Camera cover forming equipment
By integrating automated equipment for plate feeding, cutting, transfer, splitting, and coating, the problems of low efficiency in the process connection and coating consistency in camera cover processing have been solved, realizing efficient automated production and high-quality product production.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- DONGGUAN STRONG LASER EQUIP CO LTD
- Filing Date
- 2025-04-03
- Publication Date
- 2026-04-24
AI Technical Summary
In the existing technology, the processing efficiency between camera cover manufacturing processes is low, multiple manual interventions can easily lead to damage to semi-finished products, and the cut semi-finished products are prone to displacement or positioning deviation during transfer. The coating process is carried out independently, which increases time costs and makes it difficult to ensure consistency.
Design an automated equipment that integrates plate feeding, cutting, transfer, dicing, and coating. Through the coordinated work of the plate feeding mechanism, cutting mechanism, transfer mechanism, dicing mechanism, and glass coating mechanism, automated production line production of each process can be achieved.
It significantly improves production efficiency and product quality, reduces manual intervention, increases material utilization, and ensures coating consistency.
Smart Images

Figure CN224160551U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of glass product processing technology, specifically to a camera cover forming equipment. Background Technology
[0002] As a core component of the camera module, the camera cover's molding process involves multiple steps, including plate cutting, splitting, and coating. In existing technologies, traditional processing methods typically use decentralized equipment to complete each step. For example, the plate is pre-cut by a cutting machine, then transferred manually or by a robot to a splitting machine for splitting, and finally coated separately. This method has the following problems: (1) Low efficiency between processes, and repeated manual intervention can easily lead to damage to the semi-finished product, affecting the yield; (2) The cut semi-finished product is prone to displacement or positioning deviation during the transfer process, resulting in uneven splitting or even damage to the glass cover; (3) The coating process is carried out independently, requiring repeated loading and unloading, increasing time costs and making it difficult to ensure coating consistency. Summary of the Invention
[0003] In order to overcome the shortcomings and deficiencies of the existing technology, the purpose of this utility model is to provide a camera cover forming equipment that significantly improves production efficiency and product quality by integrating multiple automatic processes such as plate feeding, cutting, transfer, splitting and coating.
[0004] This utility model is achieved through the following technical solution:
[0005] A camera cover forming device includes a plate feeding mechanism, a plate cutting mechanism, a plate transfer mechanism, a plate splitting mechanism, and a glass coating mechanism. The plate feeding mechanism is used to feed the plate to be cut to the plate cutting mechanism. The plate cutting mechanism is used to load the plate to be cut, move it, and cut multiple semi-finished plates with circular glass covers. The plate transfer mechanism is used to transfer the semi-finished plates to the plate splitting mechanism for splitting and to transfer the multiple circular cover plates after splitting to the glass coating mechanism. The glass coating mechanism is used to coat the circular glass covers and unload them.
[0006] The board feeding mechanism includes a board insertion fixture, a feeding transverse module, a feeding lifting module installed at the output end of the feeding transverse module, a feeding rotation module installed at the output end of the feeding lifting module, and a feeding pickup module installed at the output end of the feeding rotation module. The board insertion fixture is used to vertically insert the board to be cut. The feeding transverse module, the feeding lifting module, and the feeding rotation module work together to drive the feeding pickup module to remove the board to be cut from the board insertion fixture and place it in the board cutting mechanism.
[0007] The plate cutting mechanism includes a cutting device, a detection device, a first cutting transverse module, a second cutting transverse module installed at the output end of the first cutting transverse module, and a cutting fixture installed at the output end of the second cutting transverse module. The cutting fixture is used to place and fix the plate to be cut, and the cutting device is used to cut multiple semi-finished plates with circular glass covers from the plate to be cut. The first cutting transverse module and the second cutting transverse module are linked to drive the cutting fixture to move transversely between the plate feeding mechanism, the cutting device, the detection device, and the plate transfer mechanism.
