Photovoltaic sunshade

By introducing a connection between the ceiling assembly and the frame assembly in the photovoltaic awning, shielding the wiring harness, and using the guide and column assemblies to handle the fluid, the problems of chaotic wiring of photovoltaic modules and exposed wiring harnesses are solved, and the visual effect and power generation stability of the photovoltaic awning are improved.

CN223446714UActive Publication Date: 2025-10-17SHENZHEN HELLO TECH ENERGY CO LTD +1
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Patent Information

Application Number
CN202422669160.7
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-10-31
Publication Date
2025-10-17
Estimated Expiration
2034-10-31

AI Technical Summary

Technical Problem

The wiring of photovoltaic modules in photovoltaic awnings is messy and the wiring harnesses are easily exposed, affecting the visual effect.

Method used

The ceiling assembly is connected to the frame assembly. The ceiling assembly is located below the photovoltaic module to shield the wiring harness and enhance the visual effect. The fluid is processed through the guide and column assembly to prevent fluid accumulation and short circuit.

Benefits of technology

Reduce exposure of photovoltaic module wiring harnesses, improve visual effects, protect modules, extend service life, and improve power generation efficiency and stability.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses a photovoltaic sunshade shed. The photovoltaic sunshade comprises a frame structure and a suspended ceiling assembly. The frame structure comprises a plurality of frame assemblies, and the frame assemblies are used for accommodating photovoltaic assemblies. The suspended ceiling assembly is connected with the frame assembly and located below the photovoltaic assembly, and the suspended ceiling assembly comprises a plurality of suspended ceilings which are arranged at intervals. According to the photovoltaic sunshade, the frame assembly is used for containing the photovoltaic assembly, the ceiling assembly is connected with the frame assembly and located below the photovoltaic assembly, and therefore the ceiling assembly can shield the photovoltaic assembly, visual defects caused by the fact that wire harnesses of the photovoltaic assembly are exposed in the visual field of a user are reduced, and the user experience is improved. Therefore, the visual effect of the photovoltaic sunshade can be improved.
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Description

TECHNICAL FIELD

[0001] The present application relates to the field of photovoltaic technology, and more particularly, to a photovoltaic sunshade. BACKGROUND

[0002] In recent years, with the increasing awareness of the use of renewable energy, solar energy as a clean and renewable energy has been increasingly valued. Among them, photovoltaic technology as one of the main ways of solar energy utilization is also integrated into the sunshade to form a new photovoltaic product that integrates sunshade, rain protection, and power generation, i.e., a photovoltaic sunshade. In the related art, the photovoltaic sunshade includes a frame structure and photovoltaic modules mounted on the frame structure. Generally, to ensure the power generation of the photovoltaic sunshade, the photovoltaic sunshade is provided with a large number of photovoltaic modules. However, this will lead to disordered wiring of the photovoltaic modules, and the wire harness is easily exposed outside the frame structure, affecting the visual effect of the photovoltaic sunshade. SUMMARY

[0003] The present application provides a photovoltaic sunshade to solve at least one of the above technical problems.

[0004] The photovoltaic sunshade of the present application includes a frame structure and a suspended ceiling assembly. The frame structure includes a plurality of border assemblies for accommodating photovoltaic modules. The suspended ceiling assembly is connected to the border assembly and located below the photovoltaic modules. The suspended ceiling assembly includes a plurality of suspended ceilings spaced apart from each other.

[0005] In some embodiments, the suspended ceiling assembly includes at least one suspended ceiling furring member connected to the border assembly, and a plurality of suspended ceilings are mounted at the bottom of the suspended ceiling furring member, and the extension direction of the suspended ceiling intersects with the extension direction of the suspended ceiling furring member.

[0006] In some embodiments, each of the suspended ceiling furring members includes a suspended ceiling furring and a buckle furring. The suspended ceiling furring is connected to the border assembly through a mounting plate. The buckle furring is mounted at the bottom of the suspended ceiling furring. The buckle furring includes a first buckle portion. The suspended ceiling includes a second buckle portion. The second buckle portion cooperates with the first buckle portion to connect the suspended ceiling to the buckle furring.

[0007] In some embodiments, the suspended ceiling includes a mounting cavity extending through opposite ends of the suspended ceiling. The suspended ceiling is further provided with a mounting opening in communication with the mounting cavity. The second buckle portion is formed at the mounting opening.

[0008] In some embodiments, the frame structure further comprises a plurality of column assemblies, each of the column assemblies has an upper end for connecting two adjacent frame assemblies and a lower end for connecting with the surface to be fixed. The frame assembly further comprises a first flow guide and a second flow guide, the first flow guide is provided with a through hole, and the second flow guide is not provided with a through hole; the frame of the frame assembly further comprises a flow receiving member provided on the inner side wall of the frame body, the flow receiving member is provided with a flow receiving groove for carrying fluid, the first flow guide is connected with and communicates with the flow receiving members of at least one of the two adjacent frame assemblies, and the second flow guide is connected with and communicates with the flow receiving members of the other two adjacent frame assemblies; the ceiling batten component is connected with the flow receiving member.

[0009] In some embodiments, the flow receiving member comprises a flow receiving plate and a flow blocking plate, the flow receiving plate is provided on the inner side wall of the frame body, the flow blocking plate is provided on the end of the flow receiving plate away from the frame body, and the flow receiving plate, the inner side wall of the frame body and the flow blocking plate jointly form the flow receiving groove; the ceiling batten component is connected with the flow blocking plate.

[0010] In some embodiments, the ceiling assembly further comprises a connecting plate, the ceiling batten component is connected with the flow blocking plate through the connecting plate. The connecting plate comprises a first sub-plate, a second sub-plate, a third sub-plate and a fourth sub-plate. The first sub-plate is connected with the flow blocking plate. The second sub-plate is connected with the first sub-plate and protrudes from the first sub-plate in a direction away from the surface to be fixed, and the second sub-plate is connected with the mounting plate. The third sub-plate is connected with the first sub-plate, and the third sub-plate is used for supporting the mounting plate. The fourth sub-plate is connected with the first sub-plate and forms a connecting groove together with the first sub-plate, and the bottom of the connecting groove abuts against the top of the flow blocking plate.

[0011] In some embodiments, a plurality of the frame assemblies enclose a first space; the frame structure further comprises a cross beam assembly, opposite ends of the cross beam assembly are connected with opposite two frame assemblies respectively, and the first space is divided into a plurality of second spaces by the cross beam assembly, the second spaces are used for accommodating photovoltaic assemblies, and the ceiling assembly is further connected with the cross beam assembly.

[0012] In some embodiments, the cross beam assembly comprises a cross beam, the cross beam comprises a cross beam body and a flow carrying member provided on opposite sides of the cross beam body, the flow carrying member is provided with a flow carrying groove for carrying fluid, and the flow carrying member is connected with and communicates with the flow receiving member of the frame assembly through the first flow guide of the frame assembly or the second flow guide of the frame assembly; opposite ends of the ceiling batten component are connected with the flow receiving member and the flow carrying member respectively.

[0013] In some embodiments, the current-carrying member comprises a current-carrying plate and a current-blocking plate, the current-carrying plate is arranged on the opposite sides of the beam body in the width direction, the current-blocking plate is arranged at the end of the current-carrying plate away from the beam body, and the current-carrying plate, the side wall of the beam body and the current-blocking plate jointly form the current-carrying groove, and the opposite ends of the ceiling batten component are connected to the current-carrying member and the current-blocking plate, respectively.

