A glass fiber woven cloth winding device

By designing a glass fiber textile winding device, a winding pressure roller and an adhesive coating structure are used to quickly fix the fabric at the end of the winding process, solving the problem of loose fabric rolls in existing devices and achieving a highly efficient and automated fabric winding effect.

CN224559114UActive Publication Date: 2026-07-28XUZHOU JIAZIC COMPOSITE MATERIAL CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
XUZHOU JIAZIC COMPOSITE MATERIAL CO LTD
Filing Date
2025-10-10
Publication Date
2026-07-28

AI Technical Summary

Technical Problem

Existing textile winding devices lack an effective mechanism for fixing at the end, resulting in loose fabric rolls, affecting the stability of finished product quality, and requiring manual intervention, which increases costs and reduces efficiency.

Method used

A glass fiber textile winding device was designed, comprising components such as a winding operation frame, a limiting track, a winding pressure roller, a winding mounting block, a spring telescopic rod, and an adhesive coating structure. The device utilizes the winding pressure roller and the adhesive coating structure to quickly fix the fabric when it is wound to the end, and achieves automated fixing through the auxiliary control of the spring telescopic rod.

Benefits of technology

It improves the flatness and tightness of fabric winding, reduces manual intervention, enhances winding efficiency and quality stability, and achieves automated and rapid fixing.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model is specifically related to a kind of glass fibre textile cloth winding device, belong to weaving cloth winding technical field, including: winding operation frame, vertical limit track is designed in both ends, winding pressure roller, rotation is installed in the upper end of limit track, winding mounting block, inside is provided with winding control structure, cloth winding shaft, clamping between the winding mounting block of both ends;Spring telescopic link, fixed in the lower surface of winding mounting block, height adjusting structure is used to adjust the initial working height of winding mounting block;Guiding support roller is used to control the conveying track of textile cloth;Directional transmission pipe, outside is switched with gluing structure;Utilize winding pressure roller and gluing structure cooperation, when cloth winding to tail end, quickly glue its lower surface, and quickly stick and fix to cloth roll, improve winding effect and efficiency;At the same time, use spring telescopic link auxiliary winding control structure, enhance the adaptability of device to cloth, make winding more efficient.
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Description

Technical Field

[0001] This utility model specifically relates to a glass fiber textile winding device, belonging to the field of textile winding technology. Background Technology

[0002] In the production process of fiberglass textiles, the winding stage plays a crucial role, directly affecting the final quality of the product and the convenience of subsequent processing. The core objective of fiberglass textile winding is to wind the woven fiberglass fabric into a flat and tight roll. This process not only facilitates the storage and transportation of the fabric but also lays a solid foundation for subsequent processing stages. The textile winding device, which undertakes this key task, is a core piece of equipment in textile production and is widely used after weaving, dyeing, and post-processing. By winding the fabric in a standardized manner, it ensures the continuity and efficiency of the production process.

[0003] However, while existing textile winding devices can generally complete the winding process, they still have significant shortcomings, especially at the final stage when winding is nearing completion. Specifically, when the fabric reaches the end of the winding, without an effective automatic fixing mechanism, relying solely on the winding force of existing devices can easily lead to the fabric roll becoming loose due to insufficient tension at the end. This loosening not only damages the overall flatness and tightness of the roll, severely affecting the quality stability of the finished product, but may even cause secondary damage such as edge wear and wrinkles. More importantly, to avoid these problems, current production often requires additional manual intervention to fix the end of the roll. This operation not only increases labor costs but also disrupts the continuity of the winding process, significantly slowing down the overall winding efficiency, which falls far short of the automation and efficiency requirements of modern production. Therefore, optimizing and improving the existing winding devices to address the shortcomings in the end-fixing stage is a key breakthrough for improving the production quality and efficiency of fiberglass textiles. Utility Model Content

