Transfer and pressing device for complete glass of photovoltaic modules
Patent Information
- Application Number
- CN202522409880.4
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-11-12
- Publication Date
- 2026-09-18
- Estimated Expiration
- 2035-11-12
AI Technical Summary
传输装置与前后端设备的高度难以精准匹配,导致组件传输易卡顿或偏移,切割前组件压紧不稳定,切割过程中组件易窜动,影响切割精度,甚至造成玻璃破损
[0015] The present invention offers the following advantages: This device for transporting, pressing, and receiving intact glass for photovoltaic modules integrates a peeling platform mechanism, a pressing mechanism, a clamping mechanism, and a receiving mechanism. This achieves unified functions of transporting, pre-pressing, pressing during cutting, and sorting and receiving, eliminating the need for multiple additional devices, simplifying the photovoltaic module recycling process, and improving overall processing efficiency. Simultaneously, the peeling platform mechanism, driven by a platform lifting driver, moves the conveyor belt up and down, precisely matching the height of the front and rear equipment. This solves the problems of fixed height and easy jamming/deviation in traditional transport devices, ensuring smooth transport of photovoltaic modules. Furthermore, the dual pressing design of the pressing and clamping mechanisms prevents photovoltaic modules from shifting during the cutting process, improving cutting accuracy and reducing the breakage rate of intact glass.
Smart Images

Figure CN224767929U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of photovoltaic module processing equipment technology, and in particular to a transfer, pressing and receiving device for complete glass of photovoltaic modules. Background Technology
[0002] With the rapid development of the photovoltaic industry, the demand for recycling and processing waste photovoltaic modules is increasing. In the process of photovoltaic module recycling, the separation and recycling of intact glass is one of the key steps. It requires separating the backsheet, solar panel and intact glass by hot knife cutting, and then classifying and collecting the separated components.
[0003] In existing technologies, the transmission, cutting, positioning, and receiving processes of photovoltaic modules present numerous problems. The height of the transmission device is difficult to precisely match with the front-end and back-end equipment, leading to frequent jamming or misalignment during module transmission. Instable module clamping before cutting and easy module movement during cutting affect cutting accuracy and can even cause glass breakage. Therefore, there is an urgent need for a device that can achieve precise transmission, stable clamping, and safe receiving to address the technical pain points in the current process of recycling intact photovoltaic module glass. Utility Model Content
[0004] The technical problem to be solved by this utility model is to provide a transfer, pressing and receiving device for complete glass of photovoltaic modules.
[0005] The technical solution adopted by this utility model to solve its technical problem is: to construct a transmission, pressing and receiving device for complete glass of photovoltaic modules, which includes a peeling platform mechanism, a pressing mechanism, a pressing mechanism and a receiving mechanism; The stripping platform mechanism includes a support base frame, a platform lifting driver, a transmission connecting frame, a transmission platform, and a transmission belt. The transmission platform is mounted on the support base frame, the platform lifting driver is mounted on the support base frame, the output end of the platform lifting driver is connected to the transmission connecting frame, and the transmission belt is mounted on the transmission connecting frame. The platform lifting driver is used to drive the transmission connecting frame and the transmission belt to perform lifting and lowering movements. The pressing mechanism is used to press the photovoltaic module onto the stripping platform mechanism before the photovoltaic module is cut by the hot knife; The clamping mechanism is installed on the support base frame and is used to clamp the photovoltaic module onto the stripping platform mechanism after the photovoltaic module is cut to a certain length by the hot knife. The receiving mechanism is installed at the output end of the stripping platform mechanism and is used to receive the components separated from the photovoltaic module after being cut by a hot knife.
[0006] In some embodiments, the stripping platform mechanism further includes a belt drive motor; The belt drive motor is mounted on the transmission connection frame and is used to drive the transmission belt to move.
[0007] In some embodiments, the transmission connection frame is provided with a transmission lifting guide shaft, which is movably connected to the support base frame.
[0008] In some embodiments, the bottom of the support frame is provided with a plurality of adjusting screws.
[0009] In some embodiments, the pressing mechanism includes a pressing mounting bracket, a first pressing driver, a second pressing driver, a pressing action plate, and a pressing limit plate; The first pressure driver and the second pressure driver are separately installed on both sides of the pressure mounting bracket. The output end of the first pressure driver is connected to the pressure action plate, and the first pressure driver is used to drive the pressure action plate to move up and down. The output end of the second pressure driver is connected to the pressure limiting plate, and the second pressure driver is used to drive the pressure limiting plate to move up and down.
