Photovoltaic tile convenient to assemble

By designing clamping and splicing mechanisms and utilizing components such as fixing bolts, the photovoltaic tile body and splicing shell can be quickly connected and disassembled, solving the problem of low assembly and disassembly efficiency of photovoltaic panels, improving installation efficiency and reducing labor intensity, while protecting the photovoltaic panels.

CN224356051UActive Publication Date: 2026-06-12RUNMA GUANGNENG TECH (JINHUA) CO LTD
View PDF 1 Cites 0 Cited by

Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
RUNMA GUANGNENG TECH (JINHUA) CO LTD
Filing Date
2025-05-29
Publication Date
2026-06-12

AI Technical Summary

Technical Problem

The existing photovoltaic panels are inefficient to assemble and disassemble on rooftops, resulting in high labor intensity and easy cracking of the photovoltaic panel surface.

Method used

By employing a clamping mechanism and a splicing mechanism, and through the cooperation of parts such as fixing bolts, connecting plates, support plates, support springs, clamping plates, and docking blocks, the photovoltaic tile body and the splicing shell can be quickly connected and disassembled.

Benefits of technology

It improves the efficiency of photovoltaic panel installation and removal, reduces the workload of workers, and prevents photovoltaic panels from cracking on the roof.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure CN224356051U_ABST
    Figure CN224356051U_ABST
Patent Text Reader

Abstract

The utility model relates to photovoltaic technical field, concretely relates to a photovoltaic tile convenient to assemble, including photovoltaic tile main part, the outer wall of photovoltaic tile main part is connected with the splicing shell of sleeve joint, the top of photovoltaic tile main part is connected with the clamping mechanism of screw thread, and the inside of the splicing shell is penetrated to photovoltaic tile main part, the clamping mechanism includes the connecting plate, the connecting plate has a plurality of, a plurality of connecting plate sliding connection is in the inner wall of splicing shell, the outer wall both sides of splicing shell are connected with splicing mechanism, and the inside of splicing shell is penetrated to. The utility model discloses through the mutual cooperation between the inside parts of clamping mechanism, the connection fixed of photovoltaic tile main part and splicing shell is completed conveniently, the photovoltaic tile main part is convenient to dismantle and replace on splicing shell, through the mutual cooperation between the inside parts of splicing mechanism, the splicing fixed between multiple splicing shells can be completed, to drive the mutual splicing between multiple photovoltaic tile main parts and lay.
Need to check novelty before this filing date? Find Prior Art

Description

Technical Field

[0001] This utility model relates to the field of photovoltaic technology, specifically to a photovoltaic tile that is easy to assemble. Background Technology

[0002] The photovoltaic effect converts solar energy into electricity, which is highly beneficial to production and daily life. Solar energy is a clean energy source that protects the ecological environment and saves a significant amount of energy sources such as coal. Photovoltaic modules, produced based on the photovoltaic effect, have a wide range of applications. For example, they can be used to make photovoltaic tiles, which can be installed on rooftops to generate electricity independently.

[0003] A search revealed a utility model patent with publication number CN221380858U, which discloses a photovoltaic tile panel that is easy to assemble. The panel includes a plate body with bent edges and mating edges on at least two sides. The bent edges and mating edges have opposite bending directions, and the mating edges can be inserted between the bent edges and the plate body. Two plates are fixed together by locking components after insertion. A guide structure is also provided between the bent edges and the mating edges. This utility model, through its interlocking plate design, enables rapid connection and assembly of multiple plates, ensuring the installation efficiency of the photovoltaic panel. Simultaneously, adjacent plates can be locked together using bolts and nuts, ensuring the connection stability between the plates. The guide mechanism enables precise insertion between plates, preventing misalignment.

[0004] While the aforementioned patent uses bolts and nuts to lock and fix the two panels, ensuring the stability of the connection between them, and the guide mechanism enables precise insertion between the two panels while preventing misalignment, the photovoltaic panels are prone to cracking on their surface when laid on the roof due to long-term exposure to air. This necessitates replacement by workers, and the existing assembly and disassembly of photovoltaic panels is very cumbersome, requiring a significant amount of time and reducing the efficiency of photovoltaic panel assembly while increasing the workload of workers.

