Stop element for a solar module mounting
11527989 ยท 2022-12-13
Assignee
Inventors
Cpc classification
F24S2025/6003
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
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
Y02E10/47
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
H01R4/64
ELECTRICITY
F24S25/65
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
Abstract
A stop element for at least one solar module holder, which can be fastened to a substructure by means of fastening means. The stop element comprises: two opposite stop portions and at least one connecting element that connects the two opposite stop portions. One of the two stop portions is coupled to the at least one solar module holder, and the other of the two stop portions is coupled to the fastening means or to a further solar module holder in order to generate a torque on the solar module holder caused by a load.
Claims
1. A stop element for at least one solar module holder which can be fastened to a substructure by a fastening device, comprising: two opposing stop portions, including a first stop portion with a first abutment surface and a second stop portion with a second abutment surface, the first abutment surface facing the second abutment surface; at least one connecting element that connects the two opposing stop portions, wherein the first stop portion is configured to be coupled to the at least one solar module holder such that the first abutment surface contacts the at least one solar module holder, and the second stop portion is configured to be coupled to the fastening device or to a further solar module holder such that the second abutment surface contacts the fastening device or the further solar module holder, so that a load caused by a load torque on the solar module holder is absorbed by the first and second stop portions.
2. The stop element according to claim 1, wherein the stop element is formed monolithically and can be placed on the substructure.
3. The stop element according to claim 1, with the two opposing stop portions being formed as V-shaped portions which provide a stop for absorbing the torque, wherein the at least one connecting element couples at end points of the V-shaped portions and, after being placed on the substructure, runs laterally along the substructure.
4. The stop element according to claim 1, wherein at least one slot is formed on the two opposing stop portions, into which at least part of the solar module holder can be pushed.
5. The stop element according to claim 4, wherein two opposing stop portions each have a slot in order to allow the stop element to be displaced along adjacent solar module holders while the slots offer a form-fitting hold.
6. The stop element according to claim 1, wherein the two opposing stop portions and/or the connecting element are formed from a metal in order to make an electrical potential equalization between the substructure and the solar module holder possible.
7. The stop element according to claim 1, which is formed as a rectangular contour around a rectangular opening which is bent at least once along a line parallel to one of the rectangular edges.
8. A solar module installation with: at least one solar module; at least one solar module holder which holds the at least one solar module; a substructure on which the at least one solar module holder is fastened together with the respective solar module; and at least one stop element comprising: two opposing stop portions, including a first stop portion with a first abutment surface and a second stop portion with a second abutment surface, the first abutment surface facing the second abutment surface; at least one connecting element that connects the two opposing stop portions, wherein the first stop portion is configured to be coupled to the at least one solar module holder such that the first abutment surface contacts the at least one solar module holder, and the second stop portion is configured to be coupled to the fastening device or to a further solar module holder such that the second abutment surface contacts the fastening device or the further solar module holder, so that a load caused by a load torque on the solar module holder is absorbed by the first and second stop portions.
9. The solar module installation according to claim 8, wherein the at least one stop element is displaceably arranged along adjacent solar module holders, and wherein the at least one stop element has at least one slot that is formed on the two opposing stop portions, into which at least part of the solar module holder can be pushed.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) The embodiments of the present invention will be better understood from the following detailed description and the accompanying drawings, which should not be construed as limiting the disclosure to the specific embodiments but are for explanation and understanding only.
(2)
(3)
(4)
DETAILED DESCRIPTION
(5)
(6)
(7)
(8) The problem solved by the invention is that with increasing tensile load on the fastening means 60, which for example acts on solar modules due to the wind load, a torque M acts on the solar module holders 41, 42 around the rotation areas R (see
(9)
(10) According to the embodiment shown, the stop element is substantially formed as a rectangular loop which extends around the fastening point between the solar module frames 41, 42 and the substructure, with the V-shaped stop portions 111, 112 providing a secure stop. In this way, a permanent and stable attachment of the solar modules to the substructure is achieved, even at very high wind load requirements.
(11)
(12)
(13) The stop portions 111, 112 again form V-shaped projections which prevent a rotation about an axis of rotation perpendicular to the plane of the drawing in
(14) In this embodiment, the stop element is formed as a rectangular plate (contour) with a rectangular opening, with the stop element being folded along a line that extends, for example, in the center parallel to one of the rectangular edges. As a result, the stop element projects beyond a side edge of the substructure in a plan view (see
(15) Of course, the stop elements between adjacent solar module holders 41, 42 (see
(16)
(17) These slots 113, 114 are formed, for example, in such a way that after the stop element has been placed on the substructure 50 (see
(18) The embodiments with the slots offer the advantage that the stop element does not necessarily have to be formed at a fastening point where the solar module holder 40 is fastened to the substructure 50. Rather, the stop element shown can be displaced parallel along the adjacent solar module holders 40 as a result of the slots 113, 114 and ensure a non-rotatable connection between the solar module holders 40 in any region.
(19) Embodiments of the present invention thus define a simple technical solution for the quick attachment of solar modules on a substructure in which the solar modules can mainly be attached to transverse greases of common steel or aluminum profiles.
(20) The embodiments offer the following advantages: A currently existing limitation for permitted module tensile loads can be increased and is not limited by the loss of position. Conventional standard clamps (module holders) can still be used. No reinforcements are required. There are no restrictions on the module clamping region or the assembly variants required. In this way, a high degree of flexibility with regard to the module clamping region can be maintained. No additional clamping points or additional substructures are required. The stop element can also be used as a potential equalization between the solar modules and the substructure. The risk of cell breakage is decreased due to the reduced deflection of the laminate.
(21) The features of the invention disclosed in the description, the claims and the drawings may be essential for the realization of the invention either individually or in any combination.
LIST OF REFERENCE SIGNS
(22) 40,41,42 Solar module holders (e.g., module clamps) 50 Substructure 60 Fastening means 111, 112 Opposite stop portions 113, 114 Slots 120 Connecting element R Point of rotation M Effective torque around the point of rotation under tensile load