Fiber knitted belt forming equipment
The fiber knitting tape forming equipment, which uses ball bearing guide wheels and screw drives, solves the problems of yarn guidance and tension control, and achieves precise yarn guidance and dynamic tension adjustment, thereby improving product quality and production efficiency.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- CHENGDU LIYOU TEXTILE CO LTD
- Filing Date
- 2025-06-06
- Publication Date
- 2026-05-08
AI Technical Summary
Traditional fiber knitting tape forming equipment lacks an efficient guiding mechanism, which leads to yarn entanglement and deviation, affecting product quality; tension control relies on manual adjustment and cannot be dynamically adjusted in real time, resulting in yarn breakage or loosening; the fixed speed mode of the winding structure makes it difficult to adapt to the winding requirements of different materials and specifications, affecting production efficiency and product stability.
Ball bearings are used to achieve low-friction unwinding, the guiding structure uses guide wheels and fiber guide columns for precise guidance, the screw-driven tension adjustment structure enables dynamic adjustment, the frequency conversion winding system adjusts the speed according to the material characteristics, the H-type winding frame expands the capacity, and the integrated PLC control system enables automated control.
To ensure uniform yarn tension, avoid breakage and tangling, improve product flatness and dimensional accuracy, dynamically adjust tension to adapt to changes in weaving speed, achieve tight and uniform winding, reduce the number of roll changes, and improve production efficiency and adaptability.
Smart Images

Figure CN224212899U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of textile machinery technology, specifically to a fiber knitting tape forming device. Background Technology
[0002] Fiber knitted tape is a flexible product made by weaving fiber yarns into a tape structure through knitting technology. It features adjustable elasticity, diverse structures, and high production efficiency, and is widely used in clothing accessories, bag accessories, home decoration, and industrial fields. With the increasing demand for personalization and functionality in the textile industry, the market has placed higher demands on the quality, production efficiency, and process adaptability of fiber knitted tape. There is an urgent need for a forming equipment that can achieve precise yarn guidance, dynamic tension adjustment, and automated winding to meet diverse production needs.
[0003] Traditional fiber knitted tape forming equipment has significant shortcomings in practical applications. On the one hand, the yarn unwinding process lacks an efficient guiding mechanism, which easily leads to problems such as yarn entanglement and deviation, resulting in wrinkles or uneven thickness on the surface of the knitted tape, affecting product quality. On the other hand, the tension control of existing equipment relies on manual adjustment and cannot be dynamically adjusted in real time according to the knitting speed, which may cause yarn breakage or loosening, reducing production efficiency and increasing material waste. In addition, traditional winding structures mostly adopt a fixed speed mode, which is difficult to adapt to the winding requirements of knitted tapes of different materials and specifications, easily leading to inconsistent winding tension, further restricting the stability of products and the improvement of production efficiency. These technical bottlenecks urgently need to be overcome through equipment structure innovation. To this end, we have proposed a fiber knitted tape forming equipment. Utility Model Content
[0004] (a) Technical problems to be solved
[0005] To address the shortcomings of existing technologies, this invention provides a fiber knitted tape forming device, which solves the aforementioned problems.
[0006] (II) Technical Solution
[0007] To achieve the above-mentioned objectives, this utility model provides the following technical solution: a fiber knitted tape forming device, comprising a base plate and supporting feet. Two sets of parallel supporting feet are fixedly installed at the bottom of the base plate, and an mounting plate is fixedly installed at the top of the base plate. A yarn feeding structure is provided on one side of the top of the mounting plate. A knitted tape forming box is fixedly installed on the side of the top of the mounting plate corresponding to the yarn feeding structure. A set of vertical support plates are fixedly installed on both sides of the top of the knitted tape forming box. A guide structure is provided between the two support plates. A set of fixing plates is fixedly installed on the top of the mounting plate corresponding to the side of the knitted tape forming box. An adjustment structure is provided on the outer side of the fixing plates. A winding structure is provided on the other side of the top of the mounting plate. A control structure is provided on the top of the base plate corresponding to the side where the supporting feet are installed.
