SOLAR PANEL MODULE
20170117843 ยท 2017-04-27
Assignee
Inventors
Cpc classification
F24S25/20
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Y02E10/50
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
Y02E10/47
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
International classification
Abstract
A reinforcing structure for solar panel module is provided. The solar panel module has multiple solar panels and a frame at a periphery region of the solar panel module surrounding the multiple solar panels. The reinforcing structure is disposed in a region incapable of generating power between two said solar panels.
Claims
1. A solar panel module, comprising: a reinforcing structure a plurality of solar panels; and a frame surrounding the plurality of solar panels, wherein the reinforcing structure is disposed in a region incapable of generating power between adjacent solar panels and is not in physical contact with the plurality of solar panels, wherein one end of the reinforcing structure is coupled to a clamping device.
2. The solar panel module according to claim 1, wherein the reinforcing structure is a cable.
3. The solar panel module according to claim 1, wherein there is a gap between the reinforcing structure and the plurality of solar panels.
4. The solar panel module according to claim 3, wherein the reinforcing structure is an elongated structure having a length, when sun light illuminates from a direction perpendicular to the length toward the solar panels and forms an angle of 30 degrees with respect to the solar panels, a shadow of the reinforcing structure does not overlap with the solar panels.
5. The solar panel module according to claim 1, wherein further comprising: an elongated supporting structure.
6. The solar panel module according to claim 5, wherein the elongated support structure is a retractable supporting rod.
7. The solar panel module according to claim 6, wherein two opposite ends of the retractable supporting rod are against two opposite sides of the frame.
8. The solar panel module according to claim 7, further comprising: a cushion pad, disposed between the retractable supporting rod and the frame.
9. The solar panel module according to claim 6, wherein the two opposite ends of the retractable supporting rod penetrate the frame and are exposed from the frame.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION OF THE INVENTION
[0018] The following descriptions illustrate preferred embodiments of the present invention in detail. All the components, sub-portions, structures, materials and arrangements therein can be arbitrarily combined in any sequence despite their belonging to different embodiments and having different sequence originally. All these combinations are falling into the scope of the present invention.
[0019] There are a lot of embodiments and figures within this application. To avoid confusions, similar components are designated by the same or similar numbers. To simplify figures, repetitive components are only marked once.
[0020] Now refer to
[0021] The plurality of non-flexible solar panels 100 and 100 have rectangular shapes and each of them has a short side along x-direction and a long side along y-direction. The cover panel 130 and the back sheet 140 also have rectangular shapes and each of them has a short side along y-direction and a long side along x-direction. The size of the back sheet 140 is slightly larger than the size of the cover panel 130. The plurality of non-flexible solar panels 100 and 100 are disposed in juxtaposed relation along the long sides of the cover panel 130 and the back sheet 140 and between the cover panel 130 and the back sheet 140. One or more encapsulants (now shown) are disposed between the plurality of non-flexible solar panels 100 and 100 and the cover panel 130 and between the plurality of non-flexible solar panels 100 and 100 and the back sheet 140 to couple them together. Each non-flexible solar panel 100 should keep an appropriate distance d (shortest distance between two solar panels) from adjacent non-flexible solar panel 100. The distance d in
[0022] Each non-flexible solar panel 100 (100) comprises a stacked structure having from bottom to top a back glass (not shown) and a photoreactive device layer (not shown). The photoreactive device layer comprises from bottom to top a patterned lower electrode layer, a patterned photoelectric conversion layer, an optional patterned buffer layer and a transparent patterned upper electrode layer such as indium tin oxide (ITO) and/or zinc oxide (ZnO) layer. The patterned lower electrode layer and the transparent patterned upper electrode layer are configured to conduct electrical current generated by the photoelectric conversion layer. The photoelectric conversion layer is configured to receive light penetrating the transparent patterned upper electrode layer and the optional patterned buffer layer and convert the light into electricity. The photoelectric conversion layer may be formed from a semiconductor material composed of copper (Cu), indium (In), gallium (Ga) and selenium (Se). Alternatively, the photoelectric conversion layer may be formed from a semiconductor compound material comprising Ib group element such as copper (Cu) or silver (Ag), IIIb group element such as aluminum (Al), gallium (Ga) or indium (In) and VIb group element such as sulfur (S), selenium (Se) or tellurium (Te). The optional patterned buffer layer is configured to protect the photoelectric conversion layer during patterning of the photoelectric conversion layer and facilitate current conducting. The non-flexible solar panels 100 and 100 are the same in view of their structures and their difference lies on their orientations. Therefore, this application only describes the non-flexible solar panel 100 in detail and the details of the non-flexible solar panel 100 are omitted.
