Coiled material compounding machine with automatic gluing device
Through the coordination of quantitative glue-on mechanism, heating temperature control and drying auxiliary mechanism, the uneven coating and foreign matter problems of the coil composite machine during high-speed operation are solved, uniform coating and foreign matter removal of glue are achieved, and production stability and composite quality are improved.
Patent Information
- Application Number
- CN202510508495.7
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-04-22
- Publication Date
- 2025-07-11
AI Technical Summary
The existing coil composite machines with automatic glueing devices are prone to uneven coating during high-speed operation, and the glue spray head is easily blocked, resulting in uneven glue volume, affecting production capacity, and the coil may be accompanied by foreign matter, resulting in batch scrapping, and the ideal composite effect cannot be achieved.
The quantitative glue-on mechanism, heating temperature control mechanism and drying auxiliary mechanism are adopted to achieve uniform coating of glue and foreign matter removal through the cooperation of the servo motor and the main motor, prevent the glue spray head from being blocked and ensure the composite quality.
It improves the uniformity of the coating of the glue, avoids the blockage of the glue, ensures the quality and production capacity of the coil composite, reduces batch scrapping, and improves production stability.
Smart Images

Figure CN120287715A_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of coil laminating machines, and more specifically, to a coil laminating machine with an automatic glue application device. Background Art
[0002] A coil laminating machine is a device used to laminate two or more different materials of coils (such as films, papers, aluminum foils, non-woven fabrics, etc.) together through methods such as hot pressing, gluing, or coating, and is widely used in industries such as packaging, building materials, automotive, and medical.
[0003] Currently, the coil laminating machine with an automatic glue application device has the following deficiencies in use: when the existing coil laminating machine with an automatic glue application device operates at high speed, it is prone to uneven coating. For example, traditional equipment still needs to manually adjust the glue and then pour it into the glue application device. However, during long-term operation, with the change of external temperature, the glue is prone to clogging the glue nozzle, resulting in uneven glue coating. Once the glue is uneven, it will lead to uneven drying. If it is discovered in time, it can still be cut and processed. Once it occurs for a long time, the loss is huge, and the processing also requires frequent shutdown and adjustment, affecting production capacity. Moreover, sometimes foreign objects are accompanied by the coil during gluing and are usually discovered only after winding, resulting in batch scrapping, but an ideal lamination effect cannot be achieved and other problems.
[0004] The existing coil laminating machine with an automatic glue application device has the above problems. In view of this, we propose a coil laminating machine with an automatic glue application device. Summary of the Invention
[0005] The purpose of the present invention is to provide a coil laminating machine with an automatic glue application device to overcome the above defects in the prior art.
[0006] In view of the deficiencies of the prior art, the present invention provides a coil laminating machine with an automatic glue application device, which solves the problems that: when the existing coil laminating machine with an automatic glue application device operates at high speed, it is prone to uneven coating. For example, traditional equipment still needs to manually adjust the glue and then pour it into the glue application device. However, during long-term operation, with the change of external temperature, the glue is prone to clogging the glue nozzle, resulting in uneven glue coating. Once the glue is uneven, it will lead to uneven drying. If it is discovered in time, it can still be cut and processed. Once it occurs for a long time, the loss is huge, and the processing also requires frequent shutdown and adjustment, affecting production capacity. Moreover, sometimes foreign objects are accompanied by the coil during gluing and are usually discovered only after winding, resulting in batch scrapping, but an ideal lamination effect cannot be achieved and other problems; To achieve the above purposes, the present invention is realized through the following technical solutions: The technical solution adopted by the present invention to solve its technical problems is: a coiled material laminating machine with an automatic gluing device, including a coiled material laminating machine body. Inside the coiled material laminating machine body, a main conveying roller is rotatably installed. Inside the coiled material laminating machine body, a main conveying roller is rotatably installed. A positioning frame is fixedly connected inside the coiled material laminating machine body. The main conveying roller is located above the positioning frame. A quantitative gluing mechanism is arranged inside the positioning frame. The quantitative gluing mechanism includes two interconnected transmission rubber tubes inserted and fixedly arranged on the upper part of the composite molding material. Injection channels are inserted and fixedly connected to both side walls of the positioning frame. A piston push plate is slidably arranged inside the injection channel. A front rod is fixedly connected to the outer surface of the piston push plate. The injection channel is communicated with the transmission rubber tube. Dividing rubber meshes corresponding to the injection channels are inserted on both side walls of the positioning frame. A through-port frame is fixedly connected inside the coiled material laminating machine body. A pre-treatment protection mechanism is installed inside the through-port frame. A heating temperature control mechanism is rotatably installed inside the coiled material laminating machine body. Two adjusting pins are fixedly connected to the inner wall of the coiled material laminating machine body. A coiled material conveying mechanism is rotatably installed inside the coiled material laminating machine body.
