Full-automatic biomass fiber textile fabric stacking device and using method thereof

Through the layered stacking and gas conveying and drying technology of fully automatic biomass fiber textile fabric stacking device, the problems of fabrics being easily deformed, dampened and traditional drying efficiency are solved, and the fabrics are efficient, uniformly drying and texture protection are achieved.

CN120171932APending Publication Date: 2025-06-20JIANGSU SMART TEXTILES CO LTD
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Patent Information

Application Number
CN202510426904.9
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-04-07
Publication Date
2025-06-20

AI Technical Summary

Technical Problem

The existing fabric stacking method causes the fabric to be easily deformed and damp, and the traditional drying method is inefficient and causes damage to the fabric.

Method used

A fully automatic biomass fiber textile fabric stacking device is designed, and the layered stacking and gas conveying and drying methods are adopted. By combining the winding assembly, the plug-in assembly and the air supply assembly, the layered stacking and uniform drying of the fabric is achieved.

Benefits of technology

It effectively avoids deformation and moisture of the fabric, improves the flatness and texture of the fabric, and avoids damage caused by excessive drying of the fabric through precisely controlled drying.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention belongs to the technical field of fabric storage, and particularly relates to a full-automatic biomass fiber textile fabric stacking device and a using method thereof.The full-automatic biomass fiber textile fabric stacking device comprises a placing frame, a controller is fixedly connected to the outer wall of the right side of the placing frame, and two vertical plates are fixedly connected to the lower side wall of the placing frame in a bilateral symmetry mode. When a large number of fabrics are placed on the same placing rack, the fabrics can be placed in a layered manner, the fabrics at the lower part are prevented from being extruded and deformed, the flatness of the fabrics is not influenced, the convenience of taking and placing the fabrics is ensured, and when the moisture of the fabrics is detected to be relatively high, the fabrics can be placed according to the difference of the humidity of the fabrics at different layers. And hot air at different flow speeds is conveyed to different layers of fabrics, so that the fabrics are fully dried, and the problems that the fabrics are excessively dried, the fabrics are damaged, fabric fibers become hard and brittle, and even color fading occurs are solved.
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Description

Technical Field

[0001] The present invention belongs to the technical field of fabric storage, and particularly relates to a fully automatic biomass fiber textile fabric stacking device and a using method thereof. Background Art

[0002] The production and processing of clothing generally include multiple processes such as fabric and accessory procurement, in-plant inspection of fabric and accessories, technical preparation, pattern making, sample plate testing, sample sealing, formulation of manufacturing process documents, cutting, sewing, buttonholing and button sewing, pressing, finished product inspection, packaging, warehousing and shipping, etc. Among them, the purchased fabrics and accessories need to be stored in the workshop. For example, a fabric stacking device proposed in Patent Publication No. CN110550460B.

[0003] There are many drawbacks in the existing fabric stacking methods. In actual use, a large amount of fabric is concentrated in the same storage rack. The fabric at the bottom bears huge extrusion pressure for a long time, and it is extremely easy to deform and wrinkle, seriously affecting the flatness of the fabric. For those fabrics with special textures or textures, extrusion may even damage their original texture. In addition, biomass fiber fabrics such as cotton, linen, and bamboo fiber have extremely strong hygroscopicity. In an environment with high air humidity, the fabric is prone to moisture absorption. At this time, frequent drying treatment is required. However, the traditional drying method often sets an air outlet on one side to dry the stacked fabric. This method makes it difficult for the fabric in the middle position to be dried in time, while the fabric on the outside is quickly dried. If the already dried fabric continues to be dried, it will cause damage to the fabric, making the fabric fibers hard and brittle, and even fading.

[0004] Therefore, a fully automatic biomass fiber textile fabric stacking device and a using method thereof are proposed to solve the above problems. Summary of the Invention

[0005] The purpose of the present invention is to provide a fully automatic biomass fiber textile fabric stacking device and a using method thereof for the above problems.

