Photovoltaic station equipment and facility transportation tool

The trolley design, which connects the threaded rod to the support column, combined with the binding strap rewind drum and locking bolts, solves the problem of photovoltaic panels falling during transportation, improving stability and flexibility, and reducing losses and labor intensity.

CN223658216UActive Publication Date: 2025-12-12CHANGZHOU DATANG PHOTOVOLTAICTECHNOLOGY CO LTD
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Patent Information

Application Number
CN202520189774.7
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-02-06
Publication Date
2025-12-12
Estimated Expiration
2035-02-06

AI Technical Summary

Technical Problem

In the construction of photovoltaic power stations, the transportation and installation of photovoltaic modules are inefficient and pose safety hazards. In particular, in complex terrain, conventional transportation methods can easily cause photovoltaic panels to fall off, and existing devices cannot effectively limit the location of goods.

Method used

The trolley design, which connects the threaded rod to the support column, combined with the binding strap rewind drum and the locking bolt, allows for the stable fixing of photovoltaic panels of different sizes by adjusting the movement of the threaded rod and the support column, along with the limiting and clamping of the binding strap.

Benefits of technology

It improves the stability of photovoltaic panels during transportation, prevents them from falling, reduces losses, lowers the labor intensity of workers, and enhances the flexibility and safety of the equipment.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses a photovoltaic station equipment and facility transportation tool, which relates to the technical field of photovoltaic module transportation and comprises a cart, a bearing component, two first limiting components and two second limiting components. The first limiting assembly comprises a first connecting block and a second connecting block, the first connecting block is fixedly connected with the adjacent second supporting column, the second connecting block is fixedly connected with the adjacent first supporting column, the side, away from the second supporting column, of the first connecting block is fixedly connected with a first connecting rod, and the middle of the first connecting rod is rotationally connected with a first binding belt winding drum. According to the photovoltaic panel conveying device, the binding belt on the first binding belt winding drum can be used for limiting the upper portion of a conveyed photovoltaic panel, and then the binding belt on the second binding belt winding drum is used for limiting the side face of the photovoltaic panel, so that in the photovoltaic panel conveying process of the photovoltaic panel conveying device, the side face of the photovoltaic panel is limited; the situation that the photovoltaic panel is prone to falling off due to uneven road surfaces, insufficient skills of operators or unstable cart structure in the transportation process is avoided, and losses caused in the transportation process can be reduced.
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Description

TECHNICAL FIELD

[0001] The utility model relates to photovoltaic module conveying technical field, concretely relates to a photovoltaic power station equipment and facility transport tool. BACKGROUND

[0002] Photovoltaic equipment refers to the equipment that converts solar energy into electric energy by using photovoltaic effect, specifically, the conversion process is realized by solar cells to directly convert sunlight into electric energy, and the photovoltaic equipment is widely used in fields such as family, business and industry, and is a kind of equipment that can realize clean energy utilization, with the promotion of clean energy policy and market demand, the photovoltaic industry has become an internationally competitive industry, and is expected to become a model of high-quality development.

[0003] In the construction of photovoltaic power station, the transportation and installation of photovoltaic modules constitute a crucial link, although in most cases, it is feasible to manually transport photovoltaic modules to the designated position for installation by relying on two or more delivery personnel, but this traditional method faces many challenges, especially in harsh terrain environment of photovoltaic power generation system, the conventional automobile transportation method, such as using a flat car or a truck, shows high efficiency in areas with flat terrain and smooth roads, but its application is limited by road conditions.

[0004] In contrast, the trolley transportation is more flexible in areas with complex terrain and vehicles cannot pass, but the efficiency is relatively low, and there are significant safety hazards, the photovoltaic panel is easy to fall off due to uneven road surface, insufficient skills of the operator or unstable structure of the trolley during transportation, causing damage and even causing personal injury.