[0008] The plate transfer mechanism includes a transfer traverse module, a first transfer lifting module installed at the output end of the transfer traverse module, a second transfer lifting module installed at the output end of the transfer traverse module, a first transfer picking module installed at the output end of the first transfer lifting module, and a second transfer picking module installed at the output end of the second transfer lifting module. The first transfer picking module is used to pick up semi-finished plates, and the second transfer lifting module is used to pick up multiple circular cover plates. The transfer traverse module and the first transfer lifting module are linked to drive the first transfer picking module to pick up semi-finished plates from the plate cutting mechanism and place them in the plate splitting mechanism. The transfer traverse module and the second transfer lifting module are linked to drive the second transfer lifting module to pick up multiple circular cover plates from the plate splitting mechanism and place them in the glass coating mechanism.
[0009] The plate splitting mechanism includes a splitting device, a turntable, splitting fixtures mounted on both sides of the turntable, and a turntable rotation module for driving the turntable to rotate. The turntable is located between the splitting device and the plate transfer mechanism. The splitting fixture is used to carry semi-finished plates or multiple circular cover plates. The splitting device is used to split the semi-finished plates to form multiple circular cover plates.
[0010] The plate splitting mechanism also includes an outer cover that surrounds the turntable.
[0011] The plate splitting mechanism further includes a waste ejection module disposed between the splitting device and the plate transfer mechanism. The waste ejection module includes a waste ejection drive, a transverse adjustment module installed at the output end of the waste ejection drive, and a waste ejection fixture installed at the output end of the transverse adjustment module. The lower end of the outer cover is connected to a receiving chute, and a discharge port is provided on the side of the outer cover near the bottom of the receiving chute. The outer cover, the receiving chute, and the discharge port are integrally formed.
[0012] The glass coating mechanism includes a fixed base plate, a transverse clamping module, a heat-sealing and cutting module arranged sequentially along the horizontal direction, and a first material cylinder and a second material cylinder respectively installed at both ends of the fixed base plate; the first material cylinder and the second material cylinder are used to store the coating, the transverse clamping module is used to clamp the coating and drive the coating to move transversely, and the heat-sealing and cutting module is used to heat-seal and cut the coating.
[0013] The fixed base plate, located between the first and second material cylinders, is rotatably and slidably equipped with a first pressure roller and a second pressure roller.
[0014] The transverse clamping module includes a clamping transverse drive, a clamping transverse base plate mounted on the output end of the clamping transverse drive, a clamping drive mounted on the clamping transverse base plate, and a clamping member mounted on the output end of the clamping drive; the output direction of the clamping transverse drive is parallel to the length direction of the fixed base plate, and the output end of the clamping drive faces the clamping transverse base plate.
[0015] The beneficial effects of this utility model are:
[0016] This utility model discloses a camera cover forming device. Through the coordinated work of various modules, it reduces manual intervention, improves the automation level of the production line, and enables large-scale production. A reasonable cutting scheme and splitting mechanism maximizes material utilization. By integrating multiple automated processes such as plate feeding, cutting, transfer, splitting, and coating, it significantly improves production efficiency and product quality. Attached Figure Description
[0017] The present invention will be further described with reference to the accompanying drawings, but the embodiments in the drawings do not constitute any limitation on the present invention. For those skilled in the art, other drawings can be obtained based on the following drawings without creative effort.
[0018] Figure 1 This is a three-dimensional structural diagram of the present invention.
[0019] Figure 2 This is a schematic diagram of the sheet metal feeding mechanism.
[0020] Figure 3 This is a schematic diagram of the plate cutting mechanism.
[0021] Figure 4 This is a schematic diagram of the sheet metal transfer mechanism.
[0022] Figure 5 This is a schematic diagram of the plate splitting mechanism.
[0023] Figure 6 This is a schematic diagram of the waste ejection module.