[0008] Preferably, the wire feeding structure includes a wire feeding plate, ball bearings, and a first wire feeding frame. The wire feeding plate is fixedly installed on the top of the mounting plate. The top of the mounting plate has multiple sets of linearly distributed circular grooves. Ball bearings are fixedly installed in the circular grooves on the top of the wire feeding plate, and the first wire feeding frame is fixedly installed in the ball bearings.
[0009] Preferably, the guiding structure includes a mounting shaft, guide wheels, a second feeder, and fiber guide posts. A set of parallel mounting shafts is fixedly installed between the two support plates. Multiple sets of linearly distributed guide wheels are fixedly installed on the outer surface of one mounting shaft, and multiple sets of linearly distributed second feeders are fixedly installed on the outer surface of the other mounting shaft. A fiber guide post is fixedly installed below the second feeder. Multiple sets of equidistantly distributed guide grooves are opened on the fiber guide post. A yarn inlet post is fixedly installed on the top of the knitting tape forming box corresponding to the area directly below the fiber guide post.
[0010] Preferably, the adjustment structure includes a pressure roller, a guide roller, a motor mounting plate, an adjusting motor, and a lead screw. The pressure roller is rotatably mounted between the opposing sides of the fixed plate. A groove is provided on the side of the fixed plate, and a guide roller is slidably mounted in the groove on the side of the fixed plate. A movable plate is fixedly mounted on the outer side of one end of the guide roller. A motor mounting plate is fixedly mounted on the top of the outer side of the fixed plate. An adjusting motor is fixedly mounted on the top of the motor mounting plate. The output shaft of the adjusting motor passes through the motor mounting plate and is fixedly connected to the bottom of the motor. The lead screw is threadedly connected to the movable plate at the outer end of the guide roller.
[0011] Preferably, the winding structure includes a winding frame, a winding motor, and a winding roller. The winding frame is fixedly installed on the top of the mounting plate. The winding frame is H-shaped. A winding roller is rotatably installed between the two upper side walls of the H-shape of the winding frame. A winding motor is fixedly installed on the outer side wall of the winding frame. The output shaft of the winding motor is fixedly connected to one end of the winding roller. Auxiliary rollers are rotatably installed on the two inner sides of the winding frame near the top.
[0012] Preferably, the control structure includes a control box, a control panel, and control buttons. The control box is fixedly installed on the top of the base plate. The control box is trapezoidal. Control buttons are fixedly installed on the side of the control box near the top. Multiple control panels are fixedly installed below the control buttons in an equidistant arrangement.
[0013] (III) Beneficial Effects
[0014] Compared with the prior art, the present invention provides a fiber knitted tape forming device, which has the following beneficial effects:
[0015] 1. In this fiber knitting tape forming equipment, the first pay-off frame in the pay-off structure achieves low-friction rotation through ball bearings, avoiding yarn breakage due to resistance. In the guide structure, guide wheels and a second pay-off frame are respectively installed on the two sides of the mounting shaft. One side limits the lateral movement of the yarn, while the other side achieves longitudinal positioning through the equidistant guide grooves of the fiber guide column, so that multiple strands of yarn enter the knitting box in a parallel posture with precision. Through the adjustable spacing of the guide wheels and the precise positioning of the fiber guide column, it is ensured that the yarn maintains uniform tension throughout the complex process, greatly improving the surface flatness and dimensional accuracy of the product.
[0016] 2. This fiber knitting tape forming equipment adopts a screw-driven tension adjustment structure. By adjusting the motor to drive the screw and move the guide roller up and down, the tension can be dynamically adjusted in a short time. For example, when the knitting speed changes, the adjusting motor receives the control system signal and automatically adjusts the position of the guide roller, and synchronously changes the yarn tension, avoiding the lag of traditional manual adjustment.
[0017] 3. This fiber knitted tape forming equipment features a variable frequency winding system that adjusts the winding roller speed in real time via the winding motor and utilizes auxiliary rollers to provide reverse support, achieving dynamic balance of winding tension. Whether it's elastic waistbands, ultra-thin decorative tapes, or rigid industrial tapes, the winding system can automatically match the speed and pressure according to the material characteristics, ensuring that the roll is tight, uniform, and does not deform. At the same time, the H-shaped structure design of the winding frame expands the roll capacity, reduces the number of roll changes, extends continuous production time, and significantly improves the equipment's adaptability to diverse products, meeting the market's personalized and large-scale production needs. It effectively solves the problems of poor winding consistency and inefficient process switching in traditional equipment. Attached Figure Description
[0018] Figure 1 This is a schematic diagram of the structure of this utility model;
[0019] Figure 2 This is a schematic diagram of the fiber guide column of this utility model;
[0020] Figure 3 This is a schematic diagram of the lead screw of this utility model;
[0021] Figure 4 This is a schematic diagram of the control button of this utility model.
