includes a rack 101, which is horizontally slidably connected to the inner wall of the rectangular body 82, and a reset spring 102 is fixedly connected between the rack 101 and the inner wall of the rectangular body 82. A damping ring 103 is provided at the connection between the rod end of the rack 101 and the inner wall of the rectangular body 82.

[0043] Specifically, the structure and connection relationship of the elastic reset mechanism 10 will be further explained. As the core component for realizing the automatic reset function of the rotating disk 9 in this equipment, the elastic reset mechanism 10 has a precise structure and clear connections between its components. It plays a crucial role in ensuring the efficient and stable operation of the equipment. During use, after the operator releases the rotating disk 9, the elastic potential energy stored in the reset spring 102 is rapidly released, generating a strong elastic force that drives the rack 101 to move in the opposite direction. Since the rack 101 and the gear ring 91 always remain meshed, the reverse movement of the rack 101 will... The gear ring 91 is driven to rotate in the opposite direction, thereby automatically resetting the rotating disk 9 to its initial position. In order to effectively reduce the impact force during the resetting process and avoid problems such as increased equipment vibration and increased wear of parts due to excessive resetting speed, the elastic resetting mechanism 10 is specially equipped with a damping ring 103. The high damping characteristics of the damping ring 103 can generate frictional resistance opposite to the direction of movement of the gear 101, thereby significantly reducing the moving speed of the gear 101, achieving the purpose of buffering, ensuring that the rotating disk 9 can be reset smoothly and gently, and effectively improving the service life and operational reliability of the equipment.

[0044] In one embodiment of this utility model, such as Figure 3 As shown, the limiting mechanism 11 includes a fixed limiting rod 111 and an elastic telescopic limiting rod 112. The fixed limiting rod 111 and the elastic telescopic limiting rod 112 are respectively threaded onto the surface of the disc body 81 and located outside the rotating disk 9. The pneumatic hub mechanism 12 is fixedly abutted against the surfaces of the fixed limiting rod 111 and the elastic telescopic limiting rod 112.

[0045] The end of the elastic telescopic limiting rod 112 near the fixed limiting rod 111 is a tapered surface, and the end of the elastic telescopic limiting rod 112 away from the fixed limiting rod 111 is a vertical surface.

[0046] It should be noted that the number of adjustment holes 113 described in this embodiment is set in multiple sets. The operator can install the elastic telescopic limit rod 112 in the adjustment holes 113 at different positions according to the length of the wire harness, so as to set the end point of the stroke of the pneumatic wire harness mechanism 12. It is highly practical and has a good effect.

[0047] Specifically, the structure and connection relationship of the limiting mechanism 11 will be further explained. The limiting mechanism 11 is used to limit the stroke of the pneumatic hub mechanism 12, so that it is kept at a set angle and a set position. It is simple to operate and has good performance.

[0048] In the initial operating state of the equipment, the pneumatic coiling mechanism 12 is precisely positioned in a horizontal posture and tightly abuts against the fixed limit rod 111. This ensures that the position of the pneumatic coiling mechanism 12 is fixed and stable when no related operations are initiated, laying the foundation for the accurate execution of subsequent processes. After the pneumatic coiling mechanism 12 successfully clamps and securely fixes the fiber filaments, its movement trajectory is synchronized with the rotation of the rotating disk 9. Driven by the rotating disk 9, the pneumatic coiling mechanism 12 begins to rotate. During this rotation, the pneumatic coiling mechanism 12 comes into contact with the conical surface of the elastic telescopic limit rod 112. As the pneumatic coiling mechanism 12 continues to rotate, it responds to the elastic telescopic limit rod 112. The limiting rod 112 applies pressure, forcing the elastic telescopic limiting rod 112 to retract into the adjusting hole 113 on the surface of the disc 81. After the pneumatic wire gathering mechanism 12 moves smoothly past the elastic telescopic limiting rod 112, the elastic telescopic limiting rod 112 automatically pops out, and its vertical surface immediately plays a key role, forming a reliable limit on the pneumatic wire gathering mechanism 12, effectively preventing the pneumatic wire gathering mechanism 12 from resetting under the action of the elastic reset mechanism 10. This design cleverly avoids problems such as interruption of the operation process or deviation of the fiber position caused by reset, ensuring the continuity, accuracy and efficiency of the entire fiber processing process, and significantly improving the use effect and reliability of the equipment.

