Production equipment and production process for dust deposition prevention assembly

Through the production equipment and processes of anti-gravel components, the problem of silicone pollution transmission equipment without A-side photovoltaic modules is solved, and the automated assembly and cleaning is simplified, ensuring the quality of the finished product.

CN120326326APending Publication Date: 2025-07-18HONGYUAN PHOTOENERGY (WUXI) CO LTD +1
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Patent Information

Application Number
CN202510289558.4
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-03-12
Publication Date
2025-07-18

AI Technical Summary

Technical Problem

The existing photovoltaic module production process cannot be applied to A-side components, resulting in silicone contamination and transmission equipment, and the inability to glue in the glass notch area, affecting the assembly and cleaning process of the components.

Method used

Anti-gravel assembly production equipment is used, including conveyor belts, drive rods, linear motors, lift racks and pressing plates, to achieve the alignment, flip and pressing of the frame, combined with the use of high viscosity silicone, to ensure that the silicone does not contaminate the equipment.

Benefits of technology

Automatic assembly of anti-gravel components is realized, avoiding contamination of the conveying equipment, ensuring the quality of the finished product, and overflow of silicone does not affect the subsequent process, simplifying the cleaning and packaging process.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention discloses dust accumulation prevention assembly production equipment and a production process, and relates to the field of dust accumulation prevention assembly production, the dust accumulation prevention assembly production equipment comprises an equipment body, a first conveying belt is mounted in an inner cavity of the equipment body, and driving rods are symmetrically and movably connected to the two ends of the top of the first conveying belt; a linear motor is mounted at the top of the equipment body, a driving frame is mounted on an output shaft of the linear motor, a lifting frame is movably connected to the bottom of an inner cavity of the driving frame, and a pressing plate is movably connected to the bottom of the lifting frame. According to the dust accumulation prevention assembly production equipment and the production process, pollution to conveying equipment can be avoided during production, the whole assembly process is automatic, convenient and rapid, the quality of finished products can be guaranteed, a frame placed on the first conveying belt can be straightened, the frame can be conveniently aligned with a dust accumulation prevention assembly, and the production efficiency is improved. And subsequent pressing work is facilitated.
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Description

Technical Field

[0001] The present invention relates to the production field of anti-dust accumulation components, and particularly to a production device and production process for anti-dust accumulation components. Background Technique

[0002] Conventional photovoltaic modules have aluminum alloy frames on four sides, namely A, B, C, and D, as the outer shell to protect the internal laminates, and are filled and fixedly connected with silicone in the middle; The traditional production process of photovoltaic modules is: string welding - stack welding - lamination - edge trimming - frame gluing - framing - junction box installation - module curing - cleaning - packaging; In the existing process, with a conventional frame, glue is first applied to the glass notch (B side), then the A side of the frame is facing down, the C side is facing up, and the laminate (with the front side facing down) is in the middle. The long and short frames are slowly pushed together to complete the preliminary assembly of the module; then the junction box is installed and the junction box glue is filled, and finally the whole is cured for 3 - 4 hours and the module is fixed with silicone; finally, it is cleaned and packaged. The existing technology is only suitable for the assembly production of module frames with an A side. The anti-dust accumulation module has no A side, and it is also impossible to apply glue to the inner B side of the glass notch; after applying glue in the notch area, it is also impossible to perform the inverted assembly of the frame (because the production line will be polluted during the pushing process between the frame and the laminate); and since the overflowing silicone directly contacts the wire body, it further pollutes the conveying equipment, so the existing process cannot be used on modules without an A side.

[0003] Therefore, it is very necessary to propose a production device and production process for anti-dust accumulation components to solve the above problems. Summary of the Invention

[0004] The main purpose of the present invention is to provide a production device and production process for anti-dust accumulation components, which can effectively solve the problems in the background technique.