[0014] In some embodiments, the photovoltaic sunshade further comprises an electronic assembly, the electronic assembly is mounted on the bottom of the beam assembly facing the to-be-fixed surface, the electronic assembly comprises a functional module, the functional module comprises a first shell and a first power connection unit at least partially accommodated in the first shell, and the first power connection unit is electrically connected to a first external device through a first electrical connection assembly. The first electrical connection assembly is partially located between the ceiling assembly and the photovoltaic assembly.

[0015] In some embodiments, the functional module comprises a plurality of functional modules, at least two of the functional modules are fixedly mounted on the bottom of the beam assembly at intervals, the photovoltaic sunshade further comprises an external connection module, the external connection module is mounted on the bottom of the beam assembly and located between adjacent two functional modules, the external connection module comprises a second shell and a second power connection unit, the second shell is used for externally connecting an external electronic device, the second power connection unit is electrically connected to a second external device through a second electrical connection assembly and is also used for electrically connecting the external electronic device, and a part of the second electrical connection assembly is located between the ceiling assembly and the photovoltaic assembly.

[0016] In some embodiments, the external electronic device comprises at least one of a lighting module, a heat dissipation module and a projection module.

[0017] In the photovoltaic sunshade of the embodiments of the present application, the frame assembly is used for accommodating the photovoltaic assembly, the ceiling assembly is connected with the frame assembly and located below the photovoltaic assembly, thereby the ceiling assembly can shield the photovoltaic assembly, reduce the visual defects caused by the exposure of the wire harness of the photovoltaic assembly to the user's visual field, and thus the visual effect of the photovoltaic sunshade can be improved.

[0018] Additional aspects and advantages of the embodiments of the present application will be in part apparent and in part pointed out hereinafter in the description of the embodiments of the present application. BRIEF DESCRIPTION OF DRAWINGS

[0019] The above and / or additional aspects and advantages of the present application will become apparent and be readily appreciated from the description of the embodiments, taken in conjunction with the following drawings in which:

[0020] Figure 1is a perspective structural schematic diagram of a photovoltaic sunshade according to some embodiments of the present application;

[0021] Figure 2 is Figure 1 is a perspective exploded schematic diagram of part of the structure of the photovoltaic sunshade shown in

[0022] Figure 3 is Figure 1 is a perspective structural schematic diagram of part of the structure of the photovoltaic sunshade shown in

[0023] Figure 4 is Figure 1 is a perspective exploded schematic diagram of the photovoltaic sunshade shown in

[0024] Explanation of main element symbols:

[0025] Photovoltaic sunshade 1000;

[0026] Frame structure 100; first space 110; second space 120;

[0027] Border frame assembly 10, border frame 11, border frame body 111, flow connecting piece 115, flow connecting plate 1151, flow blocking plate 1153, flow connecting groove 1155, first flow guide piece 13, second flow guide piece 15; cross beam assembly 20, cross beam 21, cross beam body 211, current carrying piece 215, current carrying plate 2151, current blocking plate 2153, current carrying groove 2155; stand column assembly 30, cavity 305;

[0028] Photovoltaic assembly 200, photovoltaic piece 230;

[0029] Electronic assembly 500, functional module 510, first shell 5101, first power connecting unit 5103, external module 530, second shell 5301, second power connecting unit 5303;

[0030] Ceiling assembly 600, ceiling 610, second buckle part 6101, mounting cavity 6103, mounting port 6105, first ceiling plate 6106, second ceiling plate 6107, third ceiling plate 6108, ceiling batten part 630, ceiling batten 6301, buckle batten 6303, mounting plate 6305, connecting plate 650, first sub-plate 6501, second sub-plate 6503, third sub-plate 6505, fourth sub-plate 6507, connecting groove 6509. DETAILED DESCRIPTION

[0031] Embodiments of the present application are described below in detail with reference to the accompanying drawings, wherein the same or similar components have the same or similar designations and functions throughout the various figures. The embodiments described below are exemplary only, and are not intended to limit the embodiments of the present application.

[0032] In the description of the present application, it should be understood that the terms "thickness", "upper", "top", "bottom", "inner", "outer", etc. indicate the orientation or positional relationship shown in the drawings based on the orientation or positional relationship shown in the drawings, and are only for the purpose of facilitating the description of the present application and simplifying the description, and do not indicate or imply that the device or element referred to must have a particular orientation, be constructed and operated in a particular orientation, and therefore cannot be understood as a limitation of the present application. In addition, the terms "first", "second" are only for the purpose of description, and cannot be understood as indicating or implying relative importance or implicitly indicating the number of technical features indicated. Therefore, the features defined as "first", "second" can explicitly or implicitly include one or more features. In the description of the present application, the meaning of "a plurality of" is two or more, unless otherwise explicitly specified and limited.

[0033] In the description of the present application, it should be noted that, unless otherwise explicitly specified and limited, the terms "mounting", "connecting", "connection" should be understood broadly, and in one example, it can be fixedly connected, or detachably connected, or integrally connected; it can be mechanically connected, or electrically connected, or can communicate with each other; it can be directly connected, or indirectly connected through an intermediate medium, or it can be the internal communication or interaction relationship of two elements.

[0034] In recent years, with the increasing awareness of the use of renewable energy, solar energy as a clean and renewable energy source has been increasingly valued. Among them, photovoltaic technology as one of the main ways of solar energy utilization is also integrated into the sunshade to form a new type of photovoltaic product that integrates sunshade, rain protection, and power generation, i.e. photovoltaic sunshade. In the related art, the photovoltaic sunshade includes a frame structure and a photovoltaic module mounted on the frame structure. Generally, to ensure the power generation of the photovoltaic sunshade, the photovoltaic sunshade is provided with a large number of photovoltaic modules. However, this will cause the wiring of the photovoltaic modules to be disordered, and the wire harness is easily exposed outside the frame structure, affecting the visual effect of the photovoltaic sunshade. To solve the above problems, please refer to Figure 1 The embodiments of the present application provide a photovoltaic sunshade 1000.

[0035] Please refer to Figure 1 and Figure 2The photovoltaic sunshade 1000 of the embodiments of the present application comprises a frame structure 100 and a ceiling assembly 600. The frame structure 100 comprises a plurality of frame assemblies 10, which are used to accommodate photovoltaic assemblies 200. The ceiling assembly 600 is connected with the frame assemblies 10 and is located below the photovoltaic assemblies 200, and the ceiling assembly 600 comprises a plurality of ceilings 610 spaced from each other.

[0036] The photovoltaic sunshade 1000 is a photovoltaic product capable of generating electricity by using solar energy, and simultaneously serving as a sunshade, a heat insulator and a rain shelter. The photovoltaic sunshade 1000 can be applied to the outer periphery of outdoor public and large commercial facilities or the courtyard of private residences. For example, the photovoltaic sunshade 1000 can be arranged on a roof to serve as a sunshade, or the photovoltaic sunshade 1000 can be arranged in a courtyard to serve as a sunshade.

