Composite molding equipment for waterproof heat-preservation root-puncture-resistant coiled material

By using No. 7 nozzle and inverted F-shaped pipeline in the coil composite forming equipment, combined with electronic pump and heating components, uniform spraying cloth and automatic temperature control of glue spraying are achieved, the problem of uneven glue spraying is solved and the quality of composite forming is improved. At the same time, it is equipped with a scraping assembly to ensure the overall quality of the coil material.

CN120056580AActive Publication Date: 2025-05-30NANTONG RUIRUI WATERPROOF NEW TECH DEV CO LTD
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Patent Information

Application Number
CN202510251015.3
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-03-04
Publication Date
2025-05-30
Estimated Expiration
2045-03-04

AI Technical Summary

Technical Problem

The existing coil composite molding equipment has the problem of uneven glue spraying, which leads to a decrease in the composite molding quality.

Method used

A waterproof, thermal insulation and root-resistant puncture coil composite molding equipment is designed, using No. 7 nozzle and inverted F-shaped pipeline, combined with electronic pump and heating components, to achieve uniform spraying cloth and automatic temperature control of the spraying glue. At the same time, it is equipped with a glue scraping assembly to quickly remove excess glue after composite molding.

Benefits of technology

By uniformly spraying glue and automatic control of glue temperature, the quality and efficiency of coil composite molding are improved; the use of glue scraping components ensures the overall quality of coil and reduces glue residue.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention discloses waterproof heat-preservation root-puncture-resistant coiled material composite forming equipment, and relates to the technical field of coiled material composite forming, the waterproof heat-preservation root-puncture-resistant coiled material composite forming equipment comprises a protective shell, a door body, a seventh opening, a supporting plate, a pressing shaft and a glue spraying assembly, the door body is installed on the outer wall of the protective shell, the seventh opening is formed in the outer wall of the protective shell, and a ninth opening is formed in the outer wall of the protective shell; a third opening is formed in the outer wall of the protective shell, and a discharging opening is formed in the outer wall of the protective shell. A seventh supporting rod is installed to support a seventh cylinder, coiled material raw materials enter a protection shell through a seventh opening, a ninth opening and a third opening, at the moment, an electronic pump is started to suck glue in a glue storage cover into a seventh pipeline, and after the pressure of movement of the glue is reached, a sealing rod is driven to move; the sealing rod moves to drive the ninth supporting rod to move, the ninth supporting rod moves to drive the seventh spring to move, and the seventh spring moves to enable the sealing rod to move away from the supporting ring to open the seventh pipeline.
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Description

Technical Field

[0001] The present invention relates to the technical field of coil composite forming, and specifically relates to a waterproof, heat-insulating and root-resistant puncture coil composite forming device. Background Technique

[0002] The waterproof, heat-insulating and root-resistant puncture coil composite forming device is designed specifically for producing composite materials with waterproof, heat-insulating and root-resistant puncture characteristics. The emergence of this device meets the market's demand for multifunctional waterproof materials. Such coils not only have excellent waterproof performance but also can effectively resist the penetration of plant roots, and at the same time have heat-insulating functions, providing more comprehensive protection for modern buildings. However, the uneven glue spraying of the existing coil composite forming devices reduces the quality of coil composite forming.

[0003] The defects of the existing coil composite forming devices are as follows: 1. The patent document CN118663804A discloses a multi-layer metal composite material structure pipe curling forming device, "including a placement and installation platform, on the mutually adjacent sides of which there are symmetrically distributed and rotatably connected transport roller wheels, and on the mutually adjacent sides of the placement and installation platform there is a rotatably connected forming roller wheel, the forming roller wheel being located above the two transport roller wheels. Both the forming roller wheel and the transport roller wheel include a rotating cylinder and a rotating shaft. An adjustment assembly is provided on the placement and installation platform, and the adjustment assembly is symmetrically arranged on the left and right sides of the placement and installation platform. By setting the adjustment assembly, the user can automatically adjust the distance between the roller wheels to the height required by the material when dealing with metal materials of different thicknesses, and at the same time, rely on the gravity of the roller wheels to squeeze and clamp the metal material to be curled and formed, and can make corresponding adjustments according to the change in the thickness of the plate during the processing, which is applicable to plates of various thicknesses, improving the application range and flexibility of the device, and increasing production efficiency and output", but the uneven glue spraying of the existing coil composite forming devices reduces the quality of coil composite forming; 2. Patent document CN106945322A discloses a floor composite molding machine, a floor production line equipment and its production method. "The floor composite molding machine includes a molding frame, a top wear-resistant layer unwinding device, a middle printing layer unwinding device, a bottom anti-slip layer unwinding device, a floor substrate molding device, a floor layer composite device and a floor embossing device. The bottom anti-slip layer unwinding device, the middle printing layer unwinding device and the top wear-resistant layer unwinding device are all installed on the molding frame; the floor substrate molding device includes a floor substrate heating and molding roller group and a molding driving device connected to the floor substrate heating and molding roller group to drive the floor substrate heating and molding roller group to act. The floor substrate heating and molding roller group includes two floor substrate heating and molding rollers rotatably supported on the molding frame. The present invention can automatically composite the top wear-resistant layer, the middle printing layer, the molding base layer and the bottom anti-slip layer, improve the production capacity of the equipment, save labor, and the equipment operation is user-friendly", but the heating wind force of the existing coil composite molding equipment cannot adjust the angle to reduce the glue heating uniformity and cause the glue adhesion to decline; 3. Patent document CN102806745B discloses a production process of a waterproof and heat-insulating integrated board. "It includes the following steps: First, a reinforcing isolation material is composite on one side of the waterproof coil; then the waterproof coil composite with the reinforcing isolation material is preheated by a preheating device; after preheating, a heat-insulating material is composite on the side of the waterproof coil where the reinforcing isolation material is composite, and finally another preheated waterproof coil is covered on the surface of the heat-insulating material. By setting a reinforcing isolation material on one side of the waterproof coil, not only the bonding strength between the heat-insulating material and the waterproof coil can be enhanced, but also the waterproof coil and the heat-insulating material can be effectively isolated, avoiding chemical reactions between the waterproof coil and the heat-insulating material in long-term contact, and preventing the migration of plasticizers in the coil, ensuring the quality of the product; adding a waterproof coil preheating process before the waterproof coil and the heat-insulating material are composite can avoid the peeling phenomenon between the waterproof layer and the heat-insulating layer after the board is formed, and further improve the performance and quality of the board", but the temperature during glue spraying of the existing coil composite molding equipment cannot be automatically controlled to reduce the composite quality; 4. The patent document CN112590229B discloses a production device for bonding and forming multi-layer composite materials, "including: a base fixedly arranged on the working plane; an unwinding assembly fixedly arranged at one end of the base, and unwinding the multi-layer composite materials. The multi-layer composite materials move from one end of the base to the other end, and an adhesive is arranged between the multi-layer composite materials; a heating assembly fixedly arranged on the base and located at the rear end of the unwinding assembly, and the heating assembly heats the multi-layer composite materials conveyed here to melt the adhesive; an extrusion assembly fixedly arranged on the base and located at the rear end of the heating assembly, and the extrusion assembly extrudes and forms the multi-layer composite materials; a winding assembly fixedly arranged at the other end of the base, and winding the multi-layer composite materials after forming. In the present invention, the multi-layer composite materials are heated to melt the adhesive, then extruded and formed, and finally wound, which improves the production efficiency and saves the production cost", but the excess glue on the composite formed coil of the existing coil composite forming equipment cannot be quickly scraped off, reducing the overall quality of the coil. Summary of the Invention

