Photovoltaic module carrying tool

By designing a clamping mechanism that adapts to photovoltaic modules of different sizes and shapes, the risk of modules bursting during hoisting operations was eliminated, enabling safe hoisting in harsh terrain and improving the versatility and stability of the tooling.

CN223792779UActive Publication Date: 2026-01-13CHINT NEW ENERGY TECH CO LTD
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Patent Information

Application Number
CN202520300470.3
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-02-25
Publication Date
2026-01-13
Estimated Expiration
2035-02-25

AI Technical Summary

Technical Problem

In photovoltaic module projects, existing hoisting operations involve ropes directly contacting the sides of the modules, posing a risk of bursting the modules and damaging the frames, especially in harsh terrain where it is difficult to use forklifts.

Method used

A photovoltaic module handling fixture was designed, including a support platform, connecting components and a clamping mechanism. The clamping mechanism consists of a first clamping member and a second clamping member. The clamping space is adjusted by the telescopic part to adapt to photovoltaic modules of different sizes and shapes. The stability and flexibility are enhanced by multi-level nesting and sliding connection.

Benefits of technology

It enables the safe and stable hoisting of photovoltaic modules in harsh terrain, avoiding the risk of bursting modules and damaging the frame, improving the versatility and adaptability of the tooling, and ensuring the safety and smooth progress of the handling process.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to a photovoltaic module carrying tool which comprises a bearing platform. The connecting component is fixed on the bottom surface of the bearing platform; the clamping mechanism comprises a first clamping piece and a second clamping piece, the first clamping piece and the second clamping piece are arranged at the two ends of the connecting component respectively, and a clamping space is formed between the first clamping piece and the second clamping piece; the first clamping piece and the second clamping piece are each provided with a telescopic part, each telescopic part comprises a multi-stage sleeved pipe structure, and the size of the clamping space is adjusted through the telescopic parts. The photovoltaic modules with different sizes and shapes can be clamped through the characteristic that the clamping mechanism can stretch and retreat, the universality and flexibility of the tool are improved, when the tool is used for unloading and transferring the modules, the bearing platform is matched to be fixed to the periphery of the modules, and the risks of explosion of the modules and damage of a frame in the hoisting operation are avoided.
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Description

Technical Field

[0001] This utility model relates to the field of photovoltaic module technology, and in particular to a photovoltaic module handling fixture. Background Technology

[0002] During the unloading and transfer of photovoltaic modules at project sites, sometimes the harsh terrain prevents the use of forklifts, necessitating the use of cranes for lifting operations. Current methods involve inserting steel or iron pipes into the bottom of the module pallet, then connecting the crane's hook to the pipes with ropes for secure connection before lifting. However, during this process, the ropes directly contact the sides of the packaging. Due to the weight of the modules themselves, the ropes can exert a force that tightly constricts the modules during lifting and transfer, posing a risk of bursting the modules and damaging the frame. Utility Model Content

[0003] To address at least one of the aforementioned technical problems, this application provides a photovoltaic module handling fixture, which is fixed around the module during unloading and transfer, and is adapted to use on-board cranes for related operations in harsh terrain conditions.

[0004] Therefore, this utility model provides a photovoltaic module handling fixture, including: a carrying platform; a connecting member fixed to the bottom surface of the carrying platform; and a clamping mechanism including a first clamping member and a second clamping member, the first clamping member and the second clamping member being respectively disposed at both ends of the connecting member, and a clamping space being formed between the first clamping member and the second clamping member; wherein, both the first clamping member and the second clamping member are provided with telescopic parts, the telescopic parts including multi-stage sleeved tube structures, and the size of the clamping space is adjusted by the telescopic parts.

[0005] In this implementation, the support platform provides a stable support foundation, the connecting component ensures a firm connection between the clamping mechanism and the support platform, and the clamping mechanism achieves a stable clamping of the photovoltaic module through the clamping space formed by the first clamping member and the second clamping member. At the same time, the first clamping member and the second clamping member are respectively set at both ends of the connecting component, and the size of the clamping space is adjusted by the set telescopic part. This design allows the tooling to adapt to photovoltaic modules of different sizes and shapes, improving the versatility and flexibility of the tooling.