[0024] Figure 7 This is a schematic diagram of the glass coating mechanism.
[0025] Figure 8 This is a partial structural diagram of a glass coating mechanism.
[0026] Figure 9 This is a schematic diagram of another part of the glass coating mechanism.
[0027] Figure Labels
[0028] Parts loading mechanism -- 100, Parts insertion fixture -- 101, Loading transverse transfer module -- 102, Loading lifting module -- 103, Loading rotation module -- 104, Loading pickup module -- 105.
[0029] Plate cutting mechanism -- 200, cutting device -- 201, first cutting transverse module -- 202, second cutting transverse module -- 203, cutting fixture -- 204, detection device -- 205
[0030] Panel transfer mechanism -- 300, transfer traverse module -- 301, first transfer lifting module -- 302, second transfer lifting module -- 303, first transfer pickup module -- 304, second transfer pickup module -- 305.
[0031] Plate splitting mechanism--400, splitting device--401, turntable--402, splitting fixture--403, outer cover--405, scrap ejection module--406, scrap ejection drive--407, transverse adjustment module--408, scrap ejection fixture--409, receiving chute--410, discharge port--411
[0032] Glass coating mechanism--500, fixed base plate--501, transverse clamping module--502, clamping transverse drive--503, clamping transverse base plate--504, clamping drive--505, clamping component--506, heat sealing and cutting module--507, first material cylinder--508, second material cylinder--509, first pressure roller--510, second pressure roller--511, hot pressing module--512, cutting module--513. Detailed Implementation
[0033] To make the above-mentioned objects, features, and advantages of this utility model more apparent and understandable, the specific embodiments of this utility model will be described in detail below with reference to the accompanying drawings. Many specific details are set forth in the following description to provide a full understanding of this utility model. However, this utility model can be implemented in many other ways different from those described herein, and those skilled in the art can make similar modifications without departing from the spirit of this utility model. Therefore, this utility model is not limited to the specific embodiments disclosed below.
[0034] In the description of this utility model, it should be understood that the terms "center", "longitudinal", "transverse", "length", "width", "thickness", "upper", "lower", "front", "rear", "left", "right", "vertical", "horizontal", "top", "bottom", "inner", "outer", "clockwise", "counterclockwise", "axial", "radial", "circumferential", etc., indicating the orientation or positional relationship are based on the orientation or positional relationship shown in the accompanying drawings, and are only for the convenience of describing this utility model and simplifying the description, and are not intended to indicate or imply that the device or element referred to must have a specific orientation, or be constructed and operated in a specific orientation, and therefore should not be construed as a limitation of this utility model.
[0035] Furthermore, the terms "first" and "second" are used for descriptive purposes only and should not be construed as indicating or implying relative importance or implicitly specifying the number of indicated technical features. Thus, a feature defined as "first" or "second" may explicitly or implicitly include at least one of that feature. In the description of this utility model, "a plurality of" means at least two, such as two, three, etc., unless otherwise explicitly specified.
[0036] As a core component of the camera module, the camera cover's molding process involves multiple steps, including plate cutting, splitting, and coating. In existing technologies, traditional processing methods typically use decentralized equipment to complete each step. For example, the plate is pre-cut by a cutting machine, then transferred manually or by a robot to a splitting machine for splitting, and finally coated separately. This method has the following problems: (1) Low efficiency between processes, and repeated manual intervention can easily lead to damage to the semi-finished product, affecting the yield; (2) The cut semi-finished product is prone to displacement or positioning deviation during the transfer process, resulting in uneven splitting or even damage to the glass cover; (3) The coating process is carried out independently, requiring repeated loading and unloading, increasing time costs and making it difficult to ensure coating consistency.