[0022] In the diagram: 1. Base plate; 2. Support foot; 3. Mounting plate; 4. Pay-off plate; 5. Ball bearing; 6. First pay-off frame; 7. Knitted tape forming box; 8. Support plate; 9. Mounting shaft; 10. Guide wheel; 11. Second pay-off frame; 12. Fiber guide column; 13. Thread inlet column; 14. Fixing plate; 15. Pressure roller; 16. Guide roller; 17. Motor mounting plate; 18. Adjusting motor; 19. Lead screw; 20. Rewinding frame; 21. Rewinding motor; 22. Rewinding roller; 23. Control box; 24. Control panel; 25. Control button. Detailed Implementation
[0023] 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.
[0024] Please see Figure 1-4 A fiber knitted tape forming device includes a base plate 1 and support feet 2. Two sets of parallel support feet 2 are fixedly installed at the bottom of the base plate 1. An installation plate 3 is fixedly installed at the top of the base plate 1. A yarn feeding structure is provided on one side of the top of the installation plate 3. A knitted tape forming box 7 is fixedly installed on the side of the top of the installation plate 3 corresponding to the yarn feeding structure. A set of vertical support plates 8 are fixedly installed on both sides of the top of the knitted tape forming box 7. A guide structure is provided between the two support plates 8. A set of fixing plates 14 is fixedly installed on the top of the installation plate 3 corresponding to the side of the knitted tape forming box 7. An adjustment structure is provided on the outer side of the fixing plates 14. A winding structure is provided on the other side of the top of the installation plate 3. A control structure is provided on the top of the base plate 1 corresponding to the side where the support feet 2 are installed.
[0025] Furthermore, the pay-off structure includes a pay-off plate 4, ball bearings 5, and a first pay-off frame 6. The pay-off plate 4 is fixedly installed on the top of the mounting plate 3. The top of the mounting plate 3 has multiple sets of linearly distributed circular grooves. Ball bearings 5 are fixedly installed in the circular grooves on the top of the pay-off plate 4, and the first pay-off frame 6 is fixedly installed in the ball bearings 5. It is fixed to the top of the mounting plate 3. The ball bearings 5 are positioned by the circular grooves on the top of the plate, providing a mounting base for the first pay-off frame 6. This ensures that the multiple sets of pay-off frames are linearly distributed, which facilitates the synchronous release of multiple strands of yarn. In addition to reducing friction, its high-precision rotation characteristics can ensure the stability of the rotation of the first pay-off frame 6 and prevent tension fluctuations in the yarn due to the shaking of the pay-off frame.
[0026] Furthermore, the guiding structure includes a mounting shaft 9, guide wheels 10, a second feeder 11, and fiber guide posts 12. A set of parallel mounting shafts 9 are fixedly installed between the two side support plates 8. Multiple sets of linearly distributed guide wheels 10 are fixedly installed on the outer surface of one mounting shaft 9, and multiple sets of linearly distributed second feeder 11 are fixedly installed on the outer surface of the other mounting shaft 9. Fiber guide posts 12 are fixedly installed below the second feeder 11. Multiple sets of equidistantly distributed guide grooves are opened on the fiber guide posts 12. A yarn inlet post 13 is fixedly installed on the top of the knitting tape forming box 7 corresponding to the area directly below the fiber guide posts 12. The mounting shaft 9 is made of high-strength aluminum alloy with a wear-resistant surface treatment. It can withstand the long-term rotational load of multiple sets of guide wheels 10 and the second pay-off frame 11, while ensuring the parallelism of the mounting shafts on both sides and avoiding yarn guide deviation due to shaft deformation. The surface of the guide wheel 10 is covered with an anti-slip rubber layer, which can increase the friction on the yarn and prevent the yarn from slipping during the lateral limiting process. It is especially suitable for smooth yarns. The second pay-off frame 11 is designed as a rotatable support, which allows the yarn to be turned at a small angle before entering the fiber guide column 12, adapting to the changing needs of yarn direction in complex weaving processes.
