Automatic equipment for glass fiber ceiling integrated processing
By designing automated equipment, the entire process of fiberglass ceiling production is automated, solving the problems of low automation and unstable product quality in traditional processes, and improving production efficiency and product cleanliness.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- 山东华美建材有限公司
- Filing Date
- 2026-05-11
- Publication Date
- 2026-07-10
AI Technical Summary
Traditional fiberglass ceiling production processes have low automation levels, require high labor intensity, are prone to producing defective products, and have unstable product quality, with issues such as fingerprint contamination and long curing times.
Design an automated equipment for integrated processing of fiberglass ceiling panels, including a conveyor, a hot air dryer, a dispensing assembly, an extrusion lamination assembly, and a flipping assembly, to achieve automatic bonding and rapid drying of the upper and lower surfaces of the ceiling substrate, and complete the processing through a CNC longitudinal and transverse cutting machine and a natural gas drying oven.
It enables automated lamination of both the top and bottom surfaces of the ceiling substrate, avoiding manual traces and fingerprints, reducing labor costs, improving production efficiency and product quality, and shortening processing time.
Smart Images

Figure CN122354050A_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of fiberglass ceiling production equipment technology, specifically to an automated equipment for integrated processing of fiberglass ceilings. Background Technology
[0002] Fiberglass ceiling panels are decorative panels made of fiberglass as the base material. They have advantages such as being lightweight, fireproof, moisture-proof, and soundproof. They are widely used in ceiling decoration in public places such as offices, shopping malls, and hospitals. In order to beautify the appearance and improve the surface performance, a decorative surface layer is usually laminated on the surface of the fiberglass base material.
[0003] The traditional production process for fiberglass ceiling veneer mainly includes the following steps: First, the surface layer is manually cut to match the size of the ceiling substrate. Then, composite adhesive is sprayed onto the substrate, and the surface layer is manually aligned and bonded to the substrate. This process has the following disadvantages: The work intensity is high, workers need to be proficient in composite technology, and the alignment of personnel is difficult, which can easily lead to defective products. During the operation, the surface layer is easily contaminated with fingerprints. In addition, since the ceiling has two surfaces that need to be laminated, the same operation is required twice, and there is a 2-4 hour interval in between to wait for the glue to solidify, resulting in a lot of turnaround time and waste. After the surface layer is laminated, it needs to be transferred to the precision cutting workshop for horizontal and vertical cutting. After cutting, latex paint is manually sprayed to harden and seal the edges. The entire production process is decentralized, has a low degree of automation, low efficiency, and unstable product quality.
[0004] Therefore, it is necessary to develop an integrated automated equipment for drying and cutting fiberglass ceiling veneers to achieve fully automated production from veneer application to cutting and edge coating. Summary of the Invention
[0005] To address the shortcomings of existing technologies, this invention provides an automated device for integrated processing of fiberglass ceiling panels. The device can sequentially apply a bonding process to both the upper and lower surfaces of the ceiling substrate. The entire bonding process requires no manual intervention from operators, thereby completely avoiding issues such as operation marks and fingerprint residue caused by direct contact with the substrate by operators, and effectively ensuring the cleanliness of the product appearance after ceiling bonding.
[0006] To achieve the above objectives, the present invention provides the following technical solution: an automated equipment for integrated processing of fiberglass ceiling panels, comprising a first conveyor, a first hot air dryer, a second conveyor, and a second hot air dryer, wherein the top of the first conveyor and the second conveyor are provided with an adhesive dispensing component and an extrusion compounding component, and the first hot air dryer is provided with a flipping component on the side near the second conveyor. The dispensing assembly includes a first fixing frame, a first power component is provided on the top of the first fixing frame, and a limit frame is fixedly installed on the side of the surface of the first fixing frame near the extrusion composite assembly. An L-shaped fixing rod is fixedly installed on one side of the top of the first fixing frame, and an adjusting telescopic rod is fixedly installed on one side of the inner wall of the L-shaped fixing rod. A dispensing head is fixedly installed at the output end of the adjusting telescopic rod, and two correction blocks are provided on the lower side of the first power component. The extrusion composite assembly includes a second fixed frame, on which placement slot plates are fixedly installed on opposite sides of the top of the second fixed frame. A mounting shell is fixedly installed on the side of the second fixed frame closer to the first fixed frame. A second power component is provided inside the mounting shell, and two sets of correction guide wheels are provided on one side of the second power component.
