Fiber rib net weaving production line
By designing a fiber reinforced mesh braiding production line integrating yarn, glue-impregnation mechanism, winding machine, drying box, cooling mechanism and traction mechanism, the production efficiency and safety hazards caused by manual transfer between equipment in the prior art are solved, and efficient production and strength improvement are achieved.
Patent Information
- Application Number
- CN202510377362.0
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-03-27
- Publication Date
- 2025-06-06
AI Technical Summary
The existing fiber reinforced mesh production process requires manual transfer between multiple equipment, resulting in low production efficiency and increased operational errors and safety risks.
A fiber reinforced mesh braiding production line integrating yarn, glue-impregnation mechanism, winding machine, drying box, cooling mechanism and traction mechanism was designed to achieve no manual transfer between the equipment and improve production efficiency.
Through the integrated production line, the production efficiency of the fiber reinforced mesh is improved, manual operation errors are reduced, safety risks are reduced, and the curing strength of the fiber reinforced mesh is improved.
Smart Images

Figure CN120099710A_ABST
Abstract
Description
Technical Field
[0001] The invention relates to the field of fiber reinforcement mesh production devices, in particular to a fiber reinforcement mesh weaving production line. Background Art
[0002] Fiber reinforcement mesh is a new type of composite material for railway and highway transportation. It is mainly woven or wound with high-performance fiber materials. Due to the advantages of fiber reinforcement mesh such as light weight, high strength, corrosion resistance and fatigue resistance, it is widely used in high-speed railway isolation fences, high-speed isolation fences, high-speed anti-glare nets, roadbed nets, slope protection nets, sewage treatment plants, reservoir protection nets, power isolation fences, airports, docks, stations, grassland fire prevention, bridge guardrails and concrete roadbed paving nets.
[0003] The production of fiber reinforcement mesh often requires a series of process flows, including fiber sand separation, glue impregnation, fiber weaving, thermal curing, cooling and strengthening, and cutting. However, the current production process of fiber reinforcement mesh often requires the use of multiple processing equipment, and the various processing equipment cannot be completed on the same production line. As a result, the fiber reinforcement mesh needs to be frequently transferred between different equipment during the production process, thereby reducing production efficiency. Multiple manual operations and transfers between equipment may increase operational errors and safety hazards. Summary of the invention
[0004] 1. Technical issues to be solved
[0005] In view of the shortcomings of the prior art, the present invention provides a fiber reinforcement mesh weaving production line, which solves the problem of low production efficiency caused by the need for manual transfer of fiber reinforcement meshes on different production lines, and solves the problem that the need for manual transfer of fiber reinforcement meshes on different production lines will increase operational errors and create safety hazards.
[0006] (II) Technical solution
[0007] To achieve the above purpose, the present invention is implemented through the following technical solutions: a fiber reinforcement mesh weaving production line includes two creels, the rear ends of the two creels are provided with a dipping mechanism, the rear ends of the dipping mechanism are provided with a winding machine, the rear ends of the winding machine are provided with a drying box, the rear ends of the drying box are provided with a cooling mechanism, and the rear ends of the cooling mechanism are provided with a traction mechanism;
[0008] The creel comprises four supporting columns, a plurality of placing plates are respectively fixedly connected to the middle parts of the inner walls on adjacent sides of the supporting columns, the glue dipping mechanism comprises a glue dipping box, a first control panel is arranged at the front end of the outer wall on one side of the glue dipping box, a wire frame is fixedly connected to the front end of the upper surface of the glue dipping box, a mounting plate is fixedly connected to the rear end of the outer wall on the other side of the wire frame, a first servo motor is fixedly connected to the upper surface of the mounting plate by a plurality of bolts, a first tensioning rod is fixedly connected to the output shaft of the first servo motor, a driving gear is fixedly connected to the other side of the outer wall of the first tensioning rod body, a plurality of second tensioning rods are rotatably connected to the middle part of the inner wall on one side of the wire frame, and the other sides of the second tensioning rods penetrate the wire frame to the outside of the wire frame and are fixedly connected to the driven gear;
