Solar panel structure of multi-dot-matrix information equipment
The design of the slide rail and mounting bracket enables the detachable storage of solar panels. Combined with locking and fixing components, it solves the problem of cumbersome disassembly of traditional solar panel mounting brackets, and improves the service life and safety of solar panels.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- OPTRAFFIC CO LTD
- Filing Date
- 2025-04-30
- Publication Date
- 2026-04-24
AI Technical Summary
Traditional portable solar light towers have integrated solar panel mounting frames, which makes disassembly and installation cumbersome and affects the lifespan and safety of the solar panels.
The design incorporates a sliding rail and mounting bracket, allowing the solar panel to slide horizontally into the receiving cavity of the storage box. Locking and fixing components ensure stability and safety, preventing accidental slippage and external damage.
It improves the lifespan and safety of solar panels, reduces the possibility of damage to solar panels from external objects, simplifies the operation process, and enhances the stability and convenience of the device.
Smart Images

Figure CN224164804U_ABST
Abstract
Description
Technical Field
[0001] This application relates to the technical field of transportation equipment, and in particular to a solar panel structure for a multi-array information equipment. Background Technology
[0002] For urban lighting, streetlights are usually installed along the roadsides and connected to the municipal power supply to provide illumination at night. However, in remote areas, the distribution of municipal power supply is uneven compared to that in cities, so streetlights cannot cover the entire remote area. For nighttime lighting in remote areas, solar-powered lighthouses can be used to generate electricity from solar energy to provide nighttime illumination in remote areas.
[0003] Traditional portable solar light towers typically use integrated mounting frames for the solar panels, making disassembly inconvenient. However, to ensure the lifespan of the solar panels, they need to be disassembled when the tower is not in operation or during relocation, and then reinstalled upon arrival at the new work location.
[0004] Regarding the aforementioned technologies, the inventors believe that protecting solar panels by disassembling and reinstalling them is rather cumbersome. Utility Model Content
[0005] In order to reduce the possibility of damage to the solar panel from external objects during idleness or movement and to improve the service life of the solar panel, this application provides a solar panel structure for a multi-array information equipment.
[0006] The solar panel structure for a multi-array information equipment provided in this application adopts the following technical solution:
[0007] A solar panel structure for a multi-array information equipment includes a frame, a slide rail, and a mounting bracket. The frame includes a base and a storage box. The storage box is connected to the base, and one end of the storage box has a receiving cavity. The mounting bracket is slidably embedded in the receiving cavity. The sliding direction of the mounting bracket is horizontal. The mounting bracket is used for mounting solar panels. The slide rail is embedded in the mounting cavity, and the mounting bracket is connected to the slide rail.
[0008] By adopting the above technical solution, and by setting up a slide rail and mounting bracket, the mounting bracket can be horizontally slidably embedded into the receiving cavity of the storage box, thereby realizing the storage of the solar panel in the receiving cavity, reducing the possibility of damage to the solar panel by external objects during non-use or movement, and effectively improving the service life of the solar panel.
[0009] Preferably, there are two slide rails, which are symmetrically distributed along the sliding direction perpendicular to the mounting frame. Each slide rail includes a fixed seat, a sliding seat, a mounting seat, and a ball bearing. The fixed seat is connected to the wall of the mounting cavity, the sliding seat is slidably connected to the fixed seat, and the sliding direction of the sliding seat is parallel to the sliding direction of the mounting frame. The ball bearing is connected to the fixed seat, and the outer wall of the ball bearing is in rolling connection with the outer wall of the sliding seat. The mounting seat is connected to the sliding seat, and both ends of the mounting frame are respectively connected to the two mounting seats.
[0010] By adopting the above technical solution, two slide rails are set and symmetrically distributed along the sliding direction perpendicular to the mounting bracket, which improves the stability of the mounting bracket sliding and reduces the possibility of the mounting bracket tilting or jamming during the sliding process. The ball is connected between the sliding seat and the fixed seat, which changes the sliding friction into rolling friction, reduces the friction between the sliding seat and the fixed seat, and improves the stability and reliability of the device.