[0007] Furthermore, a fiberglass ceiling CNC longitudinal and transverse cutting machine and a natural gas-fired panel edge drying oven are installed on the right side of the second hot air dryer. The fiberglass ceiling CNC longitudinal and transverse cutting machine is used to cut the composite ceiling tightly, and the natural gas-fired panel edge drying oven is used to dry and remove it, thus completing the ceiling processing.
[0008] Furthermore, the first hot air dryer is located between the first conveyor and the second conveyor, and the height of the first hot air dryer is higher than that of the second conveyor. After being flipped by the flipping component set on the right side of the first hot air dryer, the product can be smoothly flipped to the upper side of the second conveyor. The first conveyor and the first hot air dryer are set on a horizontal line, while the second conveyor, the second hot air dryer, the fiberglass ceiling CNC longitudinal and transverse cutting machine, and the natural gas board edge drying oven are set on the same horizontal line.
[0009] Furthermore, the bottoms of the two corresponding first fixing frames are respectively fixedly connected to the tops of the first conveyor and the second conveyor to ensure the stability of the dispensing assembly during use. In addition, the dispensing assembly of this application adopts a bolt fixing method, which can ensure the adjustable effect of the dispensing position. The top of the first fixing frame is fixedly installed with a protective cover on the periphery of the first power component. Limiting vertical rods are fixedly installed on both opposite sides of the top of the dispensing head, and the surfaces of the two limiting vertical rods are slidably connected to the surface of the limiting frame.
[0010] Furthermore, both the first and second power components include an output motor, and a bidirectional lead screw is fixedly installed at the output end of the output motor. A bushing is rotatably installed on the rod wall of the bidirectional lead screw, and the surfaces of the corresponding bushings are fixedly connected to the interior of the mounting shell and the protective cover, respectively, to ensure the stable operation of the power component structure. A moving block is threadedly connected to the rod wall of the bidirectional lead screw, and two limiting beams are slidably installed on the surface of the moving block. The surfaces of the corresponding limiting beams are fixedly connected to the interior of the mounting shell and the protective cover, and the limiting beams ensure the stable movement of the moving block.
[0011] Furthermore, the bottoms of the two corresponding second fixing frames are respectively fixedly connected to the tops of the first conveyor and the second conveyor. The placement trough is a plate structure with slots, and the slots can hold the roll material. A fastening screw is provided on one side of the top of the placement trough, and the lower end of the fastening screw is threaded to the lower side of the inner wall of the placement trough.
[0012] Furthermore, the moving block located in the dispensing assembly is fixedly connected to the surface of the correction block. Its movement effect can drive the correction block to move relative to or in opposite directions, thereby ensuring the positioning effect of the ceiling substrate conveying. The moving block located in the extrusion composite assembly is fixedly connected to the surface of a set of correction guide wheels. Its movement effect can drive the correction guide wheels to move relative to or in opposite directions, thereby ensuring the positioning effect of the roll material conveying.
[0013] Furthermore, a connecting platform is fixedly installed on the side of the second fixing frame away from the mounting shell. A flying shear is provided on the top of the connecting platform, and a support rod is fixedly installed on the bottom of the connecting platform. A round-headed rod is slidably installed on the top of the support rod, and a tension spring is fixedly installed on the end of the round-headed rod. A composite roller is rotatably installed on the lower ends of the two round-headed rods.
[0014] Furthermore, the surface of the support rod is fixedly connected to the surface of the second fixed frame, the end of the round-headed rod is integrally formed with an enlarged end, the inner wall of the tension spring is sleeved on the rod wall of the round-headed rod, and the lower end of the tension spring is fixedly connected to the surface of the support rod.