[0049] In one embodiment of this utility model, such as Figure 4As shown, the pneumatic hub mechanism 12 includes a mounting cylinder 121, a pneumatic telescopic rod 122, an inner clamping rod 124, an outer clamping rod 125, a central gear 126, a toothed portion 127, and a semi-circular portion 128. One end of the mounting cylinder 121 is threaded to the inner wall of a positioning hole on the surface of the rotating disk 9. The pneumatic telescopic rod 122 is fixedly connected to the inner wall of the mounting cylinder 121. The air inlet end of the pneumatic telescopic rod 122 is connected to one end of an external air pipe. A solenoid valve 123 is provided on the surface of the air inlet end of the pneumatic telescopic rod 122, and it is connected to the controller 13 through a bus system to realize data transmission and control command reception. The inner clamping rod 124 and the outer clamping rod 125 slide horizontally respectively. The inner clamping rod 124 is rotatably connected to the inner wall of the mounting cylinder 121. One end of the inner clamping rod 124 is fixedly connected to the output end of the pneumatic telescopic rod 122. The middle gear 126 is rotatably connected to the inner wall of the mounting cylinder 121 and is located between the inner clamping rod 124 and the outer clamping rod 125. The middle gear 126 is meshed with the teeth 127 on the surfaces of the inner clamping rod 124 and the outer clamping rod 125 respectively. One end of the inner clamping rod 124 and the outer clamping rod 125 respectively extends through the outside of the mounting cylinder 121 and is integrally formed with a semi-circular part 128. The semi-circular part 128 of the outer clamping rod 125 is slidably connected to the smooth section surface of the inner clamping rod 124 and abuts against the surface of the semi-circular part 128 of the inner clamping rod 124.

[0050] It should be noted that, after the bottom of the clay crucible 2 described in this embodiment is arranged with wires, all the fibers are located between the two sets of semicircles 128.

[0051] It should be noted that in the initial state, the output end of the pneumatic telescopic rod 122 is in the extended state.

[0052] It should be noted that key strips 129 and keyways are respectively provided on the surface of the inner clamping rod 124 and the surface of the outer clamping rod 125 at positions corresponding to the inner wall of the mounting cylinder 121, and the key strips 129 are slidably connected in the keyways.

[0053] It should be noted that a limiting groove 1210 and a limiting convex shaft are respectively provided on the surface of the inner clamping rod 124 and the surface of the outer clamping rod 125 at the positions corresponding to the inner wall of the mounting cylinder 121. The limiting convex shaft is slidably connected in the limiting groove 1210.

[0054] Specifically, the structure and connection of the pneumatic wire gathering mechanism 12 will be further explained. The pneumatic wire gathering mechanism 12 is used to automatically collect the fiber filaments into a bundle and hold and fix them, which has a good effect.

[0055] In use, when the fiber falls between the two sets of semicircular portions 128, press the operation button on the controller 13 to start the operation of the solenoid valve 123. After receiving the command, the controller 13 sends an operation command to the solenoid valve 123. The solenoid valve 123 operates and opens according to the command, causing the compressed gas inside the pneumatic telescopic rod 122 to be discharged. After the compressed gas inside the pneumatic telescopic rod 122 is discharged, its output end resets. The reset of the output end synchronously drives the inner clamping rod 124 to reset. During the reset process of the inner clamping rod 124, the semicircular portion 128 on the inner clamping rod 124... 28 moves towards the mounting cylinder 121. The toothed portion 127 on the inner clamping rod 124 moves synchronously, driving the middle gear 126 to rotate. The rotation of the middle gear 126 synchronously drives the toothed portion 127 on the outer clamping rod 125 and the outer clamping rod 125 to move outward. The outward movement of the outer clamping rod 125 synchronously drives the toothed portion 127 to move along the smooth section surface of the inner clamping rod 124 towards the semicircular portion 128 of the outer clamping rod 125 until the two sets of semicircular portions 128 abut and fix each other. After the two sets of semicircular portions 128 abut and fix each other, the fiber filaments between them are collected into a bundle.

[0056] In one embodiment of this utility model, such as Figure 5 As shown, the wire guide mechanism 14 includes a semi-arc seat 141, which is slidably connected to the inner wall of the C-shaped groove 92. The surface of the semi-arc seat 141 and the inner wall of the C-shaped groove 92 are respectively provided with elastic clips 142 and clip holes. One end of the elastic clip 142 is engaged and fixed with the clip hole. The top of the semi-arc seat 141 is threadedly connected to an adjusting rod 143, and the top of the adjusting rod 143 is rotatably connected to a guide wheel 144.

[0057] It should be noted that, in this embodiment, the surface of the semi-arc seat 141 and the inner wall of the C-shaped groove 92 are respectively provided with a limiting edge 1411 and a limiting groove, and the limiting edge 1411 is slidably connected to the inner wall of the limiting groove.

