Drying and shaping device for regenerated base cloth

By adopting a multi-ventilation cavity structure and an automatic temperature and humidity control system in the base fabric drying and shaping device, the problem of uneven drying and shaping of the base fabric caused by unstable hot air is solved, multiple shaping and drying of the base fabric is achieved, and the overall drying and shaping quality is improved.

CN120649253APending Publication Date: 2025-09-16JIANGSU KENAN NEW MATERIAL TECH CO LTD
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Patent Information

Application Number
CN202511040805.3
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-07-28
Publication Date
2025-09-16

AI Technical Summary

Technical Problem

In the prior art, during the drying and shaping process of the base fabric, unstable hot air supply or temperature fluctuations lead to uneven drying and shaping quality of the base fabric, affecting the overall effect.

Method used

It adopts a multi-ventilation cavity structure, with the molding cavity and ventilation cavity connected by upper and lower auxiliary blocks. The wind source and heating elements are used to form hot air. The hot air passes through the molding cavity multiple times for multiple drying and shaping. The heating element is automatically adjusted by the temperature and humidity sensor and controller to ensure the stability of the temperature and humidity in the molding cavity.

Benefits of technology

The stability and quality of the base fabric drying and shaping are improved, the influence of hot air instability on shaping is reduced, and the overall drying and shaping effect is improved.

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Abstract

The invention relates to a regenerated base cloth drying and shaping device, and relates to the technical field of cloth shaping, the regenerated base cloth drying and shaping device comprises a machine body, an upper auxiliary block and a lower auxiliary block, the upper auxiliary block and the lower auxiliary block are both arranged on the machine body, a plurality of shaping cavities are arranged in the machine body, adjacent shaping cavities are communicated with each other, a first ventilation cavity is arranged in the upper auxiliary block, and a second ventilation cavity is arranged in the lower auxiliary block. A plurality of first ventilation cavities are formed in the upper auxiliary block and the lower auxiliary block, the first ventilation cavities are communicated with one of the shaping cavities, the upper auxiliary block and the lower auxiliary block are each provided with a plurality of second ventilation cavities, the adjacent shaping cavities are communicated through the second ventilation cavities, the upper auxiliary block is provided with an air source part to provide an air source for the first ventilation cavities, and heating parts are arranged in the first ventilation cavities. The heating piece is used for heating air provided by the air source. The device has the effect of improving the overall quality of drying and shaping of the base cloth.
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Description

Technical Field

[0001] The invention relates to the technical field of cloth shaping, in particular to a drying and shaping device for a recycled base cloth. Background Art

[0002] In recent years, with the increasing awareness of environmental protection, the application of recycled fiber materials has become increasingly widespread. As one of the important products of recycled fiber, recycled base cloth needs to be dried and shaped during the production process to improve the durability of the recycled base cloth. Drying and shaping are key links in its production process.

[0003] At present, the textile industry generally uses hot air drying to dry and shape the base fabric, that is, the base fabric is dried by hot air drying by blowing heated gas through a hot air blower. The hot air increases the temperature and evaporates the moisture inside the base fabric during production, thereby drying and shaping it.

[0004] In the existing technology, hot air setting machines for fabrics mostly dry and set the fabric by blowing hot air from a hot air blower through a moving base fabric, performing continuous setting and drying. However, during the drying and setting process, the base fabric continues to move for one-time drying and setting. Once the hot air supply is unstable or the temperature fluctuates, the drying and setting effect of a certain section of the base fabric may be poor, resulting in the need to improve the overall drying and setting quality of the base fabric. Summary of the Invention

[0005] In order to improve the overall quality of base fabric drying and shaping, the present application provides a regenerated base fabric drying and shaping device.

[0006] The present application provides a drying and shaping device for recycled base fabrics, which adopts the following technical solutions: A recycled base cloth drying and shaping device comprises a machine body, an upper auxiliary block and a lower auxiliary block, the upper auxiliary block and the lower auxiliary block are both arranged on the machine body, a plurality of shaping cavities are arranged in the machine body, adjacent shaping cavities are communicated with each other, a first ventilation cavity is arranged in the upper auxiliary block, the first ventilation cavity is communicated with one of the shaping cavities, the upper auxiliary block and the lower auxiliary block are both provided with a plurality of second ventilation cavities, adjacent shaping cavities are communicated through the second ventilation cavities, the upper auxiliary block is provided with an air source component to provide an air source to the first ventilation cavity, a heating component is provided in the first ventilation cavity, and the heating component is used to heat the air provided by the air source.

