Automatic laying mechanism for reinforced glass fibers of wind power generation fairing
By designing a detachable feeding cylinder and a laser cutting head, the problem of not being able to change specifications and types in existing technologies has been solved, realizing the flexibility and applicability of the automatic fiberglass laying mechanism for wind power generation fairings.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- JILIN DONGQI TECH CO LTD
- Filing Date
- 2025-04-17
- Publication Date
- 2026-04-10
AI Technical Summary
The existing automatic fiberglass laying mechanism for wind turbine fairings cannot replace the feed cylinder and laser cutting head with the corresponding specifications or types according to different production needs, and cannot meet a wider range of production requirements.
The design incorporates a detachable feeding cylinder and laser cutting head. The feeding cylinder can be quickly replaced via bolts and nuts, while the laser cutting head can be quickly disassembled and installed via a rotating hand-tightening block and worm gear mechanism.
This improves the flexibility and applicability of the equipment, enabling the rapid replacement of suitable feeding cylinders and laser cutting heads according to different fairing manufacturing needs, thus enhancing production flexibility and applicability.
Smart Images

Figure CN224103572U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The utility model relates to automatic laying mechanism technical field, concretely is a kind of wind power generation fairing reinforced glass fiber automatic laying mechanism. BACKGROUND
[0002] Automatic laying device is a kind of technical equipment that can realize efficient, accurate material laying, it is widely used in composite manufacturing, weaving, plastic processing and other fields, mainly used to lay various materials on mold or other substrate according to preset path and shape, automatic laying device is a kind of efficient, accurate, flexible technical equipment, it is of great significance to improve the quality and production efficiency of composite products, wind power generation fairing often uses automatic laying device in the production process.
[0003] Chinese patent provides a kind of wind power generation fairing reinforced glass fiber automatic laying mechanism, publication number is CN222061271U, including laying mechanism, the inner surface wall of laying mechanism is movably embedded with suction device, laying mechanism includes base. Under the action of laying mechanism, first, the formed rubber coating is placed in recess, then the glass fiber cloth is pulled to the rubber coating surface, at this time, the extrusion plate is lowered to fix the glass fiber cloth, the first sliding block drives the glass fiber cloth to be continuously laid on the rubber coating surface, the roller will flatten the glass fiber cloth, the glass fiber cloth can be laid continuously and quickly by the equipment, improve overall work efficiency, not only can reduce labor cost, but also can guarantee the stability and consistency of product quality, workers can reduce the damage of glass fiber cloth to health by reducing the contact with glass fiber cloth.
[0004] But the automatic laying mechanism cannot replace the corresponding specifications or types of feeding cylinder and laser cutting head according to different production needs, cannot meet more extensive production needs, therefore need to provide a kind of wind power generation fairing reinforced glass fiber automatic laying mechanism. UTILITY MODEL CONTENT
[0005] The utility model aims at providing a kind of wind power generation fairing reinforced glass fiber automatic laying mechanism to solve the problems in the above background.
[0006] In order to achieve the above object, the utility model provides the following technical scheme: A kind of wind power generation fairing reinforced glass automatic lay mechanism, including base, fixed mechanism, lay mechanism and air extraction mechanism are provided on the base, the lay mechanism includes sliding seat, feeding cylinder, sliding block and laser cutting head, first dismounting assembly is provided on the sliding seat and feeding cylinder, second dismounting assembly is provided on the sliding block and laser cutting head;The first dismounting assembly includes the rotating shaft fixedly arranged at the both ends of feeding cylinder, installation slot is opened in the sliding seat, connecting sleeve is rotatably arranged in the installation slot, fixed hole is opened in the rotating shaft and connecting sleeve, bolt is inserted in the fixed hole, the bolt passes through fixed hole and is threadedly connected with nut;The second dismounting assembly includes the mounting plate fixedly arranged on laser cutting head, the connecting ring is fixedly installed on the mounting plate, the clamping hole is opened in the connecting ring, the embedding slot that is embedded with the connecting ring is opened in the bottom of the sliding block, the clamping groove is opened in the embedding slot, the receiving cavity and the winding cavity are opened in the sliding block, the moving block is slidably arranged in the receiving cavity, the clamping block that is adapted to the clamping hole and the clamping groove is fixedly installed on the side of the moving block, spring is arranged between the other side of the moving block and the receiving cavity, the rotating rod is rotatably arranged in the winding cavity, the winding wheel is fixedly sleeved on the rotating rod, the connecting rope is wound on the winding wheel, one end of the connecting rope penetrates the winding cavity and is connected with the moving block, the worm wheel is fixedly sleeved on the rotating rod, the worm is rotatably arranged on the sliding block and is rotatably connected with the winding cavity, and the worm is meshingly connected with the worm wheel.