[0006] The photovoltaic module handling fixture described above includes a first telescopic structure and a second telescopic structure. The first telescopic structure is mounted on the first clamping member, and the second telescopic structure is mounted on the second clamping member.

[0007] In this implementation, by designing the telescopic part to include a first telescopic structure and a second telescopic structure, and respectively setting them on two clamping members, the size of the clamping space can be adjusted more flexibly. This design allows the tooling to adapt to photovoltaic modules of different sizes and specifications, meeting various handling needs without changing the tooling, thereby further improving the versatility and adaptability of the tooling.

[0008] In conjunction with the photovoltaic module handling fixture described above, the first telescopic structure includes a first tube, a second tube, a third tube, and a fourth tube. The first tube is sleeved outside the second tube and is slidably connected to the second tube; the second tube is sleeved outside the third tube and is slidably connected to the third tube; and the third tube is sleeved outside the fourth tube and is slidably connected to the fourth tube.

[0009] This implementation employs a multi-stage nesting and sliding connection design, allowing the telescopic structure to be flexibly adjusted within different length ranges. When clamping larger photovoltaic modules, each tube can extend sequentially to expand the clamping space; conversely, when clamping smaller photovoltaic modules, each tube can retract sequentially to reduce the clamping space. This flexible adjustment capability enables the fixture to adapt to photovoltaic modules of different sizes, improving its versatility and practicality. Simultaneously, the multi-stage telescopic structure design enhances the fixture's stability and load-bearing capacity. Because the tubes are slidably connected, they support each other under stress, forming a stable overall structure. This structure not only effectively prevents the photovoltaic modules from shaking or slipping during handling but also withstands significant weight and pressure, ensuring the safety and smooth operation of the handling process.

[0010] In conjunction with the photovoltaic module handling fixture described above, the second telescopic structure includes a fifth tube, a sixth tube, a seventh tube, and an eighth tube. The fifth tube is sleeved outside the sixth tube and is slidably connected to the sixth tube; the sixth tube is sleeved outside the seventh tube and is slidably connected to the seventh tube; and the seventh tube is sleeved outside the eighth tube and is slidably connected to the eighth tube.

[0011] In this implementation, the same multi-level nesting and sliding connection design is adopted, which further improves the flexibility of the tooling and increases the load-bearing capacity of the structure.

[0012] The photovoltaic module handling fixture described above includes a first end and a second end arranged symmetrically, with a first tube fixed to the first end and a fifth tube fixed to the second end.

[0013] In this implementation, structural symmetry is achieved by fixing the first and fifth pipes to the symmetrically arranged first and second ends of the connecting components, respectively. This symmetrical design is not only aesthetically pleasing but also helps maintain the balance and stability of the entire structure. Under load, the symmetrical structure can distribute forces more evenly, reducing the risk of structural damage caused by force concentration.

[0014] Combining the photovoltaic module handling fixtures described above, the first, second, third, and fourth pipes are connected in sequence to form a C-shaped structure, with the first pipe being a straight pipe, the second pipe being a bent pipe, the third pipe being a bent pipe, and the fourth pipe being a straight pipe; the fifth, sixth, seventh, and eighth pipes are connected in sequence to form a C-shaped structure, with the fifth pipe being a straight pipe, the sixth pipe being a bent pipe, the seventh pipe being a bent pipe, and the eighth pipe being a straight pipe; wherein, the opening of the fourth pipe faces the opening of the eighth pipe.

[0015] In this implementation, the first to fourth and fifth to eighth tubes respectively form a C-shaped structure, enhancing the stability of the structure. Meanwhile, the second and third tubes, as well as the sixth and seventh tubes, act as bending tubes, allowing for bending and adjustment to a certain extent, thus enabling them to better adapt to various complex scenarios.