[0005] To achieve the above purpose, the technical solution adopted by the present invention is as follows: A production device for anti-dust accumulation components includes a device body. A first conveyor belt is installed in the inner cavity of the device body. Driving rods are symmetrically and movably connected to both ends at the top of the first conveyor belt. A linear motor is installed on the top of the device body. A driving frame is installed on the output shaft of the linear motor. A lifting frame is movably connected to the bottom of the inner cavity of the driving frame. A pressing plate is movably connected to the bottom of the lifting frame; A rotating assembly is movably connected to the bottom of the pressing plate. A rotating frame is rotatably connected to the inner cavity of the rotating assembly. Rack bars are symmetrically and movably connected to both sides in the inner cavity of the rotating frame; A material receiving component is arranged on the left side of the equipment body. At both ends of the inner cavity of the material receiving component, second conveyor belts are symmetrically installed. At both ends of the two second conveyor belts, material receiving trays are symmetrically installed. One end of the material receiving tray away from the material receiving component is movably connected with an adjusting tray.

[0006] Preferably, a movable groove is opened on the right side of the equipment body. A bidirectional lead screw is rotatably connected in the inner cavity of the movable groove. A first driving motor is installed on the outer wall of the equipment body. The first driving motor is installed on the outer wall of the bidirectional lead screw through a first rotating shaft. A driving rod is installed on the right side of the positioning component. The bottom of the driving rod is movably connected in the inner cavity of the movable groove and is threadedly connected to the outer wall of the bidirectional lead screw. On the opposite sides of the inner cavities of the two positioning components, rollers are symmetrically rotatably connected.

[0007] Preferably, a hydraulic lifting rod is installed in the middle of the top of the driving frame. The bottom of the hydraulic lifting rod is installed in the middle of the top of the lifting frame. At both ends of the lifting frame, first connecting columns are symmetrically installed. The bottom of the first connecting column is installed on the top of the rotating component.

[0008] Preferably, moving grooves are symmetrically opened in the middle of the opposite sides of the two first connecting columns. A lead screw is rotatably connected in the inner cavity of one end of the moving groove. A first rotating motor is installed in the middle of the top of the first connecting column. The bottom of the first rotating motor is installed on the bottom of the lead screw through a second rotating shaft. Both ends of the pressing plate are movably connected in the inner cavities of the two moving grooves. One end of the pressing plate is threadedly connected to the outer wall of the lead screw.

[0009] Preferably, a second rotating motor is installed at one end of the rotating component. The second rotating motor is installed on the outer wall of the rotating frame through a third rotating shaft. Through grooves are symmetrically opened in the middle of both sides of the rotating frame and the rotating component. The through grooves are adapted to the size of the rack.

[0010] Preferably, servo motors are symmetrically installed on both sides of the top of the rotating component. The servo motors are installed with gears through fourth rotating shafts. The bottom of the gears extends into the through grooves at the rotating component. The gears are meshed with the top of the rack.

[0011] Preferably, universal wheels are symmetrically installed around the bottom of the material receiving component. A hydraulic push rod is installed on the top of the bottom material receiving tray. On the opposite sides of each adjusting tray, second connecting columns are installed. The bottom of the bottom second connecting column is movably connected in the inner cavity of the bottom adjusting tray and is connected to the hydraulic push rod.

[0012] Preferably, a belt is installed on the top of the left side of the material receiving component, and pulleys are symmetrically installed at both ends of the belt inner cavity. The two pulleys are used to drive two second conveyor belts respectively, and a second drive motor is installed on the side of the material receiving component. The second drive motor is installed on the side of one of the pulleys through a fifth rotating shaft.

