Composite fabric conveying and shaping equipment
By designing composite fabric transmission and setting equipment, and using a combined structure of main setting roller and sub-setting roller, the problem of adjusting the setting time and extrusion pressure in the prior art is solved, efficient setting time extension and pressure adjustment are achieved, and setting efficiency and flexibility are improved.
Patent Information
- Application Number
- CN202421348245.9
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-06-13
- Publication Date
- 2025-05-27
- Estimated Expiration
- 2034-06-13
AI Technical Summary
When the existing composite fabric shaping device deals with composite fabrics of different materials and thicknesses, it is necessary to adjust the shaping time and the extrusion pressure of the rubber extrusion roller, resulting in low efficiency.
A composite fabric transmission and setting equipment is designed, using a combined structure of the main setting roller and the auxiliary setting roller. The worm drives the worm wheel and the hollow shaft to drive the connecting rod and the roller to rotate simultaneously, increasing the setting time of the fabric. At the same time, the fitting force of the main setting roller and the auxiliary setting roller is controlled by the worm, and the setting pressure of the fabric is flexibly adjusted for different materials and thicknesses.
It achieves the extension of the molding time of composite fabrics without reducing the molding efficiency, and can flexibly adjust the molding pressure of fabrics of different materials and thicknesses, improving the flexibility and efficiency of the molding process.
Smart Images

Figure CN222908302U_ABST
Abstract
Description
Technical Field
[0001] The utility model belongs to the technical field of composite fabrics, and specifically relates to a composite fabric transmission and shaping device. Background Art
[0002] In the process of textile dyeing and finishing, fabrics are subjected to various composite actions (including physical and mechanical, chemical). After fabric lamination, it is necessary to ensure the stability of the external shape and size of the fabric. Usually, the process of stabilizing the appearance, shape and size of the fabric is called shaping treatment. According to the characteristics of different fiber fabrics, various shaping methods such as hot and humid shaping and chemical shaping are commonly used in daily life. Among them, hot and humid shaping includes the overheated steam shaping method. Among them, the patent number: CN202320952845.5 provides a fabric hot shaping device, including a frame, a shaping channel, auxiliary conveying rollers, a cleaning brush roller, a dust suction hood, a mini vacuum cleaner, a hot steam spraying plate, fabric counter rollers, spring locking bolts, rubber extrusion rollers and a hot shaping mechanism. The utility model can adsorb and remove fluff and debris on the surface of the printed and dyed fabric by the shaping device, and at the same time, soften the printed and dyed fabric by infiltration with hot and humid steam, cooperate with the rollers to smooth the wrinkles on the surface of the printed and dyed fabric, and the smoothing effect of the printed and dyed fabric is good. The smoothed printed and dyed fabric is introduced into the shaping mechanism for heat shaping, and the shaped printed and dyed fabric is flat and smooth.
[0003] Based on the above, the inventor found the following problems: The above device improves the shaping efficiency of the composite fabric, but different materials and thicknesses of composite fabrics will be encountered during the shaping process. Therefore, it is necessary to adjust the shaping time of the composite fabric in the shaping device and the extrusion force of the rubber extrusion roller.
[0004] Therefore, in view of this, research and improvement are carried out on the existing structure and deficiencies, and a composite fabric transmission and shaping device is provided, with the expectation of achieving a more practical value. Summary of the Utility Model
[0005] In order to solve the above technical problems, the utility model provides a composite fabric transmission and shaping device, which is achieved by the following specific technical means:
[0006] A composite fabric transmission and shaping device, comprising a machine body, a control terminal is installed on the outer wall of the machine body, a preheating chamber and a shaping chamber are opened inside the machine body, steam nozzles are symmetrically installed on the upper and lower inner walls of the shaping chamber, and a shaping mechanism is installed on the inner wall between a pair of the steam nozzles in the shaping chamber. The shaping mechanism includes bases arranged on the inner walls on both sides of the shaping chamber and shaping components arranged in an array between the two bases. The shaping component includes hollow shafts installed through the opposite sides of the two bases. Fixedly installed at one end of the two hollow shafts facing each other are first connecting rods. Symmetrically installed between the two first connecting rods are two main shaping rollers, and both ends of the main shaping rollers are respectively rotationally connected to the two first connecting rods. First rotating shafts are rotationally installed inside the hollow shafts. Both ends of the first rotating shafts respectively pass through both ends of the hollow shafts. And at one end facing each other between the two first connecting rods, the two first rotating shafts are both connected with second connecting rods. A secondary shaping roller is commonly connected between the opposite sides of the other ends of the two second connecting rods. An installation groove is arranged on the inner side of one of the bases. A first worm gear is sleeved on the surface of one end of the hollow shaft located inside the installation groove. One end of the first rotating shaft located inside the installation groove is rotationally installed on the inner wall of the machine body. And a second worm gear is sleeved on the surface of the first rotating shaft between the inner wall of the machine body and the first worm gear. A pair of worm shafts are rotationally installed inside the installation groove, and the pair of worm shafts are respectively connected with the first worm gear and the second worm gear.