[0006] To achieve the above purpose, the present invention adopts the following technical solutions: A fully automatic biomass fiber textile fabric stacking device includes a storage rack, a controller is fixedly connected to the right outer wall of the storage rack, and two vertical plates are symmetrically and fixedly connected to the left and right sides of the lower side wall of the storage rack. It also includes: A plurality of winding components are evenly distributed on the right outer wall of the storage rack and can stack the fabric in layers; A plurality of plug-in components are evenly distributed on the left outer wall of the storage rack, and the plug-in components are communicated with the winding components; A horizontal plate is fixedly connected between the two vertical plates, and an air supply component is connected to the upper side wall of the horizontal plate for conveying gas into the winding components and the plug-in components; A plurality of limiting components are evenly distributed on the front and rear sides of the placement rack and are arranged close to the plug-in component for fixing the winding component.

[0007] Preferably, the winding component includes a winding cover fixedly connected to the outer wall of the right side of the placement rack. Both the front and rear inner walls of the winding cover are rotatably connected with winding rods. A plurality of support hoses are fixedly connected to the rod walls of the winding rods. The support hoses are wound around the winding rods. A drying hose is sleeved on the outer side of the support hose. A plurality of drying holes are formed in the side wall of the drying hose. The rear end of the winding rod is fixedly connected with a driving rod. A connecting cover located outside the driving rod is fixedly connected to the rear side wall of the winding cover. The rear end of the driving rod is rotatably connected to the connecting cover. A same hairspring is arranged between the driving rod and the connecting cover.

[0008] Preferably, the plug-in component includes a square box. The square box is fixedly connected to the outer wall of the left side of the placement rack through a bracket. A partition board is fixedly connected to the inner wall of the square box. Two conveying pipes are fixedly communicated between adjacent two square boxes. Two insertion cylinders are fixedly communicated with the right side wall of the square box. A one-way component is arranged on the inner wall of the insertion cylinder. The left ends of a plurality of support hoses are fixedly communicated with the same moving pipe. Two insertion pipes matching the insertion cylinders are fixedly communicated with the left side wall of the moving pipe. A first control valve is arranged in the front insertion pipe. A proportional solenoid valve is arranged in the rear insertion pipe. Humidity sensors are connected to the side walls of the opposite sides of two drying hoses on the same side. The humidity sensors are electrically connected to the proportional solenoid valve through a controller. The right end of the rear insertion pipe is fixedly communicated with a lead-out pipe. The right end of the lead-out pipe extends out of the moving pipe and is fixedly communicated with a support pipe. The support pipe and the drying hose are fixedly communicated with the same short pipe.

[0009] Preferably, the one-way component includes a rubber ring fixedly connected to the inner wall of the insertion cylinder. A baffle is hinged to the left side wall of the rubber ring. A same spring is fixedly connected between the baffle and the rubber ring. Thrust rods are fixedly connected to the ports of the two insertion pipes. Thrust holes matching the thrust rods are formed in the side wall of the rubber ring.

[0010] Preferably, the air supply component includes an air pump and a heating box fixedly connected to the upper side wall of the cross plate. An air inlet pipe is fixedly communicated with the right side wall of the heating box. A heating wire is arranged in the heating box. The air inlet end of the air pump is communicated with the heating box. A pressure sensor is arranged at the air outlet end of the air pump. The pressure sensor is electrically connected to the controller. The air outlet end of the air pump extends out of the left vertical plate and is fixedly communicated with a U-shaped pipe. The two ends of the U-shaped pipe are respectively communicated with the left and right sides of the lower side wall of the lowermost square box. Second control valves are arranged at both ends of the U-shaped pipe.

[0011] Preferably, the limiting component includes a limiting cover and an insertion plate. A control button is fixedly connected to the side wall of the limiting cover. The side wall of the limiting cover is connected to the side wall of the placement rack. The insertion plate is connected to the side wall of the moving pipe. One end of the insertion plate located inside the limiting cover is fixedly connected to a limiting plate. A vertical cylinder is inserted into the upper side wall of the limiting cover. A jack plate is fixedly connected to the inner wall of the vertical cylinder. A vertical rod is inserted into the jack plate. The upper end of the vertical rod is fixedly connected to a lifting plate. The same spring is fixedly connected between the lifting plate and the vertical cylinder. The lower end of the vertical rod is fixedly connected to a positioning plate. A plurality of mutually matching ratchet teeth are fixedly connected to the side walls of the opposite sides of the positioning plate and the limiting plate. A bent pipe is fixedly communicated with the pipe wall of the U-shaped pipe. Driving pipes are fixedly communicated with both the left and right sides of the bent pipe. A regulating valve is provided inside the driving pipe. The front end of the driving pipe passes through the vertical cylinder and the jack plate and is fixedly communicated with a telescopic pipe. The upper end of the telescopic pipe is connected to the lifting plate. A thin pipe is fixedly communicated with the upper end of the telescopic pipe. The upper end of the thin pipe extends out of the lifting plate. An exhaust hole is formed in the side wall of the vertical cylinder.

