The present invention relates to a mounting system for solar modules having a substructure on which a frame is supported to which one or more plate-shaped solar modules are held, and having an anchor capable of being attached to a building structure and which supports the frame in an upper region, as well as a method for installing a solar system.
Mounting systems for solar modules are well known in which a frame is supported on a substructure, for example on pile-driven foundation posts. The frame is thereby mounted at a previously determined angle of pitch either on several of the posts forming the substructure, wherein short front posts are arranged to the south side and longer rear posts arranged to the north side, or on only one post, wherein the frame is supported approximately in the centre so that there is an even distribution of load. These mounting systems can be fixed atop or onto buildings, or onto outdoor open areas. A disadvantage is that, in addition to the frame, relatively complex and expensive substructures have to be provided. In particular, the installation of very large solar systems is difficult and elaborate.
Furthermore, solar module mounting systems integrated into the facades forming part of the building envelope are also well known. In such cases, in addition to the purely retaining function, the systems have to fulfil further functions, like, for example, heat insulation and/or the provision of a waterproof facade or a waterproof section of the facade respectively. Disadvantageous here, however, is that retrofitting on the building envelope is no longer possible, or can be carried out only with considerable effort.
It is, therefore, the object of the present invention to provide a mounting system for solar modules as well as a method for installing a solar system, which can be flexibly adapted to various on-site conditions and which makes a simple installation possible. In addition, the mounting system also has to be suitable for retrofitting on buildings.
In order to achieve this object, a mounting system with the features of claim 1 as well as a method for installing a solar system with the features of claim 7 is provided.
According to the invention, with this mounting system, the base part is swivel-mounted to pivot about a horizontal axis and the frame can be fixed in varying angles of inclination. In this way, a simple pre-assembly of the solar system can take place on the ground, after which the base part together with the frame and the solar modules can be erected and attached to the building structure or other element. This makes it possible to install solar systems effectively on larger areas as well. In addition, it is also possible, by means of the swivel bearing, to carry out an adjustment to the angle of inclination, for example to align optimally the solar modules according to the prevailing season. During the winter months, the position of the sun in the sky is not as high, making a steeper alignment of the solar modules more advantageous. During the summer months, on the other hand, a flatter alignment of the solar modules can increase the efficiency. The adjustment of the inclination can also be done after the first installation.
In a further beneficial embodiment refinement, the substructure bears the occurring weight loads whilst the anchor absorbs the wind loads. Thus, essentially, the mounting elements are only subjected to tensile and compression forces.
The base part is preferably mounted to a stationary part attached at the bottom to a socket or post. Thus, whatever the sub-surface conditions are, it is possible to achieve a stable fastening of the retainer part to which the base part is swivel-mounted. The stationary part and the base part can be connected to each other by means of a hinge joint, which can be constructed with appropriately stable dimensions according to the weight loads occurring.
According to a further embodiment refinement of the invention, the inclination of the frame is adjustable by means of the anchors. For this purpose, the anchors can be constructed to be longitudinally adjustable in order to modify the angle of inclination of the frame by pivoting about the horizontal axis at the base part.
In addition, to enable simple installation, the posts are mounted, preferably longitudinally slidably adjustable, on a retainer part. The retainer part can then be pushed onto the posts at one end in order to be fixed at the desired height. In this way, thermal stress can be avoided. It is an advantage to have corresponding tolerance compensation, which is achieved by sliding the posts relative to the retainer part, particularly when the posts that are used have a greater length, e.g. over 5 m.
According to the invention a method for installing a solar system will also be provided having the following steps:
By means of the mounting system according to the invention, standardised procedural steps can be employed in order to install a solar system effectively, so that within a short time even larger areas can be attached. In particular, due to the swivel-mounting of the frame, an appropriate alignment and flexible adjustment can also be undertaken, depending on the various circumstances caused by the condition of the ground and/or the geometry of the building. The retrofitting of a solar system to existing building structures such as the wall or the facade of a building is also possible without any problems.
