PHOTOVOLTAIC SOLAR INSTALLATION HAVING BIFACIAL PANELS
20230246585 · 2023-08-03
Assignee
Inventors
- Javier GUERRERO PÉREZ (Molina de Segura, ES)
- Francisco Javier TORRANO CARRILLO (Molina de Segura, ES)
- Francisco Javier CARPIO OBRE (Molina de Segura, ES)
- Jose Alfonso TERUEL HERNANDEZ (Molina de Segura, ES)
Cpc classification
F24S25/50
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F24S23/77
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F24S50/20
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
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
International classification
Abstract
At least one solar tracker has a rotating structure, which supports bifacial photovoltaic solar panels, in order to provide the panels with a solar tracking rotation around, at least, a non-azimuth axis of rotation; and a control unit which commands the tracker; and an albedo reflector arranged on the ground on one side or on both sides of the solar tracker with respect to the non-azimuth axis of rotation, next to the tracker itself, wherein the albedo reflector in turn comprises a reflective membrane which reflects albedo radiation towards the panels. Albedo radiation is optimally harnessed.
Claims
1.-37. (canceled)
38. A photovoltaic solar installation having bifacial panels, the photovoltaic solar installation comprising: at least one solar tracker, the solar tracker comprising: a rotating structure, which supports bifacial photovoltaic solar panels, in order to provide the panels with a solar tracking rotation around, at least, one non-azimuth axis of rotation; and a control unit which commands the tracker; the photovoltaic solar installation additionally comprising an albedo reflector arranged on the ground, on one side or on both sides of the solar tracker with respect to the non-azimuth axis of rotation, next to the tracker itself, wherein the albedo reflector in turn comprises a reflective membrane which reflects albedo radiation towards the panels.
39. The photovoltaic solar installation of claim 38, wherein the membrane has a rectangular shape, with a length dimension, along the projection of the non-azimuth axis of rotation on the ground, and a width dimension, perpendicular to said projection, and smaller than the length dimension.
40. The photovoltaic solar installation of claim 39, wherein the width dimension comprises between 1.5 m and 3 m.
41. The photovoltaic solar installation of claim 38, wherein the membrane is arranged at a distance from the tracker no greater than 75 cm.
42. The photovoltaic solar installation of claim 38, wherein the membrane is arranged horizontally.
43. The photovoltaic solar installation according of claim 42, wherein the membrane has a length dimension which completely encompasses the tracker.
44. The photovoltaic solar installation of claim 42, wherein the membrane is arranged flush with the ground.
45. The photovoltaic solar installation of claim 42, further comprising ballasts on the perimeter of the membrane in order to fasten the membrane to the ground.
46. The photovoltaic solar installation of claim 42, wherein the membrane has the perimeter buried in the ground, in order to fasten the membrane to the ground.
47. The photovoltaic solar installation of claim 38, wherein the membrane is arranged inclined on the ground.
48. The photovoltaic solar installation of claim 47, wherein the tracker has supports aligned according to the projection of the non-azimuth axis of rotation, wherein the length of the membrane encompasses the length between end supports of the tracker.
49. The photovoltaic solar installation of claim 47, wherein the membrane comprises eyelets along at least a portion of the perimeter thereof, wherein the installation further comprises one or more cords which pass through one or more of the eyelets in order to fasten the membrane to vertical fastenings.
50. The photovoltaic solar installation of claim 49, wherein the vertical fastenings comprise the supports, the supports comprising first retention means, fastened to said supports in order to retain the cord or the cords.
51. The photovoltaic solar installation of claim 50, wherein the first retention means comprise hoops.
52. The photovoltaic solar installation of claim 51, wherein the cord or the cords are housed in the hoops.
53. The photovoltaic solar installation of claim 49, wherein the vertical fastenings comprise posts driven into the ground around the membrane, wherein the posts comprise second retention means in order to retain the cord or the cords.
54. The photovoltaic solar installation of claim 53, wherein the second retention means comprise first holes in order to enable the passage of the cord or the cords.
