Automatic rolling machine for textile fabric
By introducing a fabric cleaning component, a width limiting and fixing component, and a pressure roller spacing adjustment component into the automatic fabric winding machine, the cleaning and positioning problems of the automatic fabric winding machine are solved, achieving efficient and neat fabric winding and improving the versatility of the equipment.
Patent Information
- Application Number
- CN202520466379.9
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-03-17
- Publication Date
- 2026-01-09
- Estimated Expiration
- 2035-03-17
AI Technical Summary
Existing automatic textile fabric winding machines lack cleaning functions, causing fabrics to be wound directly with dust and debris, shortening the equipment's lifespan and increasing maintenance costs; the lack of width limiting and fixing components causes fabric deviation and cannot adapt to fabrics of different widths and thicknesses, reducing the equipment's versatility.
The design includes a fabric cleaning component, a width limiting and fixing component, and a pressure roller spacing adjustment component. These components clean the fabric using a roller brush, precisely position the take-up roller, and adjust the pressure roller spacing to ensure clean and neat fabric winding and adapt to different fabric characteristics.
It improves fabric quality, extends equipment life, reduces maintenance costs, prevents fabric misalignment, enhances equipment versatility and applicability, and ensures rolling quality.
Smart Images

Figure CN223779560U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of winding machine technology, specifically to an automatic winding machine for textile fabrics. Background Technology
[0002] Automatic fabric winding machines are key equipment in the textile industry, and their high efficiency, stability, and precision are crucial for improving production efficiency. Automatic fabric winding machines primarily achieve automatic fabric winding through a control system. After the fabric enters the machine, sensors detect its position and speed in real time and transmit this information to the control system. Based on the sensor feedback, the control system precisely controls parameters such as the speed and tension of the winding shaft and winding rollers, thereby achieving precise fabric winding. Currently, there are various brands and models of automatic fabric winding machines on the market, with prices varying depending on brand, model, and configuration. Consumers should choose according to their actual needs and budget when purchasing. Meanwhile, with the continuous development of the textile industry, automatic fabric winding machines are also constantly being updated and upgraded, moving towards greater intelligence, automation, and energy conservation. The following problems exist with existing technologies:
[0003] Existing automatic textile fabric winding machines lack fabric cleaning capabilities. Uncleaned fabrics, carrying dust and debris, are directly wound, which not only shortens the machine's lifespan but also leads to frequent malfunctions, increased maintenance frequency and costs, and reduced production efficiency. Furthermore, the absence of width-limiting components to control the take-up rollers makes it difficult to maintain their position during winding, causing fabric deviation. The lack of adjustable width-limiting components also hinders the automatic winding machine's ability to effectively wind up fabrics of varying widths. Additionally, the absence of pressure roller spacing adjustment components makes it difficult to adapt to fabrics of different thicknesses, limiting the types of fabrics the machine can handle and reducing its versatility. Utility Model Content
[0004] This invention provides an automatic rolling machine for textile fabrics to solve the problems mentioned in the background art.
[0005] To solve the above-mentioned technical problems, the technical solution adopted by this utility model is as follows:
[0006] An automatic textile fabric winding machine includes a housing with four fixed support legs at the bottom corners. A dust collection tray is slidably connected to the lower interior of the housing, and a handle is fixedly connected to the front of the dust collection tray. L-shaped fixing plates are fixedly connected to the upper left and right sides of the front side wall of the housing, and two symmetrically arranged guide rollers are rotatably connected to the opposite faces of the two L-shaped fixing plates. A controller is fixedly connected to the rear right side wall of the housing. A fabric cleaning component is located at the lower front interior of the housing, and a width limiting fixing component is located at the upper rear interior of the housing. Below the width limiting fixing component, a pressure roller spacing adjustment component located inside the housing is provided.
