Offshore photovoltaic module supplementary installation structure
By designing detachable rod connection components and limiting components, a stable support structure for offshore photovoltaic modules is formed, which solves the problems of insufficient safety and convenience in the installation and operation and maintenance of offshore photovoltaic modules, and realizes safe and efficient operation of offshore photovoltaic modules.
Patent Information
- Application Number
- CN202520255293.1
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-02-18
- Publication Date
- 2025-12-30
- Estimated Expiration
- 2035-02-18
AI Technical Summary
During the installation and maintenance of offshore photovoltaic modules, the existing folding ladders cannot meet the requirements of both safety and convenience, especially in complex marine environments, where they suffer from insufficient stability and convenience.
A marine photovoltaic module repair structure is provided, including a first connecting component, a second connecting component, and a support component. Through detachably connected rods and limiting components, a stable support structure is formed, which is applicable to multiple positions of the upper support structure, improving convenience and safety.
The structure enhances overall strength through the design of the relative positions and connections of the rods, ensuring safe support and convenient operation for workers on offshore photovoltaic modules, and adapting to the needs of different working positions.
Smart Images

Figure CN223744626U_ABST
Abstract
Description
Technical Field
[0001] This disclosure relates to the field of marine photovoltaic technology, and more specifically, to a marine photovoltaic module repair structure. Background Technology
[0002] Photovoltaics is a device that converts solar energy into electrical energy. Due to the cleanliness and ease of access to solar energy, photovoltaic projects have a wide range of applications. A photovoltaic project typically includes a large number of photovoltaic structures, which may include photovoltaic mounting systems, multiple photovoltaic panels, and cables. The photovoltaic panels are laid on the photovoltaic mounting systems. The installation and maintenance of each component require the assistance of personnel; therefore, ladder structures are needed to assist personnel in the installation and maintenance of photovoltaic modules.
[0003] For photovoltaic projects at sea, the structures of each component are complex and large. After the initial hoisting of each component, further manual installation and adjustments are required. Therefore, a construction platform is needed to provide support for the operators. However, due to the numerous safety hazards at sea, the requirements for the safety and convenience of the construction platform are higher. Currently, commonly used folding ladders can provide support for the operators, but their structure cannot meet the needs of both stability and convenience in offshore construction operations.
[0004] It should be noted that the information disclosed in the background section above is only used to enhance the understanding of the background of this disclosure, and therefore may include information that does not constitute prior art known to those skilled in the art. Utility Model Content
[0005] In view of this, a marine photovoltaic module repair structure is provided. This structure is used to repair marine photovoltaic modules and can be applied to various parts of the upper support structure of marine photovoltaics, taking into account both safety and ease of use.
[0006] Other features and advantages of this disclosure will become apparent from the following detailed description, or may be learned in part from practice of this disclosure.
[0007] According to one aspect of this disclosure, a marine photovoltaic module installation structure is provided. The marine photovoltaic system includes an upper support structure for supporting photovoltaic panels. The upper support structure is composed of multiple rods joined together. The structure includes:
[0008] A first connecting assembly includes a plurality of first connecting rods and at least one second connecting rod. The second connecting rods are cross-connected with the plurality of first connecting rods. The plurality of first connecting rods extend in the same direction and are arranged sequentially along the extension direction of the second connecting rods. At least one first connecting rod has a first limiting member at both ends. The first connecting assembly is detachably connected between two adjacent rods through the first limiting member.
[0009] The second connecting assembly includes a plurality of third links and at least one fourth link. The fourth link is cross-connected to the plurality of third links. The plurality of third links extend in the same direction and are arranged sequentially along the extension direction of the fourth link. At least one third link has a second limiting member at both ends. The second connecting assembly is detachably connected between two adjacent links through the second limiting member. The first connecting assembly and the second connecting assembly are disposed opposite to each other.
[0010] A support assembly, the support assembly including at least one support rod, one end of the support rod being disposed on a first connecting rod, and the other end of the support rod being disposed on a third connecting rod.
