Solar photovoltaic cell storage and transportation device
By designing auxiliary and limiting structures, the problem of the battery cells being difficult to remove directly was solved, enabling convenient removal and protection during transportation, thus improving work efficiency and safety.
Patent Information
- Application Number
- CN202423256648.3
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-12-29
- Publication Date
- 2025-11-11
- Estimated Expiration
- 2034-12-29
AI Technical Summary
In existing solar photovoltaic cell storage and transportation devices, the gaps between the cells and the inner wall of the storage box are small, making it difficult for personnel to remove them directly. The storage box needs to be flipped over, which is cumbersome and reduces work efficiency.
An auxiliary structure and a limiting structure were designed. The auxiliary structure facilitates the removal of the battery cells through a connecting belt and a moving plate, while the limiting structure prevents the battery cells from being damaged during transportation through a pressing plate and a rotating column.
It improves the efficiency of cell extraction, enhances work efficiency, and protects the cells during transportation, preventing damage.
Smart Images

Figure CN223533972U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of battery cell storage and transportation devices, and more particularly to a solar photovoltaic cell storage and transportation device. Background Technology
[0002] A solar cell storage and transportation device consists of a pulling device, transportation equipment, and storage boxes. It is mainly used for storing and transporting solar photovoltaic cells and is quite common in existing technologies.
[0003] Existing technologies, such as the utility model patent with publication number CN217170714U, disclose a shock-absorbing storage and transportation device for solar photovoltaic cells. This patent uses a cell transport vehicle, with a sliding rail fixedly installed at the top of one side of the transport vehicle. The sliding rail has a sliding groove inside, and a sliding sealed box door is detachably installed inside the sliding groove. A transparent observation window is fixedly installed on the surface of the sliding sealed box door, and a box door handle is fixedly installed at the top of one side of the sliding sealed box door. A box groove is opened at the top of one side of the cell transport vehicle to address the issue that dust may enter the storage device during the transportation of solar photovoltaic cells, causing it to adhere to the surface of the solar photovoltaic cells, affecting the storage quality of the solar photovoltaic cells, and thus reducing the overall handling efficiency. Traditional shock-absorbing storage and transportation devices for solar photovoltaic cells only provide shock absorption inside the transport device to reduce the number of impacts on the solar photovoltaic cells. However, this type of shock absorption is relatively poor and also reduces the service life of the transport device.
[0004] In their daily work, the inventors discovered that during the use of the aforementioned solar photovoltaic cell shock absorption storage and transportation device, the gap between the cells and the inner wall of the storage box was too small for personnel to remove directly by hand. Consequently, personnel had to flip the storage box over to remove the cells from inside. This cumbersome operation resulted in low work efficiency.
[0005] Therefore, it is necessary to provide a new type of solar photovoltaic cell storage and transportation device to solve the above-mentioned technical problems. Utility Model Content
[0006] The purpose of this invention is to address the shortcomings of existing technologies where the small gap between the solar cells and the inner wall of the storage box makes it difficult for personnel to remove them by hand. Consequently, personnel need to flip the storage box to remove the solar cells, which is cumbersome and leads to low work efficiency. Therefore, this invention proposes a solar photovoltaic cell storage and transportation device.
[0007] To solve the above-mentioned technical problems, this utility model provides a solar photovoltaic cell storage and transportation device, comprising: a transportation device, a pulling device installed on one side of the transportation device, several storage boxes installed inside the transportation device, an auxiliary structure provided on the inner wall of each storage box, the auxiliary structure including two auxiliary grooves, two limiting grooves and two connecting grooves, the connecting grooves and the limiting grooves communicating with each other, a stop block slidably connected to the inner wall of the connecting groove, a telescopic rod fixedly connected to the side of each of the two stops that are far apart from each other, the telescopic rod being fixedly connected to the connecting groove, a spring sleeved on the arc surface of the telescopic rod, the two ends of the spring being fixedly connected to the stop block and the connecting groove respectively, a connecting plate slidably connected to the inner wall of the limiting groove, the connecting plate being fixedly connected to the stop block, an installation groove opened on the inner wall of the connecting plate, a connecting block slidably connected to the inner wall of the auxiliary groove, a movable plate fixedly connected to the side of each of the two connecting plates that are close to each other, a connecting belt fixedly connected to the upper surface of the connecting block, the connecting belt being slidably connected to the storage box.