[0016] Combined with the photovoltaic module handling fixtures described above, the port of the fourth tube is movably connected to the port of the eighth tube, and the port of the fourth tube extends into the port of the eighth tube.

[0017] In this implementation, the openings of the fourth and eighth tubes are movably connected, with the fourth tube extending into the eighth tube. This creates a tighter connection between the two tubes, improving the overall stability of the clamping mechanism. This not only simplifies operation but also ensures the safety and reliability of the clamping process.

[0018] In conjunction with the photovoltaic module handling fixtures described above, the number of clamping mechanisms is at least two, which are spaced apart along the bottom surface of the support platform.

[0019] In this implementation, the design allows the load-bearing platform to distribute the weight of the load more evenly. When the load is long or heavy, a single clamping mechanism may not be able to provide sufficient support, while multiple clamping mechanisms can share the weight, reducing the risk of deformation or damage caused by excessive local stress, thereby improving load-bearing stability and enhancing adaptability.

[0020] In conjunction with the photovoltaic module handling fixtures described above, a motor is installed on the bottom surface of the support platform. The motor is connected to the clamping mechanism and is used to drive the clamping mechanism to move.

[0021] In this implementation, the clamping mechanism can be automated through motor drive, eliminating the need for manual control and greatly improving work efficiency. At the same time, motor drive ensures the speed and accuracy of the clamping mechanism's movements, reducing errors and delays caused by improper human operation.

[0022] In conjunction with the photovoltaic module handling fixtures described above, the support platform also includes a top surface, which is provided with lifting holes.

[0023] In this implementation, lifting holes are set on the top surface of the support platform. During operation, the lifting equipment can directly lift items on the platform through the set holes, making the lifting operation faster and more accurate, and reducing the adjustment time and labor costs during the lifting process.

[0024] Compared with the prior art, the photovoltaic module handling fixture of this utility model has the following advantages: the carrying platform provides a stable support foundation, the connecting component ensures a firm connection between the clamping mechanism and the carrying platform, and the clamping mechanism achieves a stable clamping of the photovoltaic module through the clamping space formed by the first clamping member and the second clamping member. At the same time, the first clamping member and the second clamping member are respectively set at both ends of the connecting component, and the size of the clamping space can be adjusted by the set telescopic part, so that the fixture can adapt to photovoltaic modules of different sizes and shapes, improving the versatility and flexibility of the fixture. When used for module unloading and transfer, the clamping mechanism works with the carrying platform to fix it around the module, avoiding the risk of bursting the module and damaging the frame during hoisting operations, thus adapting to various harsh terrain conditions for use with truck-mounted hoisting for related operations. Attached Figure Description

[0025] The disclosure of this utility model will become more apparent with reference to the accompanying drawings. It should be understood that these drawings are for illustrative purposes only and are not intended to limit the scope of protection of this utility model. In the drawings:

[0026] Figure 1 This is a structural schematic diagram of a photovoltaic module handling fixture provided by this utility model;

[0027] Figure 2 This is a schematic diagram of the clamping mechanism provided by this utility model;

[0028] Figure 3 This is a schematic diagram of the photovoltaic module handling fixture after the clamping mechanism provided by this utility model is closed.

[0029] Figure label:

[0030] 1. Supporting platform; 2. Connecting components; 3. First clamping component; 4. Second clamping component; 5. Lifting hole;

[0031] 6. First tube; 7. Second tube; 8. Third tube; 9. Fourth tube; 10. Fifth tube; 11. Sixth tube;

[0032] 12. Seventh tube; 13. Eighth tube. Detailed Implementation

[0033] The technical solutions in the embodiments of this application will now be described with reference to the accompanying drawings.