[0004] The purpose of this invention is to address the shortcomings of existing technologies by providing a glass fiber textile winding device to quickly fix the end of the fabric and improve the winding effect. The technical solution adopted by this utility model is: a glass fiber textile winding device, comprising: The winding operation frame has vertical limit rails at both ends, which are the main installation structure for the winding operation. The winding pressure roller is rotatably mounted on the upper end of the limit track to improve the winding effect; The winding mounting block is slidably installed inside the limit rail, and has an internal winding control structure for controlling the device to perform winding operations. The fabric take-up shaft is clamped between the take-up mounting blocks at both ends; A spring telescopic rod is fixed below the winding mounting block, and its lower end is fixedly connected to the limiting rail; A height adjustment structure is located inside the limiting track at one end, used to adjust the initial working height of the winding mounting block; A guide mounting frame is located on one side of the winding operation frame, and an electric height adjustment structure is designed on one side; The guide support rollers are rotatably mounted between the electrically adjustable height structures to control the conveying track of the textile fabric; The electric telescopic rod is fixedly installed at both ends of one side of the guide mounting frame, and a fixed mounting block is installed at its output end; The directional delivery tube is embedded inside the fixed mounting block to control the direction of glue output, and the glue application structure is connected to the outside. The pressure transmission pump is fixedly mounted on the outside of a fixed mounting block on one side, and its output end is fixedly connected to the directional transmission pipe.

[0005] Preferably, the winding control structure includes: The rotating connecting shaft is rotatably installed in the rotating mounting hole opened on one side of the winding mounting block. A telescopic slide groove is opened inside the shaft, and a positioning adjustment hole is designed at the center of the telescopic slide groove. A hexagonal telescopic block is slidably disposed within the telescopic groove, with a telescopic threaded hole opened at the center position; The winding gear is fixedly welded to the outside of the rotating connecting shaft, and the positioning adjustment hole passes through the winding gear; The telescopic bolt is rotatably fitted into the positioning adjustment hole and threadedly connected to the telescopic threaded hole. A winding motor is embedded in the other side of the winding mounting block, and a power gear that meshes with the winding gear is fixed at its output end. Preferably, the height adjustment structure includes: The electric threaded rod has its motor part embedded in one side of the limiting rail, and its output end passes through a vertical through hole opened at one end of the winding mounting block. The pressure slider has a threaded hole at its center for threaded connection with the electric threaded rod, and its lower part fits against the upper surface of the winding mounting block.

[0006] Preferably, the electric height adjustment structure includes: The lifting limit frame is fixedly welded to both ends of the guide mounting frame; The slider is adjusted and slidably positioned within the lifting limit frame to drive the guide support roller to move up and down. An electric screw is fixed inside the lifting limit frame at one end, and its output end is threadedly connected to the height adjustment slider.

[0007] Preferably, one end of the directional transmission tube is fixedly connected to the output end of the pressure transmission pump, and the other end is sealed. The upper side of the directional transfer tube is uniformly provided with glue outlet holes; The outer sides of both ends of the directional transmission tube are designed with annular mounting grooves.

[0008] Preferably, the adhesive coating structure includes: The adapter bearing is fitted into the annular mounting groove; A rotating connecting tube is fitted over the adapter bearing, with both ends fitting against the outer surface of the adapter bearing, and output through holes are evenly opened on the outer side of the rotating connecting tube; The adhesive-coated cotton tube is fixedly fitted onto the outer surface of the rotating connecting tube, and anti-slip textures are evenly distributed on its outer side.

[0009] The beneficial effects of this utility model are: by using a winding pressure roller in conjunction with an adhesive coating structure, adhesive is quickly applied to the lower surface of the fabric when it is wound to the end, and it is quickly pasted and fixed onto the fabric roll, thereby improving the winding effect and efficiency; at the same time, a spring telescopic rod is used to assist the winding control structure, enhancing the device's adaptability to the fabric and making the winding more efficient. Attached Figure Description

[0010] Figure 1 This is a schematic diagram of the main structure of this utility model; Figure 2 This is a schematic diagram of the rear view structure of this utility model; Figure 3 This is a schematic diagram of the winding control structure in this utility model; Figure 4 This is a structural connection diagram of the adhesive coating structure in this utility model.

[0011] In the diagram: 1. Rewinding operation frame; 2. Rewinding pressure roller; 3. Rewinding control structure; 301. Rotating connecting shaft; 302. Hexagonal telescopic block; 303. Rewinding gear; 304. Telescopic bolt; 305. Rewinding motor; 4. Fabric rewinding shaft; 5. Spring telescopic rod; 6. Height adjustment structure; 601. Electric threaded rod; 602. Pressure slider; 7. Guide mounting frame; 8. Electric height adjustment structure; 801. Lifting limit frame; 802. Height adjustment slider; 803. Electric screw; 9. Guide support roller; 10. Electric telescopic rod; 11. Directional transmission pipe; 12. Glue coating structure; 121. Adapter bearing; 122. Rotating connecting pipe; 123. Glue coating cotton pipe; 13. Pressure transmission pump; 14. Rewinding mounting block. Detailed Implementation

[0012] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the protection scope of the present utility model.

