Weaving device and weaving method of moisture-absorbing and quick-drying fabric

By setting up a rolling cloth assembly and a stabilizing mechanism in the weaving device, the clamping sleeve presses against the cutting end of the rolling roller, and fixing the fabric with the clamping mechanism, the problem of untidy fabric rolling and untidy cutting is solved, and efficient and neat fabric rolling and cutting effects are achieved.

CN120401103APending Publication Date: 2025-08-01HANGZHOU FUYANG FULONG KNITTING CO LTD
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Patent Information

Application Number
CN202510703460.9
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-05-29
Publication Date
2025-08-01

AI Technical Summary

Technical Problem

During the fabric rolling process of existing weaving devices, the centrifugal force of the two sets of folding rollers causes the fabric to be untidy, and it is easy to cause shaking and untidy cross-sections during cutting.

Method used

A rolling mechanism containing two sets of rolling components is adopted, combining a stabilizing mechanism and a clamping mechanism, and the clamping sleeve is used to support the cut end of the rolling roller to ensure winding stability, and is divided from the middle of the fabric during cutting. The clamping mechanism is used to fix the fabric to reduce shaking.

Benefits of technology

The fabric rolling is made more neat and the cutting surface is flattering, which improves the efficiency and neatness of fabric rolling.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention discloses a weaving device and a weaving method for moisture-absorbing and quick-drying fabric, and relates to the field of application of weaving device.The weaving device comprises a bearing frame and multiple sets of cloth guide rollers, a cloth rolling mechanism is arranged on one side of the bearing frame and comprises a rotating arm rotationally connected to one side of the bearing frame, and one end of the rotating arm is connected with a rotating driving device; the side face of the rotating arm is rotationally connected with a cloth rolling assembly, the cloth rolling assembly comprises two sets of rolling rollers, and a stabilizing mechanism is arranged on one side of the bearing frame and used for stabilizing the two sets of rolling rollers. The cloth rolling mechanism comprising the two cloth rolling assemblies is arranged, fabric rolling and fabric discharging can be conducted synchronously, and therefore the work efficiency of cloth rolling is improved, meanwhile, the stabilizing mechanism is arranged on one side of the cloth rolling mechanism, a stabilizing assembly of the stabilizing mechanism comprises two clamping sleeves matched with a rolling roller, and therefore the stability of the cloth rolling mechanism is improved. The clamping sleeve is used for abutting against the discharging end of the winding roller, the rotation stability of the cloth winding assembly can be improved, and therefore the fabric can be wound more orderly.
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Description

Technical Field

[0001] The present invention relates to the application field of weaving devices, and specifically to a weaving device for moisture-absorbing and quick-drying fabrics and its weaving method. Background Art

[0002] Weaving devices are mechanical equipment used in the textile industry for fabric production. They mainly manufacture different types of fabrics by interweaving warp yarns and weft yarns. According to different functions and working methods, there are various types of weaving devices. Common weaving devices include: shuttle looms, air-jet looms, water-jet looms, double shuttle looms, and shuttleless looms.

[0003] Most moisture-absorbing and quick-drying fabrics are made of synthetic fibers such as polyester and nylon, and air-jet looms or rapier looms are used as the mainstream processing equipment. Taking the air-jet loom as an example: An air-jet loom is a loom that uses the power of air jet to drive the weft yarn through the warp yarn to form a fabric. It belongs to the shuttleless weaving method. The air-jet loom uses high-speed air flow to replace the traditional shuttle, and pushes the weft yarn through the warp yarn through air pressure, thus weaving a flat and efficient fabric. It has higher production efficiency compared to traditional shuttle looms and is suitable for large-scale production, especially having advantages when weaving high-density, flat, and smooth fabrics.

[0004] Regardless of the type of loom, after the fabric is woven, automatic fabric winding will be carried out, which is simply called a cloth winder. The cloth winder includes a winding type and a folding type. The winding type winds the fabric into a "cylindrical" fabric roll, while the folding cloth winder is mainly used to fold and wind the fabric into a neat "flat shape". The fabric is transported from the loom to the folding cloth winder through a conveying system. First, the fabric passes through a set of guide rollers to ensure that the fabric is flat and free of wrinkles and is evenly guided into the folding part. The key part of the folding cloth winder is its folding system. The folding system usually consists of two sets of folding rollers and a guiding device. When the fabric enters between the two sets of folding rollers, the two sets of folding rollers rotate synchronously to actively wind the fabric, so that the fabric is wound into a "flat shape" around the two sets of folding rollers. Then, the fabric is cut quantitatively according to the coiled length, and then the staff can remove the fabric on the folding rollers.

