The present invention claims priority under 35 U.S.C. 119(a-d) to CN201310119442.3, filed Apr. 8, 2013, and CN201320228684.1, filed Apr. 27, 2013.
1. Field of Invention
The present invention relates to a roof solar power system, and more particularly to an integrated roof solar power system.
2. Description of Related Arts
The photovoltaic system converts the solar energy into the electric energy with solar energy battery components and auxiliary equipments. The photovoltaic system has characteristics of high reliability, long service life, no environmental pollution. The photovoltaic system can generate electricity independently, and can also be connected to the grid. The photovoltaic system has a wide developing prospect. Combining the photovoltaic system with energy saving of buildings is an advanced technology and developing direction of energy saving and emission reduction of buildings, which is valued and popularized by various parties. However, because of various reasons, there are few successful cases that photovoltaic components are actually used as new roof constructing materials by being combined closely with building roofs. In most projects of integrated building photovoltaic system, which have already been implemented, the photovoltaic components are just put on roofs of different materials, instead of being combined with roofs, and the rainproof function and the waterproof function could not be realized. Especially, the service life of the color steel roofing is only 6˜7 years. The installed photovoltaic components should be removed at first, if the color plates are required to be replaced. Thus, the construction is complicated, and the cost is high. The maintaining becomes more inconvenient in a case of leakage of rain. In another hand, the weight of the photovoltaic components and the installing fittings propose a requirement to the weight capacity of roof. In order to increase the weight capacity of roof, the cost and the difficulty of construction are certainly increased.
An object of the present invention is to provide an integrated roof solar power system adopting drainer and water-preventer. Conventional drilling thread connection and direct connection on metal strips are replaced by structural adhesive. The integrated roof solar power system is rainproof, and cost for waterproof facilities of roof could be saved. Thus, service life of color steel roof is extended to 20 years from 7 years, and costs of maintaining and repair of roofs in later are reduced by 50%.
Another object of the present invention is to provide an integrated roof solar power system, characterized in that the solar power system and the roof are integrated, in order to save costs for color steel roof, cement roof, etc., and provide electric to user at a same time.
A third object of the present invention is to provide an integrated roof solar power system, characterized in that waterproof structures are adopted at joints between solar-cell panels, in order to protect the roof from the rain. Thus, a disadvantage that the color steel roof has a short service life could be overcome, and costs for installing and materials of color steel, and costs for maintaining and repair in later are saved.
A fourth object of the present invention is to provide an integrated roof solar power system, wherein the solar-cell panels are installed by a ladder type method. The solar-cell panels are connected with each other to form a whole. Stability and fastness of a whole structure are increased, and the roof becomes neater and more beautiful.
A fifth object of the present invention is to provide a method for installing an integrated roof solar power system, to further construct a roof solar power station. The solar-cell panels are adhered to metal supporting stripes by structural adhesive, in such a manner that original structure of the roof will not be damaged, and weight capacity of a common building will be improved. Constructing costs of the roof are significantly saved, and construction and maintaining is easy and convenient.
Accordingly, in order to accomplish the above objects, the present invention provides an integrated roof solar power system, comprising:
a roof unit, provided on a roof;
a plurality of solar-cell panels, mounted on the roof unit, wherein each of the solar-cell panel has an upper edge, a lower edge, and two side edges, the solar-cell panels are jointed at the upper edges and the lower edges in turn to form a plurality of upper and lower edge joints, the plurality of the solar-cell panels are jointed at the side edges to form a plurality of side edge joints;
a plurality of lower edge water-preventers, mounted on the lower edges of the solar-cell panels, to cover the upper and lower edge joints and prevent rain from infiltrating into the upper and lower edge joints;
a plurality of side edge water-preventers, mounted in positions of the side edge joints, to cover the side edge joints and prevent rain from infiltrating into the side edge joints; and
a ridge element, mounted on a ridge of a building, to cover a gap between the upper edges of the solar-cell panels adjacent to the ridge and prevent rain from infiltrating into the joint.
