This application is a U.S. National Stage of International Application No. PCT/EP2010/056460, filed May 11, 2010, designating the United States and claiming priority to German Application No. DE 10 2009 003 151.0 filed May 15, 2009.
The invention relates to a support arrangement for solar modules.
Solar systems comprising a plurality of solar modules, especially photovoltaic modules, are frequently embodied as outdoor systems for which posts must be anchored and in particular rammed into the ground. Support arrangements are attached via connecting elements to these posts, which are typically arranged in one or several rows. Support arrangements generally consist of one or several longitudinal supports, as well as module supports extending transverse thereto on which the solar modules are mounted.
Support arrangements of this type are known, for example, from the German patent documents DE 20 2005 008 159 U1, DE 203 03 257 U1, DE 20 2005 012 993 U1, and international patent publications WO 00/31477 A1 or WO 2008/009530 A2. German patent document DE 203 19 065 U1 additionally mentions the option of attaching a connecting element, embodied as a U-shaped yoke, to a post that the connecting element can be adjusted in height and tilted to the side.
Since the posts can be rammed in only with limited precision, it can be advantageous to have available a readjustment option, especially with respect to the height position of the connecting elements.
According to the German patent document DE 20 2008 001 010 U1, a connection claw is provided for the height adjustment and is screwed to the upper end of the post that is anchored in the ground, wherein the screws are fitted into elongated holes in the post and the connecting claw can thus be secured at different height positions, such that it is clamped against the side surfaces of the post.
The height-adjustment option with the aid of elongated holes is also known in connection with roof-mounting systems and is described, for example, in the German patent documents DE 101 52 354 C1 and DE 10 2005 018 687 B3, wherein the latter document discloses an embodiment provided with an elongated hole, provided with a toothing of opposite-arranged surfaces, wherein alternatively a row of bore holes can be provided through which the fastening screws can extend. When using aluminum profiles as structural components, the toothing can be produced relatively easily but has only a limited supporting capacity. Providing steel components, which are designed for high carrying capacity, with a toothing is expensive and the toothing can become clogged with anti-corrosion material during a subsequent surface treatment with a frost protection agent.
It is an object of the present invention to provide an advantageous option for adjusting the height of a support arrangement for solar modules which can be subjected to high loads.
The above and other objects are achieved according to the invention by the provision of a support arrangement for a solar module, which in one embodiment comprises: a post having a first surface section; a support structure including a connecting element presenting a second surface section facing the first surface section in a direction of a joint surface normal of the first and second surface sections; a stop element arranged in the surface normal direction offset to the first surface section and the second surface section, a first form-fitting connection between the stop element and the post and a second form-fitting connection between the stop element and the connecting element providing vertical support of the connecting element relative to the post, wherein the first and second form-fitting connections are producible at different heights of the connecting element relative to the post; and a fastening element to hold in place the first surface section and the second surface section relative to each other in the direction of the joint surface normal.
As a result of the at the least one stop element, provided in addition to the standard fastening elements, the invention permits at least a partial separation between the height adjustment and the mounting. In particular, a high stability of the vertical support can be combined with an especially favorable way of handling the adjustment of the height position in that the opposite-arranged surface sections of the post and the connecting element, as well as the stop element, remain in a captive connection when the fastening element is loosened while still permitting a vertical displacement of the connecting element, relative to the post, and allowing at least one of the two form-fitting connections to be changed.
The components which must absorb the supporting forces, meaning the posts, the connecting elements and the stop elements, are preferably made of steel and can advantageously be embodied of non-rusting steel or can be embodied to have a surface treated with rust-preventing material, in particular a galvanized surface.
The first and second form-fitting connections in this case are understood to refer to the interlocking components of at least two structural parts which function to mutually support each other in a form-fitting connection for two components in the vertical direction. With respect to a force support or a displacement, the vertical direction is understood to also include a slight angle deviating from the perpendicular line, for example if the connecting elements are tilted around an essentially horizontal axis. Also understood is that the horizontal direction includes a slight deviation. Horizontal and vertical directional information relates to the typical setup for the support arrangement over a horizontal, flat area.