[0005] When the folding cloth winder is in use, one end of its two sets of folding rollers is commonly installed on a set of driving arms. Rotating the driving arms can drive the two sets of folding rollers to rotate and wind the fabric at the same time, while the other ends of the two sets of folding rollers are not provided with anything, so that it is convenient for the staff to extract the wound fabric from the other end of the folding rollers. The folding rollers usually have a certain length. When the two sets of folding rollers rotate to wind the fabric, due to the lack of any limiting device at the discharging end of the folding rollers and the centrifugal force during the rotation of the two sets of folding rollers, the winding tensions at both ends of the fabric are different when the fabric is wound around the folding rollers, resulting in the fabric not being wound neatly enough. Summary of the Invention

[0006] Based on this, the purpose of the present invention is to provide a weaving device and a weaving method for moisture-absorbing and quick-drying fabrics to solve the technical problems mentioned in the above background.

[0007] To achieve the above object, the present invention provides the following technical solution: A weaving device for moisture-absorbing and quick-drying fabrics includes a carrier and multiple groups of fabric guide rollers. A fabric winding mechanism is arranged on one side of the carrier. The fabric winding mechanism includes a rotating arm rotatably connected to one side of the carrier. One end of the rotating arm is connected to a rotating driving device. A fabric winding component is rotatably connected to the side surface of the rotating arm. The fabric winding component includes two winding rollers. A stabilizing mechanism is arranged on one side of the carrier. The stabilizing mechanism includes a first fixing frame installed on one side of the carrier. A first limiting rod is movably arranged at the bottom of the first fixing frame. One end of the first limiting rod is provided with a second fixing frame. A lead screw is arranged on one side of the second fixing frame. A threaded sleeve is rotatably connected to the top of the first fixing frame. A gear is installed on the outer part of the threaded sleeve. The threaded sleeve is in threaded connection with the lead screw. A transmission shaft is rotatably connected to the inside of the second fixing frame. One end of the transmission shaft is provided with a stabilizing component. The stabilizing component includes two clamping sleeves matching the winding rollers. The stabilizing mechanism further includes a first driving device installed on the side surface of the carrier. The output end of the first driving device is provided with a square rod. The square rod and the transmission shaft are movably penetrated through.

[0008] By adopting the above technical solution, by setting a fabric winding mechanism including two fabric winding components, the fabric winding and the fabric feeding can be carried out synchronously, thereby improving the working efficiency of fabric winding. At the same time, a stabilizing mechanism is arranged on one side of the fabric winding mechanism. The stabilizing component of the stabilizing mechanism includes two clamping sleeves matching the winding rollers. By using the clamping sleeves to hold the feeding end of the winding roller, the rotation stability of the fabric winding component can be improved, so that the fabric winding is more neat.

[0009] The present invention is further set as follows: Two clamping mechanisms are symmetrically arranged on one side of the carrier. A cutting mechanism is arranged on the side surface of one of the clamping mechanisms. Telescopic components are installed on both sides of the carrier. Guide plates for separating the two clamping mechanisms are installed at the bottoms of the telescopic components. A rack is arranged at the bottom of one of the guide plates. The rack and the gear are meshed with each other.

[0010] Preferably, by setting two clamping mechanisms, the local part of the fabric can be clamped and fixed during fabric segmentation, and the cutting mechanism can be set to segment the fabric.

[0011] The present invention is further set as follows: The fabric winding component includes a first installation shell. A first guide rod is arranged inside the first installation shell. A first forward and reverse threaded rod is rotatably connected to the inside of the first installation shell. Two first moving seats are threadedly connected to the outer part of the first forward and reverse threaded rod. The two first moving seats are symmetrically distributed. Both of the two first moving seats are movably penetrated through the first guide rod. Winding rollers are arranged on the side surfaces of the two first moving seats.

[0012] Preferably, by setting a fabric winding assembly with adjustable distance, folded fabrics of different sizes can be wound, and a scale ruler is provided on the outer part of the first mounting shell, so as to facilitate the staff to finely adjust the distance between the two winding rollers.

[0013] The present invention is further configured such that there are two sets of fabric winding assemblies, and the two sets of fabric winding assemblies are symmetrically arranged on the side surfaces of the rotating arms. Both the two sets of fabric winding assemblies and the rotating arms are rotatably installed through damping rotating shafts.

[0014] Preferably, by setting the two sets of fabric winding assemblies to be used alternately, the winding and discharging of the fabric can be carried out synchronously, improving the working efficiency.

[0015] The present invention is further configured such that the stabilizing assembly includes a second mounting shell connected to the transmission shaft. A second guide rod is arranged inside the second mounting shell. A second left - right threaded rod is rotatably connected inside the second mounting shell. Two second moving seats are threadedly connected to the outer part of the second left - right threaded rod. The two second moving seats are symmetrically distributed. Both the two second moving seats are movably penetrated by the second guide rod. A second limiting rod is movably penetrated inside both the two second moving seats. A first spring is sleeved on the outer part of the second limiting rod. A clamping sleeve is installed at the top of the second limiting rod. The port of the clamping sleeve is provided with a conical guiding surface.

