Photovoltaic Modules and Assemblies
The photovoltaic assembly addresses cable obstruction and efficiency issues by arranging modules parallel to the slope with aligned cables and tracks, enhancing water flow and reducing debris accumulation and shading.
Patent Information
- Application Number
- JP2021560872
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2019-05-15
- Filing Date
- 2020-05-15
- Publication Date
- 2025-10-23
- Estimated Expiration
- 2040-05-15
AI Technical Summary
Photovoltaic modules installed on sloping roofs face issues with horizontal cables obstructing water flow, leading to debris accumulation, cable degradation, and reduced efficiency due to water retention and shading, especially on corrugated metal roofs.
The photovoltaic assembly design features photovoltaic modules arranged in rows parallel to the slope with cables and junction boxes positioned to align with water flow, using connecting and return electrical tracks that are either embedded or sheathed, minimizing horizontal obstructions and water retention.
This design reduces cable degradation and enhances electrical efficiency by streamlining water flow, reducing debris accumulation, and improving aesthetics by minimizing shadows and visual impact.
Smart Images

Figure 0007759258000001 
Figure 0007759258000002 
Figure 0007759258000003
Abstract
Description
[Technical Field]
[0001] The present invention relates to a photovoltaic assembly, in particular for installation on a sloped roof, comprising a photovoltaic module with photovoltaic cells for generating electrical power from solar radiation, and various cables and electrical devices for collecting the generated electrical current.
[0002] An important part of residential buildings is, among other things, a sloping roof, which can be made of corrugated metal sheets, tiles, etc. Sloping roofs provide an interesting surface for the installation of photovoltaic modules. The slope of the roof allows rainwater falling on the roof to be diverted.
[0003] Photovoltaic modules consist of a flat support sheet or plate, photovoltaic cells, and connecting elements such as a junction box. They allow the generation of electrical current using solar radiation. Installing photovoltaic modules on roofs provides economically and ecologically interesting electricity for light, heat, and electrical appliances, either as a primary or secondary auxiliary power source.
[0004] The photovoltaic modules are then integrated into photovoltaic assemblies that include multiple modules, connecting cables, adapters, and additional structural elements such as supports, spacers, frames, etc. It is known to position the photovoltaic modules against the roof surface to minimize the sheltering space below the modules where filth and small animals can take refuge.
[0005] It is often necessary to reduce the weight of photovoltaic assemblies, especially on roof membranes or corrugated metal sheets. It is known to install laminated photovoltaic modules directly on the surface, preferably by gluing to avoid penetrations into the roof. Photolaminated modules are obtained by laminating photovoltaic cells between protective plastic sheets with an encapsulating resin. In this case, the junction box and cables are positioned on the front side, i.e., the sunny side, to avoid specific CMS shapes or holes in the roofing material.
[0006] The photovoltaic modules are particularly arranged in lines and rows, and to interconnect the modules of a horizontal line, cables are placed between them in a sensitive horizontal direction perpendicular to the slope.
[0007] Cables placed horizontally relative to the roof or module surface create an obstacle to water flow that occurs parallel to the slope. In particular, debris and particles, such as rotting leaves, can eventually accumulate against the cable and clog the water flow underneath. Material and humidity accumulated against the cable accelerates cable degradation, while accumulated water can eventually cover portions of the photovoltaic cells and stain the front surface above the cells.
[0008] This results in a reduced module life expectancy and a reduced overall electrical efficiency of the photovoltaic assembly.
[0009] In particular, in the case of corrugated metal roofs where the photovoltaic modules are installed at the bottom of grooves separated by ridges, the horizontal cables and the ridges combine to form important rainwater retention spaces. Installing horizontal cables on the ridges is technically complex and aesthetically unattractive, while the cables at the top of the ridges create larger shadows.