[0008] The aforementioned components achieve the following effect: When personnel remove the battery cells from the storage box, they need to completely remove the storage box from the transport equipment. Due to the small gap between the battery cells and the inner wall of the storage box, it is inconvenient for personnel to remove them directly by hand. Consequently, personnel need to flip the storage box to remove the battery cells. This operation is cumbersome and leads to low work efficiency. This problem can be solved by an auxiliary structure. By setting up an auxiliary structure, personnel can move the connecting belt to move the moving plate upward. The moving plate will drive the battery cells upward until the battery cells are partially moved out of the storage box, thus making it easier for personnel to remove the battery cells and improving work efficiency.
[0009] Preferably, a pull ring is fixedly connected to the side of the connecting strip away from the connecting block, and the pull ring has a circular cross-section.
[0010] The effect achieved by the above components is that the pull ring allows personnel to easily move the connecting belt, thereby improving the ease of operation for personnel.
[0011] Preferably, the inner wall of the auxiliary groove is fixedly connected to two limiting rods, and the limiting rods are slidably connected to the connecting block.
[0012] The effect achieved by the above components is that the limiting rod can limit the connecting block and prevent the connecting block from becoming misaligned during the sliding process on the inner wall of the auxiliary groove.
[0013] Preferably, the stop is a stainless steel block.
[0014] The effect achieved by the above components is that the stainless steel block has high strength and good wear resistance, which can prevent the block from being severely worn during short-term use.
[0015] Preferably, the upper surface of the movable plate is provided with a limiting structure, which includes two positioning blocks, two fixing blocks, and a positioning groove. The two positioning blocks are fixedly connected to the movable plate, and the two fixing blocks are fixedly connected to the movable plate. The positioning groove is opened on the storage box. The inner walls of the two fixing blocks are rotatably connected to lead screws, which are movably connected to the positioning grooves. The arc surfaces at both ends of the lead screw are provided with opposite threads. The arc surfaces of the lead screw are threadedly connected to two extrusion plates. The end of the lead screw away from the fixing blocks is fixedly connected to a rotating column. The side of the two positioning blocks that is close to each other is fixedly connected to a sliding rod, which is slidably connected to the two extrusion plates.
[0016] The effect achieved by the above components is as follows: when personnel need to transport smaller battery cells, the limiting structure allows personnel to first place the battery cells between two extrusion plates. Then, personnel rotate the rotating column to limit the battery cells between the two extrusion plates, thereby preventing the battery cells from moving and colliding with the inner wall of the storage box during transportation, which would cause damage to the battery cells.
[0017] Preferably, the arc surface of the rotating column is provided with a plurality of anti-slip grooves, and the plurality of anti-slip grooves are evenly provided on the arc surface of the rotating column.
[0018] The effect achieved by the above components is that the anti-slip groove can increase the friction between the personnel's hands and the rotating column, which can prevent the personnel from slipping during the rotation of the rotating column.
[0019] Preferably, each of the two extrusion plates is fixedly connected to an extrusion pad on the side closest to each other, and the extrusion pad has a rectangular cross-section.
[0020] The effect achieved by the above components is that the extrusion pad can protect the battery cells and prevent the battery cells from directly contacting the extrusion plate.
[0021] Compared with related technologies, the solar photovoltaic cell storage and transportation device provided by this utility model has the following advantages:
[0022] This utility model provides a solar photovoltaic cell storage and transportation device. By setting an auxiliary structure, when personnel need to take the cells out of the storage box, the auxiliary structure can be used to move the cell body, so that part of the cell body can be moved out of the storage box, thereby improving the work efficiency of personnel.
[0023] By setting up a limiting structure, when personnel need to transport smaller battery cells in smaller quantities, the limiting structure can be used to limit the smaller battery cells, preventing them from moving inside the storage box during transportation, thereby improving the safety of transporting battery cells. Attached Figure Description
[0024] Figure 1 A schematic diagram of the structure of a solar photovoltaic cell storage and transportation device provided by this utility model;
[0025] Figure 2 for Figure 1 The diagram shows a partial structural representation.