[0007] By adopting the above technical solution, when drying and shaping, the base cloth is passed through each shaping chamber in turn, and then the wind source component is started to provide wind source, and at the same time, it is heated by the heating component to form hot air. The hot air enters the shaping chamber through the first ventilation chamber for shaping and drying, and the subsequent hot air passes through each shaping chamber in turn through each second ventilation chamber for multiple drying and shaping. On the one hand, the hot air is recycled and circulated for shaping and drying. On the other hand, the base cloth is dried and shaped multiple times, which reduces the effect of hot air instability on the drying and shaping of part of the base cloth, ensures the quality of shaping and drying of the base cloth at each position, and improves the overall drying and shaping quality.

[0008] Preferably, a temperature and humidity sensor is provided in the molding cavity, and the temperature and humidity sensor is used to detect the temperature and humidity in the molding cavity. The body is provided with a controller connected to the temperature and humidity sensor signal. The heating element is provided in multiple numbers and is arranged in the first ventilation cavity and the second ventilation cavity. The heating element is connected to the controller signal, and the controller is used to control the opening and closing of the heating element according to the detection data of the temperature and humidity sensor.

[0009] By adopting the above technical solution, the temperature and humidity in each molding cavity are detected by a temperature and humidity sensor. When the temperature and humidity in the molding cavity drop above a limit value, the controller turns on the heating element in the second ventilation cavity or the first ventilation cavity adjacent to the molding cavity. When the temperature and humidity in the molding cavity rise above a limit value, the controller turns off the heating element in the first ventilation cavity or the second ventilation cavity adjacent to the molding cavity, thereby realizing automatic control, ensuring the temperature and humidity in the molding cavity for drying and shaping the composite base fabric, and improving the convenience of use.

[0010] Preferably, the wind source component is a fan, which includes a casing, a rotating motor and an impeller. The impeller is rotatably arranged in the casing, the rotating motor is arranged on the casing and the rotating motor shaft is connected to the impeller, and the body is rotatably provided with a unwinding roller. A transmission assembly is provided between the unwinding roller and the impeller, and the transmission assembly drives the unwinding roller to rotate according to the rotation of the impeller.

[0011] By adopting the above technical solution, the rotating motor is started to drive the impeller to rotate, thereby increasing the wind source. At the same time, when the impeller rotates, the unwinding roller is driven to rotate through the transmission component, thereby driving the movement of the base cloth. The operation is simple and convenient, and it is easy to use.

[0012] Preferably, the machine body is provided with a transmission block connected to the upper auxiliary block, the unwinding roller is rotatably set on the transmission block, and a transmission cavity is set in the transmission block. The transmission assembly includes a first transmission gear, a second transmission gear, a first transmission bevel gear, a second transmission bevel gear, a first transmission sprocket, a second transmission sprocket and a transmission chain. The second transmission gear, the first transmission bevel gear, the second transmission bevel gear, the first transmission sprocket and the second transmission sprocket are all rotatably set in the transmission cavity, the first transmission gear is set on the impeller, the second transmission gear extends out of the transmission cavity and meshes with the first transmission gear, the first transmission bevel gear is connected to the second transmission gear and meshes with the second transmission bevel gear, the first transmission sprocket is connected to the second transmission bevel gear, the second transmission sprocket is connected to the unwinding roller, and the transmission chain is meshingly sleeved on the first transmission sprocket and the second transmission sprocket.

[0013] By adopting the above technical solution, when the impeller rotates, the second transmission gear is driven to rotate through the first transmission gear, thereby driving the first transmission sprocket to rotate through the transmission of the first transmission bevel gear and the second transmission bevel gear, and driving the unwinding roller to rotate through the transmission chain and the second transmission sprocket. The operation is simple and convenient, and it is easy to use.