[0010] In order to overcome the aforementioned drawbacks, the present invention proposes a photovoltaic assembly for installation on a sloping roof, the photovoltaic assembly comprising: a plurality of photovoltaic modules arranged in at least one row parallel to the slope, each photovoltaic module comprising: a rectangular laminate having two sloping sides positioned parallel to the slope of the roof and two horizontal sides positioned perpendicular to the slope; a plurality of photovoltaic cells disposed within the laminate; a plurality of photovoltaic modules including at least two monopolar junction boxes, each of which includes a first junction box attached to a corner between one of the first or second sloping sides and the first horizontal side, and a second junction box connected to the photovoltaic cells attached to a corner between the same first or second sloping side and the second horizontal side, the junction boxes of the photovoltaic modules being adjacent to the same sloping side of the photovoltaic modules; a connecting cable spanning between the second junction box of the photovoltaic module and the first junction box of the next photovoltaic module in the string of photovoltaic modules; a collection cable configured to connect the photovoltaic module to the current collector.
[0011] This particular architecture, with cables parallel to the water flow along the slope, reduces the area where water and waterborne organic matter can accumulate over time.
[0012] A photovoltaic assembly according to the invention may also present one or more of the following characteristics, taken separately or in combination:
[0013] The photovoltaic cells may be arranged in rows parallel to the inclined sides, with at least one connecting electrical track connecting one photovoltaic cell to the next in the row of photovoltaic cells and including a connection segment connecting the first photovoltaic cell in the first row of the arrangement and the last photovoltaic cell in the last row to the junction box, respectively, and a U-shaped section connecting the last photovoltaic cell in the row of the arrangement to the first photovoltaic cell in the next row.
[0014] A photovoltaic module may include an odd number of photovoltaic cell strings.
[0015] The photovoltaic cells may be arranged in lines parallel to the horizontal sides, with at least one connecting electrical track connecting one photovoltaic cell to the next in the line of photovoltaic cells and including a connection segment connecting the first photovoltaic cell of the first line of the arrangement and the last photovoltaic cell of the last line to a junction box, respectively, and a U-shaped section connecting the last photovoltaic cell of the line of the arrangement to the first photovoltaic cell of the next line.
[0016] A photovoltaic module may include an even number of photovoltaic cell lines.
[0017] The assembly includes one return cable per row of photovoltaic modules running parallel to the slanted sides of the photovoltaic modules, and the return cable may connect the junction box of the last photovoltaic module in a row or line to the current collector or junction box of the first photovoltaic module in the next row or line.
[0018] At least a portion of the return cable and the connecting cable may be enclosed within a cable sheath, the cable sheath being parallel to the angled side of the photovoltaic module.
[0019] The photovoltaic module may include a return electrical track embedded in the module and parallel to the angled side; The return electrical track of one module is connected to the return electrical track of the next module in the row, The return electrical track of the first photovoltaic module in the string is also connected to the collection cable, The return electrical track of the last photovoltaic module in the string is connected to the junction box of that last photovoltaic module in the string.
[0020] The present invention also relates to a photovoltaic module for use in a photovoltaic assembly as described above, a rectangular laminate having two sloping sides that are positioned parallel to the slope of the roof when installed and two horizontal sides that are positioned perpendicular to the slope when installed; a plurality of photovoltaic cells disposed on the laminate; - A first junction box attached to a corner between one of the first or second inclined sides and the first horizontal side, and a second junction box connected to the photovoltaic cell attached to a corner between the same first or second inclined side and the second horizontal side, wherein the junction boxes of the photovoltaic module comprise at least two monopolar junction boxes adjacent to the same inclined side of the photovoltaic module.
[0021] The photovoltaic cells may be arranged in an odd number of rows parallel to the inclined sides, and at least one connecting electrical track connects one photovoltaic cell in a row to the next photovoltaic cell and includes a connection segment connecting the first photovoltaic cell in the first row of the arrangement and the last photovoltaic cell in the last row to the junction box, respectively, and a U-shaped section connecting the last photovoltaic cell in the row of the arrangement to the first photovoltaic cell in the next row.