[0007] Preferably, the clamping block slides through the receiving cavity and is clamped with the clamping groove through the clamping hole, and the end of the worm away from the worm wheel is fixedly connected with a hand screw block.
[0008] Preferably, the base is provided with a groove, the air extraction mechanism includes a lap joint groove provided on the groove, the lap joint groove is provided with a sealing plate, and the sealing plate is provided with a handle.
[0009] Preferably, the sealing plate is provided with a vacuum pump, and the air suction pipe of the vacuum pump penetrates the sealing plate and extends into the groove.
[0010] Preferably, the fixed mechanism includes a support mounted on the base, the support is provided with an electric telescopic rod, and the output rod of the electric telescopic rod slides through the support and is fixedly connected with a pressing plate.
[0011] Preferably, the lay mechanism further includes a guide rail mounted on the base, the sliding seat is slidably connected with the guide rail, and the fixed plate is fixedly installed between the two sliding seats.
[0012] Preferably, the fixed plate is provided with an air cylinder, the output rod of the air cylinder slides through the fixed plate and is fixedly connected with a lifting frame, and the lifting frame is rotatably provided with a roller.
[0013] Preferably, the bottom of the fixed plate is provided with an electric sliding rail, and the sliding block is in sliding connection with the electric sliding rail.
[0014] Compared with the prior art, the wind power generation fairing reinforcing glass fiber automatic laying mechanism has the advantages that:
[0015] 1) The wind power generation fairing reinforcing glass fiber automatic laying mechanism, by removing the bolts and nuts, the rotating shaft is unlocked and connected with the connecting sleeve, then the rotating shaft is taken out of the connecting sleeve, the disassembly of the feeding cylinder is completed, after replacement, the rotating shaft of the feeding cylinder is put into the connecting sleeve again, the rotating shaft and the fixing hole on the connecting sleeve are aligned, then the bolts are passed through the fixing hole and fixed by nuts, the replacement and installation of the feeding cylinder are completed, by designing the feeding cylinder as a detachable type, the user can quickly replace the suitable feeding cylinder according to the actual fairing manufacturing requirements, so that the flexibility and applicability of the equipment are improved.
[0016] 2) The wind power generation fairing reinforcing glass fiber automatic laying mechanism, by rotating the hand screw block, the winding wheel rotates and winds the connecting rope, the moving block is driven by the tension to drive the clamping block to disengage from the clamping groove and the clamping hole, then the connecting ring is pulled out of the embedding groove, the quick disassembly of the laser cutting head is completed, after replacement, the hand screw block is rotated again to retract the clamping block, at this time, the moving block extrudes the spring, then the connecting ring is embedded with the embedding groove, then the hand screw block is loosened, the clamping block automatically passes through the clamping block and is clamped with the clamping groove under the rebounding action of the spring, the locking and fixing of the connecting ring are realized, the replacement and installation of the laser cutting head are completed, the detachable laser cutting head can be quickly replaced according to different production requirements, and the equipment flexibility and applicability are greatly improved. BRIEF DESCRIPTION OF DRAWINGS
[0017] Figure 1 It is a three-dimensional structure schematic view of the wind power generation fairing reinforcing glass fiber automatic laying mechanism in the embodiment of the utility model;
[0018] Figure 2 It is a three-dimensional structure schematic view of the air extraction mechanism in the embodiment of the utility model;
[0019] Figure 3 It is a three-dimensional structure schematic view of the laying mechanism in the embodiment of the utility model;
[0020] Figure 4 It is a three-dimensional structure schematic view of the first disassembly and assembly component in the embodiment of the utility model;
[0021] Figure 5 It is a three-dimensional structure schematic view of the fixed plate in the embodiment of the utility model;
[0022] Figure 6 It is a sectional structure schematic view of the sliding block in the embodiment of the utility model;
[0023] Figure 7 For the structure of the embodiment of the utility model Figure 6 The structure of A in the middle of the embodiment of the utility model is enlarged.
