A flow splitting device and usage method for the production of functional fabrics

By designing a shunt device that includes edge pressing components and hot drying components, and using intermittent compaction and drying technology, the problems of damage caused by high-temperature hot pressing and wrinkles caused by high-temperature hot pressing and flanking are solved, achieving high-quality cutting and shunt effects.

CN116675039BActive Publication Date: 2025-07-22HANGZHOU SINOTYTEX CO LTD
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Patent Information

Application Number
CN202310542844.8
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2023-05-15
Publication Date
2025-07-22
Estimated Expiration
2043-05-15

AI Technical Summary

Technical Problem

In the prior art, functional fabrics are easily damaged by high-temperature hot pressing during cutting and diversion, and traditional edge pressing devices cannot achieve timely recovery of fabric wrinkles.

Method used

A diverting device is designed, including a pressing assembly and a hot drying assembly. By using intermittent compaction and targeted drying, the intermittent compaction and short drying of the fabric is achieved through the combination of the finale and the return spring, to prevent the fabric from being damaged and to restore the wrinkles in a timely manner.

Benefits of technology

The cutting quality is improved to prevent damage to the fabric function, while allowing the fabric wrinkles to be restored in time, improving the overall efficiency and fabric quality of the diversion device.

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Abstract

The present invention discloses a flow splitting device and a usage method for the production of functional fabrics, including a flow splitting and transporting component. A cutting component is arranged on the side of the flow splitting and transporting component, and a edge pressing component is arranged at the feeding end of the flow splitting and transporting component. A drying and ironing component is fixedly installed between the edge pressing components. The flow splitting and transporting component includes transporting side plates. The number of transporting side plates is two and they are symmetrically distributed. The outer side surfaces of the transporting side plates are fixedly connected with flow splitting side plates. A transporting shaft is movably sleeved between the flow splitting side plates and the transporting side plates. A transporting belt is arranged between the transporting side plates, and a flow splitting belt is arranged between the flow splitting side plates. Moving shafts are movably sleeved inside the transporting side plates and the flow splitting side plates respectively. The transporting belt and the flow splitting belt are respectively drivingly sleeved with their moving shafts, and both the transporting belt and the flow splitting belt are drivingly sleeved with the shaft body of the transporting shaft. This device has an advance targeted drying effect at the fabric cutting position, and this device has an intermittent compaction action, which can allow the fabric wrinkles to have time to recover in time.
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Description

Technical Field

[0001] The present invention relates to the technical field of fabric transportation, and more particularly to a flow dividing device and a usage method for the production of functional fabrics. Background Art

[0002] During the processing of functional fabrics, cutting is generally carried out. After cutting and separation, the two parts of the fabric will be divided and then transported to different processing equipment for secondary processing during transportation. Publication No. CN115787278A discloses a textile fabric cutting device. This fabric cutting device uses its first driving component to pull the edge ironing component upward to complete the pressing and ironing of the textile fabric, avoiding the expansion of fabric fibers at the cut, thus avoiding the occurrence of thread shedding and ensuring the quality of the product. However, this cutting device still has the following deficiencies;

[0003] First of all, during the transportation and cutting of the fabric, in order to prevent thread shedding at the cutting incision, a pressing and ironing device is generally used to heat and dry the fabric, so as to facilitate its cutting. However, if a pressing and ironing device with a large pressure is used, it is easy to damage the fabric under high temperature, especially for some functional fabrics, using a pressing and ironing device is likely to have an adverse impact on the functions of the fabric;

[0004] Secondly, before the fabric is divided, transported and cut, traditional equipment uses a hemming device to compact both sides of the fabric. However, traditional hemming devices often perform long-term compaction operations rather than intermittent compaction operations. If there is relative displacement between the fabric and the conveyor belt, the long-term compaction operation is likely to cause the fabric to wrinkle, and because the pressure during the compaction process cannot be restored, that is, the fabric compaction structure in the prior art does not have an intermittent process to allow the wrinkles to be restored in time;

[0005] Therefore, it is necessary to provide a flow dividing device and a usage method for the production of functional fabrics to solve the above problems. Summary of the Invention

[0006] In order to overcome the above-mentioned defects of the prior art, the present invention provides a flow dividing device and a usage method for the production of functional fabrics to solve the problems existing in the above background art.

