Water surface photovoltaic platform

By setting connectors and adjustment plates between the combiner box float and the photovoltaic float, the safety hazards and connection difficulties of the traditional combiner box array platform are solved, and the close fit and convenient connection between the combiner box float and the photovoltaic float are achieved, thereby improving safety and stability.

CN223391305UActive Publication Date: 2025-09-26SUNGROW FPV SCI & TECH CO LTD
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Patent Information

Application Number
CN202422638823.9
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-10-30
Publication Date
2025-09-26
Estimated Expiration
2034-10-30

AI Technical Summary

Technical Problem

The uncertainty of the connection spacing between photovoltaic modules on traditional combiner box array platforms leads to safety hazards and difficulties in connection and fixation.

Method used

By arranging a connector between the combiner box float and the photovoltaic float, an adjustable spacing adjustment space is formed, and the ears and the adjustment plate are used to achieve a tight fitting connection between the two.

Benefits of technology

It improves the safety and connection convenience of the combiner box array platform, avoids the need to adjust the distance between adjacent combiner box floats, and enhances the overall stability and safety of operators.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses a water surface photovoltaic platform, which relates to the field of water surface photovoltaic technology and comprises a combiner box array platform and a photovoltaic array platform. The combiner box array platform comprises a plurality of combiner box floating bodies, and the adjacent combiner box floating bodies are tightly attached. The photovoltaic array platform comprises a plurality of photovoltaic floating bodies arranged at intervals, the photovoltaic floating bodies are connected with the combiner box floating bodies through connecting pieces, and the connecting pieces limit an adjusting space used for adjusting the distance between the photovoltaic floating bodies and the combiner box floating bodies. According to the water surface photovoltaic platform provided by the invention, the photovoltaic floating bodies and the combiner box floating bodies are connected through the connecting pieces, and the adjusting spaces are formed on the connecting pieces, so that the combiner box array platform can be connected with the photovoltaic floating bodies of the photovoltaic array platform without adjusting the distance between the adjacent combiner box floating bodies; therefore, the combiner box floating bodies can be tightly attached, the safety of the combiner box array platform is improved, and meanwhile, the convenience of connection between the combiner box floating bodies and the photovoltaic floating bodies is improved.
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Description

Technical Field

[0001] The present application relates to the field of water surface photovoltaic technology, and more specifically, to a water surface photovoltaic platform. Background Art

[0002] Photovoltaic power generation uses photovoltaic panels to receive sunlight and generate electricity through the photoelectric effect. Floating photovoltaics are a key branch of the photovoltaic industry. They offer numerous advantages over terrestrial photovoltaics, including higher efficiency, reduced evaporation, and the suppression of algae growth. Floating photovoltaics are typically achieved by constructing a floating photovoltaic platform on the water. These platforms typically consist of a combiner box array platform and a photovoltaic array platform.

[0003] Traditional combiner box array platforms are usually composed of combiner box floats of fixed sizes. In order to meet actual needs, the connection spacing between photovoltaic modules of the photovoltaic array platform usually needs to be adjusted according to actual conditions. At this time, the combiner box array platform needs to adjust the spacing between adjacent combiner box floats to achieve connection with the float of the photovoltaic array platform, resulting in the connection spacing between adjacent combiner box floats, which makes the combiner box array platform have a greater safety hazard.

[0004] In addition, due to the uncertainty of the connection spacing between photovoltaic modules, it is difficult to connect and fix the float of the junction box and the float of the photovoltaic array platform.

[0005] Therefore, how to improve the safety of the combiner box array platform has become a technical problem that needs to be solved urgently by those skilled in the art. Utility Model Content

[0006] In view of this, the purpose of this application is to provide a water surface photovoltaic platform to improve the safety of the combiner box array platform.

