A transport device for photovoltaic solar panel production
Patent Information
- Application Number
- CN202421721336.2
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-07-19
- Publication Date
- 2026-08-18
- Estimated Expiration
- 2034-07-19
AI Technical Summary
[0003]基于此,本实用新型的目的是提供一种光伏太阳能电池板生产用运输装置,以解决现有的运输装置,在太阳能电池板进行运输的过程中,常常因震动而导致太阳能电池板表面的玻璃发生碎裂,影响太阳能电池板运输的安全性能和使用寿命的问题
[0014]1、本实用新型在对运输装置进行使用时存放架受力,压缩缓冲件A进行缓冲,存放架通过连接块连接位移块B在位移槽B内滑动,有效的保障了存放架受力垂直向下压缩缓冲件A,同时推动导向杆向下移动,导向杆和移动杆焊接设置,移动杆连接位移块A在位移槽A内滑动,压缩缓冲件B,进行缓冲减震,避免运输过程中因震动导致太阳能电池板表面的玻璃发生破碎,提高了太阳能电池板运输的安全性和使用寿命,从而提高了运输装置的实用性;
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Figure CN224644881U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the technical field of solar panel transportation devices, specifically a transportation device for the production of photovoltaic solar panels. Background Technology
[0002] Solar panels mainly use monocrystalline silicon as the manufacturing raw material. Due to the poor hardness of monocrystalline silicon, solar panels are fragile. At the same time, due to the high density of monocrystalline silicon, the finished solar panels are heavy. However, in actual use, existing technologies often cause the glass on the surface of solar panels to crack due to vibration, which affects the safety performance and service life of solar panels during transportation. To address this, we propose a transportation device for photovoltaic solar panel production. Utility Model Content
[0003] Therefore, the purpose of this utility model is to provide a transportation device for the production of photovoltaic solar panels, so as to solve the problem that in the process of transporting solar panels, the glass on the surface of the solar panels often breaks due to vibration, which affects the safety performance and service life of the solar panels during transportation.
[0004] To achieve the above objectives, this utility model provides the following technical solution: a transport device for photovoltaic solar panel production, comprising a walking frame, a steering bracket welded to one side of the bottom of the walking frame, a rotating shaft movably mounted on the bottom of the steering bracket, a steering wheel fixedly mounted on the outer wall of the rotating shaft and located behind the steering bracket, a transmission pulley A fixedly connected to the outer wall of the rotating shaft and located in front of the steering bracket, a drive motor fixedly mounted at the bottom of the walking frame, a rotating shaft fixedly connected to the output end of the drive motor, a transmission pulley B welded to the outer wall of the rotating shaft, and a drive pulley A and a drive pulley B movably connected by a belt, a lithium-ion battery pack fixedly mounted at the bottom of the inner cavity of the walking frame and located on one side of the drive motor, a fastening block welded to one side of the bottom of the walking frame, a buffer A welded to the top of the fastening block, and a storage rack fixedly connected to the side of the buffer A away from the fastening block.
[0005] A guide cylinder is welded to one side of the bottom of the walking frame, and a buffer component B is welded to the bottom of the inner cavity of the guide cylinder. A moving rod is fixedly connected to the side of the buffer component B away from the guide cylinder, and a displacement block A is welded to one side of the moving rod. A displacement groove A is opened on one side of the inner cavity of the guide cylinder, and the displacement block A is slidably installed in the displacement groove A. A guide rod is welded to the side of the moving rod away from the buffer component B, and the guide rod extends to the top of the guide cylinder and is fixedly connected to the bottom of the storage rack.
[0006] A connecting block is welded to the top of one side of the storage rack, and two sets of connecting blocks are fixedly installed on the side away from the storage rack. A displacement groove B is opened on the top of one side of the inner cavity of the walking frame, and two sets of displacement blocks B are slidably installed in the displacement groove B. A shock-absorbing pad A is attached to one side of the inner cavity of the storage rack, and a stop bar is welded to the bottom of the inner cavity of the storage rack. A shock-absorbing pad B is attached to one side of the stop bar.
[0007] Preferably, the baffles are evenly arranged along the length of the storage rack.
[0008] Preferably, the fastening blocks and buffer components A are configured in two sets, and the two sets of fastening blocks and buffer components A are symmetrically arranged on the central axis of the storage rack.
[0009] Preferably, the top center of the guide cylinder has a circular hole that matches the outer diameter of the guide rod, and the guide rod is movably installed in the circular hole.
[0010] Preferably, the guide cylinder, buffer component B, moving rod, displacement block A, displacement groove A, and guide rod are all configured in two sets, and the two sets of guide cylinder, buffer component B, moving rod, displacement block A, displacement groove A, and guide rod are symmetrically arranged on the central axis of the storage rack.
