Plug-in spliced photovoltaic power generation assembly

By setting up support devices and photovoltaic modules in the photovoltaic power generation module, and using sliding connections and coordination, the problem of poor stability of the photovoltaic power generation modules is solved, and the overall stability of the modules and the splicing stability are improved.

CN223007531UActive Publication Date: 2025-06-20XIAN LANTUO POWER TECHNOLOGY CO LTD
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Patent Information

Application Number
CN202421813568.0
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-07-30
Publication Date
2025-06-20
Estimated Expiration
2034-07-30

AI Technical Summary

Technical Problem

The existing photovoltaic power generation components have poor stability after splicing, resulting in damage to the device after long-term use.

Method used

By providing support devices and photovoltaic components, the support devices include support tables, fixed plates, slide chutes and mounting frames. The photovoltaic components include photovoltaic panels, grooves, limit blocks, slide chutes and slides. The sliding connection and cooperation of these components can improve the protection and stability of the photovoltaic panels.

Benefits of technology

It effectively improves the overall stability of photovoltaic power generation components, prevents the photovoltaic panel from pouring and damage, and improves the stability during splicing and the practicality of the device.

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Abstract

The utility model relates to the field of photovoltaic power generation assembly devices, and discloses an inserted and spliced photovoltaic power generation assembly, which comprises a supporting device and a plurality of photovoltaic assemblies, the plurality of photovoltaic assemblies are arranged in the supporting device, the supporting device comprises a supporting table, fixing plates are fixedly connected to the two sides of the supporting table close to the front ends respectively, and the fixing plates are arranged on the supporting table. Sliding grooves are formed in the sides, close to the supporting table, of the two fixing plates correspondingly, a plurality of mounting frames are arranged at the top end of the supporting table in a linear array mode, fixing bolts are rotationally connected to the positions, close to the upper portion, of the rear ends of the photovoltaic panels correspondingly, and limiting blocks are fixedly connected to the two sides of the bottom ends of the photovoltaic panels correspondingly. Mounting holes are formed in the front ends of the multiple limiting blocks correspondingly. According to the photovoltaic power generation assembly spliced in the inserted mode, the supporting device is arranged, so that the overall stability of the device is effectively improved, and the photovoltaic assembly is arranged, so that the splicing stability is effectively improved.
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Description

Technical Field

[0001] The utility model relates to the field of photovoltaic power generation component devices, in particular to a plug-in and spliced photovoltaic power generation component. Background Technique

[0002] Since the output voltage of a single solar cell in a photovoltaic module is relatively low, and the electrodes of an unpackaged battery are prone to falling off due to environmental influence, a certain number of single cells must be connected in series and parallel and sealed into a solar cell module.

[0003] Although multiple photovoltaic panels are spliced and assembled into a power generation device in the prior art, there is a problem of poor stability after the photovoltaic panels are spliced, which may cause damage to the device during long-term use. Therefore, those skilled in the art have provided a plug-in and spliced photovoltaic power generation component to solve the problems raised in the above background technique. Content of the Utility Model

[0004] The purpose of the utility model is to solve the deficiencies existing in the prior art, and to propose a plug-in and spliced photovoltaic power generation component, which provides a plug-in and spliced photovoltaic power generation component that can effectively improve the overall stability of the device by setting a support device and can effectively improve the stability during splicing by setting photovoltaic components.

[0005] To achieve the above purpose, the utility model provides the following technical solution: A plug-in and spliced photovoltaic power generation component, including a support device and a plurality of photovoltaic components. The plurality of photovoltaic components are arranged inside the support device. The support device includes a support table. Fixing plates are respectively fixedly connected to the front ends on both sides of the support table. Slide grooves are respectively opened on the sides of the two fixing plates close to the support table. A plurality of mounting frames are arranged in a linear array on the top of the support table;

[0006] Through the above technical solution, by setting a support device, fixing plates are arranged on the support table, and the spliced photovoltaic panels are placed as a whole between the two slide grooves, which can effectively protect the two sides of the photovoltaic panels and prevent damage to the photovoltaic panels. At the same time, a plurality of fixing bolts are slidably arranged in the mounting frames, which can effectively prevent the whole photovoltaic panel from tipping over and effectively improve the overall stability of the device.

