Photovoltaic support
The design of flexible mounting brackets and adjustable structures solves the problems of poor adaptability and complex installation of photovoltaic brackets, enabling flexible adaptation and efficient installation to different balcony environments.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- NANJING GUANGXIAN TECH CO LTD
- Filing Date
- 2025-03-26
- Publication Date
- 2026-05-01
AI Technical Summary
Existing photovoltaic support structures have a single design, which can only be adapted to balcony railings of specific shapes and sizes, resulting in poor adaptability, complex installation, and high costs.
It adopts a flexible deformation design with flexible hooks, and can be connected to installation objects of different shapes and sizes through hook components, combined with an adjustment structure to achieve flexible installation and adjustment.
It improves the adaptability of photovoltaic brackets to different mounting surfaces, simplifies the installation process, reduces costs, and improves performance and installation efficiency.
Smart Images

Figure CN224191878U_ABST
Abstract
Description
Technical Field
[0001] This application belongs to the field of photovoltaic technology, and in particular relates to a photovoltaic bracket. Background Technology
[0002] In the current field of photovoltaic applications, balcony photovoltaic (PV) brackets, as key components supporting PV modules, have achieved certain technological advancements, but still face numerous significant challenges. Existing PV bracket structures are limited in design, only adaptable to balcony railings of specific shapes and sizes, thus restricting their application and exhibiting poor adaptability to different railing types. This fails to meet the diverse needs of balcony environments. Furthermore, existing PV brackets are structurally complex, containing numerous intricate parts and connectors, making installation difficult, time-consuming, and increasing installation costs, indicating room for improvement. Utility Model Content
[0003] This application aims to at least solve one of the technical problems existing in the prior art. To this end, this application proposes a photovoltaic bracket that can be connected to different types of mounting bodies through the flexible deformation of flexible connectors, thereby improving the adaptability of the photovoltaic bracket to different mounting bodies, and is simple to install, flexible to adjust, and has good performance.
[0004] In a first aspect, this application provides a photovoltaic bracket, comprising: a photovoltaic mounting component; and a hook assembly connected to the upper end of the photovoltaic mounting component and used for connection with a mounting body; wherein the hook assembly includes a flexible connector, the flexible connector having a fitting opening for at least partially fitting with the mounting body, the flexible connector being adapted to flexibly deform so that the size of the fitting opening is adjustable.
[0005] According to the photovoltaic bracket of this application, the photovoltaic mounting components are installed on the mounting body by setting the hook assembly, and the hook assembly can be connected to the mounting body of different shapes and sizes by the flexible deformation of the flexible hanging parts, which can improve the adaptability of the photovoltaic bracket to different mounting bodies, and the installation process is simpler, the adjustment is more flexible, and the use effect is better.
[0006] According to one embodiment of this application, the hook assembly further includes a mounting plate for connecting to the photovoltaic mounting component;
[0007] One end of the flexible hook is connected to the mounting plate, and the other end of the flexible hook is connected to the mounting plate in an adjustable position so that the size of the fitting opening is adjustable.
[0008] According to one embodiment of this application, one of the mounting plate and the other end of the flexible connector is provided with at least two mounting portions and the other is provided with at least one connecting portion, the connecting portion being adapted to cooperate with any one of the mounting portions.
[0009] According to one embodiment of this application, the hook assembly further includes a first connector, the mounting portion is configured as a mounting hole, the connecting portion is configured as a connecting hole, and the first connector is adapted to pass through the mounting hole and the connecting hole;
[0010] And / or, the connecting portion is provided on the flexible hook, and the connecting portion is provided in multiple ways, and the multiple connecting portions are spaced apart in the length direction of the flexible hook.
[0011] According to one embodiment of this application, the mounting portion is disposed on the mounting plate, and at least two mounting portions are spaced apart on the mounting plate along the length direction of the flexible hook;
[0012] And / or, at least one of the mounting portions is configured as an elongated mounting portion, and the mating position of the connecting portion with the elongated mounting portion is adjustable.
[0013] According to one embodiment of this application, one end of the flexible connector is connected to the top of the mounting plate, and the mounting plate is provided with a connecting angle code on the side opposite to the flexible connector, the connecting angle code being detachably connected to the photovoltaic mounting component;
[0014] And / or, the flexible connector includes a connector body and a protective strip, the protective strip covering at least a portion of the connector body.
[0015] According to one embodiment of this application, the photovoltaic bracket further includes: an adjustment structure, one end of which is connected to the mounting body and the other end of which is connected to the photovoltaic mounting component, and the adjustment structure is configured to be length-adjustable to drive the photovoltaic mounting component to rotate relative to the hook assembly.
[0016] According to one embodiment of this application, the adjustment structure includes a first adjustment member and a second adjustment member, the first adjustment member being rotatably connected to the photovoltaic mounting component, the first adjustment member and the second adjustment member being telescopically connected, and the second adjustment member being used to connect to the mounting body;
[0017] Specifically, when the first adjusting member and the second adjusting member extend or retract relative to each other, they are adapted to drive the photovoltaic mounting component to rotate relative to the mounting body.
[0018] According to one embodiment of this application, it also includes at least one of the following methods:
[0019] Method 1: The first adjusting component and the photovoltaic mounting component are connected by a rotating shaft. The rotating shaft is equipped with a pre-tensioning torsion spring, which is connected to the first adjusting component and the photovoltaic mounting component respectively, so as to pre-tension the relative angle between the first adjusting component and the photovoltaic mounting component.
[0020] Method 2: The adjustment structure further includes a locking member, which is movably connected to one of the first adjustment member and the second adjustment member, and is selectively locked to the other of the first adjustment member and the second adjustment member;
[0021] Method 3: The adjustment structure further includes a mounting beam. The first adjustment member and the second adjustment member are each configured as at least two and are telescopically coupled in a one-to-one correspondence. At least two second adjustment members are spaced apart and connected to the mounting beam. The mounting beam is used to connect to the mounting body.
[0022] According to one embodiment of this application, the mounting beam is provided with a connecting latch, the connecting latch including a connecting plate and two second connecting members, both of which are movably inserted through the connecting plate and the mounting beam;
[0023] Wherein, a passage space is formed between the two second connectors for passing through at least another part of the mounting body, and the two second connectors are adapted to clamp the connecting plate and the mounting beam to the at least other part of the mounting body when they are in motion.
