The present invention generally relates to a photovoltaic module. More particularly, this invention relates to a supporting and cooling structure of a photovoltaic module.
The increasing scarcity and the realization of the ecological and safety problems associated with non-renewable energy resources such as coal, petroleum and uranium, have made it essential that increased use be made of alternate non-depletable energy resources such as solar energy. Solar energy use has been limited in the past to special applications due in part to the high cost of manufacturing devices capable of producing significant amounts of photovoltaic energy. The improvement in manufacturing technology for fabricating the solar panel in mass production has greatly promoted the use of solar energy.
Significant environmental benefits are also realized from solar energy production, for example, reduction in air pollution from burning fossil fuels, reduction in water and land use from power generation plants, and reduction in the storage of waste byproducts. Solar energy produces no noise, and has few moving components. Because of their reliability, solar panels also reduce the cost of residential and commercial power to consumers.
There is a need to continuously improve the efficiency of the photovoltaic module. An effective way of improving efficiency of the photovoltaic module is by reducing the operating temperature of the photovoltaic module. Therefore, some of the conventional photovoltaic modules can achieve this target by cooling the photovoltaic module with a water cooling system or an external cooling module. However, the water cooling system or the external cooling module can make the photovoltaic module more complicated and the manufacturing cost thereof higher.
One objective of the present invention is to provide a supporting structure which is able to reduce the operating temperature of the photovoltaic module.
To achieve these and other advantages and in accordance with the objective of the present invention, as the embodiment broadly describes herein, the present invention provides a supporting and cooling structure for a photovoltaic module. The supporting and cooling structure includes a supporting frame for fixing a photovoltaic panel and a supporting and cooling member fixed on the supporting frame. The supporting and cooling member touches the photovoltaic panel to further support the photovoltaic panel and to transmit the heat from the photovoltaic panel to the supporting frame through the supporting and cooling member.
In one embodiment, the supporting frame is made of aluminum and the supporting and cooling member is integrated with the supporting frame.
In another embodiment, the supporting and cooling member is made of sheet metal.
In addition, the supporting and cooling member can touch the front glass substrate of the photovoltaic panel or touch the back sheet of the photovoltaic panel.
In another aspect of the present invention, the present invention provides a photovoltaic module. The photovoltaic module includes a supporting frame, a photovoltaic panel fixed on the supporting frame, and a supporting and cooling member fixed on the supporting frame. The supporting and cooling member touches the photovoltaic panel to further support the photovoltaic panel and to transmit a heat on the photovoltaic panel to the supporting frame through the supporting and cooling member.
In one embodiment, the supporting frame is made of aluminum and the supporting and cooling member is integrated with the supporting frame.
In another embodiment, the supporting and cooling member is made of sheet metal.
The photovoltaic panel includes a front substrate and a back sheet, and the supporting and cooling member can be in contact with the front substrate, e.g. a glass substrate, of the photovoltaic panel, or the back sheet of the photovoltaic panel.
The photovoltaic module can further include a cushion member disposed between the photovoltaic panel and the supporting frame to prevent the supporting frame from damaging the photovoltaic panel. The cushion member can be made of rubber or a polymer material. The heat conducting property of the supporting and cooling member is better than the heat conducting property of the cushion member.
Accordingly, the supporting and cooling structure according to the present invention can effectively reduce the operating temperature of the photovoltaic panel and improve the efficiency of the photovoltaic module. In addition, the supporting and cooling structure according to the present invention can not only effectively support the photovoltaic panel but also effectively dissipate the heat on the photovoltaic panel.
The foregoing aspects and many of the attendant advantages of this invention will be more readily appreciated as the same becomes better understood by reference to the following detailed description, when taken in conjunction with the accompanying drawings, wherein:
The following description is of the best presently contemplated mode of carrying out the present invention. This description is not to be taken in a limiting sense but is made merely for the purpose of describing the general principles of the invention. The scope of the invention should be determined by referencing the appended claims.
Refer to
Further refer to
The supporting and cooling member 240 can be made of a metal material, e.g. aluminum or a sheet metal, with a good heat conducting property better than that of the cushion member 230. The supporting and cooling member 240 is preferably a flexible member to contact with the back sheet 214 of the photovoltaic panel 110 and prevent from damage to the photovoltaic panel 110. The back sheet 214 can be a Tedlar® PVF film manufactured by Dupont, or a laminated film composite, TPT™, manufactured by Dupont.
Refer to
The supporting and cooling member 340 can be made of a metal material, e.g. aluminum or a sheet metal, with a good heat conducting property better than the cushion member 330. In addition, the connecting portion 344 is an arc, and the supporting arm 342 and the fixing arm 346 are respectively extended from the two ends of the connecting portion. Furthermore, the supporting and cooling member 340 is preferably a flexible member to contact with the back sheet 314 of the photovoltaic panel 110 and prevent from damage to the photovoltaic panel 110.
Refer to
Accordingly, the supporting and cooling structure according to the present invention can effectively reduce the operating temperature of the photovoltaic panel so as to improve the efficiency of the photovoltaic module. In one experiment, the operating temperature of the photovoltaic panel having the supporting and cooling structure according to the present invention can be reduced about 8 degrees centigrade so that the efficiency and the lifespan of the photovoltaic module are effectively improved.
As is understood by a person skilled in the art, the foregoing preferred embodiments of the present invention are illustrative of the present invention rather than limiting of the present invention. It is intended that various modifications and similar arrangements be included within the spirit and scope of the appended claims, the scope of which should be accorded the broadest interpretation so as to encompass all such modifications and similar structures.
This application claims priority to U.S. Provisional Application Ser. No. 61/286,357, filed Dec. 14, 2009, which is herein incorporated by reference.
Number | Date | Country | |
---|---|---|---|
61286357 | Dec 2009 | US |