[0005] Therefore, it is necessary to propose a photovoltaic tile that is easy to assemble to solve the above problems. Utility Model Content

[0006] The purpose of this invention is to provide a photovoltaic tile that is easy to assemble. Through the cooperation between the internal parts of the clamping mechanism, the photovoltaic tile body is easily connected and fixed to the splicing shell, and the photovoltaic tile body is easy to disassemble and replace on the splicing shell. This solves the problem that the assembly and disassembly of existing photovoltaic panels is very troublesome, and a lot of time is required when assembling and replacing photovoltaic panels, which reduces the efficiency of photovoltaic panel assembly and increases the workload of workers.

[0007] To achieve the above objectives, this utility model provides the following technical solution: a photovoltaic tile that is easy to assemble, comprising a photovoltaic tile body, a splicing shell connected to the outer wall of the photovoltaic tile body, a clamping mechanism threaded to the top of the photovoltaic tile body and extending through the photovoltaic tile body to the interior of the splicing shell, and splicing mechanisms connected to both sides of the outer wall of the splicing shell and extending through the interior of the splicing shell;

[0008] The clamping mechanism includes a connecting plate, and there are multiple connecting plates. The multiple connecting plates are slidably connected to the inner wall of the splicing shell. The multiple connecting plates are mechanically connected to a support plate, which is slidably connected to the inside of the splicing shell. A support spring is connected between the support plate and the splicing shell. A clamping plate is mechanically connected to the side of the support plate and extends through the splicing shell to the top surface of the photovoltaic tile body.

[0009] The splicing mechanism includes a docking block, which is mechanically connected to the left side of the splicing shell and extends to the right side of another splicing shell. A connecting column is slidably connected to the right side of the splicing shell and is located on the side of the support plate away from the clamping plate. A C-shaped support block is mechanically connected to the bottom end of the connecting column and is slidably connected to the inside of the splicing shell. A fixing block is mechanically connected to one side of the bottom end of the C-shaped support block and extends through the splicing shell to the inside of the docking block. A telescopic spring is mechanically connected between the bottom ends of the connecting column and the C-shaped support block and the inner wall of the splicing shell.

[0010] Preferably, the clamping mechanism further includes a fixing bolt, which is threadedly connected to the top of the photovoltaic tile body and extends through the photovoltaic tile body to the interior of the splicing shell, and the connecting plate is threadedly sleeved with the outer wall of the fixing bolt.

[0011] Preferably, the photovoltaic tile body, the splicing shell, and the connecting plate are all provided with threaded holes that match the fixing bolts, and the threaded holes of the connecting plate and the threaded holes on the surface of the splicing shell are staggered. The interior of the splicing shell is provided with a sliding groove that matches the connecting plate.

[0012] Preferably, the splicing shell has a support groove inside that matches the support plate, and the splicing shell has a telescopic groove inside that matches the clamping plate. A clamping groove matching the photovoltaic tile body is formed between the clamping plate and the inner wall of the splicing shell.

[0013] Preferably, the right side of the splicing shell is provided with a mating groove that matches the mating block, and the surface of the mating block is machined with friction protrusions, and the bottom end of the mating block is provided with a fixing groove that matches the fixing block.

[0014] Preferably, the top of the connecting column and the contact surface of the support plate are both machined into a conical surface, the interior of the splicing shell is provided with a moving groove that matches the connecting column, the C-shaped support block and the fixing block, and the inner wall of the splicing shell is provided with a placement groove that matches the photovoltaic tile body.

[0015] The technical effects and advantages provided by this utility model in the above technical solution are as follows:

[0016] 1. By laying multiple splicing shells on the roof, when the multiple splicing shells are close to each other, the mating block penetrates into the interior of another splicing shell, so that the multiple splicing shells are spliced ​​together by the mating block. The photovoltaic tile body is placed on the splicing shell. By rotating the fixing bolt, the fixing bolt passes through the photovoltaic tile body, the splicing shell and the connecting plate through the thread, and squeezes the connecting plate. The force on the connecting plate causes the support plate to squeeze the support spring to contract and move. The movement of the support plate causes the clamping plate to move and move, so that the clamping plate is removed from the interior of the splicing shell. This completes the clamping and fixing of the photovoltaic tile body on the splicing shell. At the same time, when the photovoltaic tile body needs to be replaced, the connection between the photovoltaic tile body and the splicing shell can be released simply by rotating the fixing bolt to remove it from the interior of the splicing shell.