[0022] The photovoltaic cells may be arranged in an even number of lines parallel to the horizontal sides of the laminate, with at least one connecting electrical track connecting one photovoltaic cell in the line to the next photovoltaic cell and including a connecting segment connecting the first photovoltaic cell in the first line of the arrangement and the last photovoltaic cell in the last line to a junction box, respectively, and a U-shaped section connecting the last photovoltaic cell in the line of the arrangement to the first photovoltaic cell in the next line.
[0023] The photovoltaic module may be provided with a return electrical track parallel to its angled side.
[0024] Finally, the present invention also relates to a corrugated sheet for installation on a roof or structure, characterized in that it comprises at least one photovoltaic module as described above attached to its upper surface, with its inclined sides parallel to the ridges of the corrugated sheet.
[0025] Other characteristics and features of the invention will become apparent in the course of the following description, given in an illustrative and non-limiting manner in conjunction with the drawings. [Brief explanation of the drawings]
[0026] [Figure 1] 1 is a schematic diagram of a portion of a photovoltaic assembly according to one embodiment of the present invention. [Figure 2a-2b] FIG. 2 is a schematic diagram of a single module of the assembly of FIG. 1. [Figure 3] FIG. 10 is a schematic view of a single module of another embodiment of an assembly according to the invention. [Figure 4] FIG. 10 is a schematic diagram of a single module of yet another embodiment of an assembly according to the invention. [Figure 5] FIG. 1 is a partial view of the interface between two modules of the assembly. [Figure 6] FIG. 1 is a cross-sectional view of the assembly placed on a corrugated metal sheet.
[0027] The description refers to the particular embodiments shown in the figures. In particular, the same references apply to the same or equivalent elements in all the embodiments. Also, various embodiments can be obtained by slightly modifying or combining different embodiments.
[0028] When considering assemblies installed on a sloped roof, adjectives and characteristics such as "upper", "lower", "horizontal", "vertical" etc. are given in relation to the diagram and / or the direction of rainwater flowing, for example, under the influence of gravity.
[0029] 1 is a schematic perspective view of a photovoltaic assembly 100 disposed on a sloped roof, for example, the sloped roof of a residence, cellar, or other building such as a house, garage, shed, storage unit, etc.
[0030] The slope direction means the direction of maximum downward gradient and is represented by the arrow S. The slope direction S also corresponds to the average flow direction of rainwater under normal conditions.
[0031] Photovoltaic assembly 100 comprises a plurality of photovoltaic modules labeled 1a, 1b, 1c, etc. In particular, modules 1a, 1b, 1c, etc. are arranged in a row along a tilt direction S. The reference 1 is used to designate any photovoltaic module without regard to its order in assembly 100.
[0032] 1, assembly 100 includes three strings, each containing three modules labeled 1a-1i. The strings are then connected in series or parallel depending on the desired voltage and current.
[0033] In Figure 2 a single module, labelled 1, is represented in front view. The module 1 comprises a module body in the form of a rectangular laminate 11, which when installed has two inclined sides SS parallel to the tilt direction S and two horizontal sides HS perpendicular to the tilt direction S.
[0034] The module 1 comprises photovoltaic cells 13a, 13b etc. arranged in columns parallel to the tilt direction S, and here in particular in rows parallel to the horizontal side HS. The reference 13 is used to designate any photovoltaic cell within the module without taking into account its position within the module.
[0035] The photovoltaic cells 13a, 13b, etc. are thin enough (tens or hundreds of micrometers) to remain flexible, in that they can be subjected to curvature without losing their structural and electrical properties, e.g., monocrystalline silicon cells. The laminate 11 may then be a particularly flexible sheet, and the cells 13a, 13b, etc. are laminated to form the laminate 11 with the encapsulating resin and transparent front sheet to form the photovoltaic module 1.
[0036] The embodiment depicted in Figure 2a comprises twelve photovoltaic cells, labelled 13a to 13l, arranged in three rows of four cells each.
[0037] The module 1 also includes two junction boxes 15a, 15b, the first junction box 15a mounted at the corner between one of the sloping sides SS and the first upper horizontal side HS, and the second junction box 15b mounted at the corner between the sloping side SS and the second lower horizontal side HS.
