Winding device for photovoltaic module adhesive tape tearing equipment
By designing a roll material device for photovoltaic module tape tearing equipment, the problem of tape accumulation at the bottom of the equipment was solved, achieving efficient tape collection and unloading, and improving the operational stability and production efficiency of the equipment.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- JIANGSU XIEHANG ENERGY TECH CO LTD
- Filing Date
- 2025-06-03
- Publication Date
- 2026-04-24
AI Technical Summary
In existing photovoltaic module tape-removing equipment, the tape tends to accumulate at the bottom of the equipment, making it difficult to clean and collect, which affects the equipment's operating efficiency and cleaning difficulty.
Design a roll material device for photovoltaic module tape tearing equipment, including a roll base, a roll mechanism and a tape blocking mechanism. The height is adjusted by a lifting mechanism, the slide base slides, and the motor drives the rotating connector and the roll shaft to rotate. Combined with anti-sticking blocks, the tape is rolled and unloaded.
It achieves efficient collection and unloading of conveyor belts, improves the versatility and operational stability of the equipment, reduces equipment noise, extends service life, and ensures the integrity of the conveyor belts and production efficiency.
Smart Images

Figure CN224160119U_ABST
Abstract
Description
Technical Field
[0001] This application relates to the field of photovoltaic production equipment technology, and in particular to a roll material device for a photovoltaic module tape tearing equipment. Background Technology
[0002] In the production of photovoltaic modules, a laminator is needed to press together several layers of materials, including glass, EVA, solar cells, and a backsheet. Before lamination, to ensure the proper mounting positions of the components, tape is typically applied around the perimeter of the photovoltaic module before it enters the laminator. After lamination, this tape needs to be removed. Currently, automated equipment is mainly used to remove the tape, such as CN118888485B – a photovoltaic double-glass module frame removal and tape removal device and method. However, after the tape is torn off the photovoltaic module, it falls directly to the bottom of the equipment. Over time, this leads to a buildup of tape adhering to the bottom of the equipment, making it difficult to clean and collect. Therefore, there is an urgent need for a roll-up mechanism that facilitates the collection of the tape. Utility Model Content
[0003] In order to overcome the problems existing in the prior art, this application provides a roll material device for photovoltaic module tape tearing equipment.
[0004] The technical solution provided in this application for a roll material device for photovoltaic module tape tearing equipment is as follows:
[0005] A roll-up device for a photovoltaic module tape-tearing machine includes a roll-up base, a roll-up mechanism, and a tape-blocking mechanism. The roll-up base includes a mounting base and a lifting base, wherein the lifting mechanism mounted on the mounting base drives the lifting base to move up and down, and the roll-up mechanism is mounted on the lifting base. The roll-up mechanism is slidably mounted on the roll-up base and includes a slide base and a motor and a roll-up shaft mounted on the slide base. The roll-up shaft is mounted on a rotating connector driven by the output shaft of the motor, and the roll-up shaft is arranged in a circumferential array on the rotating connector. The tape-blocking mechanism is fixedly mounted on the lifting base at the end away from the motor and includes a tape-blocking mounting plate and anti-sticking blocks on the outer side of the tape-blocking mounting plate. The tape-blocking mounting plate has perforations adapted to the rotating connector, and the anti-sticking blocks are arranged in a circumferential array around the perforations and located between two adjacent roll-up shafts.
[0006] By adopting the above technical solution, the lifting mechanism on the mounting base drives the lifting seat to rise and fall, so as to adjust the overall height to adapt to the working requirements; the tape winding mechanism slides on the tape winding base through the slide table base, which can switch between tape winding operation and tape unwinding operation. The motor drives the rotating connector to rotate, which in turn drives the tape winding shafts in the circumferential array on the rotating connector to rotate, so as to realize the winding and collection of tape; the tape blocking mechanism has a tape blocking mounting plate fixed on the lifting base, and the perforation on it is adapted to the rotating connector. The anti-sticking blocks are arranged in a circumferential array around the perforation and located between adjacent tape winding shafts. After a section of tape is wound, the tape winding shaft passes through the tape blocking mounting plate and the anti-sticking blocks between adjacent tape winding shafts can unwind the tape, thus realizing tape winding and unloading.