[0013] A production process for an anti-dust accumulation component comprises the following steps: S1: The front-end process of production of the anti-dust assembly: series welding - stack welding - lamination - chamfering is the same as that of the traditional anti-dust assembly. After the chamfering is completed, the anti-dust assembly is placed in the inner cavity of the rotating frame, and the second rotating motor is started. The anti-dust assembly is driven to rotate through the rotating frame to turn it over until the front and back of the anti-dust assembly is facing up. The two servo motors are started to drive the gears to rotate. After the gears rotate, they are meshed with the racks. At this time, the two racks can be driven to move to the opposite side until they are attached to the two sides of the anti-dust assembly. At this time, the preliminary positioning of the anti-dust assembly is completed; S2: Place the frame to be assembled on the first conveyor belt, start the first conveyor belt, move it to the bottom of the anti-dust assembly, start the first drive motor, drive the bidirectional screw rod to rotate in the inner cavity of the movable groove, so that the drive rod can be threadedly connected with the bidirectional screw rod, and then drive the two positioning assemblies to move until they are attached to the two ends of the frame. Based on this, the frame is straightened so that it can be on the same axis as the anti-dust assembly, and high-viscosity silicone is applied to the glass groove of the frame. At the same time, before applying the glue, it is necessary to use a large suction or blowing force to clean the surface of the bonding area to prevent the interface between the silicone and the frame from failing in the later stage; S3: After the gluing process is completed on the frame, the frame is assembled. Since there is no anti-dust component as support, attention should be paid to the bending deformation of the frame during assembly to prevent irreversible bulging or depression of the frame; S4: Infrared positioning is performed on the anti-dust accumulation component and the temporary combination of the completed frame, respectively, so that the outer edge of the anti-dust accumulation component is kept about two millimeters from the outer edge of the frame, and the anti-dust accumulation component is physically placed on the frame structure. After holding for a few seconds, the anti-dust accumulation component is pressed as a whole, and the first rotating motor is started to drive the screw rod to rotate so that one end of the pressing plate can be threadedly connected with it, so that the pressing plate can press the anti-dust accumulation component until the anti-dust accumulation component is about 0.5 mm higher than the frame, so as to ensure the overflow of the silica gel and control the thickness of the silica gel bottom; S5: During the pressing process, silicone will overflow upward on the front of the dust-proof component, and there will be silicone contamination on the glass surface and the side of the frame. Therefore, the dust-proof components are prohibited from being directly stacked up and down. According to the size of the dust-proof component, the position of the adjustment disk is adjusted. The hydraulic push rod at the bottom is started to drive the adjustment disk to move back and forth until it meets the size of the dust-proof component. The dust-proof component can be fed through the adjustment disk and the material receiving tray. The second driving motor is started, and the second conveyor belt is driven through the pulley and the belt, so that the material receiving tray and the adjustment disk can continuously feed the dust-proof component. After the feeding is completed, the dust-proof component is moved to the curing room through the universal wheel for overall curing; S6: After the dust-proof component is cured, it can be flipped and transmitted through the conveyor line. At this time, the silicone has been surface-dried, and the conveying equipment can be in direct contact with the silicone overflowing from the front, and the silicone will not contaminate the line body; at this time, the back of the dust-proof component is facing up, and the installation of the wire box and the potting process inside the box body are carried out; the previously bonded silicone is only surface-dried, and there is no supporting force inside the silicone, so it still needs to be stacked separately for the second curing treatment; S7: When the dust-proof component is taken out of the box, due to the reason of silicone overflow on the front, on the basis of the conventional cleaning component, the second edge trimming and cleaning work needs to be carried out. This time, it is mainly to clean the cured silicone on the front. This treatment needs to use edge trimming tools to cut the protruding silicone to prevent the height of the silicone from being higher than the front surface of the frame and the glass. Finally, the packaging work of the dust-proof component is carried out.

[0014] Compared with the prior art, the present invention provides a dust-proof component production equipment and a production process, which have the following beneficial effects: 1. The dust-proof component production equipment and the production process. This equipment can avoid contaminating the conveying equipment during production, and the whole assembly process is automated, which is convenient and fast, and the quality of the finished product can be guaranteed. This equipment adopts a new process of first installing the frame, then assembling the laminate, and then pressing and fixing the laminate.