[0017] 2. By fixing bolts through the photovoltaic tile body to the inside of the splicing shell, and when multiple splicing shells are close to each other, the mating block penetrates into the inside of another splicing shell, completing the mutual cooperation between multiple splicing shells. The support plate moves to release the pressure on the connecting column, causing the connecting column to drive the C-shaped support block to release the pressure on the telescopic spring, causing the telescopic spring to reset and push the C-shaped support block to move. The movement of the C-shaped support block causes the fixing block to move. The fixing block moves out from the inside of the splicing shell and penetrates the splicing shell to the inside of the mating block, thus completing the connection and fixation between multiple splicing shells. Attached Figure Description

[0018] To more clearly illustrate the technical solutions in the embodiments of this application or the prior art, the drawings used in the embodiments will be briefly introduced below. Obviously, the drawings described below are only some embodiments recorded in this invention. For those skilled in the art, other drawings can be obtained based on these drawings.

[0019] Figure 1 This is a schematic diagram of the overall structure of this utility model;

[0020] Figure 2This is an exploded structural diagram of the photovoltaic tile body of this utility model;

[0021] Figure 3 This is a cross-sectional structural diagram of the spliced ​​outer shell of this utility model;

[0022] Figure 4 For the present utility model Figure 3 Enlarged structural diagram at point A in the middle.

[0023] Explanation of reference numerals in the attached figures:

[0024] 1. Photovoltaic tile body; 101. Splicing shell; 2. Clamping mechanism; 201. Fixing bolt; 202. Connecting plate; 203. Support plate; 204. Support spring; 205. Clamping plate; 3. Splicing mechanism; 301. Connecting block; 302. Connecting column; 303. C-shaped support block; 304. Fixing block; 305. Telescopic spring. Detailed Implementation

[0025] To enable those skilled in the art to better understand the technical solution of this utility model, the present utility model will be further described in detail below with reference to the accompanying drawings.

[0026] This utility model provides, for example Figure 1-4 The photovoltaic tile shown includes a photovoltaic tile body 1, a splicing shell 101 connected to the outer wall of the photovoltaic tile body 1, a clamping mechanism 2 threadedly connected to the top of the photovoltaic tile body 1 and extending through the photovoltaic tile body 1 to the interior of the splicing shell 101, and splicing mechanisms 3 connected to both sides of the outer wall of the splicing shell 101 and extending through the interior of the splicing shell 101.

[0027] The clamping mechanism 2 includes a connecting plate 202, and there are multiple connecting plates 202. The multiple connecting plates 202 are slidably connected to the inner wall of the splicing shell 101. The multiple connecting plates 202 are mechanically connected to a support plate 203, which is slidably connected to the inside of the splicing shell 101. A support spring 204 is connected between the support plate 203 and the splicing shell 101. A clamping plate 205 is mechanically connected to the side of the support plate 203 and extends through the splicing shell 101 to the top surface of the photovoltaic tile body 1.

[0028] The splicing mechanism 3 includes a docking block 301, which is mechanically connected to the left side of the splicing shell 101 and extends to the right side of another splicing shell 101. A connecting post 302 is slidably connected to the right side of the splicing shell 101 and is located on the side of the support plate 203 away from the clamping plate 205. A C-shaped support block 303 is mechanically connected to the bottom end of the connecting post 302 and is slidably connected to the inside of the splicing shell 101. A fixing block 304 is mechanically connected to one side of the bottom end of the C-shaped support block 303 and extends through the splicing shell 101 to the inside of the docking block 301. A telescopic spring 305 is mechanically connected between the bottom ends of the connecting post 302 and the C-shaped support block 303 and the inner wall of the splicing shell 101.

[0029] The mutual cooperation between the internal parts of the clamping mechanism 2 facilitates the connection and fixation between the photovoltaic tile body 1 and the splicing shell 101, and facilitates the disassembly and replacement of the photovoltaic tile body 1 on the splicing shell 101. Through the mutual cooperation between the internal parts of the splicing mechanism 3, the splicing and fixing between multiple splicing shells 101 can be completed, thereby driving the splicing and laying between multiple photovoltaic tile bodies 1.