[0007] Preferably, a drying auxiliary mechanism is jointly arranged inside the two adjusting pins. The drying auxiliary mechanism includes a drying air duct tube movably arranged inside the two adjusting pins. A number of drying air jet ports are installed on the outer surface of the drying air duct tube. A plurality of auxiliary blocking rods are fixedly connected to the outer surface of the drying air duct tube. A pressing and winding roller and a guiding convex block roller are respectively rotatably installed inside the coiled material laminating machine body. The pressing and winding roller and the guiding convex block roller are used in cooperation with the main conveying roller.
[0008] Preferably, a drying spray channel is fixedly connected to the outer surface of the drying air duct tube. A gravity block for cooperating with the drying spray channel is fixedly connected to the lower surface of the drying air duct tube.
[0009] Preferably, the heating temperature control mechanism includes a swinging frame rotatably installed inside the coiled material laminating machine body. Friction heat generating sheets are fixedly connected to both ends of the swinging frame. Two heating sheets for cooperating with the friction heat generating sheets are arranged on the inner surface of the positioning frame.
[0010] Preferably, inclined plates are fixedly sleeved on both sides of the swinging frame. The two front rods are respectively rotatably connected to the inclined plates.
[0011] Preferably, a main motor is fixedly installed inside the coiled material laminating machine body. A runner is fixedly sleeved on the output end of the main motor. A stretching rod is rotatably connected to one side of the runner. The stretching rod is rotatably connected to one side of the swinging frame.
[0012] Preferably, the preprocessing protection mechanism includes a servo motor fixedly installed in the middle of the through-port frame. Two traction sliders are slidably installed inside the through-port frame. Rack plates are fixedly connected to the upper surfaces of the two traction sliders. A gear is fixedly sleeved on the output end of the servo motor. The gears are engaged with the two rack plates respectively. Two positioning rods are fixedly connected inside the through-port frame. The two positioning rods are respectively arranged in an inserted and sliding manner with the traction sliders.
[0013] Preferably, linkage frames are fixedly connected to one sides of the two traction sliders respectively. Micro push rods are fixedly installed on the outer surfaces of the two linkage frames respectively. Two pull rods are rotatably connected to the two micro push rods respectively.
[0014] Preferably, push bar plates are rotatably connected to one sides of the two linkage frames respectively. The push bar plates are rotatably connected to the pull rods. A rubber film is arranged on one side of the push bar plates.
[0015] Preferably, the coil material conveying mechanism includes a second conveying roller, a third conveying roller and a fourth conveying roller rotatably installed at the lower part inside the coil material laminating machine. A first coil material is wound around the outer surfaces of the second conveying roller, the third conveying roller and the fourth conveying roller together. Two vertically distributed first conveying rollers are arranged inside the coil material laminating machine. A second coil material is wound between the two first conveying rollers and the laminating roller. A composite formed material is wound around the outer surface of the main conveying roller.