[0011] In one exemplary embodiment of this disclosure, the number of the second link is one, and the first connecting assembly includes at least a first sub-link and a second sub-link. The first sub-link is fixedly connected to one end of the second link, and the second sub-link is fixedly connected to the other end of the second link.
[0012] In one exemplary embodiment of this disclosure, there is one second link, which is cross-connected with a plurality of first links, and both ends of the second link extend outside the area where the first connecting assembly is located.
[0013] In one exemplary embodiment of this disclosure, a plurality of first links are arranged parallel to each other, and a second link is perpendicular to the plurality of first links.
[0014] In one exemplary embodiment of this disclosure, the lengths of the plurality of first links increase or decrease sequentially in the extension direction of the second link.
[0015] In one exemplary embodiment of this disclosure, the number of the first link and the third link is 3 to 10.
[0016] In one exemplary embodiment of this disclosure, the support rod is connected to the first connecting rod in an overlapping manner; the support rod is also connected to the third connecting rod in an overlapping manner.
[0017] In one exemplary embodiment of this disclosure, the support rod further includes a first limiting portion and a second limiting portion. One end of the first limiting portion is connected to one end of the support rod, and one end of the second limiting portion is connected to the other end of the support rod. The other ends of the first limiting portion and the other ends of the second limiting portion both extend in a direction perpendicular to the extension of the support rod. The first limiting portion is engaged with the first connecting rod, and the second limiting portion is engaged with the third connecting rod.
[0018] In one exemplary embodiment of this disclosure, the support rod is welded to the first connecting rod; the support rod is also welded to the third connecting rod.
[0019] In one exemplary embodiment of this disclosure, the first limiting member and the second limiting member are clamps.
[0020] The offshore photovoltaic module repair structure disclosed herein is installed on the upper support structure of the offshore photovoltaic system. The structure includes a first connecting component, a second connecting component, and a support component. The first and second support components are detachably connected to rods within the upper support structure. This structure can be used for repairing offshore photovoltaic modules and is applicable to multiple locations within the upper support structure, improving ease of use. Through the relative positional and connection relationships of the rods within the first and second connecting components, as well as the cooperative relationships between the first, second, and support components, the overall strength of the structure is improved, ensuring support and safety for workers operating on the structure.
[0021] It should be understood that the above general description and the following detailed description are exemplary and explanatory only, and are not intended to limit this disclosure. Attached Figure Description
[0022] The accompanying drawings, which are incorporated in and form part of this specification, illustrate embodiments consistent with this disclosure and, together with the description, serve to explain the principles of this disclosure. It is obvious that the drawings described below are merely some embodiments of this disclosure, and those skilled in the art can obtain other drawings based on these drawings without any inventive effort.
[0023] Figure 1 This is a partial structural diagram of a marine photovoltaic module replenishment structure according to an exemplary embodiment of the present disclosure.
[0024] Figure 2 This is a schematic diagram of another part of the marine photovoltaic module replenishment structure in an exemplary embodiment of this disclosure.
[0025] Figure 3This is a schematic diagram of the connection relationship of the support components of a marine photovoltaic module replenishment structure in an exemplary embodiment of this disclosure.
[0026] Figure 4 This is a schematic diagram of the structure of a first connecting component or a second connecting component in an exemplary embodiment of this disclosure.
[0027] Figure 5 This is a schematic diagram of the structure of another first or second connecting component in an exemplary embodiment of this disclosure.
[0028] Figure 6 This is a schematic diagram of the structure of another first or second connecting component in an exemplary embodiment of this disclosure.
[0029] Figure 7 This is a schematic diagram of the structure of a support component in an exemplary embodiment of this disclosure.