[0014] Preferably, a winding roller is rotatably provided on the transmission block, and the winding roller and the unwinding roller are arranged at both ends of the machine body. A first auxiliary sprocket and a second auxiliary sprocket are rotatably provided in the transmission cavity, the first auxiliary sprocket is connected to the unwinding roller, and the second auxiliary sprocket is connected to the winding roller. An auxiliary chain is provided in the transmission cavity, and the auxiliary chain is meshed and sleeved on the first auxiliary sprocket and the second auxiliary sprocket.

[0015] By adopting the above technical solution, when the transmission component drives the unwinding roller to rotate, it drives the first auxiliary sprocket to rotate, and drives the second auxiliary sprocket to rotate through the auxiliary chain, thereby driving the winding roller to rotate, thereby improving the stability of the base cloth movement, improving the convenience of use, and also improving the quality of the base cloth drying and shaping.

[0016] Preferably, the machine body is provided with a threading groove, the threading groove is connected to each shaping cavity, and a first guide roller and a second guide roller are rotatably provided in the shaping cavity.

[0017] By adopting the above technical solution, the base cloth is guided by the first guide roller and the second guide roller so that the base cloth is stretched in the shaping cavity and passes through each shaping cavity through the threading groove, thereby improving the stretchability of the base cloth to improve the quality of shaping and drying, and reducing the possibility of wrinkling or overlapping of the base cloth affecting shaping and drying.

[0018] Preferably, a movable track is provided inside the machine body, and the movable track passes through the threading groove and each molding cavity. A movable gear is rotatably provided inside the movable track, and a movable rack engaging with the movable gear is provided inside the movable track. The movable gear is provided with a driving assembly, and the driving assembly is used to drive the movable gear to rotate so as to drive the movable gear to move on the movable track. The movable gear is provided with a fixing assembly, and the fixing assembly is used to fix the base cloth.

[0019] By adopting the above technical solution, a fixing component is used to fix the front end of the base cloth on the moving gear, and the driving component is used to drive the moving gear to rotate. The moving rack is engaged to drive the moving gear to move on the moving track, so that the moving gear passes through the threading groove and each molding cavity via the moving track, thereby driving the base cloth through the threading groove and each molding cavity, thereby improving the convenience of use.

[0020] Preferably, the fixed component includes a fixed block, a first fixed magnetic piece and a second fixed magnetic piece. The fixed block is rotatably connected to the moving gear. The fixed block is provided with a fixed groove. The first fixed magnetic piece is arranged in the fixed groove. The second fixed magnetic piece is slidingly arranged in the fixed groove. The first fixed magnetic piece can magnetically adsorb the second fixed magnetic piece.

[0021] By adopting the above technical solution, the second fixed magnetic sheet is slid to separate the first fixed magnetic sheet and the second fixed magnetic sheet, the front end of the base cloth is inserted into the fixed groove and inserted into the gap between the first fixed magnetic sheet and the second fixed magnetic sheet, and the second fixed magnetic sheet is slid so that the second fixed magnetic sheet is magnetically attracted to the second fixed magnetic sheet, thereby clamping the base cloth to achieve fixation. The operation is simple and convenient, and it is easy to use.

[0022] Preferably, two groups of movable rails are provided, the two groups of movable rails are arranged on both sides of the threading groove, and a connecting rod is provided between the two groups of fixed blocks.

[0023] By adopting the above technical solution, two sets of moving tracks and moving gears are set up to improve the stability of base cloth fixation and movement and enhance the convenience of use.

[0024] Preferably, the driving assembly includes a driving motor, a first driving gear and a second driving gear. The driving motor is arranged on one of the fixed blocks. A driving cavity is provided in the fixed block connected to the driving motor. The first driving gear and the second driving gear are both rotatably arranged in the driving cavity and mesh with each other. The connecting rod is rotatably connected to the fixed block, and the fixed block is against the moving track. The connecting rod is connected to the moving gear and rotates through the driving cavity. The first driving gear is connected to the driving motor, and the second driving gear is sleeved on the connecting rod.