[0007] The present invention provides the following technical solution: A flow dividing device and a usage method for the production of functional fabrics, including a flow dividing and transporting component, a cutting component is provided on the side of the flow dividing and transporting component, a hemming component is provided at the feeding end of the flow dividing and transporting component, and a drying and ironing component is fixedly installed between the hemming components;

[0008] The shunt transportation component includes transportation side plates. The number of the transportation side plates is two and they are symmetrically distributed. The outer side surfaces of the transportation side plates are fixedly connected with shunt side plates. A transportation shaft is movably sleeved between the shunt side plates and the transportation side plates. A transportation belt is arranged between the transportation side plates, and a shunt belt is arranged between the shunt side plates. Activity shafts are movably sleeved inside the transportation side plates and the shunt side plates respectively. The transportation belt and the shunt belt are respectively drivingly sleeved with their activity shafts, and both the transportation belt and the shunt belt are drivingly sleeved with the shaft body of the transportation shaft. Transportation guards are fixedly installed at the upper ends of the transportation side plates, and shunt guards are fixedly installed at the upper ends of the shunt side plates.

[0009] Further, the outer end of the shaft body of the transportation shaft is fixedly connected with the drive shaft of a transportation motor. The transportation motor is fixedly sleeved with a mounting seat, and the mounting seat is fixedly connected with the outer side surface of the shunt side plate. Support frames evenly distributed are fixedly installed at the bottom ends of the transportation side plates and the shunt side plates. There is a cutting groove between the transportation belt and the shunt belt. The cutting component includes a fixed frame. The fixed frame is fixedly connected with the outer side surface of the transportation side plate. The fixed frame is fixedly sleeved with a cutting motor. The drive shaft of the cutting motor is fixedly connected with a cutting knife. The bottom end of the blade body of the cutting knife is adapted to the cutting groove.

[0010] Further, the edge pressing component includes mounting platforms. The number of the mounting platforms is two and they are respectively fixedly connected with the outer side surfaces of the transportation side plates and the shunt side plates. A compaction motor is fixedly installed at the upper end of the mounting platform. The drive shaft of the compaction motor is fixedly sleeved with a turntable. A pin shaft is fixedly sleeved at the outer circle of the turntable. One end of a connecting rod is movably sleeved with the pin shaft, and the other end of the connecting rod is movably sleeved with a movable part. Sliders are arranged at both ends of the movable part. The movable part is movably installed on a support plate. A chute is formed on the inner side wall surface of the support plate. The slider is movably connected with the chute. The movable part can move up and down in the support plate by this connection method. Fixed shafts are fixedly connected to the upper and lower ends inside the support plate respectively. Buffer springs are fixedly connected between the fixed shafts and the movable part.

[0011] Further, a bearing is fixedly installed on the movable part. A central shaft is movably sleeved between the bearings. Side plates are fixedly sleeved at both ends of the shaft body of the central shaft. Side cylinders are fixedly connected to the inner sides of the side plates. Eight evenly distributed mounting holes are formed on the outer side surfaces of the side cylinders. Side columns are fixedly sleeved at the mounting holes formed on the side cylinders. Pressing shafts are movably sleeved with the side columns. Pressing plates are fixedly connected to the ends of the pressing shafts. Reset springs evenly distributed are fixedly connected between the pressing shafts and the side columns. Sheaths are fixedly connected to the inner ends of the side columns inside the side cylinders. Soft rods are fixedly connected to the pressing shafts, and the soft rods are located inside the sheaths.

[0012] Further, the ironing component includes an intermediate cylinder, which is fixedly installed between the side cylinders on both sides. Eight air cylinders are evenly distributed and fixedly connected to the outer side surface of the intermediate cylinder. A sealed ring is fixedly installed inside the air cylinder. The sealed ring is movably sleeved with a valve rod. The valve rod passes through the wall surface of the intermediate cylinder and is fixedly connected to the end of the soft rod. When the valve rod extends outwards, the sealed ring is opened. When the valve rod retracts inwards, the sealed ring is closed.