[0016] Preferably, by setting the stabilizing assembly, the discharging end of the winding roller can be sleeved and clamped, which is used to improve the stability of the winding roller during rotation, so that the fabric is wound more neatly.

[0017] The present invention is further configured such that the clamping mechanism includes a mounting plate. A plurality of third limiting rods are arranged on the side surface of the mounting plate. Second springs are sleeved on the outer parts of the plurality of third limiting rods. Two movable frames are movably installed on the outer parts of the plurality of third limiting rods. Two clamping rollers are rotatably connected between the two movable frames. Guide wheels are rotatably connected to the side surfaces of the two movable frames.

[0018] Preferably, by setting the clamping mechanism, a part of the fabric can be clamped and fixed, reducing the shaking during fabric cutting and improving the neatness of the fabric cutting section.

[0019] The present invention is further configured such that the cutting mechanism includes a third left - right threaded rod installed on the side surface of a set of clamping mechanisms. The third left - right threaded rod is rotatably connected to the outer wall of the mounting plate of this set of clamping mechanisms. One end of the third left - right threaded rod is connected to a second driving device. A cutting assembly is threadedly connected to the outer part of the third left - right threaded rod. The cutting assembly extends between the two sets of clamping mechanisms.

[0020] Preferably, by setting the cutting assembly, the fabric can be cut, and the cutting assembly is distributed between the two clamping rollers of a set of clamping mechanisms.

[0021] The present invention is further configured such that the cutting assembly includes a mounting seat, a fourth limit rod is provided inside the mounting seat for movement through the mounting seat, a limit block is provided outside the fourth limit rod, a groove matching the limit block is provided inside the mounting seat, a third spring is provided outside the fourth limit rod, a cutting knife is installed at one end of the fourth limit rod, and an electromagnetic adsorption device is provided on one side of the mounting seat.

[0022] Preferably, an electromagnetic adsorption device is provided to pull the movement of the fourth limiting rod, thereby achieving the purpose of pulling the cutting knife to move. The electromagnetic adsorption device is an electromagnet adsorption component.

[0023] The present invention is further configured such that two groups of cutting assemblies are symmetrically arranged, and the mounting seats of the two groups of cutting assemblies and the mounting plates of the clamping mechanisms are movably mounted by arranging slide rail assemblies.

[0024] Preferably, two sets of symmetrical cutting components are provided to move from the middle of the fabric to both sides to split it. Compared with splitting from both sides, splitting from the middle of the fabric is more stable and the fabric is less likely to deform and cause uneven cross-section.

[0025] A weaving device and method for a moisture-absorbing and quick-drying fabric, the process comprising the following steps: S1: Taking an air jet loom as an example, first the warp and weft yarns are prepared. Then the warp and weft supply system feeds the warp and weft yarns into the loom. The nozzle uses the pressure and speed of the air flow to quickly blow the weft yarn between the warp yarns. After the weft yarn is inserted, the loom tightens the weft yarn and adjusts the fabric density and tension. S2: Next, the woven quick-drying fabric is transported by the conveying system and the guide rollers to the space between the two clamping mechanisms. The telescopic assembly is activated to push the guide plate for height adjustment, so that the guide plate is located between the guide wheels of the two clamping mechanisms, ensuring that the two clamping mechanisms are in a separated state. During the height adjustment, one guide plate is rotated by the rack-driven gear, so that the two clamping sleeves are pressed against the two winding rollers. S3: Next, the first driving device is started to drive the stabilizing component to rotate, and the stabilizing component drives the cloth winding component to rotate, so that the two sets of winding rollers rotate to wind the fabric. When the fabric folding and winding is completed, the telescopic component is started to raise the two sets of clamping mechanisms, so that the two sets of clamping mechanisms clamp the fabric, and then the two sets of electromagnetic adsorption devices are closed. The cutting knife penetrates the fabric under the reset action of the third spring, and the second driving device is started to drive the two sets of cutting components away from each other, so that the two sets of cutting knives cut the fabric.

[0026] In summary, the present invention mainly has the following beneficial effects: 1. The present invention can realize the synchronous winding and unloading of fabric by providing a cloth winding mechanism including two sets of cloth winding components, thereby improving the working efficiency of cloth winding. At the same time, a stabilizing mechanism is provided on one side of the cloth winding mechanism. The stabilizing component of the stabilizing mechanism includes two sets of clamping sleeves matching the winding roller. The clamping sleeve is used to support the unloading end of the winding roller, which can improve the rotation stability of the cloth winding component, thereby making the fabric winding more neat.