[0007] A further improvement of this utility model is that the fabric cleaning component includes a motor, the left side wall of which is fixedly connected to the front of the right side wall of the device housing, and two symmetrically arranged roller brushes are rotatably connected to the front of the inner walls on both sides of the device housing. The output end of the motor penetrates into the interior of the device housing and is fixedly connected to the upper roller brush. The left end of the upper roller brush penetrates into the left outer wall of the device housing and is fixedly connected to a gear. The left end of the lower roller brush penetrates into the left outer wall of the device housing and is fixedly connected to a gear. The gears one and two are meshed together. The controller is electrically connected to the motor.
[0008] A further improvement of this utility model's technical solution is as follows: the width limiting and fixing assembly includes a second motor. The left side of the second motor is fixedly connected to the rear of the right side wall of the equipment housing. Bidirectional screws are rotatably connected to the rear sides of the inner walls of the left and right sides of the equipment housing. The output end of the second motor penetrates into the interior of the equipment housing and is fixedly connected to the right end of the bidirectional screws. A sliding rod is provided above the bidirectional screws and is fixedly connected to the inner wall of the equipment housing. Limiting plates that are slidably connected to the outer walls of the sliding rods are threaded to both the left and right sides of the outer walls of the bidirectional screws. A locking block is rotatably connected to the opposite surfaces of the two limiting plates. A take-up roller is inserted into the opposite surfaces of the two locking blocks. A servo motor is fixedly connected to the right side wall of the right limiting plate. The output end of the servo motor penetrates into the left side wall of the right limiting plate and is fixedly connected to the right locking block. The controller is electrically connected to the servo motor.
[0009] A further improvement of this utility model is that: the pressure roller spacing adjustment assembly includes a first pressure roller, which is rotatably connected to the rear of the inner walls on the left and right sides of the equipment housing. Rectangular grooves are provided on the rear of the left and right sides of the equipment housing. Movable blocks are slidably connected inside the two rectangular grooves. A second pressure roller is rotatably connected to the opposite faces of the two movable blocks. Adjusting screws are threaded to the left and right sides of the rear sidewall of the equipment housing. The front ends of the two adjusting screws pass through the interior of the two rectangular grooves and are rotatably connected to the movable blocks.
[0010] A further improvement of this utility model is as follows: two symmetrical side plates are fixedly connected to the left side wall of the equipment housing. A rotating rod is rotatably connected to the opposite surfaces of the two side plates. A motor is fixedly connected to the front side wall of the front side plate. The front end of the rotating rod passes through the front side wall of the front side plate and is fixedly connected to the output end of the motor. A bevel gear is fixedly connected to the front side of the outer wall of the rotating rod. A bevel gear is meshed with the right side of the bevel gear. The left end of the first pressing roller passes through the left outer wall of the equipment housing and is fixedly connected to the bevel gear. Limiting protrusions are fixedly connected to both the left and right sides of the outer wall of the rotating rod. A sliding sleeve is slidably connected to the outer wall of the rotating rod through the provided limiting protrusions. A bevel gear is fixedly connected to the rear side of the outer wall of the sliding sleeve. A bevel gear is meshed with the right side of the bevel gear. The left end of the second pressing roller passes through the left side wall of the left moving block and is fixedly connected to the bevel gear. A fixing sleeve is fixedly connected to the front of the left side wall of the left moving block. The left end of the fixing sleeve is fixedly connected to the front side of the outer wall of the sliding sleeve.
[0011] A further improvement of this utility model is that the controller is electrically connected to the motor.
[0012] Due to the adoption of the above technical solution, the technological progress achieved by this utility model compared to the prior art is as follows:
[0013] 1. This utility model provides an automatic textile fabric rolling machine. Through the fabric cleaning component, these impurities can be effectively cleaned before rolling, making the finally rolled fabric cleaner and tidier. This reduces the impact of impurities on subsequent fabric processing and use, helps to improve the overall quality of the fabric, and removing impurities in advance can effectively reduce wear on key internal components of the equipment, extend the service life of the equipment, reduce equipment maintenance costs, and improve rolling efficiency.