[0037] The frame structure 100 is a structure capable of providing installation and support for the photovoltaic assemblies 200 in the photovoltaic sunshade 1000. The frame structure 100 can be made of metal and / or non-metal materials, the metal materials include but are not limited to aluminum, iron, steel or aluminum alloy, and the non-metal materials include but are not limited to plastic. For example, the frame structure 100 can be made of metal materials, for example, the frame structure 100 can be made of aluminum alloy, so as to improve the structural strength of the frame structure 100, enhance the ability of the photovoltaic sunshade 1000 to resist external environment (such as wind, rain, snow, etc.), and ensure the stability and reliability of the photovoltaic sunshade 1000. It should be noted that in some embodiments, the overall shape of the frame structure 100 can include but is not limited to a square, a cylindrical shape and a rhombus, etc. In this way, the frame structure 100 can be adapted to install photovoltaic assemblies 200 of different sizes and shapes.

[0038] The photovoltaic assembly 200 is a structure capable of converting solar energy into electrical energy in the photovoltaic sunshade 1000. Generally, the photovoltaic assembly 200 can be installed on the top of the frame structure 100. In some embodiments of the present application, the photovoltaic assembly 200 can comprise a photovoltaic component 230 for converting solar energy into electrical energy. The photovoltaic component 230 can be a single-crystal silicon, a polycrystalline silicon or a thin-film solar cell, etc. Different types of solar energy conversion devices. Among them, users can select photovoltaic components 230 of different efficiencies and sizes according to the use requirements and the size of the frame structure 100.

[0039] In some embodiments, the photovoltaic assembly 200 is electrically connected with an energy storage module. The energy storage module can store the electric energy generated by the photovoltaic assembly 200 and can supply power to loads such as household appliances, portable devices, and the like. The energy storage module can be directly electrically connected with the photovoltaic assembly 200 through a cable, or can be electrically connected with the photovoltaic assembly 200 through an intermediate device such as a junction box or a busbar. It should be noted that in some embodiments, the energy storage module can be a lithium ion battery, a lead-acid battery, or other types of rechargeable batteries.

[0040] The frame structure 100 includes a plurality of frame components 10. The frame components 10 are structures for packaging and fixing the photovoltaic assembly 200. In some embodiments of the present application, the frame components 10 surround a first space 110, and the first space 110 is used to install the photovoltaic assembly 200. In other words, the photovoltaic assembly 200 can be installed in the first space 110 formed by the frame components 10 connected end to end, and the periphery of the photovoltaic assembly 200 can be connected with the frame components 10, thereby ensuring the stability of the installation of the photovoltaic assembly 200 in the frame structure 100. The frame components 10 can be made of high-strength, corrosion-resistant materials such as aluminum alloys, etc., thereby meeting the requirements for use of the frame structure 100 in long-term outdoor environments. The cross-sectional shape of the first space 110 can include, but is not limited to, regular shapes such as squares, circles, triangles, and rhombuses, or irregular shapes. In the embodiments of the present application, only the case where the cross-sectional shape of the first space 110 is a square is described as an example. In this case, the frame components 10 can include four frame components 10, and the four frame components 10 collectively surround the first space 110.

[0041] In some embodiments, the photovoltaic assembly 200 can be installed on the frame components 10 in a detachable manner, so that the photovoltaic assembly 200 can be easily detached from the frame components 10 when maintenance or replacement is required. The detachable manner can include, but is not limited to, bolt connection and buckle connection, etc. In other embodiments, the photovoltaic assembly 200 can be installed on the frame components 10 in a non-detachable manner, so that the bonding strength between the photovoltaic assembly 200 and the frame components 10 can be improved, the ability of the photovoltaic sunshade 1000 to resist external environmental factors can be improved, and the stability and reliability of the photovoltaic sunshade 1000 can be ensured. The non-detachable manner can include, but is not limited to, adhesion or welding, etc.

[0042] The ceiling assembly 600 is a structure with decorative and shielding functions in the photovoltaic sunshade 1000. In some embodiments of the present application, the ceiling assembly 600 includes a plurality of ceilings 610 spaced from each other, i.e., there is a gap between the plurality of ceilings 610, and the atmosphere outside can contact the photovoltaic assembly 200 through the gap, so as to ensure that the photovoltaic assembly 200 can be naturally cooled, prevent the photovoltaic assembly 200 from being damaged due to high temperature and low efficiency, thereby ensuring the stability and reliability of the photovoltaic assembly 200, and prolonging the service life of the photovoltaic assembly 200. In one example, the extension direction of the ceiling 610 can be the same as the length direction of the frame structure 100 or the width direction of the frame structure 100.

[0043] In some embodiments, the ceiling assembly 600 can be arranged in the first space 110 and below the photovoltaic assembly 200. The cross-sectional shape of the ceiling assembly 600 is substantially the same as the cross-sectional shape of the first space 110, for example, when the cross-sectional shape of the first space 110 is square, the cross-sectional shape of the ceiling assembly 600 can also be square, so as to ensure the shielding effect of the ceiling assembly 600 on the photovoltaic assembly 200 and improve the aesthetics of the photovoltaic sunshade 1000. The ceiling assembly 600 can be made of metal materials and / or non-metal materials, including but not limited to aluminum, iron, steel, or aluminum alloy, and the like, and non-metal materials including but not limited to plastic or wood, and the like.

[0044] In some embodiments, the ceiling assembly 600 can be connected to the frame assembly 10 in a detachable manner, so as to facilitate the height adjustment of the ceiling assembly 600 to adapt to the use requirements of different photovoltaic sunshades 1000. In other embodiments, the ceiling assembly 600 can be connected to the frame assembly 10 in a non-detachable manner, so as to improve the bonding strength between the ceiling assembly 600 and the frame assembly 10, prevent the ceiling assembly 600 from falling off the frame assembly 10 during use of the photovoltaic sunshade 1000, and thereby ensure the stability and reliability of the photovoltaic sunshade 1000.

[0045] In the photovoltaic sunshade 1000 of the present application, the frame assembly 10 is used to accommodate the photovoltaic assembly 200, and the ceiling assembly 600 is connected to the frame assembly 10 and located below the photovoltaic assembly 200, so that the ceiling assembly 600 can shield the photovoltaic assembly 200, reduce the exposure of the wiring harness of the photovoltaic assembly 200 to the user's field of vision, and thereby improve the visual effect of the photovoltaic sunshade 1000.

[0046] In addition, the ceiling assembly 600 can also protect the photovoltaic assembly 200 to some extent, that is, the ceiling assembly 600 can not only reduce the possibility of damage to the photovoltaic assembly 200 caused by accidental collision of the user, but also reduce the erosion of the photovoltaic assembly 200 by external factors such as sand and dust, so as to prolong the service life of the photovoltaic assembly 200 and improve the stability and reliability of the photovoltaic sunshade 1000.

[0047] The photovoltaic sunshade 1000 will be further explained below in combination with the accompanying drawings.

[0048] Please refer to Figure 2 In some embodiments, the ceiling assembly 600 includes at least one ceiling joist component 630, the ceiling joist component 630 is connected with the frame assembly 10, and a plurality of ceilings 610 are installed at the bottom of the ceiling joist component 630, and the extension direction of the ceiling 610 intersects with the extension direction of the ceiling joist component 630.

[0049] Specifically, please refer to Figure 1 In some embodiments, the ceiling joist component 630 is a structure for bearing in the ceiling assembly 600, which can support the weight of the plurality of ceilings 610 and ensure the stability and safety of the ceiling assembly 600. In some embodiments of the present application, the ceiling joist component 630 is detachably connected with the frame structure 100, so that the height of the ceiling 610 can be determined by adjusting the connection position between the ceiling joist component 630 and the frame structure 100. The ceiling joist component 630 includes at least two, and the at least two ceiling joist components 630 are arranged at intervals and are located below the photovoltaic assembly 200. In the case where the plurality of ceilings 610 are connected with the ceiling joist component 630, the plurality of ceilings 610 can shield the photovoltaic assembly 200 and the ceiling joist component 630 to improve the aesthetics of the photovoltaic sunshade 1000.