[0007] Further, heaters are symmetrically installed on the upper and lower inner walls of the preheating chamber.
[0008] Further, a partition is installed between the shaping chamber and the preheating chamber, and through holes are opened on both sides and in the middle partition of the machine body. Guide rollers are installed at the bottom and top of the inner walls of each through hole.
[0009] Further, the distance from the center of the main shaping roller to the first rotating shaft is the same as the distance from the center of the secondary shaping roller to the first rotating shaft.
[0010] Further, first bevel gears are installed at one ends of the pair of worm shafts. A motor is installed on the outer wall of one side of the machine body. The output shaft of the motor penetrates into the installation groove. And a second bevel gear is sleeved on the surface of the output shaft of the motor. A second rotating shaft is rotationally installed at the end of the output shaft of the motor. A third bevel gear is sleeved on the surface of the second rotating shaft. The second bevel gear and the third bevel gear are respectively meshed with the pair of first bevel gears. A clutch mechanism is arranged at the connection part between the second rotating shaft and the output shaft of the motor.
[0011] Further, the clutch mechanism includes a hollow tube sleeved on the surfaces of the second rotating shaft and the motor output shaft. The hollow tube is slidably connected to the second rotating shaft and the motor output shaft. A plurality of internal splines are provided on the inner wall of the hollow tube. External splines corresponding to the size and position of the internal splines are provided on the surfaces of the motor output shaft and the second rotating shaft. A control mechanism is installed at the bottom of the hollow tube.
[0012] Further, a third connecting rod is provided at the bottom of the hollow tube. An electric push rod is installed on the inner wall of the installation groove close to the motor side. The pushing end of the electric push rod penetrates through the third connecting rod, and a limiting plate is connected to the penetrated end. A spring is sleeved on the surface of the pushing end of the electric push rod, and both ends of the spring abut against the electric push rod and the side of the third connecting rod away from the third bevel gear.
[0013] Compared with the prior art, the utility model has the following beneficial effects:
[0014] 1. Through the cooperation of the main shaping roller, the first connecting rod, the hollow shaft, the first worm gear and the worm, when the worm drives the first worm gear to rotate, the hollow shaft connected to it drives the first connecting rod and the main shaping roller to rotate synchronously. At this time, the composite fabric placed between the main shaping rollers is driven by the rotation of the main shaping rollers and gradually winds around the two main shaping rollers in an "S" shape, thereby increasing the travel of the fabric in the device, further increasing the shaping time of the fabric, and not affecting the shaping efficiency.
[0015] 2. Through the cooperation of the auxiliary shaping roller, the main shaping roller, the second connecting rod, the second worm gear and the worm, when the worm drives the second worm gear to rotate, the second connecting rod and the auxiliary shaping roller rotate synchronously, so that the main shaping roller and the auxiliary shaping roller are attached, and the attaching force between the main shaping roller and the auxiliary shaping roller is controlled by the worm, thereby controlling the required pressure when shaping fabrics of different materials and thicknesses. Description of the Drawings
[0016] Figure 1 is a schematic cross-sectional view of a composite fabric transmission and shaping device of the utility model;
[0017] Figure 2 is a schematic side cross-sectional view of the shaping mechanism in a composite fabric transmission and shaping device of the utility model;
[0018] Figure 3 is in a composite fabric transmission and shaping device of the utility model Figure 2 magnified schematic view of point A;
[0019] Figure 4 is a schematic front cross-sectional view of the shaping mechanism in a composite fabric transmission and shaping device of the utility model;
[0020] Figure 5It is in a composite fabric transmission and shaping device of the present utility model Figure 4 The enlarged schematic diagram of point B.
