Photovoltaic module and photovoltaic power generation system
By setting an anti-reflective layer on the surface of the photovoltaic module's tile body and mounting components, the light pollution problem of photovoltaic systems is solved, achieving a balance between environmental protection and light energy absorption efficiency, and reducing the impact of light pollution on life.
Patent Information
- Application Number
- CN202520165762.0
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-01-23
- Publication Date
- 2026-01-06
- Estimated Expiration
- 2035-01-23
AI Technical Summary
Photovoltaic systems cause serious light pollution, affecting people's lives, and existing technologies are unable to effectively reduce light reflection.
An anti-reflective layer is applied to the surface of the photovoltaic module's tile body and mounting components to increase the surface roughness of the material, causing diffuse reflection of light and reducing light pollution.
By setting anti-reflective layers on the photovoltaic module body and mounting components, light pollution is reduced, environmental friendliness is improved, glare effect is reduced, and the absorption effect of solar cells on light energy is not affected.
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Figure CN223771979U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of photovoltaic module technology, and more specifically, to a photovoltaic module and a photovoltaic power generation system. Background Technology
[0002] In the photovoltaic industry, when sunlight shines on the surface of a photovoltaic system, the sunlight is reflected on the material surface, creating light pollution. With the popularization of distributed photovoltaics, light pollution will become more and more serious.
[0003] Against this backdrop, there is an urgent need to develop and popularize photovoltaic systems that can reduce light reflection in order to reduce the impact of light pollution on people's lives. Utility Model Content
[0004] This utility model aims to solve one of the technical problems existing in the prior art or related technologies.
[0005] In view of this, in a first aspect, the present invention proposes a photovoltaic module, comprising: a tile body; a mounting component connected to the tile body, the mounting component being used to mount the tile body onto the part to be mounted; and an anti-reflection layer disposed on the surfaces of the tile body and the mounting component, the surface roughness of the anti-reflection layer being greater than the surface roughness of the tile body and the mounting component.
[0006] The mounting component is connected to the tile body and is used to install it on the part to be installed, thereby fixing the tile body on the part to be installed. For example, the part to be installed can be the roof of a house, or the part to be installed can be a beam structure on the roof.
[0007] In photovoltaic products, the surfaces of the tile body and the mounting components are usually smooth. When light shines on the material surface of the tile body and the mounting components, the light will be strongly reflected. If the roughness of the material surface is increased, when light shines on the material surface, most of the light will be diffused. When the human eye looks at the photovoltaic module, only a small part of the light will enter the human eye, which will greatly reduce the glare effect perceived by the eyes.
[0008] In this solution, an anti-reflective layer is applied to the surfaces of the tile body and the mounting components. The surface roughness of the anti-reflective layer is greater than that of both the tile body and the mounting components, thus reducing light reflection from the photovoltaic modules. Therefore, by applying an anti-reflective layer to the surfaces of the tile body and the mounting components, light pollution from the photovoltaic modules can be reduced, thereby minimizing the impact of light pollution on people's lives.
[0009] In photovoltaic modules, not only the tile itself reflects light, but the mounting components also reflect light. This solution fully considers the components of photovoltaic modules that can generate light pollution, and anti-reflection layers are set on both the tile itself and the mounting components, thereby effectively reducing the light pollution of photovoltaic modules and making the photovoltaic modules in this solution more environmentally friendly.
[0010] In addition, the photovoltaic module according to the above-mentioned technical solution provided by this utility model may also have the following additional technical features:
[0011] In some technical solutions, optionally, the surface roughness of the antireflection layer is Ra, and Ra satisfies the following range: 8μm≤Ra≤30μm.
[0012] If the surface roughness of the antireflective layer is too small, its effect on reducing light reflection will be poor. If the surface roughness of the antireflective layer is too large, it will increase the processing difficulty of the antireflective film. Moreover, when the surface roughness of the antireflective film is too large, it will also affect the light transmittance. For a tile body with internal solar cells, the antireflective film will greatly affect the solar cells' absorption of light energy.
[0013] This design limits the roughness of the antireflective coating to between 8 μm and 30 μm. Within this range, the antireflective coating can achieve a high antireflection effect without excessively increasing the processing difficulty, thus improving the ease of fabrication. For tile bodies with internally mounted solar cells, the antireflective coating does not easily affect the solar cells' light absorption.
[0014] In some technical solutions, the anti-reflective layer may be sprayed onto the tile body and the mounting components; or the anti-reflective layer may be adhered to the tile body and the mounting components; or the anti-reflective layer may be integrally formed into the tile body and the mounting components.