[0007] To achieve the above objectives, this application provides the following technical solutions:

[0008] A water surface photovoltaic platform, comprising:

[0009] A combiner box array platform, comprising a plurality of combiner box floats, wherein adjacent combiner box floats are tightly fitted together;

[0010] A photovoltaic array platform includes a plurality of photovoltaic floats arranged at intervals, wherein the photovoltaic floats are connected to the combiner box float via connectors, and the connectors limit an adjustment space for adjusting the distance between the photovoltaic floats and the combiner box float.

[0011] Optionally, in the above-mentioned water surface photovoltaic platform, the connecting piece includes:

[0012] A first ear portion is provided on the combiner box float, and the first ear portion is provided with a first mounting hole;

[0013] A second ear portion is provided on the photovoltaic float, and the second ear portion is provided with a second mounting hole;

[0014] an adjustment plate, wherein the adjustment plate is provided with a strip-shaped hole adapted to fit with the first mounting hole and the second mounting hole to form the adjustment space;

[0015] The first ear portion and the second ear portion are connected through the adjustment plate.

[0016] Optionally, in the above-mentioned surface photovoltaic platform, the first lugs are respectively provided on two end surfaces of the combiner box float, and the number of the first lugs on the same end surface of the combiner box float is two; and / or,

[0017] The second ear portions are respectively provided on the two end surfaces of the photovoltaic floating body, and the number of the second ear portions on the same end surface of the photovoltaic floating body is two.

[0018] Optionally, in the above-mentioned water surface photovoltaic platform, the first ear portion and the second ear portion are staggered in the vertical direction to form a space for accommodating the adjustment plate between the first ear portion and the second ear portion.

[0019] Optionally, in the above-mentioned surface photovoltaic platform, the combiner box array platform further includes a combiner device, and each of the combiner box floats is connected by at least two parallel first connecting rods, and the combiner device is supported on the first connecting rods.

[0020] Optionally, in the above-mentioned water surface photovoltaic platform, a notch for installing the first connecting rod is provided at the end of the combiner box float, the first connecting rod is located in the notch, and the first connecting rod is connected to the combiner box float via a fastener.

[0021] Optionally, in the above-mentioned water surface photovoltaic platform, the first connecting rod and the top surface of the combiner box float are on the same plane.

[0022] Optionally, in the above-mentioned water surface photovoltaic platform, the photovoltaic array platform further includes a photovoltaic component, each of the photovoltaic floating bodies is connected by at least two parallel second connecting rods, and the photovoltaic component is supported on the second connecting rods.

[0023] Optionally, in the above-mentioned water surface photovoltaic platform, a groove for installing the second connecting rod is opened on the photovoltaic floating body, the second connecting rod is embedded in the groove, and the second connecting rod is connected to the photovoltaic floating body by a fastener.

[0024] Optionally, in the above-mentioned water surface photovoltaic platform, the second connecting rod and the notch of the groove are in the same plane.

[0025] The surface photovoltaic platform provided by the present application is configured such that the individual combiner box floats of the combiner box array platform are tightly fitted together, and the combiner box floats are connected to the photovoltaic floats of the photovoltaic array platform via connectors, and an adjustment space for adjusting the spacing between the photovoltaic floats and the combiner box floats is formed on the connectors, which facilitates the connection between the combiner box floats and the photovoltaic floats when the combiner box floats are misaligned. As can be seen from the above example, the surface photovoltaic platform provided by the present application is configured such that the photovoltaic floats and the combiner box floats are connected via connectors, and an adjustment space for adjusting the spacing between the photovoltaic floats and the combiner box floats is formed on the connectors, so that the combiner box array platform can be connected to the photovoltaic floats of the photovoltaic array platform without adjusting the spacing between adjacent combiner box floats, thereby achieving a tight fit between the individual combiner box floats of the combiner box array platform, improving the safety of the combiner box array platform, and improving the convenience of the connection between the combiner box floats and the photovoltaic floats.