[0030] The reference numerals in the attached figures are explained as follows:
[0031] 100. Upper support structure; 200. Rod; 10. First connecting assembly; 11. First connecting rod; 12. Second connecting rod; 13. First limiting member; 101. First sub-connecting rod; 102. Second sub-connecting rod; 20. Second connecting assembly; 21. Third connecting rod; 22. Fourth connecting rod; 23. Second limiting member; 103. Third sub-connecting rod; 104. Fourth sub-connecting rod; 30. Support assembly; 301. Support rod; 31. First limiting part; 32. Second limiting part. Detailed Implementation
[0032] Exemplary embodiments will now be described more fully with reference to the accompanying drawings. However, these exemplary embodiments can be implemented in many forms and should not be construed as limited to the embodiments set forth herein; rather, they are provided so that this disclosure will be thorough and complete, and will fully convey the concept of the exemplary embodiments to those skilled in the art. The same reference numerals in the drawings denote the same or similar structures, and therefore detailed descriptions of them will be omitted. Furthermore, the drawings are merely illustrative of this disclosure and are not necessarily drawn to scale.
[0033] Although relative terms such as "up" and "down" are used in this specification to describe the relative relationship of one component of an icon to another, these terms are used only for convenience, such as according to the orientation of the examples shown in the accompanying drawings. It is understood that if the device of the icon is flipped upside down, the component described as "up" will become the component described as "down." When a structure is "up" of another structure, it may mean that the structure is integrally formed on the other structure, or that the structure is "directly" mounted on the other structure, or that the structure is "indirectly" mounted on the other structure through another structure.
[0034] The terms “a,” “one,” “the,” “the,” and “at least one” are used to indicate the presence of one or more elements / components / etc.; the terms “including” and “having” are used to indicate an open-ended inclusion and to mean that there may be other elements / components / etc. in addition to the listed elements / components / etc.; the terms “first,” “second,” and “third,” etc., are used only as markers and are not a limitation on the number of objects.
[0035] In related technologies, offshore photovoltaic (PV) systems include support units and PV modules installed on these units. The PV modules convert solar energy into electricity. The support units typically consist of pile foundations and a superstructure. The superstructure of the PV modules is quite complex, usually involving initial assembly on land followed by sea transport and hoisting. Manual adjustments and refinements to the superstructure are then made to ensure it meets engineering requirements. Further detailed installation and adjustments of the PV modules are unavoidable. Due to the large size of the superstructure, adjustments to the PV modules are necessary at different locations. Therefore, providing a work platform applicable to multiple different parts of the superstructure, offering reliable and safe support, and facilitating personnel climbing to predetermined positions on the superstructure for operation is a crucial problem that needs to be solved.
[0036] Based on this, the present disclosure provides a marine photovoltaic module replenishment structure, such as... Figure 1 As shown, combined with Figures 2 to 3 The structure includes: a first connecting component 10, a second connecting component 20, and a support component 30.
[0037] The first connecting assembly 10 includes a plurality of first connecting rods 11 and at least one second connecting rod 12. The second connecting rod 12 is cross-connected to the plurality of first connecting rods 11. The plurality of first connecting rods 11 extend in the same direction and are arranged sequentially along the extension direction of the second connecting rod 12. At least one first connecting rod 11 has a first limiting member 13 at both ends. The first connecting assembly 10 is detachably connected between two adjacent rods 200 through the first limiting member 13. The second connecting assembly 20 includes a plurality of third connecting rods 21 and at least one fourth connecting rod 22. The fourth connecting rod 22 is connected to the plurality of third connecting rods 21. The rods 21 are cross-connected, and the extension directions of the multiple third links 21 are the same. The multiple third links 21 are arranged sequentially along the extension direction of the fourth link 22. At least one third link 21 is provided with a second limiting member 23 at both ends. The second connecting assembly 20 is detachably connected between two adjacent rods 200 through the second limiting member 23. The first connecting assembly 10 and the second connecting assembly 20 are arranged opposite to each other. The support assembly 30 includes at least one support rod 301. One end of the support rod 301 is provided on a first link 11, and the other end of the support rod 301 is provided on a third link 21.