The integrated roof solar power system provided by the present invention has a stable structure, good-looking and neat appearance. The integrated roof solar power system is rainproof. Especially, the service life of color steel roof is extended to 20 years from 7 years, and the costs of maintaining and repair of roofs in later are reduced by 50%. In another hand, fixing bases are adhered to the roof by structural adhesive, in such a manner that original structure of the roof is not damaged, and waterproof performance of the roof is further improved. Meanwhile, aluminum alloy frames of different structures are provided in the present invents. Drainer and water-preventer are provided at the joints, to lead or disperse the rain and prevent the rain from infiltrating. Shortcomings in the prior art are overcome, and the integrated roof solar power system provided by the present invention could be applied in various environment.
These and other objectives, features, and advantages of the present invention will become apparent from the following detailed description, the accompanying drawings, and the appended claims.
Referring to
a plurality of solar-cell panel groups 8, wherein each of the plurality of solar-cell panel group 8 comprises:
a plurality of water channel elements 9, wherein each of the water channel elements 9 is mounted on a surface of a roof in a direction perpendicular to a ridge 91 of the roof and between the two solar-cell panel groups 8, the water channel element 9 is closely jointed with the two adjacent solar-panel groups, each of the water channel elements has a groove provided in a middle portion of the water channel element 9 in a direction along a length of the water channel, for collecting the rain flowing from the two adjacent solar-cell panel groups 8, and leading the rain to flow away from the roof, in such manner that the roof is protected from erosion of the rain to the greatest extent, and a service life of a color steel roof is extended to 20 years from 7 years; and
a plurality of supporting fixing bases 10, mounted on the roof 12, wherein each of the supporting fixing bases 10 comprises an installing part 30, for connecting with the solar-cell panel group 8, in such a manner that the solar-cell panel group 8 is mounted on the roof 12.
Preferably, a bottom of the supporting fixing base 10 adheres to the roof through structural glue. Conventional way of drilling thread connection is changed. An original structure is not damaged, in such a manner that waterproof performance of the roof is further improved.
Preferably, referring to
Preferably, the supporting fixing base 10 is a layer of color steel board, an asbestos board of high strength, or a plastic board 11, paved on the roof 12. The solar-cell panel is fixed by combination of the concave caulking groove 89 and the convex column 101, to ensure integrality of the roof 12, and to form the integrated roof solar power system.
Referring to
Preferably, an upper surface of the side eave 87 has a first gradient, and the rain can flow down along the first gradient. A lower surface of the side eave 87 has a second gradient extending along the side edge 87 outwardly and downwardly, for prevent the rain from flowing to the lower surface of the solar-cell panel 81 along the lower surface of the side eave 87.
Preferably, the water channel element is in a shape of “U”, two ends of the “U” extend upwardly to connect with the side eaves 87, in such a manner that an integrated structure is formed, and the waterproof performance of the roof is further improved.
Preferably, a lower end of each of the solar-cell panel groups exceeds a lower end of the roof 12 by a certain distance, to prevent the rain from flowing down along a wall of a building, in such a manner that a structure exceeding the wall of the building is formed to discharge the rain conveniently.
Referring to
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Preferably, for the solar-cell panels directly mounted on beams and girders, the solar-cell panels are produced by a conventional procedure, but outer frames of the solar-cell panels can be customized according to different roofs and installing ways.
Preferably, each of the solar-cell panels has an insulating layer 88, adhered to the lower surface of the solar-cell panel by an adhesive, in such a manner that the insulating layer 88 is integrated with the solar-cell panel to further improve heat-insulating performance of the integrated roof solar power system.
Preferably, for solar-cell panel components installed on the color steel roof or cement roof, the frames of the solar-cell panel components are produced according to the above two designs. The lower portion is embedded to hide the upper portion. The fixing way is embodied as a hanging way, and the solar-cell panels are hanged on the ridge.
The solar-cell panels are preferably crystalline silicon components having a size of 1640 mm×992 mm, or amorphous silicon components having a size of 1408 mm×1108 mm. The components can be divided into two parts or four parts, and the size of the component can be adjusted flexibly to adapt different roofs.
