Anti-slip transport device for roof photovoltaic modules
Patent Information
- Application Number
- CN202522254124.9
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-10-24
- Publication Date
- 2026-08-28
- Estimated Expiration
- 2035-10-24
AI Technical Summary
[0003]传统的光伏板运输方式基本是首先将多块光伏板集中装载在纸箱内然后直接就将纸箱搬运至车厢中放置运输,这个运输方式和包装方式就导致每次运输每批光伏板时就导致其损坏率较高,因为外包装纸箱会在车厢内移动,并且纸箱内的光伏板也会随着车辆的移动而滑动接触,导致每次运输光伏板时的损坏率较高
1.通过设置软固结构通过滑压板带动缓冲条对光伏板进行位置的限定,并通过装载时每个相邻的光伏板间垫有的海绵垫有效防止光伏板会共振滑动碰撞的问题,而通过防滑底和底条能够有效降低外箱会在运输时沿着车厢内滑动的频率,有效降低了光伏板运输时因为滑动而导致损坏的概率。
Smart Images

Figure CN224690767U_ABST
Abstract
Description
Technical Field
[0001] This utility model belongs to the field of photovoltaics, specifically, it relates to an anti-slip transportation device for rooftop photovoltaic modules. Background Technology
[0002] Rooftop photovoltaic panels are a key carrier for the clean energy transition. Combined with technological adaptability, standardized installation, and policy benefits, they can provide long-term economic and environmental benefits for households and businesses.
[0003] Traditional photovoltaic panel transportation methods typically involve first loading multiple photovoltaic panels into a cardboard box, then directly transferring the box to a truck for transport. This transportation and packaging method results in a high damage rate for each batch of photovoltaic panels during transport, as the outer packaging boxes move within the truck and the photovoltaic panels inside the boxes slide and come into contact with each other as the vehicle moves, leading to a high damage rate each time the photovoltaic panels are transported.
[0004] In view of this, this utility model is proposed. Utility Model Content
[0005] To solve the above-mentioned technical problems, the basic concept of the technical solution adopted by this utility model is as follows: A rooftop photovoltaic module anti-slip transportation device, comprising: The outer box is a hollow rectangular box with an open top. The top of the outer box is snapped with a top cover that can cover the top opening of the outer box. A sponge pad is installed at the bottom of the top cover. The flexible and fixed structure is set inside the cavity of the outer casing to fix the photovoltaic panels. The flexible and fixed structure includes: a soft bottom, a sliding pressure plate, a buffer strip, a sliding top, and a sliding groove. The soft bottom is fixedly connected to the bottom of the cavity of the outer casing. The sliding pressure plate is slidably connected to the cavity of the outer casing. The buffer strip is fixedly connected to the front wall of the sliding pressure plate. The sliding top is fixedly connected to the top of the sliding pressure plate. The sliding groove is symmetrically opened on both sides of the top of the outer casing. The buffer strip can hold the photovoltaic panels against the cavity of the outer casing.
[0006] In a preferred embodiment of this utility model, the soft bottom is a long strip with a semi-circular cross-section, and multiple identical soft bottoms are evenly arranged at the bottom of the cavity of the outer box. The sliding plate is a rectangular plate, and the buffer strip is also a long strip with a semi-circular cross-section. The length of the buffer strip is the same as the width of the sliding plate. The same buffer strip is fixedly arranged on the front wall of the cavity of the outer box. The positions of the buffer strip on the wall of the sliding plate and the buffer strip in the cavity of the outer box are symmetrical. Both the soft bottom and the buffer strip are made of sponge material.
[0007] In a preferred embodiment of this utility model, the slide groove has a rectangular opening, the slide top has a rectangular block, and the slide top can slide along the symmetrical slide groove.
[0008] In a preferred embodiment of this utility model, the soft and solid structure further includes screw holes, locking grooves, anti-slip bottoms, and bottom strips. The screw holes are formed through the side wall of the sliding plate, the locking grooves are formed through the side wall of the outer casing, the anti-slip bottoms are fixedly connected to the bottom of the outer casing, and the bottom strips are also fixedly connected to the bottom of the outer casing.