[0027] 2. The present invention can clamp and fix the fabric when cutting by setting up two sets of clamping mechanisms, so that the fabric cutting is smoother. Compared with the traditional method of cutting the fabric on one side, the present application adopts the method of cutting it from the middle of the fabric, and at the same time cooperates with the clamping mechanism to clamp and fix the fabric locally, so that the cut surface of the fabric is more neat. When the fabric is rolled up and needs to be cut, the cutting knives of the two sets of cutting components lose the electromagnetic adsorption effect. Under the reset action of the spring, the two sets of cutting knives penetrate the fabric, and then the two sets of cutting knives separate from the middle of the fabric to both sides to complete the cutting of the fabric. BRIEF DESCRIPTION OF THE DRAWINGS

[0028] Figure 1 It is a schematic diagram of the overall structure of the present invention; Figure 2 Schematic diagram of the cloth rolling mechanism structure of the present invention; Figure 3 This is a schematic structural diagram of the cloth rolling assembly of the present invention; Figure 4 It is a schematic structural diagram of the stabilizing mechanism of the present invention; Figure 5 This is a schematic diagram of the structure of the stabilizing assembly of the present invention; Figure 6 This is a schematic diagram of the installation of the second movable seat, the second limiting rod, the first spring and the clamping sleeve of the present invention; Figure 7 This is a schematic diagram of the distribution of the telescopic assembly, guide plate and rack of the present invention; Figure 8 This is a schematic diagram of the distribution of the clamping mechanism and the cutting mechanism of the present invention; Figure 9 It is a schematic structural diagram of the clamping mechanism of the present invention; Figure 10 It is a schematic structural diagram of the cutting assembly of the present invention.

[0029] Description of reference numerals: 1. Carrier frame; 2. Fabric guiding roller; 3. Fabric winding mechanism; 31. Rotating arm; 32. Fabric winding assembly; 321. First mounting shell; 322. First guiding rod; 323. First left - right threaded rod; 324. First moving seat; 325. Winding roller; 4. Stabilizing mechanism; 41. First fixing frame; 42. Second fixing frame; 43. First limiting rod; 44. Lead screw; 45. Threaded sleeve; 46. Gear; 47. Transmission shaft; 48. Stabilizing assembly; 481. Second mounting shell; 482. Second guiding rod; 483. Second left - right threaded rod; 484. Second moving seat; 485. Second limiting rod; 486. First spring; 487. Clamping sleeve; 49. First driving device; 410. Square rod; 5. Clamping mechanism; 51. Mounting plate; 52. Third limiting rod; 53. Second spring; 54. Movable frame; 55. Guide wheel; 56. Clamping roller; 6. Cutting mechanism; 61. Third left - right threaded rod; 62. Second driving device; 63. Cutting assembly; 631. Mounting seat; 632. Fourth limiting rod; 633. Limiting block; 634. Third spring; 635. Cutting knife; 636. Electromagnetic adsorption device; 64. Slide rail assembly; 7. Telescopic assembly; 8. Guide plate; 9. Rack. Detailed implementation manners

[0030] The technical solutions in the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings in the embodiments of the present invention. The embodiments described below by referring to the drawings are exemplary and are only used to explain the present invention and should not be construed as a limitation to the present invention.

[0031] The embodiments of the present invention will be described below according to its overall structure.

[0032] Please refer to Figures 1-10, A weaving device for a moisture-absorbing and quick-drying fabric, comprising a carrier frame 1 and multiple groups of fabric guide rollers 2. A fabric winding mechanism 3 is arranged on one side of the carrier frame 1. The fabric winding mechanism 3 includes a rotating arm 31 rotatably connected to one side of the carrier frame 1. One end of the rotating arm 31 is connected with a rotation driving device, which is used to drive the rotating arm 31 to rotate 180° each time. A fabric winding component 32 is rotatably connected to the side surface of the rotating arm 31. The fabric winding component 32 includes two winding rollers 325, and the winding rollers 325 are used for winding and collecting the fabric. A stabilizing mechanism 4 is arranged on one side of the carrier frame 1, and the stabilizing mechanism 4 is used to sleeved on the discharging end of the stabilizing winding roller 325. The stabilizing mechanism 4 includes a first fixing frame 41 installed on one side of the carrier frame 1. A first limiting rod 43 is movably arranged at the bottom of the first fixing frame 41. One end of the first limiting rod 43 is provided with a second fixing frame 42. A lead screw 44 is arranged on one side of the second fixing frame 42. A threaded sleeve 45 is rotatably connected to the top of the first fixing frame 41. A gear 46 is installed on the outside of the threaded sleeve 45. The threaded sleeve 45 is threadedly connected with the lead screw 44. A transmission shaft 47 is rotatably connected inside the second fixing frame 42. One end of the transmission shaft 47 is provided with a stabilizing component 48. The stabilizing component 48 includes two clamping sleeves 487 that match the winding roller 325. The clamping sleeves 487 can hold against the winding roller 325 to make it more stable when the winding roller 325 rotates. The stabilizing mechanism 4 further includes a first driving device 49 installed on the side surface of the carrier frame 1. The output end of the first driving device 49 is provided with a square rod 410, and the square rod 410 and the transmission shaft 47 are movably penetrated through.