[0015] 2. The dust-proof component production equipment and the production process. Through the set positioning component, it can straighten the frame placed at the first conveyor belt, which is convenient for it to align with the dust-proof component and facilitates the subsequent pressing work. At the same time, through the set linear motor, the lifting frame can be driven to move through the driving frame, so as to move the rotating component loaded with the dust-proof component horizontally. And through the set hydraulic lifting rod, the height of the dust-proof component can be further adjusted. By starting the set second rotating motor, the front and back of the dust-proof component can be flipped, which is more conducive to its production and processing. Description of the Drawings

[0016] Figure 1 is the overall structural schematic diagram of the present invention; Figure 2 is the enlarged view of part A in the present invention Figure 1 in the present invention; Figure 3 is the structural schematic diagram of the rotating assembly of the present invention; Figure 4 is the structural schematic diagram of the material receiving assembly of the present invention; Figure 5 is the structural schematic diagram of the second conveyor belt of the present invention.

[0017] In the figure: 1, equipment body; 2, first driving motor; 3, movable groove; 4, bidirectional lead screw; 5, first conveyor belt; 6, positioning assembly; 7, roller; 8, driving rod; 9, linear motor; 10, driving frame; 11, hydraulic lifting rod; 12, lifting frame; 13, first connecting column; 14, first rotating motor; 15, moving groove; 16, lead screw; 17, pressing plate; 18, rotating assembly; 19, second rotating motor; 20, rotating frame; 21, servo motor; 22, gear; 23, rack; 24, through groove; 25, material receiving assembly; 26, universal wheel; 27, second conveyor belt; 28, material receiving tray; 29, adjusting disc; 30, hydraulic push rod; 31, second connecting column; 32, belt; 33, belt pulley; 34, second driving motor. Specific Embodiments

[0018] In order to make the technical means, creative features, achieved purposes and functions of the present invention easy to understand, the present invention will be further described below in conjunction with specific embodiments.

[0019] Embodiment 1: As shown in Figures 1 - 3As shown in the figure, a production device for anti-dust accumulation components includes a device body 1. A first conveyor belt 5 is installed in the inner cavity of the device body 1. Driving rods 8 are symmetrically and movably connected to both ends at the top of the first conveyor belt 5. A linear motor 9 is installed on the top of the device body 1. The output shaft of the linear motor 9 is installed with a driving frame 10. A lifting frame 12 is movably connected to the bottom of the inner cavity of the driving frame 10. A pressing plate 17 is movably connected to the bottom of the lifting frame 12. An activity groove 3 is opened on the right side of the device body 1. A bidirectional lead screw 4 is rotatably connected to the inner cavity of the activity groove 3. A first driving motor 2 is installed on the outer wall of the device body 1. The first driving motor 2 is installed on the outer wall of the bidirectional lead screw 4 through a first rotating shaft. A driving rod 8 is installed on the right side of the positioning component 6. The bottom of the driving rod 8 is movably connected to the inner cavity of the activity groove 3 and is threadedly connected to the outer wall of the bidirectional lead screw 4. Rollers 7 are symmetrically and rotatably connected to the opposite sides of the inner cavities of the two positioning components 6. A hydraulic lifting rod 11 is installed in the middle of the top of the driving frame 10. The bottom of the hydraulic lifting rod 11 is installed in the middle of the top of the lifting frame 12. First connecting columns 13 are symmetrically installed at both ends of the lifting frame 12. The bottom of the first connecting columns 13 is installed on the top of the rotating component 18. Moving grooves 15 are symmetrically opened in the middle of the opposite sides of the two first connecting columns 13. A lead screw 16 is rotatably connected to the inner cavity of one end of the moving groove 15. A first rotating motor 14 is installed in the middle of the top of the first connecting column 13. The bottom of the first rotating motor 14 is installed on the bottom of the lead screw 16 through a second rotating shaft. Both ends of the pressing plate 17 are movably connected to the inner cavities of the two moving grooves 15. One end of the pressing plate 17 is threadedly connected to the outer wall of the lead screw 16.

