Cloth wrinkle prevention mechanism for cloth rolling machine
By setting a deflectable clamping roller mechanism on the cloth winding machine and using a combination of gear transmission, clamping plates and cams to pull and vibrate the cloth, the problem of difficulty in eliminating wrinkles in the length direction of the cloth in the existing technology is solved, and a better anti-wrinkle effect is achieved.
Patent Information
- Application Number
- CN202510417003.3
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2025-04-03
- Publication Date
- 2025-09-09
- Estimated Expiration
- 2045-04-03
AI Technical Summary
The existing anti-wrinkle mechanism of the cloth winder is difficult to effectively eliminate wrinkles distributed along the length direction when processing cloth, resulting in poor anti-wrinkle effect.
A deflectable clamping roller mechanism is used, including a rebound deflection frame, a gear transmission mechanism and a guide roller. The gear transmission drives the rebound deflection frame to deflect synchronously in the opposite direction. Combined with the cooperation of the clamping plate and the cam, the cloth can be pulled in the front and back and left and right directions. The combination of the clamping plate and the cam is used to pull and vibrate the cloth to eliminate wrinkles.
It effectively eliminates wrinkles in the fabric, improves the anti-wrinkle effect, ensures that the fabric remains flat during the winding process, and avoids damage caused by one-way pulling.
Smart Images

Figure CN120039687B_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of cloth rolling machines, and in particular to a cloth wrinkle prevention mechanism for cloth rolling machines. Background Art
[0002] Textiles and yarn types are becoming increasingly diverse. The final inspection step in fabric production is often to check for wrinkles. Creases in some fabrics can have a significant impact on the final product, hindering subsequent printing and dyeing processes and potentially compromising product quality.
[0003] In order to prevent wrinkles in the fabric from affecting product quality, anti-wrinkle treatment is generally performed during the unwinding process. A common method is to install a flattening roller. When the fabric passes through the flattening roller, the curvature of the roller surface stretches the fabric horizontally to eliminate wrinkles.
[0004] The shortcomings of the existing anti-wrinkle treatment mechanism of the cloth winding machine are: the existing anti-wrinkle treatment mechanism of the cloth winding machine can effectively eliminate some small creases or wrinkles on the cloth after it is rolled through the flattening roller, but for cloth with large wrinkles, for example, cloth with some parts completely folded together, the cloth cannot be effectively unfolded by relying on roller pressure, and the flattening roller can only eliminate wrinkles distributed along the width direction of the cloth, but it is not easy to eliminate wrinkles distributed along the length direction, which affects the anti-wrinkle effect. Summary of the Invention
[0005] The purpose of the present invention is to provide a cloth-wrinkle-proof mechanism for a cloth-winding machine, so as to solve the technical problem in the prior art that the cloth-wrinkle-proof mechanism for a cloth-winding machine has a general anti-wrinkle effect and an insufficient treatment effect.
[0006] The technical problem to be solved by the present invention can be achieved through the following technical solutions:
[0007] A cloth wrinkle prevention mechanism for a cloth rolling machine, comprising a frame, a reeling roller, a reeling roller, and a deflectable clamping roller mechanism;
[0008] The deflectable clamping roller mechanism includes two groups, which are symmetrically distributed on both sides of the frame and are used to clamp the edge positions of the cloth on both sides. Each group of the deflectable clamping roller mechanism includes a rebound deflection frame rotatably arranged on the frame. A gear transmission mechanism is arranged between the two groups of rebound deflection frames, and the gear transmission mechanism rotates synchronously with the winding roller. In the process of the winding roller rotating to wind the cloth, the gear transmission mechanism rotates to drive the rebound deflection frames on both sides to deflect synchronously in the opposite direction.
[0009] As a further solution of the present invention: each group of the deflectable clamping roller mechanism also includes a mounting frame and a clamping plate, the mounting frame is fixedly connected to the frame, the rebound deflection frame is rotatably connected to the mounting frame, and a disc spring is also connected between the rotating shaft connected to the rebound deflection frame and the mounting frame, and electric telescopic rods are fixedly provided at both ends of the rebound deflection frame, and two clamping plates are provided, and are respectively fixedly connected to the telescopic ends of the corresponding electric telescopic rods, and each of the clamping plates is rotatably connected to a guide column.