[0015] Furthermore, the flipping assembly includes two extension plates fixedly installed on one side of the surface of the first hot air dryer. A servo motor is fixedly installed on the surface of one of the extension plates, and the output end of the servo motor extends through to the position between the two extension plates. A flipping component is fixedly installed on the output end of the servo motor. An infrared sensor switch is provided on the top of the two extension plates on one side of the servo motor. After the infrared sensor switch detects the fall of the ceiling substrate, it can drive it to flip, so that the ceiling substrate can be flipped 180 degrees and fall into the upper side of the second conveyor. The flipping component includes a flat plate and U-shaped clips fixedly installed on opposite sides of the flat plate surface. The two U-shaped clips are arranged symmetrically at the center. Arc-shaped spring pieces are fixedly installed on opposite sides of the inner wall of the two U-shaped clips. By utilizing the elastic micro-compression effect of the arc-shaped spring pieces, the position of the ceiling substrate can be kept stable, and the processing can be further improved.
[0016] Compared with the prior art, the present invention provides an automated device for integrated processing of fiberglass ceilings, which has the following advantages: 1. This device can sequentially apply a veneer to both the top and bottom surfaces of the ceiling substrate. The entire veneer process requires no manual intervention from the operator, thus completely avoiding issues such as operation marks and fingerprints caused by the operator's direct contact with the substrate, effectively ensuring the cleanliness of the product appearance after ceiling veneer. 2. This device, through a fully automated lamination and conveying process, eliminates the need for manual feeding, flipping, or auxiliary lamination, significantly reducing the physical exertion and repetitive labor of operators and improving working conditions in production operations. 3. The device includes automatic lamination and rapid drying functions, forming a continuous processing method. This eliminates the need for manual transfer or waiting during the entire process of lamination and drying of the ceiling substrate, significantly improving the automation level of the entire production line. 4. The device has a built-in or integrated rapid drying mechanism, which can efficiently dry the substrate immediately after the lamination is completed, reducing the time required for traditional natural air drying or external drying, thereby reducing the total processing time of a single product and increasing the output per unit time. 5. This device achieves the synergistic effect of multiple technologies such as automatic double-sided lamination, no manual operation required, and rapid drying. The overall processing rhythm is compact, and it can significantly improve the processing efficiency of ceilings compared with existing technologies. Attached Figure Description
[0017] Figure 1 This is a three-dimensional view of the entire invention.
[0018] Figure 2 This is a perspective view of the extrusion composite component of the present invention.
[0019] Figure 3 for Figure 2 Enlarged structural diagram of section A in the middle.
[0020] Figure 4 This is a cross-sectional perspective view of the mounting shell of the present invention.
[0021] Figure 5 for Figure 4 Enlarged structural diagram of section B.
[0022] Figure 6 This is a vertical sectional perspective view of the protective cover of the present invention.
[0023] Figure 7 for Figure 6 Enlarged structural diagram of section C.
[0024] Figure 8 This is a perspective view of the first hot air dryer of the present invention.
[0025] Figure 9 This is a perspective view of the unfolded flip-over component of the present invention.
[0026] In the diagram: 1. First conveyor; 2. First hot air dryer; 3. Second conveyor; 4. Second hot air dryer; 401. CNC longitudinal and transverse cutting machine for fiberglass ceiling panels; 402. Natural gas-fired edge drying oven for sheet materials; 5. Dispensing assembly; 501. First fixing frame; 502. First power component; 5021. Protective cover; 5022. Limiting vertical rod; 503. Limiting frame; 504. L-shaped fixing rod; 505. Adjustable telescopic rod; 506. Dispensing head; 507. Correcting tilt block; 6. Extrusion composite assembly; 601. Second fixed frame; 602. Placement slot plate; 603. Mounting shell; 604. Second power component; 6041. Output motor; 6042. Bidirectional lead screw; 6043. Bushing; 6044. Moving block; 6045. Limiting beam; 605. Correcting guide wheel; 606. Connecting table; 607. Flying shear; 608. Support rod; 609. Round head rod; 610. Tension spring; 611. Composite roller; 7. Flip assembly; 701. Extension plate; 702. Servo motor; 703. Flip part; 7031. Flat plate; 7032. U-shaped clip; 7033. Arc-shaped spring; 704. Infrared sensor switch; 8. Fastening screw. Detailed Implementation
[0027] The technical solutions of the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of the present invention.