[0024] Additional aspects and advantages of this application will be set forth in part in the description which follows, and in part will be obvious from the description, or may be learned by practice of this application. Attached Figure Description
[0025] The above and / or additional aspects and advantages of this application will become apparent and readily understood from the description of the embodiments taken in conjunction with the following drawings, in which:
[0026] Figure 1 This is one of the structural schematic diagrams of the photovoltaic bracket and mounting body assembly provided in the embodiments of this application;
[0027] Figure 2 This is the second schematic diagram of the assembly of the photovoltaic bracket and the mounting body provided in the embodiments of this application;
[0028] Figure 3 This is the third schematic diagram of the assembly structure of the photovoltaic bracket and the mounting body provided in the embodiments of this application;
[0029] Figure 4 This is one of the structural schematic diagrams of the photovoltaic support provided in the embodiments of this application;
[0030] Figure 5 This is the second structural schematic diagram of the photovoltaic support provided in the embodiments of this application;
[0031] Figure 6 This is an exploded view of the hook assembly of the photovoltaic bracket provided in the embodiments of this application;
[0032] Figure 7 This is one of the structural schematic diagrams of a hook assembly of a photovoltaic bracket provided in the embodiments of this application;
[0033] Figure 8 This is a second schematic diagram of the structure of a hook assembly of a photovoltaic bracket provided in this application embodiment;
[0034] Figure 9 This is a schematic diagram of another hook assembly of the photovoltaic bracket provided in this application embodiment;
[0035] Figure 10 This is a second schematic diagram of another hook assembly of the photovoltaic bracket provided in the embodiments of this application;
[0036] Figure 11 This is the third structural schematic diagram of the photovoltaic support provided in the embodiments of this application;
[0037] Figure 12 yes Figure 11 Enlarged view of point A in the middle;
[0038] Figure 13 This is the fourth structural schematic diagram of the photovoltaic support provided in the embodiments of this application;
[0039] Figure 14 yes Figure 13 Enlarged view of point B in the middle;
[0040] Figure 15 This is the fifth structural schematic diagram of the photovoltaic support provided in the embodiments of this application;
[0041] Figure 16 yes Figure 15 Enlarged view of point C in the middle;
[0042] Figure 17 This is a schematic diagram of the connection latch structure of the photovoltaic bracket provided in the embodiment of this application;
[0043] Figure 18 This is a schematic diagram of the angle adjustment of the photovoltaic bracket provided in the embodiment of this application. Figure 1 ;
[0044] Figure 19 This is a schematic diagram of the angle adjustment of the photovoltaic bracket provided in the embodiment of this application. Figure 2 ;
[0045] Figure 20 This is a schematic diagram of the angle adjustment of the photovoltaic bracket provided in the embodiment of this application. Figure 3 ;
[0046] Figure 21 This is a schematic diagram of the angle adjustment of the photovoltaic bracket provided in the embodiment of this application. Figure 4 .
[0047] Figure label:
[0048] Photovoltaic bracket 100,
[0049] Photovoltaic installation component 1,
[0050] Hook assembly 2, flexible hook connector 21, fitting opening 211, connecting part 212, hook connector body 213, protective rubber strip 214, mounting groove 2141, mounting plate 22, mounting part 221, elongated mounting part 2211, first connector 23, connecting bolt 231, connecting nut 232, connecting bracket 24, bracket connecting bolt 241.
[0051] Adjustment structure 3 includes: first adjusting component 31, mounting slide 311, rotating shaft mounting hole 312; second adjusting component 32, slide 321, rotating shaft 33, locking nut 331, preload torsion spring 34, locking component 35, locking bolt 351, T-nut 352, mounting beam 36, connecting latch 361, connecting plate 362, movable groove 3621, second connecting component 363, through space 364, and sliding groove 365.
[0052] Photovoltaic modules 200, mounting body 300. Detailed Implementation
[0053] The embodiments of this application are described in detail below. Examples of these embodiments are shown in the accompanying drawings, wherein the same or similar reference numerals denote the same or similar elements or elements having the same or similar functions throughout. The embodiments described below with reference to the accompanying drawings are exemplary and are only used to explain this application, and should not be construed as limiting this application.
[0054] The following is for reference. Figures 1-21 The photovoltaic bracket 100 according to the embodiments of this application is described. The photovoltaic bracket 100 can be connected to the mounting body 300 of different shapes and sizes by the flexible deformation of the flexible bracket 21. This can improve the adaptability of the photovoltaic bracket 100 to different mounting bodies 300, and the installation process is simpler, the adjustment is more flexible, and the use effect is better.
[0055] In this embodiment, the photovoltaic bracket 100 includes: a photovoltaic mounting component 1 and a hook assembly 2.
[0056] The hook assembly 2 is connected to the upper end of the photovoltaic mounting component 1, and the hook assembly 2 is used to connect to the mounting body 300.
[0057] It should be noted that the photovoltaic bracket 100 is used to install the photovoltaic module 200, and the photovoltaic mounting component 1 is a part of the photovoltaic bracket 100 for connecting to the photovoltaic module 200. The photovoltaic mounting component 1 can be constructed as a mounting frame, in which the photovoltaic module 200 can be detachably connected. The photovoltaic mounting component 1 can also be constructed as other structures. In addition, the photovoltaic mounting component 1 can be integrated with the photovoltaic module 200 as a whole.
[0058] The hook assembly 2 is used to attach the photovoltaic mounting component 1 to the mounting body 300. The hook assembly 2 is connected to the upper end of the photovoltaic mounting component 1. For example, the hook assembly 2 can be detachably connected to the upper end of the photovoltaic mounting component 1, making the hook assembly 2 and the photovoltaic mounting component 1 an integral unit. The hook assembly 2 is used to connect to the mounting body 300. In actual use, the photovoltaic bracket 100 can be used in balcony scenarios, that is, the mounting body 300 can be a balcony railing. By attaching the hook assembly 2 to the upper area of the balcony railing, the upper end of the photovoltaic mounting component 1 can be fixed to the balcony railing. The attachment connection method is simple and convenient to install, which can reduce the user's assembly time and improve the user experience.
[0059] The hook assembly 2 includes a flexible hook member 21, which has a fitting opening 211 for fitting with at least a portion of the mounting body 300. The flexible hook member 21 is adapted to be flexibly deformed so that the size of the fitting opening 211 is adjustable. In other words, the fitting opening 211 formed by the flexible deformation of the flexible hook member 21 allows the hook assembly 2 to be fitted onto at least a portion of the mounting body 300, and the size of the fitting opening 211 is adjustable, which can adapt to various types of mounting bodies 300 and improve the adaptability of the hook assembly 2.