[0005] Chinese patent document CN214565447U discloses a logistics transportation trolley with lifting function, which comprises a transportation trolley flat plate, a transportation trolley insulation box, an insulation box fixing device, a transportation trolley push rod, a push rod angle adjusting knob, a push rod handle, a lifting fixed platform, a storage plate lifting device, a trolley storage plate and a limiting plate, the transportation trolley insulation box is arranged on the trolley, the goods that need to be insulated can be put into the transportation trolley insulation box, and the temperature change is prevented from affecting the storage effect; but there are still the following defects in the implementation process:

[0006] Although the device in the above document is provided with a storage plate lifting device, when the goods to be carried are high, the first limiting plate is lowered, the height of the storage plate is raised, and the goods are directly pushed to the platform to be carried, thereby reducing the labor intensity of the workers, but the device in the above document cannot limit the goods when carrying the goods, so that the photovoltaic panel is easy to fall off due to uneven road surface, insufficient skills of the operator or unstable structure of the trolley during transportation. UTILITY MODEL CONTENTS

[0007] The purpose of this utility model is to provide a transportation tool for photovoltaic power station equipment and facilities to solve the problems mentioned in the background art.

[0008] To solve the above-mentioned technical problems, the technical solution adopted by this utility model is as follows:

[0009] A photovoltaic power station equipment and facility transportation tool includes a trolley, a load-bearing component, two first limiting components, and two second limiting components. A support column 1 is symmetrically and fixedly connected to one side of the upper end of the trolley, and a support column 2 is slidably connected to the side of the trolley away from the support column 1. A threaded rod 1 is rotatably connected to the middle of the trolley, and the threaded rod 1 is threadedly connected to the support column 2. The first limiting components include a connecting block 1 and a connecting block 2. The connecting block 1 is fixedly connected to the adjacent support column 2, and the connecting block 2 is fixedly connected to the adjacent support column 1. A connecting rod 1 is fixedly connected to the side of the connecting block 1 away from the support column 2. A binding strap winding drum 1 is rotatably connected to the middle of the connecting rod 1. A bolt is inserted into the side of the connecting block 2 near the connecting block 1. A connecting bolt is fixedly connected to the side of the binding strap on the binding strap winding drum 1 away from the binding strap winding drum 1, and the connecting bolt is slidably connected to the inner cavity of the adjacent connecting block 2. The second limiting components include a drive component and two connecting blocks 3. A connecting rod 2 is rotatably connected to the middle of the two connecting blocks 3, and a binding strap winding drum 2 is fixedly connected to the middle of the connecting rod 2.

[0010] In the above technical solution, threaded rod one is threadedly connected to support column two, and support column two is slidably connected to a trolley. Rotating threaded rod one moves support column two, allowing it to position photovoltaic panels of different sizes. As support column two moves, connecting block one moves along with it, adjusting the position between connecting block one and connecting block two. Once the position of connecting block one is determined, pulling on the binding strap reel causes it to rotate, pushing the connecting bolt into the inner cavity of connecting block two. Then, by inserting a clip... The bolt is used to limit the position of the connecting bolt in the inner cavity of the connecting block two. Then, by rotating the connecting rod two, the binding strap on the binding strap take-up drum two is released from winding. Then, the binding strap on the binding strap take-up drum two is connected to the binding strap on the binding strap take-up drum one by hook. This allows the binding strap on the binding strap take-up drum one to limit the top of the transported photovoltaic panel, and the binding strap on the binding strap take-up drum two to limit the side of the photovoltaic panel. This can prevent the photovoltaic panel from falling during transportation due to uneven road surface, insufficient operator skills, or unstable trolley structure.

[0011] A further improvement of the present invention is that a locking assembly is fixedly connected to the upper part of the connecting rod, the locking assembly includes two connecting plates, the two connecting plates are fixedly connected to the adjacent connecting rod, and a bidirectional screw is rotatably connected to the upper part of the two connecting plates, and a clamping plate is symmetrically threaded onto the bidirectional screw.