[0038] In particular, the junction boxes 15a, 15b are positioned on the same horizontal side (along a single inclined side SS) of the laminate 11. The junction boxes 15a, 15b are mono-pole junction boxes.
[0039] The junction boxes 15a, 15b and the cells 13a-13l in Figure 2 are connected via one connecting electrical track 17. The electrical track 17 comprises, for example, a metal ribbon encapsulated with the cells 13a-13l.
[0040] The electrical track 17 includes connection segments that connect one photovoltaic cell 13a-13k to the next photovoltaic cell (13b-13l) in the row. Two connection segments connect the first photovoltaic cell 13a of the first row to the first junction box 15a, and the last cell 13l of the last row to the second junction box 15b.
[0041] The section of the electric track 17 is formed as a U-shape, which connects the last cell of a column (13d, 13h) to the first cell of the next column (13e, 13i). In Figure 2, the first and third columns have their cells labeled 13a, 13b, etc. from top to bottom (Figure 2), and the second column has its cells labeled 13e-13h from bottom to top.
[0042] More generally, using the ordering shown in Figure 2a, odd columns have their cells labeled 13a, 13b, etc. from top to bottom, and even columns have their cells labeled from bottom to top.
[0043] As a result, the cells 13a, 13b etc. are connected in series and the connecting electrical tracks 17 form a zigzag across successive rows of cells 13a, 13b etc.
[0044] The placement of an odd number of cell rows (here 3) ensures that the last cell 13l is on the same vertical side of the laminate 11 as the second junction box 15b, and that the first cell 13a is on the same side as the first junction box 15a.
[0045] Figure 2b transposes the considerations of Figure 2a to the connection of cells connected by lines parallel to the horizontal side HS, with an even number of lines.
[0046] The embodiment depicted in Figure 2b includes twelve photovoltaic cells, labeled 13a-13l, arranged in four lines of three cells each.
[0047] The module 1 also includes a first junction box 15a positioned at the corner between one of the sloping sides SS and the first upper horizontal side HS, and a second junction box 15b positioned at the corner between the sloping side SS and the second lower horizontal side HS, which are positioned on the same horizontal side (along the single sloping side SS) of the laminate 11.
[0048] The junction boxes 15a, 15b and the cells 13a-13l in Figure 2 are connected via one connecting electrical track 17. The electrical track 17 comprises, for example, a metal ribbon encapsulated with the cells 13a-13l.
[0049] The electric track 17 includes connection segments that connect one photovoltaic cell 13a-13k to the next photovoltaic cell (13b-13l) in the line: two connection segments, one connecting the first photovoltaic cell 13a of the first line to the first junction box 15a, and the other connecting the last cell 13l of the last line to the second junction box 15b.
[0050] The section of the electrical track 17 is formed as a U-shape, which connects the last cell of a line (13c, 13h) to the first cell of the next line (13d, 13i). In Figure 2b, the first and third lines have their cells labeled from left to right (Figure 2), and the second and fourth lines have their cells labeled from right to left.
[0051] By having an even number of lines, the last cell 13l is closer to the second junction box 15b and therefore a shorter electrical track 17 is required.
[0052] 3 shows the case of a module with four (even number) rows, so that an additional length of connecting electrical track 17 is required to connect the last cell 13 of the last row to the second junction box 15b, these two being diagonally opposite on the laminate 11.
[0053] Other connection patterns are possible, for example connecting cells 13a, 13b, etc. in lines or columns connected in parallel to reach a particular current and voltage output.
[0054] 1, connection cables 21 are visible which connect modules 1a, 1b etc. via their respective junction boxes 15a, 15b. In particular, connection cable 21 connects the second junction box 15b of module 1a to the first junction box 15a of the next module 1b in the row.
[0055] Collection cables 19 connect modules 1a, 1b, etc. to current collectors (not shown) to accommodate or store the power generated by photovoltaic assembly 100. In particular, in the embodiment depicted in Figure 1, collection cables 19 include cables connected to the first junction box 15a of the first module 1a, 1d, 1g in each row. In Figure 1, return cables 23 are depicted pointing upwards, but they can point downwards.