[0007] Preferably, the surface of the lifting seat is equipped with two sets of parallel first slide rails along its length, wherein the slide base is provided with a first slider adapted to it, and the slide base is driven by a rodless cylinder at its bottom.
[0008] Preferably, the slide base is fixed with a rotating bearing mounting component and a motor mounting component on its front and rear sides along its moving direction, respectively. The motor mounting component is used to install a motor, and the rotating bearing on the rotating bearing mounting component has a rotating shaft installed inside the rotating bearing. The motor output shaft and the rotating shaft are connected by a flexible coupling.
[0009] Preferably, the rotary connector is installed at the free end of the rotating shaft, the rotary connector is cross-shaped, and the perforation on the adhesive-blocking mounting plate is a matching cross-shaped perforation.
[0010] By adopting the above technical solution, during operation, the two sets of first slide rails parallel to each other on the surface of the lifting seat cooperate with the first slider on the slide base to provide guidance for the slide base. Driven by the rodless cylinder at the bottom, the slide base moves along the direction of the first slide rail to achieve position adjustment. The rotating bearing mounting parts and motor mounting parts on the front and rear sides of the slide base are used to install the rotating bearing and the motor, respectively. The motor output shaft is connected to the rotating shaft on the rotating bearing mounting part through a flexible coupling to reduce vibration and offset during transmission. When the motor is running, it drives the rotating shaft to rotate, which in turn drives the cross-shaped rotating connector mounted on the free end of the rotating shaft to rotate. Since the adhesive blocking mounting plate has a matching cross-shaped perforation, the rotating connector can pass through smoothly. At the same time, the circumferential array of the rubber winding shaft on the rotating connector rotates accordingly to complete the winding of the tape. The anti-sticking blocks are circumferentially arrayed around the perforation and located between adjacent rubber winding shafts. After a section of tape is wound, the tape can be unwound by the anti-sticking blocks between adjacent rubber winding shafts after the rubber winding shaft passes through the adhesive blocking mounting plate.
[0011] Preferably, the rotating bearing mounting component has clamping mechanisms installed at both ends on the side away from the motor. The clamping mechanism includes a cylinder seat and a clamping cylinder located inside the cylinder seat. The output end of the clamping cylinder is equipped with a limit clamp, which is used to clamp the tape to be rolled and is symmetrically installed on both sides of the roll shaft.
[0012] Preferably, the limiting clamp includes two sets of clamping bodies, which are rotatably connected to both sides of the output end of the clamping cylinder via L-shaped mounting rods at the ends. The corner of the L-shaped mounting rod is rotatably connected to the cylinder seat, and the two ends of the L-shaped mounting rod are connected to the clamping body and the output shaft of the clamping cylinder, respectively. The L-shaped mounting rod is rotatably connected to the output shaft of the clamping cylinder, and the L-shaped mounting rod is connected to the rotating shaft on the output shaft of the clamping cylinder at this point by a strip-shaped adjustment through hole.
[0013] Preferably, the clamping body includes a frame and rollers mounted on the side of the frame.
[0014] By adopting the above technical solution, during operation, when the slide base moves to the designated position, the motor drives the rotating connecting parts and the roll shaft to prepare for winding the material. At this time, the clamping mechanisms at both ends of the rotating bearing mounting parts away from the motor start to operate. The clamping cylinder starts in the cylinder seat, and its output end extends, driving the L-shaped mounting rod connected to it to move. Since the corner of the L-shaped mounting rod is rotatably connected to the cylinder seat, the two ends are movably connected to the clamping body and the output shaft of the clamping cylinder, respectively. As the output end of the clamping cylinder extends, the two sets of clamping bodies move away from each other with the L-shaped mounting rod as a lever, placing the tape to be wound between the two sets of clamping bodies. Then, the output end of the clamping cylinder is driven to retract, and the rollers on the clamping body contact the tape. During the process of the roll shaft rotating and winding the tape, the rollers can reduce the friction between the clamping body and the tape, ensuring that the tape is wound smoothly. When the winding is completed, the clamping cylinder extends, and the L-shaped mounting rod drives the clamping body to open, releasing the tape for subsequent operations.