[0015] The anti-reflective layer can be applied to the tile body and mounting components by spraying. This method does not require any modification to the surface structure of the tile body and mounting components, making it convenient to form the anti-reflective layer on the tile body and mounting components.
[0016] Alternatively, an anti-reflective film structure can be adhered to the tile body and mounting components, which also facilitates the formation of an anti-reflective layer on the tile body and mounting components.
[0017] Alternatively, the surfaces of the tile body and the mounting components can be processed to form an anti-reflective layer. In this way, the anti-reflective layer is part of the structure of the tile body and the mounting components themselves, and the anti-reflective layer is not easily detached from the tile body and the mounting components.
[0018] In some technical solutions, the antireflective layer may optionally include a frosted layer and / or a matte layer.
[0019] The anti-reflective layer can be a frosted layer. The rough surface of the frosted layer can cause diffuse reflection of light. Similarly, the matte layer can also cause diffuse reflection of light.
[0020] A frosted layer can be applied to both the tile body and the mounting hardware; or
[0021] A matte finish is applied to both the tile body and the mounting components; or
[0022] One of the tile body and the mounting component has a frosted layer, and the other has a matte layer.
[0023] In some technical solutions, the antireflective layer may optionally include a frosted layer, wherein the particle size of the frosted particles in the frosted layer is L, and L satisfies the following condition: 100 mesh ≤ L ≤ 200 mesh.
[0024] When a frosted layer is applied to the surface of the photovoltaic module and the mounting components, frosted particles between 100 and 200 mesh should be selected. Within this range, the diffuse reflection effect of the frosted layer on light can be effectively improved, reducing light pollution generated by the photovoltaic module.
[0025] In some technical solutions, the tile body may optionally include at least one of the following: power-generating tiles and non-power-generating tiles.
[0026] In photovoltaic modules, there are usually multiple tile bodies. Some of these tile bodies can be power-generating tiles, which absorb light energy and convert it into electrical energy. Other tile bodies can be non-power-generating tiles, which can be used in conjunction with power-generating tiles to cover buildings.
[0027] For example, a power-generating tile may include a glass panel and solar cells, with the solar cells housed within the glass panel and an anti-reflective layer applied to the glass panel. A non-power-generating tile consists of a glass panel without solar cells inside.
[0028] In some technical solutions, the tile body may optionally include non-power-generating tiles; non-power-generating tiles include: glass tiles and non-glass tiles, the non-glass tiles being cut into a set shape.
[0029] A portion of the photovoltaic module can be a non-power-generating tile. Among non-power-generating tiles, there are glass tiles and non-glass tiles. The shape of glass tiles is similar to that of power-generating tiles, which helps to improve the uniformity of photovoltaic modules.
[0030] Non-glass roofing installation accessories are made of metal or other rigid polymer materials with a frosted or matte finish. The appearance of non-glass roofing tiles can match the main color of power generation tiles and glass tiles. The material of non-glass roofing tiles can be cut to fit different house structures.
[0031] Non-glass roofing tiles can be transition tiles, ridge tiles, edge ridge tiles, drip tiles, baffles, etc. Many types of non-glass roofing tiles are made of metal or other polymer materials.
[0032] In some technical solutions, optionally, a light-receiving surface is provided on the tile body, and an anti-reflection layer is provided on the light-receiving surface.
[0033] One surface of the tile body is positioned to face the light, serving as the light-receiving surface. Light can strike this surface, and an anti-reflective layer can be applied to reduce light reflection. On other surfaces of the tile body, since they are less likely to be directly illuminated, the anti-reflective layer can be applied only to the light-receiving surface, thus reducing the processing difficulty of the tile body.
[0034] In some technical solutions, the mounting component may optionally include: a frame, disposed at the edge of the tile body; a mounting structure, connected to the frame, the mounting structure being used to connect to the part to be mounted, and an anti-reflective layer disposed on the surfaces of the tile body, the frame, and the mounting structure.
[0035] A border is provided along the edge of the tile body. The border supports and protects the edge of the tile body, reducing the damage rate. Mounting components are installed on the border, which can be locked onto the part to be installed, thus securing the border and the tile body.
[0036] Secondly, this utility model proposes a photovoltaic power generation system, including the photovoltaic module as described in the first aspect.