[0060] In practical applications, such as Figure 7 and Figure 8 As shown, when the mounting body 300 is a cylinder, the flexible connector 21 can be flexibly bent into a circular fitting opening 211, so that the flexible connector 21 is fitted onto the cylinder through the circular fitting opening 211, and as shown... Figure 9 and Figure 10 As shown, when the mounting body 300 is a cuboid, the flexible hook 21 can be flexibly bent into a square fitting opening 211, so that the flexible hook 21 is fitted onto the cuboid through the square fitting opening 211.
[0061] In addition, the mounting body 300 can also be elliptical or other shapes, and the size and shape of the fitting opening 211 can be adjusted to match the outer contour of the mounting body 300, which has high adjustment flexibility and high adaptability.
[0062] According to the photovoltaic bracket 100 provided in the embodiments of this application, the photovoltaic mounting component 1 is installed on the mounting body 300 by setting the hook assembly 2. The hook assembly 2 can be connected to the mounting body 300 of different shapes and sizes by the flexible deformation of the flexible hanging component 21, which can improve the adaptability of the photovoltaic bracket 100 to different mounting bodies 300. In general, the hook assembly 2 cannot be adapted to many different types of mounting bodies 300 and has poor versatility. The hook assembly 2 of this embodiment has high adaptability, which solves the problem of the limited adaptability of the hook assembly 2 of general photovoltaic bracket 100. It is suitable for various types of balcony environments, etc., which significantly broadens the application range of the product. Moreover, installation can be completed quickly without professional skills and complicated tools, which greatly shortens the installation time, reduces the installation cost, improves the installation efficiency and popularity of photovoltaic bracket 100, and has a simple structure and small space occupation.
[0063] In some embodiments, the hook assembly 2 further includes a mounting plate 22, which is used to connect to the photovoltaic mounting component 1. For example, the mounting plate 22 can be detachably connected to the photovoltaic mounting component 1 by fasteners such as bolts. The hook assembly 2 can be detachably connected to the photovoltaic mounting component 1 through the mounting plate 22, and the connection process is simple and convenient.
[0064] One end of the flexible connector 21 is connected to the mounting plate 22, and the other end of the flexible connector 21 is connected to the mounting plate 22 in an adjustable position so that the size of the fitting opening 211 can be adjusted. In other words, by connecting one end of the flexible connector 21 to the mounting plate 22 and adjusting the connection position of the other end to the mounting plate 22, the size of the fitting opening 211 formed by the flexible connector 21 can be changed.
[0065] For example, one end of the flexible connector 21 can be bolted to the mounting plate 22 to form a single unit, which can fix one end of the flexible connector 21 relative to the mounting plate 22. Similarly, the other end of the flexible connector 21 can be bolted to the mounting plate 22. During actual installation, the flexible bending characteristics of the flexible connector 21 can be used to adjust the connection position of the other end of the flexible connector 21 relative to the mounting plate 22, thereby adjusting the size and shape of the fitting opening 211 so that the flexible connector 21 can be fitted onto the mounting body 300 of different shapes and sizes, making the inner circumference of the flexible connector 21 fit the shape of the mounting body 300 better, thereby improving the connection reliability between the flexible connector 21 and the mounting body 300, and thus improving the connection reliability of the photovoltaic bracket 100.
[0066] Therefore, by using the mounting plate 22 and the flexible connector 21 together, only the other end of the flexible connector 21 needs to be adjusted during actual installation. The adjustment process is simple and convenient, which simplifies the assembly process and improves the user experience.
[0067] In some embodiments, one of the mounting plate 22 and the flexible connector 21 is provided with at least two mounting portions 221 and the other is provided with at least one connecting portion 212, the connecting portion 212 being adapted to cooperate with any one of the mounting portions 221.
[0068] In actual design, at least two mounting parts 221 can be provided on the mounting plate 22, and at least one connecting part 212 can be provided on the other end of the flexible hook 21. Alternatively, at least one connecting part 212 can be provided on the mounting plate 22, and at least two mounting parts 221 can be provided on the other end of the flexible hook 21. Both of these arrangements can achieve an adjustable connection between the flexible hook 21 and the mounting plate 22 through the cooperation of the connecting part 212 and the mounting part 221, and the arrangement can be flexibly selected.
[0069] The mounting part 221 can be configured as two, three, four, etc., and the connecting part 212 can be configured as one, two, three, four, etc.
[0070] Furthermore, the connecting part 212 can be matched with any mounting part 221, so that when the flexible hook 21 is flexibly bent to form different fitting openings 211 and is connected to the mounting body 300, the other end of the flexible hook 21 can be connected to the mounting part 221 through the connecting part 212, thereby realizing the connection and fixation between the flexible hook 21 and the mounting plate 22, and thus realizing that the hook assembly 2 is hung on at least part of the mounting body 300.
[0071] Therefore, through the above-mentioned arrangement, the connecting part 212 can always be connected to a mounting part 221. That is, after the size of the fitting opening 211 changes, it can be ensured that the other end of the flexible connector 21 is connected to the mounting body 300. Moreover, the fitting opening 211 of the flexible connector 21 has high adjustability, thereby improving the adaptability of the flexible connector 21 to mounting bodies 300 of different shapes and sizes.
[0072] In some embodiments, the hook assembly 2 further includes a first connector 23, the mounting portion 221 is configured as a mounting hole, the connecting portion 212 is configured as a connecting hole, and the first connector 23 is adapted to pass through the mounting hole and the connecting hole. The first connector 23 can be configured to pass through the mounting hole and the connecting hole in sequence, or the first connector 23 can be configured to pass through the connecting hole and the mounting hole in sequence. Both of these connection methods can connect the flexible hook 21 to the mounting plate 22.
[0073] In practical design, such as Figures 7-10As shown, the first connector 23 can be constructed to include a connecting bolt 231 and a connecting nut 232. Both the mounting hole and the connecting hole can be constructed as through holes, allowing the connecting bolt 231 to pass through the mounting hole and the connecting hole sequentially. The connecting nut 232 then engages with the connecting bolt 231 via a threaded connection, enabling the first connector 23 to connect the mounting part 221 and the connecting part 212, and also connecting the other end of the flexible connector 21 to the mounting plate 22. This design is simple, easy to manufacture, involves few steps, and the connection process is simple, convenient, and provides high connection strength, thereby improving the connection strength between the flexible connector 21 and the mounting plate 22.
[0074] Furthermore, one end of the flexible hanger 21 can be connected to the mounting plate 22 via connecting bolts 231 and connecting nuts 232, and the first connector 23 can also be configured as a rivet, with one end of the flexible hanger 21 connected to the mounting plate 22 via the rivet.