[0010] As a further solution of the present invention: the gear transmission mechanism includes a fixed horizontal frame, a transmission gear and a toggle mechanism, the fixed horizontal frame is fixedly set on the frame, and two transmission gears and toggle mechanisms are provided, and the two transmission gears are rotatably connected to a position near the middle of the fixed horizontal frame, one of the transmission gears is matched with the winding roller and is connected with a linkage mechanism, the two toggle mechanisms are rotatably set at the two ends of the fixed horizontal frame respectively, the two transmission gears are meshed with each other, each transmission gear rotates synchronously with the toggle mechanism at the same side position, and each rebound deflection frame is coaxially fixedly connected with a cam corresponding to the toggle mechanism.
[0011] As a further solution of the present invention: the toggle mechanism includes a rotating wheel and a protrusion, the rotating wheel is rotatably connected to the fixed horizontal frame, a plurality of protrusions are provided, and are equidistantly distributed on the rotating wheel in the circumferential direction, and the protrusions cooperate with corresponding cams.
[0012] As a further solution of the present invention: the rotating wheel and the corresponding transmission gear are both coaxially fixedly connected with a first synchronous wheel, and a first synchronous belt is cooperatively connected between the two first synchronous wheels.
[0013] As a further solution of the present invention: a screw is fixedly connected to the center position of the rotating wheel, a screw sleeve is threadedly connected to the screw, a rotating sleeve is provided on the outer rotating sleeve, a plurality of connecting grooves are equidistantly distributed circumferentially on the rotating wheel, the protrusions are slidingly connected to the connecting grooves, each of the protrusions is movably connected to a linkage rod via a hinge, and the end of each linkage rod away from the protrusion is movably connected to the rotating sleeve via a hinge.
[0014] As a further solution of the present invention: the linkage mechanism includes a linkage shaft, a first steering bevel gear and a second steering bevel gear, one end of the linkage shaft is coaxially fixedly connected to one of the transmission gears, the second steering bevel gear is coaxially fixedly connected to the other end of the linkage shaft, and the second steering bevel gear is meshed with the first steering bevel gear, and the first steering bevel gear rotates synchronously with the winding roller.
[0015] As a further solution of the present invention: the first steering bevel gear and the winding roller are both coaxially fixedly connected with a second synchronous wheel, and a second synchronous belt is cooperatively connected between the two second synchronous wheels.
[0016] As a further solution of the present invention: a guide roller mechanism is provided on one side of the deflectable clamping roller mechanism, and the guide roller mechanism is used to guide the cloth to pass through the position where the deflectable clamping roller mechanism is located.
[0017] As a further solution of the present invention: the guide roller mechanism includes a mounting frame and a guide roller, an elastic telescopic rod is connected between the bottom of the mounting frame and the frame, two guide rollers are provided, and are rotatably connected to the upper and lower sides of the mounting frame respectively, and the cloth is used to pass between the two guide rollers.
[0018] Beneficial effects of the present invention:
[0019] The present invention drives the distributed protrusions to rotate by the provided rotating wheel. Each protrusion squeezes the corresponding cam during the rotation, so that the cam drives the corresponding rebound deflection frame to deflect a certain angle. In this way, the rebound deflection frame is synchronously deflected by the clamping plate that clamps the edge of the cloth. In this way, the clamping plate exerts a pulling effect on the cloth during the deflection process. Since the clamping plate rotates, the cloth is pulled in both the front and rear directions and the left and right directions, so that some wrinkles are stretched out. When the protrusion is separated from the cam, the cam can also rely on the corresponding coil spring rebound force to rebound and generate vibration, and the vibration can be transmitted to the cloth to further eliminate the cloth wrinkles.