[0014] 2. This utility model provides an automatic textile fabric winding machine. Through a width limiting and fixing component, the position of the take-up roller can be precisely limited, ensuring the fabric remains within a fixed width range during winding. This effectively prevents fabric deviation during winding, ensuring the fabric is neatly and tightly wound onto the take-up roller. Furthermore, the limiting position of the take-up roller can be flexibly adjusted according to the actual width of different textile fabrics, making the automatic winding machine compatible with fabrics of various widths, enhancing the equipment's versatility and applicability. The pressure roller spacing adjustment component controls the distance between the first and second pressure rollers, ensuring the fabric receives uniform pressure as it passes through the pressure rollers. This guarantees a tight and uniform internal structure of the rolled fabric, improving winding quality and reducing the likelihood of loosening or deformation. It also adapts to different fabric thicknesses, further enhancing the equipment's versatility. Attached Figure Description
[0015] Figure 1 This is a schematic diagram of the overall structure of this utility model;
[0016] Figure 2 This is a partial structural schematic diagram of the present invention;
[0017] Figure 3 This is a schematic diagram of the fabric cleaning component structure of this utility model;
[0018] Figure 4 This is a schematic diagram of the width limiting and fixing component of this utility model;
[0019] Figure 5 This is a schematic diagram of the structure of the pressure roller spacing adjustment component of this utility model;
[0020] Figure 6 This is another schematic diagram of the structure of the pressure roller spacing adjustment component of this utility model.
[0021] In the diagram: 10. Equipment casing; 11. Support leg; 12. Dust collection drawer; 13. Handle; 14. L-shaped fixing plate; 15. Guide roller; 16. Controller; 2. Fabric cleaning assembly; 20. Motor 1; 21. Roller brush; 22. Gear 1; 23. Gear 2; 3. Width limiting fixing assembly; 30. Motor 2; 31. Bidirectional screw; 32. Slide rod; 33. Limiting plate; 34. Servo motor; 35. Clip block; 36. Take-up roller; 4. Pressure roller spacing adjustment assembly; 40. Rectangular groove; 41. First pressure roller; 42. Second pressure roller; 43. Adjusting screw; 44. Moving block; 45. Side plate; 46. Motor 3; 47. Rotating rod; 48. Bevel gear 1; 49. Bevel gear 2; 490. Sliding sleeve; 491. Fixing sleeve; 492. Bevel gear 3; 493. Bevel gear 4; 494. Limiting protrusion. Detailed Implementation
[0022] To make the technical means, creative features, objectives, and effects of this utility model easier to understand, the following describes this utility model in conjunction with specific embodiments:
[0023] like Figure 1 , Figure 2 As shown, this utility model provides an automatic textile fabric winding machine, including a machine housing 10. Support legs 11 are fixedly connected to the four corners of the bottom of the machine housing 10. A dust collection tray 12 is slidably connected to the lower interior of the machine housing 10. A handle 13 is fixedly connected to the front side of the dust collection tray 12. L-shaped fixing plates 14 are fixedly connected to the upper left and right sides of the front side wall of the machine housing 10. Two guide rollers 15, symmetrically arranged vertically, are rotatably connected to the opposite surfaces of the two L-shaped fixing plates 14. A controller 16 is fixedly connected to the rear right side wall of the machine housing 10. A fabric cleaning component 2 is provided at the lower front interior of the machine housing 10. A width limiting fixing component 3 is provided at the upper rear interior of the machine housing 10. Below the width limiting fixing component 3, a pressing roller spacing adjustment component 4 is located inside the machine housing 10.
[0024] The equipment casing 10 is securely placed on the work site by support legs 11 fixedly connected to its four bottom corners. Inside the casing 10, at its lower interior, is a slidably connected dust collection tray 12. A handle 13 fixedly connected to the front of the tray facilitates the operator's removal of the dust collection tray 12 for cleaning dust and other impurities. Two L-shaped fixed plates 14 are rotatably connected to symmetrically arranged guide rollers 15, which, in their initial state, provide a preliminary guiding path for the subsequent introduction of textile fabric. The controller 16, as the control center of the entire winding machine, is responsible for coordinating the operation of all components.
