Fabric calender with deviation rectifying structure
By introducing a deviation correction structure into the fabric calender and using the moving and rotating mechanism, the problem of wrinkles in the fabric during movement is solved, and the accurate output of the fabric and high-quality calendering effect are achieved.
Patent Information
- Application Number
- CN202422764953.7
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-11-13
- Publication Date
- 2025-08-01
- Estimated Expiration
- 2034-11-13
AI Technical Summary
The existing fabric calenders have shortcomings in fabric deviation correction and output accuracy, which leads to the fabric being easily wrinkled during movement, affecting the calendering effect and fabric quality, and increasing the difficulty and cost of subsequent processing.
A fabric calender with a bias correction structure is designed, using two symmetrically arranged side mounting plates and longitudinal calender rollers, combined with the first and second moving mechanisms and the rotating mechanism, effective bias correction and accurate output of the fabric is achieved through the movement and rotation of the transverse rubber plate.
Effectively prevent wrinkles from occurring during the traction process, ensure that the fabric is in the correct position, achieve accurate output, improve the aesthetics and quality of the fabric, and reduce the difficulty and cost of subsequent processing.
Smart Images

Figure CN223176430U_ABST
Abstract
Description
Technical Field
[0001] The utility model belongs to the field of fabric calendering machines, and particularly relates to a fabric calendering machine with a deviation rectifying structure. Background Technique
[0002] A fabric calendering machine is a device widely used in the textile industry. Its main function is to calender fabrics to make the fabric surface smoother and more even, improving its appearance quality and hand feel. However, in the actual use of existing fabric calendering machines, especially in terms of fabric deviation rectification and output accuracy;
[0003] Existing fabric calendering machines usually use a single traction point to traction and move the fabric. However, in actual operation, the design of a single traction point easily causes wrinkles in the fabric during movement, thus affecting the calendering effect and fabric quality. In this case, not only the aesthetics and quality of the product are reduced, but also the difficulty and cost of subsequent processing are increased. Therefore, it is necessary to design a fabric calendering machine with a deviation rectifying structure to overcome the above technical defects. Content of the Utility Model
[0004] (1) Technical Problems to be Solved
[0005] Aiming at the deficiencies of the existing technology, the purpose of the utility model is to provide a fabric calendering machine with a deviation rectifying structure, which aims to solve the technical problems that the design of a single traction point in the existing technology easily causes wrinkles in the fabric during movement, thus affecting the calendering effect and fabric quality, not only reducing the aesthetics and quality of the product, but also increasing the difficulty and cost of subsequent processing.
[0006] (2) Technical Solutions
[0007] To solve the above technical problems, the utility model provides such a fabric calendering machine with a deviation rectifying structure. The fabric calendering machine includes two symmetrically arranged side mounting plates. A longitudinal calendering roller is arranged between the two side mounting plates. One side of the side mounting plate is provided with a bottom support column. Both ends of the bottom support column are provided with movable rectangular equipment grooves. A first moving mechanism is arranged between the bottom support column and the rectangular equipment groove;
[0008] Both ends of the top of the rectangular equipment groove are slidably connected with U-shaped moving frames. A second moving mechanism for moving the two U-shaped moving frames is arranged inside the rectangular equipment groove;
[0009] The top of the U-shaped moving frame is provided with a rotatable transverse rubber plate. A rotating mechanism for rotating the transverse rubber plate is arranged inside the U-shaped moving frame.
[0010] Preferably, the first moving mechanism includes a first hydraulic cylinder. A first hydraulic cylinder is provided between the bottom support column and the rectangular equipment groove. Arc-shaped fixing blocks are fixed at both ends of the bottom of the rectangular equipment groove. A horizontal optical rod is slidably connected inside the arc-shaped fixing block, and the horizontal optical rod is fixedly connected to the bottom support column on the side close to the bottom support column.
[0011] Preferably, the second moving mechanism includes a driving motor. A driving motor is bolted to one end of the rectangular equipment groove. A first longitudinal threaded rod is fixed to the output end of the driving motor. A second longitudinal threaded rod is fixed to the end of the first longitudinal threaded rod away from the driving motor. The thread directions of the first longitudinal threaded rod and the second longitudinal threaded rod are opposite. Longitudinal moving plates are threadedly connected to the outer sides of the first longitudinal threaded rod and the second longitudinal threaded rod respectively. The top of the longitudinal moving plate is fixedly connected to the U-shaped moving frame.