[0075] In other embodiments, the connecting portion 212 is provided on the flexible hook 21, and there are multiple connecting portions 212, which are spaced apart in the length direction of the flexible hook 21.
[0076] In this way, by setting multiple connecting parts 212 distributed along the length direction of the flexible hanger 21, the flexible hanger 21 can be connected to the mounting plate 22 through any one of the connecting parts 212 when the flexible hanger 21 is flexibly bent into different shapes.
[0077] In practical design, such as Figure 6 As shown, multiple connecting parts 212 are spaced apart along the length of the flexible hook member 21. At least one connecting part 212 can be provided at one end of the flexible hook member 21, meaning there can be one, two, or more connecting parts at one end. The connection position between one end of the flexible hook member 21 and the mounting plate 22 is generally not adjusted; that is, the number of connecting parts 212 at one end of the flexible hook member 21 is small enough to ensure the connection strength between the flexible hook member 21 and the mounting plate 22. At least two connecting parts 212 are provided at the other end of the flexible hook member 21, meaning there can be two, three, four, five, six, or more connecting parts at the other end. When the flexible hook member 21 is connected to mounting bodies 300 of different specifications, the position of the other end of the flexible hook member 21 may need to be adjusted; that is, the number of connecting parts 212 at the other end of the flexible hook member 21 is large enough to ensure an adjustable connection between the other end of the flexible hook member 21 and the mounting plate 22.
[0078] Therefore, the connection parts 212 at both ends of the flexible hook 21 can be set in various ways, making the flexible hook 21 flexible and adjustable to different mounting bodies 300. Its adjustment range is large, which can improve the applicability of the hook assembly 2.
[0079] The multiple connecting parts 212 are evenly spaced along the length of the flexible hanger 21, which makes the overall structure more uniform and regular. The multiple connecting parts 212 can be unevenly spaced, and their arrangement is not limited and can be flexibly selected according to actual needs.
[0080] In some embodiments, the mounting portion 221 is disposed on the mounting plate 22, and at least two mounting portions 221 are distributed at intervals on the mounting plate 22 along the length direction of the flexible hook 21.
[0081] In this way, by providing at least two mounting portions 221 distributed along the length of the flexible hook member 21 on the mounting plate 22, the mounting portion 221 can have at least two mounting portions 221 connected to the connecting portion 212 of the flexible hook member 21, so that the other end of the flexible hook member 21 is connected to the mounting plate 22 in an adjustable position.
[0082] In practical design, such as Figure 6 As shown, the mounting plate 22 can be constructed as a strip, with at least two mounting portions 221 spaced apart along the length of the flexible hook member 21 on the mounting plate 22. At least one mounting portion 221 corresponds to at least one connecting portion 212 at one end of the flexible hook member 21, enabling one end of the flexible hook member 21 to connect to the mounting plate 22. Furthermore, at least one mounting portion 221 corresponds to at least two connecting portions 212 at the other end of the flexible hook member 21, enabling the other end of the flexible hook member 21 to connect to the mounting plate 22. This allows for an adjustable connection between one end of the flexible hook member 21 and the mounting plate 22. The mounting plate 22 can also be constructed in other shapes, allowing for flexible configuration according to actual usage requirements.
[0083] Therefore, the mounting plate 22 is provided with at least two mounting parts 221, so that after the flexible hook 21 is flexibly bent and fitted with different mounting bodies 300, the mounting plate 22 and the flexible hook 21 can be connected through the mounting parts 221. It is flexible and adjustable with a large adjustment range, which can improve the applicability of the hook assembly 2.
[0084] In other embodiments, at least one mounting portion 221 is configured as an elongated mounting portion 2211, and the mating position of the connecting portion 212 with the elongated mounting portion 2211 is adjustable. This allows the connecting portion 212 to be adjustable along the length of the elongated mounting portion 2211, and facilitates adjustment of the connecting portion 212 at multiple positions along the length of the elongated mounting portion 2211, thereby improving the connection reliability between the connecting portion 212 and the elongated mounting portion 2211. Furthermore, the size of the fitting opening 211 of the flexible connector 21 can be continuously adjusted within a certain range, increasing the adjustment range of the fitting opening 211, and thus significantly improving the adaptability of the flexible connector 21 to mounting bodies 300 of different sizes.
[0085] In actual design, multiple mounting parts 221 can be unevenly spaced on the mounting plate 22 along the length of the flexible hook 21. At least one mounting part 221 located in the middle can be set as a long strip mounting part 2211, and the long strip mounting part 2211 extends along the length of the flexible hook 21. This allows the fitting opening 211 formed by the flexible hook 21 to be adjustable within a certain range, which is beneficial for the continuous and stable adjustment of the size of the fitting opening 211.
[0086] Among them, such as Figure 6 As shown, there can be one elongated mounting part 2211, and the number of elongated mounting parts 2211 is not limited. It can also be two, three, etc. The remaining mounting parts 221 can be round holes.
[0087] In addition, the mounting parts 221 can all be set as round holes, and the setting method is not limited and can be flexibly selected according to actual needs.
[0088] In some embodiments, one end of the flexible connector 21 is connected to the top of the mounting plate 22, and the mounting plate 22 is provided with a connecting bracket 24 on the side opposite to the flexible connector 21. The connecting bracket 24 is detachably connected to the photovoltaic mounting component 1.
[0089] like Figure 6 and Figure 7 As shown, one end of the flexible connector 21 is located on one side of the mounting plate 22 and connected to the top of the mounting plate 22. The mounting plate 22 has a connecting bracket 24 on the side away from the flexible connector 21. The connecting bracket 24 is used to connect with the photovoltaic mounting component 1. That is, the connecting bracket 24 is on the side of the mounting plate 22 closer to the photovoltaic mounting component 1, and the flexible connector 21 is on the side of the mounting plate 22 away from the photovoltaic mounting component 1. This makes the flexible connector 21 close to the mounting body 300, which is conducive to the connection between the flexible connector 21 and the mounting body 300. Moreover, the connection between the connecting bracket 24 and the photovoltaic mounting component 1 will not be affected during the adjustment of the flexible connector 21.
[0090] The connecting bracket 24 has a connecting position, and the photovoltaic mounting component 1 has an installation position. The connecting bracket 24 is detachably connected to the photovoltaic mounting component 1 by means of the connecting bolt 241 passing through the connecting position and the installation position, thereby realizing the connection between the hook assembly 2 and the photovoltaic mounting component 1. The connection method is simple and reliable.