[0058] Specifically, the structure and connection relationship of the wire guiding mechanism 14 will be further explained. As a key auxiliary component in the fiber processing flow of this equipment, the wire guiding mechanism 14 undertakes the important functions of bundling, guiding, and supporting the fiber filaments. Its reasonable design and convenient operation significantly improve the working efficiency and stability of the equipment. During the fiber processing, the wire guiding mechanism 14 can accurately gather the dispersed fiber filaments into a bundle, so that in the subsequent operation step that requires breaking the fiber filaments, there is no need to perform an additional fiber gathering step, which greatly simplifies the operation process, saves operation time, and effectively improves work efficiency. At the same time, the wire guiding mechanism 14 also has excellent guiding and supporting functions. Through the reasonable layout of the guiding components, it provides a stable running path for the fiber filaments, significantly extending the operating space of the fiber filaments. This design effectively avoids the problem of the fiber filaments getting tangled on the rotating disk 9 due to space constraints during the processing, ensuring smooth transmission of the fiber filaments, reducing the equipment failure rate, and improving production continuity. In terms of continuity and reliability, the wire guide mechanism 14 provides two flexible ways to adjust the end position of the guide wheel 144. First, by manually pushing the semi-circular seat 141, the clamping force between the elastic clip 142 and the clip hole can be overcome, causing the elastic clip 142 to separate from the current clip hole. As the semi-circular seat 141 moves, the elastic clip 142 will automatically engage and fix with the next set of clip holes under the action of spring force or other elastic restoring force, thereby achieving a rough adjustment of the end position of the guide wheel 144. Second, the operator can also make precise fine adjustments to the end position of the guide wheel 144 by adjusting the length of the adjusting rod 143. The adjusting rod 143 adopts a telescopic structure design, and its length can be easily changed by rotating the adjusting knob or using a special tool, thereby achieving fine control of the position of the guide wheel 144. These two adjustment methods work together to meet the precise setting of the fiber filament guiding position under different process requirements, further improving the use effect and adaptability of the wire guide mechanism 14.

[0059] In one embodiment of this utility model, such as Figure 2 As shown, an operating disc 93 is fixedly connected to the outer end face of the rotating disc 9.

[0060] It should be noted that the rotating disk 9 described in this embodiment can also be driven by a drive motor (not shown in the figure) disposed on the inner wall of the disk body 81. The drive motor is connected to the controller 13 through a bus system to realize data transmission and control command reception. Whether it is driven by the operation disk 93 or by the drive motor can be selected according to actual usage requirements.

[0061] Specifically, the control panel 93, as the core control component for manually driving the rotating disc 9 in the equipment, is designed to fully integrate ergonomic principles and the need for efficient operation, aiming to provide operators with a convenient, precise and comfortable operating experience, thereby significantly improving the overall operating efficiency and usage effect of the equipment.

[0062] In summary, this utility model provides a glass fiber forming system that, through innovative structural design, achieves semi-automatic assistance in the fiber pulling operation. This device can precisely control the traction and handling of the fiber filaments, preventing operators from directly contacting the high-temperature glass solution, thus reducing the risk of burns at the source, significantly improving operational safety, effectively reducing enterprise work injury compensation costs, and effectively controlling production costs. In terms of efficiency, this device assists manual operation, reducing production interruptions caused by personnel injuries, and increasing work efficiency several times compared to traditional operations, demonstrating excellent performance.

[0063] In the description of this specification, the terms "first" and "second" are used for descriptive purposes only and should not be construed as indicating or implying relative importance or implicitly specifying the number of indicated technical features. Thus, a feature defined as "first" or "second" may explicitly or implicitly include at least one of that feature. In the description of this utility model, "a plurality of" means at least two, such as two, three, etc., unless otherwise explicitly specified.

[0064] In the description of this specification, the references to terms such as "one embodiment," "some embodiments," "example," "specific example," or "some examples," etc., indicate that a specific feature, structure, material, or characteristic described in connection with that embodiment or example is included in at least one embodiment or example of the present invention. In this specification, the illustrative expressions of the above terms do not necessarily refer to the same embodiment or example. Furthermore, the specific features, structures, materials, or characteristics described may be combined in any suitable manner in one or more embodiments or examples. Moreover, without contradiction, those skilled in the art can combine and integrate the different embodiments or examples described in this specification, as well as the features of different embodiments or examples.

[0065] Although embodiments of the present invention have been shown and described above, it is understood that the above embodiments are exemplary and should not be construed as limiting the present invention. Those skilled in the art can make changes, modifications, substitutions and variations to the above embodiments within the scope of the present invention.