[0013] Further, hot air blowers are evenly distributed and fixedly installed on the inner side surface of the side cylinder on the right side. The output end of the hot air blower is fixedly connected to an air duct. The end of the air duct passes through the wall surface of the intermediate cylinder and is interconnected with the inner space of the air cylinder.

[0014] The technical effects and advantages of the present invention:

[0015] 1. The present invention is provided with a hemming component and an ironing component. During the compaction process, the pressing shaft will retract in the side column, so that the return spring inside it is stretched, and it starts to push the soft rod inward, thereby pushing the valve rod connected to its end outwards, so that the sealed ring is opened. The hot air generated by the hot air blower will enter the air cylinder through the air duct and be ejected from its end through the sealed ring. At this time, the hot air ejection position is at the cutting slot at the bottom, so as to achieve the effect of targeted pre-drying at the fabric cutting position. Moreover, the drying position is accurate and the drying process is short, which not only improves the cutting quality but also prevents the fabric function from being damaged due to excessive ironing.

[0016] 2. The present invention is provided with a hemming component and an ironing component. When the equipment works, the compaction motor drives the turntable to rotate. The rotation of the turntable drives the pin shaft and the connecting rod to move, thereby driving the moving part to reciprocate up and down in the support plate. The buffer spring provides a buffering effect. The reciprocating up and down movement of the moving part will synchronously drive the connected side cylinder to reciprocate up and down. When the side cylinder gradually approaches the conveyor belt and the diversion belt at the bottom, the pressing plate will contact both ends of the fabric, so as to achieve the compaction operation of the fabric. When the pressing plate contacts the bottom fabric, the movement of the fabric will also drive the pressing plate and the side cylinder together with the shaft body of the central axis to rotate in the bearing. The rotation period of the compaction motor is set so that the pressing plate moves downwards during the process of gradually contacting the bottom fabric, and moves upwards after reaching the lowest point. Repeating like this can achieve the intermittent compaction action of the pressing plate, so that the fabric wrinkles have time to recover in time. Brief Description of the Drawings

[0017] Figure 1 It is a schematic diagram of the overall structure of the present invention.

[0018] Figure 2 It is a schematic diagram of the structure of the diversion and transportation component of the present invention.

[0019] Figure 3 It is a schematic diagram of the structure of the hemming component of the present invention.

[0020] Figure 4 This is a schematic structural diagram of the bearing part of the present invention.

[0021] Figure 5 This is a schematic sectional structure diagram of the ironing component of the present invention.

[0022] The reference numerals are: 1, shunt transportation component; 101, transportation side plate; 102, shunt side plate; 103, transportation shaft; 104, transportation belt; 105, shunt belt; 106, transportation guard plate; 107, shunt guard plate; 108, transportation motor; 109, mounting seat; 110, support frame; 111, cutting slot; 2, cutting component; 201, fixing frame; 202, cutting motor; 203, cutting knife; 3, edge pressing component; 301, mounting table; 302, compaction motor; 303, turntable; 304, pin shaft; 305, connecting rod; 306, moving part; 307, slider; 308, support plate; 309, sliding groove; 310, fixed shaft; 311, buffer spring; 312, bearing; 313, central shaft; 314, side plate; 315, side cylinder; 316, side column; 317, pressing shaft; 318, pressing plate; 319, reset spring; 320, housing; 321, soft rod; 4, ironing component; 401, intermediate cylinder; 402, air cylinder; 403, sealing ring; 404, valve rod; 405, hot air blower; 406, air duct. Detailed implementation manners

[0023] Next, the technical solutions in the present invention will be clearly and completely described in conjunction with the accompanying drawings in the present invention. In addition, the forms of each structure described in the following embodiments are only examples. A shunt device and a usage method for producing a functional fabric according to the present invention are not limited to the structures described in the following embodiments. All other embodiments obtained by those of ordinary skill in the art without creative efforts belong to the scope of protection of the present invention.

[0024] Referring to Figure 1 , the present invention provides a shunt device and a usage method for producing a functional fabric, including a shunt transportation component 1. A cutting component 2 is provided on the side of the shunt transportation component 1. A edge pressing component 3 is provided at the feeding end of the shunt transportation component 1. An ironing component 4 is fixedly installed between the edge pressing components 3;

[0025] In this embodiment, the shunt transportation component 1 is used for transporting and shunting the fabric. The cutting component 2 is used for cutting the fabric before shunting. The edge pressing component 3 and the ironing component 4 cooperate with each other to achieve the effect of compacting both sides of the fabric before cutting and the targeted drying effect on the cutting position.