[0050] In one example, the extension direction of the ceiling 610 is perpendicular to the extension direction of the ceiling joist component 630. For example, the extension direction of the ceiling 610 is the length direction of the frame structure 100, and the extension direction of the ceiling joist component 630 is the width direction. In other examples, as long as the extension direction of the ceiling 610 intersects with the extension direction of the ceiling joist component 630, the included angle between them can be any angle between (0°, 180°), for example, the included angle between them can be 15°, 30°, 45°, 60°, 75°, 100°, 115°, 120°, or 135°, and the like. Wherein, the extension direction of the ceiling 610 intersects with the extension direction of the ceiling joist component 630, so as to improve the stability of the ceiling 610 installed on the ceiling joist component 630.

[0051] Further, please refer to Figure 1 and Figure 2In some embodiments, each of the ceiling joist parts 630 comprises a ceiling joist 6301 and a clip joist 6303, the ceiling joist 6301 is connected with the frame assembly 10 through the mounting plate 6305, the clip joist 6303 is mounted at the bottom of the ceiling joist 6301, and the clip joist 6303 comprises a first clip part; the ceiling 610 comprises a second clip part 6101, the second clip part 6101 is matched with the first clip part to connect the ceiling 610 with the clip joist 6303.

[0052] The clip joist 6303 is mounted at the bottom of the ceiling joist 6301 and connected with the ceiling 610, so that the load-bearing capacity of the ceiling joist part 630 is higher than that of the ceiling joist part 630 comprising only the clip joist 6303, thereby reducing the possibility of deformation and damage of the clip joist 6303 and prolonging the service life of the ceiling assembly 600. Moreover, the second clip part 6101 is matched with the first clip part to connect the ceiling 610 with the clip joist 6303, that is, the clip joist 6303 is snap-connected with the ceiling 610, so that the connection of the clip joist 6303 with the ceiling 610 does not need to be provided with additional connecting members such as screws, thereby facilitating the assembly of the clip joist 6303 with the ceiling 610 and improving the assembly efficiency of the ceiling assembly 600.

[0053] Specifically, in some embodiments, the clip joist 6303 and the ceiling joist 6301 can be an integral structure, that is, the clip joist 6303 and the ceiling joist 6301 are an integral structure, so as to improve the structural strength of the ceiling joist part 630. In other embodiments, the clip joist 6303 and the ceiling joist 6301 can be a split structure, that is, the clip joist 6303 and the ceiling joist 6301 are two different structures. The clip joist 6303 and the ceiling joist 6301 can be combined together in a detachable connection manner or a non-detachable connection manner.

[0054] Please refer to Figure 2 In some embodiments, the ceiling 610 comprises a mounting cavity 6103 penetrating through opposite ends of the ceiling 610, the ceiling 610 is further provided with a mounting opening 6105 in communication with the mounting cavity 6103, and the second clip part 6101 is formed at the mounting opening 6105. The provision of the mounting cavity 6103 can reduce the weight of the ceiling 610, which is conducive to the lightness of the ceiling 610, reduces the load-bearing of the ceiling joist part 630, and reduces the possibility of deformation and damage of the ceiling joist part 630.

[0055] Specifically, in some embodiments, the ceiling 610 can include a first ceiling plate 6106, a second ceiling plate 6107 and a second connecting plate 6108, the second ceiling plate 6107 and the second connecting plate 6108 are respectively arranged at opposite ends of the first ceiling plate 6106, and the first ceiling plate 6106, the second ceiling plate 6107 and the second connecting plate 6108 jointly form a mounting cavity 6103 and a mounting opening 6105 in communication with the mounting cavity 6103. The second buckle part 6101 is formed at the mounting opening 6105, that is, the second buckle part 6101 is formed at one end of the second ceiling plate 6107 away from the first ceiling plate 6106, and / or the second buckle part 6101 is formed at one end of the second connecting plate 6108 away from the first ceiling plate 6106.

[0056] Referring to Figure 1 and Figure 2 In some embodiments, the frame structure 100 further includes a plurality of column assemblies 30, each column assembly 30 has an upper end for connecting two adjacent frame assemblies 10 and a lower end for connecting with a surface to be fixed.

[0057] The column assembly 30 is a structure for fixing and supporting the entire frame structure 100. In some embodiments of the present application, when the cross-sectional shape of the first space 110 is square, the column assembly 30 can include four, and the four column assemblies 30 are arranged at the four corners of the first space 110, thereby achieving stable support for the frame assembly 10. The column assembly 30 can be made of steel, aluminum alloy, concrete and the like, to ensure that the column assembly 30 has sufficient carrying capacity and stability, thereby ensuring the safety and reliability of the photovoltaic sunshade 1000 during long-term use. It can be understood that the surface to be fixed includes but is not limited to the ground or the roof and the like.

[0058] In one example, the lengths of the plurality of column assemblies 30 are the same. Thus, in the case that the photovoltaic assembly 200 is subjected to the gravity and / or external load, the plurality of column assemblies 30 can more evenly transmit and disperse the pressure, achieving uniform distribution of the pressure, thereby improving the structural stability of the frame structure 100. In another example, the lengths of at least some of the plurality of column assemblies 30 are different. Thus, the column assemblies 30 with appropriate lengths can be selected according to the actual use environment of the photovoltaic sunshade 1000, thereby improving the applicability of the photovoltaic sunshade 1000. For example, in the case that the cross-sectional shape of the first space 110 is rectangular, the lengths of the two column assemblies 30 connected to the frame assemblies 10 forming the short sides of the first space 110 are different, and the lengths of the two column assemblies 30 connected to the frame assemblies 10 forming the long sides of the first space 110 are the same, so that the photovoltaic assembly 200 can be inclined relative to the horizontal plane (a plane perpendicular to the direction of gravity). It should be noted that the lengths of the plurality of column assemblies 30 are only taken as an example in the embodiments of the present application.

[0059] Please refer to Figure 2 and Figure 3 In some embodiments, the frame assembly 10 further comprises a first flow guide 13 and a second flow guide 15, the first flow guide 13 is provided with a through hole, and the second flow guide 15 is not provided with a through hole; the frame 11 of the frame assembly 10 further comprises a flow receiving member 115 provided on the inner side wall of the frame body 111, the flow receiving member 115 is provided with a flow receiving groove 1155 for receiving fluid, the first flow guide 13 is connected to and communicates with the flow receiving members 115 of at least two adjacent frame assemblies 10, and communicates with the cavity 305 of the column assembly 30, and the second flow guide 15 is connected to and communicates with the flow receiving members 115 of the other two adjacent frame assemblies 10. The ceiling joist part 630 is connected to the flow receiving member 115.

[0060] It should be noted that in some embodiments, the fluid received by the flow receiving member 115 can be liquid such as rainwater accumulated on the photovoltaic assembly 200. The ceiling joist part 630 is connected to the flow receiving member 115, so that the ceiling joist part 630 can avoid blocking the fluid and causing the fluid to fail to flow into the flow receiving groove 1155, thereby ensuring the receiving of the fluid by the flow receiving member 115.