[0021] In the figure, the corresponding relationship between the component names and the drawing reference numbers is as follows:
[0022] 1. Machine body; 2. Preheating chamber; 3. Shaping chamber; 4. Control terminal; 5. Partition; 6. Guide roller; 7. Steam nozzle; 8. Temperature sensor; 9. Base; 10. Hollow shaft; 11. First connecting rod; 12. Main shaping roller; 13. First rotating shaft; 14. Second connecting rod; 15. Sub-shaping roller; 16. First worm gear; 17. Second worm gear; 18. Worm; 19. First bevel gear; 20. Motor; 21. Second bevel gear; 22. Second rotating shaft; 23. Third bevel gear; 24. Hollow pipe; 25. Internal spline; 26. External spline; 27. Electric push rod; 28. Third connecting rod; 29. Spring; 30. Installation groove; 31. Heater. Specific embodiments
[0023] The following further describes the embodiments of the present utility model in detail with reference to the drawings and examples. The following examples are used to illustrate the present utility model, but cannot be used to limit the scope of the present utility model.
[0024] In the description of the present utility model, unless otherwise specified, the meaning of "a plurality" is two or more; the orientation or positional relationships indicated by the terms "upper", "lower", "left", "right", "inner", "outer", "front end", "rear end", "head", "tail", etc. are based on the orientation or positional relationships shown in the drawings, and are only for the convenience of describing the present utility model and simplifying the description, rather than indicating or implying that the device or element referred to must have a specific orientation, be constructed and operated in a specific orientation, and therefore cannot be construed as a limitation of the present utility model. In addition, the terms "first", "second", "third", etc. are only used for descriptive purposes and cannot be construed as indicating or implying relative importance.
[0025] In the description of the present utility model, it should be noted that unless otherwise clearly defined and limited, the terms "connected" and "connected" should be understood in a broad sense. For example, it can be a fixed connection, a detachable connection, or an integral connection; it can be a mechanical connection or an electrical connection; it can be directly connected or indirectly connected through an intermediate medium. For those of ordinary skill in the art, the specific meanings of the above terms in the present utility model can be understood according to specific circumstances.
[0026] Example:
[0027] As shown in the attached Figure 1 to the attached Figure 5 shown:
[0028] The utility model provides a composite fabric transmission and shaping device, which comprises a machine body 1. A control terminal 4 is installed on the outer wall of the machine body 1. A preheating chamber 2 and a shaping chamber 3 are arranged inside the machine body 1. Steam nozzles 7 are symmetrically installed on the upper and lower inner walls of the shaping chamber 3. A shaping mechanism is installed on the inner wall between a pair of the steam nozzles 7 in the shaping chamber 3. The shaping mechanism comprises bases 9 arranged on the inner walls on both sides of the shaping chamber 3 and shaping components arranged in an array between the two bases 9. The shaping components comprise hollow shafts 10 installed through the opposite sides of the two bases 9. First connecting rods 11 are fixedly installed at the opposite ends of the two hollow shafts 10. Two main shaping rollers 12 are symmetrically installed between the two first connecting rods 11. The two ends of the main shaping rollers 12 are respectively rotationally connected with the two first connecting rods 11. Through the cooperation of the hollow shafts 10, the first connecting rods 11 and the main shaping rollers 12, the hollow shafts 10 can rotate on the bases 9 to drive the first connecting rods 11 and the main shaping rollers 12 to rotate. When a pair of main shaping rollers 12 are in a vertical state, the fabric passes between the pair of main shaping rollers 12. At this time, the fabric is in a straightened state. If the main shaping rollers 12 rotate around the hollow shafts 10, at this time, the fabric gradually winds in an "S" shape between the two main shaping rollers 12 driven by the main shaping rollers 12. At this time, the travel of the fabric in the shaping mechanism increases, so as to achieve the effect of prolonging the shaping time of the fabric without reducing the shaping efficiency. First rotating shafts 13 are rotationally installed inside the hollow shafts 10. The two ends of the first rotating shafts 13 respectively penetrate out of the two ends of the hollow shafts 10. Second connecting rods 14 are connected between the opposite ends of the two first rotating shafts 13 between the two first connecting rods 11. A secondary shaping roller 15 is jointly connected between the opposite sides of the other ends of the two second connecting rods 14. Through the cooperation of the first rotating