[0025] During the entire operation of the automatic textile fabric winding machine, the fabric is first guided into the equipment by the guide roller 15, then cleaned by the fabric cleaning component 2, and then passes through the pressure roller spacing adjustment component 4 from below. The pressure roller spacing adjustment component 4 can adjust the pressure roller spacing according to the required fabric thickness to achieve the flattening treatment of the fabric. Then, the width limiting and fixing component 3 positions the take-up roller 36 and starts the winding operation. During the winding process, it is ensured that the fabric can be rolled evenly and efficiently. Finally, the completed roll of fabric is taken off by the take-up roller 36 for subsequent processing.
[0026] like Figure 3As shown, the fabric cleaning component 2 includes a motor 20. The left side wall of the motor 20 is fixedly connected to the front of the right side wall of the device housing 10. Two roller brushes 21 arranged symmetrically on the left and right sides of the inner walls of the device housing 10 are rotatably connected. The output end of the motor 20 passes through the interior of the device housing 10 and is fixedly connected to the upper roller brush 21. The left end of the upper roller brush 21 passes through the left outer wall of the device housing 10 and is fixedly connected to a gear 22. The left end of the lower roller brush 21 passes through the left outer wall of the device housing 10 and is fixedly connected to a gear 23. Gear 22 and gear 23 are meshed and connected. The controller 16 is electrically connected to the motor 20.
[0027] When cleaning of the textile fabric is required, the operator starts motor 20 via controller 16. Motor 20 rotates, driving the upper roller brush 21 connected to it to rotate. Due to the meshing relationship between gear 22 and gear 23, the rotation of the upper roller brush 21 will drive the lower roller brush 21 to rotate synchronously in the opposite direction. Thus, when the textile fabric passes between the two roller brushes 21, the upper and lower roller brushes 21 rotate relative to each other, using their bristles to sweep both sides of the textile fabric, removing dust, debris, etc. that may be attached to the fabric surface. At the same time, the dust and debris will fall into the dust collection tray 12, thereby achieving the purpose of cleaning the fabric. Through the fabric cleaning component 2, these impurities can be effectively cleaned before rolling, making the finally rolled fabric cleaner and tidier, reducing the impact of impurities on subsequent fabric processing and use, helping to improve the overall quality of the fabric. Removing impurities in advance can effectively reduce wear on key internal components of the equipment, extend the service life of the equipment, reduce equipment maintenance costs, and improve rolling efficiency.
[0028] like Figure 4 As shown, the width limiting and fixing assembly 3 includes a second motor 30. The left side of the second motor 30 is fixedly connected to the rear of the right side wall of the equipment housing 10. The rear sides of the inner walls of the left and right sides of the equipment housing 10 are rotatably connected to bidirectional screws 31. The output end of the second motor 30 passes through the interior of the equipment housing 10 and is fixedly connected to the right end of the bidirectional screw 31. A slide rod 32 is provided above the bidirectional screw 31 and is fixedly connected to the inner wall of the equipment housing 10. The left and right sides of the outer wall of the bidirectional screw 31 are threaded with limiting plates 33 that are slidably connected to the outer wall of the slide rod 32. The opposite surfaces of the two limiting plates 33 are rotatably connected to locking blocks 35. The opposite surfaces of the two locking blocks 35 are inserted with take-up rollers 36. The right side wall of the right limiting plate 33 is fixedly connected to a servo motor 34. The output end of the servo motor 34 passes through the left side wall of the right limiting plate 33 and is fixedly connected to the right locking block 35. The controller 16 is electrically connected to the servo motor 34.