The support arrangement according to the invention can be used advantageously with known and proven structures, having screws or threaded bolts as fastening elements which extend through the first and second surface sections and tighten the two surface sections against each other in the locked state. The connecting element typically fits with two second surface sections, which can be embodied as connecting element in the form of welded together web plates, against two sides of first surface sections on the post which are facing away from each other but are arranged parallel to each other. In particular with closed hollow profiles, the fastening elements can be embodied as threaded bolts, screws or the like which extend through the first and the second surface sections or, especially with post profiles that are open on one side, such as the frequently used sigma profiles, the fastening elements can be embodied as two separate fastening elements for each combination of a post and connecting element. The post can furthermore be a two-part steel profile which is inserted and especially rammed into the ground and is subsequently provided with a post head attached to the upper end on which the first surface section of the post is embodied.
The invention is illustrated in further detail in the following, with the aid of preferred embodiments and with reference to the Figures, showing in:
A post PF, shown as a partial representation in
A connecting element VE comprises two web plates F21, F22 for which the plate surfaces are positioned at a distance to each other in the direction of their surface normal. The web plates F21, F22 form the second surface sections on the side of the connecting element VE. In the assembled state, the plates comprising the second surface sections F21, F22 are located in the x-z planes and the joint surface normal extends in y direction. The web plates F21, F22 are connected, in particular welded, to a console panel KB which has a support surface AF positioned in a q-x plane. Longitudinal supports that are known per se from the prior art and extend in x direction can be placed onto the support surfaces AF and can be connected to the console panel KB. Module supports extending in q direction for supporting the solar modules can in turn be attached to the longitudinal supports.
In the second surface sections F21, F22, openings D2 in the form of elongated holes are provided for the preferred example of the invention, wherein the openings D2 in the second surface sections F21, F22 are arranged so as to be aligned in y direction. In addition, counter structures GS are provided in the second surface sections F21, F22, which will be described in further detail in the following with the aid of the Figures and which cooperate with stop structures AS of the stop elements AE1, AE2. The counter structures GS in particular can be embodied in the form of openings, preferably bore holes, extending through the second surface sections F21, F22.
Provided as essential elements for the support arrangement according to the invention are furthermore the stop elements AE1, AE2, with thereon embodied stop structures, for example locking cams NO, which cooperate with the counter structures GS on the second surface sections F21, F22, as previously mentioned.
When setting up the support arrangements, consisting of the components shown in
The stop elements AE1, AE2 are also provided with openings DA which, in the assembled state, are aligned with the openings D1 in the first surface sections. The stop elements AE1, AE2 fit against the outsides of the second surface sections F21, F22, which are facing away from the first surface sections, while the cams NO and the counter structures GS for the embodiment shown in
The connecting element VE with thereon arranged support structure and solar modules is supported in the vertical direction via the second surface sections F21, the second form-fitting connections produced by the engagement of the counter structures GS and the cams NO, the stop elements AE1, AE2 and first form-fitting connections produced with the aid of the fastening elements BE between the openings DA in the stop elements and the openings D1 in the first surface sections. No direct form-fitting connection exists in the assembled state between the second surface sections F21, F22 on one side and the first surface sections F11, F12 on the other. However, the connecting element on the post PF can still be supported via the stop elements AE1, AE2 and the aforementioned form-fitting connection.
Two cams NO which are preferably arranged symmetrical to the opening DA also project from the plate surface of the plate section MP. The extensions of the bushing BU and the cams NO projecting on opposite sides of bushing BU, are directed counter to the orientation of the edges ST, relative to the plate section MP.
In the assembled position shown in
It is advantageous if the cams NO essentially have a perfect cylindrical shape and, for the preferred embodiment, are formed through cold-forming with the aid of an extraction tool from the plate surface of the plate section MP.