[0011] Preferably, the slide rail further includes a locking assembly, which includes a rotating plate, a connecting rope, a positioning post, and a second reset member. The positioning post is slidably connected to the sliding seat, and the sliding direction of the positioning post is perpendicular to the sliding direction of the sliding seat. The fixed seat is provided with a positioning groove for the positioning post to be inserted. The second reset member is connected between the positioning post and the sliding seat, and the second reset member makes the positioning post tend to be inserted into the positioning groove. The rotating plate is rotatably connected to the sliding seat, and the rotating plate is located at one end of the sliding seat near the bottom of the receiving cavity. The rotation axis of the rotating plate is perpendicular to the sliding direction of the positioning post. One end of the connecting rope is connected to the positioning post, and the other end of the connecting rope is connected to the rotating plate.
[0012] By adopting the above technical solution, the positioning post is embedded in the positioning groove under the action of the second reset member, thereby locking the sliding seat and the fixed seat. This prevents the mounting frame from accidentally sliding out when it is not in operation. When it is necessary to move the mounting frame, the positioning post is removed from the positioning groove by rotating the rotating plate and driving the connecting rope, thus releasing the lock between the sliding seat and the fixed seat, improving the safety of the device and extending the service life of the solar panel.
[0013] Preferably, the frame further includes a baffle and a sealing ring. The storage box has a groove at one end near the cavity opening, the groove is connected to the cavity, the baffle is embedded in the groove and covers the cavity opening, the bottom of the groove has a sealing groove, the sealing groove surrounds the cavity opening, the sealing ring is embedded in the sealing groove, and the sealing ring abuts against the side of the baffle near the cavity.
[0014] By adopting the above technical solution, the baffle and sealing ring are designed to prevent external dust and moisture from entering the containment cavity, reduce the possibility of damage to the solar panel by external objects during idleness or movement, and improve the service life of the solar panel.
[0015] Preferably, the frame further includes a fixing component, which includes a locking member, a first connecting seat, and a second connecting seat. The first connecting seat is connected to one end of the storage box near the opening of the receiving cavity. One end of the baffle is rotatably embedded in the groove, and the rotation axis of the baffle is perpendicular to the sliding direction of the mounting frame. The second connecting seat is connected to the side of the baffle away from the receiving cavity. The locking member is slidably connected to the first connecting seat, and the sliding direction of the locking member is perpendicular to the sliding direction of the mounting frame. The second connecting seat is provided with a locking hole for the locking member to be inserted.
[0016] By adopting the above technical solution, the cooperation between the locking component and the first and second connecting seats allows the baffle to be fixed to the storage box after it is rotated and embedded in the groove, by the locking component being inserted into the locking hole. This reduces the possibility of the baffle being accidentally opened due to external factors and improves the safety of the device.
[0017] Preferably, the fixing component further includes a first reset member connected between the locking member and the first connecting seat, the first reset member causing the locking member to tend to be embedded in the locking hole.
[0018] By adopting the above technical solution, the first reset component is connected between the locking component and the first connecting seat, so that after the operator releases the locking component, the locking component can automatically embed into the locking hole, thereby fixing the baffle and the storage box, reducing manual operation steps and improving the ease of use of the device.
[0019] Preferably, the fixing component further includes a limiting pin, which is connected to the locking member. The first connecting seat is provided with a limiting groove for the limiting pin to be inserted. When the limiting pin is inserted into the limiting groove, the locking member disengages from the locking hole.
[0020] By adopting the above technical solution, the limiting pin is embedded in the limiting groove, so that the locking part is in the state of being disengaged from the locking hole, which makes it easy for the operator to loosen the locking part to perform other operations, simplifying the operation process and improving the ease of use of the device.
[0021] Preferably, the frame further includes a first buffer block and a second buffer block, the first buffer block being connected to the bottom of the receiving cavity, and the second buffer block being connected to the side of the baffle near the receiving cavity. The first buffer block and the second buffer block are respectively used for the mounting frame to abut against both ends along the sliding direction of the mounting frame.