[0012] Preferably, a filter cylinder is inserted into the right end of the air inlet pipe. A filter screen is fixedly connected to the inner wall of the filter cylinder.

[0013] A usage method of a fully automatic biomass fiber textile fabric stacking device includes the following steps: S1. When an operator places the fabric, first connect the lowermost plug-in component and the winding component together through the limiting component; S2. Through the air supply component, convey external gas into the lowermost plug-in component and the winding component, so that the lowermost winding component is supported, and then a certain amount of fabric can be stacked in the lowermost winding component. When the fabric is placed on the surface of the lowermost winding component, the above steps can be repeated to connect the upper plug-in component and the winding component and place the fabric on the surface of the winding component; S3. When it is detected that the humidity of the fabric in an area reaches a certain threshold, the air supply component conveys the heated gas to the corresponding winding component and releases the hot gas to heat and dry the fabric.

[0014] Compared with the existing technology, the advantages of a fully automatic biomass fiber textile fabric stacking device and its usage method are as follows: 1. By setting the winding component, the plug-in component and the air supply component, when a large amount of fabric is placed on the same placement rack, the fabric can be placed in layers, which can avoid the lower fabric from being squeezed and deformed, affecting the flatness of the fabric, and at the same time ensure the convenience of fabric taking and placing.

[0015] 2. By setting the air supply component and the winding component, when it is detected that the moisture content of the fabric is relatively high, hot air with different flow rates can be conveyed to different layers of the fabric according to the different humidity of different layers of the fabric. While ensuring that the fabric is fully dried, it also avoids over-drying the fabric, which may cause damage to the fabric, making the fabric fibers hard and brittle, and even causing problems such as fading.

[0016] 3. By setting the limiting component, the end of the winding component can be quickly fixed and the limit can be released quickly, and no fixing parts such as bolts are required, thereby reducing the workload of the operator and improving the work efficiency of the operator. BRIEF DESCRIPTION OF THE DRAWINGS

[0017] Figure 1 is a schematic structural diagram of a fully automatic biomass fiber textile fabric stacking device and its usage method provided by the present invention; Figure 2 is a top view sectional view of a winding cover in a fully automatic biomass fiber textile fabric stacking device and its usage method provided by the present invention; Figure 3 is a schematic surface structure diagram of a winding rod in a fully automatic biomass fiber textile fabric stacking device and its usage method provided by the present invention; Figure 4 is a schematic position relationship diagram of a placement rack and a square box in a fully automatic biomass fiber textile fabric stacking device and its usage method provided by the present invention; Figure 5 is a schematic structural diagram of a plug-in component in a fully automatic biomass fiber textile fabric stacking device and its usage method provided by the present invention; Figure 6 is a schematic structural diagram of a one-way component in a fully automatic biomass fiber textile fabric stacking device and its usage method provided by the present invention; Figure 7 is a schematic structural diagram of a limiting component in a fully automatic biomass fiber textile fabric stacking device and its usage method provided by the present invention; Figure 8 is a schematic internal structure diagram of a vertical cylinder in a fully automatic biomass fiber textile fabric stacking device and its usage method provided by the present invention; Figure 9 is a schematic position relationship diagram of a bent pipe and a driving pipe in a fully automatic biomass fiber textile fabric stacking device and its usage method provided by the present invention; Figure 10 is a schematic structural diagram of an air supply component in a fully automatic biomass fiber textile fabric stacking device and its usage method provided by the present invention.