[0091] Furthermore, the connecting bracket 24 can be detachably connected to the mounting plate 22 via fasteners such as connecting bolts 231 or rivets, ensuring the connection strength between the connecting bracket 24 and the mounting plate 22. The connecting bracket 24 can also be integrally formed with the mounting plate 22.
[0092] In other embodiments, the flexible connector 21 includes a connector body 213 and a protective strip 214, which covers at least a portion of the connector body 213.
[0093] In actual design, the protective strip 214 covers at least a portion of the main body 213 of the hanger. In this embodiment, at least a portion of the protective strip 214 is located between the main body 213 of the hanger and the mounting body 300, such as... Figure 6 As shown, the protective strip 214 has an installation groove 2141. The installation groove 2141 has an open opening in the thickness direction of the protective strip 214, and the shape of the installation groove 2141 can be set as T-shaped. In this way, the main body 213 of the hanger can be installed in the installation groove 2141, so that the protective strip 214 covers at least a part of the main body 213 of the hanger. One side of the main body 213 of the hanger is completely wrapped in the protective strip 214, and at least a part of the middle of the other side of the main body 213 of the hanger is not wrapped by the protective strip 214. The protective strip 214 on the side of the hanger body 213 that is completely wrapped directly contacts the mounting body 300. The protective strip 214 can provide friction, which can improve the connection stability and reliability between the flexible hanger 21 and the mounting body 300.
[0094] Furthermore, both the protective rubber strip 214 and the main body of the hanger 213 are provided with multiple connecting parts 212. The multiple connecting parts 212 pass through the protective rubber strip 214 and the main body of the hanger 213 respectively, which facilitates the connection of the protective rubber strip 214 and the main body of the hanger 213 into one unit and then to the mounting plate 22.
[0095] The protective rubber strip 214 can be made of high-strength rubber, elastic engineering plastics, or other materials. Furthermore, anti-slip textures can be incorporated into the protective rubber strip 214 to increase the friction between the protective rubber strip 214 and the mounting body 300.
[0096] Furthermore, the main body 213 of the hanger can be made of stainless steel, which makes the structural strength of the main body 213 high. The main body 213 of the hanger can be constructed as a sheet structure, which reduces the thickness of the main body 213 of the hanger while meeting the structural strength requirements, and facilitates the flexible bending of the main body 213 of the hanger. In this embodiment, both the main body 213 of the hanger and the protective rubber strip 214 can be constructed as C-shaped structures. Through flexible bending, it is easy for the shape of the main body 213 of the hanger to match the shape of the mounting body 300, thereby improving the tightness of the connection between the two.
[0097] Therefore, the protective strip 214 can cover at least part of the main body 213 of the hanger. When the flexible hanger 21 is connected to the mounting body 300, the protective strip 214 provides a certain friction force, which can make the connection between the main body 213 of the hanger and the mounting body 300 tighter. Then, the main body 213 of the hanger and the protective strip 214 are connected to the mounting plate 22 by the connecting bolts 231 and the connecting nuts 232, which can firmly fix the hook assembly 2 to the mounting body 300, improve the connection reliability between the photovoltaic bracket 100 and the mounting body 300, and the protective strip 214 plays a protective and buffering role, which can reduce wear and scratches between the main body 213 of the hanger and the mounting body 300, protect the main body 213 of the hanger and the mounting body 300, and reduce vibration and noise.
[0098] In some embodiments, the photovoltaic bracket 100 further includes an adjustment structure 3, one end of which is connected to the mounting body 300 and the other end is connected to the photovoltaic mounting component 1, and the adjustment structure 3 is configured to be length-adjustable to drive the photovoltaic mounting component 1 to rotate relative to the hook assembly 2.
[0099] One end of the adjustment structure 3 is connected to the mounting body 300, which can be a balcony railing. For example, one end of the adjustment structure 3 is detachably connected to the lower area of the balcony railing. The other end of the adjustment structure 3 is connected to the photovoltaic mounting component 1. For example, the other end of the adjustment structure 3 can be detachably connected to the lower area of the photovoltaic mounting component 1, so that the adjustment structure 3 and the photovoltaic mounting component 1 can be connected as one unit. In this way, the lower area of the photovoltaic mounting component 1 can be connected to the balcony railing. The adjustment structure 3 is designed to be length-adjustable so that the photovoltaic mounting component 1 can rotate relative to the hook assembly 2. That is to say, by adjusting the length of the adjustment structure 3 itself, the photovoltaic mounting component 1 can be rotated relative to the hook assembly 2, so that the photovoltaic mounting component 1 can rotate relative to the mounting body 300 to adjust the angle between the photovoltaic mounting component 1 and the incident light.
[0100] In practical applications, when the length of the adjustment structure 3 is increased, the adjustment structure 3 can drive the photovoltaic mounting component 1 to move away from the mounting body 300, which can increase the angle between the photovoltaic mounting component 1 and the mounting body 300. When the length of the adjustment structure 3 is decreased, the adjustment structure 3 can drive the photovoltaic mounting component 1 to move closer to the mounting body 300, which can decrease the angle between the photovoltaic mounting component 1 and the mounting body 300.
[0101] Furthermore, the hook assembly 2 can connect the upper end of the photovoltaic mounting component 1 to the upper area of the balcony railing. In this way, the photovoltaic mounting component 1 is connected to the mounting body 300 through the hook assembly 2 and the adjustment structure 3 respectively. The photovoltaic modules 200 installed on the photovoltaic mounting component 1 are distributed facing the outside, allowing sunlight to enter the photovoltaic modules 200. The photovoltaic modules 200 convert light energy into electrical energy for user use or storage. Moreover, the length of the adjustment structure 3 is adjustable, which can easily adapt to different balcony railing heights and angles during installation, improve the adaptability of the photovoltaic bracket 100, and thus improve the power generation capacity of the photovoltaic modules 200.
[0102] In some embodiments, the adjustment structure 3 includes a first adjustment member 31 and a second adjustment member 32. The first adjustment member 31 is rotatably connected to the photovoltaic mounting member 1. The first adjustment member 31 and the second adjustment member 32 are telescopically connected. The second adjustment member 32 is used to connect to the mounting body 300. When the first adjustment member 31 and the second adjustment member 32 telescopically extend relative to each other, they are adapted to drive the photovoltaic mounting member 1 to rotate relative to the mounting body 300.
