REFLECTIVE SOLAR PHOTOVOLTAIC SYSTEM
20220190780 · 2022-06-16
Inventors
Cpc classification
B63B2035/4453
PERFORMING OPERATIONS; TRANSPORTING
B63B35/44
PERFORMING OPERATIONS; TRANSPORTING
International classification
B63B35/44
PERFORMING OPERATIONS; TRANSPORTING
Abstract
The present invention relates to a solar photovoltaic system suitably used for agriculture or used on water and including a reflector for reflecting sunlight.
According to the present invention, a solar photovoltaic system includes a solar cell panel and a reflector spaced a predetermined distance from the solar cell panel. Here, at least a portion of a reflection surface of the reflector, which faces the solar cell panel, has a convexly curved surface.
Claims
1. A solar photovoltaic system comprising: a solar cell panel; and a reflector spaced a predetermined distance from the solar cell panel, wherein at least a portion of a reflection surface of the reflector, which faces the solar cell panel, has a convexly curved surface.
2. The solar photovoltaic system of claim 1, wherein a bottom surface of the reflector is attached adjacent to the solar cell panel.
3. The solar photovoltaic system of claim 1, further comprising a support, wherein the solar cell panel and the reflector are disposed on the support.
4. The solar photovoltaic system of claim 3, wherein the solar photovoltaic system is installed on farmland in which crops are grown.
5. The solar photovoltaic system of claim 4, wherein the solar cell panel has an inclination angle to the ground in a range from 60° to 120°.
6. The solar photovoltaic system of claim 4, wherein the solar cell panel has an inclination angle to the ground in a range from 80° to 100°.
7. The solar photovoltaic system of claim 4, wherein the reflector has a height equal to or less than that of the solar cell panel.
8. The solar photovoltaic system of claim 1, further comprising: a floating structure disposed below the solar cell panel and the reflector to allow the solar cell panel and the reflector to float on water.
9. The solar photovoltaic system of claim 8, further comprising: a breakwater structure disposed on the floating structure to prevent waves from colliding with the solar cell panel, wherein the reflector is formed on the breakwater structure.
10. The solar photovoltaic system of claim 8, wherein the floating structure comprises the breakwater structure.
11. The solar photovoltaic system of claim 9, wherein the reflector is attached to the breakwater structure in an integrated manner.
12. The solar photovoltaic system of claim 1, wherein the reflector is inclined so that an internal angle between a bottom surface of the reflector and a bottom surface of the solar cell panel is in a range from 60° to 150°.
13. The solar photovoltaic system of claim 2, wherein the reflector is inclined so that an internal angle between a bottom surface of the reflector and a bottom surface of the solar cell panel is in a range from 60° to 150°.
14. The solar photovoltaic system of claim 3, wherein the reflector is inclined so that an internal angle between a bottom surface of the reflector and a bottom surface of the solar cell panel is in a range from 60° to 150°.
15. The solar photovoltaic system of claim 8, wherein the reflector is inclined so that an internal angle between a bottom surface of the reflector and a bottom surface of the solar cell panel is in a range from 60° to 150°.
Description
BRIEF DESCRIPTION OF THE FIGURES
[0024] The accompanying drawings are included to provide a further understanding of the inventive concept, and are incorporated in and constitute a part of this specification. The drawings illustrate embodiments of the inventive concept and, together with the description, serve to explain principles of the inventive concept. In the drawings:
[0025]
[0026]
[0027]
[0028]
[0029]
DETAILED DESCRIPTION
[0030] Hereinafter, the configuration and effects of embodiments of the present invention will be described with reference to the accompanying drawings.
[0031] Hereinafter, detailed descriptions related to well-known functions or configurations will be ruled out in order not to unnecessarily obscure subject matters of the present invention. Furthermore, when it is described that one comprises (or includes or has) some elements, it should be understood that it may comprise (or include or has) only those elements, or it may comprise (or include or have) other elements as well as those elements if there is no specific limitation.
First Embodiment
[0032]
[0033] Referring to
[0034] The support 110 is built approximately perpendicular to farmland in which crops are grown and has a bar shape made of a material such as metal and concrete. The support 110 has one end firmly fixed to a fixture such as concrete installed on the farmland. The support 110 may be made of a circular or polygonal pipe member so that the holder 120 coupled to the support 110 is easily coupled with the solar cell panel 130.
[0035] Although the independent pole-type support is suggested in the first embodiment of the present invention, various types of supports such as a truss type support may be used.
[0036] The holder 120 is a plate-type member installed perpendicularly to the support 110 at a position spaced a predetermined distance from an upper end of the support 110. Various well-known coupling units such as a bolt and a nut may be used as a coupling unit for fixing the holder 120 to the support 110.
[0037] The solar cell panel 130 is a module for performing power generation by sunlight incident thereto and configured such that one or a plurality of solar cells are fixed in an approximately rectangular frame for fixing the solar cell. The solar cell panel 130 includes an output terminal for transmitting generated electricity to the outside.
[0038] The solar cell panel 130 has a lower frame fixed to the support 120 through the coupling unit such as a bolt and an upper frame fixed to the support 110 through the coupling unit such as a bolt. Here, the solar cell panel 130 is installed approximately perpendicular to the ground at a high angle. Although the solar cell panel 130 is installed perpendicular to the ground in the first embodiment of the present invention, the solar cell panel 130 may be installed to be slightly inclined within a range from 60° to 120° as described above. When the solar cell panel 130 having a large solar light shielding area is installed at a high angle to the ground, a light shielding rate to crops grown below the solar cell panel 130 may be remarkably reduced.