[0037] Additional aspects and advantages of this invention will become apparent in the following description or may be learned by practice of this invention. Attached Figure Description
[0038] The above and / or additional aspects and advantages of this utility model will become apparent and readily understood from the description of the embodiments taken in conjunction with the following drawings, in which:
[0039] Figure 1 A schematic diagram of the structure of the photovoltaic module in an embodiment of this utility model is shown;
[0040] Figure 2 A schematic diagram of the structure of the tile body and the anti-reflection layer in an embodiment of this utility model is shown;
[0041] Figure 3 A schematic diagram of the structure of the power generation tile in an embodiment of this utility model is shown;
[0042] Figure 4 A schematic diagram of the structure of the matte layer in an embodiment of this utility model is shown;
[0043] Figure 5 A schematic diagram of the structure of the tile body and the matte layer in an embodiment of this utility model is shown;
[0044] Figure 6 A schematic diagram of diffuse reflection of light on a matte layer is shown in an embodiment of this invention;
[0045] Figure 7A schematic diagram of the structure of the photovoltaic module in an embodiment of this utility model is shown;
[0046] Figure 8 A schematic diagram of the structure of the glass tile and antireflective layer in an embodiment of this utility model is shown;
[0047] Figure 9 A schematic diagram of the structure of the non-glass tile and the frosted layer in an embodiment of this utility model is shown.
[0048] Figure label:
[0049] 100 Photovoltaic module, 110 watt body, 111 power generating watt, 112 non-power generating watt, 113 glass watt, 114 non-glass watt, 115 light-receiving surface, 116 panel glass, 117 solar cell, 120 mounting component, 121 frame, 122 mounting structure component, 130 anti-reflective layer, 131 frosted layer, 132 matte layer. Detailed Implementation
[0050] To better understand the above-mentioned objectives, features, and advantages of this utility model, the present utility model will be further described in detail below with reference to the accompanying drawings and specific embodiments. It should be noted that, unless otherwise specified, the embodiments and features described in these embodiments can be combined with each other.
[0051] Many specific details are set forth in the following description in order to provide a full understanding of the present invention. However, the present invention may also be implemented in other ways different from those described herein. Therefore, the scope of protection of the present invention is not limited to the specific embodiments disclosed below.
[0052] The following reference Figures 1 to 9 This invention describes photovoltaic modules and photovoltaic power generation systems provided according to some embodiments of the present invention.
[0053] Combination Figure 1 and Figure 2 As shown, in some embodiments of this utility model, a photovoltaic module 100 is proposed, including: a tile body 110, a mounting member 120, and an anti-reflection layer 130. The mounting member 120 is connected to the tile body 110 and is used to mount the tile body 110 onto the part to be mounted. The anti-reflection layer 130 is disposed on the surfaces of the tile body 110 and the mounting member 120, and the surface roughness of the anti-reflection layer 130 is greater than the surface roughness of the tile body 110 and the mounting member 120.
[0054] The mounting component 120 is connected to the tile body 110. The mounting component 120 is used to install on the part to be installed, thereby fixing the tile body 110 on the part to be installed. For example, the part to be installed can be the roof of a house, or the part to be installed can be a beam structure on the roof.
[0055] In photovoltaic products, the surfaces of the tile body 110 and the mounting component 120 are usually smooth. When light shines on the material surfaces of the tile body 110 and the mounting component 120, the light will be strongly reflected. If the roughness of the material surface is increased, when light shines on the material surface, most of the light will be diffusely reflected. When the human eye looks at the photovoltaic module 100, only a small portion of the light will enter the human eye, which will greatly reduce the glare effect perceived by the eyes.
[0056] In this design, an anti-reflection layer 130 is provided on the surfaces of the tile body 110 and the mounting component 120. The surface roughness of the anti-reflection layer is greater than that of both the tile body 110 and the mounting component 120, thereby reducing the reflection of light by the photovoltaic module 100. Therefore, by providing the anti-reflection layer 130 on the surfaces of the tile body 110 and the mounting component 120, the light pollution from the photovoltaic module 100 can be reduced, thus minimizing the impact of light pollution on people's lives.
[0057] In the photovoltaic module 100, not only the tile body 110 reflects light, but the mounting component 120 also reflects light. This solution fully considers the components of the photovoltaic module 100 that can generate light pollution, and provides anti-reflection layers 130 on both the tile body 110 and the mounting component 120, thereby effectively reducing the light pollution of the photovoltaic module 100 and making the photovoltaic module 100 in this solution more environmentally friendly.
