Webbing processing device
By designing the rotating mechanism and cleaning components of the ribbon processing equipment, and utilizing the combination of hollow tubes and square tubes, the dust and impurities on the ribbon are sucked in and cleaned. This solves the problem of impurities affecting the appearance and quality of the ribbon during the ribbon production process, and achieves both ribbon cleaning and equipment durability.
Patent Information
- Application Number
- PCT/CN2024/112559
- Authority / Receiving Office
- WO · WO
- Patent Type
- Applications
- Current Assignee / Owner
- Priority Date
- 2024-07-31
- Filing Date
- 2024-08-16
- Publication Date
- 2026-02-05
AI Technical Summary
During the production of webbing, impurities such as fiber debris, broken yarn ends, and dust may exist on the webbing. If these impurities are not cleaned, they will be trapped inside the webbing, affecting its appearance and quality.
A webbing processing device was designed, comprising a take-up roller, a protective box, a guide roller, an adsorption component, and a rotating mechanism. The rotating mechanism drives the cleaning component, which uses the cooperation of hollow tubes and square tubes to suck up and clean dust and impurities on the webbing. The cleaning lint on the cleaning roller is swept away, and the adsorption component adsorbs impurities through negative pressure, which are then collected in a collection box.
It effectively cleans dust and impurities from the webbing, keeps the webbing clean, extends the service life of the equipment, and prevents impurities from affecting the appearance and quality of the webbing.
Smart Images

Figure CN2024112559_05022026_PF_FP_ABST
Abstract
Description
A woven tape processing device TECHNICAL FIELD
[0001] The present application relates to the technical field of woven tape processing, and specifically relates to a woven tape processing device. BACKGROUND
[0002] Woven tape is made of various yarns into a narrow fabric or tubular fabric. After the production of woven tape is completed, it needs to be wound up for storage or transportation. Woven tape products are widely used in many industries such as clothing, luggage, footwear, automotive interiors, medical supplies, etc.
[0003] Chinese Patent Publication No. CN219314102U discloses a winding device for chemical fiber woven tape processing. When winding the chemical fiber woven tape, the worker needs to drive the winding disc to rotate by the driving element. At this time, the movable cover is accommodated in the fixed cover. After winding is completed, the worker only needs to pull the movable cover to form a cylindrical cover with the fixed cover and cover the winding disc, thereby protecting the wound chemical fiber woven tape on the winding disc from being affected by external dust after winding.
[0004] The above-mentioned device solves the problem that the woven tape is prone to falling into a lot of dust after winding is completed. However, during the production of woven tape, there may be fiber scraps, yarn ends, dust and other impurities on the woven tape. If the impurities are not cleaned, they will be wrapped in the woven tape during winding, which will affect the appearance and quality of the woven tape.
[0005] Therefore, it is necessary to provide a woven tape processing device to solve the above technical problems.
[0006] SUMMARY
[0007] The present application aims to provide a woven tape processing device to solve the problems raised in the background art.
[0008] To achieve the above-mentioned purpose, the present application provides the following technical scheme: a woven tape processing device, comprising a base, a winding roller is arranged on the top of the base; a protective box is arranged on one side of the winding roller, two guide rollers are symmetrically arranged in the protective box, an adsorption assembly is arranged on the end of the guide roller, a rotating mechanism is arranged on one side of the guide roller, the rotating mechanism is installed in the protective box, one end of the rotating mechanism is connected with the adsorption assembly, and a cleaning assembly is arranged on the rotating mechanism.
[0009] As a further scheme of the present application: the rotating mechanism comprises a central shaft; a second driving shaft is fixedly arranged at the center of the central shaft, and a support plate is arranged in an annular array on the periphery of the central shaft; a hollow tube is fixedly arranged at the end of the support plate away from the central shaft; the central shaft is arranged in the protection box, and one end of the rotating mechanism is communicated with the adsorption assembly.
[0010] As a further scheme of the present application: the rotating mechanism is arranged in a hollow structure, the support plate is fixedly connected in communication with the rotating mechanism, the hollow tube is connected in communication with the support plate, and a square tube is fixedly arranged in communication between two adjacent groups of hollow tubes; a plurality of notches are arranged in an array on the square tube.