[0020] Embodiment 2: As Figures 1 - 3 shown in the figure, a production device for anti-dust accumulation components, a rotating component 18 is movably connected to the bottom of the pressing plate 17. A rotating frame 20 is rotatably connected to the inner cavity of the rotating component 18. Rack bars 23 are symmetrically and movably connected to both sides of the inner cavity of the rotating frame 20. A second rotating motor 19 is installed at one end of the rotating component 18. The second rotating motor 19 is installed on the outer wall of the rotating frame 20 through a third rotating shaft. Through grooves 24 are symmetrically opened in the middle of both sides of the rotating frame 20 and the rotating component 18. The through grooves 24 are adapted to the size of the rack bars 23. Servo motors 21 are symmetrically installed on both sides of the top of the rotating component 18. The servo motors 21 are installed with gears 22 through fourth rotating shafts. The bottom of the gears 22 extends into the through grooves 24 at the rotating component 18. The gears 22 are meshed with the tops of the rack bars 23.

[0021] Embodiment 3: As Figure 1 , Figure 4 , Figure 5As shown, a dust accumulation prevention component production equipment is provided, a material receiving component 25 is provided on the left side of the equipment body 1, and second conveyor belts 27 are symmetrically installed at both ends of the inner cavity of the material receiving component 25, and material receiving plates 28 are symmetrically installed at both ends of the two second conveyor belts 27. The end of the material receiving plate 28 away from the material receiving component 25 is movably connected with an adjusting plate 29, and universal wheels 26 are symmetrically installed around the bottom of the material receiving component 25. A hydraulic push rod 30 is installed on the top of the bottom material receiving plate 28, and a second connecting column 31 is installed on the opposite side of each adjusting plate 29. The bottom of the bottom second connecting column 31 is movably connected in the inner cavity of the bottom adjusting plate 29 and connected to the hydraulic push rod 30. A belt 32 is installed on the top of the left side of the material receiving component 25, and pulleys 33 are symmetrically installed at both ends of the inner cavity of the belt 32. The two pulleys 33 are respectively used to drive the two second conveyor belts 27, and a second drive motor 34 is installed on the side of the material receiving component 25. The second drive motor 34 is installed on the side of one of the pulleys 33 through the fifth rotating shaft.