[0022] By adopting the above technical solution, the first buffer block and the second buffer block play a buffering role for the mounting frame, reducing the possibility of collision between the mounting frame and the cavity wall or baffle, which could lead to damage to the mounting frame or solar panel, thereby improving the stability and reliability of the device and extending the service life of the device and solar panel.
[0023] Preferably, it also includes a pull ring, which is connected to the end of the mounting bracket away from the bottom of the mounting cavity.
[0024] By adopting the above technical solution, the pull ring design makes it easier for users to pull the mounting bracket, improving the ease of operation of the device, reducing labor costs, and increasing work efficiency.
[0025] In summary, this application includes at least one of the following beneficial technical effects:
[0026] 1. By setting up slide rails and mounting brackets, the mounting brackets can be horizontally slidably embedded into the receiving cavity of the storage box, thereby storing the solar panels in the receiving cavity, reducing the possibility of damage to the solar panels by external objects when not in use or during movement, and effectively improving the service life of the solar panels.
[0027] 2. Under the action of the second reset component, the positioning post is embedded in the positioning groove to lock the sliding seat and the fixed seat, preventing the mounting frame from accidentally sliding out when not in operation. When the mounting frame needs to be moved, the connecting rope is driven by rotating the rotating plate to make the positioning post exit the positioning groove, thereby releasing the lock between the sliding seat and the fixed seat, improving the safety of the device and extending the service life of the solar panel.
[0028] 3. The cooperation between the locking component and the first and second connecting seats allows the baffle to be fixed to the storage box after it is rotated and embedded in the groove. This reduces the possibility of the baffle being accidentally opened due to external factors and improves the safety of the device. The first reset component connects the locking component and the first connecting seat, so that after the operator releases the locking component, the locking component can automatically be embedded in the locking hole to fix the baffle to the storage box. The limit pin is embedded in the limit groove, so that the locking component is in the state of being disengaged from the locking hole, which makes it easy for the operator to release the locking component to perform other operations, simplifying the operation process and improving the ease of use of the device. Attached Figure Description
[0029] Figure 1 This is a schematic diagram of the solar panel structure of a multi-array information equipment.
[0030] Figure 2 It is a cross-sectional view of the storage box, slide rail, mounting bracket and pull ring, mainly showing the receiving cavity and the first connecting block.
[0031] Figure 3 It is a partial sectional view of the storage box, slide rails, and mounting bracket, mainly showing the ball bearings.
[0032] Figure 4 It is a cross-sectional view of the storage box, slide rails, mounting brackets, and pull rings, mainly showing the locking components.
[0033] Figure 5This is a partial structural diagram of the solar panel structure of a multi-array information equipment, mainly showing the fixed components.
[0034] Figure 6 It is a partial sectional view of the storage box, support components, and mounting bracket.
[0035] Figure 7 This is a structural diagram of the supporting components.
[0036] Explanation of reference numerals in the attached figures:
[0037] 1. Frame; 11. Base; 12. Storage box; 121. Receiving cavity; 122. Insert groove; 123. Sealing groove; 124. Mounting cavity; 125. Guide groove; 13. Baffle; 14. Sealing ring; 15. Fixing assembly; 151. Locking element; 1511. Locking pin; 15111. Mounting hole; 1512. Adjusting pin; 152. First connecting seat; 1521. Limiting seat; 15211. Limiting groove; 1522. Mounting groove; 1523. Connecting hole; 153. Second connecting seat; 1531. Locking hole; 154. First reset element; 155. Limiting pin; 16. First buffer block; 17. Second buffer block; 18. Support assembly; 181. Slide plate; 1811. Guide block; 1812. Rotating groove; 182. Rotating plate; 183. First abutment pad; 184. Second abutment pad;
[0038] 2. Slide rail; 21. Fixed seat; 211. Positioning groove; 212. Slide groove; 213. Groove; 22. Sliding seat; 221. Receiving groove; 222. Cavity; 223. Communicating hole; 224. Rotating column; 23. Mounting seat; 231. Connecting plate; 232. Mounting plate; 24. Ball bearing; 25. Locking assembly; 251. Rotating plate; 2511. Connecting block; 252. Connecting rope; 253. Positioning column; 2531. First convex ring; 254. Second reset component; 255. Third reset component; 256. Fixed pulley;
[0039] 3. Mounting bracket;
[0040] 4. Pull ring. Detailed Implementation
[0041] The present application will be further described in detail below with reference to the accompanying drawings.