[0016] The beneficial effects of the present invention are as follows: 1. In a coil material laminating machine with an automatic gluing device according to the present invention, the rotation of the output shaft of the servo motor drives the gear to rotate. After the gear rotates, it can drive the rack plate to move, thereby driving the traction slider to slide inside the through-port frame. When the traction slider moves, it slides outside the positioning rod, and at the same time drives the linkage frame to move synchronously. When the linkage frame moves, it can drive the push bar plate to move. When the push bar plate moves outward, it can drive the rubber film to move, removing foreign matters and wrinkles on the gluing surface of the coil material. During the reset process of the push bar plate, the micro push rod operates and contracts to drive the pull rod to move, so as to drive the push bar plate to rotate on the linkage frame, making the rubber film separate from the coil material and preventing inward pushing. This is beneficial for the coil material laminating machine with an automatic gluing device to avoid the influence of adsorbed foreign matters on the coil material during the coil material gluing and laminating process and improve the laminating effect.
[0017] 2. In a coil laminating machine with an automatic gluing device according to the present invention, the output shaft of the main motor rotates the runner, thereby driving the stretching rod to swing circumferentially. During the movement of the stretching rod, it can drive the swing frame to swing reciprocally up and down in a fixed direction, and then drive the friction heat generating piece to move and cooperate with the heating piece to generate friction heat. The heat is conducted to the gluing position, and the inclined plate follows the movement driven by the swing frame. After the inclined plate moves, it can drive the front rod to move, so that the piston push plate reciprocates in the glue injection channel. When the piston push plate slides downward, it can suck the glue in the transmission rubber tube and send it out through the glue distribution mesh after being pushed by the piston push plate for coating on the coil. This is beneficial for the coil laminating machine with an automatic gluing device during use, can effectively improve the uniformity of coil glue coating, avoid blockage during glue coating, and ensure the quality of subsequent coil forming. BRIEF DESCRIPTION OF THE DRAWINGS
[0018] In order to more clearly illustrate the technical solutions in the embodiments of the invention or the prior art, the following will briefly introduce the drawings required for use in the description of the embodiments or the prior art. Obviously, the following drawings are only some embodiments of the invention. For those of ordinary skill in the art, other drawings can be obtained based on these drawings without creative efforts.
[0019] The present invention will be further described below with reference to the drawings and embodiments.
[0020] Figure 1 is the overall structural schematic diagram of the present invention; Figure 2 is of the present invention Figure 1 rear view structural schematic diagram; Figure 3 is of the present invention Figure 1 inner overall structural schematic diagram of the coil laminating machine body in the present invention; Figure 4 is of the present invention Figure 3 front view structural schematic diagram; Figure 5 is of the present invention Figure 2 semi-sectional structural schematic diagram; Figure 6 is of the present invention Figure 5 structural schematic diagram of the quantitative gluing mechanism and the heating temperature control mechanism in the present invention; Figure 7 is of the present invention Figure 5 structural schematic diagram of the pretreatment protection mechanism in the present invention; Figure 8 is of the present invention Figure 7 structural schematic diagram of the structure at A in the present invention.
[0021] In the figure: 1. Coil composite machine body; 2. Drying air jet port; 3. Auxiliary stop bar; 4. Drying air duct pipe; 551. Quantitative glue application mechanism; 552. Pretreatment protection mechanism; 553. Drying auxiliary mechanism; 554. Heating temperature control mechanism; 555. Coil conveying mechanism; 6. First coil; 7. Drying spray channel; 8. Adjusting pin; 9. First conveying roller; 10. Composite formed material; 11. Second conveying roller; 12. Main conveying roller; 13. Gravity block; 14. Pressing and rolling roller; 15. Main motor; 16. Third conveying roller; 17. Fourth conveying roller; 18. Second coil; 19. Positioning frame; 20. Glue distribution net; 21. Guiding convex block roller; 22. Servo motor; 23. Push bar plate; 24. Through port frame; 25. Gear; 26. Traction slider; 27. Rack plate; 28. Positioning rod; 29. Rubber film; 30. Micro push rod; 31. Pull rod; 32. Linkage frame; 33. Heating sheet; 34. Swing frame; 35. Glue injection channel; 36. Piston push plate; 37. Transfer rubber tube; 38. Front rod; 39. Friction heat generating sheet; 40. Inclined plate; 41. Runner; 42. Draft rod. Detailed implementation method
[0022] In the embodiment of the present invention, by providing a coil composite machine with an automatic glue application device, the following problems are solved: when the existing coil composite machine with an automatic glue application device runs at high speed, it is easy to have uneven coating. For example, the traditional equipment still needs to manually adjust the glue and then pour it into the glue application device. However, during long-term operation, with the change of the external temperature, the glue nozzle is prone to blockage during glue application, resulting in uneven glue coating. Once the glue amount is uneven, it will cause uneven drying. If it is found in time, it can be cut and processed. Once it occurs stably for a long time, the loss is huge, and frequent shutdown adjustments are required for processing, affecting production capacity. Moreover, foreign objects sometimes accompany the coil during glue application and are usually found only after winding, resulting in batch scrapping, but the ideal composite effect cannot be achieved. In order to better understand the above technical solution, the following will explain the above technical solution in detail in combination with the specification drawings and specific implementation methods.