[0004] The purpose of the present invention is to provide a waterproof, heat-insulating and root-resistant puncture coil composite forming equipment to solve the technical problem that the uneven glue spraying of the existing coil composite forming equipment reduces the quality of coil composite forming as mentioned in the above background technology.

[0005] To achieve the above purpose, the present invention provides the following technical solutions: A waterproof, heat-insulating and root-resistant puncture coil composite forming equipment, including a protective shell, a door body, a seventh port, a support plate, a pressing shaft and a glue spraying assembly. A door body is installed on the outer wall of the protective shell, a seventh port is opened on the outer wall of the protective shell, a ninth port is opened on the outer wall of the protective shell, a third port is opened on the outer wall of the protective shell, and a discharge port is opened on the outer wall of the protective shell. A pressing shaft is installed on the inner wall of the protective shell, a glue spraying assembly is installed on the inner wall of the protective shell, a support plate is installed on the inner wall of the protective shell, a temperature raising assembly is installed on the inner wall of the glue spraying assembly, and a glue temperature detection assembly is installed on the inner wall of the glue spraying assembly. The coil raw materials are waterproof layer materials, heat-insulating layer materials and root-resistant layer materials; The glue spraying assembly includes a seventh cover, a colloid storage cover, an electronic pump, a seventh pipeline, a seventh nozzle, a fifth port, a sealing rod, a support ring. The seventh cover is located on the inner wall of the protective shell, the colloid storage cover is located on the inner wall of the seventh cover, the electronic pump penetrates through the outer wall of the seventh cover, the fifth port is opened on the outer wall of the seventh cover, the seventh pipeline penetrates through the inner wall of the fifth port, and one end of the seventh pipeline is connected to the output end of the electronic pump. The support ring is located on the inner wall of the seventh pipeline, the seventh nozzle penetrates through the outer wall of the seventh pipeline. A seventh support rod is installed on the inner wall of the seventh pipeline, a seventh cylinder is installed on the outer wall of the seventh support rod, the sealing rod penetrates through the inner wall of the seventh cylinder, a ninth support rod is installed on the outer wall of the sealing rod, a seventh spring is installed on the outer wall of the ninth support rod, and one end of the seventh spring is connected to the outer wall of the support ring.

[0006] Preferably, the sealing rod moves by the support of the seventh cylinder, and the seventh pipeline is in an inverted F shape.

[0007] Preferably, the temperature-raising component includes a heating row, a blower, a dust filter net, a third support rod, a pneumatic head, a ninth spring, an adjustment plate, and a connecting rod. The heating row is located on the inner wall of the seventh cover, the blower is located on the inner wall of the seventh cover, the dust filter net penetrates through the outer wall of the seventh cover, the third support rod is located on the inner wall of the seventh cover, the pneumatic head is located on the outer wall of the third support rod, a third plate is installed at the output end of the pneumatic head, the ninth spring is located on the outer wall of the third plate, and one end of the ninth spring is connected to the outer wall of the third support rod. A plurality of adjustment plates are installed on the outer wall of the third support rod through a rotating shaft, the adjustment plates are connected by a rotating shaft, and the output end of the pneumatic head is connected to the outer wall of the adjustment plate through a rotating shaft.

[0008] Preferably, the adjustment plate adjusts the angle through a rotating shaft, and the heating row is located between the blower and the third support rod.

[0009] Preferably, the glue temperature detection component includes a glue temperature detection block and a microcomputer control box. The glue temperature detection block is located on the outer wall of the seventh pipeline, the microcomputer control box is located on the outer wall of the protective shell, the glue temperature detection block is electrically connected to the microcomputer control box, the microcomputer control box is electrically connected to the temperature-raising component, the glue temperature detection block is used to detect the real-time glue temperature parameters of the glue spraying, the microcomputer control box is used to detect the appropriate glue temperature parameters of the glue spraying, and the appropriate glue temperature for the glue spraying is 40-60°C.

[0010] Preferably, the real-time glue temperature parameters of the glue spraying are transmitted into the microcomputer control box, and the real-time glue temperature parameters of the glue spraying are compared with the appropriate glue temperature parameters of the glue spraying through the microcomputer control box. When the real-time glue temperature parameters of the glue spraying are greater than the appropriate glue temperature parameters of the glue spraying, it is set as the high glue temperature state. When the real-time glue temperature parameters of the glue spraying are less than the appropriate glue temperature parameters of the glue spraying, it is set as the low glue temperature state. When the real-time glue temperature parameters of the glue spraying are within the appropriate glue temperature parameters of the glue spraying, it is set as the appropriate glue temperature state.

[0011] Preferably, a glue scraping component is installed on the outer wall of the support plate, and the glue scraping component is used to scrape off the excess glue after the coil material is compounded.

[0012] Preferably, the glue scraping assembly includes a third cover, a glue scraping film, a glue guiding plate, a collecting cover, a fifth card row, a T-shaped frame, and a sixth spring. The third cover is located on the outer wall of the support plate, the glue scraping film is located on the outer wall of the third cover, a seventh opening is formed in the outer wall of the third cover, the glue guiding plate penetrates through the inner wall of the seventh opening, the collecting cover penetrates through the outer wall of the third cover, an eighth opening is formed in the outer wall of the third cover, the T-shaped frame is located inside the third cover, a sixth sliding cylinder is installed on the outer wall of the T-shaped frame, the fifth card row is installed through the inner wall of the eighth opening, and the outer wall of the fifth card row is connected to the outer wall of the sixth sliding cylinder. The sixth spring is located on the outer wall of the fifth card row, and one end of the sixth spring is connected to the outer wall of the T-shaped frame. A sixth card slot is formed at the top of the collecting cover, and the outer wall of the fifth card row extends into the inner wall of the sixth card slot.