[0056] The return cable 23 is connected to the current collector at the second junction box 15b of the last module 1c, 1f, 1i in the row. Most of the return cable 23 runs parallel to the inclined side SS of the laminate 11, especially along the row of modules 1a, 1b, etc. This solution prevents the formation of inductive loops, as required by technical regulations.
[0057] FIG. 4 is a schematic diagram of a single module 1, with the return cable 23 embedded by segments inside modules 1a, 1b, etc.
[0058] In particular, the photovoltaic module 1 includes a return electrical track 25 embedded in the module 1, for example a metal ribbon laminated in the same layer as the cells 13 and parallel to the oblique side SS.
[0059] A connection means such as a secondary junction box or socket forms the end of the return electrical track 25 .
[0060] When assembled, the return electrical track 25 of one module 1a is connected to the return electrical track 25 of the next module 1b in the string. The electrical return track 25 of the first photovoltaic module 1a in the string is also connected to the collection cable 19 and further to the current collector. The return electrical track 25 of the last photovoltaic module 1c, 1f, 1i in the string is connected to the second junction box 15b of the last photovoltaic module 1c, 1f, 1i in the string.
[0061] To reduce the horizontal width of the laminate, the tracks 25 can pass under the cells, separated from them by an insulating layer.
[0062] Such an architecture reduces the length of the apparent return cable 23 while providing a modular photovoltaic assembly 100 that is easy to assemble.
[0063] 5 shows a portion of another particular embodiment of a photovoltaic assembly 100, in particular the area between two consecutive modules 1 a, 1 b. In particular, only the bottom of the first module 1 a and the top of the second module 1 b are visible.
[0064] The junction boxes 15a, 15b of the two depicted modules 1a, 1b are in particular parallelepipeds with two faces parallel to the inclined side SS of the laminate 11. The connecting cables 21 are connected via connection means such as sockets to one of the faces of the modules 1a, 1b that is parallel to the inclined side SS facing outwards.
[0065] In this way, there is no horizontal dam, preventing water retention and stagnation in front.
[0066] The connecting cable 21 and the return cable 23 are at least partially enclosed in a sheath 27 which runs parallel to the oblique side SS for additional protection, among other things.
[0067] The sheath 27 is, for example, a deformable polymer sheath with a closure lip, or a rigid cable tray. In particular, reversible closure means allow maintenance and repair by replacement of the contained cables 21, 23.
[0068] Figure 6 is a cross-sectional view of a corrugated sheet 29 on which the assembly 100 according to Figure 5 is mounted. In particular, the cut plane is perpendicular to the tilt direction S.
[0069] The corrugated sheet includes ridges 31 parallel to the slope direction S and flat portions 33 between the ridges 31. For example, the corrugated sheet can be a corrugated metal sheet, which can be made of steel, aluminum, zinc, polymer, etc., or a corrugated sheet of composite-based material (e.g., fiberglass and resin).
[0070] The photovoltaic module 1 and cable sheath 27 are positioned on flat portion 33. In particular, the cables 21, 23 are positioned near the bottom of ridge 31 to minimize their visual impact, even in embodiments without cable sheath 27. Positioning the cable sheath 27 near the bottom of ridge 31 further reduces the shadow it may cast on photovoltaic module 1 while improving the aesthetics of assembly 100.
[0071] The photovoltaic module 1 according to the invention is particularly suitable for photovoltaic assemblies 100 in rows parallel to the tilt direction S. The particular position of the junction boxes 15a, 15b makes it possible to reduce the length of the horizontal or nearly horizontal connecting cables 21. The water flow over the modules 1 of such an assembly is therefore streamlined and the water does not stagnate as much, even in the presence of debris such as fallen leaves.