[0010] In some embodiments, the pressing plate is provided with a rubber pad; The pressure limiting plate is provided with a limiting protrusion, and the transmission platform is provided with a limiting groove corresponding to the limiting protrusion.
[0011] In some embodiments, the clamping mechanism includes a clamping mounting bracket, a clamping actuator, a clamping action plate, and a clamping guide actuator, and the transmission platform is provided with a guide slide rail; The clamping guide driver is mounted on the transmission platform and its output end is connected to the clamping mounting frame. The clamping mounting frame is connected to the guide rail via a guide slider. The clamping guide driver is used to drive the clamping mounting frame to move horizontally. The clamping actuator is mounted on the clamping mounting bracket. The output end of the clamping actuator is hinged to the clamping plate via a connecting shaft. The clamping plate is hinged to the clamping mounting bracket via a connecting rod. The clamping actuator is used to drive the clamping plate to perform a downward pressing motion.
[0012] In some embodiments, the transmission platform is further equipped with a stop actuator, which is used for positioning the photovoltaic module during transmission.
[0013] In some embodiments, the receiving mechanism includes a receiving positioning frame, a receiving lifting driver, a material box connecting frame, a combined receiving box, and a complete glass receiving box; The receiving lifting driver is mounted on the receiving positioning frame. The output end of the receiving lifting driver is connected to the material box connecting frame. The material box connecting frame is movably connected to the receiving positioning frame through a receiving guide rail slider. The receiving lifting driver is used to drive the material box connecting frame to perform lifting and lowering movements. The combined receiving box and the complete glass receiving box are separately installed at different height positions on the material box connecting frame. Both the combined receiving box and the complete glass receiving box are connected to the material box connecting frame through rollers.
[0014] In some embodiments, the receiving mechanism further includes a guide block and a blocking block; The guide block is installed on the receiving and positioning frame, and the shielding block is connected to the material box connecting frame through a shielding pin. The shielding block is used to shield the combined receiving box and the complete glass receiving box.
[0015] The present invention offers the following advantages: This device for transporting, pressing, and receiving intact glass for photovoltaic modules integrates a peeling platform mechanism, a pressing mechanism, a clamping mechanism, and a receiving mechanism. This achieves unified functions of transporting, pre-pressing, pressing during cutting, and sorting and receiving, eliminating the need for multiple additional devices, simplifying the photovoltaic module recycling process, and improving overall processing efficiency. Simultaneously, the peeling platform mechanism, driven by a platform lifting driver, moves the conveyor belt up and down, precisely matching the height of the front and rear equipment. This solves the problems of fixed height and easy jamming / deviation in traditional transport devices, ensuring smooth transport of photovoltaic modules. Furthermore, the dual pressing design of the pressing and clamping mechanisms prevents photovoltaic modules from shifting during the cutting process, improving cutting accuracy and reducing the breakage rate of intact glass. Attached Figure Description
[0016] To more clearly illustrate the technical solution of this utility model, the present utility model will be further described below in conjunction with the accompanying drawings and embodiments. It should be understood that the following drawings only show some embodiments of this utility model and should not be considered as a limitation of the scope. For those skilled in the art, other related drawings can be obtained from these drawings without creative effort. In the drawings: Figure 1 This is a schematic diagram of the overall structure of a complete glass transfer and pressing device for photovoltaic modules in some embodiments of this utility model; Figure 2 yes Figure 1 Enlarged view of point A in the middle; Figure 3 This is a schematic diagram of the stripping platform mechanism in some embodiments of this utility model; Figure 4 yes Figure 3 A schematic diagram of the structure from another direction; Figure 5 This is a schematic diagram of the pressing mechanism in some embodiments of this utility model; Figure 6 yes Figure 5 A schematic diagram of the structure from another direction; Figure 7 This is a schematic diagram of the pressing mechanism in some embodiments of this utility model; Figure 8 This is a schematic diagram of the material receiving mechanism in some embodiments of this utility model; Figure 9 yes Figure 8 Enlarged view of point B in the middle; Figure 10 This is a partial structural schematic diagram of the stripping platform mechanism in some embodiments of this utility model. Detailed Implementation
[0017] To provide a clearer understanding of the technical features, objectives, and effects of this utility model, the specific embodiments of this utility model are now described in detail with reference to the accompanying drawings. In the following description, it should be understood that the orientations or positional relationships indicated by terms such as "front," "rear," "upper," "lower," "left," "right," "longitudinal," "horizontal," "vertical," "horizontal," "top," "bottom," "inner," "outer," "head," and "tail" are based on the orientations or positional relationships shown in the accompanying drawings, and are constructed and operated in a specific orientation. They are only for the convenience of describing this technical solution and do not indicate that the device or component referred to must have a specific orientation; therefore, they should not be construed as limitations on this utility model.