[0020] During the rotation of the winding roller of the present invention, it drives the corresponding transmission gear to rotate through the synchronous belt, synchronous wheel, first steering bevel gear and second steering bevel gear, and the transmission gear drives the corresponding wheel to rotate, completing the transmission of the winding roller to the clamping plate without the need to drive the clamping plate to deflect separately.
[0021] The rebound deflection frame, the clamping plate and the cam assembly of the present invention are symmetrically distributed in two groups on the left and right, and rotate in conjunction with each other through meshing transmission gears, so as to ensure that the clamping plates on both sides rotate in opposite directions when clamping the edges of the cloth, thereby facilitating effective pulling of the cloth. BRIEF DESCRIPTION OF THE DRAWINGS
[0022] The present invention will be further described below with reference to the accompanying drawings.
[0023] Figure 1 It is a schematic diagram of the overall structure of the present invention;
[0024] Figure 2 This is a schematic diagram of the structure of the winding tube and the transmission gear in the present invention;
[0025] Figure 3 This is a schematic diagram of the structure of the transmission gear and the cam in the present invention;
[0026] Figure 4 This is a schematic diagram of the structure of the cam and the protrusion in the present invention;
[0027] Figure 5 It is a schematic cross-sectional view of the coupling connection between the rotating sleeve and the threaded sleeve in the present invention;
[0028] Figure 6 This is a schematic structural diagram of the rebound deflection frame and the splint in the present invention;
[0029] Figure 7 This is a schematic structural diagram of the rebound deflection frame and the mounting frame in the present invention;
[0030] Figure 8 This is a schematic structural diagram of the guide roller and the mounting frame in the present invention;
[0031] Figure 9 It is a schematic diagram of the state when the rebound deflection frame deflects and pulls the cloth in the present invention.
[0032] In the figure: 1. frame; 2. unwinding roller; 3. winding roller; 4. cloth handling equipment; 5. guide roller; 6. first steering bevel gear; 7. second steering bevel gear; 8. linkage shaft; 9. second synchronous pulley; 10. second synchronous belt; 11. transmission gear; 12. fixed cross frame; 13. first synchronous belt; 14. first synchronous pulley; 15. rotating pulley; 16. A-frame; 17. cam; 18. bump; 19. linkage rod; 20. rotating sleeve; 21. screw sleeve; 22. screw; 23. splint; 24. electric telescopic rod; 25. guide column; 26. coil spring; 27. mounting frame; 28. elastic telescopic rod; 29. rebound deflection frame; 30. mounting frame. DETAILED DESCRIPTION
[0033] The following will clearly and completely describe the technical solutions in the embodiments of the present invention in conjunction with the accompanying drawings. Obviously, the described embodiments are only part of the embodiments of the present invention, not all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without making any creative efforts shall fall within the scope of protection of the present invention.
[0034] like Figures 1-9As shown, a cloth-wrinkle-proof mechanism for a cloth-winding machine includes a frame 1, a reeling roller 2, and a reeling roller 3. The reeling roller 2 is mounted on one end of the frame 1 through an A-frame 16, and the reeling roller 3 is mounted on the other end of the frame 1 through an axis frame. Both the reeling roller 2 and the reeling roller 3 are driven to rotate by a motor, and the rotation speeds of the two can be kept at a certain differential speed by controlling the corresponding motor speeds, thereby facilitating the tensioning of the cloth to a certain degree and making it convenient for the cloth to pass through the corresponding cloth processing equipment 4 for surface treatment. The mechanism also includes a deflectable clamping roller mechanism, and the deflectable clamping roller mechanism includes two groups, which are symmetrically distributed on the frame 1. On both sides, and for clamping the edge positions of both sides of the cloth, each set of deflectable clamping roller mechanisms includes a rebound deflection frame 29 rotatably arranged on the frame 1, and a gear transmission mechanism is arranged between the two sets of rebound deflection frames 29, and the gear transmission mechanism rotates synchronously with the winding roller 3. In the process of the winding roller 3 rotating to wind the cloth, the gear transmission mechanism rotates, thereby driving the rebound deflection frames 29 on both sides to deflect synchronously in the opposite direction, so as to facilitate the lifting of the edges of both sides of the cloth. In this process, the cloth is pulled in the left and right directions and in the front and back directions, so as to facilitate the unfolding of the pleats.
