The invention relates to a solar cell module.
A solar cell module including a plurality of back contact solar cells connected to each other by wiring members has been known as a solar cell module capable of realizing improved output characteristics (see Patent Document 1, for example).
Patent Document 1: Japanese Patent Application Publication No. 2009-266848
There is a demand for improvement in endurance for repeated increases and decreases in the temperature of the solar cell module.
One aspect of the invention provides a solar cell module with improved endurance for the repeated increases and decreases in the temperature.
A solar cell module according to an embodiment includes a plurality of solar cells and a wiring member. The wiring member is attached to surfaces of the adjacent solar cells on one side. The wiring member electrically connects the adjacent solar cells. The wiring member includes an insulation sheet and a conductive layer disposed on the insulation sheet. A length of a portion of the wiring member located between the adjacent solar cells is greater than a distance between the adjacent solar cells.
The embodiments above provide a solar cell module with improved endurance for repeated increases and decreases in the temperature.
Hereinafter, examples of preferred embodiments are described. It should be noted that the following embodiments are provided just for illustrative purposes. The invention should not be limited at all to the following embodiments.
In the drawings referred to in the embodiments and other parts, components having substantially the same function are referred to with the same reference numeral. In addition, the drawings referred to in the embodiments and other parts are illustrated schematically, and the dimensional ratio and the like of objects depicted in the drawings are different from those of actual objects in some cases. The dimensional ratio and the like of objects are also different among the drawings in some cases. The specific dimensional ratio and the like of objects should be determined with the following description taken into consideration.
As illustrated in
First protection member 11 can be made of, for example, a glass substrate, a resin substrate, or the like. Second protection member 12 can be made of, for example, a resin sheet, a resin sheet internally including a metal foil, a glass substrate, a resin substrate, or the like. Sealing material 13 can be made of, for example, a resin such as ethylene-vinyl acetate copolymer (EVA), polyvinyl butyral (PVB), polyethylene (PE), and polyurethane (PU).
Solar cell string 10 includes a plurality of solar cells 20 which are arranged at intervals in a first direction (an x-axis direction). A plurality of solar cells 20 are electrically connected to each other by wiring members 30. Specifically, wiring member 30 electrically connects solar cells 20 that are adjacent to each other in the x-axis direction. Wiring member 30 is attached to rear surfaces 20b of solar cells 20 adjacent in the x-axis direction. Solar cells 20 and wiring member 30 can be attached together, for example, by using a resin adhesive, a resin adhesive containing a conductive material, solder, or the like.
In the embodiment, solar cells 20 are back contact solar cells in which first and second electrodes 21 and 22 are provided on rear surfaces 20b out of light-receiving and rear surfaces 20a, 20b. However, in the invention, solar cells are not limited to the back contact solar cells.
As illustrated in
As illustrated in
Conductive layer 32 is disposed on insulation sheet 31. Adjacent solar cells 20 are electrically connected by conductive layer 32. Conductive layer 32 can be made of an appropriate conductive material such as a metal.
A portion of wiring member 30 located between adjacent solar cells 20 includes a curved portion or a bent portion. Specifically, in the embodiment, the portion of wiring member 30 located between adjacent solar cells 20 includes curved portion 30a. Accordingly, length L1 of the portion of wiring member 30 located between adjacent solar cells 20 is greater than distance L2 between adjacent solar cells 20. For this reason, even when distance L2 between adjacent solar cells 20 is increased due to a rise of the temperature of solar cell module 1, a stress is unlikely to be applied between wiring member 30 and each solar cell 20 since wiring member 30 is expandable and contractible in the x-axis direction. Hence, wiring member 30 and solar cells 20 are unlikely to be detached. Thus, it is possible to realize solar cell module 1 with improved endurance for repeated increases and decreases in the temperature. From the viewpoint of further improving the endurance for the repeated increases and decreases in the temperature, it is preferable that length L1 be at least 1.1 times greater than distance L2. In addition, when wiring member 30 is flexible, the stress is even less likely to be applied between wiring member 30 and each solar cell 20. As a consequence, it is possible to realize solar cell module 1 with further improved endurance for repeated increases and decreases in the temperature.
In particular, when the thermal expansion coefficient of sealing material 13 is greater than the thermal expansion coefficient of wiring member 30, it is preferable to satisfy L1>L2 since distance L2 between adjacent solar cells 29 becomes greater than an amount of thermal expansion of wiring member 30 as a consequence of thermal expansion of sealing material 13.
Curved portion 30a may be formed to project inward of solar cells 20. In this case, the thickness of solar cell string 10 can be kept small. Accordingly, it is possible to suppress a change in thickness of the solar cell module, which is sealed between first protection member 11 and second protection member 12 by using sealing material 13. Here, to project inward of solar cells 20 means to have a shape projecting in a direction from rear surfaces 20b toward light-receiving surfaces 20a of solar cells 20.
Modified examples of the embodiment are described below. In the following descriptions, the members having virtually the same functions as those in the first embodiment are designated by the same reference numerals and explanations thereof are omitted.
As illustrated in
As illustrated in
As illustrated in
The portion of wiring member 30 located between adjacent solar cells 20 may include both a curved portion and a bent portion.
Solar cell module 2 includes a plurality of solar cells 20, and therefore includes a plurality of wiring members 30 as well. Curved portions 30a1 and 30a2 and bent portions 30b of wiring members 30 to be provided to solar cell module 2 do not always have to be formed into the same shape. For example, solar cell module 2 may include a mixture of wiring members 30 illustrated in
Solar cell module 2 illustrated in
The invention includes other embodiments in addition to the above-described embodiments without departing from the spirit of the invention. The embodiments are to be considered in all respects as illustrative, and not restrictive. The scope of the invention is indicated by the appended claims rather than by the foregoing description. Hence, all configurations including the meaning and range within equivalent arrangements of the claims are intended to be embraced in the invention.
Number | Date | Country | Kind |
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2012-060316 | Mar 2012 | JP | national |
This application is a continuation application of International Application No. PCT/JP2013/056674, filed on Mar. 11, 2013, entitled “SOLAR CELL MODULE”, which claims priority based on Article 8 of Patent Cooperation Treaty from prior Japanese Patent Applications No. 2012-060316, filed on Mar. 16, 2012, the entire contents of which are incorporated herein by reference.
Number | Date | Country | |
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Parent | PCT/JP2013/056674 | Mar 2013 | US |
Child | 14484315 | US |