Patent classifications
H10F19/85
Photovoltaic panel packaging structure and method for the same
The present invention provides a photovoltaic panel packaging structure and method for the same. The packaging structure comprises a frame and a solar photovoltaic panel. The solar photovoltaic panel includes a first frame surface and a second frame surface with a receiving space and grooves formed therein. The a solar photovoltaic panel is installed in the receiving space and stacked on top of a first stop portion. The solar photovoltaic panel includes a first encapsulating layer, a second encapsulating layer. The first encapsulating layer includes a plurality of engaging strips extending along the edges of the solar photovoltaic panel, the engaging strips are respectively embedded in the corresponding grooves to hold the solar photovoltaic panel in place in the frame. Meanwhile, a third encapsulating layer extends to connect to the second frame surface. As a result, weight and thickness can be reduced while reducing multiple packaging passes and simplifying the assembly process.
Photovoltaic panel packaging structure and method for the same
The present invention provides a photovoltaic panel packaging structure and method for the same. The packaging structure comprises a frame and a solar photovoltaic panel. The solar photovoltaic panel includes a first frame surface and a second frame surface with a receiving space and grooves formed therein. The a solar photovoltaic panel is installed in the receiving space and stacked on top of a first stop portion. The solar photovoltaic panel includes a first encapsulating layer, a second encapsulating layer. The first encapsulating layer includes a plurality of engaging strips extending along the edges of the solar photovoltaic panel, the engaging strips are respectively embedded in the corresponding grooves to hold the solar photovoltaic panel in place in the frame. Meanwhile, a third encapsulating layer extends to connect to the second frame surface. As a result, weight and thickness can be reduced while reducing multiple packaging passes and simplifying the assembly process.
Method for making a modular solar panel
A modular solar panel including multiple solar panel modules. Each solar panel module includes a solar cell assembly. The solar cell assembly includes a protective glass, a base plate, a solar cell array located therebetween, and an electrical connection ribbons extending from the ends of the solar cell array. The solar panel module further includes one or more coupling modules. Each coupling module includes an interior cavity to receive one end of the solar cell assembly, two or more magnets removably embedded in the coupling module, a pin joint located on exterior of a first coupling module to interlock with a pin joint located on exterior of a second coupling module, and an electrical connection plug to receive one of the first and the second electrical connection ribbons. The electrical connection plug of the first coupling module electrically connects with an electrical connection plug of the second coupling module.
Method for making a modular solar panel
A modular solar panel including multiple solar panel modules. Each solar panel module includes a solar cell assembly. The solar cell assembly includes a protective glass, a base plate, a solar cell array located therebetween, and an electrical connection ribbons extending from the ends of the solar cell array. The solar panel module further includes one or more coupling modules. Each coupling module includes an interior cavity to receive one end of the solar cell assembly, two or more magnets removably embedded in the coupling module, a pin joint located on exterior of a first coupling module to interlock with a pin joint located on exterior of a second coupling module, and an electrical connection plug to receive one of the first and the second electrical connection ribbons. The electrical connection plug of the first coupling module electrically connects with an electrical connection plug of the second coupling module.
Interlocking BIPV roof tile with backer
Building integrated photovoltaic (BIPV) systems provide for solar panel arrays that can be aesthetically pleasing to an observer. BIPV systems can be incorporated as part of roof surfaces as built into the structure of the roof, particularly as photovoltaic modules having the appearance of a plurality of roofing tiles that each have photovoltaic cells. Each photovoltaic module may include a metal backer, photovoltaic cells, and light transmissive top sheets adhered to both the metal backer and the photovoltaic cells. BIPV systems can also include non-photovoltaic modules that appear similar to photovoltaic modules, but do not collect solar energy.
Interlocking BIPV roof tile with backer
Building integrated photovoltaic (BIPV) systems provide for solar panel arrays that can be aesthetically pleasing to an observer. BIPV systems can be incorporated as part of roof surfaces as built into the structure of the roof, particularly as photovoltaic modules having the appearance of a plurality of roofing tiles that each have photovoltaic cells. Each photovoltaic module may include a metal backer, photovoltaic cells, and light transmissive top sheets adhered to both the metal backer and the photovoltaic cells. BIPV systems can also include non-photovoltaic modules that appear similar to photovoltaic modules, but do not collect solar energy.
Polypropylene composition for producing a layer of a photovoltaic module
The present invention is directed to a layer of an electrical device a photovoltaic module comprising at least one photovoltaic element and at least one layer comprising a polypropylene composition and to the use of a polypropylene composition for producing at least one layer of an element of a photovoltaic module.
Polypropylene composition for producing a layer of a photovoltaic module
The present invention is directed to a layer of an electrical device a photovoltaic module comprising at least one photovoltaic element and at least one layer comprising a polypropylene composition and to the use of a polypropylene composition for producing at least one layer of an element of a photovoltaic module.
PATTERNED PHOTOVOLTAIC CELL ARRANGEMENTS IN SOLAR MODULE LAMINATIONS
A photovoltaic module incorporates a lamination including a back-sheet, an array of solar cells supported on the back-sheet, and a transparent protective covering over the array of solar cells. The solar cells are arranged in offset or staggered patterns on the back-sheet to present a more random and less rigid industrial appearance to an observer. In some cases, cleaved solar cell segments are arranged into groups that are staggered on the back-sheet. This allows for finer control of the net voltage produced by a module. In other embodiments, full single wafer solar cells are arranged into larger groups, which themselves are staggered on the back-sheet. In either case, the result is a photovoltaic module with an appearance that is more organic and acceptable to homeowners and architects than traditional modules having cells arranged in rigid aligned rows and columns.
PATTERNED PHOTOVOLTAIC CELL ARRANGEMENTS IN SOLAR MODULE LAMINATIONS
A photovoltaic module incorporates a lamination including a back-sheet, an array of solar cells supported on the back-sheet, and a transparent protective covering over the array of solar cells. The solar cells are arranged in offset or staggered patterns on the back-sheet to present a more random and less rigid industrial appearance to an observer. In some cases, cleaved solar cell segments are arranged into groups that are staggered on the back-sheet. This allows for finer control of the net voltage produced by a module. In other embodiments, full single wafer solar cells are arranged into larger groups, which themselves are staggered on the back-sheet. In either case, the result is a photovoltaic module with an appearance that is more organic and acceptable to homeowners and architects than traditional modules having cells arranged in rigid aligned rows and columns.