[0023] Each non-flexible solar panel 100 (100) further comprises a front side positive ribbon 121b (121b) and a front side negative ribbon 111a (111a) at two long sides opposite to each other of the front surface of the solar panel 100 (100), a backside positive ribbon 122b (122b) as a part of the front side positive ribbon 121b (121b) folded back to the back surface of the non-flexible solar panel 100 (100) and a backside negative ribbon 112a (112a) as a part of the front side negative ribbon 111a (111a) folded back to the back surface of the non-flexible solar panel 100 (100). In most of the figures of the present invention, the backside positive ribbon 122b (122b) and the backside negative ribbon 112a (112a) are shown by dashed lines to be different from the front side positive ribbon 121b (121b) and the front side negative ribbon 111a (111a) shown by solid lines. The front side positive ribbon 121b (121b) and the front side negative ribbon 111a (111a) are used as a positive electrode and a negative electrode of the non-flexible solar panel respectively. The back sheet 140 has a plurality of openings (not shown) and each solar panel 100 (100) corresponds to at least one opening in a central region (or other region) of said each solar panel 100 (100). The backside positive ribbon 122b (122b) and the backside negative ribbon 112a (112a) of each solar panel 100 (100) extend through an encapsulant (if exist, not shown) and at least one of plurality of openings (not shown) and electrically connect outward (to other solar panels and to a connection box). The ribbons for example can be made from copper foil, copper ribbon, foils of other metals or alloy or ribbons of other metals or alloys. Each non-flexible solar panel 100 (100) comprises at least one solar unit cell or comprises many solar unit cells electrically connected in serial. It is noted that the ribbons can be electrically connected in serial or parallel and can be electrically connected to a connection box, but these connecting relations are not shown in the figures of the present application.
[0024] As shown in
[0025] According to the first embodiment of the present invention, front-side reinforcing structures 300 are disposed along y-direction in regions incapable of generating power (representing by distance d) between adjacent non-flexible solar panels 100 and 100 in the solar panel module 1000. In this embodiment, as shown in
[0026] In order to increase the ability of the solar panel module 1000 to withstand strong wind and to prevent the solar panel module 1000 from excessively distorting and separating with the frame 160, a backside elongated supporting structure 500 may be disposed along a direction not parallel to the reinforcing structure 300 (300*) especially a direction perpendicular to the reinforcing structure 300 (300*) such as x-direction on the back side of the solar panel module 1000 as shown in
[0027] Now refer to
[0028] Now refer to
[0029] The front-side reinforcing structure 300 (300/300) of the present invention are disposed in a region incapable of generating power between two adjacent solar panels. In order not to interfere with the solar panels, the location, shape and size of the reinforcing structure 300 (300/300) are so chosen that when sun light illuminates from a direction perpendicular to the length of the reinforcing structure 300 (300/300) (such as from +x-direction or from x-direction) toward the solar panels 100 and 100 and forms an angle of 30 degree or even 15 degree with respect to the solar panels 100 and 100, a shadow of the reinforcing structure 300 (300/300) does not overlap with the solar panels 100 and 100. The reinforcing structures and supporting structures of the prevent invention can be applied to other types of solar modules with regions incapable of generating power especially solar modules of big size to prevent solar modules from distorting and separating from their frames due to strong wind pressure or snow accumulation. In a case where the supporting structure is disposed along a direction parallel to the reinforcing structure, their disposing locations may align or misalign. According to the reinforcing effect/supporting effect provided, the gap between two adjacent supporting structures may be the same as or different from the gap between two adjacent reinforcing structures.
[0030] While the invention has been described in terms of what is presently considered to be the most practical and preferred embodiments, it is to be understood that the invention needs not be limited to the disclosed embodiment. On the contrary, it is intended to cover various modifications and similar arrangements included within the spirit and scope of the appended claims which are to be accorded with the broadest interpretation so as to encompass all such modifications and similar structures.