[0034] In the description of this application, the terms “center,” “upper,” “lower,” “front,” “rear,” “left,” “right,” “vertical,” “horizontal,” “top,” “bottom,” “inner,” and “outer,” etc., indicate the orientation or positional relationship based on the orientation or positional relationship shown in the accompanying drawings. They are used only for the convenience of describing this application and simplifying the description, and do not indicate or imply that the device or element referred to must have a specific orientation, or be constructed and operated in a specific orientation. Therefore, they should not be construed as limitations on this application.

[0035] In the description of this application, it should be noted that, unless otherwise expressly specified and limited, the terms "installation", "connection" and "joining" should be interpreted broadly, for example, they can be fixed connections, detachable connections, mating connections or integral connections; those skilled in the art can understand the specific meaning of the above terms in this application according to the specific circumstances.

[0036] In the description of this specification, specific features, structures, materials, or characteristics may be combined in any suitable manner in one or more embodiments.

[0037] Figure 1 This utility model provides a structural schematic diagram of a photovoltaic module handling fixture; Figure 2 This is a schematic diagram of the clamping mechanism provided by this utility model; Figure 3 This is a schematic diagram of the photovoltaic module handling fixture after the clamping mechanism of this utility model is closed; the following is in conjunction with... Figures 1 to 3 This invention describes an implementation method for a photovoltaic module handling fixture.

[0038] like Figure 1 As shown, a photovoltaic module handling fixture includes: a support platform 1, a connecting member 2, and a clamping mechanism. The connecting member 2 is fixed to the bottom surface of the support platform 1. The clamping mechanism includes a first clamping member 3 and a second clamping member 4, which are respectively disposed at both ends of the connecting member 2, and a clamping space is formed between the first clamping member 3 and the second clamping member 4. Both the first clamping member 3 and the second clamping member 4 are provided with telescopic parts, which include multi-stage sleeved tube structures, and the size of the clamping space is adjusted by the telescopic parts.

[0039] Specifically, the support platform 1 is a rectangular structure, positioned above the clamping mechanism, and its dimensions are adapted to the photovoltaic modules to ensure stable support. The connecting member 2 is positioned between the support platform 1 and the clamping mechanism, and is fixedly connected to both. The clamping mechanism includes a first clamping member 3 and a second clamping member 4, both fixedly connected to the ends of the connecting member 2. A clamping space is formed between the first clamping member 3 and the second clamping member 4, the size of which can accommodate photovoltaic modules of different sizes. Both the first clamping member 3 and the second clamping member 4 are equipped with telescopic parts. The first clamping member 3 can extend and retract by adjusting its telescopic part, and the second clamping member 4 can also extend and retract by adjusting its telescopic part. The size of the clamping space is adjusted through the extension and retraction movements of the first clamping member 3 and the second clamping member 4.

[0040] In this embodiment, the support platform 1 serves as a supporting surface, providing a stable foundation for the equipment's stability. The connecting component 2 ensures a secure connection between the clamping mechanism and the support platform 1. The clamping mechanism, through the clamping space formed by the first clamping member 3 and the second clamping member 4, achieves stable clamping of the photovoltaic modules. The first clamping member 3 and the second clamping member 4 are respectively located at both ends of the connecting component 2, and their respective telescopic parts allow for adjustment of the clamping space, enabling the handling fixture to adapt to photovoltaic modules of different sizes, thus improving the fixture's versatility and flexibility. In practical applications, workers can quickly adjust the clamping space by adjusting the telescopic parts according to the specific dimensions of the photovoltaic modules, thereby achieving precise clamping and handling of the photovoltaic modules.

[0041] In one embodiment, the telescopic part includes a first telescopic structure and a second telescopic structure, the first telescopic structure being disposed on the first clamping member 3 and the second telescopic structure being disposed on the second clamping member 4.

[0042] Specifically, in this embodiment, the telescopic part includes a first telescopic structure and a second telescopic structure. The first telescopic structure is disposed on the first clamping member 3, and the second telescopic structure is disposed on the second clamping member 4. By designing the telescopic part to include a first telescopic structure and a second telescopic structure, and distributing them on two clamping members respectively, the size of the clamping space can be adjusted more flexibly. This design allows the tooling to adapt to photovoltaic modules of different sizes and specifications, meeting various handling needs without changing the tooling, thereby further improving the versatility and adaptability of the tooling.