[0007] Further, several of the photovoltaic modules respectively include photovoltaic panels. Two grooves are respectively formed at the tops of several of the photovoltaic panels. Fixing bolts are respectively rotatably connected to the upper positions at the rear ends of several of the photovoltaic panels. Limiting blocks are respectively fixedly connected to both sides at the bottoms of several of the photovoltaic panels. Mounting holes are respectively formed at the fronts of several of the limiting blocks. Second sliders are respectively fixedly connected to the upper positions on one side of several of the photovoltaic panels. First through holes are respectively formed at the tops of several of the second sliders. First chutes are respectively formed at the lower positions on one side of several of the photovoltaic panels. Second sliding rods are respectively fixedly connected to the inner side walls of several of the first chutes. Second chutes are respectively formed at the upper positions on the other side of several of the photovoltaic panels. First sliding rods are respectively fixedly connected to the inner side walls of several of the second chutes. First sliders are fixedly connected to the lower positions on the other side of several of the photovoltaic panels. Second through holes are respectively formed at the tops of several of the first sliders. Several of the fixing bolts are respectively slidably connected to the inner side walls of the mounting frame;

[0008] Through the above technical solution, by providing the photovoltaic module, first chutes and first sliders, second sliders and second chutes are respectively provided on both sides of the photovoltaic module. By using the sliding connection between the components, the lateral splicing of multiple photovoltaic panels is effectively carried out. At the same time, sliding rods are provided in the first chutes and the first through holes, effectively improving the stability during splicing.

[0009] Further, the inner side walls of several of the first chutes respectively match the side walls of several of the first sliders;

[0010] Through the above technical solution, the first chutes and the first sliders are effectively installed.

[0011] Further, the side walls of several of the second sliding rods are respectively slidably connected to the inner side walls of several of the second through holes;

[0012] Through the above technical solution, the stability after the cooperation between the first chutes and the first sliders is effectively improved.

[0013] Further, several of the second sliders respectively match the inner side walls of several of the second chutes;

[0014] Through the above technical solution, the second chutes and the first chutes are effectively installed.

[0015] Further, the inner side walls of several of the first through holes are slidably connected to the side walls of the first sliding rods;

[0016] Through the above technical solution, the stability after the cooperation between the second sliders and the second chutes is effectively improved.

[0017] Further, several of the limiting blocks respectively match the inner side walls of several of the grooves;

[0018] Through the above technical solution, multiple photovoltaic panels are effectively assembled vertically.

[0019] Further, several of the fixing bolts penetrate the rear end surface of the photovoltaic panel and are respectively threadedly connected to the inner side walls of several mounting holes;

[0020] Through the above technical solution, multiple photovoltaic panels are effectively installed.

[0021] The utility model has the following beneficial effects:

[0022] In the utility model, by setting a support device, a fixing plate is arranged on the support table, and the assembled photovoltaic panel as a whole is placed between two sliding grooves, which can effectively protect both sides of the photovoltaic panel and avoid damage to the photovoltaic panel. At the same time, several fixing bolts are slidably arranged in the mounting frame, which can effectively prevent the whole photovoltaic panel from tipping over and effectively improve the overall stability of the device.

[0023] In the utility model, by setting a photovoltaic module, a first sliding groove and a first sliding block, a second sliding block and a second sliding groove are respectively arranged on both sides of the photovoltaic module. By using the sliding connection between the components, multiple photovoltaic panels are effectively spliced horizontally. At the same time, a sliding rod is arranged in the first sliding groove and the first through hole, which effectively improves the stability during splicing.

[0024] In the utility model, by setting a groove and a limiting block in the photovoltaic panel, and using the cooperation between the groove and the limiting block, multiple photovoltaic panels can be spliced vertically, effectively increasing the splicing area of the photovoltaic panel and improving the overall practicability of the device. BRIEF DESCRIPTION OF THE DRAWINGS

[0025] Figure 1 is a perspective view of a plug-in splicing photovoltaic power generation module proposed by the utility model;

[0026] Figure 2 is another perspective view of a plug-in splicing photovoltaic power generation module proposed by the utility model;

[0027] Figure 3 is a perspective view of the photovoltaic module of a plug-in splicing photovoltaic power generation module proposed by the utility model;

[0028] Figure 4 is a front view of the photovoltaic module of a plug-in splicing photovoltaic power generation module proposed by the utility model.