[0009] The cooling mechanism comprises a mounting frame, a waste water tank is fixedly connected to the middle of the upper surface of the mounting frame, a mounting frame is fixedly connected to the upper surface of the waste water tank, a water supply tank is fixedly connected to the middle of the bottom surface of the mounting frame, a water pump is fixedly connected to one side of the front end of the bottom surface of the mounting frame by a plurality of bolts, a second control panel is arranged at the front end of the top surface of the mounting frame, the upper end of the water supply tank is open, and a spray pipe is fixedly connected to the top surface of the mounting frame;
[0010] The traction mechanism comprises a chassis, a third control panel is arranged at the rear end of the outer wall on the other side of the chassis, the upper surface of the chassis is fixedly connected to a support frame, a plurality of slide grooves are respectively opened in the middle parts of the outer walls on both sides of the support frame, a plurality of electric telescopic rods are respectively fixedly connected to the two sides of the upper surface of the support frame, the other side of the rear end of the upper surface of the chassis is fixedly connected to the second servo motor by a plurality of bolts, the output shaft of the second servo motor is fixedly connected to the active rotating shaft, one side of the outer wall of the active rotating shaft shaft body penetrates the support frame to the inside of the support frame and is rotatably connected to the inner wall of one side of the support frame, one side of the outer wall of the active rotating shaft shaft body is fixedly connected to the active traction wheel, the middle part of the inner wall of one side of the support frame is respectively rotatably connected to the first driven rotating shaft and the second driven rotating shaft, and one side of the outer wall of the first driven rotating shaft and the second driven rotating shaft shaft body is respectively fixedly connected to the driven traction wheel;
[0011] Through the above technical solution, by arranging a plurality of drying boxes in combination and setting the temperature of each drying box in a gradient increasing manner from front to back, the resin in the fiber reinforcement mesh is gradually solidified, avoiding stress concentration and deformation caused by sudden temperature changes, thereby improving the curing strength of the fiber reinforcement mesh.
[0012] Preferably, the other side of the outer wall of the driving shaft is fixedly connected to a first pulley, the other side of the first driven shaft passes through the support frame to the outside of the support frame and is fixedly connected to a second pulley, and the other side of the second driven shaft passes through the support frame to the outside of the support frame and is fixedly connected to a third pulley;
[0013] Through the above technical solution, the active rotating shaft provided with the first pulley is driven to rotate by the second servo motor.
[0014] Preferably, the outer walls of the third pulley and the second pulley are both sleeved with a second transmission belt, and the outer walls of the second pulley and the first pulley are both sleeved with a first transmission belt;
[0015] Through the above technical solution, by using the first transmission belt and the second transmission belt in coordination, the rotation speeds of the driving shaft and the first driven shaft and the second driven shaft are kept consistent, thereby making the driving traction wheel and the driven traction wheel keep the same rotation speed, thereby making the solidified fiber reinforcement mesh be pulled.
[0016] Preferably, the output shafts of the electric telescopic rods all penetrate the support frame to the inside of the slide slot and are fixedly connected with sliders, the sliders all slide inside the slide slots respectively, and the middle part of the outer wall of one side of the slider close to the center of the support frame is rotatably connected with a driven traction roller;
[0017] Through the above technical solution, the height of multiple driven traction rollers is adjusted by the electric telescopic rod, and then the height between the driven traction roller and the active traction wheel and the driven traction wheel is adjusted, so that the driven traction roller, the active traction wheel and the driven traction wheel can contact the fiber reinforcement net and pull the fiber reinforcement net.
[0018] Preferably, the water inlet of the water pump is fixedly connected to a water inlet pipe, the water outlet of the water pump is fixedly connected to a drain pipe, one side of the water inlet pipe is connected to the water supply tank, the upper end of the drain pipe is connected to the spray pipe, and the rear end of the lower surface of the waste water tank is connected to a drain valve;
[0019] Through the above technical scheme, the cooling water inside the water supply tank is pumped out through the water pump and the water inlet pipe, and flows through the drain pipe and is sprayed out from the spray pipe, and then the cooling water is sprayed onto the woven and heat-cured fiber reinforcement mesh, so that the temperature of the fiber reinforcement mesh is rapidly reduced, and the resin in the fiber reinforcement mesh is rapidly cured, thereby improving the strength of the fiber reinforcement mesh, and the cooling waste water in the wastewater tank can be discharged through the drain valve.