[0012] In the above technical solution, the connecting plate is fixedly connected to the connecting rod, thereby supporting and connecting the two connecting plates using the connecting rod. Then, clamping plates are symmetrically threaded onto the bidirectional screw, so that by rotating the bidirectional screw, the two clamping plates can be moved towards the binding strap winding drum, thus clamping and fixing the binding strap winding drum. This prevents the binding strap from being loosened due to stress on the binding strap, which would cause the binding strap on the winding drum to rotate and become unrestrained, resulting in insufficient binding strap constraint and affecting the positional constraint of the photovoltaic panel.

[0013] A further improvement of the present invention is that the drive assembly includes a worm gear, a rotating groove is provided on the side of the worm gear near the connecting block three, a support platform is rotatably connected to the inner cavity of the rotating groove, the side of the support platform away from the worm gear is fixedly connected to the connecting block three, a worm is meshed with the outer surface of the worm gear, the inner cavity of the worm gear is fixedly connected to the connecting rod two, and the worm is rotatably connected to the connecting block three.

[0014] In the above technical solution, the worm and worm wheel are meshed together, so that by rotating the worm, the worm wheel can be driven to rotate. Since the inner cavity of the worm wheel is fixedly connected to the second connecting rod, the rotation of the worm wheel can drive the second connecting rod to rotate. Then, when the second connecting rod rotates, it drives the second binding strap winding drum to rotate together, thereby releasing the winding of the binding strap on the second binding strap winding drum. This makes it easy to connect the binding strap on the second binding strap winding drum to the binding strap on the first binding strap winding drum via hooks.

[0015] A further improvement of this utility model is that a handle is fixedly connected to the side of the bidirectional screw away from the connecting block. The handle is made of rubber material, and several anti-slip grooves are arranged in a ring array on the outer surface of the handle.

[0016] By adopting the above technical solution, the anti-slip groove can increase the friction between the hand and the handle, making it less likely for the hand to slip off the handle when operating in wet, oily, or gloved conditions, thereby improving the stability and safety of operation. Moreover, the anti-slip groove can provide a better grip and stability, so hand fatigue will be relatively reduced when using the handle for long-term or high-intensity operation.

[0017] A further improvement of the present invention is that the bearing component includes a bearing plate one and a bearing plate two, the bearing plate one and the bearing plate two are slidably connected, and both the bearing plate one and the bearing plate two are symmetrically fixedly connected with sliders. The support column two is symmetrically provided with a sliding groove two, and the support column one is provided with a sliding groove one in the middle. The inner cavity of the sliding groove two is slidably connected with the adjacent slider, and the inner cavity of the sliding groove one is slidably connected with the adjacent slider.

[0018] In the above technical solution, the inner cavity of the slide groove is slidably connected to the adjacent slider, so that when the support column moves, the slider moves together, and then the support plate moves together, thereby enabling the photovoltaic panel of the support module to expand or contract, thus improving the flexibility of the support module.

[0019] A further improvement of the present invention is that: both the inner cavity of the second slide groove and the inner cavity of the first slide groove are rotatably connected to a threaded rod two, and the threaded rod two is threadedly connected to the adjacent slider.

[0020] The above technical solution involves threading the threaded rod two to the adjacent slider, which allows the slider to rise when the motor drives the threaded rod two to rotate. With the cooperation of several sliders, the entire supporting component can rise together, and the photovoltaic panel placed on the supporting component can rise together. This allows the position and height of the photovoltaic panel to be adjusted, so that workers do not need to bend over frequently when handling the photovoltaic panel, making it easier for workers to remove the photovoltaic panel from the device and reducing the labor intensity of workers.

[0021] A further improvement of this utility model is that the slider is T-shaped, and both the first and second support plates are made of rubber material.

[0022] By adopting the above technical solution, the contact area of ​​the slider can be increased by setting the slider to a T-shape, thereby providing higher stability during the lifting process, reducing errors or damage caused by shaking or vibration, and also improving the load-bearing capacity of the slider. Both the first and second bearing plates are made of rubber material, which has good elasticity and shock absorption performance, and can effectively absorb and disperse the vibration generated during transportation, reducing the risk of photovoltaic panels being damaged by vibration.