[0027] Furthermore, the adjustment structure includes a pressure roller 15, a guide roller 16, a motor mounting plate 17, an adjusting motor 18, and a lead screw 19. The pressure roller 15 is rotatably mounted between the opposing sides of the fixed plate 14. A groove is provided on the side of the fixed plate 14, and the guide roller 16 is slidably mounted in the groove on the side of the fixed plate 14. A movable plate is fixedly mounted on the outer side of one end of the guide roller 16. The motor mounting plate 17 is fixedly mounted on the top of the outer side of the fixed plate 14. The adjusting motor 18 is fixedly mounted on the top of the motor mounting plate 17. The output shaft of the adjusting motor 18 passes through the motor mounting plate 17 and is fixedly connected to the bottom of the lead screw 19. The lead screw 19 and the guide roller... The movable plate at the outer end of 16 is threaded. The pressure roller 15 is made of elastic rubber with fine textured surface, which can provide uniform pressure without damaging the surface of the knitted tape, ensuring that the knitted tape is transported smoothly. It is especially suitable for thin or sensitive knitted tape. The motor mounting plate 17 is designed as a detachable structure, which facilitates the maintenance and replacement of the motor 18. At the same time, its rigid support can reduce the vibration transmission during motor operation and improve the stability of tension adjustment. The lead screw 19 adopts a trapezoidal thread design and has a self-locking function, which can prevent the guide roller 16 from being displaced due to external force after adjustment, ensuring the long-term stability of tension parameters.
[0028] Furthermore, the winding structure includes a winding frame 20, a winding motor 21, and a winding roller 22. The winding frame 20 is fixedly mounted on the top of the mounting plate 3. The winding frame 20 is H-shaped. The winding roller 22 is rotatably mounted between the upper two side walls of the H-shape of the winding frame 20. The winding motor 21 is fixedly mounted on the outer side wall of the winding frame 20. The output shaft of the winding motor 21 is fixedly connected to one end of the winding roller 22. Auxiliary rollers are rotatably mounted on the two inner sides of the winding frame 20 near the top. The spacing between the columns on both sides of the winding frame 20 can be finely adjusted by bolts to accommodate winding rollers 22 of different diameters, ensuring compatibility. To meet diverse roll material requirements, a limit baffle is installed on the top crossbeam to prevent axial displacement of the roll material during winding. The auxiliary roller adopts a floating installation design, which can automatically adjust the pressure on the roll material through a spring mechanism. Regardless of whether the roll material diameter increases or decreases, it can maintain a constant contact pressure to ensure uniform winding density. The winding motor 21 is a servo motor with high-precision speed control and torque feedback functions. It can monitor changes in roll material diameter in real time and automatically adjust the speed to achieve "constant linear speed winding" and avoid the problems of inner layer compression or outer layer relaxation caused by the traditional fixed speed mode.
[0029] Furthermore, the control structure includes a control box 23, a control panel 24, and control buttons 25. The control box 23 is fixedly installed on the top of the base plate 1. The control box 23 is trapezoidal. Control buttons 25 are fixedly installed on the side of the control box 23 near the top. Below the control buttons 25, multiple sets of control panels 24 are fixedly installed at equal intervals. The control box 23 integrates a PLC control system and a frequency converter. The trapezoidal design facilitates the orderly arrangement of cables from the bottom inlet hole, reducing line interference. The side of the box is provided with heat dissipation holes to ensure that the electronic components maintain a stable operating temperature during long-term operation. The control panel 24 is equipped with a touch screen display, which can display the equipment operating parameters in real time and support historical data query function, which facilitates production process traceability and process optimization. The control buttons 25 adopt a waterproof and dustproof design and include an emergency stop button and a manual / automatic mode switching button to meet the needs of safe production and flexible operation. The emergency stop button can cut off the power supply of the equipment within 0.5 seconds in case of an emergency.