[0018] It should also be noted that, unless otherwise explicitly specified and limited, terms such as "installation," "connection," "joining," "fixing," and "setting" should be interpreted broadly. For example, they can refer to a fixed connection, a detachable connection, or an integral part; they can refer to a mechanical connection or an electrical connection; they can refer to a direct connection or an indirect connection through an intermediate medium; they can refer to the internal communication of two components or the interaction between two components. When an component is referred to as being "on" or "below" another component, the component can be located "directly" or "indirectly" on the other component, or there may be one or more intermediary components. The terms "first," "second," "third," etc., are only for the convenience of describing this technical solution and should not be construed as indicating or implying relative importance or implicitly specifying the number of indicated technical features. Therefore, features defined with "first," "second," "third," etc., may explicitly or implicitly include one or more of that feature. For those skilled in the art, the specific meaning of the above terms in this utility model can be understood according to the specific circumstances.
[0019] Please see Figures 1 to 10This is a conveying, pressing, and receiving device for complete glass of photovoltaic modules in some embodiments of the present invention, which includes a peeling platform mechanism 1, a pressing mechanism 2, a pressing mechanism 3, and a receiving mechanism 4. The stripping platform mechanism 1 includes a support base 11, a platform lifting driver 12, a transmission connecting frame 13, a transmission platform 14, and a transmission belt 15. The transmission platform 14 is mounted on the support base 11, the platform lifting driver 12 is mounted on the support base 11, the output end of the platform lifting driver 12 is connected to the transmission connecting frame 13, and the transmission belt 15 is mounted on the transmission connecting frame 13. The platform lifting driver 12 is used to drive the transmission connecting frame 13 and the transmission belt 15 to perform lifting and lowering movements. The pressing mechanism 2 is used to press the photovoltaic module onto the stripping platform mechanism 1 before hot knife cutting. The pressing mechanism 2 is specifically installed at the input end of the stripping platform mechanism 1. The clamping mechanism 3 is mounted on the support base 11. The clamping mechanism 3 is used to clamp the photovoltaic module onto the stripping platform mechanism 1 after the photovoltaic module has been cut to a certain length by the hot knife. The receiving mechanism 4 is installed at the output end of the stripping platform mechanism 1 and is used to receive the parts separated from the photovoltaic module after hot knife cutting.
[0020] The transmission platform 14 serves as a support and positioning element during the hot-knife stripping of the photovoltaic modules. The platform surface is made of 304 stainless steel and has been machined to ensure flatness after installation. After transmission, the photovoltaic modules are placed on the transmission platform 14 and fixed thereby by the clamping mechanism 3. The support frame 11 is welded from 60×60×3mm rectangular tubing made of Q235B material, ensuring the strength and rigidity of the transmission platform 14. The platform lifting drive 12, located below the transmission platform 14, is used to lift and lower the transmission belt 15 to connect with the belt of the front-end equipment, transferring the photovoltaic modules to and from the transmission clamping and receiving device.
[0021] Understandably, this device for transporting, pressing, and receiving intact glass for photovoltaic modules integrates transport, pre-pressing, in-cut pressing, and sorting / receiving functions by setting up a peeling platform mechanism 1, a pressing mechanism 2, a pressing mechanism 3, and a receiving mechanism 4. This eliminates the need for multiple additional devices, simplifying the photovoltaic module recycling process and improving overall processing efficiency. Simultaneously, the peeling platform mechanism 1, through a platform lifting driver 12, drives the transport belt 15 to rise and fall, precisely matching the height of the front and rear equipment. This solves the problems of fixed height and easy jamming / deviation in traditional transport devices, ensuring smooth transport of photovoltaic modules. Furthermore, the dual pressing design of the pressing mechanism 2 and the pressing mechanism 3 prevents photovoltaic modules from shifting during the cutting process, improving cutting accuracy and reducing the breakage rate of intact glass.