[0038] The offshore photovoltaic module repair structure disclosed herein is installed on the upper support structure 100 of the offshore photovoltaic system. The structure includes a first connecting component 10, a second connecting component 20, and a support component 30. The first and second support components 30 are detachably connected to rods 200 within the upper support structure 100, allowing for placement at multiple locations within the upper support structure 100. This improves the structure's compatibility with the upper support structure 100 and its ease of use. Through the relative positional and connection relationships of the connecting rods within the first connecting component 10 and the second connecting component 20, as well as the direct cooperation between the first connecting component 10, the second connecting component 20, and the support component 30, the overall strength of the structure is enhanced, ensuring support and safety for workers operating on the structure.
[0039] In this disclosure, offshore photovoltaic systems may include an upper support structure 100 for supporting photovoltaic modules. In the actual structure, the specific positional relationship between the upper support structure 100 and the sea level can be selected according to the specific angle requirements of the photovoltaic modules. For example, to improve the functionality of the photovoltaic modules, the angle between the photovoltaic modules and the sea level can be 15°, and consequently, the angle between the upper support structure 100 and the sea level can also be 15°. In this disclosure, the angle between the upper support structure 100 and the sea level can refer to the angle between the upper surface, lower surface, or a certain cross-section of the upper support structure 100 and the sea level. The specific plane selected can be chosen according to actual design or application requirements, and this disclosure does not impose specific limitations.
[0040] The upper support structure 100 is assembled from multiple rods 200. For example, the upper support structure 100 can be a grid structure connected by multiple upper chords, multiple lower chords, and multiple web members. The upper chords can refer to multiple rod-shaped structures that are in contact with the photovoltaic panels and provide direct support to the photovoltaic modules. The lower chords can refer to multiple rod-shaped structures that are far from the photovoltaic panels and close to the sea level and connected to the offshore pile foundation. The offshore pile foundation is fixed at one end in the sea and extends above the sea level at the other end. The offshore pile foundation is fixed and connected to the upper support structure 100 to form an overall support and fixing system for the photovoltaic modules.
[0041] The structure disclosed herein can be detachably connected to the rods 200 within the upper support structure 100, depending on the actual working location of the offshore photovoltaic system. It can be detachably connected to either the upper chord or the lower chord within the upper support structure 100. The rods 200 within the upper support structure 100 provide support for the structure, thereby enabling operators to perform installation and maintenance of the offshore photovoltaic modules.
[0042] The following will describe in detail the various parts of the marine photovoltaic module replenishment structure provided in the embodiments of this disclosure with reference to the accompanying drawings:
[0043] In the embodiments provided in this disclosure, such as Figure 1 As shown, combined with Figures 2 to 6 The structure includes a first connecting component 10, which includes a first link 11 and a second link 12. There are multiple first links 11 and at least one second link 12. The first links 11 and the second links 12 are arranged intersectingly, and the multiple first links 11 extend in the same direction and are arranged sequentially along the extension direction of the second links 12.
[0044] In some embodiments, the plurality of first links 11 extend in the same direction and are arranged parallel to each other, forming the main structure of the first connecting assembly 10. Further, the number of first links 11 can be 3 to 10, for example, 3, 4, 5, 6, 7, 8, 9, or 10. For example, the number of first links 11 can be 6, which can ensure the structural strength of the first connecting assembly 10 and provide sufficient support for the overall structure.
[0045] Since the first link 11 and the second link 12 are connected to each other, the lengths of the multiple first links 11 increase or decrease sequentially in the extension direction of the second link 12. That is, the outer contour of the first connecting assembly 10 composed of multiple first links 11 can be triangular or triangular-like, forming a stable support structure.
[0046] It should be noted that, since the first connecting component 10 is disposed between two adjacent rods 200, that is, the two ends of the multiple first connecting rods 11 are respectively connected to two adjacent rods 200, the connection relationship between the first connecting component 10 and the upper support structure 100 is ensured, so that the upper support structure 100 provides support force for the first connecting component 10.