[0011] Preferably, a door is movably installed at the bottom of the front side wall of the walking frame via a hinge, and a door handle is welded to the front side wall of the door, a door lock is embedded in the front side wall of the door, a limiting block adapted to the door lock is provided on the front side wall of the door, and an observation port is welded to the front side wall of the door.
[0012] Preferably, a controller is fixedly connected to one side of the top of the front side wall of the walking frame, and an indicator light is embedded in the front side wall of the walking frame and located on one side of the controller. A power indicator light is embedded in one side of the top of the front side wall of the walking frame, and a push handle is welded to the top of one side of the walking frame.
[0013] Compared with the prior art, the beneficial effects of this utility model are:
[0014] 1. When the transport device is in use, the storage rack is subjected to force, and the compression buffer A provides cushioning. The storage rack is connected to the displacement block B via a connecting block and slides within the displacement groove B. This effectively ensures that the storage rack is subjected to force and compresses the buffer A vertically downwards, while simultaneously pushing the guide rod downwards. The guide rod and the moving rod are welded together, and the moving rod is connected to the displacement block A and slides within the displacement groove A, compressing the buffer B to provide cushioning and shock absorption. This prevents the glass on the surface of the solar panel from breaking due to vibration during transport, improving the safety and service life of the solar panel during transport, thereby enhancing the practicality of the transport device.
[0015] 2. This utility model can separate the solar panels by a baffle when using the transportation device, and the shock-absorbing pads A and B work together to effectively protect the solar panels, preventing the glass on the surface of the solar panels from breaking due to vibration during transportation, thus improving the safety and service life of the solar panels during transportation.
[0016] 3. When using the transportation device, this utility model can power the transmission motor with a lithium-ion battery pack. When the transmission motor starts, it drives the rotating shaft to rotate, and the transmission pulley B rotates. Through the belt, the transmission pulley A rotates, and the transmission pulley A drives the steering wheel to rotate through the rotating shaft, so that the transportation device can move. This achieves the effect of simple operation and convenient use, and improves the convenience and practicality of the transportation device. Attached Figure Description
[0017] Figure 1 This is a schematic diagram of the overall structure of this utility model;
[0018] Figure 2 This is a schematic cross-sectional view of the overall structure of this utility model;
[0019] Figure 3 This is a cross-sectional view of the guide tube structure of this utility model;
[0020] Figure 4 This is a top view of the assembly structure of the drive motor of this utility model.
[0021] In the diagram: 1. Walking frame; 2. Steering bracket; 3. Rotating shaft; 4. Steering wheel; 5. Transmission pulley A; 6. Belt; 7. Drive motor; 8. Rotating shaft; 9. Transmission pulley B; 10. Lithium-ion battery pack; 11. Fastening block; 12. Buffer A; 13. Storage rack; 14. Guide cylinder; 15. Buffer B; 16. Moving rod; 17. Displacement block A; 18. Displacement groove A; 19. Guide rod; 20. Connecting block; 21. Displacement block B; 22. Displacement groove B; 23. Vibration damping pad A; 24. Stop bar; 25. Vibration damping pad B. Detailed Implementation
[0022] The technical solutions of the present invention will be clearly and completely described below with reference to the accompanying drawings. The embodiments described below with reference to the accompanying drawings are exemplary and are only used to explain the present invention, and should not be construed as limiting the present invention.
[0023] The embodiments of this utility model will be described below based on its overall structure.
[0024] Please see Figure 1 , Figure 2 and Figure 4A transport device for photovoltaic solar panel production includes a traveling frame 1. A steering bracket 2 is welded to one side of the bottom of the traveling frame 1, and a rotating shaft 3 is movably mounted on the bottom of the steering bracket 2. A steering wheel 4 is fixedly mounted on the outer wall of the rotating shaft 3 and located behind the steering bracket 2. A transmission pulley A5 is fixedly connected to the outer wall of the rotating shaft 3 and located in front of the steering bracket 2. A drive motor 7 is fixedly mounted on the bottom of the traveling frame 1. The drive motor 7 is a Y90S-2 model, and a rotating shaft 8 is fixedly connected to the output end of the drive motor 7. A transmission pulley B9 is welded to the outer wall of the rotating shaft 8, and the transmission pulley A5 and the transmission pulley B9 are movably connected by a belt 6. A lithium-ion battery pack 10 is fixedly mounted on the bottom of the inner cavity of the traveling frame 1. Located on one side of the drive motor 7, and with a fastening block 11 welded to one side of the bottom of the walking frame 1, a buffer A12 is welded to the top of the fastening block 11, and a storage rack 13 is fixedly connected to the side of the buffer A12 away from the fastening block 11. The fastening block 11 and the buffer A12 are set in two sets, and the two sets of fastening blocks 11 and buffer A12 are symmetrically arranged on the central axis of the storage rack 13. When the storage rack 13 is subjected to force, it is buffered and shock-absorbing by the buffer A12. A door is movably installed on the bottom of the front side wall of the walking frame 1 through a hinge, and a door handle is welded to the front side wall of the door. A door lock is embedded in the front side wall of the door, and a limiting block adapted to the door lock is opened on the front side wall of the door. An observation port is welded to the front side wall of the door. By setting the door, the effect of facilitating inspection and maintenance is achieved.