[0033] In the above embodiment, specifically, please refer to again Figure 1 , Two clamping mechanisms 5 are symmetrically arranged on one side of the carrier frame 1. A cutting mechanism 6 is arranged on the side surface of one of the clamping mechanisms 5. Telescopic components 7 are installed on both sides of the carrier frame 1. Guide plates 8 for separating the two clamping mechanisms 5 are installed at the bottoms of the telescopic components 7. A rack 9 is arranged at the bottom of one of the guide plates 8, and the rack 9 meshes with the gear 46. By arranging the two clamping mechanisms 5, when the fabric is divided, the local part of the fabric can be clamped and fixed, and the cutting mechanism 6 can divide the fabric.

[0034] In the above embodiment, specifically, please refer to again Figure 2 and Figure 3, the cloth winding assembly 32 includes a first mounting shell 321. Inside the first mounting shell 321, there is a first guide rod 322. A first left - right threaded rod 323 is rotatably connected inside the first mounting shell 321. Two first moving seats 324 are threadedly connected to the outside of the first left - right threaded rod 323. The two first moving seats 324 are symmetrically distributed. Both of the two first moving seats 324 are movably penetrated by the first guide rod 322. Winding rollers 325 are arranged on the sides of the two first moving seats 324. By setting the cloth winding assembly 32 with adjustable distance, folded cloth of different sizes can be wound. And a scale ruler is provided on the outside of the first mounting shell 321 to facilitate the staff to finely adjust the distance between the two winding rollers 325.

[0035] In the above - mentioned embodiment, specifically, referring to the figure again, two cloth winding assemblies 32 are provided. The two cloth winding assemblies 32 are symmetrically arranged on the sides of the rotating arm 31. Both of the two cloth winding assemblies 32 and the rotating arm 31 are rotatably installed through damping rotating shafts. By setting the two cloth winding assemblies 32 to be used alternately, the winding and discharging of the fabric can be carried out synchronously, improving work efficiency.

[0036] In the above - mentioned embodiment, specifically, referring to Figure 4 , Figure 5 and Figure 6 , the stabilizing assembly 48 includes a second mounting shell 481 connected to the transmission shaft 47. Inside the second mounting shell 481, there is a second guide rod 482. A second left - right threaded rod 483 is rotatably connected inside the second mounting shell 481. Two second moving seats 484 are threadedly connected to the outside of the second left - right threaded rod 483. The two second moving seats 484 are symmetrically distributed. Both of the two second moving seats 484 are movably penetrated by the second guide rod 482. Second limiting rods 485 are movably penetrated inside the two second moving seats 484. A first spring 486 is sleeved on the outside of the second limiting rods 485. A clamping sleeve 487 is installed at the top of the second limiting rod 485. The port of the clamping sleeve 487 is provided with a conical guiding surface. By setting the stabilizing assembly 48, the discharging end of the winding roller 325 can be sleeved and clamped to improve the stability of the winding roller 325 during rotation, so that the fabric is wound more neatly.

[0037] In the above - mentioned embodiment, specifically, referring to Figure 9 , the clamping mechanism 5 includes a mounting plate 51. A plurality of third limiting rods 52 are arranged on the side of the mounting plate 51. Second springs 53 are sleeved on the outside of the plurality of third limiting rods 52. Two movable frames 54 are movably installed on the outside of the plurality of third limiting rods 52. Two clamping rollers 56 are rotatably connected between the two movable frames 54. Guide wheels 55 are rotatably connected to the sides of the two movable frames 54. By setting the clamping mechanism 5, a part of the fabric can be clamped and fixed, reducing the shaking during fabric cutting and improving the neatness of the fabric cutting section.

[0038] In the above embodiments, specifically, please refer to Figure 7 , the cutting mechanism 6 includes a third left-right threaded rod 61 installed on the side of a set of clamping mechanisms 5. The third left-right threaded rod 61 is rotatably connected to the outer wall of the mounting plate 51 of this set of clamping mechanisms 5. One end of the third left-right threaded rod 61 is connected to a second driving device 62. A cutting assembly 63 is threadedly connected to the outside of the third left-right threaded rod 61. The cutting assembly 63 extends between the two sets of clamping mechanisms 5. By providing the cutting assembly 63, the fabric can be cut, and the cutting assembly 63 is distributed between the two clamping rollers 56 of a set of clamping mechanisms 5.

[0039] In the above embodiments, specifically, please refer to Figure 10 , the cutting assembly 63 includes a mounting seat 631. A fourth limiting rod 632 is movably penetrated through the inside of the mounting seat 631. A limiting block 633 is arranged outside the fourth limiting rod 632. A groove matching the limiting block 633 is opened inside the mounting seat 631. A third spring 634 is sleeved on the outside of the fourth limiting rod 632. A cutting knife 635 is installed at one end of the fourth limiting rod 632. An electromagnetic adsorption device 636 is arranged on one side of the mounting seat 631. By providing the electromagnetic adsorption device 636 to pull the movement of the fourth limiting rod 632, the purpose of pulling the movement of the cutting knife 635 is achieved. The electromagnetic adsorption device 636 is an electromagnet adsorption assembly.

