Novel photovoltaic flat tile frame
By designing a novel adjustment mechanism for the photovoltaic planar tile frame, the problem of the photovoltaic frame being unable to be adjusted was solved, enabling precise installation of photovoltaic modules of different sizes and improving stability and adaptability.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- XUANCHENG CONCH CONSTR PHOTOVOLTAIC TECH CO LTD
- Filing Date
- 2025-07-17
- Publication Date
- 2026-07-21
AI Technical Summary
Existing photovoltaic frames cannot be accurately adjusted according to the width and length of the photovoltaic panels, affecting installation stability and adaptability, and consequently impacting the overall performance of the photovoltaic modules.
A novel photovoltaic planar tile frame is designed, employing an adjustment mechanism including a bidirectional screw and a limiting component. The length and width of the frame are adjusted through the adjustment mechanism, and the installation accuracy and stability are improved by combining a support plate and anti-slip strips.
It enables precise adjustment based on the different sizes of photovoltaic modules, improves the adaptability of the frame and the installation accuracy, and enhances the stability and resistance to extreme environments of photovoltaic modules.
Smart Images

Figure CN224538140U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of photovoltaic module technology, specifically to a novel photovoltaic planar tile frame. Background Technology
[0002] With the diversification of photovoltaic application scenarios and the continuous advancement of technology, photovoltaic frame technology is rapidly advancing towards lightweight, high strength, full-scenario adaptability and sustainable development.
[0003] The new frame uses high-strength materials, such as composite materials or new alloy steel, which significantly improves strength compared to traditional aluminum alloy frames. For example, the double-beam alloy steel frame with a core material can reach a strength of 800 MPa, more than three times that of traditional aluminum alloys. This high-strength design is better able to withstand extreme environments, such as strong winds and hail.
[0004] Existing photovoltaic (PV) frames use four L-shaped frames to support and restrict the PV panels, facilitating installation. However, the length and width of the frames are relatively fixed, making it difficult to accurately adjust them according to the width and length of the PV panels. This can affect the installation stability of the PV panels, the adaptability and installation accuracy of the frames, and consequently, the overall performance of the PV modules. Utility Model Content
[0005] The purpose of this invention is to provide a high-precision alloy chip resistor to solve the problem mentioned in the background art, which is inconvenient to accurately adjust according to the width and length of the photovoltaic panel during use, easily affecting the installation stability of the photovoltaic panel, the adaptability and installation accuracy of the frame, and thus easily affecting the overall performance of the photovoltaic module.
[0006] The objective of this utility model can be achieved through the following technical solutions:
[0007] A novel photovoltaic planar tile frame includes a long frame body, which consists of two symmetrically arranged long frame bodies. Short frame bodies are placed at both ends of each long frame body. An adjustment mechanism is provided between the long frame body and the short frame bodies to adjust the length and width of the frame.
[0008] The adjustment mechanism includes two bidirectional screws disposed on the short frame and at the lower end of the long frame body. The two bidirectional screws are arranged in a cross shape. A fixing plate is fixed at the lower end of the long frame body. The bidirectional screws pass through the fixing plate and the short frame. The short frame and the fixing plate are threadedly connected to the bidirectional screws. The short frame and the fixing plate are symmetrically arranged on the bidirectional screws. Placement slots are provided on both the short frame and the long frame body. A handle is fixed at one end of the bidirectional screw. A limiting component is provided between the bidirectional screw and the long frame body.
[0009] As a further embodiment of this utility model: the limiting component includes two staggered limiting plates, each of which is slidably connected to a movable plate at both ends, and the movable plate extends out of the limiting plate and is fixedly connected to the short frame and the fixed plate.
[0010] As a further embodiment of this utility model: a support plate is fixed on one side of the long frame body, and an abutment plate is fixed on the support plate, the abutment plate being a shock-absorbing rubber plate.
[0011] As a further embodiment of this utility model: anti-slip strips are fixed on both the short frame and the long frame body and are distributed in an array, and the anti-slip strips are located in the placement groove.
[0012] As a further embodiment of this utility model: two symmetrical adjustment plates are provided on the long frame, and a sliding column is slidably provided on the adjustment plate. The sliding column passes through the adjustment plate, and a contact plate is fixed at the lower end of the sliding column. The contact plate corresponds to the placement groove. A spring is sleeved on the sliding column, and the ends of the springs are fixedly connected to the adjustment plate and the contact plate.