[0023] A coil laminating machine with an automatic gluing device in combination with Figures 1-8, comprising a coil laminating machine body 1. A main conveying roller 12 is rotatably installed inside the coil laminating machine body 1. A main conveying roller 12 is rotatably installed inside the coil laminating machine body 1. A positioning frame 19 is fixedly connected inside the coil laminating machine body 1. The main conveying roller 12 is located above the positioning frame 19. A quantitative gluing mechanism 551 is arranged inside the positioning frame 19. The quantitative gluing mechanism 551 includes two communicating transmission rubber tubes 37 inserted and fixedly arranged on the upper part of the composite molding material 10. The two side walls of the positioning frame 19 are respectively inserted and fixedly connected with glue injection channels 35. A piston push plate 36 is slidably arranged inside the glue injection channels 35. A front rod 38 is fixedly connected to the outer surface of the piston push plate 36. The glue injection channels 35 are communicated with the transmission rubber tubes 37. The two side walls of the positioning frame 19 are respectively inserted with a dispensing mesh 20 corresponding to the glue injection channels 35. A through-port frame 24 is fixedly connected inside the coil laminating machine body 1. A pretreatment protection mechanism 552 is installed inside the through-port frame 24. A heating temperature control mechanism 554 is rotatably installed inside the coil laminating machine body 1. Two adjusting pins 8 are fixedly connected to the inner wall of the coil laminating machine body 1. A coil conveying mechanism 555 is rotatably installed inside the coil laminating machine body 1. The heating temperature control mechanism 554 includes a swing frame 34 rotatably installed inside the coil laminating machine body 1. Friction heat generating plates 39 are fixedly connected to both ends of the swing frame 34. Two heating plates 33 cooperating with the friction heat generating plates 39 are arranged on the inner surface of the positioning frame 19. Inclined plates 40 are fixedly sleeved on both sides of the swing frame 34. The two front rods 38 are respectively rotatably connected to the inclined plates 40. A main motor 15 is fixedly installed inside the coil laminating machine body 1. A runner 41 is fixedly sleeved on the output end of the main motor 15. A stretching rod 42 is rotatably connected to one side of the runner 41. The stretching rod 42 is rotatably connected to one side of the swing frame 34. The coil conveying mechanism 555 includes a second conveying roller 11, a third conveying roller 16 and a fourth conveying roller 17 rotatably installed at the lower part inside the coil laminating machine body 1. A first coil material 6 is wound around the outer surfaces of the second conveying roller 11, the third conveying roller 16 and the fourth conveying roller 17. Two vertically distributed first conveying rollers 9 are arranged inside the coil laminating machine body 1. A second coil material 18 is wound between the two first conveying rollers 9 and the pressing roller 14. A composite molding material 10 is wound around the outer surface of the main conveying roller 12.