[0035] In some embodiments, combined Figure 3 、 Figure 6 and Figure 7 As shown, each set of deflectable clamping roller mechanisms also includes a mounting frame 30 and a clamping plate 23. The mounting frame 30 is fixedly connected to the frame 1, and the rebound deflection frame 29 is rotatably connected to the mounting frame 30 through a rotating shaft. A coil spring 26 is also connected between the rotating shaft connected to the rebound deflection frame 29 and the mounting frame 30. The rebound deflection frame 29 is a U-shaped frame. Both ends of the rebound deflection frame 29 are fixedly provided with an electric telescopic rod 24. The two electric telescopic rods 24 are symmetrically distributed. There are two clamping plates 23, which are respectively fixedly connected to the telescopic ends of the corresponding electric telescopic rods 24. A guide column 25 is rotatably connected to each clamping plate 23. When the cloth passes through the position of the deflectable clamping roller mechanism, the edges on both sides of the cloth pass through the corresponding two groups of guide columns 25 respectively, and the corresponding electric telescopic rods 24 are extended, so that the paired two groups of guide columns 25 clamp the edges of the cloth. Since the guide columns 25 can rotate relative to the corresponding rebound deflection frame 29, it is convenient for the clamped cloth to be transported through.
[0036] In some embodiments, combined Figures 2 to 4As shown, the gear transmission mechanism includes a fixed horizontal frame 12, a transmission gear 11 and a toggle mechanism. The fixed horizontal frame 12 is fixedly set on the frame 1. There are two transmission gears 11 and two toggle mechanisms. The two transmission gears 11 are rotatably connected to the fixed horizontal frame 12 near the middle through a rotating shaft. A linkage mechanism is connected between one of the transmission gears 11 and the winding roller 3. The two toggle mechanisms are rotatably set at both ends of the fixed horizontal frame 12 respectively. The two transmission gears 11 are meshed with each other. Each transmission gear 11 rotates synchronously with the toggle mechanism on the same side. Each rebound deflection frame 29 is coaxially fixedly connected to a cam 17 corresponding to the toggle mechanism.
[0037] The toggle mechanism includes a rotating wheel 15 and a protrusion 18 . The rotating wheel 15 is rotatably connected to the fixed cross frame 12 via a rotating shaft. There are multiple protrusions 18 , which are evenly distributed on the rotating wheel 15 in the circumferential direction. The protrusions 18 cooperate with corresponding cams 17 .
[0038] In addition, the rotating wheel 15 and the corresponding transmission gear 11 are coaxially fixedly connected with a first synchronous wheel 14 , and a first synchronous belt 13 is cooperatively connected between the two first synchronous wheels 14 .
[0039] During the process of the winding roller 3 rotating to rewind the fabric, it drives one of the transmission gears 11 to rotate through the linkage mechanism, and then the transmission gear 11 drives the other transmission gear 11 to rotate, and each transmission gear 11 drives the corresponding runner 15 to rotate through the corresponding first synchronous wheel 14 and the first synchronous belt 13, and the runner 15 continuously squeezes the corresponding cam 17 through the distributed protrusions 18. Whenever the end of the cam 17 is squeezed by a protrusion 18, the cam 17 deflects a certain angle, and in this process, the coil spring 26 Tightening generates a rebound force, and the deflected cam 17 drives the corresponding rebound deflection frame 29 to rotate synchronously. The rebound deflection frame 29 relies on the clamping plate 23 to clamp the edge of the fabric to achieve pulling. Due to the presence of the transmission gear 11, the rebound deflection frames 29 on both sides are convenient to turn in opposite directions, thereby facilitating the pulling of the fabric wrinkles, and when the corresponding protrusion 18 is separated from the cam 17, the rebound deflection frame 29 relies on the rebound force of the coil spring 26 to rotate, and during the rotation process, it oscillates due to the elastic force of the coil spring 26, which facilitates further recovery of the fabric wrinkles.