[0042] Reference Figure 1 This application discloses a solar panel structure for a multi-array information equipment, including a frame 1. The frame 1 includes a base 11 and a storage box 12. The storage box 12 is fixedly connected to the upper end of the base 11, and one end of the storage box 12 is inclined towards the side closer to the base 11 along the width direction of the storage box 12.
[0043] Reference Figure 1 and Figure 2 A solar panel structure for a multi-array information equipment also includes a mounting frame 3 and a pull ring 4. A receiving cavity 121 is provided at one end along the length of the receiving box 12. Two receiving cavities 121 are provided, symmetrically distributed along the length of the receiving box 12. The number of mounting frames 3 and pull rings 4 corresponds to the number of receiving cavities 121. One end of the mounting frame 3 along its width direction is slidably embedded in the receiving cavity 121. The sliding direction of the mounting frame 3 is parallel to the length direction of the receiving box 12, and the length direction of the mounting frame 3 is parallel to the width direction of the receiving box 12. The mounting frame 3 is used for mounting the solar panel. The frame 1 also includes first buffer blocks 16, the number of which corresponds to the number of receiving cavities 121. The first buffer blocks 16 are fixedly connected to the bottom of the receiving cavity 121, and are used for the end of the mounting frame 3 near the bottom of the receiving cavity 121 to abut against. The pull ring 4 is fixedly connected to the end of the mounting frame 3 away from the bottom of the receiving cavity 121.
[0044] Reference Figure 2 and Figure 3 A solar panel structure for a multi-array information equipment also includes slide rails 2. The receiving cavity 121 has mounting cavities 124 on both sides along the width of the storage box 12. The number of slide rails 2 corresponds to the number of mounting cavities 124. Each slide rail 2 includes a fixed seat 21 and a sliding seat 22. The fixed seat 21 is fixedly connected to the side wall of the mounting cavity 124 away from the receiving cavity 121, and its length is parallel to the length of the storage box 12. A groove 212 is provided on the side of the fixed seat 21 away from the receiving cavity 121, and one end of the groove 212 away from the bottom of the receiving cavity 121 passes through the fixed seat 21. The side of the sliding seat 22 away from the receiving cavity 121 is slidably embedded in the groove 212, and the sliding direction of the sliding seat 22 is parallel to the sliding direction of the mounting frame 3. The slide 212 has several grooves 213 on its wall. The grooves 213 are located on the side of the slide 212 away from the bottom of the receiving cavity 121. The grooves 213 are divided into two groups. The two groups of grooves 213 are symmetrically distributed along the thickness direction of the storage box 12. The grooves 213 in the same group are distributed at intervals along the sliding direction of the sliding seat 22.
[0045] Reference Figure 3 and Figure 4 In this embodiment, there are twenty grooves 213, with ten grooves 213 in the same group evenly distributed along the sliding direction of the sliding seat 22. The slide rail 2 also includes ball bearings 24, the number of which is the same as the number of grooves 213 and corresponds one-to-one, and the ball bearings 24 are embedded in the grooves 213. The sliding seat 22 has receiving grooves 221 on both side walls along the thickness direction of the storage box 12, and the ball bearings 24 are in rolling connection with the groove walls of the receiving grooves 221.