[0026] Referring to Figure 2, the shunt transportation component 1 includes transportation side plates 101. The number of transportation side plates 101 is two and they are symmetrically distributed. The outer side surface of the transportation side plates 101 is fixedly connected with shunt side plates 102. A transportation shaft 103 is movably sleeved between the shunt side plates 102 and the transportation side plates 101. A transportation belt 104 is arranged between the transportation side plates 101, and a shunt belt 105 is arranged between the shunt side plates 102. Moving shafts are movably sleeved inside both the transportation side plates 101 and the shunt side plates 102. The transportation belt 104 and the shunt belt 105 are respectively drivingly sleeved with their moving shafts, and both the transportation belt 104 and the shunt belt 105 are drivingly sleeved with the shaft body of the transportation shaft 103. The upper ends of the transportation side plates 101 are fixedly installed with transportation guard plates 106, and the upper ends of the shunt side plates 102 are fixedly installed with shunt guard plates 107. The outer end of the shaft body of the transportation shaft 103 is fixedly connected with the drive shaft of a transportation motor 108. The transportation motor 108 is fixedly sleeved with a mounting seat 109, and the mounting seat 109 is fixedly connected with the outer side surface of the shunt side plate 102. The bottom ends of both the transportation side plates 101 and the shunt side plates 102 are fixedly installed with uniformly distributed support frames 110. There is a cutting slot 111 between the transportation belt 104 and the shunt belt 105. The cutting component 2 includes a fixed frame 201. The fixed frame 201 is fixedly connected with the outer side surface of the transportation side plate 101. The fixed frame 201 is fixedly sleeved with a cutting motor 202. The drive shaft of the cutting motor 202 is fixedly connected with a cutting knife 203. The bottom end of the blade body of the cutting knife 203 is adapted to the cutting slot 111;

[0027] In this embodiment, the fabric first enters at the feeding ends of the transportation belt 104 and the shunt belt 105. Driven by the transportation motor 108, the transportation belt 104 and the shunt belt 105 are driven to operate, thereby driving the transportation of the fabric. The cutting motor 202 drives the cutting knife 203 to rotate in the cutting slot 111, so that the fabric is continuously cut. After being cut, the separated fabric is transported on the transportation belt 104 for a part and on the shunt belt 105 for another part, thus achieving the shunt effect of the fabric. The working principles and effects of the above components are conventional technical means used by those skilled in the art, so no specific description is made in this embodiment.

[0028] Refer to Figures 3 - 5, the edge pressing assembly 3 includes a mounting table 301. The number of mounting tables 301 is two and they are respectively fixedly connected to the outer side surfaces of the transportation side plate 101 and the shunt side plate 102. A compaction motor 302 is fixedly installed at the upper end of the mounting table 301. A turntable 303 is fixedly sleeved on the drive shaft of the compaction motor 302. A pin shaft 304 is fixedly sleeved on the outer circle of the turntable 303. One end of a connecting rod 305 is movably sleeved on the pin shaft 304. The other end of the connecting rod 305 is movably sleeved on a movable member 306. Sliders 307 are provided at both ends of the movable member 306. The movable member 306 is movably installed on a support plate 308. A chute 309 is formed on the inner side wall surface of the support plate 308. The slider 307 is movably connected to the chute 309. The movable member 306 can move up and down in the support plate 308 by this connection method. Fixed shafts 310 are fixedly connected to both the upper and lower ends inside the support plate 308. Buffer springs 311 are fixedly connected between the fixed shafts 310 and the movable member 306. A bearing 312 is fixedly installed on the movable member 306. A central shaft 313 is movably sleeved between the bearings 312. Side plates 314 are fixedly sleeved at both ends of the shaft body of the central shaft 313. Side cylinders 315 are fixedly connected to the inner sides of the side plates 314. Eight uniformly distributed mounting holes are formed on the outer side surfaces of the side cylinders 315. Edge columns 316 are fixedly sleeved at the mounting holes formed on the side cylinders 315. A pressing shaft 317 is movably sleeved on the edge column 316. Pressing plates 318 are fixedly connected to the ends of the pressing shafts 317. Return springs 319 are fixedly connected between the pressing shafts 317 and the edge columns 316 in a uniformly distributed manner. Sleeve shells 320 are fixedly connected to the inner ends of the edge columns 316 inside the side cylinders 315. Soft rods 321 are fixedly connected to the pressing shafts 317. The soft rods 321 are located inside the sleeve shells 320. The ironing and drying assembly 4 includes an intermediate cylinder 401. The intermediate cylinder 401 is fixedly installed between the two side cylinders 315 on both sides. Eight uniformly distributed air cylinders 402 are fixedly connected to the outer side surface of the intermediate cylinder 401. An airtight ring 403 is fixedly installed inside the air cylinder 402. A valve rod 404 is movably sleeved on the airtight ring 403. The valve rod 404 passes through the wall surface of the intermediate cylinder 401 and is fixedly connected to the end of the soft rod 321. When the valve rod 404 extends outwards, the airtight ring 403 is opened. When the valve rod 404 retracts inwards, the airtight ring 403 is closed. Hot air blowers 405 are fixedly installed on the inner side surface of the side cylinder 315 on the right side in a uniformly distributed manner. The output end of the hot air blower 405 is fixedly connected to an air duct 406. The end of the tube body of the air duct 406 passes through the wall surface of the intermediate cylinder 401 and is connected to the internal space of the air cylinder 402;