[0030] Refer to the instruction manual appendix Figure 1-4 The clamping mechanism 2 also includes a fixing bolt 201, which is threaded to the top of the photovoltaic tile body 1 and extends through the photovoltaic tile body 1 to the interior of the splicing shell 101. The connecting plate 202 is threaded to the outer wall of the fixing bolt 201. Through the mutual cooperation between the internal parts of the clamping mechanism 2, the photovoltaic tile body 1 can be installed and fixed on the splicing shell 101.

[0031] Refer to the instruction manual appendix Figure 1-4 The photovoltaic tile body 1, the splicing shell 101, and the connecting plate 202 all have threaded holes that match the fixing bolts 201 on their surfaces. The threaded holes on the connecting plate 202 and the threaded holes on the surface of the splicing shell 101 are staggered. The interior of the splicing shell 101 has a sliding groove that matches the connecting plate 202. The fixing bolts 201 can pass through the photovoltaic tile body 1, the splicing shell 101, and the connecting plate 202 to contact the connecting plate 202 and squeeze the connecting plate 202 to slide inside the splicing shell 101.

[0032] Refer to the instruction manual appendix Figure 1-4The splicing shell 101 has a support groove inside that matches the support plate 203, and a telescopic groove inside that matches the clamping plate 205. The clamping plate 205 and the inner wall of the splicing shell 101 form a clamping groove that matches the photovoltaic tile body 1. The telescopic groove inside the splicing shell 101 that matches the clamping plate 205 and the clamping groove that matches the photovoltaic tile body 1 formed between the clamping plate 205 and the inner wall of the splicing shell 101 make it easy for the clamping plate 205 to be moved out of the splicing shell 101, thus completing the clamping and fixing of the photovoltaic tile body 1 on the splicing shell 101.

[0033] Refer to the instruction manual appendix Figure 1-4 The right side of the splicing shell 101 is provided with a mating groove that matches the mating block 301, and the surface of the mating block 301 is machined with friction protrusions. The bottom end of the mating block 301 is provided with a fixing groove that matches the fixing block 304. The right side of the splicing shell 101 is provided with a mating groove that matches the mating block 301, and the surface of the mating block 301 is machined with friction protrusions, which facilitates the splicing of multiple splicing shells 101 through the mating block 301.

[0034] Refer to the instruction manual appendix Figure 1-4 The top of the connecting column 302 and the contact surface of the support plate 203 are both machined into a conical surface. The interior of the splicing shell 101 is provided with a moving groove that matches the connecting column 302, the C-shaped support block 303, and the fixing block 304. The inner wall of the splicing shell 101 is provided with a placement groove that matches the photovoltaic tile body 1. The fact that the top of the connecting column 302 and the contact surface of the support plate 203 are both machined into a conical surface facilitates the contact and compression between the support plate 203 and the connecting column 302.

[0035] The working principle of this practical application is as follows:

[0036] Refer to the instruction manual appendix Figure 1-4By laying multiple splicing shells 101 on the roof, when the multiple splicing shells 101 are close to each other, the mating block 301 penetrates into the interior of another splicing shell 101, so that the multiple splicing shells 101 are spliced ​​together by the mating block 301. The photovoltaic tile body 1 is placed on the splicing shell 101. By rotating the fixing bolt 201, the fixing bolt 201 is made to penetrate the photovoltaic tile body 1, the splicing shell 101 and the connecting plate 202 through the thread, and squeeze the connecting plate 202. The connecting plate 202 is subjected to force, which drives the support plate 203 to compress the support spring 204 and move. The movement of the support plate 203 drives the clamping plate 205 to move, so that the clamping plate 205 is removed from the interior of the splicing shell 101. The photovoltaic tile body 1 on the splicing shell 101 can be clamped and fixed. At the same time, when the photovoltaic tile body 1 needs to be replaced, the connection between the photovoltaic tile body 1 and the splicing shell 101 can be released by simply rotating the fixing bolt 201 to remove it from the interior of the splicing shell 101.

[0037] Refer to the instruction manual appendix Figure 1-4 The fixing bolts 201 penetrate the photovoltaic tile body 1 to the interior of the splicing shell 101. When multiple splicing shells 101 are close to each other, the mating block 301 penetrates into the interior of another splicing shell 101, completing the mutual cooperation between multiple splicing shells 101. The support plate 203 moves to release the pressure on the connecting column 302, causing the connecting column 302 to drive the C-shaped support block 303 to release the pressure on the telescopic spring 305. The telescopic spring 305 resets and pushes the C-shaped support block 303 to move. The movement of the C-shaped support block 303 drives the fixing block 304 to move. The fixing block 304 moves out of the interior of the splicing shell 101 and penetrates the splicing shell 101 to the interior of the mating block 301, thus completing the connection and fixation between multiple splicing shells 101.