[0026] The technical features mentioned above, the technical features described below, and the technical features shown individually in the accompanying drawings may be combined arbitrarily, as long as the combined technical features do not conflict with each other. All possible feature combinations are technical contents explicitly described in this document. Any of the multiple sub-features included in the same statement can be applied independently and does not necessarily have to be applied in conjunction with the other sub-features. BRIEF DESCRIPTION OF THE DRAWINGS

[0027] In order to more clearly illustrate the embodiments of the present application or the technical solutions in the prior art, the following is a brief introduction to the drawings required for use in the embodiments or the description of the prior art. Obviously, the drawings described below are merely embodiments of the present application. For ordinary technicians in this field, other drawings can be obtained based on the provided drawings without any creative work.

[0028] Figure 1 A schematic diagram of the structure of a water surface photovoltaic platform provided in an embodiment of the present application;

[0029] Figure 2 A schematic diagram of the connection between the photovoltaic array platform and the combiner box array platform provided in an embodiment of the present application;

[0030] Figure 3A schematic diagram of the connection between the combiner box float and the photovoltaic float provided in an embodiment of the present application;

[0031] Figure 4 A schematic diagram of the structure of the photovoltaic array platform provided in an embodiment of the present application;

[0032] Figure 5 A schematic diagram of the structure of the adjustment plate provided in an embodiment of the present application.

[0033] Wherein, 100 is the combiner box array platform, 101 is the combiner box float, 1011 is the notch, 102 is the first ear portion, 1021 is the first mounting hole, 103 is the first connecting rod, and 104 is the third connecting rod;

[0034] 200 is a photovoltaic array platform, 201 is a photovoltaic float, 2011 is a groove, 202 is a second ear portion, 2021 is a second mounting hole, and 203 is a second connecting rod;

[0035] 300 is an adjustment plate, and 301 is a strip hole. DETAILED DESCRIPTION

[0036] The core of this application is to provide a water surface photovoltaic platform to improve the safety of the combiner box array platform.

[0037] The following will be combined with the drawings in the embodiments of this application to clearly and completely describe the technical solutions in the embodiments of this application. Obviously, the embodiments described are only part of the embodiments of this application, not all of the embodiments. Based on the embodiments in this application, all other embodiments obtained by ordinary technicians in this field without making creative efforts are within the scope of protection of this application.

[0038] Surface photovoltaic platforms can be categorized into two types based on their construction method: pile-driven and floating. Generally, in shallow waters (less than 3 meters), fixed piling and support structures are used, i.e., pile-driven and elevated. In deep waters (3 to 10 meters), floating designs are preferred.

[0039] Floating photovoltaic platforms typically utilize specially designed support systems to ensure they float stably on the water surface, adapting to changes in the water environment, such as waves and currents, while also ensuring the stability and safety of the photovoltaic panels. These platforms typically consist of a combiner box array platform and a photovoltaic array platform.

[0040] Traditional combiner box array platforms are usually composed of combiner box floats of fixed sizes. In order to meet actual needs, the connection spacing between photovoltaic modules of the photovoltaic array platform usually needs to be adjusted according to actual conditions. At this time, the combiner box array platform needs to adjust the spacing between adjacent combiner box floats to achieve connection with the float of the photovoltaic array platform, resulting in the connection spacing between adjacent combiner box floats, which makes the combiner box array platform have a greater safety hazard.

[0041] In addition, due to the uncertainty of the connection spacing between photovoltaic modules, it is difficult to connect and fix the float of the junction box and the float of the photovoltaic array platform.

[0042] For this reason, Figure 1 As shown, the embodiment of the present application discloses a water surface photovoltaic platform, comprising a combiner box array platform 100 and a photovoltaic array platform 200. The photovoltaic float 201 is connected to the combiner box float 101 via a connector, and an adjustment space is formed on the connector to adjust the distance between the photovoltaic float 201 and the combiner box float 101. This allows the combiner box array platform 100 to be connected to the photovoltaic float 201 of the photovoltaic array platform 200 without adjusting the distance between adjacent combiner box floats 101. This allows each combiner box float 101 of the combiner box array platform 100 to fit tightly together, improving the safety of the combiner box array platform 100 and enhancing the convenience of connecting the combiner box float 101 to the photovoltaic float 201.