[0024] According to the above technical solution, after the roll laminating machine is in operation, the second conveying roller 11, the third conveying roller 16 and the fourth conveying roller 17 drive the first roll 6 to start conveying, and at the same time, the two first conveying rollers 9 convey the second roll 18. After being conveyed, the first roll 6 and the second roll 18 are guided by the projection roller 21 and the main conveying roller 12 and the pressing roller 14 and the main conveying roller 12 on both sides of the positioning frame 19, so that the composite molding material 10 after compounding is conveyed from the top of the main conveying roller 12. In this process, as the first roll 6 and the second roll 18 are conveyed, the main motor 15 rotates the output shaft The rotating wheel 41 is driven to rotate, thereby driving the stretching rod 42 to swing circumferentially. During the movement of the stretching rod 42, the swing frame 34 can be driven to swing back and forth up and down in a directional manner, thereby driving the friction heat generating plate 39 to move and cooperate with the heating plate 33 to generate friction heat, and transfer the heat to the gluing place. Driven by the swing frame 34, the inclined plate 40 follows the movement. After the inclined plate 40 moves, it can drive the front rod 38 to move, so that the piston push plate 36 can be driven to reciprocate in the glue injection channel 35. When the piston push plate 36 slides downward, the glue in the transmission hose 37 can be sucked in, and is pushed by the piston push plate 36 to be sent out through the glue distribution network 20 for coil coating.
[0025] A further technical solution is that a drying auxiliary mechanism 553 is commonly arranged on the inner side of the two adjusting pins 8, and the drying auxiliary mechanism 553 includes a drying air duct pipe 4 movably arranged on the inner side of the two adjusting pins 8, and a plurality of drying air jets 2 are installed on the outer surface of the drying air duct pipe 4, and a plurality of auxiliary baffle bars 3 are fixedly connected to the outer surface of the drying air duct pipe 4, and a pressing roller 14 and a guide protrusion roller 21 are rotatably installed on the inner side of the coil composite body 1, and the pressing roller 14 and the guide protrusion roller 21 are used in conjunction with the main conveying roller 12, and a drying spray 7 is fixedly connected to the outer surface of the drying air duct pipe 4, and a gravity block 13 used in conjunction with the drying spray 7 is fixedly connected to the lower surface of the drying air duct pipe 4.
[0026] According to the above technical solution, the first coil 6 and the second coil 18 are glued together to contact the auxiliary baffle 3, and under the correction of the gravity block 13, the drying gas in the drying duct 4 is ejected from the drying jet port 2 and the drying nozzle 7 at an angle of 45 degrees.
[0027] The preprocessing protection mechanism 552 includes a servo motor 22 fixedly installed in the middle of the through-port frame 24. Two traction sliders 26 are slidably installed inside the through-port frame 24. Rack plates 27 are fixedly connected to the upper surfaces of the two traction sliders 26. A gear 25 is fixedly sleeved on the output end of the servo motor 22. The gear 25 meshes with the two rack plates 27. Two positioning rods 28 are fixedly connected inside the through-port frame 24. The two positioning rods 28 are respectively arranged to penetrate and slide with the traction sliders 26. Linkage frames 32 are fixedly connected to one side of the two traction sliders 26. Miniature push rods 30 are fixedly installed on the outer surfaces of the two linkage frames 32. A pull rod 31 is rotatably connected to each of the two miniature push rods 30. A push bar plate 23 is rotatably connected to one side of each of the two linkage frames 32. The push bar plate 23 is rotatably connected to the pull rod 31. A rubber membrane 29 is arranged on one side of the push bar plate 23.
[0028] For the above technical solution, the rotating output shaft of the servo motor 22 drives the gear 25 to rotate. After the gear 25 rotates, it can drive the rack plate 27 to move, thereby driving the traction slider 26 to slide inside the through-port frame 24. When the traction slider 26 moves, it slides outside the positioning rod 28 and simultaneously drives the linkage frame 32 to move synchronously. During the movement of the linkage frame 32, it can drive the push bar plate 23 to move. When the push bar plate 23 moves outward, it can drive the rubber membrane 29 to move, removing foreign objects and wrinkles on the gluing surface of the coil material. During the reset process of the push bar plate 23, the miniature push rod 30 operates and contracts to drive the pull rod 31 to move, causing the push bar plate 23 to rotate on the linkage frame 32, separating the rubber membrane 29 from the coil material and preventing inward pushing.