[0037] To address the aforementioned problems, this embodiment discloses a camera cover molding device, the structure of which is as follows: Figures 1 to 9As shown, the equipment includes a plate feeding mechanism 100, a plate cutting mechanism 200, a plate transfer mechanism 300, a plate splitting mechanism 400, and a glass coating mechanism 500. The plate feeding mechanism 100 is used to feed the plate to be cut to the plate cutting mechanism 200. The plate cutting mechanism 200 is used to load the plate to be cut, move it, and cut the plate to be cut into multiple semi-finished plates with circular glass covers. The plate transfer mechanism 300 is used to transfer the semi-finished plates to the plate splitting mechanism 400 for splitting and to transfer the multiple circular cover plates after splitting to the glass coating mechanism 500. The glass coating mechanism 500 is used to coat the circular glass covers and unload them.
[0038] Furthermore, the plate coating assembly 100 includes a plate insertion fixture 101, a loading transverse module 102, a loading lifting module 103 mounted on the output end of the loading transverse module 102, a loading rotation module 104 mounted on the output end of the loading lifting module 103, and a loading pickup module 105 mounted on the output end of the loading rotation module 104. The plate insertion fixture 101 is used to vertically insert the plate to be cut. The loading transverse module 102, the loading lifting module 103, and the loading rotation module 104 work together to drive the loading pickup module 105 to remove the plate to be cut from the plate insertion fixture 101 and place it in the plate cutting mechanism 200.
[0039] In this embodiment, the circular cover plate is a camera cover, but it can also be other circular structural workpieces. Multiple insertion slots are arranged side-by-side inside the plate insertion fixture 101, and the plates to be cut are sequentially inserted into these slots. The loading transverse module 102 is preferably a linear actuator (such as a linear cylinder) in the horizontal direction, and the loading lifting module 103 is preferably a linear actuator in the vertical direction. The driving directions of the loading transverse module 102 and the loading lifting module 103 intersect perpendicularly. The loading rotation module 104 is preferably a rotary motor, and the loading pickup module 105 is preferably a suction cup.
[0040] Furthermore, the plate cutting mechanism 200 includes a cutting device 201, a first cutting transverse module 202, a second cutting transverse module 203 installed at the output end of the first cutting transverse module 202, and a cutting fixture 204 installed at the output end of the second cutting transverse module 203; the cutting fixture 204 is used to place and fix the plate to be cut, the cutting device 201 is used to cut multiple semi-finished plates with circular glass covers from the plate to be cut, and the first cutting transverse module 202 and the second cutting transverse module 203 are linked to drive the cutting fixture 204 to move transversely between the plate feeding mechanism 100, the cutting device 201, the detection device 205, and the plate transfer mechanism 300.
[0041] In this embodiment, the specific structure of the cutting fixture 204 can be referred to Figure 3Clamping cylinders are respectively provided at the ends around the plate to clamp and fix the plate. The first cutting transverse module 202 and the second cutting transverse module 203 are preferably linear drivers in the horizontal direction, and the driving directions of the first cutting transverse module 202 and the second cutting transverse module 203 are perpendicular to each other. The structure and principle of the cutting device 201 and the detection device 205 are existing technologies and will not be described in detail here.
[0042] Furthermore, the board transfer mechanism 300 includes a transfer traversing module 301, a first transfer lifting module 302 mounted on the output end of the transfer traversing module 301, a second transfer lifting module 303 mounted on the output end of the transfer traversing module 301, a first transfer picking module 304 mounted on the output end of the first transfer lifting module 302, and a second transfer picking module 305 mounted on the output end of the second transfer lifting module 303; the first transfer picking module 304 is used to pick up semi-finished products. The second transfer lifting module 303 is used to pick up multiple circular cover plates. The transfer lateral movement module 301 and the first transfer lifting module 302 are linked to drive the first transfer picking module 304 to pick up the semi-finished plate from the plate cutting mechanism 200 and place it in the plate splitting mechanism 400. The transfer lateral movement module 301 and the second transfer lifting module 303 are linked to drive the second transfer lifting module 303 to pick up multiple circular cover plates from the plate splitting mechanism 400 and place them in the glass coating mechanism 500.