[0061] Specifically, in some embodiments, the first flow guide 13 is arranged in the flow receiving groove 1155 of the flow receiving member 115 of the adjacent two frame assembly 10 to realize the connection and communication of the flow receiving members 115 of the adjacent two frame assembly 10. In the case that the flow receiving groove 1155 receives fluid, the flow receiving groove 1155 can guide the received fluid to the first flow guide 13, and then flow into the cavity 305 of the column assembly 30 through the through hole on the first flow guide 13 and the opening at the upper end of the column assembly 30 (the column assembly 30 corresponding to the first flow guide 13), and then be discharged to the outside of the column assembly 30. Thus, the fluid can be prevented from accumulating on the surface of the photovoltaic assembly 200, and the fluid can be prevented from blocking sunlight. On the one hand, the light absorption rate of the photovoltaic assembly 200 can be improved, the energy output of the photovoltaic sunshade 1000 can be ensured, and the power generation efficiency can be improved. On the other hand, the fluid can be prevented from soaking the photovoltaic assembly 200 to cause aging of the photovoltaic assembly 200, and the fluid can be prevented from penetrating into the inside of the photovoltaic assembly 200 to prolong the service life of the photovoltaic assembly 200. In addition, compared with the case that the flow receiving member 115 directly discharges the received fluid to the surface to be fixed, the flow receiving member 115 guiding the fluid to flow to the first flow guide 13 can prevent the fluid from directly impacting the surface to be fixed or other objects, so that the phenomenon of water splashing and water erosion can be reduced, and the probability of the area below the photovoltaic assembly 200 being adversely affected by the fluid can be reduced.

[0062] It should be noted that, in some embodiments, the material of the first flow guide 13 can include but is not limited to silica gel, rubber, plastic, metal, or the like. The first flow guide 13 can be connected and communicated with the flow receiving members 115 of the adjacent two frame assembly 10 in a detachable connection manner or a non-detachable connection manner. In some embodiments of the present application, the first flow guide 13 can be connected and communicated with the flow receiving members 115 of the adjacent two frame assembly 10 in an adhesive manner. Thus, the first flow guide 13 can not only communicate the flow receiving grooves 1155 of the flow receiving members 115 of the adjacent two frame assembly 10, but also prevent the fluid from leaking through the gap between the flow receiving members 115 of the adjacent two frame assembly 10. Thus, the fluid can flow into the cavity 305 of the column assembly 30 through the first flow guide 13, and the rainproof effect of the photovoltaic sunshade 1000 can be improved.

[0063] In some embodiments, the frame body 111 and the flow connecting member 115 are an integral structure, i.e., the frame body 111 and the flow connecting member 115 can be formed in an integral manner to form an integral structure. In this way, on the one hand, the combination strength between the frame body 111 and the flow connecting member 115 can be improved, and the flow connecting member 115 can be prevented from falling off from the frame body 111 during use of the photovoltaic sunshade 1000. On the other hand, the assembly steps of the frame assembly 10 can be reduced, and the assembly efficiency of the frame structure 100 can be improved. In other embodiments, the frame body 111 and the flow connecting member 115 are separate structures, i.e., the frame body 111 and the flow connecting member 115 are two different structures. The frame body 111 and the flow connecting member 115 can be combined together in a detachable manner or a non-detachable manner.

[0064] It should be noted that the above description is only an example, and the frame body 111 and the flow connecting member 115 can be combined in other manners. Figure 1 In some embodiments, the cavity 305 of the column assembly 30 corresponding to the second flow guide 15 can be used to accommodate the wire harness of the photovoltaic assembly 200 and other elements of the photovoltaic sunshade 1000. In this way, the second flow guide 15 is not in communication with the opening at the upper end of the corresponding column assembly 30, i.e., the fluid in the flow connecting member 115 cannot flow into the cavity 305 of the column assembly 30 corresponding to the second flow guide 15 through the second flow guide 15, thereby preventing the fluid from flowing into the cavity 305 of the column corresponding to the second flow guide 15 to cause a short circuit problem, and thereby improving the stability and reliability of power generation of the photovoltaic sunshade 1000.

[0065] Please refer to Figure 2 and Figure 3 In some embodiments, the flow connecting member 115 includes a flow connecting plate 1151 and a flow blocking plate 1153. The flow connecting plate 1151 is arranged on the inner side wall of the frame body 111, and the flow blocking plate 1153 is arranged at one end of the flow connecting plate 1151 away from the frame body 111. The flow connecting plate 1151, the inner side wall of the frame body 111, and the flow blocking plate 1153 together enclose a flow connecting groove 1155. The ceiling batten component 630 is connected to the flow blocking plate 1153.

[0066] Further, in some embodiments, the ceiling assembly 600 further comprises a connecting plate 650, and the ceiling runner 630 is connected with the baffle 1153 through the connecting plate 650. The connecting plate 650 comprises a first sub-plate 6501, a second sub-plate 6503, a third sub-plate 6505 and a fourth sub-plate 6507. The first sub-plate 6501 is connected with the baffle 1153. The second sub-plate 6503 is connected with the first sub-plate 6501 and protrudes from the first sub-plate 6501 in a direction away from the surface to be fixed, and the second sub-plate 6503 is connected with the mounting plate 6305. The third sub-plate 6505 is connected with the first sub-plate 6501, and the third sub-plate 6505 is used to support the mounting plate 6305. The fourth sub-plate 6507 is connected with the first sub-plate 6501 and forms a connecting groove 6509 together with the first sub-plate 6501, and the bottom of the connecting groove 6509 abuts against the top of the baffle 1153 (the end of the baffle 1153 away from the surface to be fixed).

[0067] More specifically, in some embodiments, the mounting plate 6305 of the ceiling runner 630 is connected with the baffle 1153 through the connecting plate 650. Wherein, the assembly steps between the ceiling assembly 600 and the baffle 1153 can be: first, connecting the first sub-plate 6501 on the baffle 1153 to realize the connection between the connecting plate 650 and the baffle 1153; then, placing the mounting plate 6305 on the third sub-plate 6505 and connecting the mounting plate 6305 with the second sub-plate 6503 to realize the connection between the ceiling runner 630 and the connecting plate 650, so that the assembly between the ceiling assembly 600 and the baffle 1153 is completed. It can be understood that the assembly steps between the ceiling assembly 600 and the baffle 1153 in the above embodiments are only exemplary, and in other embodiments, the assembly steps between the ceiling assembly 600 and the baffle 1153 can also include other forms, which are not exemplified one by one here.

[0068] It can be understood that in some embodiments, before connecting the first sub-plate 6501 with the baffle 1153, the user can place the connecting plate 650 on the top of the baffle 1153 so that the bottom of the connecting groove 6509 abuts against the top of the baffle 1153, and then connect the first sub-plate 6501 with the baffle 1153, that is, the setting of the connecting groove 6509 can limit the installation of the baffle 1153, thereby improving the assembly accuracy and efficiency of the baffle 1153. And before connecting the mounting plate 6305 with the second sub-plate 6503, the user can place the mounting plate 6305 on the third sub-plate 6505, that is, the third sub-plate 6505 can support the ceiling assembly 600, thereby making the installation of the ceiling assembly 600 more labor-saving.