[0103] In other words, through the telescopic connection of the first adjusting member 31 and the second adjusting member 32, the first adjusting member 31 and the second adjusting member 32 can be telescopically extended relative to each other, and the second adjusting member 32 is connected to the mounting body 300, and the first adjusting member 31 is rotatably connected to the photovoltaic mounting member 1, so that the first adjusting member 31 can drive the rotation of the photovoltaic mounting member 1 after telescopically extending relative to the second adjusting member 32.
[0104] When the first adjusting member 31 extends relative to the second adjusting member 32, it can drive the photovoltaic mounting member 1 to rotate away from the mounting body 300, thereby increasing the angle between the photovoltaic mounting member 1 and the mounting body 300. When the first adjusting member 31 retracts relative to the second adjusting member 32, it can drive the photovoltaic mounting member 1 to rotate closer to the mounting body 300, thereby decreasing the angle between the photovoltaic mounting member 1 and the mounting body 300. In this way, it can be adjusted according to the light requirements and the height of the mounting body 300 to make the angle between the photovoltaic mounting member 1 and the mounting body 300 more suitable, which is conducive to the light absorption of the photovoltaic module 200 at the photovoltaic mounting member 1.
[0105] In practical design, such as Figures 1-3As shown, the first adjusting member 31 and the second adjusting member 32 are located between the mounting body 300 and the photovoltaic mounting member 1. One end of the first adjusting member 31 is rotatably connected to the photovoltaic mounting member 1, and the end of the second adjusting member 32 away from the first adjusting member 31 is connected to the mounting body 300. The first adjusting member 31 and the second adjusting member 32 are telescopically connected along the distribution direction of the mounting body 300 and the photovoltaic mounting member 1. In this way, when the first adjusting member 31 and the second adjusting member 32 telescopically extend and retract relative to each other, the photovoltaic mounting member 1 can be directly pushed closer to or away from the mounting body 300 to realize the angle change of the photovoltaic mounting member 1 relative to the mounting body 300. The adjustment process is simpler and more convenient.
[0106] The photovoltaic bracket 100 can be freely adjusted according to the size of the balcony space and actual usage needs. When not in use, the photovoltaic bracket 100 can be easily folded and stored, freeing up balcony space. When a better angle of sunlight is needed, the relative angle between the photovoltaic mounting component 1 and the mounting body 300 can be conveniently pulled out and adjusted to ensure that the photovoltaic module 200 is always in the optimal position for receiving sunlight, achieving efficient utilization of balcony space. Furthermore, the angle adjustment of the photovoltaic bracket 100 is as follows: Figure 5 , Figure 18-21 As shown.
[0107] In some embodiments, the adjustment structure 3 further includes at least one of the following methods:
[0108] Method 1: The first adjusting component 31 is connected to the photovoltaic mounting component 1 through a rotating shaft 33. The rotating shaft 33 is provided with a pre-tensioning torsion spring 34, which is connected to the first adjusting component 31 and the photovoltaic mounting component 1 respectively, so as to pre-tension the relative angle between the first adjusting component 31 and the photovoltaic mounting component 1.
[0109] In other words, by connecting the pre-tensioned torsion spring 34 to the first adjusting member 31 and the photovoltaic mounting member 1 respectively, when the photovoltaic mounting member 1 and the first adjusting member 31 rotate along the rotating shaft 33, the pre-tensioned torsion spring 34 can apply force to the first adjusting member 31 and the photovoltaic mounting member 1 respectively, which can pre-tension the relative angle between the first adjusting member 31 and the photovoltaic mounting member 1, control the angle between the first adjusting member 31 and the photovoltaic mounting member 1, and prevent the first adjusting member 31 from falling relative to the photovoltaic mounting member 1 due to gravity, thus ensuring the safety of the operation process.
[0110] In practical design, such as Figure 15 and Figure 16 As shown, the first adjusting member 31 and the photovoltaic mounting member 1 are respectively provided with rotating shaft mounting holes 312. The rotating shaft 33 passes through the rotating shaft mounting holes 312 of the first adjusting member 31 and the photovoltaic mounting member 1 in sequence, and as shown... Figure 13 and Figure 14As shown, a pre-tensioning torsion spring 34 is provided between the first adjusting member 31 and the photovoltaic mounting member 1. The pre-tensioning torsion spring 34 is sleeved on the rotating shaft 33, and one end of the pre-tensioning torsion spring 34 is connected to the first adjusting member 31, and the other end is connected to the photovoltaic mounting member 1, so as to realize the arrangement of the pre-tensioning torsion spring 34.
[0111] It should be noted that the adjustment structure 3 can be retracted relative to the photovoltaic installation component 1, and its retracted state is as follows: Figure 18 As shown, the adjustment structure 3 is attached to the photovoltaic mounting component 1. At this time, the pre-tensioning torsion spring 34 between the first adjustment component 31 and the photovoltaic mounting component 1 is in a state of no force. When it is necessary to open the adjustment structure 3 and the photovoltaic mounting component 1, the first adjustment component 31 is opened relative to the photovoltaic mounting component 1. At this time, the pre-tensioning torsion spring 34 is in a state of force, that is, the pre-tensioning torsion spring 34 applies force to the photovoltaic mounting component 1 and the first adjustment component 31 respectively, which can prevent the adjustment structure 3 from falling relative to the photovoltaic mounting component 1.
[0112] Therefore, by setting a pre-tensioned torsion spring 34 at the rotating shaft 33, the first adjusting member 31 and the photovoltaic mounting member 1 can be prevented from falling relative to the photovoltaic mounting member 1 due to gravity when they rotate relative to each other. Furthermore, by setting the pre-tensioned torsion spring 34, the user can accurately control the angle between the first adjusting member 31 and the photovoltaic mounting member 1, thereby improving safety and convenience of use.
[0113] The rotating shaft 33 can be set as a bolt, and the bolt, together with the locking nut 331, rotatably connects the first adjusting member 31 and the photovoltaic mounting member 1.
[0114] Method 2: The adjustment structure 3 also includes a locking member 35, which is movably connected to one of the first adjustment member 31 and the second adjustment member 32, and is selectively locked to the other of the first adjustment member 31 and the second adjustment member 32.
[0115] In other words, the locking member 35 can be movably connected to the first adjusting member 31, and the locking member 35 can be selectively locked to the second adjusting member 32. Alternatively, the locking member 35 can be movably connected to the second adjusting member 32, and the locking member 35 can be selectively locked to the first adjusting member 31. Both of these configurations can achieve locking of the first adjusting member 31 and the second adjusting member 32 by the locking member 35 after the first adjusting member 31 and the second adjusting member 32 have extended or retracted relative to each other. The configurations are diverse and can be flexibly selected.