[0030] Structural Description:
[0031] Base Plate 1: Base Plate 1 is the basic support structure of the equipment. It is flat and has two sets of parallel support feet 2 fixed at the bottom. The top is fixed with Mounting Plate 3, providing a mounting base for various functional structures and ensuring the overall stability of the equipment. Support Feet 2: Support Feet 2 consists of two sets of parallel support components fixed to the bottom of Base Plate 1. They are used to support the equipment on the ground, bear the weight of the equipment, and ensure the stability during operation. Mounting Plate 3: Mounting Plate 3 is fixed to the top of Base Plate 1 and serves as the mounting carrier for the functional structures on the top of the equipment. One side of its top is arranged with a wire feeding structure, the other side with a winding structure, and the middle area is used to install components such as the knitting tape forming box 7. Wire Feeding Plate 4: Wire Feeding Plate 4 is fixed to the top of Mounting Plate 3. Multiple sets of linearly distributed circular grooves are opened on the top for positioning and installing ball bearings 5, providing a low-friction rotation mounting base for the first wire feeding frame 6. Ball bearing 5: The ball bearing 5 is installed in the top circular groove of the pay-off plate 4 and is fixedly connected to the first pay-off frame 6. It reduces the yarn pay-off resistance through low-friction rotation and avoids yarn breakage due to friction. First pay-off frame 6: The first pay-off frame 6 is installed on the top of the pay-off plate 4 through the ball bearing 5. It is used to hold yarn rolls. Multiple sets are linearly distributed and can release multiple strands of yarn simultaneously to meet weaving needs. Knitted tape forming box 7: The knitted tape forming box 7 is fixed to the side of the top pay-off structure of the mounting plate 3. Support plates 8 are provided on both sides of the top. The internal knitting mechanism weaves the yarn into a tape structure through the movement of needles. Support plate 8: The support plate 8 consists of two sets of vertically fixed support members on both sides of the top of the knitted tape forming box 7. The mounting shaft 9 is fixed between them to support the guide structure components and ensure the stability of the yarn guide path. Mounting shaft 9: The mounting shaft 9 consists of two sets of parallel shafts fixed between the support plates 8. A guide wheel 10 is installed on one side and a second pay-off frame 11 is installed on the other side to provide support for the lateral limit and steering adjustment of the yarn. Guide wheels 10: Guide wheels 10 are linearly distributed and fixed to the outer surface of the mounting shaft 9 on one side. The wheel body is covered with an anti-slip rubber layer to provide lateral positioning for the yarn and prevent it from shifting or tangling. They are suitable for smooth yarns. Second feeder 11: Second feeder 11 is linearly distributed and fixed to the outer surface of the mounting shaft 9 on the other side. It is a rotatable bracket that allows the yarn to turn at a small angle, adapting to the needs of complex weaving processes. Fiber guide post 12: Fiber guide post 12 is fixed below the second feeder 11. The post body has multiple sets of equidistant guide grooves to longitudinally position the yarn and ensure that multiple strands of yarn enter the infeed post 13 in parallel. Infeed post 13: Infeed post 13 is fixed at the top of the knitting tape forming box 7, directly below the fiber guide post 12, aligned with the guide grooves, and guides the yarn to accurately enter the weaving area inside the box. Fixed plate 14: Fixed plate 14 is a set of plates fixed to the top of mounting plate 3 and the side of knitted tape forming box 7. Pressure rollers 15 are rotatably mounted on opposite sides. Side grooves allow guide rollers 16 to slide. Motor mounting plate 17 is fixed on the top outer side. Pressure rollers 15: Pressure rollers 15 are rotatably mounted between opposite sides of fixed plate 14. They are made of elastic rubber with a textured surface and apply uniform pressure to the knitted tape after weaving to ensure flat conveying.Guide roller 16: Guide roller 16 is slidably installed in the side groove of fixed plate 14, with one end connected to a movable plate. It moves up and down through the transmission of screw 19 to adjust the tension of the knitted belt and adapt to speed changes. Motor mounting plate 17: Motor mounting plate 17 is fixed to the top of the outer side of fixed plate 14 and is used to install the adjusting motor 18. Its detachable structure facilitates maintenance, and rigid support reduces motor vibration. Adjusting motor 18: Adjusting motor 18 is installed on the top of motor mounting plate 17. Its output shaft is connected to screw 19. By driving the screw to rotate, it drives the guide roller 16 to move, realizing dynamic tension