[0043] The following will be combined Figures 1 to 5 The water surface photovoltaic platform disclosed in the embodiments of the present application is specifically explained and illustrated.

[0044] Among them, Figure 1 and Figure 2 As shown, the combiner box array platform 100 includes a plurality of combiner box floats 101, and adjacent combiner box floats 101 are tightly fitted together to ensure the safety of operators, thereby improving the safety of the combiner box array platform 100. Specifically, the combiner box floats 101 can be of a rectangular structure, and the cross-section of the combiner box floats 101 can be of a rectangular shape, and the maximum surface area of ​​the combiner box floats 101 can be in contact with the water surface, that is, the long side of the cross-section of the combiner box floats 101 faces downward ( Figure 1 The buoyancy of the combiner box array platform 100 is enhanced by a lateral (perspective) configuration, providing greater buoyancy support for the combiner equipment and ensuring the stability of the combiner box array platform 100. Furthermore, the tight fit between the sides of adjacent combiner box floats 101 effectively ensures the safety of operators walking on the combiner box array platform 100, preventing the risk of operators stepping on empty space.

[0045] In some embodiments, the combiner box array platform 100 further includes a combiner device. Figure 1 and Figure 2As shown, each combiner box float 101 is connected by at least two parallel first connecting rods 103, and the combiner equipment is supported on the first connecting rods 103. Specifically, two first connecting rods 103 can be used, and the two first connecting rods 103 can be located at both ends of the combiner box float 101 to connect the ends of each combiner box float 101, so that each combiner box float 101 forms a whole, providing greater buoyancy support. The first connecting rods 103 can be made of channel steel, and the notches of the first connecting rods 103 are arranged upward, which helps to improve the bearing capacity of the first connecting rods 103. Several first connection holes may be provided at the bottom of the first connection rod 103 along its length. First threaded holes corresponding to the first connection holes may be provided at both ends of the combiner box float 101, respectively. This allows the first connection holes of the first connection rod 103 to mate with the first threaded holes of the combiner box float 101 and be secured via fasteners such as bolts. It should be noted that the number of first connection rods 103 may be, but is not limited to, two; three, four, five, or more may also be provided. Each first connection rod 103 may be symmetrically or asymmetrically disposed at each end of each combiner box float 101. Of course, the first connection rods 103 at the same end of the combiner box float 101 may be connected end to end, spaced apart, or overlapped and staggered, but this is not a limitation herein.

[0046] In the above embodiment, the number of first connection holes can be determined based on the number of combiner box floats 101 and actual conditions. For example, the first connection rod 103 can be provided with two first connection holes at positions corresponding to each combiner box float 101, and two first threaded holes that match the first connection holes are provided at the ends of the combiner box float 101, thereby enabling the first connection rod 103 to be fixed to the combiner box float 101 via fasteners such as bolts. Of course, the number of first connection holes at positions corresponding to each combiner box float 101 of the first connection rod 103 can also be one, three, or more. Furthermore, the number of first threaded holes at the ends of the combiner box float 101 can match or differ from the number of first connection holes, thereby achieving adjustability between the first connection rod 103 and the combiner box float 101 and improving the convenience of connecting the first connection rod 103 to each combiner box float 101.

[0047] In order to ensure the safety of operators walking on the combiner box array platform 100, Figure 3As shown, in some embodiments, a notch 1011 is provided at the end of the combiner box float 101 for mounting the first connecting rod 103. The first connecting rod 103 is positioned within the notch 1011 and connected to the combiner box float 101 via fasteners such as bolts. Preferably, the first connecting rod 103 and the top surface of the combiner box float 101 are coplanar, allowing the first connecting rod 103 to be concealed within the notch 1011 of the combiner box float 101. This effectively prevents operators from tripping over the first connecting rod 103 while walking on the combiner box array platform 100, thereby ensuring operator safety.