[0043] In one embodiment, such as Figure 2As shown, the first telescopic structure includes a first tube 6, a second tube 7, a third tube 8, and a fourth tube 9. The first tube 6 is sleeved outside the second tube 7 and is slidably connected to the second tube 7; the second tube 7 is sleeved outside the third tube 8 and is slidably connected to the third tube 8; the third tube 8 is sleeved outside the fourth tube 9 and is slidably connected to the fourth tube 9.

[0044] Specifically, in this embodiment, the first telescopic structure includes a first tube 6, a second tube 7, a third tube 8, and a fourth tube 9. The first tube 6 is fitted over the second tube 7, forming a nested arrangement and being slidably connected. The second tube 7 is fitted over the third tube 8, forming a nested arrangement and being slidably connected. The third tube 8 is fitted over the fourth tube 9, forming a nested arrangement and being slidably connected. The first tube 6, second tube 7, third tube 8, and fourth tube 9 form part of the clamping space. By adopting this multi-stage nesting and sliding connection design, the first telescopic structure becomes a whole and can be flexibly adjusted within different length ranges. When clamping larger photovoltaic modules, each tube can be extended step by step to expand the clamping space; when clamping smaller photovoltaic modules, each tube can be retracted step by step to reduce the clamping space. This flexible adjustment capability allows the fixture to adapt to photovoltaic modules of different sizes, improving its versatility and practicality. At the same time, the multi-stage telescopic structure design also enhances the stability and load-bearing capacity of the fixture. Because the tubes are connected by sliding joints, they can support each other under stress, forming a stable overall structure. This structure not only effectively prevents the photovoltaic modules from shaking or slipping during handling, but also withstands significant weight and pressure, ensuring the safety and smooth progress of the handling process.

[0045] In one embodiment, such as Figure 2 As shown, the second telescopic structure includes a fifth tube 10, a sixth tube 11, a seventh tube 12, and an eighth tube 13. The fifth tube 10 is sleeved outside the sixth tube 11 and is slidably connected to the sixth tube 11; the sixth tube 11 is sleeved outside the seventh tube 12 and is slidably connected to the seventh tube 12; the seventh tube 12 is sleeved outside the eighth tube 13 and is slidably connected to the eighth tube 13.

[0046] Specifically, in this embodiment, the second telescopic structure includes a fifth tube 10, a sixth tube 11, a seventh tube 12, and an eighth tube 13. The fifth tube 10 is fitted over the sixth tube 11, forming a nested arrangement and being slidably connected. The sixth tube 11 is fitted over the seventh tube 12, forming a nested arrangement and being slidably connected. The seventh tube 12 is fitted over the eighth tube 13, forming a nested arrangement and being slidably connected. By adopting this multi-level nesting and sliding connection design, the flexibility of the tooling and the load-bearing capacity of the structure are further improved. At the same time, the fifth tube 10, the sixth tube 11, the seventh tube 12, and the eighth tube 13 form another part of the clamping space, which, together with the first tube 6, the second tube 7, the third tube 8, and the fourth tube 9, forms a complete clamping space.

[0047] In one embodiment, such as Figure 2 As shown, the connecting member 2 includes a first end and a second end arranged symmetrically, a first tube 6 fixed to the first end, and a fifth tube 10 fixed to the second end.

[0048] Specifically, in this embodiment, the connecting member 2 includes a symmetrically arranged first end and a second end. The end of the first pipe 6 that is not connected to the second pipe 7 is fixedly connected to the first end of the connecting member 2, and the end of the fifth pipe 10 that is not connected to the sixth pipe 11 is fixedly connected to the second end of the connecting member 2. That is, the first pipe 6 and the fifth pipe 10 are arranged opposite each other and are respectively fixed at both ends of the connecting member 2. By fixing the first pipe 6 and the fifth pipe 10 to the symmetrically arranged first and second ends of the connecting member 2, the symmetry of the structure is achieved. This symmetrical design is not only aesthetically pleasing but also helps to maintain the balance and stability of the entire structure. Under stress, the symmetrical structure can distribute the force more evenly, reducing the risk of structural damage caused by force concentration.