[0029] LEGEND DESCRIPTION:

[0030] 1. Support device; 101. Support platform; 102. Fixed plate; 103. Chute; 104. Mounting frame; 2. Photovoltaic module; 201. Photovoltaic panel; 202. Groove; 203. Fixing bolt; 204. Limiting block; 205. Mounting hole; 206. First chute; 207. First slider; 208. Second slider; 209. Second chute; 2010. First through hole; 2011. First sliding rod; 2012. Second sliding rod; 2013. Second through hole. Detailed implementation manner

[0031] Next, the technical solutions in the embodiments of the present invention will be clearly and completely described in conjunction with the accompanying drawings in the embodiments of the present invention. Obviously, the described embodiments are only a part of the embodiments of the present invention, rather than all the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those of ordinary skill in the art without creative efforts shall fall within the protection scope of the present invention.

[0032] Referring to Figures 1-4 , an embodiment provided by the present invention: a pluggable and spliced photovoltaic power generation module, including a support device 1 and a plurality of photovoltaic modules 2. The plurality of photovoltaic modules 2 are arranged inside the support device 1. The support device 1 includes a support platform 101. Fixed plates 102 are respectively fixedly connected to the front ends on both sides of the support platform 101. Chutes 103 are respectively opened on one side of the two fixed plates 102 close to the support platform 101. A plurality of mounting frames 104 are linearly arranged in an array at the top of the support platform 101. By setting the support device 1 and arranging the fixed plates 102 on the support platform 101, the assembled photovoltaic panel 201 is placed entirely between the two chutes 103, which can effectively protect both sides of the photovoltaic panel 201 and prevent damage to the photovoltaic panel 201. At the same time, by sliding a plurality of fixing bolts 203 in the mounting frames 104, the overall tilting of the photovoltaic panel 201 can be effectively prevented, and the overall stability of the device can be effectively improved.

[0033] A number of photovoltaic modules 2 respectively include photovoltaic panels 201. Two grooves 202 are respectively formed at the tops of a number of photovoltaic panels 201. Fixing bolts 203 are respectively rotatably connected to the upper positions near the rear ends of a number of photovoltaic panels 201. Limiting blocks 204 are respectively fixedly connected to both sides of the bottoms of a number of photovoltaic panels 201. Mounting holes 205 are respectively formed at the fronts of a number of limiting blocks 204. Second sliders 208 are respectively fixedly connected to the upper positions near one sides of a number of photovoltaic panels 201. First through holes 2010 are respectively formed at the tops of a number of second sliders 208. First chutes 206 are respectively formed at the lower positions near one sides of a number of photovoltaic panels 201. Second slide bars 2012 are respectively fixedly connected to the inner side walls of a number of first chutes 206. Second chutes 209 are respectively formed at the upper positions near the other sides of a number of photovoltaic panels 201. First slide bars 2011 are respectively fixedly connected to the inner side walls of a number of second chutes 209. First sliders 207 are fixedly connected to the lower positions near the other sides of a number of photovoltaic panels 201. Second through holes 2013 are respectively formed at the tops of a number of first sliders 207. A number of fixing bolts 203 are respectively slidably connected to the inner side walls of the mounting frame 104. By providing the photovoltaic module 2, first chutes 206 and first sliders 207, second sliders 208 and second chutes 209 are respectively provided on both sides of the photovoltaic module 2. By using the sliding connection between the components, the lateral splicing of a number of photovoltaic panels 201 is effectively carried out. At the same time, slide bars are provided in the first chutes 206 and the first through holes 2010, effectively improving the stability during splicing.

[0034] The inner side walls of a number of first chutes 206 respectively match the side walls of a number of first sliders 207. The side walls of a number of second slide bars 2012 are respectively slidably connected to the inner side walls of a number of second through holes 2013. A number of second sliders 208 respectively match the inner side walls of a number of second chutes 209. The inner side walls of a number of first through holes 2010 are slidably connected to the side walls of the first slide bars 2011. A number of limiting blocks 204 respectively match the inner side walls of a number of grooves 202. A number of fixing bolts 203 penetrate through the rear end faces of the photovoltaic panels 201 and are respectively threadedly connected to the inner side walls of a number of mounting holes 205. By providing grooves 202 and limiting blocks 204 in the photovoltaic panels 201, and using the cooperation between the grooves 202 and the limiting blocks 204, the vertical splicing of a number of photovoltaic panels 201 can be carried out, effectively increasing the splicing area of the photovoltaic panels 201 and improving the overall practicality of the device.