[0013] Please see Figures 1-4 As shown, a glass fiber textile winding device includes: The winding operation frame 1 has vertical limit rails at both ends and is the main installation structure for the winding operation; the winding pressure roller 2 is rotatably installed on the upper end of the limit rails to improve the winding effect. In this glass fiber textile winding device, the winding operation frame 1 serves as the main installation structure. The vertical limiting rails at both ends of the frame provide a stable and precise movement boundary for the winding process. The winding pressure roller 2, which is mounted on the upper end of the limiting rail, applies uniform and appropriate pressure to the glass fiber textile during winding, effectively preventing wrinkles and loosening of the fabric during winding. This greatly improves the flatness and tightness of the winding, thereby enhancing the overall winding effect.

[0014] The winding mounting block 14 is slidably installed within the limiting rail and has a winding control structure 3 inside for controlling the winding operation of the device. The winding control structure 3 includes: a rotating connecting shaft 301, which is rotatably installed in a rotating mounting hole on one side of the winding mounting block 14, and has a telescopic groove inside, with a positioning adjustment hole at the center of the telescopic groove; a hexagonal telescopic block 302, which is slidably installed in the telescopic groove, with a telescopic threaded hole at the center; a winding gear 303, which is fixedly welded to the outside of the rotating connecting shaft 301, with the positioning adjustment hole passing through the winding gear 303; a telescopic bolt 304, which is rotatably engaged in the positioning adjustment hole and threadedly connected to the telescopic threaded hole; and a winding motor 305, which is embedded in the other side of the winding mounting block 14, with a power gear meshing with the winding gear 303 fixed at its output end.

[0015] The winding mounting block 14 slides within the limit track, and its internal winding control structure 3 is highly functional: the rotating connecting shaft 301 is securely installed through the rotating mounting hole and has an internal telescopic groove and positioning adjustment hole; the hexagonal telescopic block 302 slides within the telescopic groove; the telescopic bolt 304 passes through the positioning adjustment hole and is threadedly connected to the telescopic threaded hole of the hexagonal telescopic block 302, allowing for flexible adjustment of the position of related components; the winding gear 303 is fixed to the outside of the rotating connecting shaft 301, and the power gear at the output end of the winding motor 305 meshes with it, achieving precise winding operation through motor drive. The overall structure improves the flexibility and accuracy of winding, ensuring the winding effect.

[0016] The fabric take-up shaft 4 is clamped between the take-up mounting blocks 14 at both ends; The spring telescopic rod 5 is fixed below the winding mounting block 14, and its lower end is fixedly connected to the limit rail; The height adjustment structure 6 is located inside the limiting rail at one end and is used to adjust the initial working height of the winding mounting block 14. The height adjustment structure 6 includes: an electric threaded rod 601, the motor of which is embedded in one side of the limiting rail, and its output end passing through a vertical through hole opened at one end of the winding mounting block 14; and a pressure slider 602, which has a threaded hole at its center that is threaded to connect with the electric threaded rod 601, and its lower part is in contact with the upper surface of the winding mounting block 14.

[0017] The fabric take-up shaft 4 is clamped between the two take-up mounting blocks 14, providing core support for fabric take-up; the spring telescopic rod 5 is fixed below the take-up mounting block 14 and connected to the limiting rail, which can buffer vibration, automatically adjust pressure, and enhance take-up stability; the height adjustment structure 6 inside the limiting rail at one end, through the rotation of the electric threaded rod 601, drives the pressure slider 602 connected to it to move, thereby pushing the take-up mounting block 14 to change the initial working height, which can flexibly adapt to fabrics of different thicknesses and improve the device's adaptability to various fabrics and take-up quality.

[0018] The guide mounting frame 7 is located on one side of the winding operation frame 1, and an electric height adjustment structure 8 is designed on one side; the electric height adjustment structure 8 includes: The lifting limit frame 801 is fixedly welded to both ends of the guide mounting frame 7; the height adjustment slider 802 is slidably set inside the lifting limit frame 801 and is used to drive the guide support roller 9 to move up and down; the electric screw 803 is fixed inside the lifting limit frame 801 at one end, and its output end is threadedly connected to the height adjustment slider 802.