[0069] In some embodiments, the connecting plate 650 can be a one-piece structure, i.e., the first sub-plate 6501, the second sub-plate 6503, the third sub-plate 6505 and the fourth sub-plate 6507 are formed as one whole structure by one-piece molding, so as to improve the structural strength of the connecting plate 650 and reduce the possibility of deformation and damage of the connecting plate 650 during use of the photovoltaic sunshade 1000. In other embodiments, the connecting plate 650 can be a split structure, i.e., the first sub-plate 6501, the second sub-plate 6503, the third sub-plate 6505 and the fourth sub-plate 6507 are four different structures. That is, the first sub-plate 6501, the second sub-plate 6503, the third sub-plate 6505 and the fourth sub-plate 6507 can be combined together by detachable connection or non-detachable connection.

[0070] Referring to Figure 1 and Figure 2 In some embodiments, the frame structure 100 further comprises a cross beam assembly 20, the opposite ends of the cross beam assembly 20 are respectively connected with the opposite two frame assemblies 10, and the first space 110 is divided into a plurality of second spaces 120 for accommodating the photovoltaic assembly 200, and the ceiling assembly 600 is further connected with the cross beam assembly 20.

[0071] The cross beam assembly 20 is a structure for strengthening and supporting in the frame structure 100. The cross beam assembly 20 is connected with the opposite two frame assemblies 10 to form a stable support structure, thereby facilitating more stable loading of the photovoltaic assembly 200. Specifically, the cross beam assembly 20 can divide the first space 110 into a plurality of second spaces 120, so that the photovoltaic assembly 200 can be independently installed and supported in the second space 120, thereby not only improving the stability of the photovoltaic sunshade 1000, but also more effectively utilizing the overall space (i.e., the first space 110) enclosed by the frame assembly 10, maximizing the installation number of the photovoltaic assembly 200, and improving the power generation capacity of the photovoltaic sunshade 1000. In some embodiments of the present application, the ceiling assembly 600 can also be arranged in the second space 120, and at this time, the ceiling assembly 600 is connected with the frame assembly 10 and the cross beam assembly 20. That is, the opposite ends of the ceiling joist part 630 can be respectively connected with the frame assembly 10 and the cross beam assembly 20.

[0072] Referring to Figure 3In some embodiments, the cross beam assembly 20 comprises a cross beam 21, the cross beam 21 comprises a cross beam body 211 and a fluid carrying member 215 arranged on opposite sides of the cross beam body 211, the fluid carrying member 215 is provided with a fluid carrying groove 2155 for carrying fluid, the fluid carrying member 215 is connected and communicated with the fluid connecting member 115 of the frame assembly 10 through the first fluid guiding member 13 of the frame assembly 10 or the second fluid guiding member 15 of the frame assembly 10; the opposite ends of the ceiling joist component 630 are connected to the fluid connecting member 115 and the fluid carrying member 215 respectively.

[0073] Specifically, in some embodiments, when the fluid carrying member 215 receives fluid, the fluid carrying member 215 can guide the received fluid to the fluid connecting member 115 through the second fluid guiding member 15, then the fluid connecting member 115 can guide the received fluid to the first fluid guiding member 13, and the received fluid can flow into the cavity 305 of the column assembly 30 through the through hole on the first fluid guiding member 13 and the opening on the upper end of the column assembly 30 (the column assembly 30 corresponding to the first fluid guiding member 13), and then be discharged to the outside of the column. In this way, the fluid can be prevented from accumulating on the surface of the photovoltaic assembly 200, and the fluid can be prevented from blocking sunlight, so that on the one hand, the light absorption rate of the photovoltaic assembly 200 can be improved, the energy output of the photovoltaic sunshade 1000 can be ensured, and the power generation efficiency can be improved; on the other hand, the photovoltaic assembly 200 can be prevented from being soaked by the fluid, the fluid can be prevented from penetrating into the interior of the photovoltaic assembly 200, and the service life of the photovoltaic assembly 200 can be prolonged. In addition, compared with the fluid carrying member 215 directly discharging the received fluid to the surface to be fixed, the fluid carrying member 215 guiding the fluid to flow to the fluid connecting member 115 can prevent the fluid from directly impacting the surface to be fixed or other objects, so that the phenomenon of water splashing and water erosion can be reduced, and the probability of the area below the photovoltaic assembly 200 being adversely affected by the fluid can be reduced.

[0074] In some embodiments, the cross beam body 211 and the fluid carrying member 215 are an integral structure, that is, the cross beam body 211 and the fluid carrying member 215 can be formed in an integral molding manner to form an integral structure, so that on the one hand, the bonding strength between the cross beam body 211 and the fluid carrying member 215 can be improved, and the fluid carrying member 215 can be prevented from falling off from the cross beam body 211 during use of the photovoltaic sunshade 1000; on the other hand, the assembly steps of the frame assembly 10 can be reduced, and the assembly efficiency of the frame structure 100 can be improved. In other embodiments, the cross beam body 211 and the fluid carrying member 215 are a split structure, that is, the cross beam body 211 and the fluid carrying member 215 are two different structures. The cross beam body 211 and the fluid carrying member 215 can be combined together in a detachable connection manner or a non-detachable connection manner.

[0075] Please refer to Figure 2 and Figure 3In some embodiments, the current-carrying member 215 includes current-carrying plates 2151 and a blocking plate 2153, the current-carrying plates 2151 are arranged on opposite sides of the beam body 211 in the width direction, the blocking plate 2153 is arranged at one end of the current-carrying plates 2151 away from the beam body 211, the current-carrying plates 2151, the side wall of the beam body 211 and the blocking plate 2153 together form a current-carrying groove 2155, and the opposite ends of the ceiling joist component 630 are connected to the current-carrying member 115 and the blocking plate 2153, respectively.

[0076] It should be noted that the connection mode of the ceiling joist component 630 and the current-carrying member 115 in the present embodiment is exactly the same as that of the ceiling joist component 630 and the current-carrying member 115 in the above embodiment, and will not be repeated here. In addition, the connection mode of the ceiling joist component 630 and the blocking plate 2153 is basically the same as that of the ceiling joist component 630 and the current-carrying member 115 in the above embodiment, and will not be repeated here.

[0077] Please refer to Figure 2 and Figure 4 In some embodiments, the photovoltaic sunshade 1000 further includes an electronic assembly 500, the electronic assembly 500 is installed on the bottom of the beam assembly 20 facing the to-be-fixed surface, the electronic assembly 500 includes a functional module 510, the functional module 510 includes a first shell 5101 and a first power connection unit 5103 at least partially accommodated in the first shell 5101, the first power connection unit 5103 is electrically connected to a first external device through a first electrical connection assembly. The bottom of the ceiling assembly 600 is farther away from the to-be-fixed surface than the bottom of the beam assembly 20, and part of the first electrical connection assembly is located between the ceiling assembly 600 and the photovoltaic assembly 200.

[0078] In some embodiments, the bottom of the ceiling assembly 600 is farther away from the to-be-fixed surface than the bottom of the beam assembly 20, and part of the first electrical connection assembly is located between the ceiling assembly 600 and the photovoltaic assembly 200, so as to not only prevent the ceiling assembly 600 from being located outside the second space 120 to cause visual defects, but also prevent the first electrical connection assembly from being exposed to the user's field of vision to cause visual defects, thereby further improving the visual effect of the photovoltaic sunshade 1000. It can be understood that in some embodiments, the bottom of the ceiling assembly 600 can be farther away from the to-be-fixed surface than the bottom of the frame assembly 10, so as to prevent the ceiling assembly 600 from being located outside the first space 110 to cause visual defects, thereby improving the visual effect of the photovoltaic sunshade 1000.