[0040] In the above embodiments, specifically, please refer to Figure 7 , two sets of cutting assemblies 63 are symmetrically arranged. The mounting seats 631 of the two sets of cutting assemblies 63 and the mounting plate 51 of the clamping mechanism 5 are both movably installed through the setting of a slide rail assembly 64. By providing two sets of symmetrical cutting assemblies 63 to move from the middle of the fabric to both sides for splitting it, compared with the splitting method from both sides, splitting from the middle part of the fabric is more stable, and the fabric is not likely to be deformed to cause an uneven cross-section.

[0041] A weaving method of a moisture-absorbing and quick-drying fabric, the process of which includes the following steps: S1: Taking an air-jet loom as an example, first prepare warp and weft yarns, and then the warp and weft supply system feeds the warp and weft yarns into the loom. The nozzle quickly blows the weft yarn between the warp yarns through the pressure and speed of the air flow. After the weft yarn is inserted, the loom tightens the weft yarn and arranges the fabric, adjusting the density and tension of the fabric; S2: Next, the woven quick-drying fabric is conveyed by the conveying system and the cloth guiding roller 2 between the two groups of clamping mechanisms 5. The telescopic component 7 is activated to push the guiding plate 8 for height adjustment, so that the guiding plate 8 is located between the guiding wheels 55 of the two groups of clamping mechanisms 5, ensuring that the two groups of clamping mechanisms 5 are in a separated state. When the guiding plate 8 is adjusted in height, it drives the gear 46 to rotate through the rack 9, causing the two groups of clamping sleeves 487 to hold against the two winding rollers 325. S3: Next, the first driving device 49 is activated to drive the stabilizing component 48 to rotate. The stabilizing component 48 drives the cloth winding component 32 to rotate, causing the two winding rollers 325 to rotate and wind the fabric. When the fabric is folded and wound, the telescopic component 7 is activated to raise the two groups of clamping mechanisms 5, so that the two groups of clamping mechanisms 5 clamp the fabric. Then, the two electromagnetic adsorption devices 636 are turned off, and the cutting knife 635 penetrates the fabric under the reset action of the third spring 634. The second driving device 62 is activated to drive the two cutting components 63 to move away from each other, so that the two cutting knives 635 divide the fabric.

[0042] When the present invention is working specifically: When the folding cloth winding device in this application is actually working, the cloth made by the cloth weaving device is transported by the conveying system through the cloth guiding roller 2 between the two groups of clamping mechanisms 5. At this time, it is ensured that the electromagnetic adsorption device 636 is in a working state to keep the two cutting knives 635 away from the fabric. At the same time, it is ensured that the telescopic component 7 contracts to drive the guiding plate 8 to be between the guiding wheels 55 of the two groups of clamping mechanisms 5, so that the clamping rollers 56 of the two groups of clamping mechanisms 5 are separated from each other. When one of the telescopic components 7 contracts to drive the guiding plate 8 to rise, it will drive the rack 9 to rise. As a result, the rack 9 will drive the corresponding gear 46 to rotate. The gear 46 drives the threaded sleeve 45 to rotate. The rotation of the threaded sleeve 45 will push the lead screw 44 to move, so that 12 drives the first limiting rod 43 to slide within the first fixing frame 41. When the second fixing frame 42 moves, it will synchronously push the stabilizing component 48 and the transmission shaft 47 to move. The transmission shaft 47 slides outside the square rod 410. The movement of the stabilizing component 48 causes the two clamping sleeves 487 of the stabilizing component 48 to hold against the two winding rollers 325 of the upper cloth winding component 32.

[0043] Next, the conveying system and the fabric guiding roller 2 work to convey the fabric, lowering the height of the fabric between the two winding rollers 325 of the upper set of fabric winding assemblies 32. Then, the first driving device 49 is started to drive the square rod 410 to rotate. The square rod 410 drives the transmission shaft 47 to rotate, thereby driving the stabilizing assembly 48 to rotate. The stabilizing assembly 48 and the upper set of fabric winding assemblies 32 rotate synchronously to actively wind the fabric therebetween. When the stabilizing assembly 48 and the upper set of fabric winding assemblies 32 rotate synchronously for a specified number of turns, the length of the fabric to be wound can be quantitatively wound. The first driving device 49 is stopped, and the two telescopic assemblies 7 are started to push the guide plate 8 downward. The rack 9 at the bottom of one of the guide plates 8 will descend synchronously. According to the above steps, it can be known that the stabilizing assembly 48 will move away from the upper set of fabric winding assemblies 32 as a whole. After the two guide plates 8 descend to the lower part of the clamping mechanism 5, the movable frames 54 of the two clamping mechanisms 5 move under the reset action of the second spring 53, so that the clamping rollers 56 of the two clamping mechanisms 5 approach each other to clamp and fix the fabric.