[0026] Figure 3 for Figure 1 The diagram shows the structure of the auxiliary structure.
[0027] Figure 4 for Figure 3 A schematic diagram of the enlarged structure at point A is shown.
[0028] Figure 5 for Figure 3 A schematic diagram of the top view of the structure shown;
[0029] Figure 6 for Figure 5 A schematic diagram of the enlarged structure at point B shown;
[0030] Figure 7 for Figure 1 The diagram shows the structure of the limiting structure.
[0031] Figure 8 for Figure 7 The diagram shows the enlarged structure at point C.
[0032] The diagram is labeled as follows: 1. Pulling device; 2. Transport equipment; 3. Auxiliary structure; 301. Auxiliary groove; 302. Connecting block; 303. Limiting rod; 304. Connecting belt; 305. Pull ring; 306. Moving plate; 307. Limiting groove; 308. Connecting groove; 309. Telescopic rod; 310. Spring; 311. Stop block; 312. Connecting plate; 313. Mounting groove; 4. Limiting structure; 41. Positioning groove; 42. Lead screw; 43. Rotating column; 44. Anti-slip groove; 45. Fixing block; 46. Extrusion plate; 47. Extrusion pad; 48. Positioning block; 49. Slide rod; 5. Storage box. Detailed Implementation
[0033] To make the objectives, technical solutions, and advantages of this utility model clearer, the present utility model will be further described in detail below with reference to the accompanying drawings and embodiments. It should be understood that the specific embodiments described herein are merely illustrative of the present utility model and are not intended to limit the present utility model.
[0034] The specific implementation of this utility model will be described in detail below with reference to specific embodiments.
[0035] Please see Figure 1 and Figure 2 The present invention provides a solar photovoltaic cell storage and transportation device, comprising: a transportation device 2, a pulling device 1 installed on one side of the transportation device 2, a plurality of storage boxes 5 installed inside the transportation device 2, an auxiliary structure 3 provided on the inner wall of the storage box 5, and a limiting structure 4 provided on the upper surface of the moving plate 306.
[0036] In the embodiments of this utility model, please refer to Figures 3 to 6The auxiliary structure 3 includes two auxiliary grooves 301, two limiting grooves 307, and two connecting grooves 308. The connecting grooves 308 and the limiting grooves 307 are interconnected. A stop block 311 is slidably connected to the inner wall of the connecting groove 308. A telescopic rod 309 is fixedly connected to the side of the two stop blocks 311 that is far away from each other. The telescopic rod 309 is fixedly connected to the connecting groove 308. A spring 310 is sleeved on the arc surface of the telescopic rod 309. The two ends of the spring 310 are fixedly connected to the stop block 311 and the connecting groove 308, respectively. A connecting plate 312 is slidably connected to the inner wall of the limiting groove 307. The connecting plate 312 is fixedly connected to the stop block 311. An installation groove 313 is opened on the inner wall of the connecting plate 312. A connecting block 302 is slidably connected to the inner wall of the auxiliary groove 301. A moving plate 306 is fixedly connected to the side of the two connecting plates 312 that is close to each other. A connecting strip 304 is fixedly connected to the upper surface of the connecting block 302. The connecting strip 304 is slidably connected to the storage box 5. When personnel remove the battery cells from the storage box 5, they need to completely remove the storage box 5 from the transport device 2. Since the gap between the battery cells and the inner wall of the storage box 5 is small, it is not convenient for personnel to remove them directly by hand. Therefore, personnel need to flip the storage box 5 to remove the battery cells from the inside. This operation is very cumbersome and leads to low work efficiency. At this time, the auxiliary structure 3 can solve this problem. By setting the auxiliary structure 3, personnel can move the connecting belt 304 to move the moving plate 306 upward. The moving plate 306 will drive the battery cells upward until the battery cells are partially moved out of the storage box 5, which makes it easier for personnel to remove the battery cells from the storage box 5 and improves work efficiency. A pull ring 305 is fixedly connected to the side of the connecting belt 304 away from the connecting block 302. The cross-section of the pull ring 305 is circular. The pull ring 305 facilitates the movement of the connecting belt 304, improving operational convenience. Two limiting rods 303 are fixedly connected to the inner wall of the auxiliary groove 301, and these limiting rods 303 are slidably connected to the connecting block 302. The limiting rods 303 limit the connection block 302, preventing misalignment during sliding within the inner wall of the auxiliary groove 301. The stop block 311 is made of stainless steel. Stainless steel has high strength and good wear resistance, preventing severe wear on the stop block 311 during short-term use.