adjustment. Screw 19: Screw 19 is threaded to the movable plate at the outer end of guide roller 16. It adopts a trapezoidal thread design and has a self-locking function to ensure the stability of the adjusted guide roller position and maintain tension parameters. Take-up frame 20: Take-up frame 20 is fixed in an H shape to the other side of the top of mounting plate 3. The spacing between the two side columns is adjustable. The top crossbeam is equipped with a limit baffle to install take-up roller 22 and auxiliary roller, expanding the roll material accommodating space. Take-up motor 21: The take-up motor 21 is fixed to the outer wall of the take-up frame 20. Its output shaft is connected to the take-up roller 22. It is a servo motor and can adjust the speed in real time according to the diameter of the roll material to achieve constant linear speed take-up. Take-up roller 22: The take-up roller 22 is rotatably installed between the two side walls above the take-up frame 20. It is used to wind the formed knitted tape. It works with the auxiliary roller to achieve tension balance and ensure that the roll material is tight and uniform. Control box 23: The control box 23 is fixed to the top of the base plate 1 in a trapezoidal shape. It integrates a PLC control system and a frequency converter. The trapezoidal design facilitates cable routing, and the side heat dissipation holes ensure stable operation of the components. Control panel 24: The control panel 24 is fixed to the side of the control box 23 below the control button 25. It is equipped with a touch screen display, which can display the operating parameters in real time and support historical data query, which is convenient for process optimization. Control button 25: The control button 25 is fixed to the side of the control box 23 near the top. It adopts a waterproof and dustproof design and includes buttons for emergency stop, mode switching, etc., to meet the requirements of safe operation and production flexibility.
[0032] Working principle: The yarn roll is mounted on the first pay-off frame 6. The low-friction rotation of the ball bearing 5 reduces resistance during pay-off, preventing yarn breakage due to excessive friction. Multiple linearly distributed first pay-off frames can simultaneously release multiple strands of yarn, meeting the multi-strand weaving requirements of the knitted tape. After being drawn from the pay-off frame, the yarn first passes through the guide wheel 10 on one side of the mounting shaft 9 for lateral positioning, preventing yarn deviation or tangling. The second pay-off frame 11 on the other side of the mounting shaft 9 further fixes the yarn position. The yarn then enters the equidistant guide grooves of the fiber guide column 12 for precise longitudinal positioning, ensuring that multiple strands of yarn pass parallel and evenly through the inlet column 13 into the knitted tape forming box 7 for weaving. The knitted tape forming box 7 integrates a knitting mechanism, which weaves the multiple strands of yarn into a tape structure through the reciprocating motion of needles. The woven tape is drawn from the forming box and passes through the pressure roller 15 to apply initial pressure, ensuring smooth conveying. The adjusting motor 18 drives the lead screw 19 to rotate, driving the guide roller 16. Moving up and down along the chute, when the weaving speed changes or the yarn tension is abnormal, the control system sends a signal to the regulating motor to automatically adjust the position of the guide rollers and change the tension of the knitted tape, achieving real-time dynamic tension adjustment and avoiding the lag and error of manual adjustment. The take-up motor 21 automatically adjusts the speed of the take-up roller 22 according to the material and specifications (such as elasticity and thickness) of the knitted tape. At the same time, the auxiliary roller provides reverse support to ensure the winding tension balance and avoid deformation or breakage caused by excessively loose or tight winding. The H-type take-up frame 20 expands the roll material capacity, reduces the number of roll changes, and is suitable for long-term continuous production. The control box 23 in the control structure integrates the control system, which realizes full-process automated control of the unwinding speed, weaving parameters, tension adjustment, and take-up speed through the control panel 24 and control buttons 25. Process parameters can be preset according to different product requirements to improve production efficiency and product stability.
[0033] Although embodiments of the present invention have been shown and described, it will be understood by those skilled in the art that various changes, modifications, substitutions and alterations can be made to these embodiments without departing from the principles and spirit of the present invention, the scope of which is defined by the appended claims and their equivalents.