[0048] In some embodiments, the notch 1011 is provided at the junction of the upper surface and the end surface of the combiner box float 101, and the notch 1011 can extend from one side surface of the combiner box float 101 to the other side surface, that is, the notch 1011 is provided through the end of the combiner box float 101, such as Figure 3 As shown, the two ends of each combiner box float 101 can be connected by one or more first connecting rods 103, thereby improving the convenience of connection and the overall stability of the combiner box array platform 100. Of course, notches 1011 can also be provided on both sides of the combiner box float 101, and the two notches 1011 extend to opposite sides but do not pass through. In this case, the two ends of each combiner box float 101 can be connected in sections by multiple first connecting rods 103.

[0049] In the above embodiment, notches 1011, i.e., non-through notches 1011, may be respectively provided on both sides of part of the combiner box float 101, and the combiner box float 101 with non-through notches 1011 may be located at the edge of the combiner box array platform 100; and part of the combiner box float 101 may have through notches 1011, and the combiner box float 101 with through notches 1011 may be located in the middle of the combiner box array platform 100, thereby improving the diversity and flexibility of the connection of the combiner box float 101.

[0050] like Figure 1 As shown, the photovoltaic array platform 200 includes a plurality of photovoltaic floats 201 spaced apart. Specifically, the photovoltaic floats 201 may be rectangular in structure, and the cross section of the photovoltaic floats 201 may be rectangular, and the maximum surface area of ​​the photovoltaic floats 201 is in contact with the water surface, that is, the long side of the cross section of the photovoltaic floats 201 faces downward ( Figure 1 The photovoltaic array platform 200 is provided with a larger buoyancy support to provide greater buoyancy support to the photovoltaic components, thereby better ensuring the stability of the photovoltaic array platform 200.

[0051] In some embodiments, the photovoltaic array platform 200 further includes photovoltaic components. Figure 3 and Figure 4As shown, each photovoltaic float 201 is connected by at least two parallel second connecting rods 203, and the photovoltaic assembly is supported on the second connecting rods 203. Specifically, two second connecting rods 203 may be used, and the two second connecting rods 203 may be located at each end of the photovoltaic float 201 to connect the ends of each photovoltaic float 201, so that each photovoltaic float 201 forms a single unit and provides greater buoyancy support. The second connecting rods 203 may be made of channel steel, with the notches of the second connecting rods 203 facing upward, thereby improving the load-bearing capacity of the second connecting rods 203. Several second connecting holes may be provided at the bottom of the second connecting rods 203 along their length. Second threaded holes that mate with the second connecting holes may be provided at each end of the photovoltaic float 201. This allows the second connecting holes of the second connecting rods 203 to mate with the second threaded holes of the photovoltaic float 201 and be secured via fasteners such as bolts. It should be noted that the number of second connecting rods 203 can be, but is not limited to, two, and can also be three, four, five, or more. Each second connecting rod 203 can be symmetrically or asymmetrically disposed at both ends of each photovoltaic floating body 201. Of course, the second connecting rods 203 at the same end of a photovoltaic floating body 201 can be connected end to end, spaced apart, or overlapped and staggered, which is not limited herein.