[0046] Reference Figure 2 and Figure 3The slide rail 2 also includes a mounting base 23, which includes a connecting plate 231 and a mounting plate 232. The connecting plate 231 is fixedly connected to the side surface of the slide rail 22 away from the fixed base 21, and one end of the mounting plate 232 is fixedly connected to the end of the connecting plate 231 near the base 11. In this embodiment, the connecting plate 231 and the mounting plate 232 are integrally formed. The mounting bracket 3 is fixedly connected to the two mounting plates 232 on the side surface away from the base 11 at both ends along the width direction of the mounting bracket 3.
[0047] Reference Figure 2 and Figure 4The slide rail 2 also includes locking components 25. The number of locking components 25 is the same as the number of receiving cavities 121 and they correspond one-to-one. The locking components 25 are located in the mounting cavity 124 near the base 11. The locking components 25 also include a rotating plate 251, a positioning post 253, a second reset component 254, a third reset component 255, a connecting rope 252, and a fixed pulley 256. The sliding seat 22 has a cavity 222 at one end away from the bottom of the receiving cavity 121. A connecting hole 223 is provided on the cavity wall of the cavity 222 near the base 11. The connecting hole 223 is located on the side of the cavity 222 near the bottom of the receiving cavity 121. The positioning post 253 is coaxially slidably embedded in the connecting hole 223, and the side wall of the positioning post 253 is in contact with the wall of the connecting hole 223. The slide groove 212 has two positioning grooves 211 on its wall, which are spaced apart along the sliding direction of the sliding seat 22. The positioning grooves 211 are used for the positioning post 253 to be inserted. A second reset member 254 is connected between the positioning post 253 and the sliding seat 22, and the second reset member 254 locks the positioning post 253 in a tendency to be inserted into the positioning groove 211. In this embodiment, the second reset member 254 is a spring. A first convex ring 2531 is coaxially fixedly connected to the outer periphery of the end of the positioning post 253 away from the positioning groove 211. One end of the second reset member 254 is connected to the surface of the first convex ring 2531 near the positioning groove 211, and the other end of the second reset member 254 is connected to the cavity wall of the cavity 222 near the positioning groove 211. A rotating post 224 is fixedly connected to the cavity wall of the cavity 222, and the axis of the rotating post 224 is parallel to the width direction of the storage box 12. One end of the rotating plate 251 is rotatably connected to the rotating column 224, and the rotation axis of the rotating plate 251 coincides with the axis of the rotating column 224. The other end of the rotating plate 251 extends out of the cavity 222. A connecting block 2511 is fixedly connected to the side surface of the rotating plate 251 away from the receiving cavity 121. One end of the connecting rope 252 is fixedly connected to the side surface of the connecting block 2511 away from the positioning groove 211. The fixed pulley 256 is rotatably embedded in the cavity 222. The rotation axis of the fixed pulley 256 is parallel to the rotation axis of the rotating plate 251. There are two fixed pulleys 256, which are spaced apart along the sliding direction of the sliding seat 22. The connecting rope 252 is wound around the outer circumference of the two fixed pulleys 256. The other end of the connecting rope 252 is fixedly connected to the end of the positioning column 253 away from the positioning groove 211. The third reset member 255 is connected between the rotating plate 251 and the rotating column 224. The third reset member 255 causes the end of the rotating plate 251 away from the rotating column 224 to tend to move away from the positioning groove 211. In this embodiment, the third reset member 255 is a torsion spring. One end of the third reset member 255 is connected to the cavity wall of the cavity 222, and the other end of the third reset member 255 is connected to one side surface of the rotating plate 251 along the rotation axis of the rotating plate 251.