[0011] As a further scheme of the present application: the cleaning assembly comprises a cleaning roller; a plurality of cleaning hairs are arranged in an array on the cleaning roller; the cleaning roller is rotatably arranged at one side of the notch; and the two ends of the cleaning roller are rotatably connected with the square tube.
[0012] As a further scheme of the present application: a gear is rotatably arranged at the end of the hollow tube close to the adsorption assembly; a driven rod is fixedly arranged at the end of the cleaning roller close to the adsorption assembly; the gear and the driven rod are in transmission connection; and an arc-shaped plate is fixedly arranged at the end of the adsorption assembly close to the gear.
[0013] As a further scheme of the present application: a gear slot is arranged on the arc-shaped plate and in transmission cooperation with the gear; and a slope is arranged at the end of the arc-shaped plate away from the guide roller.
[0014] As a further scheme of the present application: a plugging rod is rotatably arranged in the hollow tube; a driving rod is rotatably arranged at the end of the gear close to the hollow tube; the driving rod is in sliding connection with the end of the hollow tube; a connecting groove in sliding cooperation with the driving rod is arranged at the end of the plugging rod close to the gear; a spiral groove is arranged in the connecting groove; and a convex column in sliding cooperation with the spiral groove is fixedly arranged at the periphery of the end of the driving rod away from the gear.
[0015] As a further scheme of the present application: a plurality of removal claws are arranged in an array in the square tube; the removal claws are fixedly arranged at the side of the notch close to the cleaning roller; and the removal claws are arranged in an inclined manner towards the cleaning roller.
[0016] As a further scheme of the present application: the adsorption assembly comprises a first connecting box; the first connecting box is fixedly arranged in the protection box, and the guide roller is rotatably connected with the first connecting box; the guide roller is arranged in a hollow structure, and a first driving shaft is fixedly arranged in the center of the guide roller; a pipeline is arranged at the end of the guide roller away from the first connecting box; and the pipeline is fixedly arranged at the periphery of the protection box.
[0017] As a further aspect of the present invention: a second connecting box is fixedly connected to the side of the first connecting box near the rotating mechanism; the end of the central shaft near the second connecting box is rotatably connected to and communicates with the second connecting box; a collection box is slidably disposed at the bottom of the second connecting box; a filter screen is fixedly disposed on the collection box; and the arc-shaped plate is installed on the second connecting box.
[0018] Compared with the prior art, the beneficial effects of the present invention are as follows: In use, when a set of hollow tubes rotates to its lowest position, the webbing is stretched. At this time, the square tubes connected to the set are not yet in contact with the webbing, and under the rotation of the central shaft, the set of hollow tubes separates from the webbing. Subsequently, the webbing elastically resets, and the set of square tubes gradually rotates until it is parallel to the webbing and then rotates away. During this process, the set of square tubes sucks in dust or impurities on the webbing through the notch, thereby keeping the webbing clean. The arrangement of the two sets of rotating mechanisms enables the cleaning of both the upper and lower surfaces of the webbing. At the same time, through the cooperation of gears and arc plates, the rotation of the hollow tubes blocks the support plate and the hollow tubes, avoiding the problem of insufficient suction strength at the notch where it contacts the webbing. It also reduces the rotational wear of rotating parts such as gears and extends the service life. Attached Figure Description
[0019] Figure 1 is a frontal three-dimensional structural diagram of the present invention.
[0020] Figure 2 is a schematic diagram of the cross-section of the middle part of the present invention.
[0021] Figure 3 is a schematic diagram of the cleaning mechanism in this invention.
[0022] Figure 4 is a schematic diagram of the structure at point A in Figure 3 of this invention.
[0023] Figure 5 is a schematic diagram of the structure of the first connecting box and the second connecting box in this invention.
[0024] Figure 6 is a schematic diagram of the structure at point B in Figure 5 of this invention.
[0025] Figure 7 is a schematic diagram of the sealing rod in this invention.
[0026] Figure 8 is a schematic diagram of the spiral groove in this invention.
[0027] Figure 9 is a schematic diagram of the arc-shaped plate in this invention.
[0028] Figure 10 is a schematic diagram of the structure for removing the claw in this invention.