[0022] like Figure 3 , Figure 4 and Figure 10As shown, the stripping platform mechanism 1 also includes a belt drive motor 16. The belt drive motor 16 is mounted on the transmission connection frame 13 and is used to drive the transmission belt 15. The transmission belt 15, in conjunction with the belt drive motor 16, provides stable power for the transmission of photovoltaic modules, enabling uniform movement of the photovoltaic modules and avoiding positioning deviations caused by uneven transmission speeds. The transmission belt 15 adopts a double-row belt structure, with the two rows connected by a drive shaft. One belt drive motor 16 drives both belts to rotate synchronously.
[0023] In addition, the transmission connection frame 13 is provided with a transmission lifting guide shaft 17. There are multiple lifting guide shafts 17. The transmission lifting guide shaft 17 is movably connected to the support base frame 11 to provide guidance for the lifting movement of the transmission connection frame 13 and the transmission belt 15, avoid platform deviation and tilting during the lifting process, ensure that the platform is always in a horizontal state, and further improve the stability of component transmission and cutting.
[0024] The bottom of the support frame 11 is equipped with multiple adjusting screws 18. The adjusting screws 18 have positive and negative threads, which facilitates the adjustment of the height and level of the transmission platform 14, so that the height of the transmission platform 14 matches that of the belt of the front-end equipment. The adjusting screws 18 can achieve height adjustment without disassembling the device, reducing the difficulty of device installation and improving on-site adaptability.
[0025] like Figure 5 and Figure 6 As shown, the pressing mechanism 2 includes a pressing mounting frame 21, a first pressing driver 22, a second pressing driver 23, a pressing action plate 24, and a pressing limit plate 25. The first pressing driver 22 and the second pressing driver 23 are separately mounted on both sides of the pressing mounting frame 21. The output end of the first pressing driver 22 is connected to the pressing action plate 24, and the first pressing driver 22 drives the pressing action plate 24 to move up and down. The output end of the second pressing driver 23 is connected to the pressing limit plate 25, and the second pressing driver 23 drives the pressing limit plate 25 to move up and down. Specifically, the pressing mechanism 2 is used to press the photovoltaic module firmly onto the transmission platform 14 before hot-blade cutting, preventing the photovoltaic module from shifting during cutting. The first pressing driver 22 drives the pressing action plate 24 to move up and down to press the photovoltaic module firmly. The second pressing driver 23 drives the pressing limit plate 25 to move up and down to limit the length of the photovoltaic module. Both the first downward actuator 22 and the second downward actuator 23 are preferably cylinders with guide rods.
[0026] Furthermore, a rubber pad 26 is provided on the pressing plate 24. The rubber pad 26 on the pressing plate 24 can increase the friction with the surface of the photovoltaic module, improve the pressing stability, and at the same time avoid surface scratches caused by direct contact between the rigid plate and the photovoltaic module. The pressing limit plate 25 is provided with a limiting protrusion 251, and the transmission platform 14 is provided with a limiting groove 141 corresponding to the limiting protrusion 251. The limiting protrusion 251 and the limiting groove 141 of the transmission platform 14 cooperate to form a mechanical positioning structure, which restricts the movement of the photovoltaic module along the length direction. The cooperation between the limiting protrusion 251 and the limiting groove 141 can prevent the second pressing driver 23 from bearing lateral force, extend the service life of the driver, and reduce the probability of failure. In addition, the pressing limit plate 25 of different sizes can be replaced according to the size of the photovoltaic module.