[0020] Preferably, a dipping tank is provided at the rear end of the upper surface of the dipping box, two sand pressing rollers are fixedly connected to the middle of the upper surface of the dipping box, three guide rollers are fixedly connected to the rear of the upper surface of the dipping box, the rear ends of both sides of the upper surface of the dipping box are fixedly connected to connecting columns, and the middle of the outer wall adjacent to one side of the connecting column is fixedly connected to a third yarn dividing plate;
[0021] Through the above technical solution, the yarn can be pressed into the interior of the dipping tank by the sand pressing roller and contact with the resin, and the sand separation of the yarn is completed by the third yarn separating plate.
[0022] Preferably, the middle parts of the outer walls of the front and rear ends of the wire frame are both provided with second yarn dividing plates, the lower end of the inner wall of the wire frame is provided with a heating net, one side of the first tensioning rod penetrates the wire frame to the inside of the wire frame and is rotatably connected to the inner wall of one side of the wire frame, adjacent driven gears are respectively meshed and connected, and adjacent driven gears are meshed and connected to the driving gear;
[0023] Through the above technical scheme, the yarn required for the production of the fiber reinforcement mesh is preheated by the heating net, thereby reducing the surface tension of the yarn, making it easier for the impregnation agent to penetrate and be evenly distributed, thereby improving the impregnation effect and the bonding force between the yarn and the rubber material, and the first servo motor drives the first tensioning rod provided with a driving gear to rotate, and the first tensioning rod provided with a driven gear is rotated, thereby tensioning the yarn passing between the first tensioning rod and the first tensioning rod, so that the yarn maintains a certain tension.
[0024] Preferably, a plurality of yarn posts are fixedly connected to the middle of the upper surface of the placement plate, and a first yarn dividing plate is fixedly connected to the rear end of the upper surface of the placement plate;
[0025] Through the above technical solution, the yarns of the multiple yarn balls on the placement plate can be passed through in batches through the first yarn dividing plate, and the subsequent transmission of the yarns is convenient.
[0026] Preferably, the fiber reinforcement mesh production line uses YB-2400 modified basalt fiber as the basic reinforcement material, and uses the new YB-B2000 (N ID+PCL) polyurethane resin compound, adds flame retardant, and YB-YS100 nano inhibitor for inhibiting the growth of weeds and vines, and is a new environmentally friendly product formed by impregnation, pultrusion, winding, weaving and cutting.
[0027] Through the above technical scheme, the fiber reinforcement mesh produced by the fiber reinforcement mesh production line has the characteristics of light weight, high strength, easy installation, maintenance-free, corrosion-resistant, electrically insulating, fire-resistant, long life, non-magnetic, non-toxic and harmless. At the same time, no waste water or waste gas is discharged during the entire production process, which is more environmentally friendly.
[0028] (III) Beneficial effects
[0029] The present invention provides a fiber reinforcement mesh weaving production line, which has the following beneficial effects:
[0030] 1. The present invention provides a fiber reinforcement mesh weaving production line, which integrates a yarn frame, a dipping mechanism, a winding machine, a drying box, a cooling mechanism and a traction mechanism into a fiber reinforcement mesh production line, thereby eliminating the need for manual transfer of the fiber reinforcement mesh between various devices, thereby improving the production efficiency of the fiber reinforcement mesh, and to a certain extent avoiding manual operation errors and reducing safety hazards.