[0015] Preferably, the mounting base is fixedly connected to the photovoltaic module tape-removing device, and the lifting mechanism includes a lifting cylinder installed at the center of the mounting base, the output shaft of the lifting cylinder being fixedly connected to the bottom of the lifting base, and a second slide rail being installed around the lifting cylinder of the mounting base, and the second slide rail being slidably connected to the second slider at the bottom of the lifting base.
[0016] By adopting the above technical solution, the mounting base is fixedly connected to the photovoltaic module tape-tearing equipment, providing stable support for the entire roll-up device. During operation, the lifting cylinder is activated, its output shaft extending or retracting, directly driving the lifting seat fixedly connected to it to move up and down. Simultaneously, the second slide rail located around the lifting cylinder on the mounting base closely cooperates with the second slider at the bottom of the lifting seat, providing precise guidance and stable support for the lifting process. This effectively prevents the lifting seat from shifting or swaying during lifting, ensuring that the lifting seat can smoothly and accurately reach the predetermined height. This allows the roll-up mechanism, tape-blocking mechanism, and clamping mechanism installed on the lifting seat to be in the appropriate working positions, ensuring the overall working accuracy and stability of the roll-up device for the photovoltaic module tape-tearing equipment.
[0017] In summary, this application includes at least one of the following beneficial technical effects:
[0018] 1. In the overall structure of the roll-to-roll device, the roll base, roll mechanism, and tape-blocking mechanism cooperate with each other. The lifting seat can be flexibly adjusted in height under the drive of the lifting mechanism to adapt to the tape-tearing operation of photovoltaic modules of different specifications, thereby improving the equipment's versatility. The roll mechanism drives the slide base to slide on the first slide rail through a rodless cylinder to achieve precise position adjustment, ensuring that the roll shaft corresponds to the tape-tearing position and guaranteeing roll efficiency. Anti-sticking blocks are arranged in a circumferential array around the perforation and located between adjacent roll shafts. After a section of tape is wound, the roll shaft passes through the tape-blocking mounting plate, and the anti-sticking blocks between adjacent roll shafts remove the wound tape, thus realizing the winding and unloading of the tape.
[0019] 2. This application connects the motor output shaft to the rotating shaft via a flexible coupling, reducing transmission vibration and offset, improving the rotational stability of the rubber roll shaft, reducing equipment operating noise, and extending equipment service life; the cross-shaped rotating connector and the matching cross-shaped perforation make the rotation of the rubber roll shaft for rubber winding and unloading more stable and efficient.
[0020] 3. This application controls the opening and closing of the clamping body by using a clamping cylinder to drive an L-shaped mounting rod. This allows for quick and stable clamping of the tape to be wound. The rollers on the clamping body reduce friction with the tape, ensuring that the tape is not damaged during winding and improving the quality and integrity of the tape winding. The second slide rail and the second slider work together to provide reliable guidance and support for the lifting seat, ensuring smooth operation of the entire device and improving the safety and reliability of the equipment. This effectively solves the problems of difficult tape collection and easy adhesion to the equipment in existing equipment, thereby improving the production efficiency and quality of photovoltaic modules. Attached Figure Description
[0021] Figure 1 This is a schematic diagram of the overall structure of a roll material device for a photovoltaic module tape tearing equipment;
[0022] Figure 2This is a schematic diagram of the clamping mechanism in a roll material device for a photovoltaic module tape tearing machine.