[0013] Preferably, the glue guiding plate is located above the collecting cover, the glue scraping film is located above the glue guiding plate, and the sixth sliding cylinder moves through the support of the T-shaped frame.

[0014] Preferably, the usage method of the composite molding device includes the following steps: Step S1: The function of the seventh support rod is to provide support for the seventh cylinder. The coil raw materials enter the protective shell through the seventh opening, the ninth opening, and the third opening respectively. At this time, the electronic pump is started to suck the glue in the glue storage cover into the seventh pipeline. When the pressure of the moving glue reaches a certain level, it drives the sealing rod to move. The movement of the sealing rod drives the ninth support rod to move. The movement of the ninth support rod drives the seventh spring to move. The movement of the seventh spring causes the sealing rod to move away from the support ring and open the seventh pipeline. At this time, the glue is evenly sprayed between the coil raw materials through the seventh nozzle, so that the glue spraying of the coil composite molding device is uniform and the quality of the coil composite molding is improved; Step S2: The fan rotates to generate suction, and the air is filtered through the dust filter net and sucked into the seventh cover. At this time, the heating row is started, and the wind is heated by the heating row and blown towards the seventh pipeline to heat the glue inside. The pneumatic head is started to drive the third plate to move. The movement of the third plate drives the ninth spring to move. The movement of the ninth spring causes the pneumatic head to drive the adjustment plate to move through the rotating shaft. The movement of the adjustment plate drives the connecting rod to move. The movement of the connecting rod adjusts the angle of the wind. Adjusting the angle of the heating wind improves the heating uniformity of the glue and improves the adhesiveness of the glue; Step S3: When the microcomputer control box detects the high glue temperature state, the microcomputer control box controls the heating component to stop. After the heating component stops, the glue temperature detection block continuously detects the real-time glue temperature parameter of the glue spraying until the microcomputer control box detects the low glue temperature state or the appropriate glue temperature state. When the microcomputer control box detects the low glue temperature state, the microcomputer control box controls the heating component to start. After the heating component starts, the glue temperature detection block continuously detects the real-time glue temperature parameter of the glue spraying until the microcomputer control box detects the high glue temperature state or the appropriate glue temperature state. When the microcomputer control box detects the appropriate glue temperature state, the microcomputer control box controls the heating component to maintain the power. After the heating component maintains the power, the glue temperature detection block continuously detects the real-time glue temperature parameter of the glue spraying until the microcomputer control box detects the high glue temperature state or the low glue temperature state, so as to automatically control the glue temperature during the glue spraying of the coil composite forming equipment and improve the composite quality. Step S4: When the coiled material after composite forming is discharged through the discharge port, its edge contacts the scraping film to scrape the glue onto the surface of the glue guiding plate. The glue enters the collection cover through the glue guiding plate and the No. 7 port. At this time, pulling the No. 5 card row drives the No. 6 sliding cylinder to move. The movement of the No. 6 sliding cylinder drives the No. 6 spring to move through the No. 5 card row. The movement of the No. 6 spring makes the No. 5 card row move out of the No. 6 card slot. At this time, pulling the collection cover removes the waste glue of the mobile phone. The excess glue of the coiled material after composite forming is quickly scraped off to improve the overall quality of the coiled material.

[0015] Compared with the prior art, the beneficial effects of the present invention are: 1. The function of the No. 7 support rod installed in the present invention is to provide support for the No. 7 cylinder. The coiled material raw materials enter the protective shell through the No. 7 port, the No. 9 port and the No. 3 port respectively. At this time, the electronic pump starts to suck the glue in the colloid storage cover into the No. 7 pipeline. When the pressure of the moving glue reaches, it drives the sealing rod to move. The movement of the sealing rod drives the No. 9 support rod to move. The movement of the No. 9 support rod drives the No. 7 spring to move. The movement of the No. 7 spring makes the sealing rod move away from the support ring to open the No. 7 pipeline. At this time, the glue is evenly sprayed between the coiled material raw materials through the No. 7 nozzle, so as to make the glue spraying of the coil composite forming equipment uniform and improve the coil composite forming quality. 2. In the present invention, the fan rotates to generate suction, and the air is filtered through the dust filter and sucked into the No. 7 cover. At this time, the heating row starts, and the wind is heated by the heating row and blown towards the No. 7 pipeline to heat the glue inside. The pneumatic head starts to drive the No. 3 plate to move. The movement of the No. 3 plate drives the No. 9 spring to move. The movement of the No. 9 spring makes the pneumatic head drive the adjustment plate to move through the rotating shaft. The movement of the adjustment plate drives the connecting rod to move. The movement of the connecting rod adjusts the angle of the wind force. Adjusting the angle of the heating wind force improves the uniformity of the glue heating and improves the adhesiveness of the glue. 3. When the microcomputer control box installed in the present invention detects a high glue temperature state, the heating component is controlled by the microcomputer control box to stop. After the heating component stops, the glue temperature detection block continuously detects the real-time glue temperature parameters of the glue spraying until the microcomputer control box detects a low glue temperature state or a suitable glue temperature state. When the microcomputer control box detects a low glue temperature state, the heating component is controlled by the microcomputer control box to start. After the heating component starts, the glue temperature detection block continuously detects the real-time glue temperature parameters of the glue spraying until the microcomputer control box detects a high glue temperature state or a suitable glue temperature state. When the microcomputer control box detects a suitable glue temperature state, the heating component is controlled by the microcomputer control box to maintain the power. After the heating component maintains the power, the glue temperature detection block continuously detects the real-time glue temperature parameters of the glue spraying until the microcomputer control box detects a high glue temperature state or a low glue temperature state, so as to automatically control the glue temperature during the glue spraying of the coil composite forming equipment and improve the composite quality; 4. When the coiled material after composite forming is discharged through the discharge port in the present invention, its edge contacts the scraping film to scrape off the glue onto the surface of the glue guide plate. The glue enters the collection cover through the glue guide plate and the No. 7 port. At this time, pulling the No. 5 card row drives the No. 6 sliding cylinder to move. The movement of the No. 6 sliding cylinder causes the No. 5 card row to drive the No. 6 spring to move. The movement of the No. 6 spring causes the No. 5 card row to move out of the No. 6 card slot. At this time, pulling the collection cover removes the waste glue of the mobile phone. The excess glue of the coiled material after composite forming is quickly scraped off to improve the overall quality of the coiled material. BRIEF DESCRIPTION OF THE DRAWINGS

[0016] Figure 1 is the front view structural schematic diagram of the present invention; Figure 2 is the front structural schematic diagram of the present invention; Figure 3 is the structural schematic diagram of the No. 7 cover of the present invention; Figure 4 For the present invention Figure 3 Structural schematic diagram of A; Figure 5 is the structural schematic diagram of the No. 3 support rod of the present invention; Figure 6 is the structural schematic diagram of the adjustment plate of the present invention; Figure 7 For the present invention Figure 3 Structural schematic diagram of C; Figure 8 is the glue temperature control flow schematic diagram of the present invention; Figure 9 is the structural schematic diagram of the collection cover of the present invention; Figure 10 For the present invention Figure 9 Structural schematic diagram of B.