[0018] In the figure: 1 placement rack, 2 controller, 3 vertical plate, 4 horizontal plate, 5 winding assembly, 51 winding cover, 52 winding rod, 6 support hose, 7 drying hose, 8 drying holes, 9 drive rod, 10 connection cover, 11 clockwork spring, 12 plug-in assembly, 121 square box, 122 partition plate, 13 delivery pipe, 14 insertion cylinder, 15 moving pipe, 16 insertion pipe, 17 first control valve, 18 proportional solenoid valve, 19 humidity sensor, 20 outlet pipe, 21 support pipe, 22 short pipe, 23 one-way assembly, 231 rubber ring, 232 baffle, 24 ejector rod, 25 air supply assembly, 251 air pump, 252 heating box, 26 inlet pipe, 27 air pressure sensor, 28 U-shaped pipe, 29 second control valve, 30 limit assembly, 301 limit cover, 302 insertion plate, 31 control button, 32 limit plate, 33 vertical cylinder, 34 jack plate, 35 vertical rod, 36 lifting plate, 37 positioning plate, 38 ratchet teeth, 39 elbow pipe, 40 drive pipe, 41 telescopic pipe, 42 thin pipe, 43 filter cylinder, 44 regulating valve. Detailed implementation mode

[0019] Next, the technical solutions in the embodiments of the present invention will be clearly and completely described in conjunction with the accompanying drawings in the embodiments of the present invention. Obviously, the described embodiments are only a part of the embodiments of the present invention, rather than all the embodiments.