[0048] The frame 1 also includes a baffle 13, a sealing ring 14, and a second buffer block 17. The number of baffles 13, sealing rings 14, and second buffer blocks 17 is the same as the number of receiving cavities 121 and they correspond one-to-one. The storage box 12 has a groove 122 at one end near the opening of the receiving cavity 121, which communicates with both the receiving cavity 121 and the mounting cavity 124. The baffle 13 is embedded in the groove 122 and covers the openings of the receiving cavity 121 and the mounting cavity 124. The end of the baffle 13 near the base 11 is rotatably embedded in the groove 122, and the axis of rotation of the baffle 13 is parallel to the width direction of the storage box 12. The second buffer block 17 is fixedly connected to the side surface of the baffle 13 near the receiving cavity 121, and the second buffer block 17 is used for the end of the mounting frame 3 away from the bottom of the receiving cavity 121 to abut against. The bottom of the groove 122 is provided with a sealing groove 123, which is annular and surrounds the opening of the receiving cavity 121 and the mounting cavity 124. The sealing ring 14 is embedded in the sealing groove 123 and abuts against the side surface of the baffle 13 near the receiving cavity 121.
[0049] Reference Figure 1 and Figure 5The frame 1 also includes fixing components 15, the number of which is the same as the number of baffles 13 and corresponds one-to-one. Fixing components 15 include a first connecting seat 152, a second connecting seat 153, a locking member 151, a first reset member 154, and a limiting pin 155. The first connecting seat 152 is fixedly connected to one end of the storage box 12 near the recess 122. A mounting groove 1522 is provided on the surface of the first connecting seat 152 away from the storage box 12, and a connecting hole 1523 is provided in the groove wall of the mounting groove 1522, passing through the first connecting seat 152 along the rotation axis of the baffle 13. The second connecting seat 153 is fixedly connected to the surface of the baffle 13 away from the receiving cavity 121, and is located on the side of the baffle 13 away from the base 11. The second connecting seat 153 has a locking hole 1531 at the end away from the rotation axis of the baffle 13. The axis of the locking hole 1531 is parallel to the rotation axis of the baffle 13. In this embodiment, when the baffle 13 is embedded in the groove 122, the axis of the locking hole 1531 coincides with the axis of the connecting hole 1523. The locking member 151 includes a locking pin 1511 and an adjusting pin 1512. One end of the locking pin 1511 passes through the two connecting holes 1523 in sequence and is embedded in the locking hole 1531. The side wall of the locking pin 1511 is in contact with the hole wall of the connecting hole 1523. One end of the adjusting pin 1512 is fixedly connected to the other end of the locking pin 1511, and the axis of the locking hole 1531 is perpendicular to the axis of the adjusting pin 1512. A limiting seat 1521 is provided at the bottom of the mounting groove 1522. A limiting groove 15211 is provided on the side of the limiting seat 1521 away from the second connecting seat 153. The locking pin 1511 is provided with a mounting hole 15111. The axis of the mounting hole 15111 is perpendicular to the axis of the locking pin 1511, and the axis of the mounting hole 15111 is coplanar with the axis of the locking pin 1511. One end of the limiting pin 155 is embedded in the mounting hole 15111, and the other end of the limiting pin 155 is used to be embedded in the limiting groove 15211. In this embodiment, when the limiting pin 155 is embedded in the limiting groove 15211, the locking pin 1511 disengages from the locking hole 1531. A first reset member 154 is connected between the locking pin 1511 and the first connecting seat 152. The first reset member 154 makes the locking pin 1511 tend to embed into the locking hole 1531. In this embodiment, one end of the first reset member 154 is connected to the side wall of the mounting groove 1522 away from the second connecting seat 153, and the other end of the first reset member 154 is connected to the side of the limiting pin 155 away from the second connecting seat 153.
[0050] Reference Figure 1 and Figure 6The frame 1 also includes support components 18, the number of which is the same as the number of receiving cavities 121 and corresponds one-to-one. Each support component 18 includes a sliding plate 181 and a first abutment pad 183. The sliding plate 181 is embedded in the receiving cavity 121, and its sliding direction is parallel to the sliding direction of the mounting frame 3. The sliding plate 181 is located on the side of the mounting frame 3 near the base 11 along the thickness direction of the storage box 12. A guide groove 125 is provided at the bottom of the groove 122. A guide block 1811 is fixedly connected to the side of the sliding plate 181 away from the mounting frame 3, and the guide block 1811 is slidably embedded in the guide groove 125. In this embodiment, the guide block 1811 is a dovetail block. The first abutment pad 183 is fixedly connected to the surface of the sliding plate 181 near the mounting frame 3, and the first buffer pad is used to abut against the surface of the mounting frame 3 near the sliding plate 181.