[0029] In this embodiment, the compaction motor 302 drives the turntable 303 to rotate. The rotation of the turntable 303 drives the pin shaft 304 and the connecting rod 305 to move, thereby driving the movable member 306 to reciprocate up and down in the support plate 308. The buffer spring 311 provides a buffering effect. The reciprocating up and down movement of the movable member 306 will synchronously drive the connected side cylinder 315 to reciprocate up and down. When the side cylinder 315 gradually approaches the bottom conveyor belt 104 and the shunt belt 105, the pressing plate 318 will come into contact with both ends of the fabric, thereby realizing the compaction operation of the fabric. During the compaction process, the pressure shaft 317 will retract in the side column 316, thereby stretching the return spring 319 inside it, and start to push the soft rod 321 inward, thereby pushing out the valve stem 404 connected to its end outward, so that the sealing ring 403 is opened. The hot air generated by the hot air blower 405 will enter the air cylinder 402 through the air duct 406 and be ejected from its end through the sealing ring 403. At this time, the hot air ejection position is at the bottom cutting groove 111, thereby realizing the targeted pre-drying effect at the fabric cutting position. Moreover, the drying position is accurate and the drying process is short, which not only improves its cutting quality but also prevents the fabric function from being damaged due to excessive pressing and ironing. When the pressing plate 318 comes into contact with the bottom fabric, the movement of the fabric will also drive the pressing plate 318, the side cylinder 315 and the shaft body of the central shaft 313 to rotate in the bearing 312. The rotation period of the compaction motor 302 is set so that the pressing plate 318 moves downward during the process of gradually contacting the bottom fabric, and moves upward after the pressing plate 318 reaches the lowest point. Repeating like this can realize the intermittent compaction action of the pressing plate 318, so that the fabric wrinkles have time to recover in time. When the pressing plate 318 is not in contact with the fabric, the return spring 319 rebounds to reset it, thereby pulling the soft rod 321 and driving the valve stem 404 to reset, so that the sealing ring 403 is closed, thereby stopping the hot air from blowing and realizing its intermittent drying effect.