[0027] like Figure 2 and Figure 7 As shown, the clamping mechanism 3 includes a clamping mounting frame 31, a clamping actuator 32, a clamping action plate 33, and a clamping guide actuator 34. A guide rail 19 is provided on the transmission platform 14. The clamping guide actuator 34 is mounted on the transmission platform 14, and its output end is connected to the clamping mounting frame 31. The clamping mounting frame 31 is connected to the guide rail 19 via a guide slider 35. The clamping guide actuator 34 drives the clamping mounting frame 31 to move horizontally. The clamping actuator 32 is mounted on the clamping mounting frame 31, and its output end is hinged to the clamping action plate 33 via a connecting shaft 36. The clamping action plate 33 is hinged to the clamping mounting frame 31 via a connecting rod 37. The clamping actuator 32 drives the clamping action plate 33 to move downwards. There are two clamping actuators 32, which are separately mounted on opposite sides of the clamping mounting frame 31. Specifically, the clamping guide actuator 34 drives the clamping mounting bracket 31 to move horizontally along the guide rail 19. The position of the clamping action plate 33 can be adjusted according to the cutting length to adapt to the cutting requirements of photovoltaic modules of different sizes, enhancing the versatility of the device. The clamping execution actuator 32 drives the clamping action plate 33 to press down through the connecting shaft 36 and the connecting rod 37, forming a lever-type clamping structure to prevent the photovoltaic modules from shifting during cutting. That is, the clamping mechanism 3 adopts a linkage mechanism, with clamping execution actuators 32 on both sides pushing, and synchronous movement is achieved by one clamping execution actuator 32 pushing and the other clamping execution actuator 32 pulling. The connecting rod 37 is an adjusting linkage, and the connection spacing can be adjusted by the positive and negative threads to better clamp the photovoltaic modules.
[0028] A stop actuator 10 is also installed on the transmission platform 14. The stop actuator 10 is used to position the photovoltaic module during transmission. After positioning, it triggers the laser sensor to ensure that the photovoltaic module is always in the same position on the transmission platform 14, facilitating the hot knife to start cutting at a fixed position. The stop actuator 10 can quickly position the photovoltaic module when it is transmitted to the preset cutting position, ensuring that the photovoltaic module is always placed in the same position, solving the problems of low efficiency and large error of traditional manual positioning. At the same time, automated positioning reduces manual intervention, reduces the labor intensity of operators, and avoids damage that may be caused by manual contact with the photovoltaic module. The stop actuator 10 is preferably a cylinder.
[0029] like Figure 8 and Figure 9 As shown, the receiving mechanism 4 includes a receiving positioning frame 41, a receiving lifting drive 42, a material box connecting frame 43, a combined receiving box 44, and a complete glass receiving box 45. The receiving lifting drive 42 is mounted on the receiving positioning frame 41, and its output end is connected to the material box connecting frame 43. The material box connecting frame 43 is movably connected to the receiving positioning frame 41 via a receiving guide rail slider 401. The receiving lifting drive 42 drives the material box connecting frame 43 to move up and down. The combined receiving box 44 and the complete glass receiving box 45 are separately installed at different heights on the material box connecting frame 43, and both are connected to the material box connecting frame 43 via rollers 49. Specifically, the receiving openings of the combined receiving box 44 and the complete glass receiving box 45 are open structures, facilitating the entry of materials into the receiving box. The combined receiving box 44 and the complete glass receiving box 45 are installed at different heights, allowing for direct classification and collection of components after the photovoltaic modules have been cut and separated, eliminating the need for subsequent manual sorting, reducing processes, and improving recycling efficiency. In this embodiment, the combined receiving box 44 is located above the complete glass receiving box 45. In the specific workflow, the photovoltaic modules are cut into complete glass and combined components using a hot knife mechanism. The combined components consist of a backsheet and a solar panel. The receiving lifting drive 42 drives the box connecting frame 43 to rise and fall, and can adaptively adjust according to the stacking height of the components inside the receiving box. The receiving lifting drive 42 can adopt a lifting screw drive method and is equipped with four sets of receiving guide rail sliders to guide simultaneously, ensuring the stability of the lifting process. If the receiving lifting drive 42 has two lifting screws, it needs to be connected through a drive shaft and a steering box to ensure the synchronous lifting of the receiving box. The roller 49 is specifically composed of composite bearings and can be pushed out along the width of the material box connecting frame 43. It works in conjunction with the lifting vehicle to facilitate the transfer of battery panels and back panels and other subsequent processing, solving the problems of inconvenient fixed installation and unloading of traditional material boxes and improving transfer efficiency.