[0019] The guide mounting frame 7 is located on one side of the winding operation frame 1. Its electric height adjustment structure 8 plays a significant role: the lifting limit frame 801 is fixed at both ends of the guide mounting frame 7, providing a stable sliding track for the height adjustment slider 802; the height adjustment slider 802 slides within the lifting limit frame 801, which can drive the guide support roller 9 to move up and down, thereby flexibly adjusting the height and angle of the fabric entering the winding operation frame 1; the electric screw 803 is located within the lifting limit frame 801 and is threadedly connected to the height adjustment slider 802. By electrically driving the screw to rotate, the movement of the height adjustment slider 802 can be precisely controlled, realizing the automated and fine adjustment of the position of the guide support roller 9, effectively improving the adaptability of the device to different specifications of fabric and the convenience of the winding operation.

[0020] The guide support roller 9 is rotatably installed between the electric height adjustment structures 8 to control the conveying track of the textile fabric; The electric telescopic rod 10 is fixed at both ends of one side of the guide mounting frame 7, and a fixed mounting block is installed at its output end; The directional transfer tube 11 is embedded inside the fixed mounting block to control the output direction of the glue, and the glue application structure 12 is connected to the outside. One end of the directional transfer tube 11 is fixedly connected to the output end of the pressure transfer pump 13, and the other end is sealed. Glue outlet holes are evenly opened on the upper side of the directional transfer tube 11. Annular mounting grooves are designed on the outer sides of both ends of the directional transfer tube 11.

[0021] The guide support roller 9 is rotated and installed between the electric height adjustment structure 8, which can precisely control the textile conveying track and ensure that the fabric enters the winding stage smoothly and accurately. The electric telescopic rod 10 is fixed at both ends of one side of the guide mounting frame 7, which can drive the fixed mounting block at its output end to extend and retract flexibly, thereby adjusting the position of the glue coating structure 12. The directional transmission tube 11 embedded in the fixed mounting block is connected to the output end of the pressure transmission pump 13 at one end and sealed at the other end with glue outlet holes evenly opened on the upper side, which can precisely control the glue output direction, so that the glue is evenly sprayed on the designated position of the fabric. The annular mounting groove facilitates the stable connection with other components. The overall structure improves the automation level and glue coating accuracy of the winding device and ensures the winding quality.

[0022] The adhesive coating structure 12 includes: a transfer bearing 121, which is fitted in an annular mounting groove; a rotating connecting pipe 122, which is fitted outside the transfer bearing 121, with both ends fitting against the outer surface of the transfer bearing 121, and output through holes are evenly opened on the outer side of the rotating connecting pipe 122; and an adhesive cotton tube 123, which is fixedly fitted on the outer surface of the rotating connecting pipe 122, with anti-slip textures evenly opened on its outer side.

[0023] In the adhesive coating structure 12, the adapter bearing 121 is fitted into the annular mounting groove of the directional transmission tube 11, providing flexible rotational support for the rotating connecting tube 122. The rotating connecting tube 122 can rotate freely through the adapter bearing 121, and the output through holes evenly opened on its outer side can make the adhesive delivered by the directional transmission tube 11 evenly dispersed and flow out. The adhesive coating cotton tube 123, which is fixedly fitted on the outer surface of the rotating connecting tube 122, can further absorb and apply adhesive evenly. The anti-slip texture on its outer side enhances the friction with the fabric, ensuring that the cotton tube and the fabric are in full contact during the adhesive coating process, so that the adhesive adheres to the fabric more evenly, effectively improving the quality and effect of adhesive coating.

[0024] The pressure transmission pump 13 is fixedly installed on the outside of the fixed mounting block on one side, and its output end is fixedly connected to the directional transmission pipe 11.

[0025] The pressure transfer pump 13 is fixedly installed on the outside of the fixed mounting block on one side. Through fixed connection with the output end of the directional transfer pipe 11, a stable glue delivery channel is constructed. It can provide continuous and stable power for the glue by its own pressure generation function, ensuring that the glue smoothly enters the directional transfer pipe 11 from the storage point, and is evenly coated on the textile fabric through the coating structure 12 according to the preset direction and flow rate. This effectively ensures the efficiency and uniformity of the coating operation and improves the working quality of the entire textile fabric winding device in the fabric finishing and fixing stage.

[0026] It will be apparent to those skilled in the art that this invention is not limited to the details of the exemplary embodiments described above, and that it can be implemented in other specific forms without departing from the spirit or essential characteristics of this invention. Therefore, the embodiments should be considered illustrative and non-limiting in all respects, and the scope of this invention is defined by the appended claims rather than the foregoing description. Thus, it is intended that all variations falling within the meaning and scope of equivalents of the claims be included within this invention. No reference numerals in the claims should be construed as limiting the scope of the claims.