[0023] Due to the adoption of the above technical solution, the technological progress achieved by this utility model compared to the prior art is as follows:

[0024] 1. This utility model provides a transportation tool for photovoltaic power station equipment and facilities. A threaded rod is threadedly connected to a support column, which is then slidably connected to a trolley. Rotating the threaded rod moves the support column, allowing it to position photovoltaic panels of different sizes. As the support column moves, it moves a connecting block, adjusting the position between them. Once the position of the connecting block is determined, pulling the binding strap onto the binding strap reel rotates it, pushing the connecting bolt into the inner cavity of the connecting block. Finally, inserting a locking bolt secures the connection. The position of the bolt within the inner cavity of connecting block two is defined. Then, by rotating connecting rod two, the binding strap on the binding strap take-up drum two is released from winding. Then, the binding strap on binding strap take-up drum two is connected to the binding strap on binding strap take-up drum one through a hook. This allows the binding strap on binding strap take-up drum one to limit the top of the transported photovoltaic panel, and the binding strap on binding strap take-up drum two to limit the side of the photovoltaic panel. This prevents the photovoltaic panel from falling during transportation due to uneven road surfaces, insufficient operator skills, or unstable trolley structure, thereby reducing losses during transportation and improving the stability of the device during transportation.

[0025] 2. This utility model provides a transportation tool for photovoltaic power station equipment and facilities. By rotating the bidirectional screw, two clamping plates are moved towards the direction of the first binding strap winding drum, which can clamp and fix the first binding strap winding drum. This prevents the binding strap winding drum from rotating due to the force of the binding strap, which would cause insufficient binding strap constraint on the first binding strap winding drum and thus affect the position limitation of the photovoltaic panel. This further improves the stability of the device during transportation. Attached Figure Description

[0026] The present invention will be further described below with reference to the accompanying drawings.

[0027] Figure 1 This is a schematic diagram of the overall structure of the present invention. Figure One ;

[0028] Figure 2 This is a schematic diagram of the overall structure of the present invention. Figure Two ;

[0029] Figure 3 This is a schematic diagram of the overall structure of the present invention. Figure Three ;

[0030] Figure 4 This is a schematic diagram of the first limiting component of this utility model;

[0031] Figure 5This is a schematic diagram of the second limiting component of this utility model;

[0032] Figure 6 This is a schematic diagram of the support column of this utility model;

[0033] Figure 7 This is a schematic diagram of the load-bearing component of this utility model;

[0034] Figure 8 This is a schematic diagram of the second support column of this utility model;

[0035] Figure 9 This is a schematic diagram of the locking component of this utility model;

[0036] Figure 10 This is a schematic diagram of the drive component of this utility model.

[0037] In the diagram: 1. Trolley; 2. Support column one; 21. Slide groove one; 3. Support column two; 31. Slide groove two; 4. First limiting assembly; 41. Connecting block one; 42. Connecting rod one; 43. Tie strap winding drum one; 44. Locking assembly; 441. Connecting plate; 442. Clamping plate; 443. Double-acting screw; 444. Handle; 45. Connecting block two; 46. Connecting bolt; 47. Clamping bolt; 5. Second limiting assembly; 51. Connecting rod two; 52. Connecting block three; 53. Drive assembly; 531. Worm gear; 532. Rotating groove; 533. Support platform; 534. Worm; 54. Tie strap winding drum two; 6. Bearing assembly; 61. Bearing plate one; 62. Bearing plate two; 63. Slider; 7. Threaded rod one; 8. Threaded rod two. Detailed Implementation

[0038] The present invention will be further described in detail below with reference to embodiments:

