The present invention regards generally to solar cell modules.
Usually, solar cells are electrically connected, and combined into “modules”, or solar panels. Solar panels have a sheet of glass on the front, and a resin encapsulation behind to keep the semiconductor wafers safe from the elements (rain, hail, etc) and give protection against corrosion. Solar cells are usually connected in series in modules, so that their voltages add. This interconnection is provided by a metallic interconnector attached on two adjacent solar cells.
In conventional flat-panel solar cell modules, the active elements, i.e. solar cells, account for the largest share of the costs due to expensive material and manufacturing process.
To cut the costs of a solar cell module it is thus desirable to reduce the density of the active elements within the module, while still capturing mostly the same amount of light incident on the solar module. Thus the incident light on areas not covered by an active element has to be redirected towards adjacent active elements.
The patent WO001999056317 shows a solution for a solar cell module comprising a structure to redirect incident sun light from areas not covered by active elements towards adjacent active elements. Thus a laminated plastic film with embossed V-grooves and additional metallic reflective coating on the grooves is placed between adjacent active elements into a solar cell module in such a way that the reflective grooves are facing towards the covering front glass sheet. The reflective grooves have a certain angle so that incident light reflected by the grooves will hit the front surface of the covering glass under an angle bigger than the critical angle which leads to an internal reflection and than travel further towards an active element. In this invention the reflective film is placed into the gap between two adjacent cells which may interfere with the cell interconnection. Also the metallic coating of the reflective film may affect the insulation between the solar cells and the strings of interconnected solar cells.
The object of the present invention is made to simplify the embodiment of a solar cell module comprising solar cells, interconnectors and reflective elements to redirect incident light from areas not covered by solar cells towards the solar cells. The object of the invention is further fully or partly to solve the above described problems. In the present invention the functions of electrically interconnecting two adjacent cells and redirecting incident sun light towards these cells are combined into one element. Additionally this element is in one embodiment capable of releasing mechanical stress between the solar cells induced by thermal expansion under different climatic conditions.
The objects of the invention is solved by means of the features in the patent claims. According to one embodiment of the invention, a solar cell module comprises
a light receiving structure having a sufficiently transparent front cover and
a plurality of active elements placed behind the said front cover and
a plurality of interconnectors comprising at least one electric conductive layer and each interconnecting minimum two adjacent said active elements
wherein said interconnectors having a reflective structure facing towards said front cover to direct incident light to the front surface of said front cover and reflect internally further onto said active elements.
According to another embodiment of the invention, the interconnectors cover 30%-100% of the area between the active elements.
According to still another embodiment the interconnectors have spring elements to provide stress release between said two interconnected adjacent active elements.
In one embodiment of the invention the interconnectors are V-groove shaped and reflective coated to provide at the same time said reflective structure and stress release.
In one embodiment the interconnectors are embossed with V-grooves smaller than the thickness of said interconnectors and reflective coated to provide said reflective structure.
In another embodiment an additional polymeric film with embossed V-grooves and a reflective coating is attached to said interconnectors to provide said reflective structure. The polymeric film may be a ready structured and reflective coated tape.
The polymeric film may be made by a liquid or soft resin coated, embossed, cured and reflective coated direct onto the said interconnector.
In one embodiment the angle of the said V-grooves are such that light incident on the said V-grooves is reflected back into the said transparent front cover with an angle larger than the critical angle.
The vertex angle of the said V-grooves is for example in the range of 110°-130°.
The reflective coating may be a Ag, Al, Au or reflective polymer layer.
The reflective coating may be protected from corrosion by an additional transparent protective coating.
The active elements are in one embodiment back contacted solar cells.
In one embodiment the active elements are back- and front contacted solar cell.
The interconnector may be made of a metal or a metal alloy with good electric conductivity such as Cu, Al, Ag or other.
The interconnectors may be connected to the said active elements by soldering.
In one embodiment at least the contact areas of the said interconnectors are coated by tin or one of its alloys to provide better solderability.
In one embodiment, the solar cells or solar cell areas with additional irradiance from the reflective structure have a higher contact finger density.
The present invention may be more fully understood from the detailed description accompanied with these drawings:
The
With reference to
The connection elements may move slightly with respect to the main body of the interconnector 3 and with respect to other connection elements connected to the interconnector 3. This interconnector arrangement is preferably flexible to ensure sufficient stiffness of the interconnector while allowing some relative movement between the different parts in a solar cell assembly. This design results into a stress releasing spring structure of the interconnector 3 to compensate displacements of the interconnected solar cells 2a and 2b caused by the thermal expansion under different operating temperatures. The bars 6 might be designed meandering to provide also a better stress release between the connection elements 5 and the main body of the interconnector 3.
The
In the design shown in
Depending on the type of solar cells used in the solar cell module 1 there are two methods to apply the interconnection. As illustrated in
a demonstrates a first method to provide the desired shape for the reflective structure 4a on the interconnector 3. A V-grooved shape is realized by punching the body of the interconnector 3 so that in a cross section view the body of the interconnector 3 appears in a zigzag shape with its amplitude higher than the thickness of the interconnector 3 but not higher than the thickness of the solar cell and the encapsulation. To improve the reflectivity of the reflective structure 4a an additional reflective coating might be applied.
A second method to shape the reflective structure 4b on the interconnector 3 is shown in
In
The desired shape which might be provided by one of the above mentioned methods are V-grooves with an angle such that incident light on this V-grooves is reflected back into the front cover with an angle bigger than the critical angle so that it will be internally reflected on the front surface of the front cover. It has been found out that an angle in the range of 110°-130° is a favorable design for the V-grooves.
The additional coating to improve the reflectivity of the reflective structure 4 is preferably an Ag layer but might be also Al, Au, reflective polymer or other material. To prevent a reflectivity drop of this reflective coating caused by corrosion especially before the interconnectors 3 are encapsulated within a solar cell module a transparent protective coating might be applied on top of the reflective coating.
Filing Document | Filing Date | Country | Kind | 371c Date |
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PCT/NO2008/000031 | 1/30/2008 | WO | 00 | 9/2/2009 |
Number | Date | Country | |
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60887353 | Jan 2007 | US |