[0030] The receiving mechanism 4 also includes a guide block 46 and a blocking block 47. The guide block 46 is installed on the receiving positioning frame 41. When the receiving box is transferred, the guide block 46 guides the receiving positioning frame 41 to accurately align with the lifting vehicle, ensuring that the guide rails of both are aligned and avoiding tilting of the receiving box and spillage of parts caused by manual docking deviation. The blocking block 47 is connected to the box connecting frame 43 through a blocking pin 48. The blocking block 47 is used to block the combined receiving box 44 and the complete glass receiving box 45. The blocking block 47 can prevent the receiving box from slipping. When the receiving box needs to be transferred, the blocking pin 48 can be pulled out to allow the receiving box to move freely.
[0031] The specific working process of the complete glass transfer and pressing device for photovoltaic modules is as follows: Component transfer: The belt drive motor 16 starts, the transmission belt 15 runs, the platform lifting driver 12 drives the transmission belt 15 to rise and connect with the belt of the front-end equipment to transfer the photovoltaic module to the transmission platform 14. When the photovoltaic module reaches the designated position, the stop driver 10 extends to position the photovoltaic module, and the belt drive motor 16 stops running. Pre-cutting clamping: The first pressing driver 22 drives the pressing plate 24 to descend, the rubber pad 26 contacts and presses against the surface of the photovoltaic module, the second pressing driver 23 drives the pressing limit plate 25 to descend, the limit protrusion 251 is embedded in the limit groove 141 of the transmission platform 14 to restrict the movement of the photovoltaic module in the length direction; Hot knife cutting and intermediate clamping: The hot knife mechanism is started and begins cutting. When the cutting length reaches a certain length, the clamping guide driver 34 drives the clamping mounting bracket 31 to move along the guide slide rail 19 to the stripped position. The clamping execution driver 32 drives the clamping action plate 33 to press down and clamp the photovoltaic module. The hot knife continues to cut until the separation of the back sheet, the battery panel and the complete glass is completed. Material sorting and receiving: The material receiving lifting driver 42 drives the material box connecting frame 43 to descend, so that the assembly material receiving box 44 is aligned with the output end of the transmission belt 15, and the separated assembly falls into the assembly material receiving box (44); then the material box connecting frame 43 continues to descend, the complete glass material receiving box 45 is aligned with the output end, and the complete glass falls into the complete glass material receiving box (45). Transfer and reset: Pull out the blocking pin 48, and push the combined receiving box 44 and the complete glass receiving box 45 to the lifting vehicle through the roller 49. The receiving lifting driver 42 drives the box connecting frame 43 to reset, and the stop driver 10 retracts, waiting for the next operation.
[0032] It is understood that the above embodiments only illustrate preferred embodiments of the present utility model, and their descriptions are relatively specific and detailed, but they should not be construed as limiting the scope of the present utility model patent. It should be noted that for those skilled in the art, the above technical features can be freely combined, and several modifications and improvements can be made without departing from the concept of the present utility model, all of which fall within the protection scope of the present utility model. Therefore, all equivalent transformations and modifications made within the scope of the claims of the present utility model should fall within the coverage of the claims of the present utility model.
Claims
1. A transfer, pressing, and feeding device for complete glass in photovoltaic modules, characterized in that, It includes a stripping platform mechanism (1), a pressing mechanism (2), a clamping mechanism (3), and a receiving mechanism (4); The stripping platform mechanism (1) includes a support base frame (11), a platform lifting driver (12), a transmission connecting frame (13), a transmission platform (14), and a transmission belt (15). The transmission platform (14) is mounted on the support base frame (11), the platform lifting driver (12) is mounted on the support base frame (11), the output end of the platform lifting driver (12) is connected to the transmission connecting frame (13), and the transmission belt (15) is mounted on the transmission connecting frame (13). The platform lifting driver (12) is used to drive the transmission connecting frame (13) and the transmission belt (15) to perform lifting and lowering movements. The pressing mechanism (2) is used to press the photovoltaic module onto the stripping platform mechanism (1) before the photovoltaic module is cut by the hot knife; The pressing mechanism (3) is installed on the support base frame (11). The pressing mechanism (3) is used to press the photovoltaic module onto the stripping platform mechanism (1) after the photovoltaic module is cut to a certain length by the hot knife. The receiving mechanism (4) is installed at the output end of the stripping platform mechanism (1) and is used to receive the components separated from the photovoltaic module after being cut by a hot knife.