[0025] Please see Figure 1 , Figure 2 and Figure 3A transport device for photovoltaic solar panel production includes a walking frame 1 with a guide cylinder 14 welded to one side of its bottom. A buffer component B15 is welded to the bottom of the inner cavity of the guide cylinder 14. A moving rod 16 is fixedly connected to the side of the buffer component B15 away from the guide cylinder 14, and a displacement block A17 is welded to one side of the moving rod 16. A displacement groove A18 is formed on one side of the inner cavity of the guide cylinder 14, and the displacement block A17 is slidably installed in the displacement groove A18. A guide rod 19 is welded to the side of the moving rod 16 away from the buffer component B15. A circular hole with an outer diameter matching that of the guide rod 19 is formed in the middle of the top of the guide cylinder 14, and the guide rod 19 is movably installed in the circular hole, serving a guiding function. The guide rod 19 extends to... The top of the guide cylinder 14 is fixedly connected to the bottom of the storage rack 13. The guide cylinder 14, buffer component B15, moving rod 16, displacement block A17, displacement groove A18, and guide rod 19 are all set in two groups, and the two groups of guide cylinder 14, buffer component B15, moving rod 16, displacement block A17, displacement groove A18, and guide rod 19 are symmetrically arranged on the central axis of the storage rack 13. The storage rack 13 pushes the guide rod 19 downward to move. The guide rod 19 and the moving rod 16 are welded together. The moving rod 16 is connected to the displacement block A17 and slides in the displacement groove A18, compressing the buffer component B15 for buffering and shock absorption, which improves the safety and service life of solar panel transportation, thereby improving the practicality of the transportation device.
[0026] Please see Figure 1 and Figure 2 A transport device for photovoltaic solar panel production includes a storage rack 13 with a connecting block 20 welded to the top of one side. Two sets of connecting blocks 20 are fixedly installed on the side away from the storage rack 13 with displacement blocks B21. A displacement groove B22 is opened on the top of one side of the inner cavity of the traveling frame 1, and two sets of displacement blocks B21 are slidably installed in the displacement groove B22. A shock-absorbing pad A23 is attached to one side of the inner cavity of the storage rack 13, and a stop bar 24 is welded to the bottom of the inner cavity of the storage rack 13. The stop bars 24 are evenly arranged along the length of the storage rack 13 to facilitate better transport of multiple solar panels. A shock-absorbing pad B25 is attached to one side of the stop bar 24. A controller is fixedly connected to the top of the front wall of the traveling frame 1, and an indicator light is embedded in the front wall of the traveling frame 1 and located to one side of the controller. A power indicator light is embedded in the top of the front wall of the traveling frame 1, and a push handle is welded to the top of one side of the traveling frame 1. By setting the indicator light, when the transport device is running, the indicator light emits a green light to remind the staff that the transport device is in operation.
[0027] Working principle: When in use, the solar panel is placed on the storage rack 13 and separated by the baffle 24. The shock-absorbing pads A23 and B25 work together to effectively protect the solar panel on the storage rack 13, preventing the glass on the surface of the solar panel from breaking due to vibration during transportation. When the storage rack 13 is subjected to force, it slides downward in the displacement groove B22 through the connecting block 20 connected to the displacement block B21. The compression buffer A12 provides cushioning. At the same time, the storage rack 13 pushes the guide rod 19 downward. The guide rod 19 and the moving rod 16 are welded together. The moving rod 16 is connected to the displacement block A17 and slides in the displacement groove A18. The compression buffer B15 provides cushioning and shock absorption, which improves the safety and service life of the solar panel transportation, thereby improving the practicality of the transportation device.
[0028] Simultaneously, the controller on the top of the front side wall of the walking frame 1 is turned on, the lithium-ion battery pack 10 is powered on, the drive motor 7 starts, driving the rotating shaft 8 to rotate, the drive pulley B9 rotates, driving the belt 6 to connect to the drive pulley A5 to rotate, and through the welded connection between the drive pulley A5 and the rotating shaft 3, the steering wheel 4 on the rotating shaft 3 is driven to rotate, so that the transport device moves, achieving the effect of simple operation and convenient use, improving the convenience and practicality of the transport device, and realizing the function of the transport device for solar panel production. The contents not described in detail in this specification belong to the prior art known to those skilled in the art.