[0025] By adopting the above technical solution, when it is necessary to drive the movable gear to rotate and move, the drive motor is started to mobilize the first drive gear to rotate, the first drive gear engages to drive the second drive gear to rotate, thereby driving the connecting rod to rotate, thereby driving the movable gears on both sides to rotate, and driving the movable gear to slide along the movable track. The operation is simple and convenient, and it is easy to use.

[0026] In summary, this application includes at least one of the following beneficial technical effects: 1. The machine body, upper auxiliary block, lower auxiliary block, shaping chamber, first ventilation chamber, second ventilation chamber, air source and heating element are arranged. The shaping chamber in the machine body is connected to each other through the geothermal ventilation chambers in the upper auxiliary block and the lower auxiliary block. During shaping and drying, the air source and heating element are driven to generate hot air in the first ventilation chamber and blow it into the shaping chamber for drying and shaping. The blown hot air passes through each shaping chamber via each second ventilation chamber, thereby drying and shaping the base fabric multiple times, improving the stability and quality of drying and shaping. 2. By arranging a casing, a rotating motor, an impeller, a transmission block, a transmission chamber, an unwinding roller, a first transmission gear, a second transmission gear, a first transmission bevel gear, a second transmission bevel gear, a first transmission sprocket, a second transmission sprocket and a transmission chain, when the rotating motor on the casing is started to drive the impeller to rotate to provide a wind source, the second transmission gear is driven to rotate by the first transmission gear, thereby driving the first transmission bevel gear and the second transmission bevel gear to rotate, and the second transmission sprocket is driven to rotate by the transmission chain, thereby driving the unwinding roller to rotate, so as to drive the base cloth to move forward. The operation is simple and convenient, and it is easy to use. At the same time, it saves driving parts, saves energy and reduces consumption; 3. By setting the winding roller, the first auxiliary sprocket, the second auxiliary sprocket and the auxiliary chain, the first auxiliary sprocket rotates synchronously when the unwinding roller rotates, and the auxiliary chain drives the second auxiliary sprocket to rotate, thereby driving the unwinding roller to rotate, thereby driving the base fabric to move forward, improving the stability of the base fabric movement, thereby improving the time stability of drying and shaping of various parts of the base fabric, and thus improving the overall drying and shaping quality. BRIEF DESCRIPTION OF THE DRAWINGS

[0027] Figure 1 This is an overall schematic diagram of a recycled base fabric drying and shaping device provided in an embodiment of the present application.

[0028] Figure 2 It is a cross-sectional view used to show the internal structure of the body.

[0029] Figure 3 This is a control block diagram of a regenerated base fabric drying and shaping device provided in an embodiment of the present application.

[0030] Figure 4 It is a cross-sectional view used to reflect the internal structure of the drive cavity.

[0031] Figure 5 It is a cross-sectional view used to show the internal structure of the moving track.

[0032] Explanation of the accompanying symbols: 1. Body; 11. Molding cavity; 111. First guide roller; 112. Second guide roller; 12. Threading groove; 13. Unwinding roller; 14. Winding roller; 15. Transmission block; 151. Transmission cavity; 152. First auxiliary sprocket; 153. Second auxiliary sprocket; 154. Auxiliary chain; 2. Upper auxiliary block; 21. First ventilation cavity; 22. Second ventilation cavity; 23. Exhaust cavity; 231. Exhaust pipe; 24. Lower auxiliary block; 3. Controller; 31. Temperature and humidity sensor; 32. Heating block; 4. Fan; 41. Casing; 42. Rotating motor; 43. Impeller ;5. Transmission assembly;51. First transmission gear;52. Second transmission gear;53. First transmission bevel gear;54. Second transmission bevel gear;55. First transmission sprocket;56. Second transmission sprocket;57. Transmission chain;6. Moving track;61. Moving groove;62. Moving gear;621. Connecting rod;63. Moving rack;7. Fixed assembly;71. Fixed block;711. Drive cavity;712. Fixed groove;72. First fixed magnetic piece;73. Second fixed magnetic piece;8. Driving assembly;81. Driving motor;82. First driving gear;83. Second driving gear. DETAILED DESCRIPTION

[0033] The following is combined with Figure 1-5 This application is described in further detail.