[0028] Please see Figures 1 to 9 An automated equipment for integrated processing of fiberglass ceiling in this embodiment includes a first conveyor 1, a first hot air dryer 2, a second conveyor 3, and a second hot air dryer 4. The top of the first conveyor 1 and the second conveyor 3 are provided with a dispensing component 5 and an extrusion composite component 6. The first hot air dryer 2 is provided with a flipping component 7 on the side close to the second conveyor 3. The dispensing assembly 5 includes a first fixing frame 501, a first power component 502 is disposed on the top of the first fixing frame 501, a limit frame 503 is fixedly installed on the side of the first fixing frame 501 near the extrusion composite assembly 6, an L-shaped fixing rod 504 is fixedly installed on one side of the top of the first fixing frame 501, an adjusting telescopic rod 505 is fixedly installed on one side of the inner wall of the L-shaped fixing rod 504, and a dispensing head 506 is fixedly installed at the output end of the adjusting telescopic rod 505. Two correction blocks 507 are disposed on the lower side of the first power component 502. The extrusion composite assembly 6 includes a second fixed frame 601. Placement slots 602 are fixedly installed on opposite sides of the top of the second fixed frame 601. An installation shell 603 is fixedly installed on the side of the second fixed frame 601 near the first fixed frame 501. A second power component 604 is provided inside the installation shell 603. Two sets of correction guide wheels 605 are provided on one side of the second power component 604. The second hot air dryer 4 is equipped with a fiberglass ceiling CNC longitudinal and transverse cutting machine 401 and a natural gas-fired board edge drying oven 402 on the right side. The first hot air dryer 2 is located between the first conveyor 1 and the second conveyor 3, and the height of the first hot air dryer 2 is higher than the height of the second conveyor 3. The first conveyor 1 and the first hot air dryer 2 are set on the same horizontal line. The second conveyor 3, the second hot air dryer 4, the fiberglass ceiling CNC longitudinal and transverse cutting machine 401 and the natural gas-fired board edge drying oven 402 are set on the same horizontal line. The bottoms of the two corresponding first fixed frames 501 are fixedly connected to the tops of the first conveyor 1 and the second conveyor 3 respectively. The top of the first fixed frame 501 is fixedly installed with a protective cover 5021 on the periphery of the first power component 502. Limiting vertical rods 5022 are fixedly installed on opposite sides of the top of the dispensing head 506, and the surfaces of the two limiting vertical rods 5022 are slidably connected to the surface of the limiting frame 503. Both the first power component 502 and the second power component 604 include an output motor 6041. A bidirectional lead screw 6042 is fixedly installed at the output end of the output motor 6041. A bushing 6043 is rotatably installed on the rod wall of the bidirectional lead screw 6042. The surfaces of the corresponding bushings 6043 are fixedly connected to the interior of the mounting shell 603 and the protective cover 5021, respectively. A moving block 6044 is threadedly connected to the rod wall of the bidirectional lead screw 6042. Two limiting beams 6045 are slidably installed on the surface of the moving block 6044. The surfaces of the corresponding limiting beams 6045 are fixedly connected to the interior of the mounting shell 603 and the protective cover 5021, respectively. The bottoms of the two corresponding second fixed frames 601 are fixedly connected to the tops of the first conveyor 1 and the second conveyor 3 respectively. The placement trough plate 602 is a plate structure with slots. The slots can hold the roll material. A fastening screw 8 is provided on one side of the top of the placement trough plate 602, and the lower end of the fastening screw 8 is threaded to the lower side of the inner wall of the placement trough plate 602. The moving block 6044 located in the dispensing assembly 5 is fixedly connected to the surface of the correction skew block 507. The moving block 6044 located in the extrusion composite assembly 6 is fixedly connected to the surface of a set of correction guide wheels 605. A connecting platform 606 is fixedly installed on the side of the second fixed frame 601 away from the mounting shell 603. A flying shear machine 607 is provided on the top of the connecting platform 606. A support rod 608 is fixedly installed on the bottom of the connecting platform 606. A round-headed rod 609 is slidably installed on the top of the support rod 608. A tension spring 610 is fixedly installed on the end of the round-headed rod 609. A composite roller 611 is rotatably installed on the lower ends of the two round-headed rods 609. The surface of the support rod 608 is fixedly connected to