[0024] In the figure: 1, base; 11, groove;
[0025] 2, fixed mechanism; 21, support; 22, electric telescopic rod; 23, pressing plate;
[0026] 3, laying mechanism; 31, guide rail; 32, sliding seat; 33, fixed plate; 34, feeding cylinder;
[0027] 35, first disassembling and assembling component; 351, rotating shaft; 352, mounting groove; 353, connecting sleeve; 354, fixed hole; 355, bolt; 356, nut;
[0028] 36, air cylinder; 37, lifting frame; 38, roller; 39, electric sliding rail; 310, sliding block; 311, laser cutting head;
[0029] 312, second disassembling and assembling component; 3121, mounting plate; 3122, connecting ring; 3123, clamping hole; 3124, embedding groove; 3125, clamping groove; 3126, storage cavity; 3127, moving block; 3128, clamping block; 3129, spring; 31210, winding cavity; 31211, rotating rod; 31212, winding wheel; 31213, connecting rope; 31214, worm wheel; 31215, worm; 31216, hand twisting block;
[0030] 4, air extraction mechanism; 41, sealing plate; 42, lapping groove; 43, handle; 44, vacuum pump. DETAILED DESCRIPTION
[0031] The technical scheme in the embodiments of the utility model will be described clearly and completely below in conjunction with the drawings in the embodiments of the utility model. Obviously, the described embodiments are only part of the embodiments of the utility model, rather than all the embodiments. Based on the embodiments in the utility model, all the other embodiments obtained by the ordinary skilled in the art without creative labor fall within the scope of protection of the utility model.
[0032] Embodiment one
[0033] Combined with Figures 1-7The utility model provides a kind of wind power generation fairlead enhancement glass fiber automatic laying mechanism, including base 1, fixed mechanism 2, laying mechanism 3 and suction mechanism 4 are provided on base 1, recess 11 is opened on base 1, suction mechanism 4 includes overlap slot 42 opened in recess 11, sealing plate 41 is overlapped on overlap slot 42, handle 43 is installed on sealing plate 41, vacuum pump 44 is installed on sealing plate 41, the suction pipe of vacuum pump 44 penetrates sealing plate 41 and extends into recess 11;Fixed mechanism 2 includes support 21 installed on base 1, electric telescopic rod 22 is installed on support 21, the output rod of electric telescopic rod 22 slidingly penetrates support 21 and is fixedly connected with pressing plate 23;Laying mechanism 3 includes sliding seat 32, feeding cylinder 34, sliding block 310 and laser cutting head 311, first dismounting assembly 35 is provided on sliding seat 32 with feeding cylinder 34, second dismounting assembly 312 is provided on sliding block 310 with laser cutting head 311;Laying mechanism 3 further includes guide rail 31 installed on base 1, sliding seat 32 is slidably connected with guide rail 31, fixed plate 33 is fixedly installed between two sliding seats 32, cylinder 36 is installed on fixed plate 33, the output rod of cylinder 36 slidingly penetrates fixed plate 33 and is fixedly connected with lifting frame 37, drum 38 is rotatably arranged in lifting frame 37, the bottom of fixed plate 33 is provided with electric slide rail 39, and sliding block 310 is slidably connected with electric slide rail 39.