[0023] Explanation of reference numerals in the attached drawings: 1. Glue roll base; 11. Mounting seat; 111. Second slide rail; 12. Lifting seat; 121. First slide rail; 122. Second slider; 123. Rodless cylinder; 13. Lifting mechanism; 131. Lifting cylinder; 2. Glue roll mechanism; 21. Slide table base; 211. First slider; 212. Rotary bearing mounting component; 213. Motor mounting component; 214. Rotating shaft; 215. Flexible coupling; 22. Motor; 23. Glue roll shaft; 24. Rotary connecting component; 3. Glue blocking mechanism; 31. Glue blocking mounting plate; 311. Perforation; 32. Anti-sticking small piece; 4. Clamping mechanism; 41. Cylinder seat; 42. Clamping cylinder; 43. Limiting clamp; 431. Clamp body; 4311. Frame body; 4312. Roller body; 432. L-shaped mounting rod. Detailed Implementation
[0024] The following is in conjunction with the appendix Figure 1-2 This application will be described in further detail.
[0025] This application discloses a roll material device for a photovoltaic module tape tearing equipment.
[0026] Reference Figure 1 and Figure 2A roll-up device for a photovoltaic module tape-tearing machine includes a roll-up base 1, a roll-up mechanism 2, and a tape-blocking mechanism 3. The roll-up base 1 includes a mounting base 11 and a lifting base 12, wherein a lifting mechanism 13 mounted on the mounting base 11 drives the lifting base 12 to rise and fall, and the roll-up mechanism 2 is mounted on the lifting base 12. The roll-up mechanism 2 is slidably mounted on the roll-up base 1 and includes a slide base 21 and a motor 22 and a roll-up shaft 23 mounted on the slide base 21. The roll-up shaft 23 is mounted on a rotating connector 24 driven by the output shaft of the motor 22, and the roll-up shaft 23 is arranged in a circumferential array on the rotating connector 24. The tape-blocking mechanism 3 is fixedly mounted on the lifting base 12 at one end away from the motor 22 and includes a tape-blocking mounting plate 31 and anti-sticking small blocks 32 on the outer side of the tape-blocking mounting plate 31. The tape-blocking mounting plate 31 has a through hole 311 adapted to the rotating connector 24, and the anti-sticking small blocks 32 are arranged in a circumferential array around the through hole 311 and are located between two adjacent roll-up shafts 23. The lifting mechanism 13 on the mounting base 11 drives the lifting base 12 to rise and fall, adjusting the overall height to suit the work requirements. The tape winding mechanism 2 slides on the tape winding base 1 via the slide table base 21, allowing for switching between tape winding operations and unwinding the wound tape from the tape winding mechanism 2. The motor 22 drives the rotating connector 24 to rotate, which in turn drives the tape winding shafts 23 arranged in a circular array on the rotating connector 24 to rotate, thereby achieving tape winding and collection. The tape blocking mechanism 3 has a tape blocking mounting plate 31 fixed on the lifting base 12, with perforations 311 adapted to the rotating connector 24. Anti-sticking blocks 32 are arranged in a circular array around the perforations 311 and located between adjacent tape winding shafts 23. After a section of tape is wound, the tape can be unwound by passing the tape blocking mounting plate 31 and the anti-sticking blocks 32 between adjacent tape winding shafts 23, thus achieving tape winding and unloading.