[0029] Before winding the textile fabric, the position of the take-up roller 36 needs to be adjusted according to the width of the fabric. The operator starts the second motor 30 via the controller 16. The second motor 30 drives the bidirectional screw 31 to rotate. Due to the special thread structure of the bidirectional screw 31 and the sliding connection between the limiting plate 33 and the slide bar 32, when the bidirectional screw 31 rotates, the two limiting plates 33 will move towards or away from each other along the slide bar 32. When the limiting plates 33 move to the appropriate position, so that the distance between the two locking blocks 35 is just right to match the width of the take-up roller 36, the operator stops the second motor 30 and then inserts the take-up roller 36 between the two locking blocks 35. During the winding process, in order to ensure that the take-up roller 36 can evenly wind up the fabric, the servo motor 34 needs to drive the locking blocks 35 to rotate, which in turn drives the take-up roller 36 to rotate. The operator controls the position of the take-up roller 36 via the controller 16. The controller 16 starts the servo motor 34. The output of the servo motor 34 rotates, driving the right-side locking block 35 to rotate. Since the take-up roller 36 is inserted between the two locking blocks 35, the take-up roller 36 will rotate with the rotation of the right-side locking block 35, thereby realizing the take-up operation of the fabric. The take-up speed can be controlled by adjusting the speed of the servo motor 34. The width limiting fixing component 3 can precisely limit the position of the take-up roller 36, so that the fabric is always wrapped within a fixed width range during take-up, effectively preventing the fabric from deviating during take-up and ensuring that the fabric is neatly and tightly wrapped on the take-up roller 36. At the same time, the limiting position of the take-up roller 36 can be flexibly adjusted according to the actual width of different textile fabrics, so that the automatic winding machine can be compatible with fabrics of various widths, enhancing the versatility and applicability of the equipment.
[0030] like Figure 5 , Figure 6 As shown, the pressure roller spacing adjustment assembly 4 includes a first pressure roller 41, which is rotatably connected to the rear of the inner walls on the left and right sides of the equipment housing 10. Rectangular grooves 40 are provided on the rear of the left and right sides of the equipment housing 10. Moving blocks 44 are slidably connected inside the two rectangular grooves 40. The opposite faces of the two moving blocks 44 are rotatably connected to a second pressure roller 42. Adjusting screws 43 are threadedly connected to the left and right sides of the rear side wall of the equipment housing 10. The front ends of the two adjusting screws 43 pass through the interior of the two rectangular grooves 40 and are rotatably connected to the moving blocks 44.
[0031] like Figure 5 , Figure 6As shown, two symmetrical side plates 45 are fixedly connected to the left side wall of the equipment housing 10. A rotating rod 47 is rotatably connected to the opposite surfaces of the two side plates 45. A motor 3 46 is fixedly connected to the front side wall of the front side plate 45. The front end of the rotating rod 47 passes through the front side wall of the front side plate 45 and is fixedly connected to the output end of the motor 3 46. A bevel gear 1 48 is fixedly connected to the front side of the outer wall of the rotating rod 47. A bevel gear 2 49 is meshed with the right side of the bevel gear 1 48. The left end of the first pressure roller 41 passes through the left outer wall of the equipment housing 10 and is fixedly connected to the bevel gear 2 49. Limiting protrusions 494 are fixedly connected to both the left and right sides of the outer wall of the rotating rod 47. A sliding sleeve 490 is slidably connected to the outer wall of the rotating rod 47 through the limiting protrusions 494. A bevel gear 493 is fixedly connected to the rear side of the outer wall of the sliding sleeve 490. A bevel gear 492 is meshed with the right side of the bevel gear 493. The left end of the second pressure roller 42 passes through to the left side wall of the left moving block 44 and is fixedly connected to the bevel gear 492. A fixing sleeve 491 is fixedly connected to the front of the left side wall of the left moving block 44. The left end of the fixing sleeve 491 is fixedly connected to the front side of the outer wall of the sliding sleeve 490.
[0032] like Figure 1-6 As shown, controller 16 is electrically connected to motor 46.