[0047] Furthermore, the lengths of the multiple first links 11 can be selected and adjusted according to the distance between two adjacent links 200. In this disclosure, the two adjacent links 200 usually form a triangular or triangular structure. Multiple first links 11 are set between two adjacent links 200, and the distance between different adjacent links 200 is different. The first link 11 can be a telescopic rod or a length-adjustable link 200. When the first link 11 is set between two different adjacent links 200, the length of the first link 11 can be adjusted adaptively. However, it should be understood that the lengths of the multiple first links 11 still increase or decrease sequentially.
[0048] In some embodiments, the number of second links 12 is at least one. For example, such as... Figure 4 and Figure 5 As shown, there can be one second link 12, and the second link 12 and the multiple first links 11 are all arranged perpendicularly to each other. For example, as shown... Figure 6 As shown, there can be multiple second connecting rods 12. These multiple second connecting rods 12 are intersected with multiple first connecting rods 11, and one end of each second connecting rod 12 can converge to a single point to facilitate connection between adjacent rods 200 within the upper support structure 100. In this disclosure, by providing second connecting rods 12 in the first connecting assembly 10, the structural strength of the first connecting assembly 10 can be increased. Furthermore, due to the arrangement of the second connecting rods 12, the multiple first connecting rods 11 are divided into two parts. After the first connecting assembly 10 is fixed to the upper support structure 100, workers can use the two different parts of the first connecting rods 11 as climbing supports to change their position; that is, the first connecting rods 11 can also provide support for the workers.
[0049] In some embodiments, the number of second links 12 is one, and the first connecting assembly 10 includes at least a first sub-link 101 and a second sub-link 102. The first sub-link 101 is fixedly connected to one end of the second link 12, and the second sub-link 102 is fixedly connected to the other end of the second link 12, so that the first link 11 and the second link 12 form the first connecting assembly 10.
[0050] In some embodiments, such as Figure 5 As shown, there is one second link 12. The second link 12 is cross-connected with multiple first links 11, and both ends of the second link 12 extend outside the area where the first connecting assembly 10 is located. The two ends of the second link 12 can be fixedly connected to the ends of the rods 200 or other rods 200 in the upper support structure 100, further improving the connection stability and safety of the structure on the upper support structure 100.
[0051] The connection between the second link 12 and the upper support structure 100 can be a detachable connection, such as screw connection or snap connection. The detachable connection facilitates the movement of the first connecting component 10 and improves the versatility of the first connecting component 10.
[0052] The first connecting rod 11 and the second connecting rod 12 can be fixedly connected or detachably connected. For example, a fixed connection, such as welding, can be used to improve the structural strength of the first connecting assembly 10 and enhance the overall stability of the structure. Alternatively, a detachable connection, such as screwing or riveting, can be used, allowing the first connecting assembly 10 to be disassembled after use, thus improving the ease of use and flexibility of the structure.
[0053] To enable the first connecting assembly 10 to connect to the upper support structure 100, at least one first connecting rod 11 has a first limiting member 13 at both ends. The first connecting assembly 10 is detachably connected between two adjacent rods 200 via the first limiting member 13. To ensure the connection stability between the first connecting assembly 10 and the upper support structure 100, each first connecting rod 11 may have a first limiting member 13 at both ends. The first limiting member 13 may be a clamp, clip, or bolt, but to facilitate disassembly between the first connecting rod 11 and the upper support structure 100, the first limiting member 13 may be a clamp.
[0054] The first connecting component 10 provided in the above embodiments of this disclosure can be used as a separate support structure, which can provide support for workers after being connected to the upper support structure 100. It can also cooperate with the second connecting component 20 and the support component 30 to further improve the support stability and safety of the structure. In addition, since the first connecting component 10 and the upper support structure 100 are detachably connected, the flexibility and convenience of using the first connecting component 10 can be improved.