[0044] Next, the electromagnetic adsorption device 636 of the cutting assembly 63 is turned off. When the fourth limiting rod 632 loses the electromagnetic adsorption effect, under the reset action of the third spring 634, the fourth limiting rod 632 pushes the cutting knife 635 to quickly move through the fabric. The second driving device 62 is started to drive the third positive and negative threaded rod 61 to rotate, so that the two cutting assemblies 63 separate from the middle of the fabric to both sides, realizing the cutting of the fabric. After the fabric cutting is completed, the rotation driving device connected to the rotating arm 31 is started to drive the rotating arm 31 to rotate 180°, so that the upper fabric winding assemblies 32 and the lower fabric winding assemblies 32 are exchanged. When the upper fabric winding assemblies 32 follow the rotating arm 31 to rotate, the fabric clamped in the clamping rollers 56 is pulled out. Then, the fabric winding device continues to wind the fabric on the upper fabric winding assemblies 32 at this time again. At the same time, the staff performs the fabric blanking work on the fabric winding assemblies 32 at the lower part at this time, and the blanking can be completed by horizontal extraction.

[0045] Although the embodiments of the present invention have been shown and described, the specific embodiments are only explanations of the present invention and do not limit the invention. The specific features, structures, materials or characteristics described can be combined in a suitable manner in any one or more embodiments or examples. After reading this specification, those skilled in the art can make modifications, substitutions and variations that do not make creative contributions to the embodiments according to needs, but as long as they are within the scope of the claims of the present invention, they are protected by the patent law.

Claims

1. A weaving device for moisture-absorbing and quick-drying fabric, comprising a carrier frame (1) and multiple groups of fabric guide rollers (2), characterized in that: On one side of the carrier frame (1), a cloth winding mechanism (3) is provided. The cloth winding mechanism (3) includes a rotating arm (31) rotatably connected to one side of the carrier frame (1). One end of the rotating arm (31) is connected with a rotation driving device. A cloth winding assembly (32) is rotatably connected to the side surface of the rotating arm (31). The cloth winding assembly (32) includes two sets of winding rollers (325). On one side of the carrier frame (1), a stabilizing mechanism (4) is provided. The stabilizing mechanism (4) includes a first fixing frame (41) installed on one side of the carrier frame (1). A first limiting rod (43) is movably arranged at the bottom of the first fixing frame (41). One end of the first limiting rod (43) is provided with a second fixing frame (42). A lead screw (44) is arranged on one side of the second fixing frame (42). A threaded sleeve (45) is rotatably connected to the top of the first fixing frame (41). A gear (46) is installed on the outer part of the threaded sleeve (45). The threaded sleeve (45) is in threaded connection with the lead screw (44). A transmission shaft (47) is rotatably connected inside the second fixing frame (42). One end of the transmission shaft (47) is provided with a stabilizing assembly (48). The stabilizing assembly (48) includes two sets of clamping sleeves (487) matching the winding rollers (325). The stabilizing mechanism (4) further includes a first driving device (49) installed on the side surface of the carrier frame (1). The output end of the first driving device (49) is provided with a square rod (410). The square rod (410) and the transmission shaft (47) are movably penetrated through.

2. The weaving device for a moisture-absorbing and quick-drying fabric according to claim 1, characterized in that: On one side of the carrier frame (1), two sets of clamping mechanisms (5) are symmetrically arranged. A cutting mechanism (6) is arranged on the side surface of one of the clamping mechanisms (5). Telescopic assemblies (7) are installed on both sides of the carrier frame (1). Guide plates (8) for separating the two sets of clamping mechanisms (5) are installed at the bottoms of the telescopic assemblies (7). A rack (9) is arranged at the bottom of one of the guide plates (8). The rack (9) is meshed with the gear (46).

3. The weaving device for a moisture-absorbing and quick-drying fabric according to claim 2, characterized in that: The cloth winding assembly (32) includes a first mounting shell (321). A first guide rod (322) is arranged inside the first mounting shell (321). A first left - right threaded rod (323) is rotatably connected inside the first mounting shell (321). Two sets of first moving seats (324) are in threaded connection with the outer part of the first left - right threaded rod (323). The two sets of first moving seats (324) are symmetrically distributed. The two sets of first moving seats (324) are both movably penetrated through the first guide rod (322). Winding rollers (325) are arranged on the side surfaces of the two sets of first moving seats (324).