[0040] In some specific embodiments, in order to facilitate the adjustment of the deflection angle of the cam 17, the length of the protrusion 18 extending out of the edge of the rotating wheel 15 needs to be adjusted, such as Figure 4As shown, a screw rod 22 is fixedly connected to the center of the runner 15, and a screw sleeve 21 is threadedly connected to the screw rod 22. The screw sleeve 21 can be equipped with a protruding handle as needed to facilitate operation and rotation. A rotating sleeve 20 is provided on the outer rotating sleeve 21. The inner side wall of the rotating sleeve 20 is embedded in the outer wall of the screw sleeve 21 and cannot be separated. There are multiple connecting grooves equidistantly distributed on the circumference of the runner 15. The connecting grooves can all extend through the center of the circular surface of the runner 15. The protrusions 18 are slidably connected to the connecting grooves. The connecting grooves are T-shaped grooves. Each protrusion 18 is movably connected to a linkage rod 19 through a hinge, and the end of each linkage rod 19 away from the protrusion 18 is movably connected to the rotating sleeve 20 through a hinge. By rotating the screw sleeve 21, it moves along the screw rod 22, thereby driving the rotating sleeve 20 to move synchronously. In this way, the rotating sleeve 20 pushes and pulls the protrusions 18 relative to the runner 15 through the distributed linkage rods 19 to adjust the extended length.
[0041] In some specific embodiments, such as Figure 2 As shown, the linkage mechanism includes a linkage shaft 8, a first steering bevel gear 6 and a second steering bevel gear 7. One end of the linkage shaft 8 is coaxially fixedly connected to one of the transmission gears 11, and the linkage shaft 8 is rotatably connected to the frame 1 through the shaft bracket. The first steering bevel gear 6 is rotatably connected to the frame 1 through the shaft bracket. The second steering bevel gear 7 is coaxially fixedly connected to the other end of the linkage shaft 8, and the second steering bevel gear 7 is engaged with the first steering bevel gear 6. The first steering bevel gear 6 rotates synchronously with the winding roller 3.
[0042] Among them, in order to facilitate the effective synchronous rotation of the first steering bevel gear 6 and the winding roller 3, the first steering bevel gear 6 and the winding roller 3 are coaxially fixedly connected with a second synchronous wheel 9, and a second synchronous belt 10 is connected between the two second synchronous wheels 9.
[0043] When the winding roller 3 rotates under the drive of the motor, it drives the first steering bevel gear 6 to rotate through the second synchronous wheel 9 and the second synchronous belt 10, and the first steering bevel gear 6 drives the second steering bevel gear 7 to rotate, and the second steering bevel gear 7 drives the corresponding transmission gear 11 to rotate through the linkage shaft 8 to realize transmission.
[0044] In some specific embodiments, a guide roller mechanism is provided on one side of the deflectable pinch roller mechanism, and the guide roller mechanism is used to guide the cloth to pass through the position where the deflectable pinch roller mechanism is located.
[0045] Among them, the guide roller mechanism includes a mounting frame 27 and a guide roller 5. An elastic telescopic rod 28 is connected between the bottom of the mounting frame 27 and the frame 1. The elastic telescopic rod 28 includes a telescopic rod and a spring sleeved on the telescopic rod. The two ends of the spring are respectively fixedly connected to the two ends of the telescopic rod. Two guide rollers 5 are provided, and are respectively rotatably connected to the upper and lower sides of the inside of the mounting frame 27. The cloth is used to pass between the two guide rollers 5.
[0046] When the clamping plate 23 deflects while clamping the edge of the cloth, since the mounting frame 27 is connected to the frame 1 by means of a retractable elastic telescopic rod 28, it can move longitudinally to a certain extent driven by the cloth, thereby preventing the clamping plate 23 from being excessively pulled and damaged when clamping the edge of the cloth.