[0012] Furthermore, a longitudinal optical rod is also fixed inside the rectangular equipment groove. The longitudinal optical rod passes through the inside of the longitudinal moving plate and is slidably connected to the longitudinal moving plate.
[0013] Furthermore, the rotating mechanism includes a second hydraulic cylinder. A transverse moving plate is fixed to the output end of the second hydraulic cylinder. The transverse moving plate is located inside the U-shaped moving frame and is slidably connected to the U-shaped moving frame. The top of the transverse moving plate is rotatably connected to an obliquely rotating plate. The top of the obliquely rotating plate is rotatably connected to a transverse rotating plate through a pin shaft. One end of the transverse rotating plate is fixedly connected to a transverse rubber plate. A vertical support plate is fixed to the top of the U-shaped moving frame. The top of the vertical support plate is rotatably connected to one end of the transverse rotating plate through the pin shaft.
[0014] Even further, a dovetail slider is fixed to the bottom of the transverse moving plate. A dovetail chute is formed inside the U-shaped moving frame. The transverse moving plate and the U-shaped moving frame are slidably connected through the cooperation of the dovetail slider and the dovetail chute.
[0015] (3)Advantages
[0016] Compared with the prior art, the beneficial effects of the present utility model are as follows:
[0017] Through a series of designs, the present utility model can be provided with two transverse rubber plates on both sides of the longitudinal calender roller, and the two transverse rubber plates on the same side can be moved, effectively solving the problem of wrinkles that are likely to occur during the traction of the fabric, and can correct the deviation of the fabric, ensuring that the fabric is always in the correct position, thereby ensuring that the fabric can be accurately output and preventing the generation of wrinkles. Description of the Drawings
[0018] Figure 1 It is a schematic structural diagram of the whole of the present utility model;
[0019] Figure 2Schematic diagram of the side mounting plate and the longitudinal calender roll of the present utility model;
[0020] Figure 3 Schematic diagram of the first hydraulic cylinder and the horizontal light rod of the present utility model;
[0021] Figure 4 Schematic diagram of the horizontal rubber plate and the horizontal rotating plate of the present utility model;
[0022] Figure 5 Schematic diagram of the first longitudinal threaded rod and the second longitudinal threaded rod of the present utility model.
[0023] The reference signs in the drawings are: 1, side mounting plate; 2, bottom support column; 3, longitudinal calender roll; 4, rectangular equipment groove; 5, drive motor; 6, first hydraulic cylinder; 7, horizontal light rod; 8, arc-shaped fixing block; 9, U-shaped moving frame; 10, horizontal rubber plate; 11, horizontal rotating plate; 12, inclined rotating plate; 13, second hydraulic cylinder; 14, horizontal moving plate; 15, vertical support plate; 16, longitudinal moving plate; 17, first longitudinal threaded rod; 18, second longitudinal threaded rod; 19, longitudinal light rod. Detailed implementation manner
[0024] This detailed implementation manner is a fabric calender with a deviation correction structure, and its schematic diagram is as Figures 1 - 5 shown. The fabric calender includes two symmetrically arranged side mounting plates 1. A longitudinal calender roll 3 is arranged between the two side mounting plates 1. A bottom support column 2 is arranged on one side of the side mounting plate 1. Movable rectangular equipment grooves 4 are arranged at both ends of the bottom support column 2. A first moving mechanism is arranged between the bottom support column 2 and the rectangular equipment groove 4;
[0025] Both ends of the top of the rectangular equipment groove 4 are slidably connected with U-shaped moving frames 9. A second moving mechanism for moving the two U-shaped moving frames 9 is arranged inside the rectangular equipment groove 4;
[0026] A rotatable horizontal rubber plate 10 is arranged on the top of the U-shaped moving frame 9. A rotating mechanism for rotating the horizontal rubber plate 10 is arranged inside the U-shaped moving frame 9;
[0027] The first moving mechanism includes a first hydraulic cylinder 6. A first hydraulic cylinder 6 is arranged between the bottom support column 2 and the rectangular equipment groove 4. Arc-shaped fixing blocks 8 are fixed at both ends of the bottom of the rectangular equipment groove 4. A horizontal light rod 7 is slidably connected inside the arc-shaped fixing blocks 8. The side of the horizontal light rod 7 close to the bottom support column 2 is fixedly connected with the bottom support column 2. The movement of the rectangular equipment groove 4 enables the arc-shaped fixing blocks 8 to slide outside the horizontal light rod 7, enabling the rectangular equipment groove 4 to move. The movement of the rectangular equipment groove 4 enables the U-shaped moving frame 9 to move;
