SEALING ASSEMBLY AND ARRAY OF PHOTOVOLTAIC PANELS INCORPORATING SEALING ASSEMBLY
20220239250 · 2022-07-28
Inventors
Cpc classification
E04D1/36
FIXED CONSTRUCTIONS
Y02B10/20
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
E04D3/38
FIXED CONSTRUCTIONS
E04D3/365
FIXED CONSTRUCTIONS
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
F24S25/67
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Y02B10/10
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 seal assembly for arrangement between a first and a second photovoltaic panel is disclosed. The first and the second photovoltaic panel each includes an upper layer and a lower layer, wherein the upper layer is offset with respect to the lower layer at first and second side edges, such that the upper layer of the first photovoltaic panel at its second side edge partially overlaps the lower layer of the second photovoltaic panel at its first side edge. The seal assembly include an upper abutment part, a lower abutment part, and an intermediate part connecting the upper abutment part with the lower abutment part and configured for being arranged between the upper layer of the first photovoltaic panel and the lower layer of the second photovoltaic panel. Also, arrays of solar panels and roof structures including such seal assemblies are disclosed.
Claims
1. A seal assembly for arrangement between a first photovoltaic panel and a second photovoltaic panel, each of the first and second photovoltaic panels including an upper layer and a lower layer with each of the upper and lower layers having a first side edge and a second side edge opposite the first side edge, the seal assembly comprising: an upper abutment part having a first side for abutting the second side edge of the upper layer of the first photovoltaic panel and a second side for abutting the first side edge of the upper layer of the second photovoltaic panel; a lower abutment part spaced apart from the upper abutment part, the lower abutment part having a first side for abutting the second side edge of the lower layer of the first photovoltaic panel and a second side for abutting the first side edge of the lower layer of the second photovoltaic panel; and an intermediate part connecting the upper abutment part with the lower abutment part and configured for being arranged between the upper layer of the second photovoltaic panel and the lower layer of the first photovoltaic panel.
2. The seal assembly according to claim 1, wherein a top edge of the upper abutment part is configured to be level with a top surface of the first photovoltaic panel and a top surface of the second photovoltaic panel.
3. The seal assembly according to claim 1, wherein the upper abutment part has a first thickness and the lower abutment part has a second thickness less than the first thickness.
4. The seal assembly according to claim 1, wherein a bottom surface of the intermediate part comprises a plurality of protrusions configured to form a labyrinth seal.
5. The seal assembly according to claim 1, wherein one or both of the upper and lower abutment parts includes a stiffening element encapsulated therein.
6. The seal assembly according to claim 1, wherein the upper abutment part, the lower abutment part and the intermediate part comprise a monolithic structure made of an elastomer.
7. An arrangement of photovoltaic panels comprising: a first photovoltaic panel having an upper layer and a lower layer, each of the upper and lower layers of the first photovoltaic panel having a first side edge and a second side edge opposite to the first side edge: a second photovoltaic panel having an upper layer and a lower layer, each of the upper and lower layers of the second photovoltaic panel having a first side edge and a second side edge opposite to the first side edge; the first side edge of the upper layer of the second photovoltaic panel is offset with respect to the second side edge of the lower layer of the first photovoltaic panel such that the upper layer of the second photovoltaic panel partially overlaps the lower layer of the first photovoltaic panel; and a seal assembly arranged between the first and second photovoltaic panels, the seal assembly comprising: an upper abutment part having a first side for abutting the second side edge of the upper layer of the first photovoltaic panel and a second side for abutting the first side edge of the upper layer of the second photovoltaic panel; a lower abutment part spaced apart from the upper abutment part, the lower abutment part having a first side for abutting the second side edge of the lower layer of the first photovoltaic panel and a second side for abutting the first side edge of the lower layer of the second photovoltaic panel; and an intermediate part connecting the upper abutment part with the lower abutment part and configured for being arranged between the upper layer of the second photovoltaic panel and the lower layer of the first photovoltaic panel.
8. The arrangement of photovoltaic panels according to claim 7, wherein the upper abutment part has a top edge that is level with a top surface of each of the first and second photovoltaic panels.
9. The arrangement of photovoltaic panels according to claim 7, wherein a length of the seal assembly is larger than a length of the first side edge of the first and second photovoltaic panels.
10. The arrangement of photovoltaic panels according to claim 7, wherein each of the first and second photovoltaic panels further comprises a third side edge and a fourth side edge opposite to the third side edge, wherein the upper layer and the lower layer of the first photovoltaic panel at the third and fourth side edges are not offset, and wherein the upper layer and the lower layer of the second photovoltaic panel at the third and fourth side edges are not offset.
11. The arrangement of photovoltaic panels according to claim 7, wherein the upper layer of each of the first and second photovoltaic panels comprises a glass plate.
12. The arrangement of photovoltaic panels according to claim 7, wherein the lower layer of each of the first and second photovoltaic panels comprises a solar back sheet.
13. The arrangement of photovoltaic panels according to claim 7, wherein each of the first and the second photovoltaic panels comprises a plurality of photovoltaic cells encapsulated in a polymer matrix.