[0038] The foregoing description only illustrates certain exemplary embodiments of the present invention. Undoubtedly, those skilled in the art can modify the described embodiments in various ways without departing from the spirit and scope of the present invention. Therefore, the above drawings and descriptions are illustrative in nature and should not be construed as limiting the scope of protection of the claims of the present invention.

Claims

1. A photovoltaic tile that is easy to assemble, characterized in that: The device includes a photovoltaic tile body (1), and a splicing shell (101) is sleeved on the outer wall of the photovoltaic tile body (1). A clamping mechanism (2) is threaded on the top of the photovoltaic tile body (1) and extends through the photovoltaic tile body (1) to the interior of the splicing shell (101). Splicing mechanisms (3) are connected to both sides of the outer wall of the splicing shell (101) and extend through the interior of the splicing shell (101). The clamping mechanism (2) includes a connecting plate (202), there are multiple connecting plates (202), the multiple connecting plates (202) are slidably connected to the inner wall of the splicing shell (101), the multiple connecting plates (202) are mechanically connected to a support plate (203), and are slidably connected to the inside of the splicing shell (101), a support spring (204) is connected between the support plate (203) and the splicing shell (101), and a clamping plate (205) is mechanically connected to the side of the support plate (203), and extends through the splicing shell (101) to the top surface of the photovoltaic tile body (1); The splicing mechanism (3) includes a docking block (301), which is mechanically connected to the left side of the splicing shell (101) and extends through to the right side of another splicing shell (101). A connecting column (302) is slidably connected to the right side of the splicing shell (101) and is located on the side of the support plate (203) away from the clamping plate (205). A C-shaped support block (303) is mechanically connected to the bottom end of the connecting column (302) and is slidably connected to the inside of the splicing shell (101). A fixing block (304) is mechanically connected to one side of the bottom end of the C-shaped support block (303) and extends through the splicing shell (101) to the inside of the docking block (301). A telescopic spring (305) is mechanically connected between the bottom ends of the connecting column (302) and the C-shaped support block (303) and the inner wall of the splicing shell (101).

2. The photovoltaic tile that is easy to assemble according to claim 1, characterized in that: The clamping mechanism (2) also includes a fixing bolt (201), which is threaded to the top of the photovoltaic tile body (1) and extends through the photovoltaic tile body (1) to the interior of the splicing shell (101). The connecting plate (202) is threaded to the outer wall of the fixing bolt (201).

3. The photovoltaic tile that is easy to assemble according to claim 2, characterized in that: The photovoltaic tile body (1), the splicing shell (101), and the connecting plate (202) are all provided with threaded holes that match the fixing bolts (201) on their surfaces. The threaded holes of the connecting plate (202) and the threaded holes on the surface of the splicing shell (101) are staggered. The interior of the splicing shell (101) is provided with a sliding groove that matches the connecting plate (202).

4. The photovoltaic tile that is easy to assemble according to claim 1, characterized in that: The splicing shell (101) has a support groove inside that matches the support plate (203), and the splicing shell (101) has a telescopic groove inside that matches the clamping plate (205). A clamping groove matching the photovoltaic tile body (1) is formed between the clamping plate (205) and the inner wall of the splicing shell (101).

5. A photovoltaic tile that is easy to assemble according to claim 1, characterized in that: The right side of the splicing shell (101) is provided with a mating groove that matches the mating block (301), and the surface of the mating block (301) is machined with friction protrusions. The bottom end of the mating block (301) is provided with a fixing groove that matches the fixing block (304).

6. The photovoltaic tile that is easy to assemble according to claim 1, characterized in that: The top of the connecting column (302) and the contact surface of the support plate (203) are both machined into a conical surface. The interior of the splicing shell (101) is provided with a moving groove that matches the connecting column (302), the C-shaped support block (303), and the fixing block (304). The inner wall of the splicing shell (101) is provided with a placement groove that matches the photovoltaic tile body (1).

Citation Information

Patent Citations

  • Photovoltaic tile panel convenient to assemble

    CN221380858U