[0043] In this embodiment, the structures of the first transfer pickup module 304 and the second transfer pickup module 305 can be referred to Figure 4 The lateral transfer module 301 is preferably a linear actuator in the horizontal direction, and the first lateral transfer module 302 and the second lateral transfer module 303 are preferably linear actuators in the vertical direction. The lateral transfer module 301 simultaneously drives the first lateral transfer module 302 and the second lateral transfer module 303 to move laterally. Specifically, the transfer lateral module 301 and the first transfer lifting module 302 drive the first transfer picking module 304 to pick up the semi-finished plate from the cutting fixture 204 of the plate cutting mechanism 200 and place it on the cleaving fixture 403 of the cleaving mechanism. The turntable rotation module drives the turntable 402 to rotate 180° to move the cleaving fixture 403 to the cleaving device 401 for cleaving. After cleaving is completed, the turntable 402 rotates 180° again to return the cleaving fixture 403 to its original position. Then, the transfer lateral module 301 and the second transfer lifting module 303 drive the second transfer picking module 305 to pick up the multiple circular cover plates after cleaving and place them on the fixed base plate 501 of the glass coating mechanism 500 to complete the subsequent coating process.
[0044] Furthermore, the plate splitting mechanism 400 includes a splitting device 401, a turntable 402, splitting fixtures 403 mounted on both sides of the turntable 402, and a turntable rotation module for driving the turntable 402 to rotate. The turntable 402 is located between the splitting device 401 and the plate transfer mechanism 300. The splitting fixtures 403 are used to carry semi-finished plates or multiple circular cover plates. The splitting device 401 is used to split the semi-finished plates to form multiple circular cover plates.
[0045] In this embodiment, the structure of the sharding fixture 403 can be referred to Figure 5 The rotary module is preferably a divider. The structure and principle of the splitting device 401 are existing technologies and will not be described in detail here.
[0046] Since the waste material, except for the circular cover plate, will detach and fall off the splitting fixture 403 after splitting, the plate splitting mechanism 400 of this embodiment also includes an outer cover 405 and a waste ejection module 406 located between the splitting device 401 and the plate transfer mechanism 300. The outer cover 405 surrounds the turntable 402. The waste ejection module 406 includes a waste ejection drive 407, a transverse adjustment module 408 installed at the output end of the waste ejection drive 407, and a waste ejection fixture 409 installed at the output end of the transverse adjustment module 408. The lower end of the outer cover 405 is connected to a receiving chute 410. The outer cover 405 is provided with a discharge port 411 on the side near the bottom of the receiving chute 410. The outer cover 405, the receiving chute 410, and the discharge port 411 are integrally formed.
[0047] The outer cover 405 protects the turntable 402, the dicing fixture 403, and other structural components, while also preventing waste material from splashing out from inside the outer cover 405 during the rotation of the turntable 402 and the dicing process. After the dicing fixture 403 reaches below the waste ejection module 406 via the dicing device 401, the waste ejection drive 407 drives the waste ejection fixture 409 to eject. After the waste material on the dicing fixture 403 comes into contact with the waste material on the dicing fixture 403, it falls from the dicing fixture 403 into the receiving chute 410 and is finally discharged from the outlet 411. In addition, the horizontal adjustment module 408 can adjust the horizontal position of the waste ejection fixture 409 to meet the processing requirements of camera covers of different positions and sizes.
[0048] Furthermore, the glass coating mechanism 500 includes a fixed base plate 501, a transverse clamping module 502, a heat-sealing and cutting module 507 arranged sequentially along the horizontal direction, and a first material cylinder 508 and a second material cylinder 509 respectively installed at both ends of the fixed base plate 501; the first material cylinder 508 and the second material cylinder 509 are used to store the coating, the transverse clamping module 502 is used to clamp the coating and drive the coating to move laterally, and the heat-sealing and cutting module 507 is used to heat-seal and cut the coating.