[0017] In the figure: 1, protective shell; 2, door body; 3, microcomputer control box; 4, No. 7 port; 5, No. 9 port; 6, No. 3 port; 7, discharge port; 9, pressing shaft; 10, No. 7 cover; 11, colloid storage cover; 12, electronic pump; 13, No. 7 pipeline; 14, No. 7 spray head; 15, No. 7 support rod; 16, No. 7 cylinder; 18, No. 9 support rod; 19, support ring; 20, No. 7 spring; 21, sealing rod; 23, dust filter net; 24, fan; 25, heating row; 26, No. 3 support rod; 28, pneumatic head; 29, No. 9 spring; 30, adjustment plate; 31, connecting rod; 32, No. 3 cover; 33, scraping rubber sheet; 34, No. 7 port; 35, glue guide plate; 36, collection cover; 37, No. 6 card slot; 38, No. 8 port; 39, T-shaped frame; 40, No. 6 sliding cylinder; 41, No. 5 card row; 42, No. 6 spring; 43, glue temperature detection block; 45, No. 5 port; 48, support plate. Detailed implementation mode

[0018] The following will clearly and completely describe the technical solutions in the embodiments of the present invention with reference to the accompanying drawings in the embodiments of the present invention. Obviously, the described embodiments are only a part of the embodiments of the present invention, rather than all the embodiments. All other embodiments obtained by those of ordinary skill in the art based on the embodiments of the present invention without creative efforts shall fall within the protection scope of the present invention.

[0019] In the description of the present invention, it should be noted that the orientation or positional relationship indicated by the terms "upper", "lower", "inner", "outer", "front end", "rear end", "both ends", "one end", "the other end", etc. is based on the orientation or positional relationship shown in the accompanying drawings. It is only for the convenience of describing the present invention and simplifying the description, rather than indicating or implying that the device or element referred to must have a specific orientation, be constructed and operated in a specific orientation, and therefore cannot be understood as a limitation of the present invention. In addition, the terms "first" and "second" are only used for descriptive purposes and cannot be understood as indicating or implying relative importance.

[0020] In the description of the present invention, it should be noted that unless otherwise clearly specified and limited, the terms "installation", "provided with", "connection", etc. should be understood in a broad sense. For example, "connection" can be a fixed connection, a detachable connection, or an integral connection; it can be a mechanical connection or an electrical connection; it can be directly connected or indirectly connected through an intermediate medium, and it can be the communication inside two elements. For those of ordinary skill in the art, it can be understood according to specific circumstances.

[0021] Example 1: Please refer to Figure 1 , Figure 2 , Figure 3 and Figure 4, an embodiment provided by the present invention: a waterproof, heat-insulating and root-puncture-resistant coiled material composite forming device, including a protective shell 1, a door body 2, a seventh port 4, a support plate 48, a pressing shaft 9 and a glue spraying component. A door body 2 is installed on the outer wall of the protective shell 1. A seventh port 4 is opened on the outer wall of the protective shell 1. A ninth port 5 is opened on the outer wall of the protective shell 1. A third port 6 is opened on the outer wall of the protective shell 1. An outlet port 7 is opened on the outer wall of the protective shell 1. A pressing shaft 9 is installed on the inner wall of the protective shell 1. A glue spraying component is installed on the inner wall of the protective shell 1. A support plate 48 is installed on the inner wall of the protective shell 1. A temperature-raising component is installed on the inner wall of the glue spraying component. A glue temperature detection component is installed on the inner wall of the glue spraying component. The coiled material raw materials are waterproof layer materials, heat-insulating layer materials and root-blocking layer materials. A glue scraping component is installed on the outer wall of the support plate 48. The glue scraping component is used for scraping off the excess glue after the coiled material is compounded. After the coiled material raw materials enter the protective shell 1, they are pressed by the pressing shaft 9 to form a coiled material, and the coiled material is discharged through the support plate 48 and the outlet port 7. A waterproof, heat-insulating and root-puncture-resistant coiled material is formed by pressing the waterproof layer materials, heat-insulating layer materials and root-blocking layer materials. The glue spraying component includes a seventh cover 10, a glue storage cover 11, an electronic pump 12, a seventh pipeline 13, a seventh nozzle 14, a fifth port 45, a sealing rod 21, a support ring 19. The seventh cover 10 is located on the inner wall of the protective shell 1. The glue storage cover 11 is located on the inner wall of the seventh cover 10. The electronic pump 12 penetrates through the outer wall of the seventh cover 10. The fifth port 45 is opened on the outer wall of the seventh cover 10. The seventh pipeline 13 penetrates through the inner wall of the fifth port 45, and one end of the seventh pipeline 13 is connected to the output end of the electronic pump 12. The support ring 19 is located on the inner wall of the seventh pipeline 13. The seventh nozzle 14 penetrates through the outer wall of the seventh pipeline 13. A seventh support rod 15 is installed on the inner wall of the seventh pipeline 13. A seventh cylinder 16 is installed on the outer wall of the seventh support rod 15. The sealing rod 21 penetrates through the inner wall of the seventh cylinder 16. A ninth support rod 18 is installed on the outer wall of the sealing rod 21. A seventh spring 20 is installed on the outer wall of the ninth support rod 18, and one end of the seventh spring 20 is connected to the outer wall of the support ring 19. The sealing rod 21 moves through the support of the seventh cylinder 16. The seventh pipeline 13 is in an inverted F shape. The function of the seventh support rod 15 is to provide support for the seventh cylinder 16. The coiled material raw materials enter the protective shell 1 through the seventh port 4, the ninth port 5 and the third port 6 respectively. At this time, the electronic pump 12 is started to suck the glue in the glue storage cover 11 into the seventh pipeline 13. When the pressure of the moving glue reaches a certain level, it drives the sealing rod 21 to move. The movement of the sealing rod 21 drives the ninth support rod 18 to move. The movement of the ninth support rod 18 drives the seventh spring 20 to move. The movement of the seventh spring 20 causes the sealing rod 21 to move away from the support ring 19 to open the seventh pipeline 13. At this time, the glue is evenly sprayed between the coiled material raw materials through the seventh nozzle 14, realizing the function of evenly spraying glue by the coiled material composite forming device and improving the quality of coiled material composite forming.