4. The weaving device for a moisture-absorbing and quick-drying fabric according to claim 3, characterized in that: Two sets of cloth winding assemblies (32) are provided. The two sets of cloth winding assemblies (32) are symmetrically arranged on the side surfaces of the rotating arm (31). The two sets of cloth winding assemblies (32) and the rotating arm (31) are rotatably installed through damping rotating shafts.

5. The weaving device for a moisture-absorbing and quick-drying fabric according to claim 4, characterized in that: The stabilizing component (48) includes a second mounting shell (481) connected to the transmission shaft (47). A second guiding rod (482) is arranged inside the second mounting shell (481). A second left - right threaded rod (483) is rotatably connected inside the second mounting shell (481). Two groups of second moving seats (484) are threadedly connected to the outside of the second left - right threaded rod (483). The two groups of second moving seats (484) are symmetrically distributed. Both of the two groups of second moving seats (484) are movably penetrated by the second guiding rod (482). A second limiting rod (485) is movably penetrated inside each of the two groups of second moving seats (484). A first spring (486) is sleeved on the outside of the second limiting rod (485). A clamping sleeve (487) is installed at the top of the second limiting rod (485). The port of the clamping sleeve (487) is provided with a conical guiding surface.

6. The weaving device for a moisture-absorbing and quick-drying fabric according to claim 5, characterized in that: The clamping mechanism (5) includes a mounting plate (51). A plurality of groups of third limiting rods (52) are arranged on the side of the mounting plate (51). A second spring (53) is sleeved on the outside of each of the plurality of groups of third limiting rods (52). Two movable frames (54) are movably installed on the outside of the plurality of groups of third limiting rods (52). Two clamping rollers (56) are rotatably connected between the two movable frames (54). Guide wheels (55) are rotatably connected to the sides of the two movable frames (54).

7. A weaving device for a moisture-absorbing and quick-drying fabric according to claim 6, characterized in that: The cutting mechanism (6) includes a third left - right threaded rod (61) installed on the side of a group of clamping mechanisms (5). The third left - right threaded rod (61) is rotatably connected to the outer wall of the mounting plate (51) of this group of clamping mechanisms (5). One end of the third left - right threaded rod (61) is connected to a second driving device (62). A cutting component (63) is threadedly connected to the outside of the third left - right threaded rod (61). The cutting component (63) extends between the two groups of clamping mechanisms (5).

8. A weaving device for a moisture-absorbing and quick-drying fabric according to claim 7, characterized in that: The cutting component (63) includes a mounting seat (631). A fourth limiting rod (632) is movably penetrated inside the mounting seat (631). A limiting block (633) is arranged on the outside of the fourth limiting rod (632). A groove matching the limiting block (633) is formed inside the mounting seat (631). A third spring (634) is sleeved on the outside of the fourth limiting rod (632). A cutting knife (635) is installed at one end of the fourth limiting rod (632). An electromagnetic adsorption device (636) is arranged on one side of the mounting seat (631).

9. The weaving device of a moisture-absorbing and quick-drying fabric according to claim 8, characterized in that: Two groups of cutting components (63) are symmetrically arranged. The mounting seats (631) of the two groups of cutting components (63) and the mounting plates (51) of the clamping mechanisms (5) are movably installed through slide rail assemblies (64) arranged therebetween.

10. A weaving method of a moisture-absorbing and quick-drying fabric, characterized in that When using a weaving device for a moisture - absorbing and quick - drying fabric according to any one of claims 1 - 9, the process includes the following steps: S1: Taking an air - jet loom as an example, first prepare warp and weft yarns. Then, the warp and weft supply system feeds the warp and weft yarns into the loom. The nozzle blows the weft yarn quickly between the warp yarns through the pressure and speed of the air flow. After the weft yarn is inserted, the loom tightens the weft yarn and combs the fabric, adjusting the density and tension of the fabric. S2: Next, the woven quick-drying fabric is conveyed between the two sets of clamping mechanisms (5) by the conveying system and the cloth guiding roller (2). The telescopic component (7) is activated to push the guiding plate (8) for height adjustment, so that the guiding plate (8) is located between the guiding wheels (55) of the two sets of clamping mechanisms (5), ensuring that the two sets of clamping mechanisms (5) are in a separated state. When the height of one set of guiding plates (8) is adjusted, the gear (46) is rotated by the rack (9), causing the two sets of clamping sleeves (487) to press against the two sets of winding rollers (325). S3: Next, the first driving device (49) is activated to drive the stabilizing component (48) to rotate. The stabilizing component (48) drives the cloth winding component (32) to rotate, causing the two sets of winding rollers (325) to rotate and wind the fabric. After the fabric is folded and wound, the telescopic component (7) is activated to raise the two sets of clamping mechanisms (5) to clamp the fabric. Then, the two electromagnetic adsorption devices (636) are turned off. The cutting knife (635) penetrates the fabric under the reset action of the third spring (634). The second driving device (62) is activated to drive the two sets of cutting components (63) to move away from each other, so that the two cutting knives (635) cut the fabric.