[0031] 2. The present invention provides a fiber reinforcement mesh weaving production line, which preheats the yarn required for the fiber reinforcement mesh production through a heating net before dipping in glue, thereby reducing the surface tension of the yarn and making the dipping agent easier to penetrate and evenly distribute, thereby improving the dipping effect and the bonding strength between the yarn and the glue, and through a water pump, cooling water is sprayed from a spray pipe to the woven and heat-cured fiber reinforcement mesh, thereby rapidly reducing the temperature of the fiber reinforcement mesh and rapidly curing the resin in the fiber reinforcement mesh, thereby improving the strength of the fiber reinforcement mesh. BRIEF DESCRIPTION OF THE DRAWINGS
[0032] Figure 1 It is a schematic diagram of the main structure of the present invention;
[0033] Figure 2 It is a structural schematic diagram of the creel of the present invention;
[0034] Figure 3 It is a structural schematic diagram of the dipping mechanism of the present invention from a first viewing angle;
[0035] Figure 4 It is a structural schematic diagram of the dipping mechanism of the present invention from a second viewing angle;
[0036] Figure 5 for Figure 3 The enlarged view of point A in the middle;
[0037] Figure 6 It is a structural schematic diagram of the cooling mechanism of the present invention from a first viewing angle;
[0038] Figure 7 A schematic structural diagram of the cooling mechanism of the present invention from a second viewing angle;
[0039] Figure 8 It is a structural schematic diagram of the traction mechanism of the present invention from a first viewing angle;
[0040] Fig. 9 It is a structural schematic diagram of the traction mechanism of the present invention from a second viewing angle.
[0041] Among them, 1. yarn rack; 101. support column; 102. placement plate; 103. yarn column; 104. first yarn dividing plate; 2. dipping mechanism; 201. dipping box; 202. wire frame; 203. second yarn dividing plate; 204. heating net; 205. dipping tank; 206. first control panel; 207. sand pressing roller; 208. connecting column; 209. third yarn dividing plate; 210. mounting plate; 211. first servo motor; 212. first tensioning rod; 213. driving gear; 214. second tensioning rod; 215. driven gear; 216. guide roller; 3. winding machine; 4. drying box; 5. cooling mechanism; 501. mounting frame; 502. waste water tank; 503. mounting frame; 504. 4. Water supply tank; 505. Water pump; 506. Water inlet pipe; 507. Drain pipe; 508. Spray pipe; 509. Drain valve; 510. Second control panel; 6. Traction mechanism; 601. Chassis; 602. Support frame; 603. Slide; 604. Electric telescopic rod; 605. Sliding block; 606. Driven traction roller; 607. Second servo motor; 608. Active rotating shaft; 609. Active traction wheel; 610. First pulley; 611. First transmission belt; 612. First driven rotating shaft; 613. Second pulley; 614. Second driven rotating shaft; 615. Third pulley; 616. Second transmission belt; 617. Driven traction wheel; 618. Third control panel. DETAILED DESCRIPTION
[0042] The following will be combined with the drawings in the embodiments of the present invention to clearly and completely describe the technical solutions in the embodiments of the present invention. Obviously, the described embodiments are only part of the embodiments of the present invention, not all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without creative work are within the scope of protection of the present invention.
[0043] like Figure 1-9 As shown, the embodiment of the present invention provides a fiber reinforcement mesh weaving production line, including two creels 1, a dipping mechanism 2 is provided at the rear end of the two creels 1, a winding machine 3 is provided at the rear end of the dipping mechanism 2, a drying box 4 is provided at the rear end of the winding machine 3, a cooling mechanism 5 is provided at the rear end of the drying box 4, and a traction mechanism 6 is provided at the rear end of the cooling mechanism 5;
[0044] The yarn frame 1 includes four support columns 101, and the middle parts of the inner walls of the adjacent sides of the support columns 101 are respectively fixedly connected with a plurality of placement plates 102. The glue dipping mechanism 2 includes a glue dipping box 201, and a first control panel 206 is arranged at the front end of the outer wall of one side of the glue dipping box 201. The front end of the upper surface of the glue dipping box 201 is fixedly connected with a wire frame 202, and the rear end of the outer wall of the other side of the wire frame 202 is fixedly connected with a mounting plate 210. The upper surface of the mounting plate 210 is fixedly connected with a first servo motor 211 through a plurality of bolts, and the output shaft of the first servo motor 211 is fixedly connected with a first tensioning rod 212, and the other side of the outer wall of the first tensioning rod 212 is fixedly connected with a driving gear 213, and the middle part of the inner wall of one side of the wire frame 202 is rotatably connected with a plurality of second tensioning rods 214, and the other sides of the second tensioning rods 214 penetrate the wire frame 202 to the outside of the wire frame 202 and are fixedly connected with a driven gear 215.