[0022] Embodiment 2: Please refer to Figure 2 , Figure 5 and Figure 6, an embodiment provided by the present invention: The temperature-raising component includes a heating row 25, a blower 24, a dust filter net 23, a third support rod 26, a pneumatic head 28, a ninth spring 29, an adjustment plate 30, and a connecting rod 31. The heating row 25 is located on the inner wall of the seventh cover 10, the blower 24 is located on the inner wall of the seventh cover 10, the dust filter net 23 penetrates through the outer wall of the seventh cover 10, the third support rod 26 is located on the inner wall of the seventh cover 10, the pneumatic head 28 is located on the outer wall of the third support rod 26, a third plate is installed at the output end of the pneumatic head 28, the ninth spring 29 is located on the outer wall of the third plate, and one end of the ninth spring 29 is connected to the outer wall of the third support rod 26. A plurality of adjustment plates 30 are installed on the outer wall of the third support rod 26 through a rotating shaft. The adjustment plates 30 are connected by a rotating shaft to a connecting rod 31, and the output end of the pneumatic head 28 is connected to the outer wall of the adjustment plate 30 through a rotating shaft. The adjustment plate 30 adjusts its angle through the rotating shaft. The heating row 25 is located between the blower 24 and the third support rod 26. The blower 24 rotates to generate suction, and the air is filtered by the dust filter net 23 and then sucked into the seventh cover 10. At this time, the heating row 25 is started, and the wind is heated by the heating row 25 and blown towards the seventh pipe 13 to raise the temperature of the glue inside. The pneumatic head 28 is started to drive the third plate to move. The movement of the third plate drives the ninth spring 29 to move. The movement of the ninth spring 29 causes the pneumatic head 28 to drive the adjustment plate 30 to move through the rotating shaft. The movement of the adjustment plate 30 drives the connecting rod 31 to move. The movement of the connecting rod 31 adjusts the angle of the wind, realizing the function of adjusting the angle of the heating wind to improve the heating uniformity of the glue and improve the adhesiveness of the glue.

[0023] Embodiment 3: Please refer to Figure 2 , Figure 3 , Figure 7 and Figure 8, an embodiment provided by the present invention: The glue temperature detection component includes a glue temperature detection block 43 and a microcomputer control box 3. The glue temperature detection block 43 is located on the outer wall of the No. 7 pipeline 13, and the microcomputer control box 3 is located on the outer wall of the protective shell 1. The glue temperature detection block 43 is electrically connected to the microcomputer control box 3, and the microcomputer control box 3 is electrically connected to the heating component. The glue temperature detection block 43 is used to detect the real-time glue temperature parameters of the glue spraying. The microcomputer control box 3 is used to detect the appropriate glue temperature parameters of the glue spraying. The appropriate glue temperature for the glue spraying is 40~60°C. The real-time glue temperature parameters of the glue spraying are transmitted into the microcomputer control box 3. By comparing the real-time glue temperature parameters of the glue spraying with the appropriate glue temperature parameters of the glue spraying through the microcomputer control box 3, when the real-time glue temperature parameter of the glue spraying is greater than the appropriate glue temperature parameter of the glue spraying, it is set as the high glue temperature state. When the real-time glue temperature parameter of the glue spraying is less than the appropriate glue temperature parameter of the glue spraying, it is set as the low glue temperature state. When the real-time glue temperature parameter of the glue spraying is within the appropriate glue temperature parameter of the glue spraying, it is set as the appropriate glue temperature state. When the microcomputer control box 3 detects the high glue temperature state, the microcomputer control box 3 controls the heating component to stop. After the heating component stops, the glue temperature detection block 43 continuously detects the real-time glue temperature parameters of the glue spraying until the microcomputer control box 3 detects the low glue temperature state or the appropriate glue temperature state. When the microcomputer control box 3 detects the low glue temperature state, the microcomputer control box 3 controls the heating component to start. After the heating component starts, the glue temperature detection block 43 continuously detects the real-time glue temperature parameters of the glue spraying until the microcomputer control box 3 detects the high glue temperature state or the appropriate glue temperature state. When the microcomputer control box 3 detects the appropriate glue temperature state, the microcomputer control box 3 controls the heating component to maintain the power. After the heating component maintains the power, the glue temperature detection block 43 continuously detects the real-time glue temperature parameters of the glue spraying until the microcomputer control box 3 detects the high glue temperature state or the low glue temperature state, realizing the function of automatically controlling the temperature during glue spraying of the coil composite forming equipment to improve the composite quality.

[0024] Example 4: Please refer to Figure 2 、 Figure 9 and Figure 10, an embodiment provided by the present invention: The glue scraping assembly includes a third cover 32, a glue scraping sheet 33, a glue guiding plate 35, a collecting cover 36, a fifth card row 41, a T-shaped frame 39, and a sixth spring 42. The third cover 32 is located on the outer wall of the support plate 48, the glue scraping sheet 33 is located on the outer wall of the third cover 32, a seventh opening 34 is formed on the outer wall of the third cover 32, the glue guiding plate 35 penetrates the inner wall of the seventh opening 34, the collecting cover 36 penetrates the outer wall of the third cover 32, an eighth opening 38 is formed on the outer wall of the third cover 32, the T-shaped frame 39 is located inside the third cover 32, a sixth sliding cylinder 40 is installed on the outer wall of the T-shaped frame 39, the fifth card row 41 is installed through the inner wall of the eighth opening 38, and the outer wall of the fifth card row 41 is connected to the outer wall of the sixth sliding cylinder 40. The sixth spring 42 is located on the outer wall of the fifth card row 41, and one end of the sixth spring 42 is connected to the outer wall of the T-shaped frame 39. A sixth card slot 37 is formed at the top of the collecting cover 36, and the outer wall of the fifth card row 41 extends into the inner wall of the sixth card slot 37. The glue guiding plate 35 is located above the collecting cover 36, the glue scraping sheet 33 is located above the glue guiding plate 35, and the sixth sliding cylinder 40 moves through the support of the T-shaped frame 39. When the composite formed coil is discharged through the discharge port 7, its edge contacts the glue scraping sheet 33 to scrape the glue onto the surface of the glue guiding plate 35, and the glue enters the collecting cover 36 through the glue guiding plate 35 and the seventh opening 34. At this time, pulling the fifth card row 41 drives the sixth sliding cylinder 40 to move. The movement of the sixth sliding cylinder 40 causes the fifth card row 41 to drive the sixth spring 42 to move. The movement of the sixth spring 42 causes the fifth card row 41 to move out of the sixth card slot 37. At this time, pulling the collecting cover 36 removes the waste glue of the mobile phone, realizing the function of quickly scraping off the excess glue of the composite formed coil and improving the overall quality of the coil.