[0072] In particular, on the corrugated sheet, the photovoltaic assemblies 100 are discretely and efficiently integrated. The photovoltaic modules 1 can be attached directly to the corrugated sheet 29, for example, by adhering them so that their slanted sides SS are parallel to the ridges 31 of the corrugated sheet 29. The photovoltaic modules 1 are particularly attached or adhered to the upper side of the corrugated sheet 29, which is the side that faces the sky and receives sunlight when installed.
[0073] The corrugated sheet 29 with the attached modules 1 can be easily stored, shipped and handled individually. Installation of the corrugated sheet 29 on the roof or structure is then followed by installation of the connecting and return cables 21, 23, resulting in the completed photovoltaic assembly 100.
Claims
1. A photovoltaic assembly (100) for installation on a sloped roof, comprising: a plurality of photovoltaic modules (1 a, 1 b, ...) arranged in at least one row parallel to the slope (S), each photovoltaic module (1 a, 1 b, ...) a rectangular laminate (11) having two inclined sides (SS) positioned parallel to the slope (S) of the roof and two horizontal sides (HS) positioned perpendicular to the slope (S); a plurality of photovoltaic cells (13) disposed within the laminate (11); ■ A plurality of photovoltaic modules (1a, 1b, ...) including a first junction box (15a) attached to a corner between one of the first or second inclined sides (SS) and a first horizontal side (HS), and a second junction box (15b) attached to a corner between the same first or second inclined side (SS) and the second horizontal side (HS), and connected to the photovoltaic cells (13), and including at least two mono-polar junction boxes (15a, 15b) installed on the upper side of the photovoltaic modules facing the sun, the junction boxes (15a, 15b) of the photovoltaic modules (1a, 1b, ...) being adjacent to the same inclined side (SS) of the photovoltaic modules (1a, 1b, ...); a connecting cable (21) connecting the inclined sides (SS) of the same side of each photovoltaic module (1a, 1b, ...) between the second junction box (15b) of the photovoltaic module (1a, 1b, ...) and the first junction box (15a) of the next photovoltaic module (1a, 1b, ...) in the row of photovoltaic modules; a current collecting cable (19) configured to connect said photovoltaic modules (1a, 1b, . . . ) to a current collector.
2. 2. The photovoltaic assembly of claim 1, wherein the photovoltaic cells (13) are arranged in rows parallel to the inclined sides, and at least one connecting electrical track (17) connects one photovoltaic (13a) cell to the next (13b) in the row of photovoltaic cells (13), and includes a connection segment connecting the first photovoltaic cell (13a, 13b, ...) of the first row of the arrangement and the last photovoltaic cell (13a, 13b, ...) of the last row to a junction box, respectively, and a U-shaped section connecting the last photovoltaic cell (13a, 13b, ...) of the row of the arrangement to the first photovoltaic cell (13a, 13b, ...) of the next row.
3. 3. Photovoltaic assembly according to claim 2, characterized in that the photovoltaic modules (1a, 1b, ...) comprise an odd number of rows of photovoltaic cells (13).
4. 3. The photovoltaic assembly according to claim 1, comprising one return cable (23) per row of photovoltaic modules (1a, 1b, ...) running parallel to the inclined sides of the photovoltaic modules (1a, 1b, ...), the return cable (23) connecting the second junction box (15b) of the last photovoltaic module (1a, 1b, ...) in the row to a current collector or the first module in the next row.
5. 2. The photovoltaic assembly according to claim 1, characterized in that the photovoltaic cells (13) are arranged in a line parallel to the horizontal side, and at least one connecting electrical track (17) connects one photovoltaic (13a) cell to the next (13b) in the line of photovoltaic cells (13) and includes a connection segment connecting the first photovoltaic cell (13a, 13b, ...) of the first line of the arrangement and the last photovoltaic cell (13a, 13b, ...) of the last line to a junction box, respectively, and a U-shaped section connecting the last photovoltaic cell (13a, 13b, ...) of the line of the arrangement to the first photovoltaic cell (13a, 13b, ...) of the next line.