[0030] Working principle and beneficial effects of the present invention: When the device works, the compaction motor 302 drives the turntable 303 to rotate. The rotation of the turntable 303 drives the pin shaft 304 and the connecting rod 305 to move, thereby driving the movable part 306 to reciprocate up and down in the support plate 308. The buffer spring 311 provides a buffering effect. The reciprocating up and down movement of the movable part 306 will synchronously drive the connected side cylinder 315 to reciprocate up and down. When the side cylinder 315 gradually approaches the bottom conveyor belt 104 and the diversion belt 105, the pressing plate 318 will come into contact with both ends of the fabric, thereby realizing the compaction operation of the fabric. During the compaction process, the pressing shaft 317 will retract in the side column 316, thereby stretching the reset spring 319 inside it and starting to push the soft rod 321 inward, thereby pushing out the valve rod 404 connected to its end outward, so that the sealing ring 403 is opened. The hot air generated by the hot air blower 405 will enter the air cylinder 402 through the air duct 406 and be ejected from its end through the sealing ring 403. At this time, the hot air ejection position is at the bottom cutting slot 111, thereby realizing the targeted pre-drying effect at the fabric cutting position. Moreover, the drying position is accurate and the drying process is short, which not only improves the cutting quality but also prevents the fabric function from being damaged due to excessive pressing and ironing. When the pressing plate 318 comes into contact with the bottom fabric, the movement of the fabric will also drive the pressing plate 318, the side cylinder 315 and the shaft body of the central shaft 313 to rotate in the bearing 312. The rotation period of the compaction motor 302 is set so that the pressing plate 318 moves downward during the process of gradually contacting the bottom fabric, moves upward after the pressing plate 318 reaches the lowest point, and so on, which can realize the intermittent compaction action of the pressing plate 318, so that the fabric wrinkles have time to recover in time. When the pressing plate 318 is not in contact with the fabric, the reset spring 319 rebounds to reset, thereby pulling the soft rod 321 and driving the valve rod 404 to reset, so that the sealing ring 403 is closed, so that the hot air stops blowing, realizing its intermittent drying effect.