[0009] In a preferred embodiment of this utility model, the screw hole is threaded, and multiple identical locking grooves are evenly opened on the side wall of the outer casing. The screw hole can communicate with the locking groove, and a screw rod is threadedly connected to the locking groove at the screw hole.
[0010] In a preferred embodiment of this utility model, the anti-slip bottom is a plate with an arc-shaped cross section, and multiple identical anti-slip bottoms are evenly arranged on the bottom of the outer box. The bottom strip is a rectangular plate, and each bottom strip is set in the cavity of the anti-slip bottom. The anti-slip bottom and bottom strip are made of rubber.
[0011] In a preferred embodiment of this utility model, the outer casing has an outer frame structure on its wall. The outer frame structure includes an outer plate, a protective frame, and an outer rod. The outer plate is symmetrically fixedly connected to the front and rear walls of the outer casing, the protective frame is fixedly connected to the wall of the outer plate, and the outer rod is fixedly connected to the wall of the protective frame.
[0012] In a preferred embodiment of this utility model, the outer plate is a rectangular block, the protective frame is a rectangular frame, the cavity of the protective frame can be fixedly connected to the outer wall of the symmetrical outer plate, the outer rod is set at the four corners of the protective frame, multiple identical protective frames are evenly arranged on the outer wall of the outer plate, and the same outer rod is set between each adjacent protective frame. The outer rod is cylindrical, and the outer box is located inside the cavity of the protective frame.
[0013] Compared with the prior art, the present invention has the following advantages: 1. By setting up a soft and solid structure, the position of the photovoltaic panels is limited by the sliding pressure plate and the buffer strip. The sponge pads placed between each adjacent photovoltaic panel during loading effectively prevent the photovoltaic panels from resonating, sliding and colliding. The anti-slip bottom and bottom strips can effectively reduce the frequency of the outer box sliding along the inside of the carriage during transportation, which effectively reduces the probability of damage to the photovoltaic panels due to sliding during transportation.
[0014] 2. By setting up an outer frame structure, the outer wall of the outer box is surrounded by a protective frame and outer rods to reduce the impact force on the outer box during collisions, thereby further reducing the damage rate of the photovoltaic panels loaded in the outer box during transportation.
[0015] The specific embodiments of this utility model will be described in further detail below with reference to the accompanying drawings. Attached Figure Description
[0016] In the attached diagram: Figure 1 This is a perspective view of the present utility model; Figure 2 This is a perspective view of the bottom of this utility model; Figure 3 This is a disassembly diagram of the top cover and outer box of this utility model; Figure 4 This is a cross-sectional view of the outer casing of this utility model; Figure 5 This is a perspective view of the sliding pressure plate of this utility model.
[0017] In the diagram: 20. Outer casing; 21. Top cover; 22. External plate; 23. Protective frame; 24. External rod; 30. Soft bottom; 31. Sliding plate; 32. Buffer strip; 33. Sliding top; 34. Screw hole; 35. Sliding groove; 36. Locking groove; 37. Anti-slip bottom; 38. Bottom strip. Detailed Implementation
[0018] To make the objectives, technical solutions, and advantages of the embodiments of this utility model clearer, the technical solutions in the embodiments will be clearly and completely described below with reference to the accompanying drawings. The following embodiments are used to illustrate this utility model.
[0019] like Figure 1 , Figure 2 and Figure 3 As shown, a rooftop photovoltaic module anti-slip transportation device includes: an outer box 20, which is a hollow rectangular box with an open top. A top cover 21 is snapped onto the top of the outer box 20, and the top cover 21 can cover the top opening of the outer box 20. A sponge pad is installed at the bottom of the top cover 21. This is existing technology and will not be described in detail here.