[0039] The reflector 140 is configured such that a reflective layer for reflecting the sunlight is formed on one surface of a substrate having a plate shape having a convexly curved upper portion and a flat lower portion on the drawing. The lower portion of the reflector 140 is coupled to the holder 120 by using the coupling unit such as a bolt and inclined at a predetermined angle to the solar cell panel 130.
[0040] Here, the reflector 140 may be installed so that an internal angle between the flat lower portion of the reflector 140 and a lower portion of the solar cell panel 130 is in a range from 60° to 150°. The range of the internal angle is in the range from 60° to 150° because a power generation efficiency decreases when the angle is less than 60° and a light shielding rate increases as the light shielding area of the reflector 140 increases when the angle is greater than 150°.
[0041] Although the reflector having the curved upper portion is described in this embodiment, an effect of reducing the light shielding rate may be obtained when the curved shape is applied to top and bottom surfaces or left and right surfaces, or the reflector has an overall curved shape (including a semi-spherical shape). Thus, the embodiment includes a case when the curved shape is applied to the entire reflector.
[0042] Also, the reflector 140 may have a height equal to or less than that of the solar cell panel 130. When the height of the reflector 140 is greater than that of the solar cell panel 130, an amount in which sunlight reflected at a high angle from the upper portion of the reflector 140 is not incident to the solar cell panel 130 increases, and the light shielding area increases.
[0043]
[0044] Since the curved reflector of the first embodiment has the convexly curved upper portion as shown in
[0045] Thus, reflected light that is reflected at a high angle from the curved upper portion of the reflector heads toward the upper portion of the solar cell panel 130, and reflected light that is reflected from the flat lower portion of the reflector heads toward the lower portion of the solar cell panel 130 although the reflector is disposed adjacent to the solar cell panel 130. Through this, although the reflector has a size smaller than that of the panel, sunlight may be reflected to an entire surface of the panel having a high inclination angle, shadow generated by the panel and the reflector may be minimized, and a low light shielding rate may be maintained.
[0046]
[0047] As illustrated in
Second Embodiment
[0048]
[0049] Referring to
[0050] The floating structure 210 has an approximately cuboid shape and is manufactured by a filament winding method. In general, the floating structure 210 may maintain a floating function for a predetermined period even when the floating structure is damaged by an external impact by filling styrofoam particles therein.
[0051] The breakwater structure 220 is a structural member made of an approximately plate type member and having excellent corrosion resistance and great strength per unit weight. The breakwater structure 220 is preferably made of pultruded fiber reinforced polymeric plastic (PFRP). The breakwater structure 220 is inclined at a predetermined angle to the solar cell panel 240 for preventing so-called wave overtopping by which a wave generated from water surface overflows to the solar cell panel to damage the solar cell panel. Also, a surface of the breakwater structure 220, which faces the solar cell panel 240, has an upper portion having a convexly curved surface and a lower portion having a flat surface.
[0052] Although the breakwater structure having the curved upper portion is described in this embodiment, an effect of reducing the light shielding rate may be obtained when the curved shape is applied to top and bottom surfaces or left and right surfaces, or the breakwater structure has an overall curved shape (including a semi-spherical shape). Thus, the embodiment includes a case when the curved shape is applied to the entire breakwater structure.
[0053] The holder 230 is a support structure for fixing the solar cell panel 240 onto the floating structure 210 and made of a pipe material having a bar shape.
[0054] The solar cell panel 240 is a module for performing power generation by sunlight incident thereto and configured such that one or a plurality of solar cells are fixed in an approximately rectangular frame for fixing the solar cell. The solar cell panel 240 includes an output terminal for transmitting generated electricity to the outside.
[0055] The solar cell panel 240 is inclined at a predetermined angle to the water surface by the holder 230.
[0056] The reflector 250 is attached to the surface of the breakwater structure 220, which faces the solar cell panel 240. The reflector 250 may include a substrate including non-metal and metal materials such as a polymer film and a stainless steel thin plate, a resin film formed on the substrate, a reflection layer formed on the resin film, and a protection layer formed on the reflection layer. The reflector 250 may be coupled onto the breakwater structure 220 by an attaching, bonding, or coupling method.
[0057] When the reflector 250 having the curved shape is installed to reflect sunlight to the solar cell panel 240, the reflector 250 may produce reflected light at a high angle and a low angle to the entire surface of the solar cell panel 240 although a size of the reflector 250 is reduced to improve a power generation amount. That is, as a result of applying the reflector including the curved shape and the flat shape to the solar cell panel installed at a vertical inclination angle, it is checked that a daily power generation amount increases in a range from 5.7% to 13.5% as a solar radiation amount is varied in comparison with a case when the solar cell panel is installed at an angle of 30° without the reflector.
[0058] The solar photovoltaic system according to an embodiment of the present invention may maintain the power generation amount and simultaneously reduce the light shielding rate to the farmland by installing the solar cell panel at the high angle to the ground and installing the reflector to be adjacent to the solar cell panel. Thus, the production amount of the crops per unit area and/or the power generation amount may increase.
[0059] Also, the solar photovoltaic system according to another embodiment of the present invention may protect the solar cell panel and simultaneously improve the power generation amount by forming the reflector on the breakwater structure for protecting the solar cell panel.
[0060] Although the embodiments of the present invention have been described, it is understood that the present invention should not be limited to these embodiments but various changes and modifications can be made by one ordinary skilled in the art within the spirit and scope of the present invention as hereinafter claimed.