[0039] Example 1

[0040] like Figures 1-10As shown, this utility model provides a transportation tool for photovoltaic power station equipment and facilities, including a trolley 1, a load-bearing component 6, two first limiting components 4, and two second limiting components 5; a support column 1 2 is symmetrically and fixedly connected to one side of the upper end of the trolley 1, and a support column 2 3 is slidably connected to the side of the trolley 1 away from the support column 1 2; a threaded rod 7 is rotatably connected to the middle of the trolley 1, and the threaded rod 7 is threadedly connected to the support column 2 3; the first limiting components 4 include a connecting block 1 41 and a connecting block 2 45, the connecting block 1 41 is fixedly connected to the adjacent support column 2 3, and the connecting block 2 45 is fixedly connected to the adjacent support column 1 2; the connecting block 1 41 is fixedly connected to the adjacent support column 2 3, and the connecting block 2 45 is fixedly connected to the adjacent support column 1 2. A connecting rod 42 is fixedly connected to the side of the support column 3 away from the support column 41. A binding strap winding drum 43 is rotatably connected to the middle of the connecting rod 42. A bolt 47 is inserted into the side of the connecting block 45 near the connecting block 41. A connecting bolt 46 is fixedly connected to the side of the binding strap on the winding drum 43 away from the winding drum 43. The connecting bolt 46 is slidably connected to the inner cavity of the adjacent connecting block 45. The second limiting component 5 includes a driving component 53 and two connecting blocks 52. A connecting rod 51 is rotatably connected to the middle of the two connecting blocks 52. A binding strap winding drum 54 is fixedly connected to the middle of the connecting rod 51.

[0041] In this embodiment, the trolley 1 can transport the photovoltaic panels, and the bearing component 6 can reduce the damage to the photovoltaic panels caused by vibration during transportation. A threaded rod 7 is threadedly connected to a support column 3, and the support column 3 is slidably connected to the trolley 1. Rotating the threaded rod 7 moves the support column 3, allowing it to position photovoltaic panels of different sizes. When the support column 3 moves, it moves the connecting block 41, adjusting the position between the connecting block 41 and the connecting block 45. Once the position of the connecting block 41 is determined, pulling the binding strap on the binding strap winding drum 43 rotates the drum, and then the connecting bolt 4... 6. Slide the connector into the inner cavity of the second connecting block 45. Then, insert the bolt 47 to limit the position of the connecting bolt 46 in the inner cavity of the second connecting block 45. Next, rotate the second connecting rod 51 to release the binding strap on the second binding strap winding drum 54. Then, connect the binding strap on the second binding strap winding drum 54 to the binding strap on the first binding strap winding drum 43 with a hook. This allows the binding strap on the first binding strap winding drum 43 to limit the top of the photovoltaic panel being transported, and the binding strap on the second binding strap winding drum 54 to limit the side of the photovoltaic panel. This prevents the photovoltaic panel from falling during transportation due to uneven road surface, insufficient operator skills, or unstable trolley structure.

[0042] Example 2

[0043] like Figure 6 ,Figure 7 and Figure 8 As shown, based on Embodiment 1, this utility model provides a technical solution: Preferably, the bearing component 6 includes a bearing plate 61 and a bearing plate 62. The bearing plate 61 and the bearing plate 62 are slidably connected. Both the bearing plate 61 and the bearing plate 62 are symmetrically fixedly connected with sliders 63. The support column 3 is symmetrically provided with grooves 31. Each support column 2 is provided with a groove 21 in the middle. The inner cavity of the groove 31 is slidably connected to the adjacent slider 63. The inner cavity of the groove 21 is slidably connected to the adjacent slider 63. The inner cavity of the groove 31 and the inner cavity of the groove 21 are rotatably connected with threaded rods 8. The threaded rods 8 are threadedly connected to the adjacent slider 63. The slider 63 is T-shaped. Both the bearing plate 61 and the bearing plate 62 are made of rubber material.