[0052] In the above embodiment, the number of second connection holes can be determined according to the number of photovoltaic floats 201 and actual conditions. For example, the second connection rod 203 can be provided with two second connection holes at positions corresponding to each photovoltaic float 201, and two second threaded holes that match the second connection holes are provided at the ends of the photovoltaic float 201, thereby enabling the second connection rod 203 to be connected and fixed to the photovoltaic float 201 via fasteners such as bolts. Of course, the number of second connection holes of the second connection rod 203 at positions corresponding to each photovoltaic float 201 can also be one, three, or more. At the same time, the number of second threaded holes at the ends of the photovoltaic float 201 can match the number of second connection holes, or can be set unequally to the number of second connection holes, thereby achieving adjustability between the second connection rod 203 and the photovoltaic float 201 and improving the convenience of connection between the second connection rod 203 and each photovoltaic float 201.

[0053] It should be noted that the photovoltaic assembly in the above embodiment includes a photovoltaic panel and a photovoltaic bracket. The photovoltaic panel is fixed to the second connecting rod 203 through the photovoltaic bracket, and the photovoltaic panel can be tilted on the second connecting rod 203 through the photovoltaic bracket so that the light-receiving surface of the photovoltaic panel can receive more light and improve the power generation efficiency. Of course, the photovoltaic panel can also adopt other laying forms, which is not limited in this article.

[0054] In order to ensure the safety of operators walking on the photovoltaic array platform 200, Figure 3 As shown, in some embodiments, a groove 2011 for mounting the second connecting rod 203 is provided at the end of the photovoltaic float 201, so that the second connecting rod 203 is located in the groove 2011 and is connected to the photovoltaic float 201 by fasteners such as bolts, as shown in FIG. Figure 4 Preferably, the second connecting rod 203 and the notch of the groove 2011 are in the same plane, so that the second connecting rod 203 can be hidden in the groove 2011 of the photovoltaic float 201, thereby effectively preventing the operator from being tripped by the second connecting rod 203 when walking on the photovoltaic array platform 200, thereby ensuring the safety of the operator.

[0055] In some embodiments, the groove 2011 may extend from one side of the photovoltaic float 201 to the other side, that is, the groove 2011 is set through the end of the photovoltaic float 201. Figure 3 As shown, the ends of each photovoltaic float 201 can be connected by one or more second connecting rods 203, thereby improving the convenience of connection and the overall stability of the photovoltaic array platform 200. Of course, grooves 2011 can also be provided on both sides of the photovoltaic float 201, with the two grooves 2011 extending to opposite sides but not through. In this case, the ends of each photovoltaic float 201 can be connected in sections by multiple second connecting rods 203.

[0056] In the above embodiment, grooves 2011, that is, non-through grooves 2011, can be respectively set on the two sides of part of the photovoltaic floating body 201, and the photovoltaic floating body 201 with non-through grooves 2011 can be located at the edge of the photovoltaic array platform 200. Part of the photovoltaic floating body 201 can have through grooves 2011, and the photovoltaic floating body 201 with through grooves 2011 can be located in the middle position of the photovoltaic array platform 200, thereby improving the diversity and flexibility of the connection of the photovoltaic floating body 201.

[0057] like Figure 2 and Figure 3As shown, to facilitate the connection between the combiner box array platform 100 and the photovoltaic array platform 200, the photovoltaic float 201 and the combiner box float 101 can be connected by a connector. The connector also forms an adjustment space for adjusting the distance between the photovoltaic float 201 and the combiner box float 101. Specifically, when the ends of the photovoltaic float 201 and the ends of the combiner box float 101 are misaligned, the distance between the photovoltaic float 201 and the combiner box float 101 can be adjusted using the adjustment space of the connector. This allows the combiner box array platform 100 to be connected to the photovoltaic float 201 of the photovoltaic array platform 200 without adjusting the distance between adjacent combiner box floats 101. This allows each combiner box float 101 of the combiner box array platform 100 to fit tightly together, improving the safety of the combiner box array platform 100 and enhancing the convenience of the connection between the combiner box float 101 and the photovoltaic float 201.