[0034] Referring to Figure 3 And Figure 4 Further, the first dismounting assembly 35 includes a shaft 351 fixedly arranged at both ends of the feeding cylinder 34, an installation groove 352 is formed in the sliding seat 32, a connecting sleeve 353 is rotatably arranged in the installation groove 352, a fixing hole 354 is formed in the shaft 351 and the connecting sleeve 353, and a bolt 355 is inserted into the fixing hole 354 and screwed with a nut 356.
[0035] Specifically, by removing the bolt 355 and the nut 356, the shaft 351 and the connecting sleeve 353 are unlocked and connected, and then the shaft 351 is removed from the connecting sleeve 353, so that the feeding cylinder 34 can be disassembled. After replacement, the shaft 351 of the feeding cylinder 34 is placed in the connecting sleeve 353 again, the fixing holes 354 on the shaft 351 and the connecting sleeve 353 are aligned, the bolt 355 is inserted through the fixing hole 354, and the nut 356 is used for fixing, so that the replacement and installation of the feeding cylinder 34 can be completed. By designing the feeding cylinder 34 as detachable, the user can quickly replace the suitable feeding cylinder 34 according to the actual fairing manufacturing requirements, thereby improving the flexibility and applicability of the equipment.
[0036] Referring to Figures 5-7, further get, the second disassembly component 312 includes the mounting plate 3121 fixedly arranged on the laser cutting head 311, the connecting ring 3122 is fixedly installed on the mounting plate 3121, the connecting ring 3122 is provided with the clamping hole 3123, the bottom of the sliding block 310 is provided with the embedded groove 3124 matched with the connecting ring 3122, the embedded groove 3124 is provided with the clamping groove 3125, the sliding block 310 is provided with the receiving cavity 3126 and the winding cavity 31210, the movable block 3127 is slidably arranged in the receiving cavity 3126, the movable block 3127 is fixedly installed with the clamping block 3128 matched with the clamping hole 3123 and the clamping groove 3125, the movable block 3127 is provided with the spring 3129 between the other side and the receiving cavity 3126, the rotating rod 31211 is rotatably arranged in the winding cavity 31210, the winding wheel 31212 is fixedly sleeved on the rotating rod 31211, the connecting rope 31213 is wound on the winding wheel 31212, one end of the connecting rope 31213 penetrates the winding cavity 31210 and is connected with the movable block 3127, the worm wheel 31214 is fixedly sleeved on the rotating rod 31211, the worm 31215 is rotatably arranged on the sliding block 310 and is rotatably connected with the winding cavity 31210, the worm 31215 is rotatably connected with the worm wheel 31214, the clamping block 3128 is slidably arranged in the receiving cavity 3126 and is clamped with the clamping groove 3125 through the clamping hole 3123, the end of the worm 31215 away from the worm wheel 31214 is fixedly connected with the hand screw block 31216.
[0037] Specifically, the winding wheel 31212 is rotated by rotating the hand screw block 31216, and the connecting rope 31213 is wound, so that the movable block 3127 is driven by the tension to drive the clamping block 3128 to separate from the clamping groove 3125 and the clamping hole 3123, then the connecting ring 3122 is pulled out from the embedded groove 3124, and the laser cutting head 311 can be quickly disassembled, and after replacement, the hand screw block 31216 is rotated again to make the clamping block 3128 retract, at this time, the movable block 3127 is pressed to the spring 3129, then the connecting ring 3122 is embedded with the embedded groove 3124, then the hand screw block 31216 is loosened, the clamping block 3128 is automatically passed through the clamping hole 3123 and clamped with the clamping groove 3125 under the rebounding action of the spring 3129, the connecting ring 3122 is locked and fixed, the laser cutting head 311 is replaced and installed, and the detachable laser cutting head 311 can be quickly replaced according to different production needs, and is suitable for manufacturing different shapes and sizes of fairing, so that the flexibility and applicability of the equipment are greatly improved.