[0079] In some embodiments, the ceiling assembly 600 is spaced apart from the functional module 510 in a direction perpendicular to the direction of gravity, so as to prevent the ceiling assembly 600 from blocking the functional module 510, thereby ensuring the normal operation of the functional module 510. In addition, the photovoltaic sunshade 1000 can avoid direct contact of the electronic assembly 500 with rainwater or other liquids by installing the electronic assembly 500 on the crossbeam assembly 20 towards the bottom of the surface to be fixed, thereby prolonging the service life of the electronic assembly 500.

[0080] Please refer to Figure 1 The functional module 510 can utilize the electrical energy generated by the photovoltaic assembly 200 or the electrical energy of an external power source to realize functions such as lighting, heat dissipation, voice playing, audio playing, or projection, thereby improving the multifunctionality of the photovoltaic sunshade 1000. In some embodiments, the functional module 510 includes at least one of a lighting module, a heat dissipation module, a voice playing device, an audio playing device, a television, and a projection module. The lighting module can provide lighting functions for the photovoltaic sunshade 1000 to meet the lighting needs at night or in insufficient light; the heat dissipation module can include an air conditioner or a fan, which can be used to reduce the temperature of the photovoltaic sunshade 1000; the voice playing device includes but is not limited to a loudspeaker, a radio, and the like, which is used to play only voice information; the audio playing device includes but is not limited to a television, a display, and the like, which can play audio signals; and the projection module is used to project information, images, or videos to a specified surface for users to watch. The first shell 5101 is a structure for installing other elements of the functional module 510 and housing the other elements inside, so as to protect the other elements. The cross-sectional shape of the first shell 5101 in the YZ plane can be but is not limited to a circle, an ellipse, a rectangle, or other polygons, and the cross-sectional shape of the first shell 5101 in the present application is a racetrack shape. The material of the first shell 5101 can be plastic or metal, etc. In the case where the material of the first shell 5101 is plastic, the first shell 5101 has good insulation performance, low cost, and light weight. In the case where the material of the first shell 5101 is metal, the first shell 5101 has high strength, good wear resistance, and long service life.

[0081] The first shell 5101 at least partially houses the first power connection unit 5103, which can be a wire and / or an electrical connector. The first power connection unit 5103 is used to connect the circuit in the functional module 510 with a power source, thereby ensuring the normal power supply of the functional module 510. In the present application, the first external device can be the energy storage module in the above embodiments, which can deliver electrical energy to the electronic assembly 500. The first electrical connection assembly is an assembly connecting the first power connection unit 5103 with the first external device, which can ensure the stable transmission of electrical energy. The first electrical connection assembly can be a wire, a connector, a connector, or other electrical connection assemblies suitable for transmitting electrical energy.

[0082] Thus, after the photovoltaic module 200 converts solar energy into electrical energy, the electrical energy is transmitted to the energy storage module (i.e., the first external device) connected to the photovoltaic module 200. The first external device can store and regulate the electrical energy generated by the photovoltaic module 200 for further distribution and use. Under the control of the first external device, part of the electrical energy is transmitted to the electronic module 500 through the first electrical connection assembly. The first electrical connection assembly is connected to the functional module 510 in the electronic module 500 through the first power connection unit 5103, thereby supplying power to the functional module 510 and supporting the functional module 510 to realize functions such as lighting, heat dissipation, voice playing, audio playing, or projection.

[0083] Please refer to Figure 4 In some embodiments, the functional module 510 includes a plurality of functional modules 510, and at least two functional modules 510 are fixedly installed at the bottom of the beam assembly 20 at intervals. The photovoltaic sunshade 1000 further includes an external module 530 installed at the bottom of the beam assembly 20 and located between the adjacent two functional modules 510.

[0084] Specifically, the functional module 510 includes a plurality of functional modules 510, and the present application describes two functional modules 510. The functions of the plurality of functional modules 510 can be the same or different. For example, the two functional modules 510 of the present application are both lighting modules. The at least two functional modules 510 are fixedly installed at the bottom of the beam assembly 20 at intervals, i.e., in the extension direction of the beam assembly 20, the two functional modules 510 are spaced apart from each other, which can reduce the mutual interference between the two functional modules 510.

[0085] The detachable connection mode includes, but is not limited to, buckle connection or threaded connection, etc. The external module 530 is detachably installed at the bottom of the beam assembly 20, and the user can detach the external module 530, and then install an external electronic device with a required function, such as at least one of a lighting module, a heat dissipation module, a voice playing module, an audio playing module, and a projection module, at the original position of the external module 530, thereby realizing function expansion. When the external electronic device with the required function is not installed, the external module 530 is located between the adjacent two functional modules 510, which can fill the interval between the adjacent two functional modules 510, and the overall appearance is more compact and coordinated.

[0086] In some embodiments, the external module 530 includes a second housing 5301 and a second power connection unit 5303, the second housing 5301 is used for connecting the external electronic device, and the second power connection unit 5303 is electrically connected to the second external device through a second electrical connection assembly and is also used for electrically connecting the external electronic device; part of the second electrical connection assembly is located between the ceiling assembly 600 and the photovoltaic module 200.

[0087] The second electric connection assembly is located between the ceiling assembly 600 and the photovoltaic assembly 200, so as to prevent the second electric connection assembly from being exposed to the user's field of vision and causing visual defects, thereby improving the visual effect of the photovoltaic sunshade 1000. In some embodiments, the ceiling assembly 600 is spaced apart from the external module 530 in a direction perpendicular to the direction of gravity (i.e., the horizontal direction), so as to prevent the ceiling assembly 600 from blocking the external module 530, thereby ensuring the normal operation of the external module 530.

[0088] The external module 530 is used to provide an electric connection channel for external electronic devices. That is, the external electronic devices can be electrically connected to the second external device through the second electric connection assembly and the second electric connection unit 5303 of the external module 530, so as to realize the second external device for providing power supply for the external electronic devices.

[0089] The second shell 5301 can have a cross-sectional shape in the YZ plane that is, but not limited to, a circle, an ellipse, a rectangle, or other polygons, etc. The cross-sectional shape of the second shell 5301 of the present application is a racetrack shape. The material of the second shell 5301 can be plastic or metal, etc. When the material of the second shell 5301 is plastic, the second shell 5301 has good insulation performance, low cost, and light weight. When the material of the second shell 5301 is metal, the second shell 5301 has high strength, good wear resistance, and long service life.

[0090] The second shell 5301 at least partially accommodates the second electric connection unit 5303. The second electric connection unit 5303 can be a wire, a socket, or other units capable of electrical connection. The second electric connection unit 5303 is used to connect the circuit in the external module 530 with the second external device. The second electric connection assembly is a conductive assembly connecting the second electric connection unit 5303 and the second external device, which can ensure stable transmission of electric energy. The second electric connection assembly can be a wire, a joint, a connector, or other electrical connection elements suitable for transmitting electric energy. The second external device is used to supply power to the external module 530, wherein the second external device can be the same as or different from the first external device. For example, in the embodiment where the first external device and the second external device are the same, the first external device and the second external device are both energy storage modules connected with the photovoltaic assembly 200.