[0045] The cooling mechanism 5 includes a mounting frame 501, a waste water tank 502 is fixedly connected to the middle of the upper surface of the mounting frame 501, a mounting frame 503 is fixedly connected to the upper surface of the waste water tank 502, a water supply tank 504 is fixedly connected to the middle of the inner bottom surface of the mounting frame 501, a water pump 505 is fixedly connected to one side of the front end of the inner bottom surface of the mounting frame 501 by multiple bolts, a second control panel 510 is arranged at the front end of the inner top surface of the mounting frame 501, the upper end of the water supply tank 504 is open, and a spray pipe 508 is fixedly connected to the inner top surface of the mounting frame 503;
[0046] The traction mechanism 6 includes a chassis 601, a third control panel 618 is provided at the rear end of the outer wall on the other side of the chassis 601, a support frame 602 is fixedly connected to the upper surface of the chassis 601, a plurality of slide grooves 603 are respectively provided in the middle of the outer walls on both sides of the support frame 602, a plurality of electric telescopic rods 604 are respectively fixedly connected to the two sides of the upper surface of the support frame 602, a second servo motor 607 is fixedly connected to the other side of the rear end of the upper surface of the chassis 601 by a plurality of bolts, an active shaft 608 is fixedly connected to the output shaft of the second servo motor 607, and a side of the outer wall of the active shaft 608 is penetrated The supporting frame 602 passes through the supporting frame 602 to the inside and is rotatably connected to the inner wall of one side of the supporting frame 602. The driving shaft 608 is fixedly connected to a driving traction wheel 609 on one side of the outer wall of the shaft body. The middle part of the inner wall of one side of the supporting frame 602 is rotatably connected to the first driven shaft 612 and the second driven shaft 614. The first driven shaft 612 and the second driven shaft 614 are fixedly connected to the driven traction wheel 617 on one side of the outer wall of the shaft body. The fiber reinforcement net production line uses YB-2400 modified basalt fiber as the basic reinforcement material and uses the new YB-B2000 (N ID+PCL) polyurethane resin compound, added with flame retardant, YB-YS100 nano inhibitor to inhibit the growth of weeds and vines, a new type of environmentally friendly product formed by impregnation, pultrusion, winding, weaving and cutting. The fiber reinforcement mesh produced by this fiber reinforcement mesh production line has the characteristics of light weight, high strength, easy installation, maintenance-free, corrosion resistance, electrical insulation, fire resistance, long life, non-magnetic, non-toxic and harmless. At the same time, no waste water or waste gas is discharged during the entire production process, which is more environmentally friendly.
[0047] By integrating the yarn frame 1, the dipping mechanism 2, the winding machine 3, the drying box 4, the cooling mechanism 5 and the traction mechanism 6 into a fiber reinforcement mesh production line, there is no need to manually transfer the fiber reinforcement mesh between various devices, thereby improving the production efficiency of the fiber reinforcement mesh, avoiding manual operation errors to a certain extent, and reducing safety hazards.