[0044] In this embodiment, when the photovoltaic panel needs to be moved, firstly, the distance between support column 2 and support column 3 needs to be adjusted according to the size of the photovoltaic panel. By rotating threaded rod 7, support column 2 moves away from support column 2. When support column 2 moves, since the inner cavity of slide groove 31 is slidably connected to slider 63, the bearing plate 2 62 will slide away from bearing plate 1 61. Then, the distance between bearing plate 2 62 and bearing plate 1 61 is adjusted. Next, the controller controls the motor to rotate threaded rod 8. Then, with the cooperation of several threaded rods 2 8 and several sliders 63, the bearing assembly 6 will move upward, making it easier for the staff to move the photovoltaic panel to the top of bearing plate 1 61 and bearing plate 2 62. After the photovoltaic panel is moved, the controller controls the motor to rotate threaded rod 8. Then, with the cooperation of several threaded rods 2 8 and several sliders 63, the bearing assembly 6 will move downward, and the photovoltaic panel placed on the bearing assembly 6 will move downward together.

[0045] Example 3

[0046] like Figure 4 and Figure 9 As shown, based on Embodiment 2, this utility model provides a technical solution: Preferably, a locking assembly 44 is fixedly connected to the upper part of the connecting rod 42. The locking assembly 44 includes two connecting plates 441. The two connecting plates 441 are fixedly connected to the adjacent connecting rod 42. A bidirectional screw 443 is rotatably connected to the upper part of the two connecting plates 441. The bidirectional screw 443 is symmetrically threaded with a clamping plate 442. A handle 444 is fixedly connected to the side of the bidirectional screw 443 away from the connecting block 41. The handle 444 is made of rubber material, and several anti-slip grooves are arranged in an annular array on the outer surface of the handle 444.

[0047] In this embodiment, the worker then applies force to the binding strap on the first binding strap winding drum 43 by holding the connecting bolt 46, causing the first binding strap winding drum 43 to rotate. The connecting bolt 46 is then slid into the inner cavity of the second connecting block 45. Next, the locking bolt 47 is inserted into the side of the second connecting block 45 near the first connecting block 41, using the locking bolt 47 to define the position of the connecting bolt 46 within the inner cavity of the second connecting block 45. Finally, the worker applies force to the bidirectional screw 443 by holding the handle 444, causing the bidirectional screw 443 to rotate. The screw rotates, and then, with the cooperation of the two-way screw 443 and the two clamping plates 442, it will drive the two clamping plates 442 to move towards the direction of the first winding drum 43 of the binding strap. With the cooperation of the two clamping plates 442, the first winding drum 43 of the binding strap can be clamped and fixed, preventing the binding strap from being stretched due to the binding strap, which would cause the binding strap on the first winding drum 43 to rotate, causing the binding strap on the first winding drum 43 to loosen, resulting in insufficient binding force on the binding strap on the first winding drum 43, thus affecting the position limitation of the photovoltaic panel.

[0048] Example 4

[0049] like Figure 5 and Figure 10 As shown, based on Embodiment 3, this utility model provides a technical solution: Preferably, the drive assembly 53 includes a worm gear 531, a rotating groove 532 is provided on the side of the worm gear 531 near the connecting block 3 52, a support platform 533 is rotatably connected to the inner cavity of the rotating groove 532, the side of the support platform 533 away from the worm gear 531 is fixedly connected to the connecting block 3 52, a worm 534 is meshed with the outer surface of the worm gear 531, the inner cavity of the worm gear 531 is fixedly connected to the connecting rod 2 51, and the worm 534 is rotatably connected to the connecting block 3 52.

[0050] In this embodiment, the operator then rotates the worm gear 534. Since the worm gear 534 and the adjacent worm wheel 531 are meshed, the rotation of the worm gear 534 will drive the worm wheel 531 to rotate. Since the inner cavity of the worm wheel 531 is fixedly connected to the connecting rod 2 51, the rotation of the worm wheel 531 will drive the connecting rod 2 51 to rotate together, which will then drive the second binding strap winding drum 2 54 to rotate. Then, the constraint on the binding strap on the second binding strap winding drum 2 54 is released. The operator then moves the binding strap on the second binding strap winding drum 2 54 by holding the hook on it. The hook is then connected to the binding strap on the first binding strap winding drum 43, thereby limiting the side of the photovoltaic. The operator can then push the trolley 1 to move and transport the photovoltaic to the construction site.