the surface of the second fixing frame 601. The end of the round-head rod 609 is integrally formed with an enlarged end, the inner wall of the tension spring 610 is sleeved on the rod wall of the round-head rod 609, and the lower end of the tension spring 610 is fixedly connected to the surface of the support rod 608; The flipping assembly 7 includes two extension plates 701 fixedly installed on one side of the surface of the first hot air dryer 2. A servo motor 702 is fixedly installed on the surface of one of the extension plates 701. The output end of the servo motor 702 extends through to the position between the two extension plates 701. A flipping component 703 is fixedly installed on the output end of the servo motor 702. An infrared sensor switch 704 is provided on the top of the two extension plates 701 on one side of the servo motor 702. The flipping component 703 includes a flat plate 7031 and U-shaped clips 7032 fixedly installed on opposite sides of the surface of the flat plate 7031. The two U-shaped clips 7032 are centrally symmetrically arranged. Arc-shaped spring pieces 7033 are fixedly installed on opposite sides of the inner wall of the two U-shaped clips 7032.
[0029] When the device in this embodiment is working, it operates according to the following process: After the equipment is started, the first conveyor 1 drives the ceiling substrate to move forward. When the ceiling substrate passes under the dispensing assembly 5, the adjusting telescopic rod 505 drives the dispensing head 506 to descend and dispense adhesive onto the upper surface of the substrate. At the same time, the first power component 502 drives the two correction skew blocks 507 to move relative to each other, so that the substrate always travels along the center line of the conveyor and prevents deviation. The correction skew block 507 is a pre-set correction structure with the same correction guide wheel 605. After the adhesive is applied, the substrate continues to move to the extrusion composite assembly 6 on the first conveyor 1. The upper surface roll material placed in the placement trough 602 is drawn out. When the roll material is placed into the slot of the placement trough 602, the roll material axis is fixed by the fastening screw 8. After being positioned by the guide wheel 605, it covers the upper surface of the substrate coated with adhesive. The composite roller 611 presses the roll material and the substrate tightly together under the action of the tension spring 610 to achieve upper surface covering. Subsequently, the substrate with the upper surface covering enters the first hot air dryer 2 for preliminary drying. Before entering the first hot air dryer 2, it will be cut by the flying shear 607. After the upper surface is dried, the substrate is output from the outlet end of the first hot air dryer 2 and falls into the flipping part 703 of the flipping assembly 7; Specifically, the substrate is inserted into the U-shaped clip 7032 on the upper side of the flat plate 7031, and the arc-shaped spring piece 7033 provides simple elastic clamping and positioning to prevent it from falling off. After the infrared sensor switch 704 detects that the substrate is in place, it triggers the servo motor 702 to rotate 180°, which drives the flipping part 703 to flip as a whole, so that the substrate falls into the starting end of the second conveyor 3 after being upside down. On the second conveyor 3, the lower surface of the substrate is flipped over and passes through the dispensing assembly 5 and the extrusion composite assembly 6 on the second conveyor 3 in sequence. Similarly, the lower surface roll is dispensed with glue and bonded to the current upper surface of the substrate, i.e. the original lower surface, to complete the double-sided bonding. The bonded substrate enters the second hot air dryer 4 for a second drying to ensure that both coatings are fully cured. Finally, the fully laminated and dried fiberglass ceiling panels are sequentially fed into the CNC longitudinal and transverse cutting machine 401 for precise cutting, and then the cut edges are dried in the natural gas-fired panel edge drying oven 402 to obtain the final product. The adjusting telescopic rod 505 in the dispensing assembly 5 can drive the dispensing head 506 to move up and down, and adjust the dispensing height according to the thickness of the substrate. The first power component 502 drives two correction blocks 507 to move synchronously towards or away from each other through the bidirectional lead screw 6042, thereby limiting and correcting the two sides of the substrate to ensure that the substrate remains centered during the conveying process and avoids inaccurate dispensing position or misalignment of the covering surface due to offset. The placement groove plate 602 in the extrusion composite assembly 6 is used to install the roll material. After the roll material is drawn out, it is also laterally positioned