14. The arrangement of photovoltaic panels according to claim 13, wherein the photovoltaic cells are crystalline cells.
15. The arrangement of photovoltaic panels according to claim 13, wherein the polymer matrix comprises Ethylene-vinyl acetate (EVA).
16. The arrangement of photovoltaic panels according to claim 13, wherein the encapsulated photovoltaic cells are arranged between the upper and the lower layers of the respective first and second photovoltaic panels.
17. The arrangement of photovoltaic cells according to claim 7, wherein the assembled first photovoltaic panel, second photovoltaic panel and seal assembly comprise a roof structure for a building.
18. The arrangement of photovoltaic panels according to claim 17, further comprising a supporting framework that includes a top beam, a bottom beam, a plurality of vertical beams extending between the top beam and the bottom beam, and a plurality of lateral beams which are arranged in parallel with the top beam and the bottom beam, the first and second photovoltaic panels being attached to one or more of the top beam, lower beam, plurality of vertical beams and plurality of lateral beams.
19. The arrangement of photovoltaic panels according to claim 18, wherein each of the first and second photovoltaic panels is attached to at least one of the plurality of lateral beams.
20. The arrangement of photovoltaic panels according to claim 18, wherein the first and second photovoltaic panels are attached to the supporting framework with one or more metal brackets.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0015] Particular implementations will be described in the following by way of non-limiting examples, with reference to the appended drawings, in which:
[0016]
[0017]
[0018]
DETAILED DESCRIPTION
[0019]
[0020] The roof structure according to this example includes a framework supporting photovoltaic panels. The photovoltaic panels of this example function as solar roof tiles. The photovoltaic panels 10, 20 comprise photovoltaic cells. These cells can be irradiated by the sun during the day and the cells are configured to convert solar energy into electricity. Electrical power generated by the photovoltaic panels may be used for electrical consumption in a household living under the roof structure. Additionally, or alternatively, the electrical power may be directed towards an energy storage such as a battery for later consumption. Additionally, or alternatively, the electrical power may be provided to the electrical grid.
[0021] At the same, the photovoltaic panels may function as roof tiles, i.e. they protect the inside of a building under the roof structure from the weather, particularly rain. Appropriate sealing between the photovoltaic panels is therefore important.
[0022] In the example of
[0023] A first photovoltaic panel 10 is shown to be arranged next to a second photovoltaic panel 20. The photovoltaic panels 10, 20 may be attached to the horizontal beams 34 using a mounting bracket, or ankle plate 60. The mounting bracket may be bolted to beams 34 and attached to a photovoltaic panel using e.g. an adhesive. In other examples, different attachment systems may be used involving e.g. clamps for clamping the photovoltaic panels.
[0024] Each of the photovoltaic panels 10, 20 comprises an upper layer 11, and a lower layer 13. In between the upper layer 11 and lower layer 13, one or more PV cells 17 may be arranged. Each panel may comprise a plurality of interconnected PV cells.
[0025] It may be seen that the upper layers of the PV panels are offset with respect to the lower layers. The upper layer 11, 21 is offset with respect to the lower layer 13, 23 at the first and second side edges, such that the upper layer 21 of the second photovoltaic panel 20 at its first side edge partially overlaps the lower layer 13 of the first photovoltaic panel 10 at its second side edge.
[0026] This will be illustrated in more detail in subsequent figures. The offset between the upper layers and lower layers means that at a first edge 20B of the photovoltaic panel 20, the upper layer of photovoltaic panel 20 overlaps the lower layer of adjacent photovoltaic panel 10. At the opposite edge (not shown) of photovoltaic panel 20, its bottom layer may be arranged underneath an upper layer of a further adjacent photovoltaic panel.
[0027] In
[0028] More particularly, in this example, the upper abutment part 16 is arranged between first side edge 21B of upper layer 21 of panel 20, and second side edge 11A of the upper layer 11 of solar panel 10. And lower abutment part 18 is arranged between second side edge 13A of lower layer 13 of solar panel 10 and first side edge 23B of lower layer 23 of solar panel 20.
[0029] More details will be illustrated with reference to
[0030]
[0031]
[0032] Similarly, the lower abutment part may comprise a first surface 18A for contacting a first side edge 23B of the lower layer 23 of photovoltaic panel 20, and a second side surface 18B for contacting a second side edge 13A of the lower layer 13 of photovoltaic panel 10.
[0033] Intermediate part 14 connects the abutment portion 16 with abutment portion 18. The intermediate part may have a top surface 14A arranged to enter into contact with upper layer 21 of photovoltaic panel 20 and a bottom surface 14B configured to enter into contact with lower layer 13 of photovoltaic panel 10.
[0034] Even though these explanations are only given for one side edge, where upper layer 23 of photovoltaic panel 20 overlaps with lower layer 11 of photovoltaic panel 10, it should be clear that a similar seal assembly 15 may be arranged at the opposite edge of photovoltaic panel 20, and also at the opposite side edge of photovoltaic panel 10, and at side edges of subsequent photovoltaic panels in a row.