[0034] The embodiment of the present application discloses a device for drying and shaping recycled base fabric. Figures 1 to 2The machine comprises a long, rectangular body 1, an upper auxiliary block 2, and a lower auxiliary block 24. The upper auxiliary block 2 is fixedly mounted on the top of the body 1, while the lower auxiliary block 24 is fixedly mounted on the bottom of the body 1. The body 1 is provided with four molding cavities 11, each with a threading slot 12 that connects adjacent molding cavities 11. The threading slot 12 extends through the sidewalls of the body 1 at both ends. A first guide roller 111 and a second guide roller 112 are rotatably mounted within the molding cavities 11 to guide the base fabric. The upper auxiliary block 2 is provided with a first ventilation cavity 21, a second ventilation cavity 22, and an exhaust cavity 23. The first ventilation cavity 21 and the exhaust cavity 23 are respectively connected to the molding cavities 11 at both ends. The second ventilation cavity 22 on the upper auxiliary block 2 connects to the two molding cavities 11 in the middle. The lower auxiliary block 24 is provided with two second ventilation cavities 22, each of which connects to the two molding cavities 11 on the same side. The upper auxiliary block 2 is equipped with a fan 4 as a flange element, providing air to the first ventilation cavity 21. A heating block 32 is installed on the inner wall of the first ventilation cavity 21 as a heating element, which is heated by a built-in heating wire. The upper auxiliary block 2 is equipped with an exhaust pipe 231 that communicates with the exhaust cavity 23. The exhaust pipe 231 is connected to a pump to extract air and facilitate internal air circulation. Multiple secondary ventilation cavities 22 connect to the shaping cavity 11, allowing hot air to enter the subsequent shaping cavity 11 to further dry and shape the base fabric, improving the stability of the drying and shaping process.

[0035] To improve the quality of drying and setting, refer to Figure 2 and Figure 3 , each molding cavity 11 inner wall is fixedly provided with a temperature and humidity sensor 31 to detect the temperature and humidity in the molding cavity 11, and the machine body 1 is provided with a controller 3 connected to the signals of each temperature and humidity sensor 31, and the controller 3 can be a PLC or other control system. There are multiple heating blocks 32 and they are fixedly provided on the inner wall of each second ventilation cavity 22. The heating block 32 is connected to the controller 3 signal, and the controller 3 is used to control the opening and closing of the heating block 32 in the front first ventilation cavity 21 or the second ventilation cavity 22 according to the readings of the temperature and humidity sensors 31 in each molding cavity 11. The opening and closing of the front heating block 32 is automatically adjusted by the controller 3 according to the temperature and humidity in each molding cavity 11, thereby ensuring that the temperature and humidity in the subsequent molding cavity 11 are within a suitable range to improve the quality of drying and molding.

[0036] In order to save energy and reduce consumption, refer to Figure 2 and Figure 4The fan 4 includes a casing 41, a rotating motor 42 and an impeller 43. The impeller 43 is an annular sleeve structure impeller 43 provided on the outer wall and is rotatably arranged in the casing 41. The rotating motor 42 is fixedly arranged on the casing 41 and the rotating shaft of the rotating motor 42 is connected to the impeller 43. The body 1 is fixedly provided with a transmission block 15 fixedly connected to the upper auxiliary block 2. The transmission block 15 is rotatably provided with an unwinding roller 13 and a winding roller 14. The winding roller 14 and the unwinding roller 13 are respectively provided at both ends of the body 1 for winding the base cloth. A transmission assembly 5 is provided between the unwinding roller 13 and the impeller 43. The transmission assembly 5 drives the unwinding roller 13 to rotate according to the rotation of the impeller 43. The rotating motor 42 drives the impeller 43 to rotate to provide a wind source, and at the same time drives the unwinding roller 13 to rotate through the transmission assembly 5, thereby saving the driving parts for moving the base cloth and achieving energy saving and consumption reduction.