[0020] As Figures 1 - 10 shown, a fully automatic biomass fiber textile fabric stacking device includes a placement rack 1. A controller 2 is fixedly connected to the right outer wall of the placement rack 1. Two vertical plates 3 are symmetrically and fixedly connected to the left and right sides of the lower side wall of the placement rack 1. It also includes: A plurality of winding assemblies 5 are evenly distributed on the right outer wall of the placement rack 1 and can stack fabrics in layers. The winding assembly 5 includes a winding cover 51 fixedly connected to the right outer wall of the placement rack 1. The front and rear inner walls of the winding cover 51 are both rotatably connected with a winding rod 52. A plurality of support hoses 6 are fixedly connected to the rod wall of the winding rod 52. The support hoses 6 are wound outside the winding rod 52. A drying hose 7 is sleeved outside the support hose 6. A plurality of drying holes 8 are opened on the side wall of the drying hose 7. The rear end of the winding rod 52 is fixedly connected with a drive rod 9. A connection cover 10 located outside the drive rod 9 is fixedly connected to the rear side wall of the winding cover 51. The rear end of the drive rod 9 and the connection cover 10 are rotatably connected. A same clockwork spring 11 is arranged between the drive rod 9 and the connection cover 10, which can wind up the drying hose 7 and the support hose 6 when the drying hose 7 and the support hose 6 are not in use; A plurality of plug-in components 12 are evenly distributed on the left outer wall of the placement rack 1. The plug-in components 12 are communicated with the winding component 5. The plug-in component 12 includes a square box 121. The square box 121 is fixedly connected to the left outer wall of the placement rack 1 through a bracket. A partition plate 122 is fixedly connected to the inner wall of the square box 121. Two conveying pipes 13 are fixedly communicated between adjacent two square boxes 121. Two insertion cylinders 14 are fixedly communicated with the right side wall of the square box 121. A one-way component 23 is arranged on the inner wall of the insertion cylinder 14. The left ends of a plurality of support hoses 6 are fixedly communicated with the same moving pipe 15. Two insertion pipes 16 that are matched with the insertion cylinder 14 are fixedly communicated with the left side wall of the moving pipe 15. A first control valve 17 is arranged in the front insertion pipe 16. A proportional solenoid valve 18 is arranged in the rear insertion pipe 16. Humidity sensors 19 are connected to the side walls of two drying hoses 7 on the relative side of the same side. The humidity sensors 19 are electrically connected to the proportional solenoid valve 18 through a controller 2. The right end of the rear insertion pipe 16 is fixedly communicated with a lead-out pipe 20. The right end of the lead-out pipe 20 extends out of the moving pipe 15 and is fixedly communicated with a support pipe 21. A same short pipe 22 is fixedly communicated between the support pipe 21 and the drying hose 7, capable of communicating the drying hose 7, the support hose 6 and the air supply component 25; A horizontal plate 4 is fixedly connected between two vertical plates 3. An air supply component 25 is connected to the upper side wall of the horizontal plate 4 for conveying gas into the winding component 5 and the plug-in component 12. The air supply component 25 includes an air pump 251 and a heating box 252 fixedly connected to the upper side wall of the horizontal plate 4. An air inlet pipe 26 is fixedly communicated with the right side wall of the heating box 252. A heating wire is arranged in the heating box 252. The air inlet end of the air pump 251 is communicated with the heating box 252. A pressure sensor 27 is arranged at the air outlet end of the air pump 251. The pressure sensor 27 is electrically connected to the controller 2. The air outlet end of the air pump 251 extends out of the left vertical plate 3 and is fixedly communicated with a U-shaped pipe 28. The two ends of the U-shaped pipe 28 are respectively communicated with the left and right sides of the lower side wall of the lowermost square box 121. Second control valves 29 are arranged at both ends of the U-shaped pipe 28, capable of conveying gas into the drying hose 7 and the support hose 6; A plurality of limiting components 30 are evenly distributed on the front and rear sides of the placement rack 1 and are arranged close to the plug-in component 12 for fixing the winding component 5. The limiting component 30 includes a limiting cover 301 and a plug board 302. A control button 31 is fixedly connected to the side wall of the limiting cover 301. The limiting cover 301 is connected to the side wall of the placement rack 1. The plug board 302 is connected to the side wall of the moving pipe 15. A limiting plate 32 is fixedly connected to one end of the plug board 302 located inside the limiting cover 301. A vertical cylinder 33 is inserted into the upper side wall of the limiting cover 301. A jack board 34 is fixedly connected to the inner wall of the vertical cylinder 33. A vertical rod 35 is inserted into the jack board 34. The upper end of the vertical rod 35 is fixedly connected to a lifting plate 36. A same spring is fixedly connected between the lifting plate 36 and the vertical cylinder 33. The lower end of the vertical rod 35 is fixedly connected to a positioning plate 37. A plurality of mutually matching ratchet teeth 38 are fixedly connected to the side walls of the opposite sides of the positioning plate 37 and the limiting plate 32. The pipe wall of the U-shaped pipe 28 is fixedly communicated with a bent pipe 39. Both the left and right sides of the bent pipe 39 are fixedly communicated with a driving pipe 40. A regulating valve 44 is arranged inside the driving pipe 40. The front end of the driving pipe 40 passes through the vertical cylinder 33 and the jack board 34 and is fixedly communicated with a telescopic pipe 41. The upper end of the telescopic pipe 41 is connected to the lifting plate 36. The upper end of the telescopic pipe 41 is fixedly communicated with a thin pipe 42. The upper end of the thin pipe 42 extends out of the lifting plate 36. An exhaust hole is formed in the side wall of the vertical cylinder 33, which can fix the moving pipe 15 on the left inner wall of the placement rack 1. The one-way component 23 includes a rubber ring 231 fixedly connected to the inner wall of the insertion cylinder 14. A baffle 232 is hinged to the left side wall of the rubber ring 231. A same spring is fixedly connected between the baffle 232 and the rubber ring 231. A push rod 24 is fixedly connected to the port of each of the two insertion pipes 16. A jack hole matching the push rod 24 is formed in the side wall of the rubber ring 231. When the insertion pipe 16 is not inserted into the insertion cylinder 14, the insertion cylinder 14 can be kept in a closed state.

[0021] The right end of the air inlet pipe 26 is inserted with a filter cylinder 43. A filter screen is fixedly connected to the inner wall of the filter cylinder 43, which can filter the gas.