[0035] As shown, a top edge 16D of the upper abutment part is substantially level with a top surface of the first photovoltaic panel 10 and a top surface of the second photovoltaic panel 20. By arranging the upper abutment part 16 flush with the photovoltaic panels, accumulation of dirt, moist, dust, leaves and other against the sealing assembly 15 or in between panels 10, 20 may be avoided. Growth of moss can be avoided in this manner. This can reduce the need for cleaning and maintenance and can even lead to an increase in electrical power generation and/or an increase in the life expectancy of the photovoltaic panels.
[0036] The height of the upper abutment part may substantially correspond to the thickness of the upper layer 11, 21 of the photovoltaic panels. A thickness of the intermediate part 14 may generally correspond to the thickness or gap between the upper and lower layers of the solar panels. A height of the lower abutment part 18 may be shorter than the thickness of the lower layers 13, 23 of the photovoltaic panels. The material usage may be reduced by making these lower abutment parts slightly shorter, and to perform their function and avoid damage between panels it is not necessary to extend to the lower edge of the panels.
[0037] As may be seen in
[0038] It may also be seen that the upper abutment part 16 and/or the lower abutment part 18 may comprise a structural member 16C, 18C. The main body of the sealing assembly 15 including upper abutment part, intermediate part and lower abutment part may be made e.g. from an elastomer, rubber or silicone material. Such materials may also include elements to increase strength and/or stiffness like glass fibers or carbon fibers. In an example, to increase strength and stiffness, the structural members 16C and 18C of the respective upper abutment part and lower abutment part may comprise e.g. a rod or bar of a stiff polymer or metal. Providing relatively stiff upper and lower abutment parts may increase ease of handle for operators that have to lay the seal.
[0039] In some examples, the sealing assembly may be provided on a roll and suitable lengths may be cut off as needed for a specific array of panels. In other examples, the sealing assembly is provided and delivered of a specific length corresponding to the width of the panels for which it is to be used.
[0040] In some examples, the upper layer 11, 21 of the first and second photovoltaic panels 10, 20 may comprise a glass plate. Such a glass plate serves to provide structural strength and rigidity to the panels. The glass plate further protects the PV cells from hail or impact of objects. In some non-illustrated examples, the photovoltaic panels may comprise a frame, such as an aluminum frame.
[0041] In some examples, the lower layer 13, 23 of the first and second photovoltaic panels may comprise a solar back sheet.
[0042] In some examples, the first and the second photovoltaic panels may comprise a plurality of photovoltaic cells 17, 27 encapsulated in a polymer matrix. The photovoltaic cells may be crystalline cells, but other types of cells could be used. The polymer matrix may be formed by or may comprise Ethylene-vinyl acetate (EVA).
[0043] In some examples, the active layer (i.e. in this example the encapsulated photovoltaic cells) may be arranged between the upper and the lower layer. The separation of layers as illustrated herein may facilitate manufacture of the panels.
[0044] In some examples, a length of the seal assembly may be larger than a length of the first side edge of the first and second photovoltaic panels. Depending on the structure, a plurality of panels may be laid side by side, then a sealing assembly may be placed extending along the first side edge of the plurality of panels. Then subsequent panels may be placed against the sealing assembly.
[0045] In some examples, the first and second photovoltaic panels may further comprise a third side edge and a fourth side edge opposite to the third side edge, wherein the upper layer and the lower layer of the first photovoltaic panel and second photovoltaic panel at the third and fourth side edges are not offset. In roof structures, a lower edge (e.g. third edge) of photovoltaic panels of a higher row may overlap an upper portion (at the fourth edge) of the lower row of panels. This may be seen e.g. in
[0046] In other examples, the photovoltaic panels may also have an offset at the third and fourth side edges. In such cases, similar seal assemblies may be arranged between photovoltaic panels at the third and fourth side edges.
[0047]
[0048] The supporting framework in this example comprises a top beam 36, a bottom beam 38, a plurality of vertical beams 32A, 32B, etc. extending between the top beam 36 and the bottom beam 38, and a plurality of horizontal beams 34A, 34B, 34C etc. which are arranged substantially in parallel with the top beam and the bottom beam.
[0049] The first and second photovoltaic panels 10, 20 may be attached to one or more of the beams of the supporting framework, specifically the first and second photovoltaic panels 10, 20 may be attached to one of the horizontal beams 34A, 34B etc. More specifically, the photovoltaic panels may substantially span the distance between neighboring horizontal beams 34. In some examples, the photovoltaic panels may be secured to two horizontal beams.
[0050] One method of securing the photovoltaic panels to the beams was illustrated in
[0051] It may be seen in
[0052] With the techniques and arrangements disclosed herein, entire roofs or parts of roofs may be covered with solar roof tiles in an efficient, aesthetically pleasing and cost-effective manner.
[0053] Although only a number of particular embodiments and examples of the invention have been disclosed herein, it will be understood by those skilled in the art that other alternative embodiments and/or uses of the invention and obvious modifications and equivalents thereof are possible. Furthermore, the present invention covers all possible combinations of the particular embodiments described. Thus, the scope of the present invention should not be limited by particular embodiments, but should be determined only by a fair reading of the claims that follow.