[0029] The specific usage method of the present invention: In a coil material laminating machine with an automatic gluing device according to the present invention, first, the coil material laminating machine is turned on through an external controller. After the coil material laminating machine operates, the second conveying roller 11, the third conveying roller 16, and the fourth conveying roller 17 drive the first coil material 6 to start conveying. At the same time, the two first conveying rollers 9 convey the second coil material 18. After being conveyed, the first coil material 6 and the second coil material 18 pass through the two sides of the positioning frame 19 respectively and are guided by the convex block roller 21 and the main conveying roller 12, and the pressing roller 14 and the main conveying roller 12 cooperate. Thus, the composite formed material 10 after lamination is conveyed away from above the main conveying roller 12. Then, during this process, as the first coil material 6 and the second coil material 18 are conveyed, the output shaft of the servo motor 22 rotates to drive the gear 25 to rotate. After the gear 25 rotates, it can drive the rack plate 27 to move, thereby driving the traction slider 26 to slide within the through-hole frame 24. When the traction slider 26 moves, it slides outside the positioning rod 28 and drives the linkage frame 32 to move synchronously. During the movement of the linkage frame 32, it can drive the push bar plate 23 to move. When the push bar plate 23 moves outward, it can drive the rubber film 29 to move, removing foreign matters and wrinkles on the gluing surface of the coil material. During the reset process of the push bar plate 23, the micro-push rod 30 operates and contracts to drive the pull rod 31 to move, causing the push bar plate 23 to rotate on the linkage frame 32, separating the rubber film 29 from the coil material to prevent inward pushing. The output shaft of the main motor 15 rotates to drive the runner 41 to rotate, thereby driving the stretching rod 42 to swing circumferentially. During the movement of the stretching rod 42, it can drive the swing frame 34 to swing reciprocally up and down in a fixed direction, and then drive the friction heat generating piece 39 to move and cooperate with the heating piece 33 to generate frictional heat, conducting the heat to the gluing position. Driven by the swing frame 34, the inclined plate 40 follows the movement. After the inclined plate 40 moves, it can drive the front rod 38 to move, causing the piston push plate 36 to reciprocate within the injection channel 35. When the piston push plate 36 slides downward, it can suck the glue material in the transmission hose 37 and send it out through the piston push plate 36 and the glue dividing net 20 for coating on the coil material. As the first coil material 6 and the second coil material 18 are glued and in contact with the auxiliary stop bar 3, and corrected by the gravity block 13, the drying gas in the drying air duct 4 is sprayed out at a 45-degree angle from the drying jet port 2 and the drying spray channel 7.
[0030] The above embodiments are only used to illustrate the technical concept and characteristics of the present invention, and their purpose is to enable those skilled in the art to understand the content of the present invention and implement it. It should not be used to limit the protection scope of the present invention. Any equivalent changes or modifications made according to the spirit and essence of the present invention should be covered within the protection scope of the present invention.
Claims
1. A coil laminating machine with an automatic gluing device, characterized in that: It includes a coiled material composite machine body (1). A main conveying roller (12) is rotatably installed inside the coiled material composite machine body (1). A positioning frame (19) is fixedly connected inside the coiled material composite machine body (1). The main conveying roller (12) is located above the positioning frame (19). A quantitative glue application mechanism (551) is arranged inside the positioning frame (19). The quantitative glue application mechanism (551) includes two interconnected transmission rubber tubes (37) inserted and fixed in the upper part of the composite molding material (10). The injection glue channels (35) are inserted and fixedly connected to both side walls of the positioning frame (19). A piston push plate (36) is slidably arranged inside the injection glue channel (35). A front rod (38) is fixedly connected to the outer surface of the piston push plate (36). The injection glue channel (35) is communicated with the transmission rubber tube (37). The dispensing nets (20) corresponding to the injection glue channels (35) are inserted on both side walls of the positioning frame (19). A through-hole frame (24) is fixedly connected inside the coiled material composite machine body (1). A pretreatment protection mechanism (552) is installed inside the through-hole frame (24). A heating temperature control mechanism (554) is rotatably installed inside the coiled material composite machine body (1). Two adjusting pins (8) are fixedly connected to the inner wall of the coiled material composite machine body (1). A coiled material conveying mechanism (555) is rotatably installed inside the coiled material composite machine body (1).