[0048] The other side of the outer wall of the active shaft 608 is fixedly connected with the first pulley 610, the other side of the first driven shaft 612 penetrates the support frame 602 to the outside of the support frame 602 and is fixedly connected with the second pulley 613, the other side of the second driven shaft 614 penetrates the support frame 602 to the outside of the support frame 602 and is fixedly connected with the third pulley 615, the active shaft 608 provided with the first pulley 610 is driven to rotate by the second servo motor 607, the outer walls of the third pulley 615 and the second pulley 613 are both sleeved with the second transmission belt 616, the outer walls of the second pulley 613 and the first pulley 610 are both sleeved with the first transmission belt 611, through the cooperation of the first transmission belt 611 and the second transmission belt 616 The rotation speed of the active rotating shaft 608 is kept consistent with that of the first driven rotating shaft 612 and the second driven rotating shaft 614, so that the active traction wheel 609 and the driven traction wheel 617 keep the same rotation speed, so that the cured fiber tendon mesh is pulled, the output shaft of the electric telescopic rod 604 passes through the support frame 602 to the inside of the slide groove 603 and is fixedly connected with a slider 605, the sliders 605 slide in the inside of the slide groove 603 respectively, the middle part of the outer wall of one side of the slider 605 near the center of the support frame 602 is respectively rotatably connected with a driven traction roller 606, the height of multiple driven traction rollers 606 is adjusted by the electric telescopic rod 604, and the height between the driven traction roller 606 and the active traction wheel 609 and the driven traction wheel 617 is adjusted, and the The active traction roller 606, the active traction wheel 609 and the driven traction wheel 617 can contact the fiber reinforcement net and pull the fiber reinforcement net. The water inlet of the water pump 505 is fixedly connected with the water inlet pipe 506, and the water outlet of the water pump 505 is fixedly connected with the drain pipe 507. One side of the water inlet pipe 506 is connected to the water supply tank 504, and the upper end of the drain pipe 507 is connected to the spray pipe 508. The rear end of the lower surface of the waste water tank 502 is connected to the drain valve 509. The cooling water in the water supply tank 504 is pumped out through the water pump 505 and the water inlet pipe 506, and flows through the drain pipe 507 and is sprayed from the spray pipe 508, and then the cooling water is sprayed to the woven and heat-cured fiber reinforcement net, so that the temperature of the fiber reinforcement net is rapidly reduced, and the resin in the fiber reinforcement net is rapidly solidified. , improve the strength of the fiber reinforcement network, and the cooling waste water in the waste water tank 502 can be discharged through the drain valve 509, a dipping tank 205 is provided at the rear end of the upper surface of the dipping box 201, two sand pressing rollers 207 are fixedly connected to the middle of the upper surface of the dipping box 201, and three guide rollers 216 are fixedly connected to the rear of the upper surface of the dipping box 201. The rear ends of both sides of the upper surface of the dipping box 201 are fixedly connected with connecting columns 208, and the middle of the outer wall of one side adjacent to the connecting column 208 is fixedly connected with a third yarn dividing plate 209, the yarn can be pressed into the interior of the dipping tank 205 and contact with the resin through the sand pressing roller 207, and the sand separation of the yarn is completed by the third yarn dividing plate 209, and the middle of the outer wall of the front end and the rear end of the wire frame 202 are provided with a second yarn dividing plate 203,A heating net 204 is provided at the lower end of the inner wall of the wire frame 202. One side of the first tensioning rod 212 penetrates the wire frame 202 to the inside of the wire frame 202 and is rotatably connected to the inner wall of one side of the wire frame 202. Adjacent driven gears 215 are respectively meshed and connected, and adjacent driven gears 215 are meshed and connected with the driving gear 213. The yarn required for the production of the fiber reinforcement net is preheated through the heating net 204, thereby reducing the surface tension of the yarn, making it easier for the dipping agent to penetrate and evenly distribute, thereby improving the dipping effect and the bonding force between the yarn and the rubber material, and through the first servo motor 2 11 drives the first tensioning rod 212 provided with a driving gear 213 to rotate, and causes the first tensioning rod 212 provided with a driven gear 215 to rotate, thereby tensioning the yarn passing through the first tensioning rod 212 and the first tensioning rod 212, so that the yarn maintains a certain tension. A plurality of yarn columns 103 are fixedly connected to the middle of the upper surface of the placement plate 102, and a first yarn dividing plate 104 is fixedly connected to the rear end of the upper surface of the placement plate 102. The first yarn dividing plate 104 facilitates the yarns of the plurality of yarn balls on the placement plate 102 to pass through in batches, and facilitates the subsequent transmission of the yarn. ,
[0049] Working principle: When using the fiber reinforcement mesh weaving production line, first, the yarns of the multiple yarn balls on the placement plate 102 are passed through the first yarn dividing plate 104 in batches, and then the yarns are passed through the second yarn dividing plate 203 and between the first tensioning rod 212 and the first tensioning rod 212 in turn, and the yarns required for the fiber reinforcement mesh production are preheated through the heating net 204, and then the first servo motor 211 drives the first tensioning rod 212 provided with a driving gear 213 to rotate, and the first tensioning rod 212 provided with a driven gear 215 is rotated, so as to tension the yarn, and the sand pressing roller 207 can press the yarn into the interior of the dipping tank 205 and contact the resin, and then the yarn is passed through the third yarn dividing plate 209 and the yarn is completely wound through the winding machine 3. The fiber mesh is wound and woven, and then the woven fiber mesh is passed through multiple drying boxes 4, and passed between the waste water tank 502 and the mounting frame 503. At the same time, the cooling water in the water supply tank 504 is pumped out through the water pump 505 and the water inlet pipe 506, and flows through the drain pipe 507 and is sprayed out from the spray pipe 508, and then the cooling water is sprayed onto the woven and heat-cured fiber mesh. Finally, the height of the multiple driven traction rollers 606 is adjusted by the electric telescopic rod 604, and then the height between the driven traction roller 606 and the active traction wheel 609 and the driven traction wheel 617 is adjusted, so that the driven traction roller 606 and the active traction wheel 609 and the driven traction wheel 617 can contact and pull the fiber mesh, take out the fiber mesh and cut the fiber mesh of the target size manually.
