ROOF TILES AND RELATED SYSTEMS
Roof tile systems for structures are provided. A representative system including solar panel tile having a top side for facing away from a structure, a bottom side for facing the structure, a left side, a right side, an upper side for facing the upslope direction and lower side for facing the downslope direction, the solar panel tile defining a cavity sized and shaped for mounting therein a solar panel, the solar panel tile having a first rib extending across the cavity; and a solar panel mounted within the cavity and supported by the first rib such that the solar panel is flush mounted with respect to the top side of the solar panel tile; the solar panel tile being a first of multiple solar panel tiles, with the multiple tiles being operative to engage in a side-by-side arrangement to form at least a partial course of tiles of the system.
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This application is a continuation of U.S. patent application Ser. No. 13/992,829, filed on 2013 Jul. 15, now issued as U.S. Pat. No. 8,713,861 on 2014 May 6, which is a 371 National Phase Application of PCT/US11/63244, filed on 2011 Dec. 5, which claims the benefit of U.S. Provisional Application No. 61/421,862, filed on 2010 Dec. 10. All of these applications are incorporated herein by reference in their entireties as if expressly set forth herein.
BACKGROUND1. Technical Field
This disclosure relates to tiled roofing systems.
2. Description of the Related Art
Conventional tiled roofing systems are known that have met with varying degrees of success. However, these systems do little to address many modern needs associated with responsible energy usage and acquisition.
SUMMARYRoof tiles and related systems are provided. In this regard, an exemplary embodiment of a roof tile system comprises: a solar panel tile having a top side for facing away from a structure, a bottom side for facing the structure, a left side, a right side, an upper side for facing the upslope direction and a lower side for facing the downslope direction, the solar panel tile defining a cavity sized and shaped for mounting therein a solar panel, the solar panel tile having a first rib extending across the cavity; and a solar panel mounted within the cavity and supported by the first rib such that the solar panel is flush mounted with respect to the top side of the solar panel tile; the solar panel tile being a first of multiple solar panel tiles, with the multiple tiles being operative to engage in a side-by-side arrangement to form at least a partial course of tiles of the system.
Another exemplary embodiment of a roof tile system comprises: a left edge tile having a top side for facing away from a structure, a bottom side for facing the structure, a left side, a right side, an upper side for facing an upslope direction and a lower side for facing a downslope direction, the left edge tile further having a left side extended portion spanning along a length of the left side of the left edge tile and extending from the top side, passed the bottom side and to a distance beyond the bottom side of the left edge tile; a field tile having a top side for facing away from a structure, a bottom side for facing the structure, a left side, a right side, an upper side for facing the upslope direction and a lower side for facing the downslope direction; a solar panel tile having a top side for facing away from a structure, a bottom side for facing the structure, a left side, a right side, an upper side for facing the upslope direction and a lower side for facing the downslope direction, the solar panel tile defining a cavity sized and shaped for mounting therein a solar panel; and a right edge tile having a top side for facing away from a structure, a bottom side for facing the structure, a left side, a right side, an upper side for facing the upslope direction and a lower side for facing the downslope direction, the right edge tile further having a right side extended portion spanning along a length of the right side of the right edge tile and extending from the top side, passed the bottom side and to a distance beyond the bottom side of the right edge tile; the left edge tile, the field tile, the solar panel tile and the right edge tile being operative to engage in a side-by-side arrangement to form at least a partial course of tiles of the system in which at least one of the tiles at least partially overlaps an adjacent one of the tiles.
Other systems, methods, features and/or advantages of this disclosure will be or may become apparent to one with skill in the art upon examination of the following drawings and detailed description. It is intended that all such additional systems, methods, features and/or advantages be included within this description and be within the scope of the present disclosure.
Many aspects of the disclosure can be better understood with reference to the following drawings. The components in the drawings are not necessarily to scale. Moreover, in the drawings, like reference numerals designate corresponding parts throughout the several views.