[0037] For ease of use, refer to Figure 2 and Figure 4 A transmission cavity 151 is provided inside the transmission block 15. The transmission assembly 5 includes a first transmission gear 51, a second transmission gear 52, a first transmission bevel gear 53, a second transmission bevel gear 54, a first transmission sprocket 55, a second transmission sprocket 56, and a transmission chain 57. The first transmission gear 51 is fixedly sleeved on the outside of the impeller 43 and rotatably arranged in the corresponding groove of the housing 41 to improve the rotation stability of the impeller 43. The second transmission gear 52, the first transmission bevel gear 53, the second transmission bevel gear 54, the first transmission sprocket 55, and the second transmission sprocket 56 are all rotatably arranged in the transmission cavity 151. A plurality of second transmission gears 52 are provided and meshed one by one. One of the second transmission gears 52 located at both ends meshes with the first transmission gear 51, and the other is coaxially fixedly connected to the first transmission bevel gear 53. The second transmission bevel gear 54 meshes with the first transmission bevel gear 53 and is coaxially fixedly connected to the first transmission sprocket 55. A second transmission sprocket 56 is coaxially and fixedly connected to the unwinding roller 13. A transmission chain 57 is meshed and sleeved between the first and second transmission sprockets 55 and 56. A first auxiliary sprocket 152 and a second auxiliary sprocket 153 are also rotatably mounted within the transmission chamber 151. The first auxiliary sprocket 152 is coaxially and fixedly connected to the unwinding roller 13, while the second auxiliary sprocket 153 is coaxially and fixedly connected to the take-up roller 14. An auxiliary chain 154 is mounted within the transmission chamber 151, meshing and sleeved between the first and second auxiliary sprockets 152 and 153 (partial chain grooves of the auxiliary chain 154 are not shown in detail). Through a series of gears, bevel gears, and sprocket chains, the fan 4, when activated, drives the unwinding roller 13 and take-up roller 14 to rotate, thereby moving the base fabric and improving ease of use.

[0038] For ease of use, refer to Figure 2 、 Figure 4 and Figure 5The body 1 is provided with a movable track 6 that passes through the threading groove 12 and each molding cavity 11. The corners of the movable track 6 are rounded and fixedly connected to the inner wall of the body 1. A movable groove 61 is provided inside the movable track 6. The corners of the movable groove 61 are arc-shaped. A movable gear 62 is rotatably provided in the movable groove 61. A movable rack 63 that engages with the movable gear 62 is provided on the inner wall of the movable groove 61. The movable gear 62 is provided with a driving assembly 8. The driving assembly 8 is used to drive the movable gear 62 to rotate so as to drive the movable gear 62 to move on the movable track 6. The movable gear 62 is provided with a fixing assembly 7. The fixing assembly 7 is used to fix the base cloth. A connecting rod 621 is coaxially fixed between the two movable gears 62 to connect the movable gears 62. By moving the movable gear 62 in the movable track 6, the front end of the base cloth is driven to pass through each molding cavity 11 in sequence, thereby facilitating the threading of the base cloth and improving the convenience of use.

[0039] For ease of use, refer to Figure 2 and Figure 5 The fixing assembly 7 includes a fixing block 71, a first fixing magnetic piece 72, and a second fixing magnetic piece 73. The fixing block 71 is rotatably connected to the connecting rod 621 and is rotatably penetrated by the connecting rod 621. At the same time, the fixing block 71 abuts against the movable track 6. A fixing groove 712 is provided on the side wall of the fixing block 71 away from the connecting rod 621. The fixing groove 712 connects the side walls of the fixing block 71 at both ends. The first fixing magnetic piece 72 is slidably set in the fixing groove 712, and the second fixing magnetic piece 73 is fixedly set on the bottom wall of the fixing groove 712. The first fixing magnetic piece 72 can magnetically attract the second fixing magnetic piece 73. The front end of the base fabric passes through the fixing groove 712 and is magnetically attracted by the first and second fixing magnetic pieces 72 and 73 to clamp the base fabric, thereby completing the fixation, which is simple and convenient to operate.