[0013] As a further embodiment of this utility model: two symmetrical adjusting screws are rotatably connected to the long frame body, and a handle is fixed to the upper end of the adjusting screw, and the adjusting screw passes through the adjusting plate.
[0014] As a further embodiment of this utility model: a rotating ring is threadedly connected to the adjusting screw, and the rotating ring is rotatably connected to the adjusting plate.
[0015] As a further embodiment of this utility model: a contact pad is fixed on the contact plate, and the contact pad is a flexible rubber pad.
[0016] The beneficial effects of this utility model are:
[0017] 1. This utility model allows for the rotation of a bidirectional screw by turning handle one, which in turn causes the two long frame bodies to move relative to each other. This allows the moving plate to move within the limiting plate, adjusting the width of the frame to accommodate photovoltaic modules of different widths. Turning the other handle one then causes the two short frame bodies to move relative to each other, adjusting the length of the frame to accommodate photovoltaic modules of different lengths. This improves the adaptability and installation accuracy of the frame, and reduces the impact on the stability of the photovoltaic modules.
[0018] 2. This utility model utilizes a rotating adjustment plate. The plate rotates on a rotating ring, and the spring force causes the sliding column to be stressed, which in turn forces the contact plate against the photovoltaic module. This adapts to photovoltaic modules of different thicknesses, improving the installation stability of the photovoltaic modules. Simultaneously, turning the second handle rotates the adjusting screw, causing the rotating ring to move on the screw, thus raising or lowering the adjustment plate. This adjusts the spring's force on the contact plate to accommodate photovoltaic modules of different widths, further enhancing the stability of the photovoltaic modules. Attached Figure Description
[0019] The present invention will be further described below with reference to the accompanying drawings.
[0020] Figure 1 This is a first structural schematic diagram of the frame of this utility model;
[0021] Figure 2 This is a schematic diagram of the internal structure of the frame of this utility model;
[0022] Figure 3 This is a schematic diagram of the second structure of the frame of this utility model;
[0023] Figure 4 This is a utility model Figure 3 Enlarged structural diagram at point A in the middle.
[0024] In the diagram: 1. Long frame body; 2. Short frame; 3. Two-way screw; 4. Handle 1; 5. Limiting plate; 6. Moving plate; 7. Anti-slip strip; 8. Support plate; 9. Abutment plate; 10. Adjusting screw; 11. Handle 2; 12. Rotating ring; 13. Adjusting plate; 14. Sliding column; 15. Spring; 16. Abutment plate; 17. Contact pad. Detailed Implementation
[0025] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those skilled in the art without creative effort are within the protection scope of the present utility model.
[0026] Please see Figures 1-3As shown, this utility model is a novel photovoltaic planar tile frame, including a long frame body 1, of which two are symmetrically arranged. Short frames 2 are placed at both ends of each long frame body 1. An adjustment mechanism is provided between the long frame body 1 and the short frames 2, which is used to adjust the length and width of the frame. The adjustment mechanism includes two bidirectional screws 3 disposed on the short frames 2 and at the lower end of the long frame body 1, arranged in a cross shape. A fixing plate is fixed to the lower end of the long frame body 1. Both bidirectional screws 3 pass through the fixing plate and the short frames 2, and both the short frames 2 and the fixing plate are threadedly connected to the bidirectional screws 3. The short frames 2 and the fixing plate are symmetrically arranged on the bidirectional screws 3. Placement slots are provided on both the short frames 2 and the long frame body 1. A handle 4 is fixed to one end of each bidirectional screw 3. A limiting component is provided between the bidirectional screws 3 and the long frame body 1. The limiting component includes two interleaved limiting plates 5, with movable plates 6 slidably connected to both ends of each limiting plate 5. The movable plates 6 extend out of the limiting plates 5 and are fixedly connected to the short frames 2 and the fixing plate. A support plate 8 is fixed to one side of the long frame body 1, and an abutment plate 9 is fixed to the support plate 8. The abutment plate 9 is a shock-absorbing rubber plate. Anti-slip strips 7 are fixed to both the short frame 2 and the long frame body 1 and are arranged in an array. The anti-slip strips 7 are located in the placement groove.