[0022] The operating principle of the present invention is described as follows: When it is necessary to stack fabrics in the placement rack 1, the operator sends an electrical signal to the controller 2 through a control switch (the control switch is not shown in the figure). After receiving the electrical signal, the controller 2 will control the air pump 251 to work and control the second control valve 29 on the front side to open. The air pump 251 will transport the externally filtered gas to the U-shaped tube 28, and through the second control valve 29 on the front side, transport the gas to the front half of the lowermost square box 121, and through multiple delivery pipes 13, transport the gas to the front half of the multiple upper square boxes 121. Since the square box 121 is in a closed state at this time, the gas inside the square box 121 will quickly reach the set threshold (1.2 standard atmospheres). When the pressure sensor 27 detects that the gas in the square box 121 reaches the set threshold, the pressure sensor 27 will control the air pump 251 to stop working through the controller 2 and control the second control valve 29 on the front side to close. Then, the operator pulls the lowermost moving pipe 15 to make the moving pipe 15 pull out the support hose 6 and the drying hose 7 wound around the surface of the winding rod 52. The operator pulls the moving pipe 15 to move towards the left inner wall of the placement rack 1, so that the two insertion pipes 16 on the left side of the moving pipe 15 are inserted into the two insertion cylinders 14 through the holes on the left side of the placement rack 1. At the same time, the moving pipe 15 will also drive the insertion plate 302 to be inserted into the limit cylinder, and through the ratchet teeth 38 between the limit plate 32 and the positioning plate 37, fix the insertion plate 302 in the limit cover 301, thereby fixing the moving pipe 15; When the insertion pipe 16 is inserted into the insertion cylinder 14, the ejector rod 24 at the left end of the insertion pipe 16 will push the baffle plate 232, causing the baffle plate 232 to rotate by a certain angle, so that the insertion pipe 16 is communicated with the square box 121. Since the air pressure in the front half area of the square box 121 is relatively high at this time, when the front insertion pipe 16 is inserted into the front insertion cylinder 14, the gas in the front half area of the square box 121 will enter the moving pipe 15 through the front insertion cylinder 14 and the insertion pipe 16, and enter the multiple support hoses 6 through the moving pipe 15. The air pressure in the front half of the square box 121 will decrease. After the pressure sensor 27 detects that the air pressure in the front half of the square box 121 decreases, the pressure sensor 27 will control the air pump 251 to repeat the above steps to work, transport the external gas to the front half of the square box 121, and transport the gas to the multiple support hoses 6 through the front insertion pipe 16 and the insertion cylinder 14. Until the air pressure inside the support hose 6 reaches the set threshold, the pressure sensor 27 will control the air pump 251 to stop working and control the first control valve 17 to close (the first control valve 17 is initially in an open state), so that the support hose 6 can maintain a certain support strength, and the operator can stack fabrics on the multiple support hoses 6; When the support hose 6 needs to be recycled later, the operator only needs to remove the fabric on the support hose 6 and press the corresponding control button 31. The control button 31 will send an electrical signal to the controller 2. After receiving this electrical signal, the controller 2 will control the air pump 251 and the corresponding two regulating valves 44 to open. The air pump 251 will transport external gas through the U-shaped tube 28, the elbow tube 39 and the corresponding two drive tubes 40, and transport the external gas into the two telescopic tubes 41 at the same horizontal level. The telescopic tubes 41 will push up the lifting plate 36, so that the lifting plate 36 drives the positioning plate 37 and the ratchet teeth 38 on the surface of the positioning plate 37 to move upward through the vertical rod 35, so that the ratchet teeth 38 on the surfaces of the positioning plate 37 and the limiting plate 32 are separated from each other, and the limit on the moving tube 15 can be released. The clockwork spring 11 will drive the drive rod 9 and the winding rod 52 to rotate, and the winding rod 52 will wind the support hose 6 and the drying hose 7. During the winding process, the gas inside the support hose 6 will be discharged through the moving tube 15 and the front insertion tube 16, which is convenient for the subsequent taking and placing of the fabric; When the fabric gets damp during stacking, after the corresponding humidity sensor 19 detects that the humidity of the fabric increases, the humidity sensor 19 will control the air pump 251 and the heating wire inside the heating box 252 to work through the controller 2. At the same time, it controls the opening of the second control valve 29 at the rear. The air pump 251 will transport the externally heated gas to the rear end of the U-shaped tube 28 and transport the heated gas to the rear half of the square box 121 through the multiple rear conveying tubes 13. At the same time, the humidity sensor 19 will also control the opening and closing size of the valve core of the proportional solenoid valve 18 through the controller 2 according to the different humidity of different layers of fabric, so that hot gases with different flow rates can be transported to the outlet pipe 20 through the rear insertion pipe 16, and the hot gas can be transported to the support pipe 21 through the outlet pipe 20, and then through multiple short pipes 22, the hot gas is transported into multiple drying hoses 7, and the hot gas is transported to the surface of the fabric through the drying holes 8 on the surface of the drying hose 7. Since the fabric is placed in layers and the thickness of one layer of fabric is relatively thin, the hot gas can be used to evenly dry the fabric. When a certain humidity sensor 19 detects that the humidity of this layer of fabric drops to a suitable area (40%-60%), this humidity sensor 19 will control the corresponding proportional solenoid valve 18 to close through the controller 2, which not only ensures that the fabric is fully dried, but also avoids over-drying the fabric, which will cause damage to the fabric, resulting in the hardening and brittleness of the fabric fibers and even the problem of fading.