[0040] To improve the convenience of use, refer to Figure 2 and Figure 5 The drive assembly 8 includes a drive motor 81, a first drive gear 82, and a second drive gear 83. The drive motor 81 is fixedly mounted on the side wall of one of the fixed blocks 71 away from the movable track 6. A drive cavity 711 is provided within the fixed block 71 connected to the drive motor 81. A connecting rod 621 rotates through the drive cavity 711. The first drive gear 82 and the second drive gear 83 both rotate and are disposed within the drive cavity 711 and mesh with each other. The first drive gear 82 is coaxially fixedly connected to the rotating shaft of the drive motor 81, and the second drive gear 83 is fixedly sleeved on the connecting rod 621. When the drive motor 81 is started, the first drive gear 82 is driven to rotate. The second drive gear 83 and the connecting rod 621 drive the movable gear 62 to rotate, thereby driving the movable gear 62 to move in cooperation with the movable rack 63. The operation is simple and convenient, and the use is convenient.

[0041] The implementation principle of the recycled base fabric drying and shaping device in the embodiment of the present application is as follows: multiple second ventilation cavities 22 arranged above and below are connected to each shaping cavity 11, so that hot air can pass through each shaping cavity 11 in sequence to dry and shape the base fabric stretched by the first guide roller 111 and the second guide roller 112 in the shaping cavity 11. At the same time, according to the readings of the temperature and humidity sensor 31 in the shaping cavity 11, the controller 3 automatically controls the opening and closing of the front heating block 32, thereby ensuring the heat effect in the shaping cavity 11 and improving the quality of shaping and drying. By recycling the hot air, the present application reduces the possibility of poor drying and shaping effects caused by instability during the single drying and shaping of the base fabric, and improves the quality of the shaping and drying of the base fabric through multiple shaping and drying.

[0042] The above are all preferred embodiments of the present application, and are not intended to limit the scope of protection of the present application. Therefore, any equivalent changes made based on the structure, shape, and principle of the present application should be included in the scope of protection of the present application.

Claims

1. A device for drying and shaping recycled base fabric, characterized by: The invention comprises a machine body (1), an upper auxiliary block (2) and a lower auxiliary block (24), wherein the upper auxiliary block (2) and the lower auxiliary block (24) are both arranged on the machine body (1), a plurality of shaping cavities (11) are arranged in the machine body (1), and adjacent shaping cavities (11) are communicated with each other, a first ventilation cavity (21) is arranged in the upper auxiliary block (2), and the first ventilation cavity (21) is communicated with one of the shaping cavities (11), the upper auxiliary block (2) and the lower auxiliary block (24) are both provided with a plurality of second ventilation cavities (22), and adjacent shaping cavities (11) are communicated with each other through the second ventilation cavities (22), the upper auxiliary block (2) is provided with a wind source component to provide a wind source to the first ventilation cavity (21), and a heating component is provided in the first ventilation cavity (21), and the heating component is used to heat the wind provided by the wind source.

2. The drying and shaping device for recycled base fabric according to claim 1, characterized in that: A temperature and humidity sensor (31) is provided in each molding cavity (11), and the temperature and humidity sensor (31) is used to detect the temperature and humidity in the molding cavity (11). The machine body (1) is provided with a controller (3) connected to the temperature and humidity sensor (31) signal. A plurality of heating elements are provided and are arranged in the first ventilation cavity (21) and the second ventilation cavity (22). The heating elements are connected to the controller (3) signal. The controller (3) is used to control the opening and closing of the heating elements according to the detection data of the temperature and humidity sensor (31).

3. The drying and shaping device for recycled base fabric according to claim 1, characterized in that: The wind source component is a fan (4), which includes a housing (41), a rotating motor (42) and an impeller (43). The impeller (43) is rotatably arranged in the housing (41), the rotating motor (42) is arranged on the housing (41), and the rotating shaft of the rotating motor (42) is connected to the impeller (43). The body (1) is rotatably provided with an unwinding roller (13), and a transmission component (5) is provided between the unwinding roller (13) and the impeller (43). The transmission component (5) drives the unwinding roller (13) to rotate according to the rotation of the impeller (43).