55. The photovoltaic solar installation of claim 49, comprising a single cord which runs like a seam along all the eyelets and in the course thereof is connected to the retention means.
56. The photovoltaic solar installation of claim 49, additionally comprising at least one cable which runs along the vertical fastenings.
57. The photovoltaic solar installation of claim 56, wherein the cable or cables are housed in the first fastening elements of the supports, wherein the posts have second holes crossed through by the cable or cables, the photovoltaic solar installation additionally including carabiners in order to connect the cable or the cables with the cord or the cords in intermediate positions between vertical fastenings.
Description
BRIEF DESCRIPTION OF THE FIGURES
[0008] The foregoing and other advantages and features will be more fully understood from the following detailed description of exemplary embodiments with reference to the accompanying drawings, which should be considered by way of illustration and not limitation, wherein:
[0009]
[0010]
[0011]
[0012]
[0013]
[0014]
DETAILED DESCRIPTION OF AN EXEMPLARY EMBODIMENT
[0015] Next, a detailed description of a preferred exemplary embodiment of the photovoltaic solar installation having bifacial panels object of the present invention is provided, with the help of the aforementioned
[0016]
[0017] Moreover, the possibilities in number and distribution of the albedo reflectors (5) are: one single albedo reflector (5) arranged under the tracker (3); and two albedo reflectors (5), one on one side, such as the east side, and the other on the other side, such as the west side, of the trackers (3). The albedo reflectors (5), as explained below, can be spaced from the tracker (3), or they can be next to the tracker (3), at a distance of zero or, at least, a minimum distance. In the case of having two albedo reflectors (5) per tracker (3), not separated from the tracker (3), the albedo reflectors (5) can be joined together, forming a continuous reflector which simplifies the device, as observed in
[0018] Each albedo reflector (5) comprises a membrane (6), preferably rectangular in shape. Each membrane (6) has a length dimension, along the non-azimuth axis of rotation, more specifically of the projection of the non-azimuth axis of rotation on the ground (7), related to the length of the tracker (3), as well as a width dimension, perpendicular to said projection, smaller than the length dimension, preferably between 1.5 m and 3 m. Preferably, the aforementioned dimensions of between 1.5 and 3 m correspond to 2P configurations, while, for 1P configurations, a width of around 1 m, for example, between 0.75 and 1.25 m, is preferred. The length and width dimensions are determined by taking into account a balance between the increase in albedo energy recovered, on the one hand, and the amount of material and space occupied, on the other hand.
[0019] Either geosynthetic materials, such as geomembranes, or technical textile materials are preferred for the membranes (6), as explained below. Likewise, the membranes (6) have a white colour, in order to optimise the reflection of albedo.
[0020] Each membrane (6) is preferably arranged at a distance from the tracker (3), considered as the horizontal distance to the axis of the tracker (3), which is not greater than 75 cm, preferably between 40 cm and 50 cm, all of this in order to optimise the bifacial gain of albedo and to not occupy an excessive space in the corridor (2), which would prevent, for example, the circulation of vehicles for maintenance of the trackers (3) and the panels (4). Other shorter distances are possible; in particular, as explained above, the distance can even be zero, in which case, for two albedo reflectors (5) arranged for the same tracker (3), both albedo reflectors (5) can share a common anchor, for the purpose of simplifying the device without affecting the production.
[0021] According to a first preferred embodiment, see
[0022] In the first embodiment, as illustrated in
[0023] Moreover, in the second embodiment, as shown in
[0024] In general, for all the described embodiments, a preferred example envisages the albedo reflectors (5) having width dimensions of around ⅝ of the width dimension of the tracker, in other words, between 0.6 and 0.65 times the width of the tracker.
[0025] As illustrated in
[0026] According to what was explained above, several possibilities for fastening the membrane (6) in the inclined case are indicated below.
[0027] The supports (9), such as the drives, can include first retention elements (13), such as hoops, fastened to the supports (9), by welding or by threading or by any other method, as shown in
[0028] For any of the previous examples, at least one cable (15) which runs along the vertical fastenings (9, 12) can further be included, as seen in