Roof tiles and related systems are provided, several exemplary embodiments of which will be described in detail. In some embodiments, a roof tile system incorporates several different tile configurations that can be combined in various arrangements. Such tile configurations can include field tiles and solar panel tiles (which, as the name implies, mount solar panels). Additionally, right edge tiles and left edge tiles that are designed for trimming out the right and left sides, respectively, of an assembly of tiles can be provided. Notably, in some embodiments, the tiles are formed of durable weather-resistant materials and can be colored and/or textured to reduce surface temperature, which can have a detrimental effect on solar panels.
Referring in more detail to the drawings,
An exemplary embodiment of a solar panel tile is shown in
Screw holes (137, 138) are provided to facilitate mounting of the tiles to a batten structure. In some embodiments, one or more of the screw holes can be configured an elongated slot to facilitate tile expansion and contraction.
Also shown in
Additionally, the solar panel tile includes a pair of locking pins (144, 145) that protrude outwardly from the upper side of the tile. The locking pins are sized and shaped to mate with corresponding locking members positioned on the bottom side of tile of an overlying course of tiles. Notably, the tile 102 carries the locking members (146, 147) for engaging the corresponding locking pins of an adjacent tile. Each of the locking members has an aperture (e.g., aperture 148) formed therein for receiving a corresponding locking pin. In some embodiments, the aperture is configured as a laterally-oriented, elongated slot. In such an embodiment, the locking pin can exhibit lateral play within the slot which accommodates lateral movement of the associated tile.
Notably, on a side of the tile (e.g., on the right side) is a curved element 149 that is configured to cover an edge of an adjacent roof tile. As such, in an assembled configuration, adjacent tiles overlap each other in the sideways direction. This overlap protects the underlying roof structure from the natural elements such as rain, wind and sun.
As shown in
In some embodiments, the width and length of a representative tile is determined by the size of a broken up solar cell. Broken up cells are high performing cells that produce more electric power than full cells.
An exemplary method for securing a solar panel to a tile involves using bonding material (e.g., polymer or silicone bonding glue). For instance, before placing bonding material, a plasma treatment is applied to the cavity and bonding surfaces to activate the molecules. This process allows the molecules to react better with the bonding material.
In one such process, within 2 minutes after applying plasma, a bonding paste of approximately 150 grams per solar roof tile is injected on the bonding surfaces of the opening to hold the solar panel. The bonding material is 2 components and is water resistant and also resists extreme temperatures of −40 Celsius (−38 Fahrenheit) freezing and heats up to +85 Celsius (+185 Fahrenheit) this according to German normalization for solar roof tiles. German normalization is the world standard for solar panels and solar roof tiles. In other embodiments, various other amounts and/or types of bonding material (e.g., a single component material) can be used.
Preferably, the bonding is able to expand and shrink under these extreme temperatures. The bonding also preferably resists dynamic concentrated pressures of hail and a human stepping on the solar roof tile and solar panel.
The solar panels are made to resist the natural elements and occasional pressures. The top layer of the solar panel is preferably made of laminated glass that allows light penetration in the best condition to produce electric power.
Additionally, tile 104 includes a pair of locking pins (234, 235) that protrude outwardly from the upper side of the tile. The locking pins are sized and shaped to mate with corresponding locking members positioned on the bottom side of tile of an overlying course of tiles. In some embodiments, the pins are T-shaped and long enough to allow vertical movement of the roof tiles. Thus, each roof tile can move up or down or top to bottom under limited measurements. This may be needed when calculating a roof to determine the number of roof tiles needed from top to bottom. By moving the roof tiles more outward or inward on the pins, cutting of roof tiles can be limited because the tiles are still secured to one another across a range of variable widths and lengths.
Notably, the tile 104 carries the locking members (236, 237) for engaging the corresponding locking pins of an adjacent tile. Each of the locking members has an aperture (e.g., aperture 238) formed therein for receiving a corresponding locking pin. In some embodiments, the aperture is configured as a laterally-oriented, elongated slot. In such an embodiment, the locking pin can exhibit lateral play within the slot which accommodates lateral movement of the associated tile.