[0028] Here, the operation of the first hydraulic cylinder 6 enables the rectangular equipment groove 4 to move, and further enables the transverse optical rod 7 to slide inside the arc-shaped fixed block 8;
[0029] The second moving mechanism includes a driving motor 5. One end of the rectangular equipment groove 4 is bolted with the driving motor 5. The output end of the driving motor 5 is fixed with a first longitudinal threaded rod 17. One end of the first longitudinal threaded rod 17 away from the driving motor 5 is fixed with a second longitudinal threaded rod 18. The thread rotation directions of the first longitudinal threaded rod 17 and the second longitudinal threaded rod 18 are opposite. The outer sides of the first longitudinal threaded rod 17 and the second longitudinal threaded rod 18 are both threadedly connected with longitudinal moving plates 16. The tops of the longitudinal moving plates 16 are fixedly connected with U-shaped moving frames 9;
[0030] A longitudinal optical rod 19 is also fixed inside the rectangular equipment groove 4. The longitudinal optical rod 19 penetrates through the inside of the longitudinal moving plate 16 and is slidably connected with the longitudinal moving plate 16. Through the arrangement of the longitudinal optical rod 19, the longitudinal moving plate 16 can slide outside the longitudinal optical rod 19;
[0031] Here, the operation of the driving motor 5 enables the first longitudinal threaded rod 17 and the second longitudinal threaded rod 18 to rotate. The rotation of the first longitudinal threaded rod 17 and the second longitudinal threaded rod 18 enables the longitudinal moving plates 16 to slide outside the longitudinal optical rod 19. The movement of the two longitudinal moving plates 16 enables the two U-shaped moving frames 9 to move, and further can adjust the distance between the two U-shaped moving frames 9;
[0032] The rotating mechanism includes a second hydraulic cylinder 13. The output end of the second hydraulic cylinder 13 is fixed with a transverse moving plate 14. The transverse moving plate 14 is located inside the U-shaped moving frame 9 and is slidably connected with the U-shaped moving frame 9. The top of the transverse moving plate 14 is rotatably connected with an obliquely rotating plate 12. The top of the obliquely rotating plate 12 is rotatably connected with a transverse rotating plate 11 through a pin shaft. One end of the transverse rotating plate 11 is fixedly connected with a transverse rubber plate 10. The top of the U-shaped moving frame 9 is fixed with a vertical support plate 15. The top of the vertical support plate 15 is rotatably connected with one end of the transverse rotating plate 11 and the pin shaft;
[0033] A dovetail slider is fixed at the bottom of the transverse moving plate 14. A dovetail chute is opened inside the U-shaped moving frame 9. The transverse moving plate 14 and the U-shaped moving frame 9 are slidably connected through the cooperation of the dovetail slider and the dovetail chute, so that the transverse moving plate 14 can slide inside the U-shaped moving frame 9;
[0034] Here, the operation of the second hydraulic cylinder 13 enables the transverse moving plate 14 to slide inside the U-shaped moving frame 9. The movement of the transverse moving plate 14 causes the transverse rotating plate 11 to rotate on the top of the vertical support plate 15 through the inclined rotating plate 12, so that the transverse rubber plate 10 can rotate to the top of the U-shaped moving frame 9, enabling the transverse rubber plate 10 to clamp the fabric and allowing the fabric to be tractioned.
[0035] Working principle: When using the fabric calender of this technical solution, the operation of the second hydraulic cylinder 13 enables the transverse moving plate 14 to slide inside the U-shaped moving frame 9. The movement of the transverse moving plate 14 causes the transverse rotating plate 11 to rotate on the top of the vertical support plate 15 through the inclined rotating plate 12, so that the transverse rubber plate 10 can rotate to the top of the U-shaped moving frame 9, enabling the transverse rubber plate 10 to clamp the fabric and allowing the fabric to be tractioned.
[0036] The operation of the drive motor 5 enables the first longitudinal threaded rod 17 and the second longitudinal threaded rod 18 to rotate. The rotation of the first longitudinal threaded rod 17 and the second longitudinal threaded rod 18 enables the longitudinal moving plate 16 to slide outside the longitudinal optical rod 19. The movement of the two longitudinal moving plates 16 enables the two U-shaped moving frames 9 to move, thereby adjusting the distance between the two U-shaped moving frames 9.