[0031] Finally: The above are only the preferred embodiments of the present invention and are not used 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 flow splitting device for the production of functional fabrics, characterized in that, It includes a shunt transportation component (1), a cutting component (2) is arranged on the side of the shunt transportation component (1), a hemming component (3) is arranged at the feeding end of the shunt transportation component (1), and an ironing component (4) is fixedly installed between the hemming components (3); The shunt transportation component (1) includes transportation side plates (101), the number of the transportation side plates (101) is two and they are symmetrically distributed, a shunt side plate (102) is fixedly connected to the outer side surface of the transportation side plate (101), a transportation shaft (103) is movably sleeved between the shunt side plate (102) and the transportation side plate (101), a transportation belt (104) is arranged between the transportation side plates (101), a shunt belt (105) is arranged between the shunt side plates (102), movable shafts are movably sleeved inside the transportation side plate (101) and the shunt side plate (102), the transportation belt (104) and the shunt belt (105) are respectively drivingly sleeved with their movable shafts, the transportation belt (104) and the shunt belt (105) are both drivingly sleeved with the shaft body of the transportation shaft (103), transportation guards (106) are fixedly installed at the upper ends of the transportation side plates (101), and shunt guards (107) are fixedly installed at the upper ends of the shunt side plates (102); The blank holder assembly (3) includes a mounting table (301). The number of the mounting tables (301) is two, and they are respectively fixedly connected to the outer side surfaces of the transportation side plates (101) and the shunt side plates (102). A compaction motor (302) is fixedly installed at the upper end of the mounting table (301). A turntable (303) is fixedly sleeved on the driving shaft of the compaction motor (302). A pin shaft (304) is fixedly sleeved on the outer ring of the turntable (303). One end of the pin shaft (304) is movably sleeved in a connecting rod (305). The other end of the connecting rod (305) is movably sleeved with a movable part (306). Sliders (307) are provided at both ends of the movable part (306). The movable part (306) is movably installed in a support plate (308). A chute (309) is formed on the inner side wall surface of the support plate (308). The slider (307) is movably connected to the chute (309). The movable part (306) can move up and down in the support plate (308). Fixed shafts (310) are fixedly connected to the upper and lower ends inside the support plate (308). Buffer springs (311) are fixedly connected between the fixed shafts (310) and the movable part (306). A bearing (312) is fixedly installed on the movable part (306). A central shaft (313) is movably sleeved between the bearings (312). Side plates (314) are fixedly sleeved at both ends of the shaft body of the central shaft (313). Side cylinders (315) are fixedly connected to the inner sides of the side plates (314). Eight uniformly distributed mounting holes are formed on the outer side surfaces of the side cylinders (315). Side columns (316) are fixedly sleeved at the mounting holes formed on the side cylinders (315). A pressing shaft (317) is movably sleeved on the side column (316). Pressure plates (318) are fixedly connected to the ends of the pressing shafts (317). Return springs (319) are fixedly connected between the pressing shafts (317) and the side columns (316) in a uniformly distributed manner. Sleeve shells (320) are fixedly connected to the inner ends of the side columns (316) inside the side cylinders (315). Soft rods (321) are fixedly connected to the pressing shafts (317). The soft rods (321) are located inside the sleeve shells (320); The ironing and drying assembly (4) includes an intermediate cylinder (401). The intermediate cylinder (401) is fixedly installed between the two side cylinders (315) on both sides. Eight uniformly distributed air cylinders (402) are fixedly connected to the outer side surface of the intermediate cylinder (401). An airtight ring (403) is fixedly installed inside the air cylinder (402). A valve rod (404) is movably sleeved on the airtight ring (403). The valve rod (404) passes through the wall surface of the intermediate cylinder (401) and is fixedly connected to the end of the soft rod (321). When the valve rod (404) extends outwards, the airtight ring (403) is opened. When the valve rod (404) retracts inwards, the airtight ring (403) is closed; The outer end of the shaft body of the transport shaft (103) is fixedly connected to the drive shaft of the transport motor (108). The transport motor (108) is fixedly sleeved with a mounting seat (109), and the mounting seat (109) is fixedly connected to the outer side surface of the shunt side plate (102). The transport side plate (101) and the bottom end of the shunt side plate (102) are both fixedly installed with uniformly distributed support frames (110). There is a cutting slot (111) between the transport belt (104) and the shunt belt (105). The cutting assembly (2) includes a fixed frame (201), and the fixed frame (201) is fixedly connected to the outer side surface of the transport side plate (101). The fixed frame (201) is fixedly sleeved with a cutting motor (202), and the drive shaft of the cutting motor (202) is fixedly connected to a cutting knife (203). The bottom end of the blade body of the cutting knife (203) is adapted to the cutting slot (111). On the inner side surface of the right individual, the side cylinder (315) is fixedly installed with uniformly distributed hot air blowers (405). The output end of the hot air blower (405) is fixedly connected to an air duct (406), and the end of the air duct (406) passes through the wall surface of the intermediate cylinder (401) and is connected to the internal space of the air cylinder (402); The implementation method of the shunt device for the production of functional fabrics includes the following steps: S1. The compaction motor (302) drives the turntable (303) to rotate. The rotation of the turntable (303) drives the pin shaft (304) and the connecting rod (305) to move, thereby driving the movable part (306) to reciprocate up and down in the support plate (308). The buffer spring (311) provides a buffering effect. The reciprocating up and down movement of the movable part (306) will synchronously drive the connected side cylinder (315) to reciprocate up and down; S2. When the side cylinder (315) gradually approaches the transport belt (104) and the shunt belt (105) at the bottom, the pressing plate (318) will come into contact with both ends of the fabric, thereby realizing the compaction operation of the fabric. During the compaction process, the pressing shaft (317) will retract in the side column (316), thereby stretching the reset spring (319) inside it, and start to push the soft rod (321) inward, thereby pushing the valve rod (404) connected to its end outward, so that the sealing ring (403) is opened. The hot air generated by the hot air blower (405) will enter the air cylinder (402) through the air duct (406) and be ejected from its end through the sealing ring (403); S3. At this time, the position where the hot air is ejected is at the cutting slot (111) at the bottom, thereby realizing the targeted pre-drying of the fabric cutting position. When the pressing plate (318) comes into contact with the bottom fabric, the movement of the fabric will also drive the pressing plate (318) and the side cylinder (315) together with the shaft body of the central shaft (313) to rotate in the bearing (312); S4. Set the rotation period of the compaction motor (302) so that the pressure plate (318) moves downward during the process of gradually contacting the bottom fabric, and then moves upward after the pressure plate (318) reaches the lowest point. Repeating this way can achieve the intermittent compaction action of the pressure plate (318), so that the fabric wrinkles have time to recover in time. When the pressure plate (318) is not in contact with the fabric, the return spring (319) rebounds to reset it, thereby pulling the soft rod (321) and driving the valve stem (404) to reset, so that the sealing ring (403) closes.

Citation Information

Patent Citations

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    CN115787278A

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