[0047] It should also be noted that in order to facilitate the adjustment of the distance between the two guide rollers 5, the mounting frame 27 is divided into two upper and lower frames, and the two frames are fixedly connected by bolts. In practice, holes can be drilled at corresponding positions as needed, and then bolts can be installed to keep a certain distance between the two guide rollers 5.
[0048] To facilitate understanding of the embodiments of this solution by those skilled in the art, the working principle of this solution is briefly described in conjunction with specific application scenarios:
[0049] First, the speed of the driving motor of the unwinding roller 2 and the winding roller 3 is set, and a certain differential speed is maintained, so that the cloth can be tightened to a certain degree, so that the cloth can pass through the corresponding cloth processing equipment 4 for surface treatment; and during the rotation of the winding roller 3, it drives the first steering bevel gear 6 to rotate through the second synchronous wheel 9 and the second synchronous belt 10, and the first steering bevel gear 6 drives the second steering bevel gear 7 to rotate, and the second steering bevel gear 7 drives the corresponding transmission gear 11 to rotate through the linkage shaft 8, and the transmission gear 11 drives another transmission gear 11 to rotate, and each transmission gear 11 drives the corresponding runner 15 to rotate through the corresponding first synchronous wheel 14 and the first synchronous belt 13, and the runner 15 is rotated. The over-distributed protrusions 18 continuously squeeze the corresponding cams 17. Whenever the end of the cam 17 is squeezed by a protrusion 18, the cam 17 deflects a certain angle, and during this process, the coil spring 26 tightens to generate a rebound force. The deflected cam 17 drives the corresponding rebound deflection frame 29 to rotate synchronously. The rebound deflection frame 29 relies on the clamping plate 23 to clamp the edge of the fabric to achieve pulling. Due to the presence of the transmission gear 11, the rebound deflection frames 29 on both sides rotate in opposite directions, thereby facilitating the pulling of the fabric wrinkles. When the corresponding protrusion 18 is separated from the cam 17, the rebound deflection frame 29 rotates by the rebound force of the coil spring 26, and oscillates during the rotation due to the elastic force of the coil spring 26, which facilitates further restoring the fabric wrinkles.
[0050] In order to facilitate the adjustment of the deflection angle of the cam 17, the screw sleeve 21 is rotated to move along the screw rod 22, thereby driving the rotating sleeve 20 to move synchronously. In this way, the rotating sleeve 20 pushes and pulls the protrusion 18 relative to the rotating wheel 15 through the distributed linkage rod 19 to adjust the extended length.
[0051] The above describes several embodiments of the present invention in detail, but the embodiments of the present invention are not limited to these and should not be considered to limit the scope of implementation of the present invention. All equivalent changes and improvements made within the scope of the present invention should still fall within the scope of the patent coverage of the present invention.
Claims
1. A cloth wrinkle prevention mechanism for a cloth rolling machine, comprising a frame (1), an unwinding roller (2) and a winding roller (3), characterized in that: Also included is a deflectable pinch roller mechanism; The deflectable clamping roller mechanism includes two groups, which are symmetrically distributed on both sides of the frame (1) and are used to clamp the edge positions of both sides of the cloth. Each group of the deflectable clamping roller mechanism includes a rebound deflection frame (29) rotatably arranged on the frame (1). A gear transmission mechanism is provided between the two groups of rebound deflection frames (29), and the gear transmission mechanism rotates synchronously with the winding roller (3). When the winding roller (3) rotates to wind the cloth, the gear transmission mechanism rotates to drive the rebound deflection frames (29) on both sides to deflect synchronously in the opposite direction. Each group of the deflectable clamping roller mechanism further includes a mounting frame (30) and a clamping plate (23), wherein the mounting frame (30) is fixedly connected to the frame (1), the rebound deflection frame (29) is rotatably connected to the mounting frame (30), a coil spring (26) is also cooperatively connected between the rotating shaft connected to the rebound deflection frame (29) and