[0058] In some embodiments, as Figure 3 As shown, the connector includes a first ear portion 102, a second ear portion 202 and an adjustment plate 300. The first ear portion 102 is provided on the end surface of the combiner box float 101, and a first mounting hole 1021 is provided on the first ear portion 102. The second ear portion 202 is provided on the end surface of the photovoltaic float 201, and a second mounting hole 2021 is provided on the second ear portion 202. Figure 3 and Figure 5 As shown, the adjustment plate 300 is provided with a strip hole 301 that mates with the first mounting hole 1021 and the second mounting hole 2021, thereby forming an adjustment space at the location of the strip hole 301. When the combiner box float 101 and the photovoltaic float 201 are misaligned, the first tab 102 of the combiner box float 101 can be engaged with the strip hole 301 of the adjustment plate 300 through the first mounting hole 1021 and secured with bolts or other fasteners. Simultaneously, the second tab 202 of the photovoltaic float 201 can be engaged with the strip hole 301 of the adjustment plate 300 through the second mounting hole 2021 and secured with bolts or other fasteners. This allows the combiner box float 101 and the photovoltaic float 201 to be connected without aligning the first mounting hole 1021 of the first tab 102 with the second mounting hole 2021 of the second tab 202, thereby improving the convenience of connecting the combiner box array platform 100 and the photovoltaic array platform 200.

[0059] To ensure a stable and reliable connection between the combiner box float 101 and the adjustment plate 300, a first lug 102 is provided on each end surface of the combiner box float 101. Two first lugs 102 can be provided on the same end surface of the combiner box float 101, effectively ensuring a stable and reliable connection between the combiner box float 101 and the adjustment plate 300. Alternatively, the first lug 102 can be widened, and two or more first mounting holes 1021 can be provided on the first lug 102, allowing the connection between the combiner box float 101 and the adjustment plate 300 to be achieved using two or more fasteners. Furthermore, a waist hole can be provided on the widened first lug 102, allowing the connection between the combiner box float 101 and the adjustment plate 300 to be achieved using two or more fasteners, thereby ensuring a stable and reliable connection between the combiner box float 101 and the adjustment plate 300.

[0060] To ensure the stability and reliability of the connection between the photovoltaic float 201 and the regulating plate 300, a second lug 202 is provided on each end surface of the photovoltaic float 201. Two second lugs 202 can be provided on the same end surface of the photovoltaic float 201, effectively ensuring the stability and reliability of the connection between the photovoltaic float 201 and the regulating plate 300. Of course, the second lug 202 can also be widened, and two or more second mounting holes 2021 can be provided on the second lug 202, thereby enabling the connection between the photovoltaic float 201 and the regulating plate 300 to be achieved using two or more fasteners. Furthermore, a waist hole can also be provided on the widened second lug 202, thereby enabling the connection between the photovoltaic float 201 and the regulating plate 300 to be achieved using two or more fasteners, thereby ensuring the stability and reliability of the connection between the photovoltaic float 201 and the regulating plate 300.

[0061] In the above embodiment, the first ear portion 102 and the second ear portion 202 can be distributed in a vertically staggered manner, thereby forming a space for accommodating the adjustment plate 300 between the first ear portion 102 and the second ear portion 202, so that the first ear portion 102 of the junction box float 101 and the second ear portion 202 of the photovoltaic float 201 can be connected to the adjustment plate 300 respectively.

[0062] Of course, the adjustment plate 300 may not be provided between the junction box float 101 and the photovoltaic float 201. By widening the second ear portion 202 of the photovoltaic float 201 and providing a waist hole on the second ear portion 202, an adjustment space is formed at the position of the waist hole, thereby achieving adjustment of the distance between the photovoltaic float 201 and the junction box float 101. The second ear portion 202 of the photovoltaic float 201 can be connected to the first ear portions 102 of the two adjacent junction box floats 101 through fasteners, thereby improving the convenience of connection between the junction box float 101 and the photovoltaic float 201.