[0023] The above are only the preferred embodiments of the present invention and are not intended to limit the present invention. Any modifications, equivalent replacements, improvements, etc. made within the spirit and principle of the present invention shall be included in the protection scope of the present invention.

Claims

1. A fully automatic biomass fiber textile fabric stacking device, comprising a placement rack (1), a controller (2) being fixedly connected to the right outer wall of the placement rack (1), and two vertical plates (3) being fixedly connected to the lower side wall of the placement rack (1) symmetrically, characterized in that: Also includes: A plurality of winding components (5) are evenly distributed on the right outer wall of the placement rack (1) and are capable of stacking fabrics in layers; A plurality of plug-in components (12) are evenly distributed on the left outer wall of the placement rack (1), and the plug-in components (12) are connected to the winding component (5); A transverse plate (4) is fixedly connected between the two vertical plates (3); an upper side wall of the transverse plate (4) is connected to an air supply assembly (25) for supplying gas to the winding assembly (5) and the plug-in assembly (12); A plurality of limit assemblies (30) are evenly distributed on the front and rear sides of the placement rack (1) and are arranged close to the plug-in assembly (12) for fixing the winding assembly (5).

2. The fully automatic biomass fiber textile fabric stacking device according to claim 1 is characterized in that: The winding assembly (5) comprises a winding cover (51) fixedly connected to the right outer wall of the placement frame (1); the inner walls on both the front and rear sides of the winding cover (51) are rotatably connected to a winding rod (52); the rod wall of the winding rod (52) is fixedly connected to a plurality of supporting hoses (6); the supporting hoses (6) are wound around the winding rod (52); a drying hose (7) is sleeved on the outer side of the supporting hose (6); a plurality of drying holes (8) are opened on the side wall of the drying hose (7); the rear end of the winding rod (52) is fixedly connected to a driving rod (9); the rear side wall of the winding cover (51) is fixedly connected to a connecting cover (10) located outside the driving rod (9); the rear end of the driving rod (9) and the connecting cover (10) are rotatably connected; and a same spring spring (11) is provided between the driving rod (9) and the connecting cover (10).

3. The fully automatic biomass fiber textile fabric stacking device according to claim 2 is characterized in that: The plug-in assembly (12) comprises a square box (121), the square box (121) being fixedly connected to the left outer wall of the placement rack (1) via a bracket, a partition plate (122) being fixedly connected to the inner wall of the square box (121), two adjacent square boxes (121) being fixedly connected to two delivery pipes (13), the right side wall of the square box (121) being fixedly connected to two insertion tubes (14), the inner wall of the insertion tube (14) being provided with a one-way assembly (23), the left ends of the plurality of support hoses (6) being fixedly connected to the same moving tube (15), and the left side wall of the moving tube (15) being fixedly connected to two insertion tubes (16) matching the insertion tubes (14) A first control valve (17) is provided in the insertion tube (16) located at the front side, a proportional solenoid valve (18) is provided in the insertion tube (16) located at the rear side, and a humidity sensor (19) is connected to the side walls of the two drying hoses (7) located on the same side on the opposite side. The humidity sensor (19) is electrically connected to the proportional solenoid valve (18) through the controller (2). The right end of the insertion tube (16) located at the rear side is fixedly connected to a guide tube (20), the right end of the guide tube (20) extends out of the movable tube (15) and is fixedly connected to a support tube (21), and a short tube (22) is fixedly connected between the support tube (21) and the drying hose (7).

4. The fully automatic biomass fiber textile fabric stacking device according to claim 3 is characterized in that: The one-way component (23) comprises a rubber ring (231) fixedly connected to the inner wall of the insertion tube (14); a baffle (232) is hingedly connected to the left side wall of the rubber ring (231); a same spring is fixedly connected between the baffle (232) and the rubber ring (231); ports of the two insertion tubes (16) are fixedly connected to a push rod (24); and a top hole matching the push rod (24) is formed on the side wall of the rubber ring (231).

