The present invention relates to three-dimensional solar arrays of photovoltaic modules.
Photovoltaic modules are commonly mounted in two-dimensional planar arrays in contiguous side-by-side relationship. This so-called “panel clustering” hinders cooling of individual photovoltaic modules in the array and increases the wind pressure on their supports. The lack of effective cooling reduces the power output of individual photovoltaic modules and hence the total power output of the array, while the higher wind pressure necessitates heavier structural supports to mount and use photovoltaic modules outdoors.
What is needed is a solution which addresses the above difficulties.
According to the present invention, there is provided an assembly for retaining a plurality of photovoltaic modules in a three-dimensional array, the assembly including a plurality of overlapping vertically spaced grid layers each defining a plurality of horizontally spaced positions, wherein the photovoltaic modules are arranged and retained in the positions of successive grid layers in substantially non-overlapping vertical relationship so that none of the photovoltaic modules in any grid layer substantially vertically occludes any other of the photovoltaic modules in any other grid layer.
The photovoltaic modules can respectively include one or more photovoltaic cells surrounded by a peripheral frame, wherein the photovoltaic modules are arranged and retained in the positions of successive grid layers so that the peripheral frames of the photovoltaic modules at least partially vertically overlap one another, but the photovoltaic cells of any of the photovoltaic modules remain substantially vertically unoccluded by any other of the photovoltaic modules.
Successive grid layers can be interconnected by vertical and inclined web members.
The grid layers can be selectively formed from wire mesh, horizontal chord members, criss-crossed cables, and combinations thereof.
The assembly can be a multilayer space grid structure, for example, a double- or triple-layer space grid structure.
The assembly can further include corner brackets to interlock adjacent corners of the photovoltaic modules to one another, and to adjacent corners of the positions of the grid layers.
The corner brackets can respectively include opposite facing corner clamps that are connectable to one another by fasteners so as to clamp around adjacent corners of both the photovoltaic modules and the positions of the grid layers.
The positions of the grid layers and the photovoltaic modules can have a complementary plan shape selected from square, rectangular, triangular, hexagonal, and other two-dimensional geometric shapes whose repetition will fill two-dimensional space densely.
The assembly can further include a two-axis mount to allow the assembly to rotate about polar and horizontal axes so that the photovoltaic modules in successive grid layers can directionally track the sun.
The present invention further provides a method for retaining a plurality of photovoltaic modules in a three-dimensional array, the method including the steps of providing a plurality of overlapping vertically spaced grid layers each defining a plurality of horizontally spaced positions, and arranging and retaining the photovoltaic modules in the positions of successive grid layers in substantially non-overlapping vertical relationship so that none of the photovoltaic modules in any grid layer substantially vertically occludes any other of the photovoltaic modules in any other grid layer.
The present invention also provides a three-dimensional array of photovoltaic modules including the above assembly, or formed using the above method.
The invention will be further described by way of example only with reference to the accompanying drawings, in which:
The upper and lower grid layers 14, 16 are interconnected by vertical and inclined web members 18, 20. The upper and lower grid layers 14, 16 are formed, for example, from interconnected horizontal chord members 22. Other equivalent arrangements may also be used to form the grid layers, for example, wire mesh, criss-crossed cables, etc. Together, the interconnected vertical and inclined web members 18, 20 and the horizontal chord members 22 form a rigid double-layer space grid structure (or space frame). Other equivalent rigid space grid structures (or space frames) may also be used, for example, three- or four-layer space grid structures, etc.
Referring to
The photovoltaic modules 12 of the upper and lower grid layers 14, 16 are electrically connected, for example in series, to provide the three-dimensional solar array with a cumulative power output. The positions of the upper and lower grid layers 14, 16 and the photovoltaic modules 12 have, for example, a complementary square plan shape. Other complementary plan shapes may also be used, for example, rectangular, triangular, hexagonal, and other two-dimensional geometric shapes whose repetition will fill two-dimensional space densely.
The photovoltaic modules 12 are arranged and retained in the positions of the upper and lower grid layers 14, 16 in substantially non-overlapping vertical relationship so that none of the photovoltaic modules 12 in the upper grid layer 14 substantially vertically occludes any other of the photovoltaic modules 12 in the lower grid layer 16. In use, this compact arrangement allows all of the photovoltaic modules 12 in the three-dimensional array of the assembly 10 to remain exposed to receive solar radiation, and hence optimises collection of solar radiation in a space-efficient manner. In addition, both the vertical and horizontal spacing between the photovoltaic modules 12 in the assembly 10 promotes cooling of individual photovoltaic modules 12, and thereby promotes optimal power generation by the three-dimensional solar array. Further, the separation of photovoltaic modules 12 in and between grid layers 14, 16 allows for the passage of wind to reduce wind loading on the assembly 10.
The dashed lines in
Referring to
a) to (c) illustrate an embodiment of an assembly 10 in which photovoltaic modules 12 with a triangular plan shape are arranged and retained in positions of upper and lower grid layers 14, 16 (represented by alternate cross-hatching) with a hexagonal plan shape (note that the structural elements of the assembly 10 have been omitted for clarity). The peripheral frames 38 of the photovoltaic modules 12 of the upper and lower grid layers at least partially vertically overlap one another, but the photovoltaic cells 32 on the upper active faces 11 of the photovoltaic modules 12 in the lower layer remain substantially vertically unoccluded by the photovoltaic cells 32 of the photovoltaic modules 12 in the upper layer. In use, this compact arrangement allows the upper active faces 11 of all of the photovoltaic modules 12 in three-dimensional solar array to remain exposed to receive solar radiation. In addition, both the vertical and horizontal spacing between the photovoltaic modules 12 in the assembly 10 promotes cooling of individual photovoltaic modules 12, and thereby promotes optimal power generation by the three-dimensional solar array.
The embodiments have been described by way of example only and modifications are possible within the scope of the claims which follow.
Number | Date | Country | Kind |
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2008902716 | May 2008 | AU | national |
Filing Document | Filing Date | Country | Kind | 371c Date |
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PCT/AU2009/000670 | 5/28/2009 | WO | 00 | 11/7/2010 |
Publishing Document | Publishing Date | Country | Kind |
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WO2009/143577 | 12/3/2009 | WO | A |
Number | Name | Date | Kind |
---|---|---|---|
5221363 | Gillard | Jun 1993 | A |
6201181 | Azzam et al. | Mar 2001 | B1 |
6384314 | Lund-Hansen | May 2002 | B1 |
6515217 | Aylaian | Feb 2003 | B1 |
7208674 | Aylaian | Apr 2007 | B2 |
7554030 | Shingleton | Jun 2009 | B2 |
7730676 | Hon | Jun 2010 | B2 |
7847183 | Dame | Dec 2010 | B2 |
20030047207 | Aylaian | Mar 2003 | A1 |
20040084077 | Aylaian | May 2004 | A1 |
20090101193 | Hsiao | Apr 2009 | A1 |
20090120486 | Buller | May 2009 | A1 |
20100065108 | West et al. | Mar 2010 | A1 |
20100243021 | Lee et al. | Sep 2010 | A1 |
20110067748 | Pfeiffer | Mar 2011 | A1 |
20110303215 | Chuang | Dec 2011 | A1 |
Number | Date | Country |
---|---|---|
2000213255 | Aug 2000 | JP |
2001082058 | Mar 2001 | JP |
2005252163 | Sep 2005 | JP |
Number | Date | Country | |
---|---|---|---|
20110056540 A1 | Mar 2011 | US |