the mounting frame (30), an electric telescopic rod (24) is fixedly provided at both ends of the rebound deflection frame (29), two clamping plates (23) are provided, and are respectively fixedly connected to the telescopic ends of the corresponding electric telescopic rod (24), and each clamping plate (23) is rotatably connected to a guide column (25); The gear transmission mechanism includes a fixed horizontal frame (12), a transmission gear (11) and a toggle mechanism, wherein the fixed horizontal frame (12) is fixedly arranged on the frame (1), and two transmission gears (11) and two toggle mechanisms are provided, and the two transmission gears (11) are both rotatably connected to a position near the middle of the fixed horizontal frame (12), and a linkage mechanism is connected between one of the transmission gears (11) and the winding roller (3), and the two toggle mechanisms are rotatably arranged at both ends of the fixed horizontal frame (12), and the two transmission gears (11) are meshed with each other, and each transmission gear (11) rotates synchronously with the toggle mechanism at the same side position, and each rebound deflection frame (29) is coaxially fixedly connected with a cam (17) corresponding to the toggle mechanism; The toggle mechanism comprises a rotating wheel (15) and a convex block (18); the rotating wheel (15) is rotatably connected to the fixed cross frame (12); a plurality of convex blocks (18) are provided and circumferentially equidistantly distributed on the rotating wheel (15); and the convex blocks (18) cooperate with corresponding cams (17).
2. The anti-cloth wrinkle mechanism of a cloth rolling machine according to claim 1, characterized in that: The rotating wheel (15) and the corresponding transmission gear (11) are both coaxially fixedly connected to a first synchronous wheel (14), and a first synchronous belt (13) is cooperatively connected between the two first synchronous wheels (14).
3. The anti-cloth wrinkle mechanism of a cloth winding machine according to claim 1, characterized in that: The center of the rotating wheel (15) is fixedly connected with a screw rod (22), a screw sleeve (21) is threadedly connected to the screw rod (22), and a rotating sleeve (20) is provided on the outer rotating sleeve (21). A plurality of connecting grooves are equidistantly distributed on the rotating wheel (15), and the protrusions (18) are slidably connected to the connecting grooves. Each of the protrusions (18) is movably connected to a linkage rod (19) via a hinge, and an end of each linkage rod (19) away from the protrusion (18) is movably connected to the rotating sleeve (20) via a hinge.
4. The anti-cloth wrinkle mechanism of a cloth rolling machine according to claim 1, characterized in that: The linkage mechanism comprises a linkage shaft (8), a first steering bevel gear (6) and a second steering bevel gear (7); one end of the linkage shaft (8) is coaxially fixedly connected to one of the transmission gears (11); the second steering bevel gear (7) is coaxially fixedly connected to the other end of the linkage shaft (8); the second steering bevel gear (7) is meshed with the first steering bevel gear (6); and the first steering bevel gear (6) rotates synchronously with the winding roller (3).
5. The cloth wrinkle prevention mechanism of a cloth rolling machine according to claim 4, characterized in that: The first steering bevel gear (6) and the winding roller (3) are both coaxially fixedly connected to a second synchronous wheel (9), and a second synchronous belt (10) is cooperatively connected between the two second synchronous wheels (9).
6. The cloth wrinkle prevention mechanism of a cloth rolling machine according to claim 1, characterized in that: A guide roller mechanism is provided on one side of the deflectable clamping roller mechanism, and the guide roller mechanism is used to guide the cloth to pass through the position where the deflectable clamping roller mechanism is located.
7. The cloth wrinkle prevention mechanism of a cloth rolling machine according to claim 6, characterized in that: The guide roller mechanism comprises a mounting frame (27) and a guide roller (5); an elastic telescopic rod (28) is connected between the bottom of the mounting frame (27) and the frame (1); two guide rollers (5) are provided and are rotatably connected to the upper and lower sides of the mounting frame (27), respectively; and the cloth is used to pass between the two guide rollers (5).
Citation Information
Patent Citations
Edge cutting device capable of effectively preventing cloth from wrinkling
CN111826931A
Cloth guide device capable of preventing hemming
CN113493134A