[0029] In the diagram: 1. Base; 2. Take-up roller; 3. Protective box; 4. Guide roller; 41. First drive shaft; 5. First connecting box; 51. Collection box; 52. Filter screen; 53. Second connecting box; 6. Pipe; 7. Rotating mechanism; 71. Central shaft; 72. Square tube; 73. Hollow tube; 74. Support plate; 75. Cleaning roller; 751. Driven rod; 76. Cleaning bristles; 77. Sealing rod; 771. Gear; 772. Drive rod; 773. Connecting groove; 774. Spiral groove; 78. Second drive shaft; 79. Notch; 791. Removal claw; 8. Arc plate; 81. Tooth groove; 82. Slope. Detailed Implementation
[0030] Please refer to Figures 1-10. In this embodiment of the invention, a webbing processing device includes a base 1. A winding roller 2 for winding the webbing is mounted on the top of the base 1. A protective box 3 is provided on one side of the winding roller 2. When winding the webbing, one end of the webbing passes through the protective box 3, and impurities on the webbing are cleaned through the protective box 3, thereby keeping the wound webbing clean. Guide rollers 4 are symmetrically arranged at both ends of the protective box 3, that is, two sets of guide rollers 4 are vertically arranged at one end of the protective box 3. The two sets of guide rollers 4 guide and restrict the webbing. The ends of the guide rollers 4 are provided with... An adsorption assembly is provided, and a rotating mechanism 7 is provided on one side of the guide roller 4. The rotating mechanism 7 is installed inside the protective box 3, and one end of the rotating mechanism 7 is connected to the adsorption assembly. A cleaning assembly is provided on the rotating mechanism 7. When the rotating mechanism 7 rotates, it drives the cleaning assembly to rotate. The two sets of rotating mechanisms 7 are arranged diagonally along the center of the protective box 3, that is, the two sets of rotating mechanisms 7 are arranged vertically opposite each other. In this way, when the webbing passes through the protective box 3, the two sets of rotating mechanisms 7 can respectively press down and push up the webbing, causing the webbing to stretch. Then, the cleaning assembly is used to complete the cleaning of the webbing.
[0031] Please refer to Figures 2-3. Preferably, the rotating mechanism 7 includes a central shaft 71. The central shaft 71 has a hollow structure, and a second drive shaft 78 is fixedly disposed at the center of the central shaft 71. One end of the second drive shaft 78 can pass through the adsorption assembly and extend to the periphery of the protective box 3. A motor for driving the rotation of the second drive shaft 78 is fixedly disposed thereon, and the second drive shaft 78 is rotatably connected to the protective box 3 in a sealed manner. Support plates 74 are arranged in a ring array around the periphery of the central shaft 71. In this embodiment, four sets are preferably arranged. When the second drive shaft 78 rotates, it can drive the central shaft 71 to rotate. When the central shaft 71 rotates, it can drive the support plate 74 to rotate. A hollow tube 73 is fixedly installed at the end of the support plate 74 away from the central shaft 71. The rotation of the support plate 74 drives the hollow tube 73 to rotate. The lowest position of the bottom of the hollow tube 73 is lower than the horizontal height of the webbing after it passes between the guide rollers 4. In this way, when a set of hollow tubes 73 rotates to the lowest position, the webbing can be elastically stretched. After the hollow tubes 73 separate from the webbing, the webbing elastically resets, causing the dust or impurities on it to be bounced off. It should be noted that the rotation direction of the second drive shaft 78 is opposite to the direction of the webbing.
[0032] Preferably, the central shaft 71 is installed inside the protective box 3, and one end of the central shaft 71 is connected to the adsorption assembly. The support plate 74 is fixedly connected to the central shaft 71, and the hollow tube 73 is fixedly connected to the support plate 74. A square tube 72 is fixedly connected between two adjacent sets of hollow tubes 73. It should be noted that the front end of one set of square tubes 72 in the direction of rotation of the central shaft 71 is connected to the corresponding hollow tube 73. The square tubes 72 are provided with an array of notches 79. Thus, when the adsorption assembly is started... The adsorption component generates negative pressure, which sucks in dust or impurities from the webbing along the central axis 71, support plate 74, hollow tube 73, and finally through the notch 79 on the square tube 72. In use, when a set of hollow tubes 73 rotates to its lowest position, the webbing is stretched. At this time, the square tubes 72 connected to the set are not yet in contact with the webbing, and under the rotation of the central axis 71, the set of hollow tubes 73 separates from the webbing. Then the webbing elastically returns to its original position. At this time, the set of square tubes 72 gradually rotates until it is parallel to the webbing and then rotates away. During this process, the set of square tubes 72 will suck in dust or impurities from the webbing through the notch 79, thereby keeping the webbing clean. The setting of two sets of rotating mechanisms 7 realizes the cleaning of the upper and lower surfaces of the webbing, and the two sets of rotating mechanisms 7 will not conflict.