[0051] The working principle of the transportation vehicle for the photovoltaic power station equipment and facilities is explained in detail below.

[0052] likeFigures 1-5 As shown, when it is necessary to move the photovoltaic panel, firstly, the distance between support column 2 and support column 3 and support column 2 needs to be adjusted according to the size of the photovoltaic panel. By rotating threaded rod 7, support column 2 is moved away from support column 2. When support column 2 moves, due to the sliding connection between the inner cavity of slide groove 2 31 and slider 63, the bearing plate 2 62 will slide away from bearing plate 1 61. Then, the distance between bearing plate 2 62 and bearing plate 1 61 is adjusted. Next, the controller controls the motor to run, and the motor drives threaded rod 2 8 to rotate. Then, with the cooperation of several threaded rods 2 8 and several sliders 63, the bearing assembly 6 will be moved upward, making it easier for the staff to move the photovoltaic panel to the top of bearing plate 1 61 and bearing plate 2 62. After the photovoltaic panel is moved, the controller controls the motor to run, and the motor drives threaded rod 2 8 to rotate. Then, with the cooperation of several threaded rods 2 8 and several sliders 63, the bearing assembly 6 will be moved downward, and the photovoltaic panel placed on the bearing assembly 6 will be moved downward together.

[0053] Next, the worker applies force to the binding strap on the first binding strap winding drum 43 by holding the connecting bolt 46, causing the drum to rotate. Then, the connecting bolt 46 is slid into the inner cavity of the second connecting block 45. Next, the locking bolt 47 is inserted into the side of the second connecting block 45 near the first connecting block 41, using the locking bolt 47 to fix the position of the connecting bolt 46 within the inner cavity of the second connecting block 45. Then, the worker applies force to the double-acting screw 443 by holding the handle 444, causing the double-acting screw 443 to rotate. With the cooperation of the two-way screw 443 and the two clamping plates 442, the two clamping plates 442 will move towards the direction of the first 43 of the binding strap winding drum. Then, with the cooperation of the two clamping plates 442, the first 43 of the binding strap winding drum can be clamped and fixed to prevent the binding strap winding drum 43 from rotating due to the force of the binding strap, which would cause the binding strap on the first 43 of the binding strap winding drum to loosen, resulting in insufficient binding force on the binding strap winding drum 43, thus affecting the position limitation of the photovoltaic panel.

[0054] Next, the worker operates the worm gear 534 to rotate. Since the worm gear 534 and the adjacent worm wheel 531 are meshed, the rotation of the worm gear 534 will drive the worm wheel 531 to rotate. Since the inner cavity of the worm wheel 531 is fixedly connected to the connecting rod 2 51, the rotation of the worm wheel 531 will drive the connecting rod 2 51 to rotate together. Then, the binding tape take-up drum 2 54 will rotate, and the binding tape on the binding tape take-up drum 2 54 will be released. Then, the worker will move the binding tape on the binding tape take-up drum 2 54 by holding the hook on it. Then, the hook will connect with the binding tape on the binding tape take-up drum 43, thereby restricting the photovoltaic side. Then, the worker can push the trolley 1 to move and transport the photovoltaic to the construction site.

[0055] The present invention has been described in detail above. However, modifications or improvements can be made to it, which will be obvious to those skilled in the art. Therefore, any modifications or improvements that do not depart from the spirit of the present invention are within the protection scope of the present invention.