[0029] Although the present invention has been described in detail with reference to the foregoing embodiments, those skilled in the art can still modify the technical solutions described in the foregoing embodiments or make equivalent substitutions for some of the technical features. Any modifications, equivalent substitutions, improvements, etc., made within the spirit and principles of the present invention should be included within the protection scope of the present invention.
Claims
1. A transport device for the production of photovoltaic solar panels, comprising a walking frame (1), characterized in that: A steering bracket (2) is welded to one side of the bottom of the walking frame (1), and a rotating shaft (3) is movably mounted on the bottom of the steering bracket (2). A steering wheel (4) is fixedly mounted on the outer wall of the rotating shaft (3) and located at the rear of the steering bracket (2). A transmission pulley A (5) is fixedly connected to the outer wall of the rotating shaft (3) and located at the front of the steering bracket (2). A transmission motor (7) is fixedly mounted on the bottom of the walking frame (1), and a rotating shaft (8) is fixedly connected to the output end of the transmission motor (7). 8) A transmission pulley B (9) is welded on the outer side wall, and the transmission pulley A (5) and the transmission pulley B (9) are movably connected by a belt (6). A lithium-ion battery pack (10) is fixedly installed at the bottom of the inner cavity of the walking frame (1) and located on one side of the transmission motor (7). A fastening block (11) is welded on one side of the bottom of the walking frame (1). A buffer A (12) is welded on the top of the fastening block (11), and a storage rack (13) is fixedly connected on the side of the buffer A (12) away from the fastening block (11). The bottom side of the walking frame (1) is welded with a guide cylinder (14), and a buffer component B (15) is welded to the bottom of the inner cavity of the guide cylinder (14). A moving rod (16) is fixedly connected to the side of the buffer component B (15) away from the guide cylinder (14), and a displacement block A (17) is welded to the side of the moving rod (16). A displacement groove A (18) is opened on one side of the inner cavity of the guide cylinder (14), and the displacement block A (17) is slidably installed in the displacement groove A (18). A guide rod (19) is welded to the side of the moving rod (16) away from the buffer component B (15), and the guide rod (19) extends to the top of the guide cylinder (14) and is fixedly connected to the bottom of the storage rack (13). A connecting block (20) is welded to the top of one side of the storage rack (13), and two sets of connecting blocks (20) are fixedly installed on the side away from the storage rack (13) with displacement blocks B (21). A displacement groove B (22) is opened on the top of one side of the inner cavity of the walking frame (1), and two sets of displacement blocks B (21) are slidably installed in the displacement groove B (22). A shock-absorbing pad A (23) is attached to one side of the inner cavity of the storage rack (13), and a stop bar (24) is welded to the bottom of the inner cavity of the storage rack (13). A shock-absorbing pad B (25) is attached to one side of the stop bar (24).
2. The photovoltaic solar panel production transporting device according to claim 1, characterized in that: The baffle (24) is evenly arranged along the length of the storage rack (13).
3. The photovoltaic solar panel production transporting device according to claim 1, characterized in that: The fastening block (11) and buffer A (12) are set in two sets, and the two sets of fastening blocks (11) and buffer A (12) are symmetrically arranged on the central axis of the storage rack (13).
4. The photovoltaic solar panel production transporting device according to claim 1, characterized in that: The top center of the guide tube (14) has a circular hole that matches the outer diameter of the guide rod (19), and the guide rod (19) is movably installed in the circular hole.
5. A transport device for photovoltaic solar panel production according to claim 1, characterized in that: The guide tube (14), buffer component B (15), moving rod (16), displacement block A (17), displacement groove A (18), and guide rod (19) are all set in two groups, and the two groups of guide tube (14), buffer component B (15), moving rod (16), displacement block A (17), displacement groove A (18), and guide rod (19) are symmetrically arranged on the central axis of the storage rack (13).
6. A transport device for photovoltaic solar panel production according to claim 1, characterized in that: The walking frame (1) has a door installed at the bottom of the front side wall via a hinge, and a door handle is welded on the front side wall of the door. A door lock is embedded on the front side wall of the door, and a limiting block adapted to the door lock is opened on the front side wall of the door. An observation port is welded on the front side wall of the door.
7. A transport device for photovoltaic solar panel production according to claim 1, characterized in that: A controller is fixedly connected to the top side of the front wall of the walking frame (1), and an indicator light is embedded on the front wall of the walking frame (1) and located on one side of the controller. A power indicator light is embedded on the top side of the front wall of the walking frame (1), and a push handle is welded to the top of one side of the walking frame (1).