[0058] For example, the part to be installed can be a structure on the roof, such as bricks, tiles, beams, etc., or the part to be installed can be a support frame in the photovoltaic module 100, which is fixed to the roof.
[0059] In some embodiments, the surface roughness of the antireflection layer 130 is Ra, where Ra satisfies the following range: 8 μm ≤ Ra ≤ 30 μm.
[0060] If the surface roughness of the antireflection layer 130 is too small, its effect on reducing light reflection will be poor. If the surface roughness of the antireflection layer 130 is too large, it will increase the processing difficulty of the antireflection film. Moreover, when the surface roughness of the antireflection film is too large, it will also affect the light transmittance. For the tile body 110 with the internal solar cell 117, the antireflection film will greatly affect the light energy absorption effect of the solar cell 117.
[0061] In this design, the roughness of the antireflective coating is limited to between 8 μm and 30 μm. Within this range, the antireflective coating can achieve a high antireflection effect on light without excessively increasing the processing difficulty, thus improving the ease of processing. For the tile body 110 with internally mounted solar cells 117, the antireflective coating does not easily affect the light energy absorption effect of the solar cells 117.
[0062] For example, Ra can be 8 μm, 10 μm, or 30 μm.
[0063] In some embodiments, the antireflective layer 130 may be sprayed onto the tile body 110 and the mounting component 120; or the antireflective layer 130 may be adhered to the tile body 110 and the mounting component 120; or the antireflective layer 130 may be integrally formed on the tile body 110 and the mounting component 120.
[0064] The anti-reflection layer 130 can be applied to the tile body 110 and the mounting component 120 by spraying. This method does not require any modification to the surface structure of the tile body 110 and the mounting component 120, making it convenient to form the anti-reflection layer 130 on the tile body 110 and the mounting component 120.
[0065] Alternatively, an anti-reflective film structure can be adhered to the tile body 110 and the mounting component 120, which also facilitates the formation of the anti-reflective layer 130 on the tile body 110 and the mounting component 120.
[0066] Alternatively, the surfaces of the tile body 110 and the mounting component 120 can be processed to form an anti-reflection layer 130 on the surface of the tile body 110 and the mounting component 120. In this way, the anti-reflection layer 130 is part of the structure of the tile body 110 and the mounting component 120 itself, and the anti-reflection layer 130 is not easily detached from the tile body 110 and the mounting component 120.
[0067] Combination Figure 4 , Figure 5 , Figure 6 and Figure 9 As shown, in some embodiments, the antireflective layer 130 may optionally include a frosted layer 131 and / or a matte layer 132.
[0068] The antireflection layer 130 can be a frosted layer 131. The surface of the frosted layer 131 is rough, which can cause diffuse reflection of light. Similarly, the matte layer 132 can also cause diffuse reflection of light.
[0069] A frosted layer 131 can be applied to both the tile body 110 and the mounting component 120. The frosting process creates a porous structure on the material surface, resulting in an uneven surface. When light shines on the material surface, most of the light is diffusely reflected; or
[0070] A matte layer 132 is provided on both the tile body 110 and the mounting component 120; or
[0071] One of the tile body 110 and the mounting component 120 is provided with a frosted layer 131, and the other is provided with a matte layer 132.
[0072] In some embodiments, the antireflective layer 130 may optionally include a frosted layer 131, wherein the particle size of the frosted particles in the frosted layer 131 is L, and L satisfies the following condition: 100 mesh ≤ L ≤ 200 mesh.
[0073] When a frosted layer 131 is provided on the surface of the tile body 110 and the mounting component 120, it is necessary to select frosted particles between 100 mesh and 200 mesh. Within this range, the diffuse reflection effect of the frosted layer 131 on light can be effectively improved, reducing the light pollution generated by the photovoltaic module 100.
[0074] For example, L is 100 mesh, 150 mesh, or 200 mesh.
[0075] Combination Figure 3 and Figure 7 As shown, in some embodiments, the tile body 110 may optionally include at least one of the following: a power-generating tile 111 and a non-power-generating tile 112.
[0076] In a photovoltaic module 100, there are usually multiple tile bodies 110. Some of the tile bodies 110 can be power-generating tiles 111, which are used to absorb light energy and thus realize the function of converting light energy into electrical energy. Other tile bodies 110 can be non-power-generating tiles 112, which can be used in conjunction with power-generating tiles 111 to cover the building together.