Preferably, several profiles are joined together by means of transverse bars in order to form a frame before the profiles are erected. Consequently, the solar modules can be fixed to the frame whilst it is on the ground and then erected as one unit, thus avoiding installation at great heights. In the process, the frame, in an intermediate step, can be positioned disposed from the ground in order to fix the solar modules mechanically and to wire them together by cable. The frame can then be erected with the positioned and affixed solar modules as well, so that a complete assembly of the frame with the arranged solar modules takes place at the ground, and is then erected as one unit that then merely needs to be attached to the building or other building structure at the desired position.
The invention will be described subsequently in more detail by means of embodiments in conjunction with the accompanying drawings, wherein:
A mounting system 1 for solar modules comprises a frame 2 consisting of upwardly extending profiles 3 and horizontal profiles 4 and 5, wherein in
The frame 2 is supported at the bottom by a substructure that bears almost completely the weight load of the frame 2 with the solar modules 6. The substructure comprises a base part 11 and a stationary part 9, which is attached to a pile-driven foundation post 7 that is anchored in the ground 8 (
The frame 2 is, in its upper region at certain points that are disposed to each other at intervals, attached to a wall 17 or the facade of a building respectively by means of anchors 13. The frame 2 can also be extended over greater heights, for example over 4 m and higher, and can be installed on the walls of industrial premises. In order to obtain an optimal angle of pitch 13 corresponding to the on-site conditions, the base part is disposed at a distance from the wall 17 of the building, wherein the angle of pitch lies, for example, within a range of between 60° and 80°. The wall 17 of the building comprises an insulation 14 that is arranged adjacent to an interior wall 15. A post 16 is arranged in the interior area, which is necessary for structural purposes and to which an anchor 13 can be attached. It is possible to include a counter bearing for the anchor 13 in the interior area.
Further, the base part 11′ includes a semi-circular holder 92′ that can be turned around an axis 10. The axis 10 (
As shown in
The
An anchor 35 designed as a threaded rod is arranged on the bottom side 27 and attached to a post 16 of the building or to another structural element of the building or building structure. At a duct in a wall, a seal 29 is attached by means of a nut 28 to the anchor 35. Likewise, the retainer 20 is fixed in the desired position by means of nuts 28. For this purpose, a horizontal slot 36 is formed in the bottom side 27. By means of this horizontal slot 36, a horizontal repositioning of the retainer part relative to the anchor 35 that is fixed to the wall can be carried out, so that when fixing the profile 3, an alignment both in a horizontal direction parallel to the wall as well as perpendicular to the wall can be achieved when the retainer part 20 is fixed using two nuts 28. The anchor 35 can thereby be fixed to the building construction in a horizontal inclination, so that the anchor 35 and the profile are arranged essentially at right angles to each other.
On the third anchor part 50″, a guidance element 59 is arranged with grooves 60 to allow for the introduction of a section of a profile 3.
The attachment of the sleeves 52 and 54 can be carried out as with the sleeves 55 and 58, so that the third anchor part 50″ is positioned to pivot about both a horizontal axis as well as a vertical axis at the first anchor part 50.
In addition, an extension element 61 can be fitted between the sleeve 52 and the sleeve 54 and which features openings 62 and 63 at the opposing ends into which the appropriate axes can be inserted.
Subsequently, the posts 3 are swung up into position, either separately or together with the frame 2 as wished. Afterwards, a retainer part 20, 20′ or the third anchor part 59′ is slid onto the profile 3 and attached to the anchor 35. In the process, profile 3 and therefore also the solar modules 6 are brought into an angled position α relative to the vertical. The angle of pitch α can be chosen to be somewhat greater or smaller depending on the prevailing season, preferably between 60° and 80°.
In the depicted embodiment examples, the retainer parts 20, 20′, 59 are each mounted on a profile 3 that is slidably positioned. It is, of course, also possible to mount additional components to the frame 2 to allow for slidable positioning relative to a stationary anchor.
Number | Date | Country | Kind |
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10 2010 016 529.8 | Apr 2010 | DE | national |