Claims

1. A glass fiber forming system comprising, in the vertical direction, in order, a clay crucible (2) disposed on the surface of a wall body (1), an oiling roller (3), a bunching wheel (4), a steel wire arranging device (5), and a soft can head (6), characterized in that, It also includes a pretreatment mechanism (7) disposed on the surface of the wall (1) and located between the clay crucible (2) and the oiling roller (3), the pretreatment mechanism (7) comprising: Mounting base (8): Fixedly connected to the surface of the wall (1), a rotating disk (9) is rotatably connected at the center of the surface of the disc body (81) of the mounting base (8), a toothed ring (91) is integrally formed at the outer edge of the inner end of the rotating disk (9), one end of the toothed ring (91) penetrates into the interior of the rectangular body (82) of the mounting base (8) and meshes with one end of the elastic reset mechanism (10) provided on the inner wall of the rectangular body (82), and a limit mechanism (11) is provided on the surface of the disc body (81) and located outside the rotating disk (9); Pneumatic hub mechanism (12): It is set on the surface of the rotating disk (9) and abuts against the limiting mechanism (11). The pneumatic hub mechanism (12) is connected to the controller (13) fixedly connected to the outer end face of the rotating disk (9) through the bus system to realize data transmission and control command reception. The wire guide mechanism (14) is located in the C-shaped groove (92) on the surface of the rotating disk (9).

2. The glass fiber forming system according to claim 1, characterized in that, The elastic reset mechanism (10) includes a rack (101), which is horizontally slidably connected to the inner wall of the rectangular body (82), and a reset spring (102) is fixedly connected between the rack (101) and the inner wall of the rectangular body (82). A damping ring (103) is provided at the connection between the rod end of the rack (101) and the inner wall of the rectangular body (82).

3. The glass fiber forming system according to claim 1, characterized in that, The limiting mechanism (11) includes a fixed limiting rod (111) and an elastic telescopic limiting rod (112). The fixed limiting rod (111) and the elastic telescopic limiting rod (112) are respectively threaded onto the surface of the disc body (81) and located outside the rotating disk (9). The pneumatic hub mechanism (12) is fixedly abutted against the surfaces of the fixed limiting rod (111) and the elastic telescopic limiting rod (112). The end of the elastic telescopic limiting rod (112) near the fixed limiting rod (111) is a tapered surface, and the end of the elastic telescopic limiting rod (112) away from the fixed limiting rod (111) is a vertical surface.

4. The glass fiber forming system according to claim 1, characterized in that, The pneumatic hub mechanism (12) includes a mounting cylinder (121), a pneumatic telescopic rod (122), an inner clamping rod (124), an outer clamping rod (125), a central gear (126), a toothed part (127), and a semi-circular part (128). One end of the mounting cylinder (121) is threaded to the inner wall of the positioning hole on the surface of the rotating disk (9). The pneumatic telescopic rod (122) is fixedly connected to the inner wall of the mounting cylinder (121). The air inlet end of the pneumatic telescopic rod (122) is connected to one end of an external air pipe. A solenoid valve (123) is provided on the surface of the air inlet end of the pneumatic telescopic rod (122), and it is connected to the controller (13) through a bus system to realize data transmission and control command reception. The inner clamping rod (124) and the outer clamping rod (125) are horizontally sliding connected. The inner clamping rod (124) is fixedly connected to the output end of the pneumatic telescopic rod (122) on the inner wall of the mounting cylinder (121). The middle gear (126) is rotatably connected to the inner wall of the mounting cylinder (121) and located between the inner clamping rod (124) and the outer clamping rod (125). The middle gear (126) meshes with the teeth (127) on the surfaces of the inner clamping rod (124) and the outer clamping rod (125) respectively. One end of the inner clamping rod (124) and the outer clamping rod (125) respectively extends through the outside of the mounting cylinder (121) and is integrally formed with a semi-circular part (128). The semi-circular part (128) of the outer clamping rod (125) is slidably connected to the smooth section surface of the inner clamping rod (124) and abuts against the surface of the semi-circular part (128) of the inner clamping rod (124).

5. The glass fiber forming system according to claim 1, characterized in that, The wire guide mechanism (14) includes a semi-arc seat (141), which is slidably connected to the inner wall of the C-shaped groove (92). The surface of the semi-arc seat (141) and the inner wall of the C-shaped groove (92) are respectively provided with elastic clips (142) and clip holes. One end of the elastic clip (142) is engaged and fixed with the clip hole. The top of the semi-arc seat (141) is threadedly connected to an adjusting rod (143), and the top of the adjusting rod (143) is rotatably connected to a guide wheel (144).

6. The glass fiber forming system according to claim 1, characterized in that, An operating disc (93) is fixedly connected to the outer end face of the rotating disc (9).