Claims
1. A fiber knitting tape forming device, comprising a base plate (1) and supporting feet (2), characterized in that: Two sets of parallel support feet (2) are fixedly installed at the bottom of the base plate (1). An installation plate (3) is fixedly installed at the top of the base plate (1). A thread feeding structure is provided on one side of the top of the installation plate (3). A knitted tape forming box (7) is fixedly installed on the side of the top of the installation plate (3) corresponding to the thread feeding structure. A set of vertical support plates (8) is fixedly installed on both sides of the top of the knitted tape forming box (7). A guide structure is provided between the two support plates (8). A set of fixing plates (14) is fixedly installed on the top of the installation plate (3) corresponding to the side of the knitted tape forming box (7). An adjustment structure is provided on the outside of the fixing plate (14). A winding structure is provided on the other side of the top of the installation plate (3). A control structure is provided on the top of the base plate (1) corresponding to the side of the support feet (2).
2. The fiber knitted tape forming equipment according to claim 1, characterized in that: The wire feeding structure includes a wire feeding plate (4), a ball bearing (5), and a first wire feeding frame (6). The wire feeding plate (4) is fixedly installed on the top of the mounting plate (3). The top of the mounting plate (3) has multiple sets of linearly distributed circular grooves. The ball bearing (5) is fixedly installed in the circular grooves on the top of the wire feeding plate (4), and the first wire feeding frame (6) is fixedly installed in the ball bearing (5).
3. The fiber knitted tape forming equipment according to claim 1, characterized in that: The guiding structure includes a mounting shaft (9), guide wheels (10), a second pay-off frame (11), and fiber guide posts (12). A set of parallel mounting shafts (9) are fixedly installed between the two support plates (8). Multiple sets of linearly distributed guide wheels (10) are fixedly installed on the outer surface of one mounting shaft (9), and multiple sets of linearly distributed second pay-off frames (11) are fixedly installed on the outer surface of the other mounting shaft (9). Fiber guide posts (12) are fixedly installed below the second pay-off frames (11). Multiple sets of equidistantly distributed guide grooves are opened on the fiber guide posts (12). A yarn inlet post (13) is fixedly installed on the top of the knitting tape forming box (7) directly below the fiber guide posts (12).
4. The fiber knitted tape forming equipment according to claim 1, characterized in that: The adjustment structure includes a pressure roller (15), a guide roller (16), a motor mounting plate (17), an adjustment motor (18), and a lead screw (19). The pressure roller (15) is rotatably mounted between the opposing sides of the fixed plate (14). The side of the fixed plate (14) is provided with a sliding groove. The guide roller (16) is slidably mounted in the sliding groove on the side of the fixed plate (14). A movable plate is fixedly mounted on the outer side of one end of the guide roller (16). The motor mounting plate (17) is fixedly mounted on the top of the outer side of the fixed plate (14). The adjustment motor (18) is fixedly mounted on the top of the motor mounting plate (17). The output shaft of the adjustment motor (18) passes through the motor mounting plate (17) and is fixedly connected to the bottom of the lead screw (19). The lead screw (19) is threadedly connected to the movable plate at the outer end of the guide roller (16).
5. The fiber knitted tape forming equipment according to claim 1, characterized in that: The winding structure includes a winding frame (20), a winding motor (21), and a winding roller (22). The winding frame (20) is fixedly installed on the top of the mounting plate (3). The winding frame (20) is H-shaped. The winding roller (22) is rotatably installed between the two upper side walls of the H-shape of the winding frame (20). The winding motor (21) is fixedly installed on the outer side wall of the winding frame (20). The output shaft of the winding motor (21) is fixedly connected to one end of the winding roller (22). Auxiliary rollers are rotatably installed on the two inner sides of the winding frame (20) near the top.
6. The fiber knitted tape forming equipment according to claim 1, characterized in that: The control structure includes a control box (23), a control panel (24), and control buttons (25). The control box (23) is fixedly installed on the top of the base plate (1). The control box (23) is trapezoidal. Control buttons (25) are fixedly installed on the side of the control box (23) near the top. Multiple control panels (24) are fixedly installed below the control buttons (25) in an equidistant arrangement.