shafts 13, the second connecting rods 14 and the secondary shaping roller 15, because the first rotating shafts 13 are rotationally connected with the hollow shafts 10 sleeved on their surfaces, the two can move independently. Therefore, when the secondary shaping roller 15 rotates around the first rotating shafts 13, the hollow shafts 10 and the main shaping rollers 12 are fixed. Therefore, the secondary shaping roller 15 can be rotated to contact the main shaping rollers 12 and the contact force between the two can be adjusted, so as to achieve the effect of flexibly adjusting the pressing force when shaping fabrics of different materials. An installation groove 30 is arranged inside one of the bases 9. A first worm gear 16 is sleeved on the surface of one end of the hollow shaft 10 located inside the installation groove 30. One end of the first rotating shaft 13 located inside the installation groove 30 is rotationally installed on the inner wall of the machine body 1. A second worm gear 17 is sleeved on the surface of the first rotating shaft 13 between the inner wall of the machine body 1 and the first worm gear 16. A pair of worm shafts 18 are rotationally installed inside the installation groove 30. The pair of worm shafts 18 are respectively connected with the first worm gear 16 and the second worm gear 17. Through the cooperation of the installation groove 30, the first worm gear 16, the second worm gear 17 and the worm shafts 18,By meshing and connecting the first worm gear 16 and the second worm gear 17 on a pair of worm shafts 18, the hollow shaft 10 and the first rotating shaft 13 connected to the first worm gear 16 and the second worm gear 17 are driven to rotate, thereby controlling the movement of the main shaping roller 12 and the auxiliary shaping roller 15. Moreover, by utilizing the characteristic that multiple worm gears can be meshingly connected on the worm shaft 18, the multiple shaping components arranged in an array within the positioning mechanism can be synchronously moved, and thus the device can be more accurate and rapid when regulating the shaping time of the fabric and the pressing force required for shaping.
[0029] Wherein, heaters 31 are symmetrically installed up and down inside the preheating chamber 2. By arranging the heaters 31, the temperature of the fabric itself can be increased before the fabric enters the shaping chamber 3 and contacts the high-temperature steam, reducing the influence on the fabric quality caused by thermal expansion and contraction due to too large a temperature difference.
[0030] Wherein, a partition 5 is installed between the shaping chamber 3 and the preheating chamber 2, and through holes are provided on both sides and in the middle of the partition 5 on both sides of the machine body 1. Guide rollers 6 are installed at the bottom and top of the inner walls of each through hole. By installing the guide rollers 6, the fabric can move smoothly in the device, ensuring the normal progress of the shaping work.
[0031] Wherein, the distance from the center of the main shaping roller 12 to the first rotating shaft 13 is the same as the distance from the center of the auxiliary shaping roller 15 to the first rotating shaft 13. By restricting the positions of the main shaping roller 12 and the auxiliary shaping roller 15, a good contact can always be maintained between the main shaping roller 12 and the auxiliary shaping roller 15, so that a stable pressing force can be provided when shaping the fabric, and thus the shaping effect of the fabric is ensured.
[0032] Wherein, first bevel gears 19 are installed at one ends of a pair of the worm shafts 18, a motor 20 is installed on the outer wall of one side of the machine body 1, the output shaft of the motor 20 penetrates into the installation groove 30, and a second bevel gear 21 is sleeved on the surface of the output shaft of the motor 20. A second rotating shaft 22 is rotatably installed at the end of the output shaft of the motor 20, and a third bevel gear 23 is sleeved on the surface of the second rotating shaft 22. The second bevel gear 21 and the third bevel gear 23 are respectively meshed with a pair of the first bevel gears 19. A clutch mechanism is provided at the connection part between the second rotating shaft 22 and the output shaft of the motor 20. By the combined use of the first bevel gear 19, the motor 20, the second bevel gear 21, the second rotating shaft 22 and the third bevel gear 23, the motor 20 is used to drive the second bevel gear 21 and the third bevel gear 23 on the second rotating shaft 22 to rotate, so that a pair of the first bevel gears 19 meshed therewith rotate synchronously, thereby driving a pair of the worm shafts 18 to rotate, and further enabling the positions of the main shaping roller 12 and the auxiliary shaping roller 15 to be adjusted. Thus, it is convenient for the staff to operate and the operation efficiency is improved by only controlling the motor 20 to control the shaping time of the fabric and the pressing force required for shaping.