Claims

1. A transportation tool for photovoltaic power station equipment and facilities, comprising a trolley (1), a load-bearing component (6), two first limiting components (4) and two second limiting components (5); characterized in that: The upper side of the trolley (1) is symmetrically and fixedly connected to a support column 1 (2). The side of the trolley (1) away from the support column 1 (2) is slidably connected to a support column 2 (3). The middle of the trolley (1) is rotatably connected to a threaded rod 1 (7). The threaded rod 1 (7) is threadedly connected to the support column 2 (3). The first limiting component (4) includes a connecting block 1 (41) and a connecting block 2 (45). The connecting block 1 (41) is fixedly connected to the adjacent support column 2 (3). The connecting block 2 (45) is fixedly connected to the adjacent support column 1 (2). The side of the connecting block 1 (41) away from the support column 2 (3) is fixedly connected to a connecting rod 1 (42). A binding strap take-up cylinder 1 (43) is rotatably connected to the middle of the connecting rod 1 (42). A bolt (47) is inserted into the side of the connecting block 2 (45) near the connecting block 1 (41). A connecting bolt (46) is fixedly connected to the side of the binding strap on the binding strap take-up cylinder 1 (43) away from the binding strap take-up cylinder 1 (43). The connecting bolt (46) is slidably connected to the inner cavity of the adjacent connecting block 2 (45). The second limiting component (5) includes a driving component (53) and two connecting blocks 3 (52). A connecting rod 2 (51) is rotatably connected to the middle of the two connecting blocks 3 (52). A binding strap take-up cylinder 2 (54) is fixedly connected to the middle of the connecting rod 2 (51).

2. The photovoltaic power station equipment and facility transportation vehicle according to claim 1, characterized in that: A locking assembly (44) is fixedly connected to the upper part of the first connecting rod (42). The locking assembly (44) includes two connecting plates (441). The two connecting plates (441) are fixedly connected to the adjacent first connecting rod (42). The upper parts of the two connecting plates (441) are rotatably connected to a bidirectional screw (443). The bidirectional screw (443) is symmetrically threaded with a clamping plate (442).

3. A transportation vehicle for photovoltaic power station equipment and facilities according to claim 1, characterized in that: The drive assembly (53) includes a worm gear (531). A rotating groove (532) is provided on the side of the worm gear (531) near the connecting block three (52). A support platform (533) is rotatably connected to the inner cavity of the rotating groove (532). The side of the support platform (533) away from the worm gear (531) is fixedly connected to the connecting block three (52). A worm (534) is meshed with the outer surface of the worm gear (531). The inner cavity of the worm gear (531) is fixedly connected to the connecting rod two (51). The worm (534) is rotatably connected to the connecting block three (52).

4. A transportation vehicle for photovoltaic power station equipment and facilities according to claim 2, characterized in that: The bidirectional screw (443) is fixedly connected to a handle (444) on the side away from the connecting block (41). The handle (444) is made of rubber material, and the outer surface of the handle (444) is provided with a number of anti-slip grooves in an annular array.

5. A transportation vehicle for photovoltaic power station equipment and facilities according to claim 1, characterized in that: The bearing assembly (6) includes a bearing plate one (61) and a bearing plate two (62). The bearing plate one (61) and the bearing plate two (62) are slidably connected. Both the bearing plate one (61) and the bearing plate two (62) are symmetrically fixedly connected with sliders (63). The support column two (3) is symmetrically provided with a sliding groove two (31). The support column one (2) is provided with a sliding groove one (21) in the middle. The inner cavity of the sliding groove two (31) is slidably connected with the adjacent slider (63). The inner cavity of the sliding groove one (21) is slidably connected with the adjacent slider (63).

6. A transportation vehicle for photovoltaic power station equipment and facilities according to claim 5, characterized in that: The inner cavity of the second slide (31) and the inner cavity of the first slide (21) are both rotatably connected to a threaded rod (8), and the threaded rod (8) is threadedly connected to the adjacent slider (63).

7. A transportation vehicle for photovoltaic power station equipment and facilities according to claim 6, characterized in that: The slider (63) is T-shaped, and both the first bearing plate (61) and the second bearing plate (62) are made of rubber material.

Citation Information

Patent Citations

  • Logistics transportation cart with lifting function

    CN214565447U