[0038] In actual operation, the glue is placed in the groove 11, then the fiberglass cloth is pulled to the surface of the glue, then the electric telescopic rod 22 is started to make the pressing plate 23 press one end of the fiberglass cloth to fix it, then the sliding seat 32 slides on the guide rail 31 and drives the fiberglass cloth on the surface of the feeding cylinder 34 to gradually lay on the surface of the glue, at the same time, the cylinder 36 drives the roller 38 to descend and contact the fiberglass cloth to make it roll forward on the fiberglass cloth, so that the fiberglass cloth is laid flat on the surface of the glue, after laying, the laser cutting head 311 is started, the sliding block 310 slides in the electric sliding rail 39 and drives the laser cutting head 311 to cut the fiberglass cloth, after laying, the worker pours resin and auxiliary materials into the groove 11, and the sealing plate 41 is placed on the lap joint groove 42 to seal the groove 11, at this time, the vacuum pump 44 is started to pump the air in the groove 11 out and discharge it to the outside, so that the resin is easily immersed in the fiberglass cloth, and the quality of the flow guide cover is improved;
[0039] When the feeding cylinder 34 needs to be replaced, the bolt 355 and the nut 356 are removed to unlock the connecting sleeve 353 and the rotating shaft 351, then the rotating shaft 351 is taken out of the connecting sleeve 353, so that the feeding cylinder 34 can be disassembled and replaced, and after replacement, the rotating shaft 351 of the feeding cylinder 34 is put into the connecting sleeve 353 again, the fixing holes 354 on the rotating shaft 351 and the connecting sleeve 353 are aligned, then the bolt 355 is passed through the fixing holes 354 and fixed by the nut 356, so that the replacement and installation of the feeding cylinder 34 are completed.
[0040] When the laser cutting head 311 needs to be replaced, the hand screw block 31216 is rotated to drive the worm 31215 and the worm wheel 31214 engaged with the worm 31215 to rotate, the worm wheel 31214 drives the winding wheel 31212 on the rotating rod 31211 to rotate, and when the winding wheel 31212 rotates, the connecting rope 31213 can be wound, so that the moving block 3127 is driven by the tension to drive the clamping block 3128 to disengage from the clamping groove 3125 and the clamping hole 3123, then the connecting ring 3122 is pulled out of the embedding groove 3124, so that the laser cutting head 311 can be quickly disassembled and replaced, after replacement, the hand screw block 31216 is rotated again to make the clamping block 3128 retract, at this time, the moving block 3127 presses the spring 3129, then the connecting ring 3122 is embedded in the embedding groove 3124, then the hand screw block 31216 is loosened, the clamping block 3128 automatically passes through the clamping hole 3123 and is clamped with the clamping groove 3125 under the rebounding action of the spring 3129, so that the connecting ring 3122 is locked and fixed, and the replacement and installation of the laser cutting head 311 are completed.
[0041] Although the embodiments of the present application have been shown and described, it can be understood by those skilled in the art that various changes, modifications, replacements and modifications can be made to the embodiments without departing from the principles and spirits of the present application, and the scope of the present application is defined by the appended claims and their equivalents.