[0033] Please refer to Figures 3-6. Preferably, the cleaning component includes a cleaning roller 75. The cleaning roller 75 is provided with an array of cleaning bristles 76 for cleaning the webbing. The cleaning roller 75 is rotatably disposed on one side inside the notch 79, so that the suction area of the notch 79 on the webbing is maximized during use. The two ends of the cleaning roller 75 are rotatably connected to the square tube 72.
[0034] Furthermore, preferably, a gear 771 is rotatably provided at one end of the hollow tube 73 near the adsorption assembly, and a driven rod 751 is fixedly provided at one end of the cleaning roller 75 near the adsorption assembly. The driven rod 751 is rotatably connected to the square tube 72. The gear 771 and the driven rod 751 are connected by belt drive. An arc plate 8 is fixedly provided at one end of the adsorption assembly near the gear 771. The arc plate 8 is provided with a toothed groove 81 that drives the gear 771. A slope 82 is provided at the end of the arc plate 8 away from the guide roller 4.
[0035] Furthermore, preferably, a sealing rod 77 is rotatably disposed inside the hollow tube 73. The middle part of the sealing rod 77 is semi-circular, so that in use, the semi-circular structure can block the support plate 74 and the hollow tube 73. A drive rod 772 is rotatably disposed at one end of the gear 771 near the hollow tube 73. The drive rod 772 is slidably connected to the end of the hollow tube 73. The end of the sealing rod 77 near the gear 771 is provided with a connecting groove 773 that is slidably adapted to the drive rod 772. A spring can be provided between the drive rod 772 and the connecting groove 773, so that the drive rod 772 and the connecting groove 773 are elastically connected. The connecting groove 773 is provided with The drive rod 772, which is located away from the gear 771, has a spiral groove 774. A protruding post is fixedly installed on the periphery of the end of the drive rod 772 that slides with the spiral groove 774. In use, when the drive rod 772 is not subjected to external force, it moves away from the connecting groove 773 as far as possible under the action of the spring. The semi-circular structure of the connecting groove 773, formed by the cooperation between the protruding post and the spiral groove 774, isolates the support plate 74 and the hollow tube 73. When the drive rod 772 moves toward the hollow tube 73, the cooperation between the protruding post and the spiral groove 774 drives the rotation of the hollow tube 73, thereby removing the barrier between the support plate 74 and the hollow tube 73 and enabling communication.
[0036] It should be noted that: the transmission cooperation between a set of gears 771 and multiple sets of driven rods 751 refers to the transmission connection between the gears 771 on a set of hollow tubes 73 and the driven rods 751 connected to a set of square tubes 72. The arc-shaped plate 8 is set on the rotation trajectory of a set of hollow tubes 73 when it rotates to its lowest position, and the length of the arc-shaped plate 8 is the distance that the set of hollow tubes 73 rotates 90 degrees from its lowest position. Thus, in use, when a set of hollow tubes 73 rotates and contacts the webbing and reaches the lowest position of its rotation trajectory, at this time, the gears 771 and the arc-shaped plate 8 slide in contact, and As the hollow tube 73 rotates, the gear 771 slides against the slope 82, causing it to move towards the hollow tube 73. Simultaneously, the gear 771 meshes with the tooth groove 81, causing it to rotate. This rotation drives the driven rod 751 to rotate, which in turn drives the cleaning roller 75 to rotate. The movement of the gear 771 towards the hollow tube 73 causes the driving rod 772 to move into the connecting groove 773. This, in turn, through the engagement between the protrusion and the spiral groove 774, causes the hollow tube 73 to rotate, thus creating a connection between the support plate 74 and the hollow tube 73. When the connection is established, the adsorption assembly is activated. The cooperation of the central shaft 71, support plate 74, hollow tube 73, and square tube 72 creates an adsorption force at the notch 79. As the central shaft 71 continues to rotate, the square tube 72 approaches the webbing, and the notch 79 adsorbs impurities and dust from the webbing. Simultaneously, the cleaning roller 75 rotates, and the cleaning bristles 76 remove impurities from the webbing. Under the negative pressure generated at the notch 79, the impurities are drawn into the square tube 72 and then pass through the hollow tube 73, support plate 74, and central shaft 71 into the adsorption assembly. Within the component, when one set of gears 771 rotates to separate from the arc plate 8, the next set of gears 771 simultaneously contacts and engages with the arc plate 8. After separating from the arc plate 8, the gears 771 then move and reset under the action of the spring between the drive rod 772 and the connecting groove 773, thereby causing the corresponding hollow tube 73 to rotate and reset, sealing the space between the support plate 74 and the hollow tube 73. This avoids the problem of insufficient suction strength at the notch 79 where the next set of gears contacts and engages with the webbing, and also reduces the rotational wear of rotating components such as gears 771, extending their service life.