[0020] like Figure 1 , Figure 2 , Figure 3 , Figure 4 and Figure 5 As shown, a soft-fixed structure is installed inside the cavity of the outer casing 20 to fix the photovoltaic panel. The soft-fixed structure includes: a soft bottom 30, a sliding pressure plate 31, a buffer strip 32, a sliding top 33, and a sliding groove 35. The soft bottom 30 is fixedly connected to the bottom of the cavity of the outer casing 20. The sliding pressure plate 31 is slidably connected to the cavity of the outer casing 20. The buffer strip 32 is fixedly connected to the front wall of the sliding pressure plate 31. The sliding top 33 is fixedly connected to the top of the sliding pressure plate 31. The sliding groove 35 is symmetrically opened on both sides of the top of the outer casing 20. The buffer strip 32 can press the photovoltaic panel against the cavity of the outer casing 20.
[0021] like Figure 1 , Figure 2 , Figure 3 , Figure 4 and Figure 5As shown, the soft bottom 30 is a long strip with a semi-circular cross-section. Multiple identical soft bottoms 30 are evenly arranged at the bottom of the cavity of the outer casing 20. The sliding plate 31 is a rectangular plate, and the buffer strip 32 is also a long strip with a semi-circular cross-section. The length of the buffer strip 32 is the same as the width of the sliding plate 31. The same buffer strip 32 is fixedly installed on the front wall of the cavity of the outer casing 20. The positions of the buffer strip 32 on the wall of the sliding plate 31 and the buffer strip 32 inside the cavity of the outer casing 20 are symmetrical. Both the soft bottom 30 and the buffer strip 32 are made of sponge material. The sliding groove 35 has a rectangular opening, and the sliding top 33 is a rectangular block. The sliding top 33 can slide along the symmetrical sliding groove 35. The soft-solid structure also includes screw holes 34, locking grooves 36, anti-slip bottoms 37, and... Bottom strip 38, screw hole 34 through and opened on the side wall of sliding plate 31, locking groove 36 through and opened on the side wall of outer box 20, anti-slip bottom 37 fixedly connected to the bottom of outer box 20, bottom strip 38 also fixedly connected to the bottom of outer box 20, screw hole 34 is threaded hole, multiple identical locking grooves 36 are evenly opened on the side wall of outer box 20, screw hole 34 can communicate with locking groove 36, screw rod is threadedly connected in locking groove 36 at screw hole 34, anti-slip bottom 37 is a plate with arc cross section, multiple identical anti-slip bottoms 37 are evenly arranged on the bottom of outer box 20, bottom strip 38 is a rectangular plate, each bottom strip 38 is set in the cavity of anti-slip bottom 37, anti-slip bottom 37 and bottom strip 38 are made of rubber; In practical use, first remove the top cover 21 from the top of the outer casing 20, and place sponge pads on both sides of the cavity of the outer casing 20. Then, place the photovoltaic panel inside the cavity of the outer casing 20. At this time, the bottom of the photovoltaic panel will contact the top of the soft bottom 30. Then, remove the screw in the locking groove 36. At this time, the position of the sliding plate 31 will be unlocked. Then, the sliding plate 31 moves along the cavity of the outer casing 20 to drive the buffer strip 32 to abut against the wall of the photovoltaic panel. At this time, the photovoltaic panel will be pressed between the buffer strip 32 on the wall of the sliding plate 31 and the buffer strip 32 inside the cavity of the outer casing 20. Then, screw the screw back in from the connection between the screw hole 34 and the locking groove 36. Then, place sponge pads on the side wall of the photovoltaic panel again. The remaining photovoltaic panels are then loaded into the cavity of the outer box 20 in this manner, with a sponge pad placed between each photovoltaic panel. The top cover 21 is then reattached and placed on top of the outer box 20, and the outer walls of the outer box 20 and the top cover 21 are secured with ropes. The outer box 20 carrying the photovoltaic panels is then lifted into the transport vehicle and its anti-slip bottom 37 is kept in contact with the bottom of the vehicle. The bottom strip 38 can be made of rubber with a hardness greater than that of the anti-slip bottom 37. During transport, the photovoltaic panels inside the cavity of the outer box 20 will always be fixed and will not resonate with the shaking of the outer box 20. The anti-slip bottom 37 will also have a large friction to prevent the outer box 20 from moving. In summary, by setting up a soft and solid structure, the position of the photovoltaic panel is limited by the sliding pressure plate 31 driving the buffer strip 32. The sponge pads placed between each adjacent photovoltaic panel during loading effectively prevent the photovoltaic panel from resonating, sliding, and colliding. The anti-slip bottom 37 and bottom strip 38 can effectively reduce the frequency of the outer box 20 sliding along the inside of the carriage during transportation, thus effectively reducing the probability of damage to the photovoltaic panel due to sliding during transportation.