[0027] Furthermore, it should be understood that although this specification describes embodiments, not every embodiment contains only one independent technical solution. This narrative style is merely for clarity. Those skilled in the art should consider the specification as a whole, and the technical solutions in each embodiment can also be appropriately combined to form other embodiments that can be understood by those skilled in the art.

Claims

1. A glass fiber textile winding device, characterized in that, include: The winding operation frame (1) has vertical limit rails at both ends, which are the main installation structure for the winding operation; The winding pressure roller (2) is rotatably mounted on the upper end of the limit track to improve the winding effect; The winding mounting block (14) is slidably installed in the limit rail, and a winding control structure (3) is set inside to control the device to perform winding operation; The fabric take-up shaft (4) is clamped between the take-up mounting blocks (14) at both ends; The spring telescopic rod (5) is fixed below the winding mounting block (14), and its lower end is fixedly connected to the limiting rail; The height adjustment structure (6) is located inside the limiting track at one end and is used to adjust the initial working height of the winding mounting block (14); A guide mounting frame (7) is set on one side of the winding operation frame (1), and an electric height adjustment structure (8) is designed on one side. The guide support roller (9) is rotatably installed between the electric height adjustment structures (8) to control the conveying track of the textile fabric; The electric telescopic rod (10) is fixed at both ends on one side of the guide mounting frame (7), and a fixed mounting block is installed at its output end; The directional transmission tube (11) is embedded inside the fixed mounting block to control the output direction of the glue, and the glue coating structure (12) is connected to the outside. The pressure transmission pump (13) is fixedly installed on the outside of the fixed mounting block on one side, and its output end is fixedly connected to the directional transmission pipe (11).

2. The glass fiber textile winding device as described in claim 1, characterized in that, The winding control structure (3) includes: Rotate the connecting shaft (301) and rotate it into the rotating mounting hole on one side of the winding mounting block (14). A telescopic groove is opened inside the telescopic groove, and a positioning adjustment hole is designed at the center of the telescopic groove. A hexagonal telescopic block (302) is slidably disposed in the telescopic groove, with a telescopic threaded hole opened at the center position; The winding gear (303) is fixedly welded to the outside of the rotating connecting shaft (301), and the positioning adjustment hole passes through the winding gear (303). The telescopic bolt (304) is rotatably fitted into the positioning adjustment hole and threadedly connected to the telescopic threaded hole; A winding motor (305) is embedded on the other side of the winding mounting block (14), and its output end is fixed with a power gear that meshes with the winding gear (303).

3. The glass fiber textile winding device as described in claim 1, characterized in that, The height adjustment structure (6) includes: The electric threaded rod (601) has its motor part embedded in one side of the limiting rail, and its output end passes through the vertical through hole opened at one end of the winding mounting block (14). The pressure slider (602) has a threaded hole at its center that is threaded to connect with the electric threaded rod (601), and its lower part is in contact with the upper surface of the winding mounting block (14).

4. The glass fiber textile winding device as described in claim 1, characterized in that, The electric height adjustment structure (8) includes: The lifting limit frame (801) is fixedly welded to both ends of the guide mounting frame (7); The height adjustment slider (802) is slidably set inside the lifting limit frame (801) to drive the guide support roller (9) to move up and down; An electric screw (803) is fixed inside the lifting limit frame (801) at one end, and its output end is threadedly connected to the height adjustment slider (802).

5. The glass fiber textile winding device as described in claim 1, characterized in that, One end of the directional transmission pipe (11) is fixedly connected to the output end of the pressure transmission pump (13), and the other end is sealed. The upper side of the directional transfer tube (11) is uniformly provided with glue outlet holes; The outer sides of both ends of the directional transmission tube (11) are designed with annular mounting grooves.

6. The glass fiber textile winding device as described in claim 5, characterized in that, The adhesive coating structure (12) includes: The adapter bearing (121) is fitted into the annular mounting groove; A rotating connecting tube (122) is fitted outside the adapter bearing (121), with both ends in contact with the outer surface of the adapter bearing (121), and output through holes are evenly opened on the outer side of the rotating connecting tube (122). The adhesive cotton tube (123) is fixedly fitted on the outer surface of the rotating connecting tube (122), and anti-slip textures are evenly opened on its outer side.