[0037] In the embodiments of this utility model, please refer to Figure 7 and Figure 8The limiting structure 4 includes two positioning blocks 48, two fixing blocks 45, and a positioning groove 41. The two positioning blocks 48 are fixedly connected to the moving plate 306, and the two fixing blocks 45 are fixedly connected to the moving plate 306. The positioning groove 41 is opened on the storage box 5. The inner walls of the two fixing blocks 45 are rotatably connected to a lead screw 42. The lead screw 42 is movably connected to the positioning groove 41. The arc surfaces at both ends of the lead screw 42 are provided with opposite threads. The arc surfaces of the lead screw 42 are threadedly connected to two extrusion plates 46. The end of the lead screw 42 away from the fixing block 45 is fixedly connected to a rotating column 43. The side of the two positioning blocks 48 that is close to each other is fixedly connected to a sliding rod 49. The sliding rod 49 is slidably connected to the two extrusion plates 46. When transporting smaller battery cells, the limiting structure 4 allows personnel to first place the battery cell between two extrusion plates 46. Then, by rotating the rotating column 43, the two extrusion plates 46 limit the battery cell, preventing it from moving and colliding with the inner wall of the storage box 5 during transport, thus preventing damage. The rotating column 43 has several anti-slip grooves 44 evenly distributed on its arc surface. These grooves increase friction between the personnel's hands and the rotating column 43, preventing slippage during rotation. Extrusion pads 47, with rectangular cross-sections, are fixedly connected to the sides of the two extrusion plates 46 closest to each other. These pads protect the battery cell, preventing direct contact between the battery cell and the extrusion plates 46.
[0038] The working principle of the solar photovoltaic cell storage and transportation device provided by this utility model is as follows: When personnel need to remove the cells from the storage box 5, they can first use two pull rings 305 to move the connecting belt 304 upwards. The pull rings 305 facilitate movement of the connecting belt 304, improving operational convenience. Then, the connecting belt 304 moves the connecting block 302 upwards, and the two connecting blocks 302 move the moving plate 306 upwards. The moving block slides on the arc surface of the limiting rod 303, which limits the connecting block 302, preventing misalignment during sliding on the inner wall of the auxiliary groove 301. The rear moving plate 306 drives the battery cell body to move upward until the moving plate 306 abuts against the two stops 311. Then, it drives the two stops 311 to move away from each other. The stops 311 drive the output end of the connecting plate 312 and the telescopic rod 309 to move away from the connecting plate 312. The stops 311 also drive the spring 310 to retract until the moving plate 306 moves completely to the upper surface of the stops 311. At this time, the spring 310 rebounds and moves the stops 311 closer to the connecting plate 312. At this time, the battery cell part is just away from the inside of the storage box 5. The stainless steel block of the stops 311 has high strength and good wear resistance, which can prevent the stops 311 from being severely worn during short-term use.
[0039] In addition, when personnel need to transport smaller battery cells, they can first place the battery cell between two extrusion plates 46, and then rotate the rotating column 43. The anti-slip groove 44 on the arc surface of the rotating column 43 can increase the friction between the personnel's hands and the rotating column 43, preventing slippage during rotation. Then, the rotating column 43 drives the lead screw 42 to rotate, and the lead screw 42 drives the two extrusion plates 46 to move closer to each other. The two extrusion plates 46 respectively drive the extrusion pads 47 to move closer to the battery cell. The two extrusion plates 46 slide on the arc surface of the slide rod 49. The extrusion pads 47 can protect the battery cell and prevent direct contact between the battery cell and the extrusion plates 46 until the two extrusion pads 47 abut against the battery cell body.