[0051] Reference Figure 7 The support assembly 18 also includes a rotating plate 182 and a second abutment pad 184. The sliding plate 181 has rotating grooves 1812 on both sides along the width direction of the storage box 12, with the rotating grooves 1812 penetrating the sliding plate 181 on the side near the mounting frame 3. The number of rotating plates 182 and the second abutment pad 184 are the same as the number of rotating grooves 1812 and correspond one-to-one. One end of the rotating plate 182 is rotatably connected to the groove wall of the rotating groove 1812 on the side away from the bottom of the receiving cavity 121. The rotation axis of the rotating plate 182 is parallel to the thickness direction of the storage box 12. The second abutment pad 184 is fixedly connected to the surface of the rotating plate 182 near the mounting frame 3, and the second abutment pad 184 abuts against the surface of the mounting frame 3 near the sliding plate 181.
[0052] The implementation principle of the solar panel structure of a multi-matrix information equipment according to the present application embodiment is as follows: when the solar panel needs to be unfolded, the adjustment rod is pulled, which drives the locking pin 1511 to overcome the elastic force of the first reset member 154 and disengage from the locking hole 1531, thereby releasing the locking of the baffle 13 and the storage box 12, and embedding the limiting pin 155 into the limiting groove 15211 to achieve relative fixation of the locking pin 1511 and the first connecting seat 152.
[0053] Pulling the second connecting seat 153 causes the baffle 13 to rotate, opening the receiving cavity 121. Pulling the sliding plate 181 causes it to extend out of the receiving cavity 121. The user presses the rotating plate 251, causing it to rotate against the elastic force of the third reset member 255, rotating the connecting block 2511. Through the connecting rope 252, the positioning post 253 overcomes the second reset member 254 and disengages from the positioning groove 211, releasing the lock between the sliding seat 22 and the fixed seat 21. Pulling the pull ring 4 causes the mounting bracket 3 to slide out of the receiving cavity 121. Rotating the rotating plate 182 causes the first abutment pad 183 and the second abutment pad 184 to abut against the side surface of the mounting bracket 3 near the base 11.
[0054] The above are all preferred embodiments of this application and are not intended to limit the scope of protection of this application. Therefore, all equivalent changes made in accordance with the structure, shape and principle of this application should be covered within the scope of protection of this application.
Claims
1. A solar panel structure for a multi-array information equipment, characterized in that: The device includes a frame (1), a slide rail (2), and a mounting bracket (3); the frame (1) includes a base (11) and a storage box (12); the storage box (12) is connected to the base (11); one end of the storage box (12) is provided with a receiving cavity (121); the mounting bracket (3) is slidably embedded in the receiving cavity (121); the sliding direction of the mounting bracket (3) is horizontal; the mounting bracket (3) is used for mounting solar panels; the slide rail (2) is embedded in the mounting cavity (124); the mounting bracket (3) is connected to the slide rail (2).
2. The solar panel structure of the multi-array information equipment according to claim 1, characterized in that: Two slide rails (2) are provided; the two slide rails (2) are symmetrically distributed along the sliding direction perpendicular to the mounting frame (3); the slide rail (2) includes a fixed seat (21), a sliding seat (22), a mounting seat (23), and a ball bearing (24); the fixed seat (21) is connected to the cavity wall of the mounting cavity (124); the sliding seat (22) is slidably connected to the fixed seat (21); the sliding direction of the sliding seat (22) is parallel to the sliding direction of the mounting frame (3); the ball bearing (24) is connected to the fixed seat (21); the outer wall of the ball bearing (24) is tactilely connected to the outer wall of the sliding seat (22); the mounting seat (23) is connected to the sliding seat (22); the two ends of the mounting frame (3) are respectively connected to the two mounting seats (23).