[0027] Specifically, the staff transports the long frame body 1 and short frame 2 to a suitable location to support and restrict the photovoltaic panels to be installed. During installation, the photovoltaic modules enter the placement slot and are restricted to improve stability. The frame is fixed to a suitable location by an external bracket to facilitate the installation of the photovoltaic modules. During installation, the position of the long frame body 1 and short frame 2 is adjusted by an adjustment mechanism to accommodate photovoltaic modules of different widths and lengths, thereby improving the installation accuracy of the photovoltaic modules, enhancing the installation adaptability of the frame, and reducing the impact on the stability of the photovoltaic modules.
[0028] Specifically, the operator turns handle 4, causing the bidirectional screw 3 to rotate, which in turn moves the two fixed plates relative to each other, causing the two long frame bodies 1 to move relative to each other, and the moving plate 6 to move within the limiting plate 5, adjusting the width of the frame to accommodate photovoltaic modules of different widths. Then, turning the other handle 4 causes the two short frame bodies 2 to move relative to each other, adjusting the length of the frame to accommodate photovoltaic modules of different lengths, improving the adaptability and installation accuracy of the frame, and reducing the impact on the stability of the photovoltaic modules. Through the abutment plate 9 on the support plate 8, the abutment plate 9 contacts the photovoltaic module. The abutment plate 9 is a rubber shock-absorbing plate, which reduces the stress on the photovoltaic module when encountering wind and snow pressure. The abutment plate 9 absorbs stress, and the anti-slip strip 7 restricts and protects the photovoltaic module, increases the friction with the photovoltaic module, and improves the stability of the photovoltaic module.
[0029] In this embodiment, refer to Figure 3 - Figure 4As shown, two symmetrical adjusting plates 13 are provided on the long frame. A sliding post 14 is slidably mounted on each adjusting plate 13, penetrating the adjusting plate 13. A contact plate 16 is fixed to the lower end of the sliding post 14, corresponding to the placement slot. A spring 15 is sleeved on the sliding post 14, with its ends fixedly connected to both the adjusting plate 13 and the contact plate 16. Two symmetrical adjusting screws 10 are rotatably connected to the long frame body 1. A handle 11 is fixed to the upper end of each adjusting screw 10, which penetrates the adjusting plate 13. A rotating ring 12 is threaded onto each adjusting screw 10, rotatably connected to the adjusting plate 13. A contact pad 17, which is a flexible rubber pad, is fixed to the contact plate 16.
[0030] Specifically, during installation, the operator rotates the adjusting plate 13, causing it to rotate on the rotating ring 12. This adjusts the position of the contact plate 16. After placing the photovoltaic module inside, the operator pulls the sliding column 14, causing the spring 15 to extend and retract, thus rotating the adjusting plate 13. The contact plate 16 then aligns with the photovoltaic module. The spring force of the spring 15 causes the sliding column 14 to be stressed, and the contact plate 16 is stressed to contact the photovoltaic module. This adapts to photovoltaic modules of different thicknesses, improving the installation stability of the photovoltaic module. Simultaneously, the operator can turn the handle 11, causing the adjusting screw 10 to rotate. When turning, the adjusting plate 13 is restricted, causing the rotating ring 12 to move on the adjusting screw 10. This causes the adjusting plate 13 to rise and fall, adjusting the force of the spring 15 on the contact plate 16 to adapt to photovoltaic modules of different widths, thus improving the stability of the photovoltaic module.
[0031] The working principle of this utility model is as follows: the staff transports the long frame body 1 and the short frame 2 to a suitable position to support and restrict the photovoltaic panel to be installed. During installation, the photovoltaic module enters the placement slot and is restricted to improve stability. The frame is fixed to a suitable place by an external bracket, which facilitates the installation of the photovoltaic module.
[0032] Then, the staff turns handle 4, causing the bidirectional screw 3 to rotate, which drives the two fixed plates to move relative to each other, causing the two long frame bodies 1 to move relative to each other, and causing the moving plate 6 to move within the limiting plate 5, adjusting the width of the frame to accommodate photovoltaic modules of different widths. Then, the staff turns the other handle 4, causing the two short frame bodies 2 to move relative to each other, adjusting the length of the frame to accommodate photovoltaic modules of different lengths, improving the adaptability and installation accuracy of the frame, and reducing the impact on the stability of the photovoltaic modules. Through the abutment plate 9 on the support plate 8, the abutment plate 9 contacts the photovoltaic module. The abutment plate 9 is a rubber shock-absorbing plate, which reduces the stress on the photovoltaic module when encountering wind and snow pressure. The abutment plate 9 absorbs stress, and the photovoltaic module is restricted and protected by the anti-slip strip 7.