[0027] Reference Figure 1 and Figure 2Two sets of parallel first slide rails 121 are mounted on the surface of the lifting seat 12 along its length. A first slider 211 adapted to the slide base 21 is provided on the slide base 21, and the slide base 21 is driven by a rodless cylinder 123 at its bottom. Rotary bearing mounting parts 212 and motor mounting parts 213 are fixed to the front and rear sides of the slide base 21 along its moving direction, respectively. The motor mounting part 213 is used to mount the motor 22, and a rotating shaft 214 is installed in the rotating bearing of the rotary bearing mounting part 212. The output shaft of the motor 22 is connected to the rotating shaft 214 via a flexible coupling 215. A rotating connector 24 is installed on the free end of the rotating shaft 214. The rotating connector 24 is cross-shaped, and the through hole 311 on the rubber-blocking mounting plate 31 is a matching cross-shaped through hole 311. During operation, two sets of first slide rails 121 parallel to each other on the surface of the lifting seat 12 cooperate with the first slider 211 on the slide base 21 to provide guidance for the slide base 21. Driven by the rodless cylinder 123 at the bottom, the slide base 21 moves along the direction of the first slide rails 121 to achieve position adjustment. The rotating bearing mounting parts 212 and motor mounting parts 213 on the front and rear sides of the slide base 21 are used to install the rotating bearing and the motor 22, respectively. The output shaft of the motor 22 is connected to the rotating shaft 214 on the rotating bearing mounting part 212 through the flexible coupling 215 to reduce vibration and offset during transmission. When the motor 22 is running... The rotating shaft 214 is driven to rotate, which in turn drives the cross-shaped rotating connector 24 installed at the free end of the rotating shaft 214 to rotate. Since the adhesive blocking mounting plate 31 has a matching cross-shaped through hole 311, the rotating connector 24 can pass through smoothly. At the same time, the circumferential array of the tape winding shaft 23 on the rotating connector 24 rotates accordingly to complete the winding of the tape. The anti-sticking blocks 32 are circumferentially arrayed around the through hole 311 and located between adjacent tape winding shafts 23. After a section of tape is wound, the tape can be unwound by the anti-sticking blocks 32 between adjacent tape winding shafts 23 after passing through the adhesive blocking mounting plate 31 and the tape winding shaft 23.
[0028] Reference Figure 1 and Figure 2A clamping mechanism 4 is installed at both ends of the rotating bearing mounting component 212 on the side away from the motor 22. The clamping mechanism 4 includes a cylinder seat 41 and a clamping cylinder 42 located inside the cylinder seat 41. A limit clamp 43 is installed at the output end of the clamping cylinder 42. The limit clamp 43 is used to clamp the tape to be rolled and is symmetrically installed on both sides of the roll shaft 23. The limit clamp 43 includes two sets of clamping bodies 431. The clamping bodies 431 are rotatably connected to both sides of the output end of the clamping cylinder 42 by L-shaped mounting rods 432 at the ends. The corner of the L-shaped mounting rod 432 is rotatably connected to the cylinder seat 41. The two ends of the L-shaped mounting rod 432 are connected to the clamping body 431 and the output shaft of the clamping cylinder 42, respectively. The L-shaped mounting rod 432 is rotatably connected to the output shaft of the clamping cylinder 42, and the L-shaped mounting rod 432 is connected to the rotating shaft 214 on the output shaft of the clamping cylinder 42 by a strip-shaped adjustment through hole 311. The clamping body 431 includes a frame 4311 and a roller 4312 mounted on the side of the frame 4311. During operation, when the slide base 21 moves to the designated position, the motor 22 drives the rotating connector 24 and the roll shaft 23 to prepare the material for winding. At this time, the clamping mechanisms 4 at both ends of the rotating bearing mounting member 212 away from the motor 22 begin to operate. The clamping cylinder 42 starts within the cylinder seat 41, and its output end extends, driving the connected L-shaped mounting rod 432 to move. Since the corner of the L-shaped mounting rod 432 is rotatably connected to the cylinder seat 41, and both ends are rotatably connected to the clamping body 431 and the output shaft of the clamping cylinder 42 respectively, the clamping cylinder 42 moves as the output end of the clamping cylinder 42... With the extension of the clamping cylinder 42, the two clamping bodies 431 are positioned apart by levers with L-shaped mounting rods 432, placing the tape to be wound between the two clamping bodies 431. Then, the output end of the clamping cylinder 42 is driven to retract, and the rollers 4312 on the clamping bodies 431 come into contact with the tape. During the process of the tape being wound by the rotating tape shaft 23, the rollers 4312 can reduce the friction between the clamping bodies 431 and the tape, ensuring that the tape is wound smoothly. When the winding is completed, the clamping cylinder 42 extends, and the L-shaped mounting rods 432 drive the clamping bodies 431 to open, releasing the tape for subsequent operations.