[0035] Working principle: By setting the supporting device 1, a fixing plate 102 is arranged on the supporting platform 101, and the assembled photovoltaic panel 201 is placed as a whole between two sliding grooves 103, which can effectively protect both sides of the photovoltaic panel 201 and avoid damage to the photovoltaic panel 201. At the same time, a plurality of fixing bolts 203 are slidably arranged in the mounting frame 104, which can effectively prevent the whole photovoltaic panel 201 from tipping over and effectively improve the overall stability of the device. By setting the photovoltaic module 2, a first sliding groove 206 and a first sliding block 207, a second sliding block 208 and a second sliding groove 209 are respectively arranged on both sides of the photovoltaic module 2. By using the sliding connection between the components, the plurality of photovoltaic panels 201 can be effectively spliced horizontally. At the same time, a sliding rod is arranged in the first sliding groove 206 and the first through hole 2010, which effectively improves the stability during splicing. By arranging a groove 202 and a limiting block 204 in the photovoltaic panel 201, and using the cooperation between the groove 202 and the limiting block 204, the plurality of photovoltaic panels 201 can be spliced vertically, effectively increasing the splicing area of the photovoltaic panel 201 and improving the overall practicability of the device.

[0036] Finally, it should be noted that the above are only the preferred embodiments of the present invention and are not used to limit the present invention. Although the present invention has been described in detail with reference to the foregoing embodiments, those skilled in the art can still modify the technical solutions described in the foregoing embodiments, or perform equivalent replacements for some of the technical features. Any modifications, equivalent replacements, improvements, etc. made within the spirit and principle of the present invention shall be included in the protection scope of the present invention.

Claims

1. A plug-and-splice photovoltaic power generation assembly, comprising a support device (1) and a plurality of photovoltaic assemblies (2), wherein the plurality of photovoltaic assemblies (2) are arranged inside the support device (1), characterized in that: The support device (1) comprises a support platform (101), and fixing plates (102) are respectively fixedly connected to the front ends of two sides of the support platform (101), and sliding grooves (103) are respectively provided on one side of the two fixing plates (102) close to the support platform (101), and a plurality of mounting frames (104) are provided in a linear array at the top of the support platform (101); The plurality of photovoltaic assemblies (2) respectively comprise a photovoltaic panel (201), the tops of the plurality of photovoltaic panels (201) respectively have two grooves (202), the rear ends of the plurality of photovoltaic panels (201) are rotatably connected to fixing bolts (203) at upper positions, the bottoms of the plurality of photovoltaic panels (201) are respectively fixedly connected to limiting blocks (204) at both sides, the front ends of the plurality of limiting blocks (204) are respectively provided with mounting holes (205), the upper positions of one side of the plurality of photovoltaic panels (201) are respectively fixedly connected to second sliders (208), the tops of the plurality of second sliders (208) are respectively provided with first through holes (210), and the plurality of photovoltaic panels (2 01) one side is provided with a first slide groove (206) at a lower position, and the inner walls of several of the first slide grooves (206) are respectively fixedly connected with a second slide rod (212), and the other side of several of the photovoltaic panels (201) is provided with a second slide groove (209) at an upper position, and the inner walls of several of the second slide grooves (209) are respectively fixedly connected with a first slide rod (211), and the other side of several of the photovoltaic panels (201) is fixedly connected with a first slide block (207) at a lower position, and the tops of several of the first slide blocks (207) are respectively provided with a second through hole (213), and several of the fixing bolts (203) are respectively slidably connected to the inner wall of the mounting frame (104).

2. A plug-and-splice photovoltaic power generation assembly according to claim 1, characterized in that: The inner side walls of the plurality of first sliding grooves (206) are respectively adapted to the side walls of the plurality of first sliding blocks (207).

3. A plug-and-splice photovoltaic power generation assembly according to claim 1, characterized in that: The side walls of the plurality of second sliding bars (2012) are respectively slidably connected to the inner side walls of the plurality of second through holes (2013).

4. A plug-and-splice photovoltaic power generation assembly according to claim 1, characterized in that: The plurality of second sliding blocks (208) are respectively adapted to the inner side walls of the plurality of second sliding grooves (209).

5. The plug-and-splice photovoltaic power generation assembly according to claim 1, characterized in that: The inner side walls of a plurality of the first through holes (2010) are slidably connected to the side walls of the first sliding rod (2011).

6. The plug-and-splice photovoltaic power generation assembly according to claim 1, characterized in that: The plurality of limit blocks (204) are respectively adapted to the inner side walls of the plurality of grooves (202).

7. The plug-and-splice photovoltaic power generation assembly according to claim 1, characterized in that: A plurality of fixing bolts (203) penetrate through the rear end surface of the photovoltaic panel (201) and are respectively threadedly connected to the inner side walls of a plurality of mounting holes (205).