[0033] Among them, the clutch mechanism includes a hollow tube 24 sleeved on the surfaces of the second rotating shaft 22 and the output shaft of the motor 20. The hollow tube 24 is slidably connected to the second rotating shaft 22 and the output shaft of the motor 20. A plurality of internal splines 25 are provided on the inner wall of the hollow tube 24. External splines 26 corresponding to the size and position of the internal splines 25 are provided on the surfaces of the output shaft of the motor 20 and the surface of the second rotating shaft 22. By the combined use of the hollow tube 24, the internal splines 25, and the external splines 26, since the hollow tube 24 is slidably connected to the output shaft of the driving motor 20 and the second rotating shaft 22, when the hollow tube 24 slides to the connection part of the second rotating shaft 22 and the output shaft of the motor 20, the external splines 26 on the second rotating shaft 22 can be engaged with the internal splines 25 on the inner wall of the hollow tube 24, so that the power of the output shaft of the motor 20 can be transmitted to the second rotating shaft 22. A control mechanism is installed at the bottom of the hollow tube 24.
[0034] Among them, a third connecting rod 28 is provided at the bottom of the hollow tube 24. An electric push rod 27 is installed on the inner wall of the installation groove 30 close to the motor 20. The pushing end of the electric push rod 27 penetrates through the third connecting rod 28, and a limiting plate is connected to the penetrated end. A spring 29 is sleeved on the surface of the pushing end of the electric push rod 27, and both ends of the spring 29 abut against the electric push rod 27 and the side of the third connecting rod 28 away from the third bevel gear 23. By the combined use of the electric push rod 27, the third connecting rod 28, and the spring 29, when the electric push rod 27 expands and contracts, the hollow tube 24 is driven to move through the third connecting rod 28, and the internal splines 25 on the inner wall of the hollow tube 24 are engaged or separated from the external splines 26 on the second rotating shaft 22, so as to realize the power transmission and cut-off between the output shaft of the motor 20 and the second rotating shaft 22, and further independently control the second worm gear 17 connected to the worm 18, so as to realize the adjustment of the position of the auxiliary shaping roller 15 alone after the position of the main shaping roller 12 is fixed, that is, the adjustment of the pressing force on the shaped fabric. By sleeving a spring 29 on the surface of the pushing end of the electric push rod 27, when the electric push rod 27 controls the movement of the hollow tube 24, the third connecting rod 28 can be kept slidably connected to the electric push rod 27. In special cases, if the external splines 26 and the internal splines 25 fail to be engaged in place in time, the third connecting rod 28 slides on the surface of the pushing end of the electric push rod 27, and the spring 29 compresses and stores the power of the electric push rod 27, so as not to cause damage to the electric push rod 27. Later, when the motor 20 is controlled to rotate, the spring 29 releases the compressed elastic force, so as to drive the internal splines 25 on the inner wall of the hollow tube 24 to be fully engaged with the external splines 26 on the second rotating shaft 22, and further ensure the stable and reliable operation of the clutch mechanism.
[0035] The specific usage mode and function of this embodiment:
[0036] Before the installation and use of the utility model, the staff needs to check the internal components or structures of the device. After the inspection is correct, it can be powered on for normal use. First, feed the fabric from the guide roller 6 at one end of the preheating chamber 2, and pass the fabric through the guide roller 6 on the partition 5, between the upper end of the auxiliary shaping roller 15 and the lower end of the main shaping roller 12 in sequence, and finally pass through the guide roller 6 on one side of the shaping chamber 3. At this time, control the motor 20 through the control terminal 4 to make the main shaping roller 12 rotate clockwise around the first rotating shaft 13. After adjusting the position of the main shaping roller 12, control the clutch mechanism to cut off the power transmission between the second rotating shaft 22 and the output shaft of the motor 20, and then control the position of the auxiliary shaping roller 15 to adjust the pressing force required for shaping the fabric. After the adjustment is completed, control the heater 31 and the steam nozzle 7 in the preheating chamber 2 to work. Finally, the fabric can be shaped. The temperature in the shaping chamber 3 is monitored in real time through the temperature sensor 8, so as to facilitate the regulation of the temperature in the shaping chamber 3. Through the above steps, the shaping time of different composite fabrics can be adjusted without affecting the production efficiency, and the positions of the main shaping roller 12 and the auxiliary shaping roller 15 can be adjusted to control the pressing force required for different fabrics.
[0037] The embodiments of the utility model are given for the purpose of illustration and description. Although the embodiments of the utility model have been shown and described above, it can be understood that the above embodiments are exemplary and should not be construed as limiting the utility model. Those of ordinary skill in the art can make changes, modifications, substitutions, and variations to the above embodiments within the scope of the utility model.