by two sets of correction guide rollers 605. The composite roller 611 is always in close contact with the substrate surface under the tension of the tension spring 610, pressing the roll material flat on the substrate coated with glue to form a uniform coating layer. There is a height difference between the first hot air dryer 2 and the second conveyor 3. The flipping component 7 takes advantage of this space. The flipping component 703 is equipped with two centrally symmetrical U-shaped clips 7032, which are used to receive and output the substrate respectively. After the infrared sensor switch 704 detects that the substrate has fallen into the first U-shaped clip 7032, the servo motor 702 drives the flipping component 703 to rotate 180°, so that the substrate with the dried upper surface is flipped to the other side and falls into the second conveyor 3, so that the unprocessed lower surface is facing up, which is convenient for subsequent second dispensing and coating. The first hot air dryer 2 performs preliminary drying on the substrate after the upper surface is covered, preventing the adhesive from flowing or falling off during the flipping process. The second hot air dryer 4 performs final drying on the substrate after double-sided covering, ensuring that the adhesive is completely cured. The dried board is then precisely cut into the required size by the fiberglass ceiling CNC longitudinal and transverse cutting machine 401. Finally, the cut edges are dried by the natural gas board edge drying oven 402 to eliminate moisture or burrs that may be caused by cutting, thereby improving the quality of the finished product.
[0030] The installation, connection, or setting methods disclosed in this embodiment are all common mechanical connection methods. Any method that can achieve its beneficial effect can be implemented. In addition, the electrical components in this embodiment are all electrically connected to the main controller and the power supply. The main controller can be a conventional known device such as a computer that plays a control role. Those skilled in the art can control the electrical components through simple programming. Moreover, the existing disclosed power connection technology is also common knowledge in the field. Therefore, the specific structural composition and working principle will not be described in detail in this embodiment.
Claims
1. An automated equipment for integrated processing of fiberglass ceiling panels, comprising a first conveyor (1), a first hot air dryer (2), a second conveyor (3), and a second hot air dryer (4), characterized in that: The top of the first conveyor (1) and the second conveyor (3) are provided with a dispensing assembly (5) and an extrusion compounding assembly (6), and the first hot air dryer (2) is provided with a flipping assembly (7) on the side near the second conveyor (3). The dispensing assembly (5) includes a first fixing frame (501), a first power component (502) is provided on the top of the first fixing frame (501), and a limit frame (503) is fixedly installed on the side of the surface of the first fixing frame (501) near the extrusion composite assembly (6). An L-shaped fixing rod (504) is fixedly installed on one side of the top of the first fixing frame (501), and an adjusting telescopic rod (505) is fixedly installed on one side of the inner wall of the L-shaped fixing rod (504). A dispensing head (506) is fixedly installed at the output end of the adjusting telescopic rod (505), and two correction blocks (507) are provided on the lower side of the first power component (502). The extrusion composite assembly (6) includes a second fixed frame (601), on which placement slots (602) are fixedly installed on opposite sides of the top of the second fixed frame (601), and a mounting shell (603) is fixedly installed on the side of the second fixed frame (601) near the first fixed frame (501). A second power component (604) is provided inside the mounting shell (603), and two sets of correction guide wheels (605) are provided on one side of the second power component (604).
2. The automated equipment for integrated processing of fiberglass ceiling panels according to claim 1, characterized in that: The second hot air dryer (4) is equipped with a fiberglass ceiling CNC longitudinal and transverse cutting machine (401) and a natural gas-type board edge drying oven (402) on the right side.
3. The automated equipment for integrated processing of fiberglass ceiling panels according to claim 2, characterized in that: The first hot air dryer (2) is located between the first conveyor (1) and the second conveyor (3). The first conveyor (1) and the first hot air dryer (2) are set on the same horizontal line, while the second conveyor (3), the second hot air dryer (4), the fiberglass ceiling CNC longitudinal and transverse cutting machine (401), and the natural gas board edge drying oven (402) are set on the same horizontal line.