[0050] Although embodiments of the present invention have been shown and described, it will be appreciated by those skilled in the art that various changes, modifications, substitutions and variations may be made to the embodiments without departing from the principles and spirit of the present invention, and that the scope of the present invention is defined by the appended claims and their equivalents.
Claims
1. A fiber reinforcement mesh weaving production line, comprising two creels (1), characterized in that: The rear ends of the two yarn racks (1) are provided with a dipping mechanism (2), the rear ends of the dipping mechanism (2) are provided with a winding machine (3), the rear ends of the winding machine (3) are provided with a drying box (4), the rear ends of the drying box (4) are provided with a cooling mechanism (5), and the rear ends of the cooling mechanism (5) are provided with a traction mechanism (6); The yarn rack (1) comprises four support columns (101), and a plurality of placement plates (102) are respectively fixedly connected to the middle of the inner wall of the adjacent side of the support column (101). The glue dipping mechanism (2) comprises a glue dipping box (201), and a first control panel (206) is arranged at the front end of the outer wall of one side of the glue dipping box (201). A wire frame (202) is fixedly connected to the front end of the upper surface of the glue dipping box (201), and a mounting plate (210) is fixedly connected to the rear end of the outer wall of the other side of the wire frame (202). The upper surface of the mounting plate (210) is provided with a first control panel (206). A first servo motor (211) is fixedly connected to the surface by a plurality of bolts, the output shaft of the first servo motor (211) is fixedly connected to a first tensioning rod (212), the other side of the outer wall of the first tensioning rod (212) is fixedly connected to a driving gear (213), a plurality of second tensioning rods (214) are rotatably connected to the middle part of the inner wall of one side of the wire frame (202), the other side of the second tensioning rods (214) penetrates the wire frame (202) to the outside of the wire frame (202) and is fixedly connected to a driven gear (215); The cooling mechanism (5) comprises a mounting frame (501), a waste water tank (502) is fixedly connected to the middle of the upper surface of the mounting frame (501), a mounting frame (503) is fixedly connected to the upper surface of the waste water tank (502), a water supply tank (504) is fixedly connected to the middle of the inner bottom surface of the mounting frame (501), a water pump (505) is fixedly connected to one side of the front end of the inner bottom surface of the mounting frame (501) by means of a plurality of bolts, a second control panel (510) is arranged at the front end of the inner top surface of the mounting frame (501), the upper end of the water supply tank (504) is open, and a spray pipe (508) is fixedly connected to the inner top surface of the mounting frame (503); The traction mechanism (6) comprises a chassis (601), a third control panel (618) is provided at the rear end of the outer wall on the other side of the chassis (601), a support frame (602) is fixedly connected to the upper surface of the chassis (601), a plurality of slide grooves (603) are respectively provided in the middle of the outer walls on both sides of the support frame (602), a plurality of electric telescopic rods (604) are respectively fixedly connected to the two sides of the upper surface of the support frame (602), a second servo motor (607) is fixedly connected to the other side of the rear end of the upper surface of the chassis (601) by a plurality of bolts, and the output shaft of the second servo motor (607) is fixedly connected to the output shaft of the second servo motor (607). A driving shaft (608) is connected, one side of the outer wall of the driving shaft (608) passes through the support frame (602) to the inside of the support frame (602) and is rotatably connected to the inner wall of one side of the support frame (602), one side of the outer wall of the shaft of the driving shaft (608) is fixedly connected to a driving traction wheel (609), the middle part of the inner wall of one side of the support frame (602) is rotatably connected to a first driven shaft (612) and a second driven shaft (614), and one side of the outer wall of the shaft of the first driven shaft (612) and the second driven shaft (614) is fixedly connected to a driven traction wheel (617).