6. 6. Photovoltaic assembly according to claim 5, characterized in that the photovoltaic modules (1a, 1b, ...) comprise an even number of lines of photovoltaic cells (13).
7. 7. The photovoltaic assembly according to claim 6, characterized in that at least a portion of the return cable (23) and the connecting cable (21) are enclosed in a cable sheath (27), the cable sheath (27) being parallel to the inclined sides of the photovoltaic modules (1a, 1b, ...).
8. said photovoltaic modules are characterized in that they include return electrical tracks (25) embedded in said modules (1a, 1b, ...) and parallel to said oblique sides; the return electrical track (25) of one module is connected to the return electrical track (25) of the next module (1a, 1b, ...) in the row; the return electrical track of the first photovoltaic module (1 a) in the row is also connected to a collection cable (19); The photovoltaic assembly according to any one of claims 1 to 6, wherein the return electrical track (25) of the last photovoltaic module (1 a, 1 b, ...) in the string is connected to the second junction box (15 b) of the last photovoltaic module (1 a, 1 b, ...) in the string.
9. A photovoltaic module for use in a photovoltaic assembly according to claim 1 or 2, comprising: a rectangular laminate (11) having, when installed, two inclined sides (SS) positioned parallel to the slope (S) of the roof, and two horizontal sides (HS) positioned perpendicular to the slope (S); a plurality of photovoltaic cells (13) disposed within the laminate (11); ■ A photovoltaic module characterized by comprising at least two monopolar junction boxes (15a, 15b) connected to the photovoltaic cells (13), each including a first junction box (15a) attached to a corner between the first or second inclined side (SS) and a first horizontal side (HS), and a second junction box (15b) attached to a corner between the same first or second inclined side (SS) and a second horizontal side (HS), and the junction boxes (15a, 15b) of the photovoltaic modules (1a, 1b, ...) are adjacent to the same inclined side (SS) of the photovoltaic modules (1a, 1b, ...).
10. 10. The photovoltaic module according to claim 9, characterized in that the photovoltaic cells (13a, 13b, ...) are arranged in an odd number of rows parallel to the inclined side (SS), and at least one connecting electrical track (17) connects one photovoltaic cell (13a, 13b, ...) in a row to the next photovoltaic cell (13a, 13b, ...) and includes a connection segment connecting the first photovoltaic cell (13a, 13b, ...) of the first row of the arrangement to the last photovoltaic cell (13a, 13b, ...) of the last row to a junction box (15a, 15b), respectively, and a U-shaped section connecting the last photovoltaic cell (13a, 13b, ...) of a row of the arrangement to the first photovoltaic cell (13a, 13b, ...) of the next row.
11. 9. The photovoltaic module according to claim 8, characterized in that the photovoltaic cells (13a, 13b, ...) are arranged in an even number of lines parallel to the horizontal side (HS), and at least one connecting electrical track (17) connects one photovoltaic cell (13a, 13b, ...) in a line to the next photovoltaic cell (13a, 13b, ...) and includes a connection segment connecting the first photovoltaic cell (13a, 13b, ...) of the first line of the arrangement and the last photovoltaic cell (13a, 13b, ...) of the last line to a junction box (15a, 15b), respectively, and a U-shaped section connecting the last photovoltaic cell (13a, 13b, ...) of the line of the arrangement to the first photovoltaic cell (13a, 13b, ...) of the next line.
12. 9. Photovoltaic module according to claim 8, characterized in that the photovoltaic module comprises a return electrical track (25) parallel to its oblique side (SS).
13. 9. A corrugated sheet for installation on a roof or structure, characterized in that it comprises at least one photovoltaic module (1 a, 1 b, ...) according to claim 8 attached to its upper surface, the inclined sides (SS) being parallel to the ridges (31) of the corrugated sheet (29).
Citation Information
Patent Citations
Solar battery module
JP1977156590A
Solar cell module integrated with roof material
JP1994085305A
Wiring structure of wall panel with solar cell
JP1996172212A
S0lar cell module and solar cell system
JP1997213983A
Wiring structure of solar-cell panel
JP2000027394A