[0022] A production process for an anti-dust accumulation component comprises the following steps: S1: The front-end process of production of the anti-dust accumulation component: series welding - stack welding - lamination - chamfering is the same as that of the traditional anti-dust accumulation component. After the chamfering is completed, the anti-dust accumulation component is placed in the inner cavity of the rotating frame 20, and the second rotating motor 19 is started. The anti-dust accumulation component is driven to rotate through the rotating frame 20 to make it turn over front and back until the anti-dust accumulation component faces up, and the two servo motors 21 are started to drive the gear 22 to rotate. After the gear 22 rotates, it meshes with the rack 23, and then the two racks 23 can be driven to move to the opposite side until they are attached to the two sides of the anti-dust accumulation component. At this time, the preliminary positioning of the anti-dust accumulation component is completed; S2: Place the frame to be assembled on the first conveyor belt 5, start the first conveyor belt 5, move it to the bottom of the anti-dust assembly, start the first drive motor 2, drive the bidirectional screw 4 to rotate in the inner cavity of the movable groove 3, so that the drive rod 8 can be threadedly connected with the bidirectional screw 4, and then drive the two positioning assemblies 6 to move until they are attached to the two ends of the frame. Based on this, the frame is straightened so that it can be on the same axis as the anti-dust assembly, and high-viscosity silicone is applied to the glass groove of the frame. At the same time, before applying the glue, it is necessary to use a large suction or blowing force to clean the surface of the bonding area to prevent the interface between the silicone and the frame from failing in the later stage; S3: After the gluing process is completed on the frame, the frame is assembled. Since there is no anti-dust component as support, attention should be paid to the bending deformation of the frame during assembly to prevent irreversible bulging or depression of the frame; S4: Perform infrared positioning on the dust-proof component and the temporary combination of the completed frame respectively, so that the outer edge of the dust-proof component is about two millimeters away from the outer edge of the frame. Place the dust-proof component entity on the frame structure. After holding for a few seconds, perform an overall press on the dust-proof component. Start the first rotating motor 14 to drive the lead screw 16 to rotate, so that one end of the pressing plate 17 can be threadedly connected to it, enabling the pressing plate 17 to press the dust-proof component until the dust-proof component is about 0.5 millimeters higher than the frame, which is used to ensure the overflow of silicone and the control of the bottom thickness of the silicone; S5: During the pressing process, silicone will overflow upward on the front surface of the dust-proof component, and there will be silicone contamination on the glass surface and the side of the frame. Therefore, the dust-proof components are prohibited from being directly stacked up and down. According to the size of the dust-proof component, adjust the position of the adjusting disk 29. Start the hydraulic push rod 30 at the bottom to drive the adjusting disk 29 to move back and forth until it meets the size of the dust-proof component. Through the adjusting disk 29 and the material receiving tray 28, the dust-proof component can be subjected to the material receiving process. Start the second driving motor 34 to drive the second conveyor belt 27 through the pulley 33 and the belt 32, so that the material receiving tray 28 and the adjusting disk 29 can continuously receive the dust-proof component. After the material receiving is completed, move the dust-proof component to the curing room through the universal wheels 26 for overall curing; S6: After the dust-proof component is cured, it can be flipped and transported through the conveyor line. At this time, the silicone has already undergone surface drying, and the conveyor equipment can directly contact the silicone overflowing from the front surface, and the silicone will not contaminate the line body; at this time, the back of the dust-proof component is facing up, and the installation of the wire box and the potting process inside the box body are carried out; the silicone bonded in the early stage only undergoes surface drying, and there is no supporting force inside the silicone, so it still needs to be stacked separately for the second curing treatment; S7: When the dust-proof component is taken out of the box, due to the reason of silicone overflow on the front surface, on the basis of the conventional cleaning component, a second edge trimming and cleaning work needs to be carried out. This time, it is mainly to clean the cured silicone on the front surface. This treatment needs to use edge trimming tools to cut the protruding silicone to prevent the height of the silicone from being higher than the frame and the front surface of the glass. Finally, the packaging work of the dust-proof component is carried out.

[0023] The above shows and describes the basic principles, main features and advantages of the present invention. Those skilled in the art of this industry should understand that the present invention is not limited by the above embodiments. What is described in the above embodiments and the specification only illustrates the principle of the present invention. Without departing from the spirit and scope of the present invention, the present invention will have various changes and improvements, and these changes and improvements all fall within the scope of the present invention claimed. The scope of protection claimed by the present invention is defined by the appended claims and their equivalents.

Claims

1. An anti-dust accumulation component production device, comprising a device body (1), characterized in that: A first conveyor belt (5) is installed in the inner cavity of the equipment body (1). At both ends of the top of the first conveyor belt (5), driving rods (8) are symmetrically and movably connected. A linear motor (9) is installed on the top of the equipment body (1). The output shaft of the linear motor (9) is provided with a driving frame (10). The bottom of the inner cavity of the driving frame (10) is movably connected with a lifting frame (12). The bottom of the lifting frame (12) is movably connected with a pressing plate (17). The bottom of the pressing plate (17) is movably connected with a rotating assembly (18). A rotating frame (20) is rotatably connected in the inner cavity of the rotating assembly (18). Rack bars (23) are symmetrically and movably connected to both sides of the inner cavity of the rotating frame (20). A material receiving assembly (25) is arranged on the left side of the equipment body (1). Second conveyor belts (27) are symmetrically installed at both ends of the inner cavity of the material receiving assembly (25). Material receiving trays (28) are symmetrically installed at both ends of the two second conveyor belts (27). One end of the material receiving tray (28) far away from the material receiving assembly (25) is movably connected with an adjusting tray (29).