[0091] Thus, after the photovoltaic assembly 200 converts solar energy into electric energy, the electric energy is transmitted to the energy storage module (i.e., the second external device). The second external device can store and regulate the electric energy generated by the photovoltaic assembly 200 for further distribution. Under the control of the second external device, part of the electric energy is transmitted to the external electronic device through the second electric connection assembly. Specifically, the second electric connection assembly is connected with the external electronic device through the second power connection unit 5303, thereby providing power for the external electronic device. In some embodiments, the external electronic device includes at least one of a lighting module, a heat dissipation module, a voice playing device, an audio playing device, a television, and a projection module. The lighting module can provide lighting function for the photovoltaic sunshade 1000, and meet the lighting demand at night or in insufficient light; the heat dissipation module can include an air conditioner or a fan, which can be used to reduce the temperature of the photovoltaic sunshade 1000; the voice playing device includes but is not limited to a loudspeaker, a radio receiver, etc., and is used to play voice information only; the audio playing device includes but is not limited to a television, a display, etc., which can play audio signals; and the projection module is used to project information, images or videos to a designated surface for users to watch.

[0092] In the description of the present specification, the description of the terms "some embodiments", "in an example", "exemplarily", etc. means that the specific features, structures, materials or characteristics described in connection with the embodiments or examples are contained in at least one embodiment or example of the present application. In the present specification, the illustrative description of the above terms does not necessarily mean the same embodiment or example. Moreover, the specific features, structures, materials or characteristics described can be combined in any one or more embodiments or examples in a suitable manner. In addition, the person skilled in the art can combine and combine the different embodiments or examples described in the present specification and the features of the different embodiments or examples without contradiction.

[0093] Although the embodiments of the present application have been shown and described above, it should be understood that the above embodiments are exemplary and cannot be understood as limiting the present application, and the person skilled in the art can make changes, modifications, replacements and variations to the above embodiments within the scope of the present application.

Claims

1. A photovoltaic awning, characterized in that: include: A frame structure comprising a plurality of frame components for accommodating photovoltaic components; and The ceiling assembly is connected to the frame assembly and is located below the photovoltaic assembly. The ceiling assembly includes a plurality of ceilings spaced apart from each other.

2. The photovoltaic awning according to claim 1, characterized in that: The ceiling assembly comprises: At least one ceiling keel component is connected to the frame assembly, a plurality of ceilings are installed at the bottom of the ceiling keel component, and an extension direction of the ceiling intersects with an extension direction of the ceiling keel component.

3. The photovoltaic awning according to claim 2, characterized in that: Each of the ceiling keel components includes a ceiling keel and a clip keel. The ceiling keel is connected to the frame assembly through a mounting plate. The clip keel is installed at the bottom of the ceiling keel. The clip keel includes a first clip part; the ceiling includes a second clip part, and the second clip part cooperates with the first clip part to connect the ceiling to the clip keel.

4. The photovoltaic awning according to claim 3, characterized in that: The suspended ceiling includes an installation cavity running through two opposite ends of the suspended ceiling. The suspended ceiling is further provided with an installation opening communicating with the installation cavity, and the second buckle portion is formed at the installation opening.

5. The photovoltaic awning according to claim 2, characterized in that: The frame structure further comprises a plurality of column assemblies, wherein the upper end of each column assembly is used to connect two adjacent frame assemblies, and the lower end is used to connect to the surface to be fixed; The frame assembly also includes a first flow guide and a second flow guide, the first flow guide is provided with a through hole, and the second flow guide is not provided with a through hole; the frame of the frame assembly also includes a flow connection piece arranged on the inner side wall of the frame body of the frame, and the flow connection piece is provided with a flow connection groove for carrying fluid, the first flow guide piece is connected and communicated with the flow connection pieces of at least two adjacent frame assemblies, and is communicated with the cavity of the column assembly, the second flow guide piece is connected and communicated with the flow connection pieces of the other two adjacent frame assemblies; the ceiling keel component is connected to the flow connection piece.

6. The photovoltaic awning according to claim 5, characterized in that: The flow connection component includes a flow connection plate and a flow baffle, the flow connection plate is arranged on the inner side wall of the frame body, the flow baffle is arranged at the end of the flow connection plate away from the frame body, the flow connection plate, the inner side wall of the frame body and the flow baffle together form the flow connection groove; the ceiling keel component is connected to the flow baffle.

7. The photovoltaic awning according to claim 6, characterized in that: The ceiling assembly further includes a connecting plate, through which the ceiling keel component is connected to the baffle; the connecting plate includes: a first sub-plate, the first sub-plate being connected to the baffle; a second sub-plate connected to the first sub-plate and extending protrudingly from the first sub-plate in a direction away from the surface to be fixed, the second sub-plate being connected to the mounting plate of the ceiling keel component; a third sub-board, the third sub-board being connected to the first sub-board and being used to support the mounting plate; and A fourth sub-plate is connected to the first sub-plate and forms a connecting groove together with the first sub-plate, wherein the bottom of the connecting groove abuts against the top of the baffle.

8. The photovoltaic awning according to any one of claims 1 to 7, characterized in that: Multiple frame assemblies form a first space; the frame structure also includes a beam assembly, the opposite ends of the beam assembly are respectively connected to the two opposite frame assemblies, and the first space is divided into multiple second spaces, the second spaces are used to accommodate photovoltaic components, and the ceiling assembly is also connected to the beam assembly.

9. The photovoltaic awning according to claim 8, characterized in that: The crossbeam assembly includes a crossbeam, which includes a crossbeam body and current-carrying parts arranged on opposite sides of the crossbeam body. The current-carrying parts are provided with a current-carrying groove for carrying fluid. The current-carrying parts are connected and communicated with the flow connecting parts of the frame assembly through the first flow guide part of the frame assembly or the second flow guide part of the frame assembly; the opposite ends of the ceiling keel component are respectively connected to the flow connecting parts and the current-carrying parts.

10. The photovoltaic awning according to claim 9, characterized in that: The current-carrying part includes a current-carrying plate and a baffle. The current-carrying plates are arranged on opposite sides of the beam body in the width direction. The baffle is arranged at one end of the current-carrying plate away from the beam body. The current-carrying plate, the side wall of the beam body and the baffle together form the current-carrying trough. The opposite ends of the ceiling keel component are respectively connected to the current connecting part and the baffle.

11. The photovoltaic awning according to claim 8, characterized in that: The photovoltaic awning further includes an electronic component, which is mounted on the bottom of the beam assembly facing the surface to be fixed, and the electronic component includes a functional module, which includes a first shell and a first power connection unit at least partially accommodated in the first shell, and the first power connection unit is electrically connected to a first external device via a first electrical connection assembly; The ceiling assembly is further away from the surface to be fixed than the bottom of the beam assembly, and a portion of the first electrical connection assembly is located between the ceiling assembly and the photovoltaic assembly.

12. The photovoltaic awning according to claim 11, characterized in that: The functional modules include a plurality of modules, at least two of which are fixedly installed at the bottom of the beam assembly at intervals; the photovoltaic awning also includes: An external module is installed at the bottom of the beam assembly and is located between two adjacent functional modules. The external module includes a second shell and a second power connection unit. The second shell is used to connect to an external electronic device. The second power connection unit is electrically connected to a second external device through a second electrical connection assembly and is also used to electrically connect to the external electronic device. Part of the second electrical connection assembly is located between the ceiling assembly and the photovoltaic assembly.

13. The photovoltaic awning according to claim 12, characterized in that: The external electronic device includes at least one of a lighting module, a heat dissipation module and a projection module.