[0029] Reference Figure 1 and Figure 2The mounting base 11 is fixedly connected to the photovoltaic module tape-tearing equipment. The lifting mechanism 13 includes a lifting cylinder 131 mounted at the center of the mounting base 11. The output shaft of the lifting cylinder 131 is fixedly connected to the bottom of the lifting seat 12. A second slide rail 111 is also installed around the lifting cylinder 131 of the mounting base 11, and the second slide rail 111 is slidably connected to the second slider 122 at the bottom of the lifting seat 12. The mounting base 11 is fixedly connected to the photovoltaic module tape-tearing equipment, providing stable support for the entire roll material device. During operation, the lifting cylinder 131 is activated, and its output shaft extends or retracts, directly driving the lifting seat 12, which is fixedly connected to it, to move up and down. At the same time, the second slide rail 111 on the mounting base 11, located around the lifting cylinder 131, closely cooperates with the second slider 122 at the bottom of the lifting seat 12, providing precise guidance and stable support for the lifting process of the lifting seat 12. This effectively prevents the lifting seat 12 from shifting or shaking during the lifting process, ensuring that the lifting seat 12 can reach the predetermined height smoothly and accurately. This ensures that the components such as the glue winding mechanism 2, the glue blocking mechanism 3, and the clamping mechanism 4 installed on the lifting seat 12 are in the appropriate working positions, guaranteeing the overall working accuracy and stability of the roll material device for the photovoltaic module tape tearing equipment.
[0030] Working Principle: When the photovoltaic module tape-tearing equipment uses a roll-up device, the mounting base 11 is first fixedly connected to the photovoltaic module tape-tearing equipment, providing stable support for the whole. The lifting mechanism 13 is activated, and the output shaft of the central lifting cylinder 131 drives the lifting seat 12 to rise and fall along the guide structure formed by the second slide rail 111 and the second slider 122, adjusting it to a suitable height so that the roll-up device matches the tape-tearing operation height. Next, driven by the bottom rodless cylinder 123, the slide base 21 moves along the surface of the lifting seat 12 through the cooperation of the first slider 211 and the first slide rail 121, adjusting the roll-up mechanism 2 to a suitable position corresponding to the tape-tearing position. At this time, the clamping mechanisms 4 at both ends of the rotating bearing mounting component 212 away from the motor 22 begin to operate. The output end of the clamping cylinder 42 retracts, driving the L-shaped mounting rod to cause the rollers 4312 on the clamping body 431 to symmetrically clamp the tape to be rolled on both sides of the roll-up shaft 23. Subsequently, the motor 22 is powered on and its output shaft drives the rotating shaft 214 to rotate through the flexible coupling 215, which in turn drives the cross-shaped rotating connector 24 to rotate. The rubber winding shafts 23, which are arranged in a circular array on the rotating connector 24, rotate accordingly and begin to wind the tape. After the tape is wound, the clamping cylinder 42 extends, and the L-shaped mounting rod drives the clamp 431 to open. The anti-sticking blocks 32 are arranged in a circular array around the perforation and located between adjacent rubber winding shafts. The rubber winding shafts 23, along with the rubber winding mechanism 2, pass through the perforation 311 on the adhesive blocking mounting plate 31. The anti-sticking blocks 32 between adjacent rubber winding shafts 23 unwind the wound tape, realizing the winding and unloading of the tape. Subsequent operations such as replacing the rubber winding shafts 23 or processing the wound tape can then be performed.
[0031] The above are all preferred embodiments of this application and are not intended to limit the scope of protection of this application. Therefore, all equivalent changes made in accordance with the structure, shape and principle of this application should be covered within the scope of protection of this application.