In the fastened state according to
If the fastening element BE is unscrewed slightly from the nut MO, as compared to the fastening position shown in
The displacement of the connecting element in z direction, relative to the post PF and the stop element AE1 in the non-tightened position of the fastening element as shown in
Viewed in the y direction onto a second surface section F21 and a stop element AE1, the two representations (A) and (B), of
For the exemplary embodiment outlined in
The example outlined in
Additional openings DS are drawn into
Whereas for the previously explained example the height adjustment of the connecting element, relative to the post, occurs in vertical steps which are equal to the grid spacing of the rows of holes in the second surface section,
According to
The stop element can be inserted with two orientations, which are offset by 180° around the fastening element, wherein as opposed to the previously described stop element, the two angle positions differ in such a way that in the one case, shown in
Since the position of the element axis BA and/or the center point of the opening DA that extends through the plate section MP is fixedly predetermined, owing to the bore hole D1 in the first plate section F11 and the fastening element, the absolute height position of the locking cams varies by half the grid spacing of the rows of holes when the stop element AD is rotated by 180° in the non-tightened position of the fastening element. Since the height position of the locking cams during the engagement in the bore holes of the counter structures determines their vertical height position, the resulting height positions differ by an amount HD which correlates to half the grid spacing RM for the rows of holes, in dependence on the rotational position of the stop element around the fastening element. In
A height adjustment option with steps HD thus results, wherein a step is equal to half the grid spacing for the rows of holes. Of course, a height adjustment in steps equal to the grid spacing RM is also possible, wherein the stop element in that case is not rotated around the element axis.
For this example, a stop element AK with two locking cams NO and a central opening DA is configured such that the center point BA of the opening DA through the plate surface MP is located on a straight line with the two cams NO and that the cams are positioned at the same distances to the center point of the opening. The spacing between the cams and the distance to the center point of the opening slightly exceeds that of the horizontal distance between the two rows of holes. The stop element can be inserted into two different bore hole positions of the grid for producing a form-fitting connection between the cams, wherein each time the connecting line between the cams is tilted at a slight angle relative to the horizontal line. In the two insertion positions, the center point of one of the two cams is respectively positioned lower by a height difference DN and the center point of the other of the two cams is located higher by the same difference DN than the height of the element axis BA. The line can be tilted either in the clockwise direction or also in the counter-clockwise direction. In
Since the height of the center of the opening through the plate surface MP of the stop element is again determined by the opening D1 in the first surface section of the post and by the fastening element BE that extends through this opening, the two rotational positions of the stop element determine two different height positions for the locking cam which complement each other in connection with the staggered rows of holes in the second surface section, so as to form possible vertical positions of the second surface section for which the step width HK of the height adjustment amounts to half the grid spacing RM of the individual rows of holes.
According to the exemplary embodiment shown in
The features listed in the above and in the claims, as well as the features that follow from the Figures, can be realized advantageously by themselves or also in different combinations. The invention is not restricted to the described exemplary embodiments, but can be modified and embodied in different ways within the framework of expert knowledge.
Number | Date | Country | Kind |
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10 2009 003 151 | May 2009 | DE | national |
Filing Document | Filing Date | Country | Kind | 371c Date |
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PCT/EP2010/056460 | 5/11/2010 | WO | 00 | 11/3/2011 |
Publishing Document | Publishing Date | Country | Kind |
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WO2010/130736 | 11/18/2010 | WO | A |
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Number | Date | Country |
---|---|---|
101 52 354 | May 2003 | DE |
203 03 257 | Jul 2003 | DE |
203 19 065 | Apr 2004 | DE |
20 2005 008 159 | Sep 2005 | DE |
20 2005 012 993 | Dec 2005 | DE |
10 2005 018 687 | Nov 2006 | DE |
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Entry |
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International Search Report of PCT/EP2010/056460 Dated Dec. 20, 2010 with an English Translation. |
Number | Date | Country | |
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20120056066 A1 | Mar 2012 | US |