[0037] The operation of the first hydraulic cylinder 6 enables the rectangular equipment slot 4 to move, so that the transverse optical rod 7 can slide inside the arc-shaped fixed block 8, enabling the U-shaped moving frame 9 to move horizontally and vertically, allowing the fabric to be tractioned.
[0038] All the technical features in this embodiment can be freely combined according to actual needs.
[0039] The above embodiment is a preferred implementation solution of the present utility model. In addition, the present utility model can also be implemented in other ways. Any obvious replacement without departing from the concept of this technical solution is within the protection scope of the present utility model.
Claims
1. A calender for fabric with a deviation rectifying structure, characterized in that: The fabric calender includes two symmetrically arranged side mounting plates (1). A longitudinal calender roll (3) is arranged between the two side mounting plates (1). One side of the side mounting plate (1) is provided with a bottom support column (2). Both ends of the bottom support column (2) are provided with movable rectangular equipment grooves (4). A first moving mechanism is arranged between the bottom support column (2) and the rectangular equipment groove (4). Both ends of the top of the rectangular equipment groove (4) are slidably connected with U-shaped moving frames (9). A second moving mechanism for the movement of the two U-shaped moving frames (9) is arranged inside the rectangular equipment groove (4). A rotatable transverse rubber plate (10) is arranged on the top of the U-shaped moving frame (9). A rotating mechanism for the rotation of the transverse rubber plate (10) is arranged inside the U-shaped moving frame (9).
2. The fabric calender with a deviation correction structure according to claim 1, characterized in that: The first moving mechanism includes a first hydraulic cylinder (6). A first hydraulic cylinder (6) is arranged between the bottom support column (2) and the rectangular equipment groove (4). Arc-shaped fixing blocks (8) are fixed at both ends of the bottom of the rectangular equipment groove (4). A transverse optical rod (7) is slidably connected inside the arc-shaped fixing block (8). The side of the transverse optical rod (7) close to the bottom support column (2) is fixedly connected with the bottom support column (2).
3. A calender for fabric with a deviation rectifying structure according to claim 1, characterized in that: The second moving mechanism includes a driving motor (5). A driving motor (5) is bolted to one end of the rectangular equipment groove (4). A first longitudinal threaded rod (17) is fixed to the output end of the driving motor (5). A second longitudinal threaded rod (18) is fixed to the end of the first longitudinal threaded rod (17) away from the driving motor (5). The thread directions of the first longitudinal threaded rod (17) and the second longitudinal threaded rod (18) are opposite. Longitudinal moving plates (16) are threadedly connected to the outer sides of both the first longitudinal threaded rod (17) and the second longitudinal threaded rod (18). The top of the longitudinal moving plate (16) is fixedly connected with the U-shaped moving frame (9).
4. The calender for fabric according to claim 3, characterized in that: A longitudinal optical rod (19) is also fixed inside the rectangular equipment groove (4). The longitudinal optical rod (19) passes through the inside of the longitudinal moving plate (16) and is slidably connected with the longitudinal moving plate (16).
5. The calender for fabric according to claim 3, characterized in that: The rotating mechanism includes a second hydraulic cylinder (13). The output end of the second hydraulic cylinder (13) is fixed with a transverse moving plate (14). The transverse moving plate (14) is located inside the U-shaped moving frame (9) and is slidably connected with the U-shaped moving frame (9). The top of the transverse moving plate (14) is rotatably connected with an obliquely rotating plate (12). The top of the obliquely rotating plate (12) is rotatably connected with a transverse rotating plate (11) through a pin shaft. One end of the transverse rotating plate (11) is fixedly connected with the transverse rubber plate (10). A vertical support plate (15) is fixed to the top of the U-shaped moving frame (9). The top of the vertical support plate (15) is rotatably connected with one end of the transverse rotating plate (11) through a pin shaft.
6. The calender for fabric according to claim 5, characterized in that: A dovetail slider is fixed to the bottom of the transverse moving plate (14), a dovetail chute is formed inside the U-shaped moving frame (9), and the transverse moving plate (14) is slidably connected to the U-shaped moving frame (9) through the cooperation of the dovetail slider and the dovetail chute.