[0040] The circuits and controls involved in this utility model are all existing technologies and will not be described in detail here.
[0041] The above description is merely an embodiment of this utility model and does not limit the patent scope of this utility model. Any equivalent structural or procedural transformations made based on the description and drawings of this utility model, or direct or indirect applications in other related technical fields, are similarly included within the patent protection scope of this utility model.
Claims
1. A solar photovoltaic cell storage and transportation device, characterized in that, include: A transport device (2) is provided with a pulling device (1) installed on one side of the transport device (2). Several storage boxes (5) are installed inside the transport device (2). An auxiliary structure (3) is provided on the inner wall of the storage box (5). The auxiliary structure (3) includes two auxiliary grooves (301), two limiting grooves (307) and two connecting grooves (308). The connecting grooves (308) and the limiting grooves (307) are interconnected. A stop block (311) is slidably connected to the inner wall of the connecting groove (308). A telescopic rod (309) is fixedly connected to the side of the two stops (311) that are far apart from each other. The telescopic rod (309) is fixedly connected to the connecting groove (308). 9) The arc surface is fitted with a spring (310), the two ends of the spring (310) are fixedly connected to the stop block (311) and the connecting groove (308) respectively. The inner wall of the limiting groove (307) is slidably connected to the connecting plate (312), the connecting plate (312) is fixedly connected to the stop block (311), the inner wall of the connecting plate (312) is provided with an installation groove (313), the inner wall of the auxiliary groove (301) is slidably connected to the connecting block (302), the two connecting plates (312) are fixedly connected to the side that is close to each other with a moving plate (306), the upper surface of the connecting block (302) is fixedly connected to the connecting strip (304), and the connecting strip (304) is slidably connected to the storage box (5).
2. The solar photovoltaic cell storage and transportation device according to claim 1, characterized in that, A pull ring (305) is fixedly connected to the side of the connecting strip (304) away from the connecting block (302), and the pull ring (305) has a circular cross-section.
3. A solar photovoltaic cell storage and transportation device according to claim 1, characterized in that, The inner wall of the auxiliary groove (301) is fixedly connected to two limiting rods (303), and the limiting rods (303) are slidably connected to the connecting block (302).
4. A solar photovoltaic cell storage and transportation device according to claim 1, characterized in that, The stop block (311) is a stainless steel block.
5. A solar photovoltaic cell storage and transportation device according to claim 1, characterized in that, The upper surface of the movable plate (306) is provided with a limiting structure (4). The limiting structure (4) includes two positioning blocks (48), two fixing blocks (45), and a positioning groove (41). The two positioning blocks (48) are fixedly connected to the movable plate (306), and the two fixing blocks (45) are fixedly connected to the movable plate (306). The positioning groove (41) is opened on the storage box (5). The inner walls of the two fixing blocks (45) are rotatably connected with a lead screw (42). The lead screw (42) is movably connected to the positioning groove (41). The arc surfaces at both ends of the lead screw (42) are provided with opposite threads. The arc surfaces of the lead screw (42) are threadedly connected with two extrusion plates (46). The end of the lead screw (42) away from the fixing block (45) is fixedly connected with a rotating column (43). The side of the two positioning blocks (48) that is close to each other is fixedly connected with a sliding rod (49). The sliding rod (49) is slidably connected to the two extrusion plates (46).
6. A solar photovoltaic cell storage and transportation device according to claim 5, characterized in that, The rotating column (43) has a plurality of anti-slip grooves (44) on its arc surface, and the plurality of anti-slip grooves (44) are evenly distributed on the arc surface of the rotating column (43).
7. A solar photovoltaic cell storage and transportation device according to claim 5, characterized in that, Each of the two extrusion plates (46) is fixedly connected to an extrusion pad (47) on one side close to the other. The cross-section of the extrusion pad (47) is rectangular.
Citation Information
Patent Citations
Damping, storing and transporting device for solar photovoltaic cells
CN217170714U