[0037] Referring to Figure 10, preferably, in order to ensure that the impurities cleaned on the cleaning bristles 76 adhere to them, multiple sets of removal claws 791 are arrayed inside the square tube 72. The removal claws 791 are fixedly arranged on the side of the notch 79 near the cleaning roller 75, and the removal claws 791 are inclined towards the cleaning roller 75. The spacing between the two adjacent sets of removal claws 791 and cleaning bristles 76 is adapted. In use, when the cleaning roller 75 rotates and the cleaning bristles 76 clean the webbing, the impurities and dust on the webbing will enter the square tube 72 under the action of the cleaning bristles 76. Subsequently, with the rotation of the cleaning roller 75 and the cooperation of the removal claws 791, the impurities or dust on the cleaning bristles 76 are separated from the cleaning bristles 76 under the action of the removal claws 791. The separated impurities will move towards the adsorption component under negative pressure. The removal claws 791 enable the cleaning bristles 76 to achieve a self-cleaning effect.
[0038] Please refer to Figures 1-10. Preferably, the adsorption assembly includes a first connecting box 5. The first connecting box 5 is fixedly disposed inside the protective box 3. Two sets of the first connecting boxes 5 are symmetrically arranged along the center of the protective box 3. The guide roller 4 is rotatably connected to the first connecting box 5. The guide roller 4 has a hollow structure, and a first drive shaft 41 is fixedly disposed at the center of the guide roller 4. One end of the first drive shaft 41 can extend through the side wall of the first connecting box 5 and the protective box 3 to the outside of the protective box 3. At the same time, a motor for rotating the first drive shaft 41 can be disposed at the end of the first drive shaft 41, thereby... When the motor drives the rotation of the first drive shaft 41 and the two sets of first drive shafts 41 rotate synchronously, the webbing can be conveyed. The guide roller 4 is provided with a pipe 6 at the end away from the first connecting box 5, and the guide roller 4 and the pipe 6 are rotatably connected. The pipe 6 is fixedly set on the periphery of the protective box 3. The end of the pipe 6 away from the guide roller 4 is fixedly connected to an air pump that can generate an adsorption effect. The air pump can be installed at the bottom of the protective box 3. When the air pump is started, the air pump will generate a negative pressure in the first connecting box 5 through the cooperation of the pipe 6 and the guide roller 4, and then draw in gas through the first connecting box 5.
[0039] Furthermore, preferably, a second connecting box 53 is fixedly connected to the side of the first connecting box 5 near the rotating mechanism 7. The second connecting box 53 is installed on the inner wall of the protective box 3. The end of the central shaft 71 near the second connecting box 53 is rotatably connected to and communicates with the second connecting box 53. In this way, when a negative pressure is generated in the first connecting box 5, external gas will be drawn in through the second connecting box 53, the central shaft 71, the support plate 74, the hollow tube 73, the square tube 72, and the notch 79, thereby realizing the suction effect of the notch 79 on the webbing. Subsequently, the sucked-in dust will enter the second connecting box 53. A collection box 51 is slidably arranged at the bottom of the second connecting box 53, and a fixed assembly is provided on the collection box 51. With filter screen 52, when the collection box 51 and the second connecting box 53 are fitted and installed, filter screen 52 is located at the connection between the second connecting box 53 and the first connecting box 5. In this way, after dust and impurities enter the second connecting box 53, they will not enter the first connecting box 5. The blocked dust and impurities will be on filter screen 52 and then fall into the collection box 51 under their own gravity, thus completing the collection of impurities and dust. The arc plate 8 is installed on the second connecting box 53. At the same time, when the gas passes through the guide roller 4, it can also carry away the heat generated by the long-term friction between the guide roller 4 and the webbing, thereby reducing the temperature of the guide roller 4 and avoiding the problem of heat accumulation causing the temperature of the guide roller 4 to rise.