4. The automated equipment for integrated processing of fiberglass ceiling panels according to claim 1, characterized in that: The bottoms of the two corresponding first fixing frames (501) are fixedly connected to the tops of the first conveyor (1) and the second conveyor (3), respectively. The top of the first fixing frame (501) is fixedly installed with a protective cover (5021) on the periphery of the first power component (502). Limiting vertical rods (5022) are fixedly installed on opposite sides of the top of the dispensing head (506), and the surfaces of the two limiting vertical rods (5022) are slidably connected to the surface of the limiting frame (503).
5. The automated equipment for integrated processing of fiberglass ceiling panels according to claim 4, characterized in that: The first power component (502) and the second power component (604) both include an output motor (6041), and a bidirectional lead screw (6042) is fixedly installed at the output end of the output motor (6041). A bushing (6043) is rotatably installed on the rod wall of the bidirectional lead screw (6042). The surfaces of the corresponding bushings (6043) are fixedly connected to the interior of the mounting shell (603) and the protective cover (5021), respectively. A moving block (6044) is threadedly connected to the rod wall of the bidirectional lead screw (6042), and two limiting beams (6045) are slidably installed on the surface of the moving block (6044). The surfaces of the corresponding limiting beams (6045) are fixedly connected to the interior of the mounting shell (603) and the protective cover (5021), respectively.
6. The automated equipment for integrated processing of fiberglass ceiling panels according to claim 1, characterized in that: The bottoms of the two corresponding second fixing frames (601) are fixedly connected to the tops of the first conveyor (1) and the second conveyor (3), respectively. The placement trough plate (602) is a plate structure with slots. A fastening screw (8) is provided on one side of the top of the placement trough plate (602), and the lower end of the fastening screw (8) is threaded to the lower side of the inner wall of the placement trough plate (602).
7. The automated equipment for integrated processing of fiberglass ceiling panels according to claim 5, characterized in that: The moving block (6044) located in the dispensing assembly (5) is fixedly connected to the surface of the correction skew block (507), and the moving block (6044) located in the extrusion composite assembly (6) is fixedly connected to the surface of a set of correction guide wheels (605).
8. The automated equipment for integrated processing of fiberglass ceilings according to claim 1, characterized in that: A connecting platform (606) is fixedly installed on the side of the second fixed frame (601) away from the mounting shell (603). A flying shear machine (607) is provided on the top of the connecting platform (606), and a support rod (608) is fixedly installed on the bottom of the connecting platform (606). A round-headed rod (609) is slidably installed on the top of the support rod (608), and a tension spring (610) is fixedly installed on the end of the round-headed rod (609). A composite roller (611) is rotatably installed on the lower ends of the two round-headed rods (609).
9. An automated device for integrated processing of fiberglass ceiling panels according to claim 8, characterized in that: The surface of the support rod (608) is fixedly connected to the surface of the second fixed frame (601), the end of the round-headed rod (609) is integrally formed with an enlarged end, the inner wall of the tension spring (610) is sleeved on the rod wall of the round-headed rod (609), and the lower end of the tension spring (610) is fixedly connected to the surface of the support rod (608).
10. An automated device for integrated processing of fiberglass ceiling panels according to claim 1, characterized in that: The flipping assembly (7) includes two extension plates (701) fixedly installed on one side of the surface of the first hot air dryer (2). A servo motor (702) is fixedly installed on the surface of one of the extension plates (701), and the output end of the servo motor (702) extends through to the position between the two extension plates (701). A flipping component (703) is fixedly installed on the output end of the servo motor (702). An infrared sensor switch (704) is provided on the top of the two extension plates (701) on one side of the servo motor (702). The flipping component (703) includes a flat plate (7031) and U-shaped clips (7032) fixedly installed on opposite sides of the surface of the flat plate (7031). The two U-shaped clips (7032) are arranged in a centrally symmetrical manner, and arc-shaped spring pieces (7033) are fixedly installed on opposite sides of the inner wall of the two U-shaped clips (7032).