[0033] Then, during installation, the operator rotates the adjusting plate 13, causing it to rotate on the rotating ring 12, adjusting the position of the contact plate 16. After placing the photovoltaic module, the operator pulls the sliding column 14, causing the spring 15 to extend and retract, thus rotating the adjusting plate 13. The contact plate 16 then aligns with the photovoltaic module. The elasticity of the spring 15 causes the sliding column 14 to be stressed, and the contact plate 16 is stressed to contact the photovoltaic module, adapting to photovoltaic modules of different thicknesses and improving the installation stability of the photovoltaic module. At the same time, the operator can turn the handle 11, causing the adjusting screw 10 to rotate. When turning, the adjusting plate 13 is restricted, causing the rotating ring 12 to move on the adjusting screw 10, thus raising and lowering the adjusting plate 13 and adjusting the force of the spring 15 on the contact plate 16.
[0034] The above description provides a detailed account of one embodiment of the present invention. However, this description is merely a preferred embodiment and should not be construed as limiting the scope of the present invention. All equivalent variations and improvements made within the scope of the claims of the present invention should still fall within the patent coverage of the present invention.
Claims
1. A novel photovoltaic planar tile frame, comprising a long frame body (1), characterized in that: The long border body (1) consists of two symmetrically arranged bodies. Short borders (2) are placed at both ends of the long border body (1). An adjustment mechanism is provided between the long border body (1) and the short borders (2) to adjust the length and width of the borders. The adjustment mechanism includes a bidirectional screw (3) set on the short frame (2) and the lower end of the long frame body (1). The two bidirectional screws (3) are arranged in a cross shape. A fixing plate is fixed at the lower end of the long frame body (1). The bidirectional screws (3) pass through the fixing plate and the short frame (2). The short frame (2) and the fixing plate are threaded to the bidirectional screws (3). The short frame (2) and the fixing plate are symmetrically arranged on the bidirectional screws (3). Placement slots are opened on both the short frame (2) and the long frame body (1). A handle (4) is fixed at one end of the bidirectional screw (3). A limiting component is provided between the bidirectional screw (3) and the long frame body (1).
2. The novel photovoltaic planar tile frame according to claim 1, characterized in that, The limiting component includes two staggered limiting plates (5), and each end of the limiting plate (5) is slidably connected to a movable plate (6). The movable plate (6) extends out of the limiting plate (5) and is fixedly connected to the short frame (2) and the fixed plate.
3. The novel photovoltaic planar tile frame according to claim 2, characterized in that, A support plate (8) is fixed on one side of the long frame body (1), and an abutment plate (9) is fixed on the support plate (8). The abutment plate (9) is a shock-absorbing rubber plate.
4. A novel photovoltaic planar tile frame according to claim 2, characterized in that, Anti-slip strips (7) are fixed on both the short frame (2) and the long frame body (1) and are arranged in an array. The anti-slip strips (7) are located in the placement groove.
5. A novel photovoltaic planar tile frame according to claim 1, characterized in that, Two symmetrical adjustment plates (13) are provided on the long frame. A sliding column (14) is slidably provided on the adjustment plate (13). The sliding column (14) passes through the adjustment plate (13). A contact plate (16) is fixed at the lower end of the sliding column (14). The contact plate (16) corresponds to the placement groove. A spring (15) is sleeved on the sliding column (14). The ends of the spring (15) are fixedly connected to the adjustment plate (13) and the contact plate (16).
6. A novel photovoltaic planar tile frame according to claim 5, characterized in that, Two symmetrical adjusting screws (10) are rotatably connected to the long frame body (1). A handle (11) is fixed at the upper end of the adjusting screw (10). The adjusting screw (10) passes through the adjusting plate (13).
7. A novel photovoltaic planar tile frame according to claim 6, characterized in that, A rotating ring (12) is threaded onto the adjusting screw (10), and the rotating ring (12) is rotatably connected to the adjusting plate (13).
8. A novel photovoltaic planar tile frame according to claim 7, characterized in that, A contact pad (17) is fixed on the contact plate (16), and the contact pad (17) is a flexible rubber pad.