[0025] The usage method of this composite forming device includes the following steps: Step S1. The function of the seventh support rod 15 is to provide support for the seventh cylinder 16. The coil raw materials enter the protective shell 1 through the seventh opening 4, the ninth opening 5, and the third opening 6 respectively. At this time, the electronic pump 12 is started to suck the glue in the glue storage cover 11 into the seventh pipeline 13. When the pressure of the moving glue reaches a certain level, it drives the sealing rod 21 to move. The movement of the sealing rod 21 drives the ninth support rod 18 to move. The movement of the ninth support rod 18 drives the seventh spring 20 to move. The movement of the seventh spring 20 causes the sealing rod 21 to move away from the support ring 19 to open the seventh pipeline 13. At this time, the glue is evenly sprayed between the coil raw materials through the seventh nozzle 14, making the glue spraying of the coil composite forming device uniform and improving the quality of coil composite forming. Step S2: The fan 24 rotates to generate suction, sucking air through the dust filter net 23 and into the No. 7 cover 10. At this time, the heating row 25 is started, and the wind passes through the heating row 25 for heating and blows towards the No. 7 pipe 13 to raise the temperature of the glue inside. The pneumatic head 28 is started to drive the movement of the No. 3 plate. The movement of the No. 3 plate drives the movement of the No. 9 spring 29. The movement of the No. 9 spring 29 causes the pneumatic head 28 to drive the adjustment plate 30 to move through the rotating shaft. The movement of the adjustment plate 30 drives the movement of the connecting rod 31. The movement of the connecting rod 31 adjusts the angle of the wind force, and the adjustment of the heated wind force angle improves the heating uniformity of the glue and the adhesiveness of the glue. Step S3: When the microcomputer control box 3 detects a high glue temperature state, the microcomputer control box 3 controls the heating component to stop. After the heating component stops, the glue temperature detection block 43 continuously detects the real-time glue temperature parameters of the glue spraying until the microcomputer control box 3 detects a low glue temperature state or a suitable glue temperature state. When the microcomputer control box 3 detects a low glue temperature state, the microcomputer control box 3 controls the heating component to start. After the heating component starts, the glue temperature detection block 43 continuously detects the real-time glue temperature parameters of the glue spraying until the microcomputer control box 3 detects a high glue temperature state or a suitable glue temperature state. When the microcomputer control box 3 detects a suitable glue temperature state, the microcomputer control box 3 controls the heating component to maintain the power. After the heating component maintains the power, the glue temperature detection block 43 continuously detects the real-time glue temperature parameters of the glue spraying until the microcomputer control box 3 detects a high glue temperature state or a low glue temperature state, so as to automatically control the glue temperature during the glue spraying of the coil composite forming equipment and improve the composite quality. Step S4: When the composite formed coil is discharged through the discharge port 7, its edge contacts the scraping film 33 to scrape off the glue onto the surface of the glue guide plate 35. The glue enters the collection cover 36 through the glue guide plate 35 and the No. 7 port 34. At this time, pulling the No. 5 card row 41 drives the movement of the No. 6 sliding cylinder 40. The movement of the No. 6 sliding cylinder 40 causes the No. 5 card row 41 to drive the movement of the No. 6 spring 42. The movement of the No. 6 spring 42 causes the No. 5 card row 41 to move out of the No. 6 card slot 37. At this time, pulling the collection cover 36 removes the discarded glue collected by the mobile phone. The excess glue on the composite formed coil is quickly scraped off to improve the overall quality of the coil.

[0026] Working principle: After the coil raw material enters the protective shell 1, it is pressed by the pressing shaft 9 to form a coil. The coil is discharged through the support plate 48 and the discharge port 7. The function of the seventh support rod 15 is to provide support for the seventh cylinder 16. The coil raw material enters the protective shell 1 through the seventh port 4, the ninth port 5, and the third port 6 respectively. At this time, the electronic pump 12 is started to suck the glue in the glue storage cover 11 into the seventh pipeline 13. When the pressure of the moving glue reaches a certain level, it drives the sealing rod 21 to move. The movement of the sealing rod 21 drives the ninth support rod 18 to move. The movement of the ninth support rod 18 drives the seventh spring 20 to move. The movement of the seventh spring 20 causes the sealing rod 21 to move away from the support ring 19 to open the seventh pipeline 13. At this time, the glue is evenly sprayed between the coil raw materials through the seventh nozzle 14, enabling the coil composite forming equipment to spray glue evenly and improving the quality of coil composite forming. The fan 24 rotates to generate suction, and the air is filtered by the dust filter net 23 and then sucked into the seventh cover 10. At this time, the heating row 25 is started, and the wind is heated by the heating row 25 and blown towards the seventh pipeline 13 to raise the temperature of the glue inside. The pneumatic head 28 is started to drive the third plate to move. The movement of the third plate drives the ninth spring 29 to move. The movement of the ninth spring 29 causes the pneumatic head 28 to drive the adjustment plate 30 to move through the rotating shaft. The movement of the adjustment plate 30 drives the connecting rod 31 to move. The movement of the connecting rod 31 adjusts the angle of the wind force. Adjusting the angle of the heating wind force improves the uniformity of glue heating and the adhesiveness of the glue. When the microcomputer control box 3 detects a high glue temperature state, the microcomputer control box 3 controls the heating component to stop. After the heating component stops, the glue temperature detection block 43 continuously detects the real-time glue temperature parameters of the sprayed glue until the microcomputer control box 3 detects a low glue temperature state or a suitable glue temperature state. When the microcomputer control box 3 detects a low glue temperature state, the microcomputer control box 3 controls the heating component to start. After the heating component starts, the glue temperature detection block 43 continuously detects the real-time glue temperature parameters of the sprayed glue until the microcomputer control box 3 detects a high glue temperature state or a suitable glue temperature state. When the microcomputer control box 3 detects a suitable glue temperature state, the microcomputer control box 3 controls the heating component to maintain the power. After the heating component maintains the power, the glue temperature detection block 43 continuously detects the real-time glue temperature parameters of the sprayed glue until the microcomputer control box 3 detects a high glue temperature state or a low glue temperature state, enabling the automatic control of the glue temperature during spraying of the coil composite forming equipment and improving the composite quality. When the composite formed coil is discharged through the discharge port 7, its edge contacts the scraping film 33 to scrape the glue onto the surface of the glue guiding plate 35. The glue enters the collection cover 36 through the glue guiding plate 35 and the seventh port 34. At this time, pulling the fifth card row 41 drives the sixth sliding cylinder 40 to move. The movement of the sixth sliding cylinder 40 causes the fifth card row 41 to drive the sixth spring 42 to move. The movement of the sixth spring 42 causes the fifth card row 41 to move out of the sixth card slot 37. At this time, pulling the collection cover 36 removes the discarded glue collected. The excess glue on the composite formed coil is quickly scraped off, improving the overall quality of the coil.