[0049] In one embodiment, such as Figure 2 As shown, the first pipe 6, the second pipe 7, the third pipe 8, and the fourth pipe 9 are connected in sequence to form a C-shaped structure, with the first pipe 6 being a straight pipe, the second pipe 7 being a bent pipe, the third pipe 8 being a bent pipe, and the fourth pipe 9 being a straight pipe; the fifth pipe 10, the sixth pipe 11, the seventh pipe 12, and the eighth pipe 13 are connected in sequence to form a C-shaped structure, with the fifth pipe 10 being a straight pipe, the sixth pipe 11 being a bent pipe, the seventh pipe 12 being a bent pipe, and the eighth pipe 13 being a straight pipe; wherein, the opening of the fourth pipe 9 faces the opening of the eighth pipe 13.

[0050] Specifically, in this embodiment, the first pipe 6, the second pipe 7, the third pipe 8, and the fourth pipe 9 are connected sequentially to form a C-shaped structure. The first pipe 6 is a horizontal straight pipe, the second pipe 7 is a bent pipe that is first horizontal and then vertical, the third pipe 8 is a bent pipe that is first vertical and then horizontal, and the fourth pipe 9 is a horizontal straight pipe. Similarly, the fifth pipe 10, the sixth pipe 11, the seventh pipe 12, and the eighth pipe 13 are connected sequentially to form a C-shaped structure. The fifth pipe 10 is a horizontal straight pipe, the sixth pipe 11 is a bent pipe that is first horizontal and then vertical, the seventh pipe 12 is a bent pipe that is first vertical and then horizontal, and the eighth pipe 13 is a horizontal straight pipe. Furthermore, the opening of the fourth pipe 9 faces the opening of the eighth pipe 13, meaning the fourth pipe 9 and the eighth pipe 13 are positioned opposite each other. The C-shaped structure itself possesses a certain degree of stability and strength, capable of resisting external pressure or deformation. The specific C-shape formed by the first pipes 6 to the fourth pipe 9 and the fifth pipes 10 to the eighth pipe 13 enhances the stability of the structure. The second tube (7), the third tube (8), the sixth tube (11), and the seventh tube (12), as bent tubes, can better adapt to various complex scenarios. At the same time, the fourth tube (9) and the eighth tube (13) are arranged opposite each other, which can further enhance the stability of the entire structure, making the entire structure more compact and reducing space waste.

[0051] In one embodiment, the port of the fourth pipe 9 is movably connected to the port of the eighth pipe 13, and the port of the fourth pipe 9 extends into the interior of the port of the eighth pipe 13.

[0052] Specifically, in this embodiment, the opening of the fourth tube 9 can be movably connected to the opening of the eighth tube 13, and the outer diameter of the opening of the fourth tube 9 is smaller than the inner diameter of the opening of the eighth tube 13. In actual operation, it is only necessary to simply insert the fourth tube 9 into the interior of the eighth tube 13, and then control the length of the fourth tube 9 inserted into the interior of the eighth tube 13 to ensure that the object is clamped. In this embodiment, by inserting the fourth tube 9 into the interior of the eighth tube 13, a tighter connection can be formed between the fourth tube 9 and the eighth tube 13, thereby improving the overall stability of the clamping mechanism. At the same time, the insertion of the fourth tube 9 into the interior of the eighth tube 13 can also enhance the rigidity of the clamping mechanism. Through the nested design of multiple tubes, the tubes can support each other to form a more robust structural system. This design is not only simple to operate, but also enables the clamping mechanism to maintain good shape stability and load-bearing capacity when subjected to large pressure or external forces, thus extending the service life of the clamping mechanism.