[0049] In this embodiment, the coating is pulled out from the first barrel 508 and the second barrel 509 and laid along the direction of the fixed base plate 501. After the circular cover plate is placed on the coating, the coating is held by the transverse clamping module 502 and pulled towards the heat-sealing and cutting module 507, while simultaneously moving the circular cover plate, repeating this process. When the coating covering the circular cover plate moves to the corresponding position, the heat-sealing and cutting module 507 heat-seales and cuts the coating, completing the coating process.
[0050] Specifically, the transverse clamping module 502 includes a clamping transverse drive 503, a clamping transverse base plate 504 mounted on the output end of the clamping transverse drive 503, a clamping drive 505 mounted on the clamping transverse base plate 504, and a clamping member 506 mounted on the output end of the clamping drive 505; the output direction of the clamping transverse drive 503 is parallel to the length direction of the fixed base plate 501, and the output end of the clamping drive 505 faces the clamping transverse base plate 501.
[0051] In this embodiment, the clamping lateral movement drive 503 is preferably a linear motor, and the clamping drive 505 is preferably a cylinder.
[0052] Specifically, the heat-sealing cutting module 507 includes a hot-pressing module 512 and a cutting module 513, wherein the cutting module 513 consists of a linear driver and a cutter; the structure and working principle of the hot-pressing module 512 are existing technologies and will not be described in detail here.
[0053] In addition, between the first and second material cylinders, a first pressure roller 510 and a second pressure roller 511 are rotatably and slidably mounted on the fixed base plate. The first pressure roller 510 and the second pressure roller 511 are rotatably and slidably connected to the fixed base plate through deep groove ball bearings and U-shaped grooves that cooperate with them. After the coating is pulled out from the first or second material cylinder, it is tensioned at the bottom of the first pressure roller 510 or the second pressure roller 511. The first pressure roller 510 and the second pressure roller 511 can also be adjusted up and down according to the position of the coating, thereby improving the stability of the circular cover plate during coating.
[0054] In summary, the camera cover forming equipment provided in this embodiment reduces manual intervention and improves the automation level of the production line through the collaborative work of various modules, enabling large-scale production. Through a reasonable cutting scheme and splitting mechanism, it maximizes material utilization. By integrating multiple automated processes such as plate feeding, cutting, transfer, splitting, and coating, it significantly improves production efficiency and product quality.
[0055] Finally, it should be noted that the above embodiments are only used to illustrate the technical solutions of this utility model, and are not intended to limit the scope of protection of this utility model. Although this utility model has been described in detail with reference to preferred embodiments, those skilled in the art should understand that modifications or equivalent substitutions can be made to the technical solutions of this utility model without departing from the essence and scope of the technical solutions of this utility model.
Claims
1. A camera cover forming device, characterized in that, It includes a sheet material feeding mechanism, a sheet material cutting mechanism, a sheet material transfer mechanism, a sheet material splitting mechanism, and a glass coating mechanism; The plate feeding mechanism is used to feed the plate to be cut to the plate cutting mechanism. The plate cutting mechanism is used to load the plate to be cut, move it, and cut the plate to be cut into multiple semi-finished plates with circular glass covers. The plate transfer mechanism is used to transfer the semi-finished plates to the plate splitting mechanism for splitting and to transfer the multiple circular cover plates after splitting to the glass coating mechanism. The glass coating mechanism is used to coat the circular glass covers and unload them.
2. The camera cover forming equipment according to claim 1, characterized in that, The plate feeding mechanism includes a plate insertion fixture, a feeding transverse module, a feeding lifting module installed at the output end of the feeding transverse module, a feeding rotation module installed at the output end of the feeding lifting module, and a feeding pickup module installed at the output end of the feeding rotation module. The plate insertion fixture is used to vertically insert the plate to be cut. The feeding transverse module, feeding lifting module and feeding rotation module work together to drive the feeding pick-up module to take the plate to be cut out of the plate insertion fixture and place it in the plate cutting mechanism.