4. The device for drying and shaping recycled base fabric according to claim 3, characterized in that: The machine body (1) is provided with a transmission block (15) connected to the upper auxiliary block (2); the unwinding roller (13) is rotatably arranged on the transmission block (15); a transmission cavity (151) is provided in the transmission block (15); the transmission assembly (5) comprises a first transmission gear (51), a second transmission gear (52), a first transmission bevel gear (53), a second transmission bevel gear (54), a first transmission sprocket (55), a second transmission sprocket (56) and a transmission chain (57); the second transmission gear (52), the first transmission bevel gear (53), the second transmission bevel gear (54), the first transmission sprocket (55) and the second transmission chain (57); The transmission sprockets (56) are all rotatably arranged in the transmission cavity (151), the first transmission gear (51) is arranged on the impeller (43), the second transmission gear (52) extends out of the transmission cavity (151) and meshes with the first transmission gear (51), the first transmission bevel gear (53) is connected to the second transmission gear (52) and meshes with the second transmission bevel gear (54), the first transmission sprocket (55) is connected to the second transmission bevel gear (54), the second transmission sprocket (56) is connected to the unwinding roller (13), and the transmission chain (57) is meshed and sleeved on the first transmission sprocket (55) and the second transmission sprocket (56).

5. The device for drying and shaping recycled base fabric according to claim 4, characterized in that: A winding roller (14) is rotatably provided on the transmission block (15), and the winding roller (14) and the unwinding roller (13) are provided at both ends of the machine body (1). A first auxiliary sprocket (152) and a second auxiliary sprocket (153) are rotatably provided in the transmission cavity (151), the first auxiliary sprocket (152) is connected to the unwinding roller (13), and the second auxiliary sprocket (153) is connected to the winding roller (14). An auxiliary chain (154) is provided in the transmission cavity (151), and the auxiliary chain (154) is meshed and sleeved on the first auxiliary sprocket (152) and the second auxiliary sprocket (153).

6. The device for drying and shaping recycled base fabric according to claim 1, characterized in that: The machine body (1) is provided with a threading groove (12), the threading groove (12) is connected to each shaping cavity (11), and a first guide roller (111) and a second guide roller (112) are rotatably provided in the shaping cavity (11).

7. The device for drying and shaping recycled base fabric according to claim 6, characterized in that: A movable track (6) is provided inside the machine body (1), and the movable track (6) passes through the threading groove (12) and each molding cavity (11). A movable gear (62) is rotatably provided inside the movable track (6), and a movable rack (63) meshing with the movable gear (62) is provided inside the movable track (6). The movable gear (62) is provided with a driving component (8), and the driving component (8) is used to drive the movable gear (62) to rotate so as to drive the movable gear (62) to move on the movable track (6). The movable gear (62) is provided with a fixing component (7), and the fixing component (7) is used to fix the base cloth.

8. The device for drying and shaping recycled base fabric according to claim 7, characterized in that: The fixing assembly (7) comprises a fixing block (71), a first fixing magnetic piece (72) and a second fixing magnetic piece (73); the fixing block (71) is rotatably connected to the moving gear (62); the fixing block (71) is provided with a fixing groove (712); the first fixing magnetic piece (72) is provided in the fixing groove (712); the second fixing magnetic piece (73) is slidably provided in the fixing groove (712); and the first fixing magnetic piece (72) can magnetically attract the second fixing magnetic piece (73).

9. The device for drying and shaping recycled base fabric according to claim 8, characterized in that: Two groups of movable rails (6) are provided, and the two groups of movable rails (6) are provided on both sides of the threading groove (12). A connecting rod (621) is provided between the two groups of fixed blocks (71).

10. The device for drying and shaping recycled base fabric according to claim 9, characterized in that: The driving assembly (8) includes a driving motor (81), a first driving gear (82) and a second driving gear (83), wherein the driving motor (81) is arranged on one of the fixed blocks (71), and a driving cavity (711) is arranged in the fixed block (71) connected to the driving motor (81), and the first driving gear (82) and the second driving gear (83) are both rotatably arranged in the driving cavity (711) and meshed with each other, and the connecting rod (621) is rotatably connected to the fixed block (71), and the fixed block (71) abuts against the movable track (6), and the connecting rod (621) is connected to the movable gear (62) and rotates through the driving cavity (711), the first driving gear (82) is connected to the driving motor (81), and the second driving gear (83) is sleeved on the connecting rod (621).