[0055] In the embodiments provided in this disclosure, such as Figure 1 As shown, combined with Figures 2 to 6 The structure includes a second connecting component 20, which includes a third link 21 and a fourth link 22. There are multiple third links 21 and at least one fourth link 22. The third links 21 and fourth links 22 are arranged intersectingly, with the multiple third links 21 extending in the same direction and arranged sequentially along the extension direction of the fourth link 22.
[0056] In some embodiments, the plurality of third links 21 extend in the same direction and are arranged parallel to each other, forming the main structure of the second connecting assembly 20. Further, the number of third links 21 can be 3 to 10, for example, 3, 4, 5, 6, 7, 8, 9, or 10. For example, the number of third links 21 can be 6, which ensures the structural strength of the second connecting assembly 20 and facilitates providing sufficient support for the overall structure.
[0057] Since the third link 21 and the fourth link 22 are interconnected, the lengths of the multiple third links 21 increase or decrease sequentially in the extension direction of the fourth link 22. That is, the outer contour of the second connecting assembly 20 composed of multiple third links 21 can be triangular or triangular-like, forming a stable support structure.
[0058] It should be noted that, since the second connecting component 20 is disposed between two adjacent rods 200, that is, the two ends of the multiple third connecting rods 21 are respectively connected to two adjacent rods 200, the connection relationship between the second connecting component 20 and the upper support structure 100 is ensured, so that the upper support structure 100 provides support force for the second connecting component 20.
[0059] Furthermore, the lengths of the multiple third links 21 can be selected and adjusted according to the distance between two adjacent links 200. In this disclosure, the two adjacent links 200 usually form a triangular or triangular structure. Multiple third links 21 are set between two adjacent links 200. The distance between different adjacent links 200 is different. The third link 21 can be a telescopic rod or a length-adjustable link 200. When the third link 21 is set between two different adjacent links 200, the length of the third link 21 can be adjusted adaptively. However, it should be understood that the lengths of the multiple third links 21 still increase or decrease sequentially.
[0060] In some embodiments, the number of fourth links 22 is at least one. For example, as shown... Figure 4 and Figure 5 As shown, there can be one fourth link 22, and the fourth link 22 and the multiple third links 21 are all arranged perpendicularly to each other. For example, as shown... Figure 6 As shown, there can be multiple fourth links 22, which are intersected with multiple third links 21. One end of each fourth link 22 can converge to a single point to facilitate connection between adjacent members 200 within the upper support structure 100. In this disclosure, by incorporating fourth links 22 into the second connecting assembly 20, the structural strength of the second connecting assembly 20 is increased. Furthermore, the fourth links 22 divide the multiple third links 21 into two parts. After the third connecting assembly is fixed to the upper support structure 100, workers can utilize the two different parts of the third links 21 as climbing structures to change their position; that is, the third links 21 can also provide support for the workers.
[0061] In some embodiments, the number of fourth links 22 is one, and the second connecting assembly 20 includes at least a third sub-link 103 and a fourth sub-link 104. The third sub-link 103 is fixedly connected to one end of the fourth link 22, and the fourth sub-link 104 is fixedly connected to the other end of the fourth link 22, so that the third link 21 and the fourth link 22 form the second connecting assembly 20.
[0062] In some embodiments, such as Figure 5 As shown, there is one fourth link 22. The fourth link 22 is cross-connected with multiple third links 21, and both ends of the fourth link 22 extend outside the area where the second connecting component 20 is located. The two ends of the fourth link 22 can be fixedly connected to the ends of the rods 200 or other rods 200 in the upper support structure 100, further improving the connection stability and safety of the structure on the upper support structure 100.
[0063] The connection between the fourth link 22 and the upper support structure 100 can be detachable, such as screwed or snap-fit. This detachable connection facilitates the movement of the second connecting component 20 and improves its versatility.