[0116] In the actual design, the locking member 35 is movably connected to the first adjusting member 31, the locking member 35 and the first adjusting member 31 are slidably engaged, and the locking member 35 and the second adjusting member 32 are selectively locked. When the first adjusting member 31 and the second adjusting member 32 need to slide relative to each other, the locking member 35 and the second adjusting member 32 are unlocked. When the first adjusting member 31 and the second adjusting member 32 slide to the set position, the locking member 35 and the second adjusting member 32 are locked.
[0117] For example, such as Figure 11 and Figure 12 As shown, the second adjusting member 32 is constructed as a hollow tube, and a sliding groove 321 is provided inside the second adjusting member 32. The first adjusting member 31 extends into the sliding groove 321 of the second adjusting member 32, which can realize the telescopic movement between the two. The first adjusting member 31 has a mounting groove 311 on one side near the bottom of the sliding groove 321. The mounting groove 311 can be constructed as a T-shaped groove. The second adjusting member 32 has at least one mounting hole. In this embodiment, there are two mounting holes. Correspondingly, there are also two locking members 35. Each locking member 35 can be constructed as a locking bolt 351 and a T-shaped nut 352. In this way, when the first adjusting member 31 and the second adjusting member 32 slide to the set position, the connecting bolt 231 and the T-shaped nut 352 are tightened to lock the first adjusting member 31 and the second adjusting member 32.
[0118] Therefore, the above settings can ensure the accuracy of the relative positions of the first adjusting member 31 and the second adjusting member 32, prevent the first adjusting member 31 and the second adjusting member 32 from sliding during use, thereby improving the accuracy and stability of the opening angle of the photovoltaic mounting component 1 relative to the mounting body 300. Moreover, the structure is simple, the assembly is convenient, the user's operation time is reduced, and the cost is lower.
[0119] Method 3: The adjustment structure 3 also includes a mounting beam 36. The first adjustment member 31 and the second adjustment member 32 are both set to at least two and are telescopically connected in a one-to-one correspondence. At least two second adjustment members 32 are connected to the mounting beam 36 at intervals. The mounting beam 36 is used to connect to the mounting body 300.
[0120] In this way, by connecting the mounting beam 36 between at least two second adjusting members 32, at least two first adjusting members 31 and at least two second adjusting members 32 can be opened or closed simultaneously relative to the photovoltaic mounting member 1, and at least two first adjusting members 31 can simultaneously drive the included angle between the photovoltaic mounting member 1 and the mounting body 300, thereby improving the overall stability and reliability of the photovoltaic bracket 100 structure, and the operation process is simple and convenient.
[0121] In practical design, such as Figure 4As shown, there are two first adjusting members 31 and two second adjusting members 32. The two first adjusting members 31 and two second adjusting members 32 are telescopically connected in a one-to-one correspondence, forming two sets of telescopic structures. The two sets of telescopic structures are distributed at intervals, and the two first adjusting members 31 are rotatably connected to both sides of the photovoltaic mounting component 1. A mounting beam 36 connects the two second adjusting members 32. The mounting beam 36 is connected to the ends of the two second adjusting members 32 away from the first adjusting members 31, and is used to connect with the mounting body 300, so that the adjusting structure 3 can be connected to the mounting body 300. The number of first adjusting members 31 and second adjusting members 32 is not limited to that described in this embodiment, and can also be three, four, etc.
[0122] The two ends of the mounting beam 36 are detachably connected to the two second adjusting members 32 by bolts or other fasteners. The mounting beam 36 and the two second adjusting members 32 support each other, which can improve the structural strength and stability of the adjusting structure 3, effectively resist external forces, and ensure that the photovoltaic bracket 100 can operate safely and stably in various environments.
[0123] In some embodiments, the mounting beam 36 is provided with a connecting latch 361, which includes a connecting plate 362 and two second connecting members 363. Both second connecting members 363 are movably inserted through the connecting plate 362 and the mounting beam 36. A passage space 364 is formed between the two second connecting members 363 for at least another part of the mounting body 300 to pass through. The two second connecting members 363 are adapted to clamp at least another part of the mounting body 300 by driving the connecting plate 362 and the mounting beam 36 when they are in motion.
[0124] In other words, at least another part of the mounting body 300 passes through the through space 364 between the two second connectors 363. Since both second connectors 363 are movably passed through the connecting plate 362 and the mounting beam 36, the connecting plate 362 and the mounting beam 36 can clamp at least another part of the mounting body 300 respectively. The mounting beam 36 and the mounting body 300 are connected and fixed by the connecting latch 361. Furthermore, the mounting body 300 is clamped by the connecting plate 362 and the mounting beam 36, which can effectively prevent the mounting body 300 from loosening.
[0125] In practical design, such as Figure 4 As shown, the mounting beam 36 is provided with a sliding groove 365 for connecting with the connecting latch 361, and the sliding groove 365 extends along the length direction of the mounting beam 36, allowing the connecting latch 361 to move along the length direction of the mounting beam 36. For example... Figure 17As shown, the connecting latch 361 includes a connecting plate 362 and two second connecting members 363. The connecting plate 362 is provided with a movable groove 3621 for the second connecting members 363 to pass through. The movable groove 3621 and the sliding groove 365 can extend in the same direction. The two second connecting members 363 are spaced apart along the length of the movable groove 3621, and the two second connecting members 363 are spaced apart to form a passing space 364 for the mounting body 300 to pass through.
[0126] Each of the second connecting parts 363 includes a locking bolt and a T-nut. The two T-nuts are installed in the sliding groove 365 at intervals. In actual installation, when the mounting body 300 passes through the through space 364, the two locking bolts are respectively passed through the movable groove 3621 and threadedly connected to the two T-nuts one by one, so that the mounting beam 36 and the mounting body 300 can be connected and fixed.
[0127] Furthermore, there can be at least two connecting latches 361, which can connect the mounting beam 36 to the mounting body 300, thereby improving the reliability and stability of the connection. Specifically, there can be two, three, four, or other connecting latches 361.
[0128] Therefore, by setting the connecting latch 361 to connect the mounting beam 36 to at least another part of the mounting body 300, and by using the hook assembly 2 to connect the upper end of the photovoltaic mounting component 1 to at least a part of the mounting body 300, the photovoltaic bracket 100 can be connected to the mounting body 300. The connection process is simple and convenient, and the connection is firm and reliable, enabling the photovoltaic bracket 100 to maintain high stability under various natural environments and external forces, effectively resisting adverse factors such as strong winds and vibrations, reducing the risk of damage to the photovoltaic module 200, ensuring the stable operation of the photovoltaic module 200, and avoiding potential safety hazards caused by the instability of the photovoltaic bracket 100.