2. The production equipment of a dust-proof component according to claim 1, characterized in that: An activity groove (3) is formed on the right side of the equipment body (1). A bidirectional lead screw (4) is rotatably connected in the inner cavity of the activity groove (3). A first driving motor (2) is installed on the outer wall of the equipment body (1). The first driving motor (2) is installed on the outer wall of the bidirectional lead screw (4) through a first rotating shaft. A driving rod (8) is installed on the right side of the positioning assembly (6). The bottom of the driving rod (8) is movably connected in the inner cavity of the activity groove (3) and is threadedly connected to the outer wall of the bidirectional lead screw (4). Rollers (7) are symmetrically and rotatably connected to the opposite sides of the inner cavity of the two positioning assemblies (6).

3. The production equipment of an anti-dust accumulation component according to claim 1, characterized in that: A hydraulic lifting rod (11) is installed in the middle of the top of the driving frame (10). The bottom of the hydraulic lifting rod (11) is installed in the middle of the top of the lifting frame (12). First connecting columns (13) are symmetrically installed at both ends of the lifting frame (12). The bottom of the first connecting column (13) is installed on the top of the rotating assembly (18).

4. The production equipment of a dust-proof component according to claim 3, characterized in that: Moving grooves (15) are symmetrically formed in the middle of the opposite sides of the two first connecting columns (13). A lead screw (16) is rotatably connected in the inner cavity of one end of the moving groove (15). A first rotating motor (14) is installed in the middle of the top of the first connecting column (13). The bottom of the first rotating motor (14) is installed on the bottom of the lead screw (16) through a second rotating shaft. Both ends of the pressing plate (17) are movably connected in the inner cavities of the two moving grooves (15). One end of the pressing plate (17) is threadedly connected to the outer wall of the lead screw (16).

5. The production equipment of a dust-proof component according to claim 1, characterized in that: A second rotating motor (19) is installed at one end of the rotating assembly (18). The second rotating motor (19) is installed on the outer wall of the rotating frame (20) through a third rotating shaft. Through grooves (24) are symmetrically formed in the middle of both sides of the rotating frame (20) and the rotating assembly (18). The through grooves (24) are adapted to the dimensions of the rack bars (23).

6. The production equipment of a dust-proof component according to claim 1, characterized in that: On both sides of the top of the rotating assembly (18), servo motors (21) are symmetrically installed. The servo motors (21) are equipped with gears (22) through the fourth rotating shafts. The bottom of the gears (22) extends into the through slots (24) at the rotating assembly (18). The gears (22) are engaged with the tops of the racks (23).

7. The production equipment of an anti-dust accumulation component according to claim 1, characterized in that: Universal wheels (26) are symmetrically installed around the bottom of the material receiving assembly (25). A hydraulic push rod (30) is installed on the top of the bottom material receiving tray (28). Second connecting columns (31) are installed on the opposite sides of each adjusting disc (29). The bottoms of the bottom second connecting columns (31) are movably connected to the inner cavities of the bottom adjusting discs (29) and are connected to the hydraulic push rod (30).

8. The production equipment of a dust-proof component according to claim 1, characterized in that: A belt (32) is installed on the top of the left side of the material receiving assembly (25). Belt pulleys (33) are symmetrically installed at both ends of the inner cavity of the belt (32). The two belt pulleys (33) are respectively used to drive the two second conveyor belts (27). A second driving motor (34) is installed on the side of the material receiving assembly (25). The second driving motor (34) is installed on the side of one of the belt pulleys (33) through the fifth rotating shaft.