[0064] The third link 21 and the fourth link 22 can be connected in a fixed or detachable manner. For example, a fixed connection, such as welding, can be used to improve the structural strength of the second connecting assembly 20 and enhance the overall stability of the structure. Alternatively, a detachable connection, such as screwing or riveting, can be used, allowing the second connecting assembly 20 to be disassembled after use, thus improving the ease of use and flexibility of the structure.
[0065] To enable the second connecting assembly 20 to connect to the upper support structure 100, at least one third connecting rod 21 has second limiting members 23 at both ends. The second connecting assembly 20 is detachably connected between two adjacent rods 200 via the second limiting members 23. To ensure the connection stability between the second connecting assembly 20 and the upper support structure 100, each third connecting rod 21 may have a second limiting member 23 at both ends. The second limiting member 23 may be a clamp, clip, or bolt, but to facilitate disassembly between the third connecting rod 21 and the upper support structure 100, the second limiting member 23 may be a clamp.
[0066] The second connecting component 20 provided in the above embodiments of this disclosure can be used as a separate support structure, which can provide support for workers after being connected to the upper support structure 100. It can also cooperate with the first connecting component 10 and the support component 30 to further improve the support stability and safety of the structure. In addition, since the second connecting component 20 is detachably connected to the upper support structure 100, the flexibility and convenience of using the second connecting component 20 can be improved.
[0067] In the embodiments provided in this disclosure, the second connecting component 20 is disposed opposite to the first connecting component 10, meaning that the two adjacent rods 200 connected to the first connecting component 10 are different from the two adjacent rods 200 connected to the second connecting component 20. The structural layout of the first connecting component 10 can be the same as or similar to the structural layout of the second connecting component 20. For example, the number, distance, and connection relationship of each link in the first connecting component 10 can be the same or approximately the same, in order to facilitate mass production and improve economy. Of course, the structural layouts of the first connecting component 10 and the second connecting component 20 can also be different, such as using different numbers of links, different distances between links, etc., so that the first connecting component 10 and the second connecting component 20 can adapt to different usage requirements and improve the versatility of the structure.
[0068] In the embodiments provided in this disclosure, such as Figures 1 to 3 As shown, combined with Figure 7 The structure also includes a support assembly 30, which includes at least one support rod 301. One end of the support rod 301 is mounted on a first connecting rod 11, and the other end is mounted on a third connecting rod 21. By connecting the first connecting assembly 10 and the second connecting assembly 20 through the support assembly 30, the overall stability and safety of the structure can be improved. Furthermore, the support assembly 30 can provide support positions for workers, allowing them to perform operations from different locations.
[0069] In some embodiments, the support rod 301 is welded to the first connecting rod 11 and to the third connecting rod 21 to improve the stability of the support rod 301 in the structure and avoid instability caused by the movement of the support rod 301 during operation.
[0070] In some embodiments, the support rod 301 is connected to the first connecting rod 11 and to the third connecting rod 21, so as to make the support rod 301 detachable from the first connecting component 10 and the second connecting component 20, thereby improving the overall portability and flexibility of the structure.
[0071] Among them, such as Figure 7 As shown, the support rod 301 also includes a first limiting part 31 and a second limiting part 32. One end of the first limiting part 31 is connected to one end of the support rod 301, and one end of the second limiting part 32 is connected to the other end of the support rod 301. The other ends of the first limiting part 31 and the other ends of the second limiting part 32 both extend in a direction perpendicular to the extension of the support rod 301. The first limiting part 31 is engaged with the first connecting rod 11, and the second limiting part 32 is engaged with the third connecting rod 21.
[0072] The first limiting part 31 and the second limiting part 32 can be a short rod structure or other structures, such as a clamp or buckle, so that the support assembly 30 can be disassembled through the first limiting part 31 and the second limiting part 32.
[0073] In this disclosure, the first link 11, the second link 12, the third link 21, the fourth link 22, and the support rod 301 can all adopt a rod-shaped structure, for example, a hollow rod or a solid rod, and their material can be a metal material, such as one or more of copper, iron, aluminum, and stainless steel. The materials and shapes of the components in the structure provided in this disclosure can be selected and adapted according to the actual design requirements of the structure, and this disclosure does not impose specific limitations.