[0022] like Figure 1 and Figure 2 As shown, the outer casing 20 has an outer frame structure on its wall, which includes an outer plate 22, a protective frame 23, and an outer rod 24. The outer plate 22 is symmetrically fixedly connected to the front and rear walls of the outer casing 20. The protective frame 23 is fixedly connected to the wall of the outer plate 22, and the outer rod 24 is fixedly connected to the wall of the protective frame 23. The outer plate 22 is a rectangular block, and the protective frame 23 is a rectangular frame. The cavity of the protective frame 23 can be fixedly connected to the outer wall of the symmetrical outer plate 22. The outer rod 24 is located at the four corners of the protective frame 23. Multiple identical protective frames 23 are evenly arranged on the outer wall of the outer plate 22. The same outer rod 24 is arranged between each adjacent protective frame 23. The outer rod 24 is cylindrical. The outer casing 20 is located inside the cavity of the protective frame 23. In practical use, when the outer box 20 is about to collide with other objects, it will first come into contact with the outer wall of the protective frame 23 and the outer rod 24, and the protective frame 23 and the outer rod 24 will reduce the impact force when the outer box 20 is in a strong collision. In summary, by setting up an outer frame structure and using the protective frame 23 and outer rod 24 to surround the outer wall of the outer box 20, the impact force on the outer box 20 during collision is reduced, further reducing the damage rate of the outer box 20 when transporting photovoltaic panels.
[0023] Working principle: First, remove the top cover 21 from the top of the outer casing 20. Place sponge pads on both sides of the cavity of the outer casing 20. Then, place the photovoltaic panel inside the cavity of the outer casing 20. At this time, the bottom of the photovoltaic panel will contact the top of the soft bottom 30. Then, remove the screw in the locking groove 36. At this time, the position of the sliding plate 31 will be unlocked. Then, the sliding plate 31 moves along the cavity of the outer casing 20, causing the buffer strip 32 to abut against the wall of the photovoltaic panel. At this time, the photovoltaic panel will be abutted against the buffer strip 32 on the wall of the sliding plate 31 and the buffer strip 32 inside the cavity of the outer casing 20. After punching the strip 32, screw the screw back into the connection between the screw hole 34 and the locking groove 36. Then, pad the side wall of the photovoltaic panel with a sponge pad and load the remaining photovoltaic panels into the cavity of the outer box 20 in this way, padding each photovoltaic panel with a sponge pad. Then, re-snap the top cover 21 and place it on top of the outer box 20, and tie the outer walls of the outer box 20 and the top cover 21 with ropes. Then, lift the outer box 20 carrying the photovoltaic panels into the transport vehicle and keep the bottom of the anti-slip bottom 37 in contact with the bottom of the vehicle.
[0024] It is understood that this utility model has been described through some embodiments, and those skilled in the art will recognize that various changes or equivalent substitutions can be made to these features and embodiments without departing from the spirit and scope of this utility model. Furthermore, under the teachings of this utility model, these features and embodiments can be modified to adapt to specific situations and materials without departing from the spirit and scope of this utility model. Therefore, this utility model is not limited to the specific embodiments disclosed herein, and all embodiments falling within the scope of the claims of this application are within the protection scope of this utility model.