Claims
1. A roll material device for a photovoltaic module tape tearing machine, characterized in that: It includes a roll base (1), a roll mechanism (2), and a roll blocking mechanism (3); The roll base (1) includes a mounting base (11) and a lifting base (12), wherein the lifting mechanism (13) installed on the mounting base (11) drives the lifting base (12) to rise and fall, and the rolling mechanism (2) is installed on the lifting base (12); The roll mechanism (2) is slidably mounted on the roll base (1), including a slide base (21) and a motor (22) and a roll shaft (23) mounted on the slide base (21), wherein the roll shaft (23) is mounted on a rotating connector (24) driven by the output shaft of the motor (22), and the roll shaft (23) is arranged in a circumferential array on the rotating connector (24); The adhesive blocking mechanism (3) is fixedly installed on the lifting seat (12) at one end away from the motor (22), including an adhesive blocking mounting plate (31) and anti-sticking small blocks (32) on the outside of the adhesive blocking mounting plate (31). The adhesive blocking mounting plate (31) has a through hole (311) adapted to the rotating connector (24). The anti-sticking small blocks (32) are arranged in a circumferential array around the through hole (311) and are located between two adjacent glue rolls (23).
2. The roll material device for a photovoltaic module tape tearing equipment according to claim 1, characterized in that: The surface of the lifting seat (12) is equipped with two sets of parallel first slide rails (121) along its length direction. The slide base (21) is provided with a first slider (211) adapted to it, and the slide base (21) is driven by a rodless cylinder (123) at its bottom.
3. The roll material device for a photovoltaic module tape tearing equipment according to claim 2, characterized in that: The slide base (21) has a rotating bearing mounting part (212) and a motor mounting part (213) fixed on its front and rear sides along its moving direction, respectively. The motor mounting part (213) is used to install the motor (22), and the rotating bearing on the rotating bearing mounting part (212) has a rotating shaft (214) installed inside the rotating bearing. The output shaft of the motor (22) and the rotating shaft (214) are connected by an elastic coupling (215).
4. The roll material device for a photovoltaic module tape tearing equipment according to claim 3, characterized in that: The rotating connector (24) is installed on the free end of the rotating shaft (214). The rotating connector (24) is cross-shaped, and the perforation (311) on the adhesive-blocking mounting plate (31) is a cross-shaped perforation (311) that is adapted to it.
5. The roll material device for a photovoltaic module tape tearing equipment according to claim 3, characterized in that: The rotating bearing mounting component (212) has clamping mechanisms (4) installed at both ends on the side away from the motor (22). The clamping mechanism (4) includes a cylinder seat (41) and a clamping cylinder (42) located inside the cylinder seat (41). The output end of the clamping cylinder (42) is equipped with a limit clamp (43). The limit clamp (43) is used to clamp the tape to be rolled and is symmetrically installed on both sides of the roll shaft (23).
6. The roll material device for a photovoltaic module tape tearing equipment according to claim 5, characterized in that: The limiting clamp (43) includes two clamping bodies (431). The clamping bodies (431) are rotatably connected to both sides of the output end of the clamping cylinder (42) via L-shaped mounting rods (432) at the ends. The corner of the L-shaped mounting rod (432) is rotatably connected to the cylinder seat (41). The two ends of the L-shaped mounting rod (432) are connected to the clamping body (431) and the output shaft of the clamping cylinder (42) respectively. The L-shaped mounting rod (432) is rotatably connected to the output shaft of the clamping cylinder (42), and the L-shaped mounting rod (432) is connected to the rotating shaft on the output shaft of the clamping cylinder (42) at this point by a strip-shaped adjustment through hole.
7. The roll material device for a photovoltaic module tape tearing equipment according to claim 6, characterized in that: The clamp (431) includes a frame (4311) and rollers (4312) mounted on the side of the frame (4311).
8. The roll material device for a photovoltaic module tape tearing equipment according to claim 1, characterized in that: The mounting base (11) is fixedly connected to the photovoltaic module tape-removing device. The lifting mechanism (13) includes a lifting cylinder (131) installed at the center of the mounting base (11). The output shaft of the lifting cylinder (131) is fixedly connected to the bottom of the lifting seat (12). A second slide rail (111) is also installed around the lifting cylinder (131) of the mounting base (11), and the second slide rail (111) is slidably connected to the second slider (122) at the bottom of the lifting seat (12).
Citation Information
Patent Citations
Photovoltaic double-glass module frame removal and tape removal device and method
CN118888485B