[0129] The terms "first," "second," etc., used in the specification and claims of this application are used to distinguish similar objects and not to describe a specific order or sequence. It should be understood that such use of data can be interchanged where appropriate so that embodiments of this application can be implemented in orders other than those illustrated or described herein, and the objects distinguished by "first," "second," etc., are generally of the same class and the number of objects is not limited; for example, a first object can be one or more. Furthermore, in the specification and claims, "and / or" indicates at least one of the connected objects, and the character " / " generally indicates that the preceding and following objects are in an "or" relationship.
[0130] In the description of this application, it should be understood that the terms "center", "longitudinal", "lateral", "length", "width", "thickness", "upper", "lower", "front", "rear", "left", "right", "vertical", "horizontal", "top", "bottom", "inner", "outer", "clockwise", "counterclockwise", "axial", "radial", "circumferential", etc., indicating the orientation or positional relationship based on the orientation or positional relationship shown in the accompanying drawings, are only for the convenience of describing this application and simplifying the description, and do not indicate or imply that the device or element referred to must have a specific orientation, or be constructed and operated in a specific orientation, and therefore should not be construed as a limitation of this application.
[0131] In the description of this application, "first feature" and "second feature" may include one or more of the features.
[0132] In the description of this application, "multiple" means two or more.
[0133] In the description of this application, the first feature being "above" or "below" the second feature may include the first and second features being in direct contact, or the first and second features being in contact through another feature between them.
[0134] In the description of this application, the terms "above," "over," and "on top" for the first feature and the second feature include the first feature being directly above or diagonally above the second feature, or simply indicate that the first feature is at a higher horizontal level than the second feature.
[0135] In the description of this specification, the references to terms such as "one embodiment," "some embodiments," "illustrative embodiment," "example," "specific example," or "some examples," etc., indicate that a specific feature, structure, material, or characteristic described in connection with that embodiment or example is included in at least one embodiment or example of this application. In this specification, the illustrative expressions of the above terms do not necessarily refer to the same embodiment or example. Furthermore, the specific features, structures, materials, or characteristics described may be combined in any suitable manner in one or more embodiments or examples.
[0136] Although embodiments of this application have been shown and described, those skilled in the art will understand that various changes, modifications, substitutions and alterations can be made to these embodiments without departing from the principles and spirit of this application, the scope of which is defined by the claims and their equivalents.
Claims
1. A photovoltaic support structure, characterized in that, include: Photovoltaic installation components; A hook assembly is connected to the upper end of the photovoltaic mounting component and is used to connect to the mounting body; The hook assembly includes a flexible hook member, which has a fitting opening for at least a partial fitting with the mounting body. The flexible hook member is adapted to be flexibly deformed so that the size of the fitting opening is adjustable.
2. The photovoltaic mount of claim 1, wherein, The hook assembly also includes a mounting plate for connecting to the photovoltaic mounting component; One end of the flexible hook is connected to the mounting plate, and the other end of the flexible hook is connected to the mounting plate in an adjustable position so that the size of the fitting opening is adjustable.
3. The photovoltaic support according to claim 2, characterized in that, One of the mounting plate and the other end of the flexible connector is provided with at least two mounting parts and the other is provided with at least one connecting part, the connecting part being adapted to cooperate with any of the mounting parts.
4. The photovoltaic mount of claim 3, wherein, It also includes a first connector, wherein the mounting part is configured as a mounting hole, the connecting part is configured as a connecting hole, and the first connector is adapted to pass through the mounting hole and the connecting hole; And / or, the connecting portion is provided on the flexible hook, and the connecting portion is provided in multiple ways, and the multiple connecting portions are spaced apart in the length direction of the flexible hook.
5. The photovoltaic mount of claim 3, wherein, The mounting portion is disposed on the mounting plate, and at least two mounting portions are spaced apart on the mounting plate along the length direction of the flexible hook; And / or, at least one of the mounting portions is configured as an elongated mounting portion, and the mating position of the connecting portion with the elongated mounting portion is adjustable.
6. The photovoltaic mount of claim 2, wherein, One end of the flexible connector is connected to the top of the mounting plate, and the mounting plate has a connecting angle code on the side opposite to the flexible connector. The connecting angle code is detachably connected to the photovoltaic mounting component. And / or, the flexible connector includes a connector body and a protective strip, the protective strip covering at least a portion of the connector body.
7. The photovoltaic mount of any one of claims 1-6, wherein, Also includes: An adjustment structure is provided, one end of which is connected to the mounting body and the other end is connected to the photovoltaic mounting component. The adjustment structure is configured to be length-adjustable to drive the photovoltaic mounting component to rotate relative to the hook assembly.
8. The photovoltaic support according to claim 7, characterized in that, The adjustment structure includes a first adjustment member and a second adjustment member. The first adjustment member is rotatably connected to the photovoltaic mounting component. The first adjustment member and the second adjustment member are telescopically connected. The second adjustment member is used to connect to the mounting body. Specifically, when the first adjusting member and the second adjusting member extend or retract relative to each other, they are adapted to drive the photovoltaic mounting component to rotate relative to the mounting body.
9. The photovoltaic bracket according to claim 8, characterized in that, It also includes at least one of the following methods: Method 1: The first adjusting component and the photovoltaic mounting component are connected by a rotating shaft. The rotating shaft is equipped with a pre-tensioning torsion spring, which is connected to the first adjusting component and the photovoltaic mounting component respectively, so as to pre-tension the relative angle between the first adjusting component and the photovoltaic mounting component. Method 2: The adjustment structure further includes a locking member, which is movably connected to one of the first adjustment member and the second adjustment member, and is selectively locked to the other of the first adjustment member and the second adjustment member; Method 3: The adjustment structure further includes a mounting beam. The first adjustment member and the second adjustment member are each configured as at least two and are telescopically coupled in a one-to-one correspondence. At least two second adjustment members are spaced apart and connected to the mounting beam. The mounting beam is used to connect to the mounting body.
10. The photovoltaic bracket according to claim 9, characterized in that, The mounting beam is provided with a connecting latch, which includes a connecting plate and two second connecting members, both of which can be movably inserted through the connecting plate and the mounting beam; Wherein, a passage space is formed between the two second connectors for passing through at least another part of the mounting body, and the two second connectors are adapted to clamp the connecting plate and the mounting beam to the at least other part of the mounting body when they are in motion.