3. The solar panel structure of the multi-array information equipment according to claim 2, characterized in that: The slide rail (2) further includes a locking assembly (25); the locking assembly (25) includes a rotating plate (251), a connecting rope (252), a positioning post (253), and a second reset member (254); the positioning post (253) is slidably connected to the sliding seat (22); the sliding direction of the positioning post (253) is perpendicular to the sliding direction of the sliding seat (22); the fixed seat (21) is provided with a positioning groove (211); the positioning groove (211) is used for the positioning post (253) to be inserted; the second reset member (254) is connected to the positioning post (251). 3) and the sliding seat (22); the second reset member (254) makes the positioning post (253) tend to be embedded in the positioning groove (211); the rotating plate (251) is rotatably connected to the sliding seat (22); the rotating plate (251) is located at one end of the sliding seat (22) near the bottom of the receiving cavity (121); the rotation axis of the rotating plate (251) is perpendicular to the sliding direction of the positioning post (253); one end of the connecting rope (252) is connected to the positioning post (253); the other end of the connecting rope (252) is connected to the rotating plate (251).
4. The solar panel structure of the multi-array information equipment according to claim 1, characterized in that: The frame (1) also includes a baffle (13) and a sealing ring (14); the storage box (12) has a groove (122) at one end near the opening of the receiving cavity (121); the groove (122) is connected to the receiving cavity (121); the baffle (13) is embedded in the groove (122) and covers the opening of the receiving cavity (121); the bottom of the groove (122) is provided with a sealing groove (123); the sealing groove (123) is arranged around the opening of the receiving cavity (121); the sealing ring (14) is embedded in the sealing groove (123); the sealing ring (14) abuts against the side of the baffle (13) near the receiving cavity (121).
5. The solar panel structure of the multi-array information equipment according to claim 4, characterized in that: The frame (1) further includes a fixing component (15); the fixing component (15) includes a locking member (151), a first connecting seat (152), and a second connecting seat (153); the first connecting seat (152) is connected to one end of the storage box (12) near the opening of the receiving cavity (121); one end of the baffle (13) is rotatably embedded in the groove (122); the rotation axis of the baffle (13) is perpendicular to the sliding direction of the mounting frame (3); the second connecting seat (153) is connected to the side of the baffle (13) away from the receiving cavity (121); the locking member (151) is slidably connected to the first connecting seat (152); the sliding direction of the locking member (151) is perpendicular to the sliding direction of the mounting frame (3); the second connecting seat (153) is provided with a locking hole (1531); the locking hole (1531) is used for the locking member (151) to be embedded.
6. The solar panel structure of the multi-array information equipment according to claim 5, characterized in that: The fixing component (15) further includes a first reset member (154); the first reset member (154) is connected between the locking member (151) and the first connecting seat (152); the first reset member (154) causes the locking member (151) to tend to be embedded in the locking hole (1531).
7. The solar panel structure of the multi-array information equipment according to claim 6, characterized in that: The fixing component (15) further includes a limiting pin (155); the limiting pin (155) is connected to the locking member (151); the first connecting seat (152) is provided with a limiting groove (15211); the limiting groove (15211) is used for the limiting pin (155) to be inserted; when the limiting pin (155) is inserted into the limiting groove (15211), the locking member (151) is disengaged from the locking hole (1531).
8. The solar panel structure of the multi-array information equipment according to claim 4, characterized in that: The frame (1) further includes a first buffer block (16) and a second buffer block (17); the first buffer block (16) is connected to the bottom of the receiving cavity (121); the second buffer block (17) is connected to the side of the baffle (13) near the receiving cavity (121); the first buffer block (16) and the second buffer block (17) are respectively used for the mounting frame (3) to abut at both ends along the sliding direction of the mounting frame (3).
9. The solar panel structure of the multi-array information equipment according to claim 2, characterized in that: It also includes a pull ring (4); the pull ring (4) is connected to one end of the mounting bracket (3) away from the bottom of the mounting cavity (124).