Preferably, the solar-cell panel components are produced according to different roof structures and requirements, and the solar-cell panel components could be in a size of 1.5˜2 m2, 1˜1.5 m2, or 0.5˜1 m2.
Preferably, according to requirements of customers, the solar-cell panel components comprising insulating materials adhered to the lower surfaces thereof are produced to strengthen heat-insulating effect of the building.
Referring to
a base 1;
a first adjusting plate 2, provided on the base 1, having a first adjusting hole 21, wherein the first adjusting plate 2 has a first faying surface with the installing part 30;
a second adjusting plate 3, having a second adjusting hole 31 cooperating with the first adjusting hole 21, wherein the second adjusting hole 31 can move relative to the first adjusting hole 21 to adjust a height of the installing part 30, the first adjusting hole 21 and the second adjusting hole 31 have an overlapped portion, and a common hole 50 is defined by the overlapped portion; and
a fixer, comprising:
a main body 40, having an inserting part 41 and a fixing nut 42, the main body 40 inserts into the common hole 50 from a first side of the first adjusting plate 2 or the second adjusting plate 3, the fixing nut 42 has a faying surface with a periphery of the common hole 50, and
a pressing nut 43, provided at a second side opposite to the first side, and sleeving the inserting part 41, wherein the pressing nut 43 has a second faying surface with the first adjusting plate 2 or the second adjusting plate 3 at the periphery of the common hole 50, for pressing the first adjusting plate 2 and the second adjusting plate 3 tightly, frictions exist among the first adjusting plate 2, the second adjusting plate 3, and the fixer, with help of the frictions, the second adjusting plate 3 and the main body 40 of the fixer cooperate to fix the first adjusting plate 2 and the second adjusting plate 3.
Preferably, the first adjusting hole 21 is a closed hole defined by two opposite semicircles and a rectangular between the two semicircles. The second adjusting hole 31 has a shape and a size same as the first adjusting hole. The fixer is coupled with the first adjusting hole 21 and the second adjusting hole 31, and can slide in the first adjusting hole 21 and the second adjusting hole 31.
Preferably, the supporting fixing base further comprises gaskets 6, respectively provided between the fixing nut 42 and the first adjusting plate 2, and between the pressing nut 43 and the second adjusting plate 3. The gaskets can also be respectively provided between the fixing nut 42 and the second adjusting plate 3, and between the pressing nut 43 and the first adjusting plate 2. Thus, the frictions among the fixer, the first adjusting plate 2, and the second adjusting plate 3 are increased to achieve a better fixing effect.
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A method for installing an integrated roof solar power system comprises:
Preferably, in the step (1), the solar-cell panels are connected via a plurality of fixing components provided at joints between two adjacent solar-cell panels. The fixing component comprises a lower edge connecting plate, mounted on a lower edge of a lower surface of each of the solar-cell panels, wherein the lower edge connecting plate has a lower edge connecting hole, and comprises a connecting hole fixer, each of the solar-cell panels has an upper edge connecting hole, provided on the upper edge of the lower surface of each of the solar-cell panels, and the connecting hole fixer crosses through both of the lower edge connecting hole of a first solar-cell panel and the upper edge connecting hole of a second solar-cell panel, to fix a relative position between the first solar-cell panel and the second solar-cell panel. The upper edge of the second solar-cell panel and the lower edge of the first solar-cell panel overlap, and the upper edge of the second solar-cell panel is under the lower edge of the first solar-cell panel, in such a manner that a waterproof function is realized.