Claims
1. A rooftop photovoltaic module anti-slip transportation device, characterized in that, include: Outer box (20), the outer box (20) is a hollow rectangular box with an open top, the top of the outer box (20) is snapped with a top cover (21), the top cover (21) can cover the top opening of the outer box (20), and a sponge pad is installed at the bottom of the top cover (21); The soft-fixed structure is set inside the cavity of the outer casing (20) to fix the photovoltaic panel. The soft-fixed structure includes: soft bottom (30), sliding plate (31), buffer strip (32), sliding top (33) and sliding groove (35). The soft bottom (30) is fixedly connected to the bottom of the cavity of the outer casing (20). The sliding plate (31) is slidably connected to the cavity of the outer casing (20). The buffer strip (32) is fixedly connected to the front wall of the sliding plate (31). The sliding top (33) is fixedly connected to the top of the sliding plate (31). The sliding groove (35) is symmetrically opened on both sides of the top of the outer casing (20). The buffer strip (32) can press the photovoltaic panel against the cavity of the outer casing (20).
2. The anti-slip transportation equipment for rooftop photovoltaic modules according to claim 1, characterized in that, The soft bottom (30) is a long strip with a semi-circular cross section. Multiple identical soft bottoms (30) are evenly arranged at the bottom of the cavity of the outer box (20). The sliding plate (31) is a rectangular plate. The buffer strip (32) is also a long strip with a semi-circular cross section. The length of the buffer strip (32) is the same as the width of the sliding plate (31). The same buffer strip (32) is fixedly arranged on the front wall of the cavity of the outer box (20). The positions of the buffer strip (32) on the wall of the sliding plate (31) and the buffer strip (32) in the cavity of the outer box (20) are symmetrical. The soft bottom (30) and the buffer strip (32) are both made of sponge material.
3. The anti-slip transportation equipment for rooftop photovoltaic modules according to claim 1, characterized in that, The groove (35) has a rectangular opening, and the sliding top (33) is a rectangular block. The sliding top (33) can slide along the symmetrical groove (35).
4. The anti-slip transportation equipment for rooftop photovoltaic modules according to claim 1, characterized in that, The soft and solid structure also includes screw holes (34), locking grooves (36), anti-slip bottoms (37) and bottom strips (38). Screw holes (34) are opened through the side wall of the sliding plate (31), locking grooves (36) are opened through the side wall of the outer casing (20), anti-slip bottoms (37) are fixedly connected to the bottom of the outer casing (20), and bottom strips (38) are also fixedly connected to the bottom of the outer casing (20).
5. The anti-slip transportation equipment for rooftop photovoltaic modules according to claim 4, characterized in that, The screw hole (34) is threaded, and multiple identical locking grooves (36) are evenly opened on the side wall of the outer box (20). The screw hole (34) can communicate with the locking groove (36), and a screw is threadedly connected in the locking groove (36) at the screw hole (34).
6. The anti-slip transportation equipment for rooftop photovoltaic modules according to claim 4, characterized in that, The anti-slip bottom (37) is a plate with an arc-shaped cross section. Multiple identical anti-slip bottoms (37) are evenly arranged at the bottom of the outer box (20). The bottom strip (38) is a rectangular plate. Each bottom strip (38) is set in the cavity of the anti-slip bottom (37). The anti-slip bottom (37) and the bottom strip (38) are made of rubber.
7. The anti-slip transportation equipment for rooftop photovoltaic modules according to claim 1, characterized in that, The outer box (20) has an outer frame structure on its wall. The outer frame structure includes an outer plate (22), a protective frame (23), and an outer rod (24). The outer plate (22) is symmetrically fixedly connected to the front and rear walls of the outer box (20). The protective frame (23) is fixedly connected to the wall of the outer plate (22). The outer rod (24) is fixedly connected to the wall of the protective frame (23).
8. The anti-slip transportation equipment for rooftop photovoltaic modules according to claim 7, characterized in that, The outer plate (22) is a rectangular block, the protective frame (23) is a rectangular frame, the cavity of the protective frame (23) can be fixedly connected to the outer wall of the symmetrical outer plate (22), the outer rod (24) is set at the four corners of the protective frame (23), multiple identical protective frames (23) are evenly arranged on the outer wall of the outer plate (22), and the same outer rod (24) is set between each adjacent protective frame (23). The outer rod (24) is cylindrical, and the outer box (20) is located inside the cavity of the protective frame (23).