Photovoltaic solar energy system with improved gain
10998852 · 2021-05-04
Assignee
Inventors
Cpc classification
Y02E10/547
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
Y02E10/52
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
H02S20/30
ELECTRICITY
International classification
H01L31/068
ELECTRICITY
Abstract
In order to improve the gain of a photovoltaic solar energy system, the system comprises: a plurality of bifacial photovoltaic solar cells, defining together a direct absorption surface as well as an indirect absorption surface, both surfaces being opposite and intended to absorb a solar radiation energy; a support chassis for supporting the cells, the chassis comprising a support structure on which the cells are attached. The chassis further includes a suspension for suspending the support structure, the suspension comprising a top end connected to a first end of the support structure, and the suspension defines a reflective surface configured to reflect light towards the indirect absorption surface defined by the cells.
Claims
1. A photovoltaic solar energy system including: a plurality of bifacial photovoltaic solar cells, defining together a direct absorption surface as well as an indirect absorption surface, both surfaces being opposite and intended to absorb a solar radiation energy; a support chassis for supporting said cells, said chassis comprising a support structure on which the cells are attached, wherein said chassis further includes a suspension means having a top end connected to a first end of the support structure such that the support structure is suspended from the suspension means, and in that the suspension means defines a first reflective surface configured to reflect light towards said indirect absorption surface defined by the plurality of cells, and a second reflective surface configured to reflect light towards another direct absorption surface of another photovoltaic solar energy system located rearwardly of the photovoltaic solar energy system, the second reflective surface facing a direction opposite to a direction that the first reflective surface faces, and in that the support chassis further includes an input reflector a first end of which is connected to a bottom end of the suspension means, the input reflector defining a reflective input surface configured to reflect light towards said first reflective surface, and in that said indirect absorption surface, the first reflective surface, as well as the reflective input surface delimit together a light reflection and propagation space open between a second end of the input reflector opposite to the first end of said input reflector, and a second end of the support structure opposite to the first end of said support structure.
2. The system according to claim 1, wherein the support chassis further includes a moving device for pivoting the whole formed by the suspension means and the support structure, and in that the moving device includes a telescopic arm one end of which is hinged to the input reflector.
3. The system according to claim 1, wherein the input reflector, the support structure as well as the suspension means are each of a substantially planar shape, and in that they substantially have the same width along a width direction parallel to junction lines between the support structure, the suspension means, and the input reflector.
4. The system according to claim 1, wherein the input reflector is tilted by an angle substantially equal to 90° with respect to the suspension means, and in that the suspension means is tilted by an angle substantially equal to 45° with respect to the support structure.
5. The system according to claim 4, wherein the input reflector has, between its first and second ends, a first length substantially identical to the length of the suspension means between its top and bottom ends, and in that the support structure has between its first and second ends a second length such that a squared value of the first length is substantially equal to twice the squared value of the second length.
6. The system according to claim 1, wherein said suspension means comprises at least one of the following elements: a framework on which a net forming a reflective element is attached; a framework on which a set of parallel lamellae forming a reflective element is attached; one or more reflective panels, each reflective panel having at least one aperture equipped with wind energy recovering means.
7. A solar power plant comprising a plurality of systems according to claim 1, said systems being arranged so as to form a plurality of rows.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) This description will be made with regard to the appended drawings in which;
(2)
(3)
(4)
(5)
(6)
(7)
DETAILED DESCRIPTION OF PARTICULAR EMBODIMENTS
(8) First in reference to
(9) In reference to
(10) In the embodiment of
(11) First, the chassis 10 comprises a support structure 12 for supporting the cells 4. This support structure can be conventionally made, for example using a frame, possibly completed with reinforcing elements, while remaining between them a sufficiently emptied space to allow both surfaces 6, 8 to be irradiated with light. The density of the cells 4 is strong, because their cumulative surface area substantially corresponds to the surface area of the structure 12 as defined by its periphery.
(12) At a first end of this support structure 12, corresponding to a top end substantially parallel to the ground 14, the chassis includes a suspension means 16 for suspending the support structure 12. The suspension means 16 is also of a substantially planar shape. Its top end is mechanically connected to the top end of the support structure 12, so as to form a fold line between both. The angle A1 defined between both elements 12, 16 is preferentially substantially equal to 45°, and more generally between 30 and 60°.
(13) One of the features of the present invention resides in the fact that the surface of the suspension means which is oriented towards the indirect absorption surface 8, is a reflective surface 20 configured to reflect light towards this surface 8.
(14) An input reflector 22, a first end of which is mechanically connected to a bottom end of the suspension means 16 is also provided. The input reflector 22 is also of a substantially planar shape, and defines with the suspension means 16 an angle A2 substantially equal to 90°. It has an input reflective surface 26 configured to reflect light towards the reflective surface 20 of the suspension means 16.
(15) The suspension means 16, the support structure 12, and the input reflector 22 all extend over a substantially identical width, the direction of the width L3 being here considered as parallel to the junction lines between these three elements 12, 16, 22. On the other hand, the length L1 of the input reflector 22, between both these ends, is substantially identical to the length of the suspension means 16 between its top end and its bottom end. Moreover, between its first and second ends, the support structure 12 has a length L2 defined such that the L1 squared value is substantially equal to twice the L2 squared value. Consequently, the three surfaces 8, 20, 26 define together a light reflection and propagation space 30, an aperture 32 of which is delimited between a second end 34 of the input reflector 22, and the second end 36 of the support structure 12, considered as the bottom end of this structure.
(16) The aperture 32 thus extends along a half-hypotenuse length of the hypothetical right angled triangle formed by the elements 12, 16, 22, the other half-hypotenuse consisting of the support structure 12.
(17) With this particular geometry of the chassis 10, in side view, light rays R1 substantially impact perpendicularly the direct absorption surface 6. This particular orientation is obtained by virtue of a moving device 40 being an integral part of the chassis 10, which connects the aforementioned elements 12, 16, 22 to the ground 14. This device 40 enables these integral elements to be rotated, along an axis of rotation 42 substantially parallel to the ground 14 and substantially parallel to the junctions between the elements of the chassis. Preferably, the axis of rotation 42 is located at the junction between the suspension means 16 and the input reflector 22. The device 40 includes for example one or more vertical arms 44 connecting the ground 14 to the aforementioned junction, and also comprises one or more telescopic arms 46 a first end of which is connected to the fixed arms 44, and a second end of which is hinged to the input reflector 22. By virtue of this device 40, it is actually easy to drive the orientation of the chassis 10 such that the direct absorption surface 6 is at any time of the daytime substantially perpendicular to the rays R1. This device 40 enables for example the whole to perform a pivoting with a total amplitude of 30 to 60° about the axis of rotation 42.
(18) Although this has not been represented, the chassis could also include a device rotating about a vertical axis, in order to follow the solar azimuth.
(19) Further, light rays R2 penetrate through the aperture 32 in the space 30, as has been depicted in
(20) According to another embodiment shown in
(21)
(22) Finally,
(23) According to another embodiment shown in
(24) Alternatively, the suspension means 16 could be solid, and designed to resist the pressure strain resulting from wind. However, a third improved embodiment consists in providing one or more reflective panels 58, of a structural nature or secured to a framework, as shown in
(25) Of course, various modifications can be provided by those skilled in the art to the invention just described, only by way of non-limiting examples.