3. The camera cover forming equipment according to claim 1, characterized in that, The plate cutting mechanism includes a cutting device, a detection device, a first cutting transverse module, a second cutting transverse module installed at the output end of the first cutting transverse module, and a cutting fixture installed at the output end of the second cutting transverse module. The cutting fixture is used to place and fix the plate to be cut, and the cutting device is used to cut the plate to be cut into multiple semi-finished plates with circular glass covers. The first cutting transverse module and the second cutting transverse module are linked to drive the cutting fixture to move transversely between the plate feeding mechanism, the cutting device, the detection device and the plate transfer mechanism.
4. The camera cover forming equipment according to claim 1, characterized in that, The plate transfer mechanism includes a transfer traverse module, a first transfer lifting module installed at the output end of the transfer traverse module, a second transfer lifting module installed at the output end of the transfer traverse module, a first transfer picking module installed at the output end of the first transfer lifting module, and a second transfer picking module installed at the output end of the second transfer lifting module. The first transfer picking module is used to pick up semi-finished plates, and the second transfer lifting module is used to pick up multiple circular cover plates. The transfer traverse module and the first transfer lifting module are linked to drive the first transfer picking module to pick up the semi-finished plates from the plate cutting mechanism and place them in the plate splitting mechanism. The transfer traverse module and the second transfer lifting module are linked to drive the second transfer lifting module to pick up multiple circular cover plates from the plate splitting mechanism and place them in the glass coating mechanism.
5. The camera cover forming equipment according to claim 1, characterized in that, The plate splitting mechanism includes a splitting device, a turntable, splitting fixtures mounted on both sides of the turntable, and a turntable rotation module for driving the turntable to rotate. The turntable is located between the splitting device and the plate transfer mechanism. The splitting fixture is used to carry semi-finished plates or multiple circular cover plates. The splitting device is used to split the semi-finished plates to form multiple circular cover plates.
6. The camera cover forming equipment according to claim 5, characterized in that, The plate splitting mechanism also includes an outer cover that surrounds the turntable.
7. A camera cover forming device according to claim 6, characterized in that, The plate splitting mechanism also includes a waste ejection module disposed between the splitting device and the plate transfer mechanism. The waste ejection module includes a waste ejection drive, a transverse adjustment module installed at the output end of the waste ejection drive, and a waste ejection fixture installed at the output end of the transverse adjustment module. The lower end of the outer cover is connected to a receiving chute, and a discharge port is provided on the side of the outer cover near the bottom of the receiving chute. The outer cover, the receiving chute, and the discharge port are integrally formed.
8. The camera cover forming equipment according to claim 1, characterized in that, The glass coating mechanism includes a fixed base plate, a transverse clamping module, a heat sealing and cutting module arranged sequentially along the horizontal direction, and a first material cylinder and a second material cylinder respectively installed at both ends of the fixed base plate. The first and second barrels are used to store the coating film, the transverse clamping module is used to clamp the coating film and drive it to move laterally, and the heat sealing and cutting module is used to heat seal and cut the coating film.
9. A camera cover forming device according to claim 8, characterized in that, Located between the first and second material cylinders, the fixed base plate is rotatably and slidably equipped with a first pressure roller and a second pressure roller.
10. A camera cover forming device according to claim 8, characterized in that, The transverse clamping module includes a clamping transverse drive, a clamping transverse base plate mounted on the output end of the clamping transverse drive, a clamping drive mounted on the clamping transverse base plate, and a clamping component mounted on the output end of the clamping drive. The output direction of the clamping transverse drive is parallel to the length direction of the fixed base plate, and the output end of the clamping drive faces the clamping transverse base plate.