[0077] For example, such as Figure 3 As shown, the power-generating tile 111 may include a panel glass 116 and a battery cell 117. The battery cell 117 is disposed within the panel glass 116, and an anti-reflective layer 130 is disposed on the panel glass 116. The non-power-generating tile 112 may be the panel glass 116, but no battery cell 117 is disposed within the panel glass 116.
[0078] Combination Figure 7 , Figure 8 and Figure 9 As shown, in some embodiments, the tile body 110 optionally includes a non-powered tile 112; the non-powered tile 112 includes: a glass tile 113 and a non-glass tile 114, the non-glass tile 114 being cut into a set shape.
[0079] A portion of the tile body 110 can be a non-power-generating tile 112. Among the non-power-generating tiles 112, there are glass tiles 113 and non-glass tiles 114. The shape of the glass tile 113 is similar to that of the power-generating tile 111, which helps to improve the uniformity of the photovoltaic module 100.
[0080] The non-glass tile 114 used for roof installation accessories is made of metal or other rigid polymer materials, with a frosted or matte finish. The appearance of the non-glass tile 114 can be consistent with the main color of the power generation tile 111 and the glass tile 113. The material of the non-glass tile 114 can be cut to adapt to different house structures.
[0081] In one possible application, the power generation tile 111 and the glass tile 113 can be curved, and the structure can be a single-glass structure or a double-glass structure.
[0082] Non-glass roofing tiles 114 can be transition tiles, ridge tiles, edge ridge tiles, drip tiles, baffles, etc. Many types of tiles in non-glass roofing tiles 114 are made of metal or other polymer materials.
[0083] Photovoltaic modules can be composed of accessories such as power generating tiles, non-power generating tiles, transition tiles (metal tiles), ridge tiles, side ridge tiles, drip tiles, and baffles.
[0084] The power generation tiles and glass tiles are single- or double-glazed structures. The surface of the front cover glass is treated with a frosted finish, which can be achieved through material processing or chemical methods. After special processing, the surface roughness of the glass ranges from 8µm to 30µm. Material frosting is preferred, using 100-200 mesh abrasive particles (silica, corundum, etc.) to sandblast the glass surface. The frame 121 and mounting structure 122 used in the tile body 110 are made of aluminum alloy or other rigid materials. The metal surfaces use the same frosting process as the tile body 110, with a surface roughness range of 8µm to 30µm. The color of the frame 121 and mounting structure 122 is consistent with the main appearance and color of the tile body 110.
[0085] Combination Figure 1 and Figure 9 As shown, in some embodiments, optionally, the tile body 110 is provided with a light-receiving surface 115, and the light-receiving surface 115 is provided with an anti-reflection layer 130.
[0086] One surface of the tile body 110, oriented towards the light, serves as a light-receiving surface 115. Light can strike the light-receiving surface 115, and an anti-reflection layer 130 can be applied to it to reduce light reflection. Since other surfaces of the tile body 110 are less susceptible to direct light exposure, the anti-reflection layer 130 can be applied only to the light-receiving surface 115, thereby reducing the processing difficulty of the tile body 110.
[0087] like Figure 1As shown, in some embodiments, optionally, the mounting member 120 includes: a frame 121 and a mounting structure 122, the frame 121 being disposed at the edge of the tile body 110, the mounting structure 122 being connected to the frame 121, the mounting structure 122 being used to connect to the part to be installed, and the anti-reflective layer 130 being disposed on the surface of the tile body 110, the frame 121 and the mounting structure 122.
[0088] A frame 121 is provided along the edge of the tile body 110. The frame 121 supports and protects the edge of the tile body 110, reducing the damage rate of the tile body 110. A mounting structure 122 is provided on the frame 121. The mounting structure 122 can be locked onto the part to be installed, thereby fixing the frame 121 and the tile body 110.
[0089] In the embodiments of this utility model, a photovoltaic power generation system is proposed, which includes the photovoltaic module as described in any of the above embodiments and can achieve the same technical effect, and will not be described again here.
[0090] For example, a photovoltaic power generation system also includes a lightning protection system, such as a lightning arrester or similar structure.
[0091] In this utility model, the term "multiple" refers to two or more unless otherwise explicitly defined. The terms "installation," "connection," "linking," and "fixing," etc., should be interpreted broadly. For example, "connection" can be a fixed connection, a detachable connection, or an integral connection; "linking" can be a direct connection or an indirect connection through an intermediate medium. Those skilled in the art can understand the specific meaning of the above terms in this utility model according to the specific circumstances.