9. A production process of an anti-dust accumulation component, which uses an anti-dust accumulation component production device as described in any one of the above claims 1-9, and is characterized in that: It includes the following operating steps: S1: For the pre-production process of the anti-dust accumulation component: string welding - overlapping welding - lamination - edge trimming is the same as that of the traditional anti-dust accumulation component. After the edge trimming is completed, place the anti-dust accumulation component in the inner cavity of the rotating frame (20). Start the second rotating motor (19), drive the anti-dust accumulation component to rotate through the rotating frame (20), and make it turn over on the front and back sides until the front side of the anti-dust accumulation component faces upward. Start the two servo motors (21) to drive the gears (22) to rotate. After the gears (22) rotate, make them engage with the racks (23). At this time, the two racks (23) can be driven to move towards the opposite sides until they fit on both sides of the anti-dust accumulation component. At this time, the preliminary positioning work of the anti-dust accumulation component is completed; S2: Place the frame to be assembled at the first conveyor belt (5). Start the first conveyor belt (5) and move it to the bottom of the anti-dust accumulation component. Start the first driving motor (2) to drive the bidirectional lead screw (4) to rotate in the inner cavity of the moving slot (3), so that the driving rod (8) can be threadedly connected to the bidirectional lead screw (4). At this time, the two positioning components (6) can be driven to move until they fit on both ends of the frame. Based on this, the frame is straightened so that it can be on the same axis as the anti-dust accumulation component. Apply high-viscosity silicone to the glass groove of the frame. At the same time, before applying the glue, it is necessary to clean the bonding area with a relatively large suction force or blowing force to prevent the interface between the silicone and the frame from failing in the later stage; S3: After the frame completes the glue application process, assemble the frame. Since there is no anti-dust accumulation component as a support, it is necessary to pay attention to the bending deformation of the frame during assembly to prevent irreversible bulging or depression of the frame; S4: Infrared positioning is respectively carried out on the dust-proof component and the temporary combination of the completed frame. Keep the outer edge of the dust-proof component about two millimeters away from the outer edge of the frame. Place the dust-proof component entity on the frame structure. After keeping it for a few seconds, press the dust-proof component as a whole. Start the first rotation motor (14) to drive the lead screw (16) to rotate, so that one end of the pressing plate (17) can be threadedly connected thereto, so that the pressing plate (17) can press the dust-proof component until the dust-proof component is about 0.5 millimeters higher than the frame, which is used to ensure the overflow of silicone and the control of the bottom thickness of the silicone; S5: During the pressing process, silicone will overflow upward on the front surface of the dust-proof component, and there will be silicone contamination on the glass surface and the side surface of the frame. Therefore, the dust-proof components are prohibited from being directly stacked up and down. According to the size of the dust-proof component, adjust the position of the adjustment disk (29). Start the hydraulic push rod (30) at the bottom to drive the adjustment disk (29) to move back and forth until it meets the size of the dust-proof component. The dust-proof component can be fed through the adjustment disk (29) and the material receiving tray (28). Start the second drive motor (34) to drive the second conveyor belt (27) through the pulley (33) and the belt (32), so that the material receiving tray (28) and the adjustment disk (29) can continuously feed the dust-proof component. After the feeding is completed, move the dust-proof component to the curing room through the universal wheel (26) for overall curing; S6: After the dust-proof component is cured, it can be flipped and transmitted through the conveyor line. At this time, the silicone has already dried on the surface, and the conveyor equipment can be directly in contact with the silicone overflowing from the front, and the silicone will not contaminate the line body; at this time, the back of the dust-proof component is facing up, and the installation of the wire box and the potting process inside the box body are carried out; the silicone bonded in the early stage is only surface-dried, and there is no supporting force inside the silicone, so it still needs to be stacked separately for the second curing treatment; S7: When the dust-proof component is taken out of the box, due to the reason of silicone overflow on the front, on the basis of the conventional cleaning component, a second edge trimming and cleaning work is required. This time, it is mainly to clean the cured silicone on the front. This treatment needs to use edge trimming tools to cut the protruding silicone to prevent the height of the silicone from being higher than the frame and the front surface of the glass. Finally, the packaging work of the dust-proof component is carried out.