[0027] It is obvious to those skilled in the art that the present invention is not limited to the details of the above-described exemplary embodiments, and that the present invention can be implemented in other specific forms without departing from the spirit or essential characteristics of the present invention. Therefore, in any respect, the embodiments should be regarded as exemplary and non-restrictive. The scope of the present invention is defined by the appended claims rather than the above description. Accordingly, all changes that fall within the meaning and scope of the equivalent elements of the claims are intended to be embraced within the present invention. Any reference signs in the claims should not be construed as limiting the claims involved.

Claims

1. A waterproof, heat-insulating, root-piercing-resistant coil composite molding device, comprising a protective shell (1), a door body (2), a No. 7 opening (4), a support plate (48), a pressing shaft (9) and a glue spraying assembly, characterized in that: The outer wall of the protective shell (1) is provided with a door body (2), the outer wall of the protective shell (1) is provided with a No. 7 opening (4), the outer wall of the protective shell (1) is provided with a No. 9 opening (5), the outer wall of the protective shell (1) is provided with a No. 3 opening (6), the outer wall of the protective shell (1) is provided with a discharge port (7), the inner wall of the protective shell (1) is provided with a pressing shaft (9), the inner wall of the protective shell (1) is provided with a glue spraying assembly, the inner wall of the protective shell (1) is provided with a support plate (48), the inner wall of the glue spraying assembly is provided with a heating assembly, the inner wall of the glue spraying assembly is provided with a glue temperature detection assembly, and the coiled material is a waterproof layer material, a thermal insulation layer material and a root barrier layer material; The glue spraying assembly comprises a No. 7 cover (10), a colloid storage cover (11), an electronic pump (12), a No. 7 pipe (13), a No. 7 nozzle (14), a No. 5 port (45), a sealing rod (21), and a support ring (19). The No. 7 cover (10) is located on the inner wall of the protective shell (1), the colloid storage cover (11) is located on the inner wall of the No. 7 cover (10), the electronic pump (12) penetrates the outer wall of the No. 7 cover (10), the No. 5 port (45) is opened on the outer wall of the No. 7 cover (10), the No. 7 pipe (13) penetrates the inner wall of the No. 5 port (45), and one end of the No. 7 pipe (13) is connected to the electronic pump (12). The output end of the pump (12) is connected, the support ring (19) is located on the inner wall of the No. 7 pipe (13), the No. 7 nozzle (14) penetrates the outer wall of the No. 7 pipe (13), the inner wall of the No. 7 pipe (13) is installed with a No. 7 support rod (15), the outer wall of the No. 7 support rod (15) is installed with a No. 7 cylinder (16), the sealing rod (21) penetrates the inner wall of the No. 7 cylinder (16), the outer wall of the sealing rod (21) is installed with a No. 9 support rod (18), the outer wall of the No. 9 support rod (18) is installed with a No. 7 spring (20), and one end of the No. 7 spring (20) is connected to the outer wall of the support ring (19).

2. The waterproof, heat-insulating, root-piercing-resistant coil composite molding equipment according to claim 1 is characterized by: The sealing rod (21) moves with the support of the No. 7 tube (16), and the No. 7 pipe (13) is in an inverted F shape.

3. The waterproof, heat-insulating, root-piercing-resistant coil composite molding equipment according to claim 1 is characterized by: The heating component comprises a heating row (25), a fan (24), a dust filter (23), a No. 3 support rod (26), a pneumatic head (28), a No. 9 spring (29), an adjustment plate (30), and a connecting rod (31); the heating row (25) is located on the inner wall of the No. 7 cover (10); the fan (24) is located on the inner wall of the No. 7 cover (10); the dust filter (23) penetrates the outer wall of the No. 7 cover (10); the No. 3 support rod (26) is located on the inner wall of the No. 7 cover (10); the pneumatic head ( 28) is located on the outer wall of the No. 3 support rod (26), the output end of the pneumatic head (28) is installed with the No. 3 plate, the No. 9 spring (29) is located on the outer wall of the No. 3 plate, and one end of the No. 9 spring (29) is connected to the outer wall of the No. 3 support rod (26), the outer wall of the No. 3 support rod (26) is installed with a plurality of adjustment plates (30) via a rotating shaft, the adjustment plates (30) are connected with a connecting rod (31) via a rotating shaft, and the output end of the pneumatic head (28) is connected to the outer wall of the adjustment plate (30) via the rotating shaft.

4. The waterproof, heat-insulating, root-piercing-resistant coil composite molding equipment according to claim 3 is characterized by: The adjustment plate (30) is used to adjust the angle via a rotating shaft, and the heating row (25) is located between the fan (24) and the third support rod (26).

5. The waterproof, heat-insulating, root-piercing-resistant coil composite molding equipment according to claim 1 is characterized by: The glue temperature detection component comprises a glue temperature detection block (43) and a microcomputer control box (3); the glue temperature detection block (43) is located on the outer wall of the No. 7 pipe (13); the microcomputer control box (3) is located on the outer wall of the protective shell (1); the glue temperature detection block (43) is electrically connected to the microcomputer control box (3); the microcomputer control box (3) is electrically connected to the heating component; the glue temperature detection block (43) is used to detect real-time glue temperature parameters of glue spraying; the microcomputer control box (3) is used to detect appropriate glue temperature parameters of glue spraying; the appropriate glue temperature of glue spraying is 40-60°C.