Claims
1. An automatic fiberglass laying mechanism for wind turbine fairings, comprising a base (1), characterized in that: The base (1) is provided with a fixing mechanism (2), a laying mechanism (3) and an air extraction mechanism (4). The laying mechanism (3) includes a sliding seat (32), a feeding cylinder (34), a slider (310) and a laser cutting head (311). The sliding seat (32) and the feeding cylinder (34) are provided with a first disassembly assembly (35), and the slider (310) and the laser cutting head (311) are provided with a second disassembly assembly (312). The first disassembly and assembly component (35) includes a rotating shaft (351) fixedly disposed at both ends of the feeding cylinder (34). The sliding seat (32) is provided with an installation groove (352). A connecting sleeve (353) is rotatably disposed in the installation groove (352). Both the connecting sleeve (353) and the rotating shaft (351) are provided with fixing holes (354). A bolt (355) is inserted into the fixing hole (354). The bolt (355) passes through the fixing hole (354) and is threaded with a nut (356). The second disassembly and assembly assembly (312) includes a mounting plate (3121) fixedly mounted on the laser cutting head (311). A connecting ring (3122) is fixedly mounted on the mounting plate (3121). A locking hole (3123) is provided on the connecting ring (3122). A groove (3124) is provided at the bottom of the slider (310) to fit into the connecting ring (3122). A slot (3125) is provided in the groove (3124). A storage cavity (3126) and a winding cavity (31210) are provided in the slider (310). A moving block (3127) is slidably arranged in the storage cavity (3126). A locking block (312) adapted to the locking hole (3123) and the slot (3125) is fixedly mounted on one side of the moving block (3127). 8) A spring (3129) is provided between the other side of the moving block (3127) and the receiving cavity (3126). A rotating rod (31211) is rotatably provided in the winding cavity (31210). A winding wheel (31212) is fixedly sleeved on the rotating rod (31211). A connecting rope (31213) is wound on the winding wheel (31212). One end of the connecting rope (31213) passes through the winding cavity (31210) and is connected to the moving block (3127). A worm gear (31214) is fixedly sleeved on the rotating rod (31211). A worm (31215) is rotatably provided on the slider (310) and rotatably connected to the winding cavity (31210). The worm (31215) is meshed with the worm gear (31214).
2. The automatic fiberglass laying mechanism for wind turbine fairings according to claim 1, characterized in that: The locking block (3128) slides through the storage cavity (3126) and passes through the locking hole (3123) to engage with the locking groove (3125). The end of the worm (31215) away from the worm wheel (31214) is fixedly connected to a hand-tightening block (31216).
3. The automatic fiberglass laying mechanism for wind turbine fairing according to claim 1, characterized in that: The base (1) has a groove (11) and the air extraction mechanism (4) includes an overlapping groove (42) on the groove (11). A sealing plate (41) is attached to the overlapping groove (42) and a handle (43) is installed on the sealing plate (41).
4. The automatic fiberglass laying mechanism for wind turbine fairing according to claim 3, characterized in that: A vacuum pump (44) is installed on the sealing plate (41), and the suction pipe of the vacuum pump (44) passes through the sealing plate (41) and extends into the groove (11).
5. The automatic fiberglass laying mechanism for wind turbine fairing according to claim 1, characterized in that: The fixing mechanism (2) includes a bracket (21) installed on the base (1), an electric telescopic rod (22) is installed on the bracket (21), and the output rod of the electric telescopic rod (22) slides through the bracket (21) and is fixedly connected to a pressure plate (23).
6. The automatic fiberglass laying mechanism for wind turbine fairing according to claim 1, characterized in that: The laying mechanism (3) also includes a guide rail (31) mounted on the base (1), the sliding seat (32) is slidably connected to the guide rail (31), and a fixing plate (33) is fixedly installed between the two sliding seats (32).
7. The automatic fiberglass laying mechanism for wind turbine fairing according to claim 6, characterized in that: A cylinder (36) is installed on the fixed plate (33). The output rod of the cylinder (36) slides through the fixed plate (33) and is fixedly connected to a lifting frame (37). A roller (38) is rotatably arranged inside the lifting frame (37).
8. The automatic fiberglass laying mechanism for wind turbine fairing according to claim 7, characterized in that: The bottom of the fixed plate (33) is equipped with an electric slide rail (39), and the slider (310) is slidably connected to the electric slide rail (39).
Citation Information
Patent Citations
Automatic laying mechanism for reinforced glass fibers of wind power generation fairing
CN222061271U