2. The fiber reinforcement mesh weaving production line according to claim 1 is characterized in that: The other side of the outer wall of the shaft of the active rotating shaft (608) is fixedly connected to a first pulley (610), the other side of the first driven rotating shaft (612) passes through the support frame (602) to the outside of the support frame (602) and is fixedly connected to a second pulley (613), and the other side of the second driven rotating shaft (614) passes through the support frame (602) to the outside of the support frame (602) and is fixedly connected to a third pulley (615).
3. The fiber reinforcement mesh weaving production line according to claim 2 is characterized in that: The outer walls of the third pulley (615) and the second pulley (613) are both sleeved with a second transmission belt (616), and the outer walls of the second pulley (613) and the first pulley (610) are both sleeved with a first transmission belt (611).
4. The fiber reinforcement mesh weaving production line according to claim 1 is characterized in that: The output shafts of the electric telescopic rods (604) all penetrate the support frame (602) to the inside of the slide groove (603) and are fixedly connected to the sliders (605). The sliders (605) all slide inside the slide grooves (603) respectively. The middle part of the outer wall of one side of the slider (605) near the center of the support frame (602) is rotatably connected to a driven traction roller (606).
5. The fiber reinforcement mesh weaving production line according to claim 1 is characterized in that: The water inlet of the water pump (505) is fixedly connected to a water inlet pipe (506), and the water outlet of the water pump (505) is fixedly connected to a drain pipe (507). One side of the water inlet pipe (506) is connected to the water supply tank (504), and the upper end of the drain pipe (507) is connected to the spray pipe (508). The rear end of the lower surface of the waste water tank (502) is connected to a drain valve (509).
6. The fiber reinforcement mesh weaving production line according to claim 1, characterized in that: A dipping tank (205) is provided at the rear end of the upper surface of the dipping box (201); two sand pressing rollers (207) are fixedly connected to the middle of the upper surface of the dipping box (201); three guide rollers (216) are fixedly connected to the rear of the upper surface of the dipping box (201); connecting columns (208) are fixedly connected to the rear ends of both sides of the upper surface of the dipping box (201); and a third yarn dividing plate (209) is fixedly connected to the middle of the outer wall adjacent to the connecting column (208).
7. The fiber reinforcement mesh weaving production line according to claim 1, characterized in that: A second yarn dividing plate (203) is provided at the middle of the outer wall of the front end and the rear end of the wire frame (202); a heating net (204) is provided at the lower end of the inner wall of the wire frame (202); one side of the first tensioning rod (212) penetrates the wire frame (202) to the inside of the wire frame (202) and is rotatably connected to the inner wall of one side of the wire frame (202); adjacent driven gears (215) are respectively meshed and connected, and adjacent driven gears (215) are meshed and connected to the driving gear (213).
8. The fiber reinforcement mesh weaving production line according to claim 1 is characterized in that: A plurality of yarn poles (103) are fixedly connected to the middle of the upper surface of the placement plate (102), and a first yarn dividing plate (104) is fixedly connected to the rear end of the upper surface of the placement plate (102).
9. The fiber reinforcement mesh weaving production line according to claim 1, characterized in that: The fiber mesh production line uses YB-2400 modified basalt fiber as the basic reinforcement material, and uses the new YB-B2000 (NID+PCL) polyurethane resin compound, and adds flame retardants and YB-YS100 nano inhibitors that inhibit the growth of weeds and vines.