[0033] When rolling the fabric, the distance between the first pressure roller 41 and the second pressure roller 42 can be dynamically adjusted according to factors such as the fabric thickness. The operator can rotate the adjusting screw 43. Due to the rotational connection between the adjusting screw 43 and the moving block 44 and the sliding connection between the moving block 44 and the rectangular groove 40, the rotation of the adjusting screw 43 will cause the moving block 44 to slide within the rectangular groove 40, thereby driving the second pressure roller 42 to move closer to or further away from the first pressure roller 41, thus achieving distance adjustment. In addition, the controller 16 can start the motor 3 46, which drives the rotating rod 47 to rotate. When the rotating rod 47 rotates, the bevel gear 1 48 on the front side of its outer wall will drive the bevel gear 2 49 that meshes with it to rotate, thereby driving the first pressure roller 41 to rotate. At the same time, during the rotation of the rotating rod 47, due to the limiting protrusion 4 on its outer wall... The sliding connection between 94 and the sliding sleeve 490 allows the sliding sleeve 490 to rotate synchronously with the rotating rod 47. The bevel gear 493 on the rear side of the outer wall of the sliding sleeve 490 drives the bevel gear 492 that meshes with it to rotate, which in turn drives the second pressure roller 42 to rotate. By controlling the speed of the motor 46, the first pressure roller 41 and the second pressure roller 42 can rotate synchronously in opposite directions, thereby realizing the dynamic adjustment of the pressure roller spacing according to the thickness of the fabric to achieve a better rolling effect. The pressure roller spacing adjustment component 4 can control the spacing between the first pressure roller 41 and the second pressure roller 42, so that the fabric is subjected to uniform pressure when passing through the pressure roller, ensuring that the internal structure of the rolled fabric is tight and uniform, improving the rolling quality, and making it less prone to loosening and deformation. At the same time, it can also adapt to different fabric thicknesses, further improving the versatility of the equipment.
[0034] It should be noted that the guide roller 15 is existing technology and will not be described in detail here. At the same time, the opposite surfaces of the two left and right snap blocks 35 are provided with cross snap grooves that are adapted to the end of the take-up roller 36, so that when the snap blocks 35 rotate, they will drive the take-up roller 36 to rotate synchronously without relative displacement.
[0035] The working principle of this automatic textile fabric rolling machine will be explained in detail below.
[0036] like Figure 1-6As shown, when cleaning the textile fabric is required, the operator starts motor 20 via controller 16. Motor 20 rotates, driving the upper roller brush 21 connected to it to rotate. Due to the meshing relationship between gear 22 and gear 23, the rotation of the upper roller brush 21 will drive the lower roller brush 21 to rotate synchronously in the opposite direction. Thus, when the textile fabric passes between the two roller brushes 21, the upper and lower roller brushes 21 rotate relative to each other, using their bristles to sweep both sides of the textile fabric, removing dust, debris, etc. that may be attached to the fabric surface. At the same time, the dust and debris will fall into the dust collection tray 12, thereby achieving the purpose of cleaning the fabric. Through the fabric cleaning component 2, these impurities can be effectively cleaned before rolling, making the finally rolled fabric cleaner and tidier, reducing the impact of impurities on subsequent fabric processing and use, helping to improve the overall quality of the fabric. Removing impurities in advance can effectively reduce wear on key internal components of the equipment, extend the service life of the equipment, reduce equipment maintenance costs, and improve rolling efficiency.
[0037] Before winding the textile fabric, the position of the take-up roller 36 needs to be adjusted according to the width of the fabric. The operator starts the second motor 30 via the controller 16. The second motor 30 drives the bidirectional screw 31 to rotate. Due to the special thread structure of the bidirectional screw 31 and the sliding connection between the limiting plate 33 and the slide bar 32, when the bidirectional screw 31 rotates, the two limiting plates 33 will move towards or away from each other along the slide bar 32. When the limiting plates 33 move to the appropriate position, so that the distance between the two locking blocks 35 is just right to match the width of the take-up roller 36, the operator stops the second motor 30 and then inserts the take-up roller 36 between the two locking blocks 35. During the winding process, in order to ensure that the take-up roller 36 can evenly wind up the fabric, the servo motor 34 needs to drive the locking blocks 35 to rotate, which in turn drives the take-up roller 36 to rotate. The operator controls the position of the take-up roller 36 via the controller 16. The controller 16 starts the servo motor 34. The output of the servo motor 34 rotates, driving the right-side locking block 35 to rotate. Since the take-up roller 36 is inserted between the two locking blocks 35, the take-up roller 36 will rotate with the rotation of the right-side locking block 35, thereby realizing the take-up operation of the fabric. The take-up speed can be controlled by adjusting the speed of the servo motor 34. The width limiting fixing component 3 can precisely limit the position of the take-up roller 36, so that the fabric is always wrapped within a fixed width range during take-up, effectively preventing the fabric from deviating during take-up and ensuring that the fabric is neatly and tightly wrapped on the take-up roller 36. At the same time, the limiting position of the take-up roller 36 can be flexibly adjusted according to the actual width of different textile fabrics, so that the automatic winding machine can be compatible with fabrics of various widths, enhancing the versatility and applicability of the equipment.