[0063] The terms "first," "second," and so on in the specification, claims, and drawings of this application are used to distinguish between different items, not to describe a specific order. Furthermore, the terms "including," "having," and any variations thereof are intended to cover non-exclusive inclusions. For example, a process, method, system, product, or apparatus comprising a series of steps or elements is not limited to the listed steps or elements and may include steps or elements that are not listed.

[0064] The above description of the disclosed embodiments is intended to enable one skilled in the art to implement or use the present application. Various modifications to these embodiments will be readily apparent to one skilled in the art, and the general principles defined herein may be implemented in other embodiments without departing from the spirit or scope of the present application. Therefore, the present application is not limited to the embodiments shown herein, but is intended to conform to the widest scope consistent with the principles and novel features disclosed herein.

Claims

1. A water surface photovoltaic platform, characterized in that: include: A combiner box array platform (100), the combiner box array platform (100) comprising a plurality of combiner box floats (101), with adjacent combiner box floats (101) being tightly fitted together; A photovoltaic array platform (200) comprises a plurality of photovoltaic floats (201) arranged at intervals, wherein the photovoltaic floats (201) are connected to the combiner box float (101) via connectors, and the connectors define an adjustment space for adjusting the spacing between the photovoltaic floats (201) and the combiner box float (101).

2. The water surface photovoltaic platform according to claim 1, characterized in that: The connecting piece includes: A first ear portion (102) is provided on the combiner box float (101), and the first ear portion (102) is provided with a first mounting hole (1021); A second ear portion (202) is provided on the photovoltaic float (201), and the second ear portion (202) is provided with a second mounting hole (2021); an adjustment plate (300), the adjustment plate (300) being provided with a strip-shaped hole (301) adapted to fit with the first mounting hole (1021) and the second mounting hole (2021) to form the adjustment space; The first ear portion (102) and the second ear portion (202) are connected via the adjustment plate (300).

3. The water surface photovoltaic platform according to claim 2, characterized in that: The first lugs (102) are respectively provided on the two end surfaces of the combiner box float (101), and the number of the first lugs (102) on the same end surface of the combiner box float (101) is two; and / or, The second ear portions (202) are respectively provided on the two end surfaces of the photovoltaic floating body (201), and the number of the second ear portions (202) on the same end surface of the photovoltaic floating body (201) is two.

4. The water surface photovoltaic platform according to claim 2, characterized in that: The first ear portion (102) and the second ear portion (202) are staggered in the vertical direction to form a space between the first ear portion (102) and the second ear portion (202) for accommodating the adjustment plate (300).

5. The water surface photovoltaic platform according to claim 1, characterized in that: The combiner box array platform (100) further comprises a combiner device, wherein each combiner box float (101) is connected via at least two parallel first connecting rods (103), and the combiner device is supported on the first connecting rods (103).

6. The water surface photovoltaic platform according to claim 5, characterized in that: A notch (1011) for installing the first connecting rod (103) is provided at the end of the combiner box float (101); the first connecting rod (103) is located in the notch (1011), and the first connecting rod (103) is connected to the combiner box float (101) via a fastener.

7. The water surface photovoltaic platform according to claim 6, characterized in that: The first connecting rod (103) and the top surface of the combiner box float (101) are on the same plane.

8. The water surface photovoltaic platform according to claim 1, characterized in that: The photovoltaic array platform (200) further comprises a photovoltaic assembly, and each of the photovoltaic floats (201) is connected via at least two second connecting rods (203) arranged in parallel, and the photovoltaic assembly is supported on the second connecting rods (203).

9. The water surface photovoltaic platform according to claim 8, characterized in that: The photovoltaic floating body (201) is provided with a groove (2011) for installing the second connecting rod (203); the second connecting rod (203) is embedded in the groove (2011), and the second connecting rod (203) is connected to the photovoltaic floating body (201) via a fastener.

10. The water surface photovoltaic platform according to claim 9, characterized in that: The second connecting rod (203) and the notch of the groove (2011) are in the same plane.