2. The roll laminating machine with an automatic gluing device according to claim 1, characterized in that: A drying auxiliary mechanism (553) is jointly arranged inside the two adjusting pins (8). The drying auxiliary mechanism (553) includes a drying air duct (4) movably arranged inside the two adjusting pins (8). A plurality of drying jet ports (2) are installed on the outer surface of the drying air duct (4). A plurality of auxiliary blocking rods (3) are fixedly connected to the outer surface of the drying air duct (4). A pressing roller (14) and a guiding convex block roller (21) are respectively rotatably installed inside the coiled material composite machine body (1). The pressing roller (14) and the guiding convex block roller (21) cooperate with the main conveying roller (12) for use.
3. The coiling laminator with an automatic gluing device according to claim 2, characterized in that: A drying spray channel (7) is fixedly connected to the outer surface of the drying air duct (4). A gravity block (13) for cooperating with the drying spray channel (7) is fixedly connected to the lower surface of the drying air duct (4).
4. A coiling compounding machine with an automatic gluing device according to claim 1, characterized in that: The heating temperature control mechanism (554) includes a swing frame (34) rotatably installed inside the coiled material composite machine body (1). Friction heat generating plates (39) are fixedly connected to both ends of the swing frame (34). Two heating plates (33) for cooperating with the friction heat generating plates (39) are arranged on the inner surface of the positioning frame (19).
5. The coiling laminator with an automatic gluing device according to claim 4, characterized in that: Inclined plates (40) are fixedly sleeved on both sides of the swing frame (34). The two front rods (38) are respectively rotatably connected to the inclined plates (40).
6. The coiling laminator with an automatic gluing device according to claim 4, wherein: A main motor (15) is fixedly installed inside the coil composite machine body (1). A runner (41) is fixedly sleeved on the output end of the main motor (15). One side of the runner (41) is rotatably connected to a drafting rod (42), and the drafting rod (42) is rotatably connected to one side of a swing frame (34).
7. A coil laminating machine with an automatic gluing device according to claim 1, characterized in that: The pretreatment protection mechanism (552) includes a servo motor (22) fixedly installed in the middle of a through-port frame (24). Two traction sliders (26) are slidably installed inside the through-port frame (24). Rack plates (27) are fixedly connected to the upper surfaces of the two traction sliders (26). A gear (25) is fixedly sleeved on the output end of the servo motor (22), and the gear (25) meshes with the two rack plates (27). Two positioning rods (28) are fixedly connected inside the through-port frame (24), and the two positioning rods (28) are respectively arranged to penetrate and slide through the traction sliders (26).
8. A coiling laminating machine with an automatic gluing device according to claim 7, characterized in that: Linkage frames (32) are fixedly connected to one side of the two traction sliders (26). Miniature push rods (30) are fixedly installed on the outer surfaces of the two linkage frames (32), and the two miniature push rods (30) are rotatably connected to pull rods (31).
9. The coiling laminator with an automatic gluing device according to claim 8, wherein: Push bar plates (23) are rotatably connected to one side of the two linkage frames (32). The push bar plates (23) are rotatably connected to the pull rods (31), and a rubber film (29) is arranged on one side of the push bar plates (23).
10. A coil laminating machine with an automatic gluing device according to claim 7, characterized in that: The coil conveying mechanism (555) includes a second conveying roller (11), a third conveying roller (16), and a fourth conveying roller (17) rotatably installed at the lower part inside the coil composite machine body (1). A first coil material (6) is wound around the outer surfaces of the second conveying roller (11), the third conveying roller (16), and the fourth conveying roller (17) together. Two vertically distributed first conveying rollers (9) are arranged inside the coil composite machine body (1), and a second coil material (18) is wound between the two first conveying rollers (9) and a pressing and winding roller (14). A composite molding material (10) is wound around the outer surface of the main conveying roller (12).