[0038] When rolling the fabric, the distance between the first pressure roller 41 and the second pressure roller 42 can be dynamically adjusted according to factors such as the fabric thickness. The operator can rotate the adjusting screw 43. Due to the rotational connection between the adjusting screw 43 and the moving block 44 and the sliding connection between the moving block 44 and the rectangular groove 40, the rotation of the adjusting screw 43 will cause the moving block 44 to slide within the rectangular groove 40, thereby driving the second pressure roller 42 to move closer to or further away from the first pressure roller 41, thus achieving distance adjustment. In addition, the controller 16 can start the motor 3 46, which drives the rotating rod 47 to rotate. When the rotating rod 47 rotates, the bevel gear 1 48 on the front side of its outer wall will drive the bevel gear 2 49 that meshes with it to rotate, thereby driving the first pressure roller 41 to rotate. At the same time, during the rotation of the rotating rod 47, due to the limiting protrusion 4 on its outer wall... The sliding connection between 94 and the sliding sleeve 490 allows the sliding sleeve 490 to rotate synchronously with the rotating rod 47. The bevel gear 493 on the rear side of the outer wall of the sliding sleeve 490 drives the bevel gear 492 that meshes with it to rotate, which in turn drives the second pressure roller 42 to rotate. By controlling the speed of the motor 46, the first pressure roller 41 and the second pressure roller 42 can rotate synchronously in opposite directions, thereby realizing the dynamic adjustment of the pressure roller spacing according to the thickness of the fabric to achieve a better rolling effect. The pressure roller spacing adjustment component 4 can control the spacing between the first pressure roller 41 and the second pressure roller 42, so that the fabric is subjected to uniform pressure when passing through the pressure roller, ensuring that the internal structure of the rolled fabric is tight and uniform, improving the rolling quality, and making it less prone to loosening and deformation. At the same time, it can also adapt to different fabric thicknesses, further improving the versatility of the equipment.
[0039] The present invention has been described in detail above. However, modifications or improvements can be made to it, which will be obvious to those skilled in the art. Therefore, any modifications or improvements that do not depart from the spirit of the present invention are within the protection scope of the present invention.
Claims
1. An automatic textile fabric winding machine, comprising a housing (10), characterized in that: The bottom four corners of the equipment housing (10) are fixedly connected with support legs (11). A dust collection tray (12) is slidably connected to the lower interior of the equipment housing (10). A handle (13) is fixedly connected to the front side of the dust collection tray (12). L-shaped fixing plates (14) are fixedly connected to the upper left and right sides of the front side wall of the equipment housing (10). Two guide rollers (15) are rotatably connected to the opposite surfaces of the two L-shaped fixing plates (14). A controller (16) is fixedly connected to the rear right side wall of the equipment housing (10). A fabric cleaning component (2) is provided on the lower front interior of the equipment housing (10). A width limiting fixing component (3) is provided on the upper rear interior of the equipment housing (10). A pressure roller spacing adjustment component (4) located inside the equipment housing (10) is provided below the width limiting fixing component (3).