Claims
1. A braid processing apparatus comprising a base, a top portion of the base being equipped with a winding roller; characterized in that, The side of the winding roller is provided with a protection box, the both ends of the protection box are rotationally provided with guide rollers in a central symmetry, the end of the guide roller is provided with an adsorption assembly, the side of the guide roller is provided with a rotating mechanism, the rotating mechanism is installed in the protection box, one end of the rotating mechanism is connected with the adsorption assembly, and the rotating mechanism is provided with a cleaning assembly.
2. The webbing processing apparatus according to claim 1, wherein The rotating mechanism comprises a central shaft, a second driving shaft is fixedly arranged at the center of the central shaft, support plates are arranged in an annular array on the periphery of the central shaft, a hollow tube is fixedly arranged at the end of the support plate away from the central shaft, the central shaft is installed in the protection box, and one end of the rotating mechanism is communicated with the adsorption assembly.
3. The webbing processing apparatus according to claim 2, wherein The rotating mechanism is provided in a hollow structure, the support plate is fixedly connected in communication with the rotating mechanism, the hollow tube is connected in communication with the support plate, and square tubes are fixedly and continuously arranged between two adjacent groups of hollow tubes.
4. The webbing processing apparatus according to claim 3, wherein The cleaning assembly comprises a cleaning roller, cleaning hairs are arranged in an array on the cleaning roller, the cleaning roller is rotationally arranged on one side of the gap, and the two ends of the cleaning roller are rotationally connected with the square tube.
5. The webbing processing apparatus according to claim 4, wherein The end of the hollow tube close to the adsorption assembly is rotationally provided with a gear, the end of the cleaning roller close to the adsorption assembly is fixedly provided with a driven rod, the gear and the driven rod are in transmission connection, and the end of the adsorption assembly close to the gear is fixedly provided with an arc-shaped plate.
6. A webbing processing apparatus according to claim 5, wherein The arc-shaped plate is provided with a gear slot in transmission cooperation with the gear, and the end of the arc-shaped plate away from the guide roller is provided with a slope.
7. The webbing processing apparatus according to claim 5, wherein The hollow tube is rotationally arranged with a blocking rod, the end of the gear close to the hollow tube is rotationally provided with a driving rod, the driving rod is in sliding connection with the end of the hollow tube, the end of the blocking rod close to the gear is provided with a connecting groove in sliding cooperation with the driving rod, the connecting groove is provided with a spiral groove, and the end of the driving rod away from the gear is fixedly provided with a convex column in sliding cooperation with the spiral groove.
8. The webbing processing apparatus according to claim 4, wherein A plurality of removal claws are arranged in the square tube in an array, the removal claws are fixedly arranged on one side of the gap close to the cleaning roller, and the removal claws are obliquely arranged towards the cleaning roller.
9. The webbing processing apparatus according to claim 5, wherein The adsorption assembly comprises a first connecting box, the first connecting box is fixedly arranged in the protection box, the guide roller is in rotational connection with the first connecting box, the guide roller is provided in a hollow structure and is fixedly provided with a first driving shaft at the center thereof, and the end of the guide roller away from the first connecting box is provided with a pipeline, and the pipeline is fixedly arranged on the periphery of the protection box.
10. The braid processing apparatus according to claim 9, wherein The side of the first connecting box close to the rotating mechanism is fixedly and continuously provided with a second connecting box, one end of the central shaft close to the second connecting box is in rotational connection and communication with the second connecting box, the bottom of the second connecting box is slidingly provided with a collecting box, the collecting box is fixedly provided with a filter screen, and the arc-shaped plate is installed on the second connecting box.
Citation Information
Patent Citations
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