[0074] Other embodiments of this disclosure will readily occur to those skilled in the art upon consideration of the specification and practice of the invention disclosed herein. This application is intended to cover any variations, uses, or adaptations of this disclosure that follow the general principles of this disclosure and include common knowledge or customary techniques in the art not disclosed herein. The specification and examples are to be considered exemplary only, and the true scope and spirit of this disclosure are indicated by the appended claims.
Claims
1. A replenishment structure for a marine photovoltaic assembly, the marine photovoltaic assembly comprising an upper support structure for supporting photovoltaic panels, the upper support structure being assembled from a plurality of bar members, characterised in that, The utility model relates to a kind of support assembly and support structure, including: First connecting component, the first connecting component includes multiple first connecting rods and at least one second connecting rod, the second connecting rod is crossed with multiple first connecting rods and is connected, the extension direction of multiple first connecting rods is identical, and multiple first connecting rods are sequentially arranged along the extension direction of the second connecting rod, the both ends of at least one first connecting rod are provided with first limiting piece, and the first connecting component is detachably connected between adjacent two bar members by the first limiting piece; Second connecting component, the second connecting component includes multiple third connecting rods and at least one fourth connecting rod, the fourth connecting rod is crossed with multiple third connecting rods and is connected, the extension direction of multiple third connecting rods is identical, and multiple third connecting rods are sequentially arranged along the extension direction of the fourth connecting rod, the both ends of at least one third connecting rod are provided with second limiting piece, and the second connecting component is detachably connected between adjacent two bar members by the second limiting piece, wherein the first connecting component is oppositely arranged with the second connecting component; Support component, the support component includes at least one support rod, one end of the support rod is arranged on one first connecting rod, and the other end of the support rod is arranged on the third connecting rod.
2. The offshore photovoltaic assembly make-up structure of claim 1, wherein, The number of the second connecting rod is one, the first connecting component includes at least first sub connecting rod and second sub connecting rod, the first sub connecting rod is fixedly connected with one end of the second connecting rod, and the second sub connecting rod is fixedly connected with the other end of the second connecting rod.
3. The offshore photovoltaic assembly make-up structure of claim 1, wherein, The number of the second connecting rod is one, the second connecting rod is crossed with multiple first connecting rods and is connected, and the two ends of the second connecting rod extend to the area outside the first connecting component respectively.
4. Offshore photovoltaic module retrofit structure according to claim 2 or 3, characterized in that, Multiple first connecting rods are arranged in parallel with each other, and the second connecting rod is perpendicular to multiple first connecting rods.
5. The offshore photovoltaic module make-up structure of claim 1, wherein, In the extension direction of the second connecting rod, the length of multiple first connecting rods increases sequentially or decreases sequentially.
6. The offshore photovoltaic assembly make-up structure of claim 5, wherein, The number of the first connecting rod and the third connecting rod is 3-10.
7. The offshore photovoltaic assembly make-up structure of claim 1, wherein, The support rod is lap jointed with the first connecting rod, and the support rod is lap jointed with the third connecting rod.
8. The offshore photovoltaic assembly make-up structure of claim 7, wherein, The support rod further includes first limiting part and second limiting part, one end of the first limiting part is connected to one end of the support rod, one end of the second limiting part is connected to the other end of the support rod, and the other end of the first limiting part and the other end of the second limiting part both extend along the direction perpendicular to the extension direction of the support rod, the first limiting part is clamped on the first connecting rod, and the second limiting part is clamped on the third connecting rod.
9. The offshore photovoltaic module make-up structure of claim 1, wherein, The support rod is welded with the first connecting rod, and the support rod is welded with the third connecting rod.
10. The offshore photovoltaic assembly make-up structure of claim 1, wherein, The first limiting piece and the second limiting piece are hoop.