In some embodiments, the characteristics of the pin are also to allow roof tiles to be placed under an angle of 5%. Practical example: the bottom 3 roof tiles are tilted up 5% on the end of a roof structure sometimes done on ranch homes. The T-shaped pin can be partially cut off on the bottom so the roof tiles can end up in an angle and still hold the roof resistant against the wind. It should be noted that the two types of roof tiles previously described, the solar panel tile and the field tile, can use the same technique of roof tile pins and apertures as locking systems.
As best shown in
Additionally, tile 106 includes a pair of locking pins (334, 335) that protrude outwardly from the upper side of the tile. The locking pins are sized and shaped to mate with corresponding locking members positioned on the bottom side of tile of an overlying course of tiles. In some embodiments, the pins are T-shaped and long enough to allow vertical movement of the roof tiles. Thus, each roof tile can move up or down or top to bottom under limited measurements. This may be needed when calculating a roof to determine the number of roof tiles needed from top to bottom. By moving the roof tiles more outward or inward on the pins, cutting of roof tiles can be limited because the tiles are still secured to one another across a range of variable widths and lengths.
Notably, the tile 106 carries the locking members (336, 337) for engaging the corresponding locking pins of an adjacent tile. Each of the locking members has an aperture (e.g., aperture 338) formed therein for receiving a corresponding locking pin. In some embodiments, the aperture is configured as a laterally-oriented, elongated slot. In such an embodiment, the locking pin can exhibit lateral play within the slot which accommodates lateral movement of the associated tile.
A left edge tile (e.g., tile 108) can be configured as a mirror image of tile 106 in some embodiments.
Additionally, tile 110 includes a pair of locking pins (434, 435) that protrude outwardly from the upper side of the tile and locking members (436, 437) for engaging the corresponding locking pins of an adjacent tile.
In some embodiments, the partial tile has a width that is half the width of a field tile. Notably, availability of partial tiles can reduce cut that need to be made onsite for assembling a roof tile system.
Roof tiles can be formed of various materials and by various techniques. In some embodiments, high pressured injection technologies with colored polypropylene mixed and strengthened with glass fibers are used. Additionally, the surface of a tile can be is flat with a microscopic structured surface. This can be configured to reduce sun reflection and prevent excessive surface temperatures. A UV resistant factor can also be included with or without a color master badge.
It should be emphasized that the above-described embodiments are merely possible examples of implementations set forth for a clear understanding of the principles of this disclosure. Many variations and modifications may be made to the above-described embodiments without departing substantially from the spirit and principles of the disclosure. All such modifications and variations are intended to be included herein within the scope of this disclosure and protected by the accompanying claims.
Claims
1. A tile, comprising:
- a top to face away from a structure;
- a bottom to face the structure;
- a side;
- an upper end to face an upslope direction;
- a lower end to face a downslope direction;
- a cavity located at a central portion of the top, the cavity to mount therein a solar panel;
- a rib spanning the cavity; and
- a vent opening for facilitating air flow to the solar panel.
2. The tile of claim 1, further comprising:
- a horizontal rib spanning a width of the cavity; and
- a vertical rib spanning a length of the cavity.
3. The tile of claim 2, further comprising a platform located at the intersection of the horizontal rib and the vertical rib.
4. The tile of claim 1, further comprising a screw hole to facilitate mounting of the tile.
5. The tile of claim 4, the screw hole being located near the upper end.
6. The tile of claim 1, the vent opening being positioned along the lower end.
7. The tile of claim 1, further comprising a locking pin protruding outwardly from the upper end.
8. The tile of claim 1, further comprising a locking member located on the bottom.
9. The tile of claim 8, the locking member comprising a laterally-oriented, elongated slot.
10. The tile of claim 1, further comprising a curved element located on the side.
11. The tile of claim 1, further comprising a drip barrier located on the top.
12. The tile of claim 1, further comprising a cooling channel formed below the solar panel when the solar panel is mounted in the cavity.
Type: Application
Filed: May 6, 2014
Publication Date: Aug 28, 2014
Applicant: Solus Engineering LLC. (Atlanta, GA)
Inventor: Paul DeSloover (Atlanta, GA)
Application Number: 14/270,595
International Classification: F24J 2/52 (20060101);