Referring to
a plurality of supporting bar 1′, mounted on secondary ridges 2′ of a building in a direction perpendicular to the secondary ridges 2′;
a plurality of solar-cell panels 3′, mounted on the supporting bar 1′, wherein each of the solar-cell panels 3′ has an upper edge 31′, a lower edge 32′, and two side edges 33′, the solar-cell panels are jointed at the upper edges 31′ and the lower edges 32′ in turn, to form a plurality of upper and lower edge joints, the solar-cell panels are jointed at the side edges 33′, to form a plurality of side edge joints;
a plurality of lower edge water-preventers 4′, fixedly provided on the lower edge 32′ of each of the solar-cell panels 3′, for covering the upper and lower edge joints to prevent rain from infiltrating into the upper and lower edge joints;
a plurality of side edge water-preventers 5′, fixedly provided on each of the side edge joints 35′, for covering the side edge joints to prevent the rain from infiltrating into the side edge joints; and
a ridge element 6′, fixedly mounted on a ridge of the building, for covering a gap between the upper edges 31′ of the solar-cell panels adjacent to the ridge to prevent the rain from infiltrating into the gap.
Referring to
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Preferably, the lower edge connecting part 451′ and the supporting bar connecting part 452′ are integrated.
Referring to 28˜31, preferably, the supporting bar connecting part 452′ has a supporting bar connecting hole 4521′. The supporting bar 1′ has an inner chamber 11′ and a slot 12′, wherein the slot 12′ and the inner chamber 11′ are connected, the supporting bar 1′ has a hollow semi-closed structure in general, and a cross section of the supporting bar 1′ is in a shape of “C”. The lower edge base connector further comprises a fastening block 46′, provided in the inner chamber 11′, wherein the fastening block 46′ can slide in the inner chamber 11′, a size of the fastening block is larger than a width of the slot 12′, in such a manner that the fastening block can not slide out from the slot. The fastening block has a fixing hole, which has a fixing hole thread provided on an inner wall of the fixing hole, and a fastening element 47′, coupling with the fixing hole thread. The fastening element 47′ crosses through the supporting bar connecting hole 4521′ and the slot, and is connected with the fastening block via the fixing hole thread. When installing the fastening element 47′, the fastening element 47′ is tightened downwardly, until a relative position between the base connecting plate 45′ and the supporting bar 1′ is fixed. At this time, the fastening block can not slide in the inner chamber.
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Preferably, the lower edge middle element 41′, the lower edge water-guider 43′ and the lower edge base 44′ are provided integrated.
Referring to
two side edge fixers 51′, wherein each of the side edge fixers 51′ comprises:
a side edge guiding cover 52′ in a shape of reversed “U”, sleeving upper ends of the two side edge guiding boards 513′ resisting tightly, to cover a gap between the side edge guiding boards 513′, and to prevent the rain from infiltrating into the gap between the side edge guiding boards 513′.
Referring to
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Preferably, the side edge middle element and the side edge guiding board is integrated.
Referring to
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Preferably, each of the solar-cell panels has an insulating layer, adhered to the lower surface of the solar-cell panel by an adhesive, in such a manner that the insulating layer is integrated with the solar-cell panel to further improve heat-insulating performance of the integrated roof solar power system.
The solar-cell panels are preferably crystalline silicon components having a size of 1640 mm×992 mm, or amorphous silicon components having a size of 1408 mm×1108 mm. The components can be divided into two parts or four parts, and the size of the component can be adjusted flexibly to adapt different roofs.
Preferably, the solar-cell panel components are produced according to different roof structures and requirements, and the solar-cell panel components could be in a size of 1.5˜2 m2, 1˜1.5 m2, or 0.5˜1 m2.
Preferably, according to requirements of customers, the solar-cell panel components comprising insulating materials adhered to the lower surfaces thereof are produced to strengthen heat-insulating effect of the building.
A method for installing an integrated roof solar power system comprises:
One skilled in the art will understand that the embodiment of the present invention as shown in the drawings and described above is exemplary only and not intended to be limiting.
It will thus be seen that the objects of the present invention have been fully and effectively accomplished. Its embodiments have been shown and described for the purposes of illustrating the functional and structural principles of the present invention and is subject to change without departure from such principles. Therefore, this invention includes all modifications encompassed within the spirit and scope of the following claims.
Number | Date | Country | Kind |
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201310119442.3 | Apr 2013 | CN | national |
201320228684.1 | Apr 2013 | CN | national |