[0053] In one embodiment, the number of clamping mechanisms is at least two, which are spaced apart along the bottom surface of the support platform 1.

[0054] Specifically, in this embodiment, two or more clamping mechanisms are provided, spaced apart along the bottom surface of the support platform 1. This design allows the support platform 1 to distribute the weight of the supported items more evenly. When the items are long or heavy, a single clamping mechanism may not be able to provide sufficient support, while multiple clamping mechanisms can share the weight, reducing the risk of deformation or damage caused by excessive local stress. This flexibility allows the clamping mechanisms to perform well in various application scenarios.

[0055] In one embodiment, a motor is provided on the bottom surface of the support platform 1, and the motor is connected to the clamping mechanism to drive the clamping mechanism to move.

[0056] Specifically, in this embodiment, the bottom surface of the support platform 1 is provided with a reserved hole for motor installation. The installed motor is connected to the clamping mechanism to drive its movement. The motor-driven clamping mechanism can be easily achieved by replacing existing technical solutions, which will not be elaborated here. By installing a motor on the support platform 1 and connecting it to the clamping mechanism, the clamping mechanism can achieve automated operation through motor drive, eliminating the need for manual control and greatly improving work efficiency. Simultaneously, motor drive ensures the speed and accuracy of the clamping mechanism's movements, reducing errors and delays caused by improper human operation.

[0057] In one embodiment, the support platform 1 further includes a top surface, on which a hoisting hole 5 is provided.

[0058] Specifically, in this embodiment, a lifting hole 5 is provided on the top surface of the support platform 1. During operation, the lifting equipment can directly lift the support platform 1 through the provided hole, making the lifting operation faster and more accurate, reducing adjustment time and labor costs during the lifting process. At the same time, the provision of the lifting hole 5 also helps to improve the safety of the lifting operation. By accurately aligning the lifting hole 5, it can be ensured that the lifting equipment is stably connected to the support platform 1, reducing the risk of photovoltaic modules slipping or being damaged due to unstable lifting.

[0059] In one embodiment, such as Figure 1 , Figure 2 , Figure 3As shown, the supporting platform 1 is a rectangular structure and is positioned above the clamping mechanism. The connecting component 2 is a circular tube and is positioned between the supporting platform 1 and the clamping mechanism. The surface of the circular tube is fixed to the bottom surface of the supporting platform 1 by welding. The clamping mechanism includes a first clamping member 3 and a second clamping member 4, which are respectively fixed to both ends inside the circular tube by welding. There are two clamping mechanisms, respectively positioned at both ends of the length direction of the supporting platform 1. There are also two circular tubes, positioned between each clamping mechanism and the supporting platform 1. During operation, the photovoltaic modules to be hoisted are first placed on a pallet and secured. Then, the first clamping member 3 and the second clamping member 4 are adjusted to maintain their extended state before the photovoltaic modules and the pallet are placed into the clamping space formed by the first clamping member 3 and the second clamping member 4. Next, the first clamping member 3 and the second clamping member 4 are retracted and adjusted to a suitable position until the photovoltaic modules are securely clamped. Subsequently, the fourth tube 9 is inserted into the eighth tube 13 from the bottom of the pallet to a certain extent to complete the assembly. At this point, the photovoltaic module handling fixture has the corresponding load-bearing capacity. Meanwhile, the upper part of the photovoltaic module is supported by the bearing platform 1, while the sides and bottom are stabilized by the pallet and clamping mechanism. The entire module is surrounded by the frame of the handling fixture, and no external force is directly applied to the module, avoiding the risk of bursting the module and damaging the frame during hoisting operations. Finally, after the photovoltaic module handling fixture has secured the module, the fixture and module are hoisted to the designated position through the hoisting port using hoisting equipment, thus completing the entire hoisting operation.

[0060] It should be noted that the pallet mentioned above is a logistics tool, a cargo platform, mainly used for containerizing, stacking, handling and transporting goods.