2. The conveying, pressing, and receiving device for complete glass of photovoltaic modules according to claim 1, characterized in that, The stripping platform mechanism (1) also includes a belt drive motor (16). The belt drive motor (16) is mounted on the transmission connection frame (13) and is used to drive the transmission belt (15) to move.
3. The conveying, pressing, and receiving device for complete glass of photovoltaic modules according to claim 1, characterized in that, The transmission connection frame (13) is provided with a transmission lifting guide shaft (17), which is movably connected to the support base frame (11).
4. The conveying, pressing, and receiving device for complete glass in photovoltaic modules according to claim 1, characterized in that, The bottom of the support frame (11) is provided with multiple adjusting screws (18).
5. The conveying, pressing, and receiving device for complete glass in photovoltaic modules according to claim 1, characterized in that, The pressing mechanism (2) includes a pressing mounting bracket (21), a first pressing driver (22), a second pressing driver (23), a pressing action plate (24), and a pressing limit plate (25). The first pressure driver (22) and the second pressure driver (23) are installed separately on both sides of the pressure mounting bracket (21). The output end of the first pressure driver (22) is connected to the pressure action plate (24). The first pressure driver (22) is used to drive the pressure action plate (24) to move up and down. The output end of the second pressure driver (23) is connected to the pressure limit plate (25). The second pressure driver (23) is used to drive the pressure limit plate (25) to move up and down.
6. The conveying, pressing, and receiving device for complete glass in photovoltaic modules according to claim 5, characterized in that, A rubber pad (26) is provided on the pressing plate (24); The pressure limiting plate (25) is provided with a limiting protrusion (251), and the transmission platform (14) is provided with a limiting groove (141) corresponding to the limiting protrusion (251).
7. The conveyorized press lamination apparatus for a monolithic glass for photovoltaic modules of claim 1, wherein, The clamping mechanism (3) includes a clamping mounting bracket (31), a clamping actuator (32), a clamping action plate (33), and a clamping guide actuator (34). The transmission platform (14) is provided with a guide slide rail (19). The clamping guide driver (34) is mounted on the transmission platform (14) and the output end of the clamping guide driver (34) is connected to the clamping mounting bracket (31). The clamping mounting bracket (31) is connected to the guide slide rail (19) through the guide slider (35). The clamping guide driver (34) is used to drive the clamping mounting bracket (31) to move horizontally. The clamping actuator (32) is mounted on the clamping mounting bracket (31). The output end of the clamping actuator (32) is hinged to the clamping plate (33) via a connecting shaft (36). The clamping plate (33) is hinged to the clamping mounting bracket (31) via a connecting rod (37). The clamping actuator (32) is used to drive the clamping plate (33) to perform a downward pressing motion.
8. The conveying, pressing, and receiving device for complete glass in photovoltaic modules according to claim 1, characterized in that, The transmission platform (14) is also equipped with a stop actuator (10), which is used to position the photovoltaic module during transmission.
9. The conveying, pressing, and receiving device for complete glass in photovoltaic modules according to claim 1, characterized in that, The receiving mechanism (4) includes a receiving positioning frame (41), a receiving lifting driver (42), a material box connecting frame (43), a combined receiving box (44), and a complete glass receiving box (45). The receiving lifting driver (42) is installed on the receiving positioning frame (41). The output end of the receiving lifting driver (42) is connected to the material box connecting frame (43). The material box connecting frame (43) is movably connected to the receiving positioning frame (41) through the receiving guide rail slider (401). The receiving lifting driver (42) is used to drive the material box connecting frame (43) to perform lifting and lowering movements. The combined receiving box (44) and the complete glass receiving box (45) are installed separately at different height positions on the material box connecting frame (43). The combined receiving box (44) and the complete glass receiving box (45) are both connected to the material box connecting frame (43) through rollers (49).
10. The transfer, pressing, and receiving device for complete glass in photovoltaic modules according to claim 9, characterized in that, The receiving mechanism (4) also includes a guide block (46) and a shielding block (47). The guide block (46) is installed on the receiving positioning frame (41), and the blocking block (47) is connected to the material box connecting frame (43) through the blocking pin (48). The blocking block (47) is used to block the combined receiving box (44) and the complete glass receiving box (45).