6. The waterproof, heat-insulating, root-piercing-resistant coil composite molding equipment according to claim 5, characterized in that: The real-time glue temperature parameter of the glue spraying is transmitted to the microcomputer control box (3), and the real-time glue temperature parameter of the glue spraying is compared with the appropriate glue temperature parameter of the glue spraying through the microcomputer control box (3). When the real-time glue temperature parameter of the glue spraying is greater than the appropriate glue temperature parameter of the glue spraying, the glue temperature is set to a high glue temperature state; when the real-time glue temperature parameter of the glue spraying is less than the appropriate glue temperature parameter of the glue spraying, the glue temperature is set to a low glue temperature state; when the real-time glue temperature parameter of the glue spraying is within the appropriate glue temperature parameter of the glue spraying, the glue temperature is set to a suitable glue temperature state.

7. The waterproof, heat-insulating, root-piercing-resistant coil composite molding equipment according to claim 1 is characterized by: The outer wall of the support plate (48) is provided with a scraper assembly, which is used to scrape off excess glue after the coiled material is laminated.

8. The waterproof, heat-insulating, root-piercing-resistant coiled material composite molding equipment according to claim 7, characterized in that: The rubber scraping assembly comprises a No. 3 cover (32), a rubber scraping blade (33), a rubber guide plate (35), a collecting cover (36), a No. 5 clamping row (41), a T-shaped frame (39), and a No. 6 spring (42); the No. 3 cover (32) is located on the outer wall of the support plate (48); the rubber scraping blade (33) is located on the outer wall of the No. 3 cover (32); a No. 7 opening (34) is opened on the outer wall of the No. 3 cover (32); the rubber guide plate (35) penetrates the inner wall of the No. 7 opening (34); the collecting cover (36) penetrates the outer wall of the No. 3 cover (32); and a No. 8 opening (38) is opened on the outer wall of the No. 3 cover (32). A T-shaped frame (39) is located on the inner wall of the No. 3 cover (32), a No. 6 slide (40) is installed on the outer wall of the T-shaped frame (39), a No. 5 card row (41) is installed through the inner wall of the No. 8 opening (38), and the outer wall of the No. 5 card row (41) is connected to the outer wall of the No. 6 slide (40), a No. 6 spring (42) is located on the outer wall of the No. 5 card row (41), and one end of the No. 6 spring (42) is connected to the outer wall of the T-shaped frame (39), a No. 6 card slot (37) is opened on the top of the collection cover (36), and the outer wall of the No. 5 card row (41) extends to the inner wall of the No. 6 card slot (37).

9. The waterproof, heat-insulating, root-piercing-resistant coil composite molding equipment according to claim 8, characterized in that: The rubber guide plate (35) is located above the collecting cover (36), the rubber scraper (33) is located above the rubber guide plate (35), and the sixth slide cylinder (40) moves by being supported by the T-shaped frame (39).

10. A method for using a waterproof, heat-insulating, root-piercing-resistant coil composite molding device, applicable to the waterproof, heat-insulating, root-piercing-resistant coil composite molding device according to any one of claims 1 to 9, characterized in that: The method for using the composite molding device comprises the following steps: Step S1, the function of the No. 7 support rod (15) is to provide support for the No. 7 tube (16), and the coiled material enters the protective shell (1) through the No. 7 port (4), the No. 9 port (5) and the No. 3 port (6) respectively. At this time, the electronic pump (12) is started to suck the glue in the colloid storage cover (11) into the No. 7 pipe (13). After the pressure of the glue movement reaches a certain level, the sealing rod (21) is driven to move. The movement of the sealing rod (21) drives the No. 9 support rod (18) to move. The movement of the No. 9 support rod (18) drives the No. 7 spring (20) to move. The movement of the No. 7 spring (20) causes the sealing rod (21) to move away from the support ring (19) to open the No. 7 pipe (13). At this time, the glue is evenly sprayed between the coiled material raw materials through the No. 7 nozzle (14), so that the coiled material composite molding equipment sprays glue evenly and improves the quality of coiled material composite molding; Step S2, the fan (24) rotates to generate suction to filter the air through the dust filter (23) and then suck it into the No. 7 cover (10). At this time, the heating row (25) is started, and the wind is heated by the heating row (25) and blown toward the No. 7 pipe (13) to increase the temperature of the glue inside. The pneumatic head (28) is started to drive the No. 3 plate to move. The movement of the No. 3 plate drives the No. 9 spring (29) to move. The movement of the No. 9 spring (29) causes the pneumatic head (28) to drive the adjustment plate (30) to move through the rotating shaft. The movement of the adjustment plate (30) drives the connecting rod (31) to move. The movement of the connecting rod (31) causes the wind to adjust the angle. The heating wind adjusts the angle to improve the heating uniformity of the glue and improve the adhesiveness of the glue. Step S3, when the microcomputer control box (3) detects that the glue temperature is high, the microcomputer control box (3) controls the heating component to stop. After the heating component stops, the glue temperature detection block (43) continues to detect the real-time glue temperature parameters of the glue spraying until the microcomputer control box (3) detects that the glue temperature is low or the glue temperature is appropriate. When the microcomputer control box (3) detects that the glue temperature is low, the microcomputer control box (3) controls the heating component to start. After the heating component starts, the glue temperature detection block (43) continues to detect the real-time glue temperature parameters of the glue spraying until the microcomputer control box (3) detects that the glue temperature is high or the glue temperature is appropriate. When the microcomputer control box (3) detects that the glue temperature is appropriate, the microcomputer control box (3) controls the heating component to maintain power. After the heating component maintains power, the glue temperature detection block (43) continues to detect the real-time glue temperature parameters of the glue spraying until the microcomputer control box (3) detects that the glue temperature is high or the glue temperature is low, so that the glue temperature is automatically controlled during the glue spraying of the coil composite molding equipment to improve the composite quality; Step S4, when the composite-formed coil is discharged through the discharge port (7), its edge contacts the scraper (33) so that the glue is scraped onto the surface of the glue guide plate (35), and the glue enters the collecting cover (36) through the glue guide plate (35) and the seventh port (34). At this time, the fifth card row (41) is pulled to drive the sixth slide cylinder (40) to move, and the sixth slide cylinder (40) moves to cause the fifth card row (41) to drive the sixth spring (42) to move, and the sixth spring (42) moves to cause the fifth card row (41) to move out of the sixth card slot (37). At this time, the collecting cover (36) is pulled to remove the waste glue of the mobile phone, and the excess glue of the composite-formed coil is quickly scraped off to improve the overall quality of the coil.

Citation Information

Patent Citations

  • A production process for an integrated waterproof and thermal insulation panel

    CN102806745B

  • Floor composite forming machine, floor production line equipment and production method thereof

    CN106945322A

  • A multi-layer composite material bonding and molding production equipment

    CN112590229B

  • Multi-layer metal composite material structure pipe curling forming equipment

    CN118663804A

  • Anti-mite blended composite fabric and preparation process thereof

    CN111559129A