5. The fully automatic biomass fiber textile fabric stacking device according to claim 1 is characterized in that: The air supply assembly (25) comprises an air pump (251) and a heating box (252) fixedly connected to the upper side wall of the horizontal plate (4); the right side wall of the heating box (252) is fixedly connected to an air inlet pipe (26); a heating wire is arranged in the heating box (252); the air inlet end of the air pump (251) is connected to the heating box (252); the air outlet end of the air pump (251) is provided with an air pressure sensor (27); the air pressure sensor (27) is electrically connected to the controller (2); the air outlet end of the air pump (251) extends out of the left vertical plate (3) and is fixedly connected to a U-shaped tube (28); the two ends of the U-shaped tube (28) are respectively connected to the left and right sides of the lower side wall of the lowermost square box (121); and the two ends of the U-shaped tube (28) are provided with a second control valve (29).

6. The fully automatic biomass fiber textile fabric stacking device according to claim 5, characterized in that: The limiting assembly (30) comprises a limiting cover (301) and a plug plate (302); a control button (31) is fixedly connected to a side wall of the limiting cover (301); the limiting cover (301) is connected to a side wall of the placement rack (1); the plug plate (302) is connected to a side wall of the moving tube (15); one end of the plug plate (302) located inside the limiting cover (301) is fixedly connected to the limiting plate (32); a vertical cylinder (33) is plugged into an upper side wall of the limiting cover (301); a plug plate (34) is fixedly connected to an inner wall of the vertical cylinder (33); a vertical rod (35) is plugged into the plug plate (34); an upper end of the vertical rod (35) is fixedly connected to a lifting plate (36); a same spring is fixedly connected between the lifting plate (36) and the vertical cylinder (33); and the vertical rod (35) is fixedly connected to a lifting plate (36) and a spring is fixedly connected between the lifting plate (36) and the vertical cylinder (33); and the vertical rod (35) is fixedly connected to a lifting plate (36) and a lifting plate (36) and a lifting plate (33). The lower end of the U-shaped tube (28) is fixedly connected to a positioning plate (37), and the side walls on the opposite sides of the positioning plate (37) and the limiting plate (32) are fixedly connected to a plurality of ratchet teeth (38) that match each other. The tube wall of the U-shaped tube (28) is fixedly connected to a curved tube (39), and the left and right sides of the curved tube (39) are fixedly connected to a driving tube (40), and a regulating valve (44) is provided in the driving tube (40). The front end of the driving tube (40) passes through the vertical tube (33) and the jack plate (34), and is fixedly connected to a telescopic tube (41). The upper end of the telescopic tube (41) is connected to the lifting plate (36), and the upper end of the telescopic tube (41) is fixedly connected to a thin tube (42), and the upper end of the thin tube (42) extends out of the lifting plate (36). The side wall of the vertical tube (33) is provided with an exhaust hole.

7. The fully automatic biomass fiber textile fabric stacking device according to claim 5, characterized in that: A filter cartridge (43) is inserted into the right end of the air inlet pipe (26), and a filter screen is fixedly connected to the inner wall of the filter cartridge (43).

8. A method for using a fully automatic biomass fiber textile fabric stacking device, which uses the fully automatic biomass fiber textile fabric stacking device according to claim 1, characterized in that: The following steps are involved: S1. When placing the cloth, the operator first connects the lowermost plug-in assembly (12) and the winding assembly (5) together through the limit assembly (30); S2, external air is delivered to the lowermost plug-in assembly (12) and the winding assembly (5) through the air delivery assembly (25), so that the lowermost winding assembly (5) is supported, and a certain amount of cloth can be stacked in the lowermost winding assembly (5). When the cloth is placed on the surface of the lowermost winding assembly (5), the above steps can be repeated to connect the upper plug-in assembly (12) and the winding assembly (5), and the cloth can be placed on the surface of the winding assembly (5); S3. When it is detected that the humidity of the fabric in a region reaches a certain threshold, the air supply component (25) delivers the heated air to the corresponding winding component (5) and releases the hot air to heat and dry the fabric.

Citation Information

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