2. The automatic textile fabric winding machine according to claim 1, characterized in that: The fabric cleaning assembly (2) includes a motor (20). The left side wall of the motor (20) is fixedly connected to the front of the right side wall of the device housing (10). Two roller brushes (21) are rotatably connected to the front of the inner walls of the left and right sides of the device housing (10). The output end of the motor (20) passes through the interior of the device housing (10) and is fixedly connected to the upper roller brush (21). The left end of the upper roller brush (21) passes through the left outer wall of the device housing (10) and is fixedly connected to a gear (22). The left end of the lower roller brush (21) passes through the left outer wall of the device housing (10) and is fixedly connected to a gear (23). The gear (22) and gear (23) are meshed together. The controller (16) is electrically connected to the motor (20).
3. The automatic textile fabric winding machine according to claim 1, characterized in that: The width limiting and fixing assembly (3) includes a second motor (30). The left side of the second motor (30) is fixedly connected to the rear right side wall of the equipment housing (10). A bidirectional screw (31) is rotatably connected to the rear side of the inner walls on both the left and right sides of the equipment housing (10). The output end of the second motor (30) extends into the interior of the equipment housing (10) and is fixedly connected to the right end of the bidirectional screw (31). A slide rod (32) is provided above the bidirectional screw (31) and is fixedly connected to the inner wall of the equipment housing (10). The outer walls of the bidirectional screw (31) are on the left and right sides. Both sides are threaded with limiting plates (33) that slide in connection with the outer wall of the slide rod (32). The opposing surfaces of the two limiting plates (33) are rotatably connected with locking blocks (35). The opposing surfaces of the two locking blocks (35) are inserted with take-up rollers (36). The right side wall of the right limiting plate (33) is fixedly connected with a servo motor (34). The output end of the servo motor (34) extends through to the left side wall of the right limiting plate (33) and is fixedly connected with the right locking block (35). The controller (16) is electrically connected to the servo motor (34).
4. The automatic textile fabric winding machine according to claim 1, characterized in that: The pressure roller spacing adjustment assembly (4) includes a first pressure roller (41), which is rotatably connected to the rear of the inner walls on the left and right sides of the equipment housing (10). Rectangular grooves (40) are provided on the rear of the left and right sides of the equipment housing (10). Moving blocks (44) are slidably connected inside the two rectangular grooves (40). A second pressure roller (42) is rotatably connected to the opposite face of the two moving blocks (44). Adjusting screws (43) are threadedly connected to the left and right sides of the rear sidewall of the equipment housing (10). The front ends of the two adjusting screws (43) pass through the interior of the two rectangular grooves (40) and are rotatably connected to the moving blocks (44).
5. The automatic textile fabric winding machine according to claim 4, characterized in that: Two symmetrical side plates (45) are fixedly connected to the left side wall of the equipment housing (10). A rotating rod (47) is rotatably connected to the opposite surfaces of the two side plates (45). A motor (46) is fixedly connected to the front side wall of the front side plate (45). The front end of the rotating rod (47) extends through the front side wall of the front side plate (45) and is fixedly connected to the output end of the motor (46). A bevel gear (48) is fixedly connected to the front side of the outer wall of the rotating rod (47). A bevel gear (49) is meshed with the right side of the bevel gear (48). The left end of the first pressure roller (41) extends through the left outer wall of the equipment housing (10) and is fixedly connected to the bevel gear (49). Limiting protrusions (494) are fixedly connected to both the left and right sides of the outer wall of the rotating rod (47). A sliding sleeve (490) is slidably connected to the outer wall of the rotating rod (47) through the limiting protrusions (494). A bevel gear four (493) is fixedly connected to the rear side of the outer wall of the sliding sleeve (490). A bevel gear three (492) is meshed with the right side of the bevel gear four (493). The left end of the second pressure roller (42) passes through the left side wall of the left moving block (44) and is fixedly connected to the bevel gear three (492). A fixing sleeve (491) is fixedly connected to the front of the left side wall of the left moving block (44). The left end of the fixing sleeve (491) is fixedly connected to the front side of the outer wall of the sliding sleeve (490).
6. The automatic textile fabric winding machine according to claim 5, characterized in that: The controller (16) is electrically connected to the motor (46).