[0092] In the description of this specification, the terms "one embodiment," "some embodiments," "specific embodiment," etc., refer to a specific feature, structure, material, or characteristic described in connection with that embodiment or example, which is included in at least one embodiment or example of the present invention. In this specification, the illustrative expressions of the above terms do not necessarily refer to the same embodiment or example. Furthermore, the specific features, structures, materials, or characteristics described may be combined in any suitable manner in one or more embodiments or examples.
[0093] The above description is merely a preferred embodiment of this utility model and is not intended to limit the utility model. Various modifications and variations can be made to this utility model by those skilled in the art. Any modifications, equivalent substitutions, improvements, etc., made within the spirit and principles of this utility model should be included within the protection scope of this utility model.
Claims
1. A photovoltaic module, characterized by, The application relates to a photovoltaic module. The application relates to a photovoltaic module. The application relates to a photovoltaic module. The application relates to a photovoltaic module.
2. The photovoltaic module of claim 1, wherein, The application relates to a photovoltaic module.
3. The photovoltaic module of claim 1, wherein, The application relates to a photovoltaic module. The application relates to a photovoltaic module. The application relates to a photovoltaic module.
4. The photovoltaic module according to any of claims 1 to 3, characterized in that, The application relates to a photovoltaic module.
5. The photovoltaic module according to any of claims 1 to 3, characterized in that, The application relates to a photovoltaic module.
6. The photovoltaic module according to any of claims 1 to 3, characterized in that, The application relates to a photovoltaic module. The application relates to a photovoltaic module.
7. The photovoltaic module according to any of claims 1 to 3, characterized in that, The application relates to a photovoltaic module. The application relates to a photovoltaic module.
8. The photovoltaic module according to any of claims 1 to 3, characterized in that, The application relates to a photovoltaic module.
9. The photovoltaic module according to any of claims 1 to 3, characterized in that, The application relates to a photovoltaic module. The application relates to a photovoltaic module. The application relates to a photovoltaic module.
10. A photovoltaic power system, characterized by, The application relates to a photovoltaic module. The application relates to a photovoltaic module. The application relates to a photovoltaic module. The application relates to a photovoltaic module. The application relates to a photovoltaic module. The application relates to a photovoltaic module. The application relates to a photovoltaic module. The application relates to a photovoltaic module. The application relates to a photovoltaic module. The application relates to a photovoltaic module. The application relates to a photovoltaic module. The application relates to a photovoltaic module. The application relates to a photovoltaic module. The application relates to a photovoltaic module. The application relates to a photovoltaic module. The application relates to a photovoltaic module. The application relates to a photovoltaic module. The application relates to a photovoltaic module. The application relates to a photovoltaic module. The application relates to a photovoltaic module. The application relates to a photovoltaic module. The application relates to a photovoltaic module. The application relates to a photovoltaic module. The application relates to a photovoltaic module. The application relates to a photovoltaic module. The application relates to a photovoltaic module. The application relates to a photovoltaic module. The application relates to a photovoltaic module. The application relates to a photovoltaic module. The application relates to a photovoltaic module. The application relates to a photovoltaic module. The application relates to a photovoltaic module. The application relates to a photovoltaic module. The application relates to a photovoltaic module. The application relates to a photovoltaic module. The application relates to a photovoltaic module. The application relates to a photovoltaic module. The application relates to a photovoltaic module. The application relates to a photovoltaic module. The application relates to a photovoltaic module. The application relates to a photovoltaic module. The application relates to a photovoltaic module. The application relates to a photovoltaic module. The application relates to a photovoltaic module. The application relates to a photovoltaic module. The application relates to a photovoltaic module. The application relates to a photovoltaic module. The application relates to a photovoltaic module. The application relates to a photovoltaic module. The application relates to a photovoltaic module. The application relates to a photovoltaic module. The application relates to a photovoltaic module. The application relates to a photovoltaic module. The application relates to a photovoltaic module. The application relates to a photovoltaic module. The application relates to a photovoltaic module. The application relates to a photovoltaic module. The application relates to a photovoltaic module. The application relates to a photovoltaic module. The application relates to a photovoltaic module. The application relates to a photovoltaic module. The application relates to a photovoltaic module. The application relates to a photovoltaic module. The application relates to a photovoltaic module. The application relates to a photovoltaic module. The application relates to a photovoltaic module. The application relates to a photovoltaic module. The application relates to a photovoltaic module. The application relates to a photovoltaic module. The application