[0061] This photovoltaic module handling fixture utilizes the telescopic features of the first clamping member 3 and the second clamping member 4 to adjust the clamping space, thereby clamping photovoltaic modules of different sizes. This improves the versatility and flexibility of the fixture. When used for module unloading and transfer, it is further secured to the surrounding area of ​​the module by the carrying platform 1, avoiding the risk of bursting the module and damaging the frame during hoisting operations. This allows it to adapt to various harsh terrain conditions for use in vehicle-mounted hoisting operations.

[0062] The technical scope of this utility model is not limited to the contents of the above description. Those skilled in the art can make various modifications and variations to the above embodiments without departing from the technical concept of this utility model, and all such modifications and variations should fall within the scope of this utility model.

Claims

1. A photovoltaic module handling tool, comprising: The utility model relates to a bearing platform, a connecting component fixed to the bottom surface of the bearing platform, a clamping mechanism including a first clamping piece and a second clamping piece, the first clamping piece and the second clamping piece being respectively arranged at both ends of the connecting component, and a clamping space being formed between the first clamping piece and the second clamping piece, wherein the first clamping piece and the second clamping piece are both provided with an extension part including a plurality of nested pipe structures, and the size of the clamping space is adjusted through the extension part. The extension part includes a first extension structure and a second extension structure, the first extension structure being arranged on the first clamping piece, and the second extension structure being arranged on the second clamping piece. The first extension structure includes a first pipe, a second pipe, a third pipe, and a fourth pipe, the first pipe being nested outside the second pipe and being in sliding connection with the second pipe. The second pipe is nested outside the third pipe and is in sliding connection with the third pipe, and the third pipe is nested outside the fourth pipe and is in sliding connection with the fourth pipe. The second extension structure includes a fifth pipe, a sixth pipe, a seventh pipe, and an eighth pipe, the fifth pipe being nested outside the sixth pipe and being in sliding connection with the sixth pipe, the sixth pipe being nested outside the seventh pipe and being in sliding connection with the seventh pipe, and the seventh pipe being nested outside the eighth pipe and being in sliding connection with the eighth pipe.

2. The photovoltaic module handling tool of claim 1, wherein, The connecting component includes symmetrically arranged first and second ends, the first pipe being fixed to the first end, and the fifth pipe being fixed to the second end.

3. The photovoltaic module handling tool of claim 2, wherein, The first pipe, the second pipe, the third pipe, and the fourth pipe are sequentially connected to form a C-shaped structure, and the first pipe is a straight pipe, the second pipe is a bent pipe, the third pipe is a bent pipe, and the fourth pipe is a straight pipe. The fifth pipe, the sixth pipe, the seventh pipe, and the eighth pipe are sequentially connected to form a C-shaped structure, and the fifth pipe is a straight pipe, the sixth pipe is a bent pipe, the seventh pipe is a bent pipe, and the eighth pipe is a straight pipe.

4. The photovoltaic module handling tool of claim 2, wherein, The pipe opening of the fourth pipe faces the pipe opening of the eighth pipe.

5. The photovoltaic module handling tool of claim 4, wherein, The pipe opening of the fourth pipe is in movable connection with the pipe opening of the eighth pipe, and the pipe opening of the fourth pipe extends into the interior of the pipe opening of the eighth pipe.

6. The photovoltaic module handling tool of claim 5, wherein, The number of clamping mechanisms is at least two, and the clamping mechanisms are arranged at intervals along the bottom surface of the bearing platform. The bottom surface of the bearing platform is provided with a motor connected with the clamping mechanism for driving the clamping mechanism to act.

7. The photovoltaic module handling tool of claim 6, wherein, The bearing platform further includes a top surface provided with a hoisting hole.

8. The photovoltaic module handling tool of claim 1, wherein, ​ 9. The photovoltaic module handling tool of claim 1, wherein, ​ 10. The photovoltaic module handling tool of any of claims 1 to 9, wherein, ​