Claims
1. A composite fabric transmission and shaping device, comprising a body (1), a control terminal (4) is installed on the outer wall of the body (1), a preheating chamber (2) and a shaping chamber (3) are provided inside the body (1), steam nozzles (7) are symmetrically installed on the inner wall of the shaping chamber (3), and a shaping mechanism is installed on the inner wall of the shaping chamber (3) between a pair of the steam nozzles (7), characterized in that: The shaping mechanism comprises a base (9) arranged on the inner walls of both sides of the shaping bin (3) and a shaping component arranged in an array between the two bases (9); the shaping component comprises a hollow shaft (10) installed through the opposite sides of the two bases (9); a first connecting rod (11) is fixedly installed at the opposite ends of the two hollow shafts (10); two main shaping rollers (12) are symmetrically installed between the two first connecting rods (11), and the two ends of the main shaping rollers (12) are respectively connected to the two first connecting rods (11) for rotation; a first rotating shaft (13) is rotatably installed inside the hollow shaft (10); the two ends of the first rotating shaft (13) respectively pass through the two ends of the hollow shaft (10), and the opposite ends of the two first rotating shafts (13) are connected between the two first connecting rods (11). A second connecting rod (14) is connected between the connecting rods (11), and a secondary shaping roller (15) is commonly connected between the opposite sides of the other ends of the two second connecting rods (14). A mounting groove (30) is arranged on the inner side of one of the bases (9), and a first worm gear (16) is mounted on the surface of one end of the hollow shaft (10) located inside the mounting groove (30). One end of the first rotating shaft (13) is rotatably mounted on the inner wall of the machine body (1) and a second worm gear (17) is mounted on the surface of the first rotating shaft (13) between the inner wall of the machine body (1) and the first worm gear (16). A pair of worms (18) are rotatably mounted inside the mounting groove (30), and the pair of worms (18) are respectively meshed and connected with the first worm gear (16) and the second worm gear (17).
2. A composite fabric transmission and shaping device as claimed in claim 1, characterized in that: A heater (31) is symmetrically installed in the preheating chamber (2) up and down.
3. A composite fabric transmission and shaping device as claimed in claim 1, characterized in that: A partition (5) is installed between the shaping chamber (3) and the preheating chamber (2), and through holes are opened on both sides of the machine body (1) and the middle partition (5), and guide rollers (6) are installed at the bottom and top of the inner wall of each through hole.
4. A composite fabric transmission and shaping device as claimed in claim 1, characterized in that: The distances between the centers of the main shaping roller (12) and the auxiliary shaping roller (15) and the first rotating shaft (13) are the same.
5. The composite fabric transmission and shaping device according to claim 1, characterized in that: A first bevel gear (19) is mounted on one end of the pair of worm gears (18); a motor (20) is mounted on an outer wall of one side of the machine body (1); an output shaft of the motor (20) penetrates into the interior of the mounting groove (30); a second bevel gear (21) is mounted on the surface of the output shaft of the motor (20); a second rotating shaft (22) is rotatably mounted on the end of the output shaft of the motor (20); a third bevel gear (23) is mounted on the surface of the second rotating shaft (22); the second bevel gear (21) and the third bevel gear (23) are respectively meshed with the pair of first bevel gears (19); and a clutch mechanism is provided at a connection portion between the second rotating shaft (22) and the output shaft of the motor (20).
6. A composite fabric transfer and shaping device as claimed in claim 5, characterized in that: The clutch mechanism comprises a hollow tube (24) sleeved on the surface of the second rotating shaft (22) and the output shaft of the motor (20); the hollow tube (24) is slidably connected with the second rotating shaft (22) and the output shaft of the motor (20); a plurality of internal splines (25) are provided on the inner wall of the hollow tube (24); and external splines (26) corresponding in size and position to the internal splines (25) are provided on the surface of the output shaft of the motor (20) and the surface of the second rotating shaft (22).
7. A composite fabric transmission and shaping device as claimed in claim 6, characterized in that: A third connecting rod (28) is provided at the bottom of the hollow tube (24); an electric push rod (27) is installed on the inner wall of the mounting groove (30) close to the motor (20); a pushing end of the electric push rod (27) passes through the third connecting rod (28), and one end that passes through is connected to a limiting plate; a spring (29) is sleeved on the surface of the pushing end of the electric push rod (27), and two ends of the spring (29) abut against the electric push rod (27) and a side of the third connecting rod (28) away from the third bevel gear (23).
Citation Information
Patent Citations
Heat setting device for printed and dyed fabric
CN219930485U