DIRECTIONAL SOLAR PANEL ASSEMBLY
20190353405 ยท 2019-11-21
Assignee
Inventors
Cpc classification
F24S30/452
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Y02P60/12
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
F24S23/12
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
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
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
Y02A40/25
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
F24S30/452
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A solar panel assembly (10) having a stand (30), a solar panel platform (20, 120) and one or more directional mechanisms (40; 404, 414) connecting the stand (30) with the solar panel platform. One or more optical elements (50; 161, 162) are provided at all or portions of the edges (24) of the platform around the solar panel directing the light under the platform (20, 120) or towards its underside (22), and then to the ground (31) under or near the solar panel assembly. One or more of the optical elements (161, 162) are mounted on an inner side of a profile (160). The profile (160) is connected via a web (164) to the solar panel platform (120) and the web is connected with a drive within the platform. The connection of the web extends the profile from the platform creating a passage (124) between the profile and the platform.
Claims
1-15. (canceled)
16. A solar panel assembly (10) comprises a stand (30) to be anchored on or in the ground (31), a solar panel platform (20, 120) oriented to the skies and one or more directional mechanisms (40; 404, 414) connecting an upper free end of the stand (30) with the solar panel platform (20, 120), allowing a solar panel (121) on the platform (20, 120) to be directed in at least one favorable orientation towards the sun, characterized in that one or more optical elements (50; 161, 162) are provided at all or at a majority of portions of the edges (24) of the platform (20, 120) around the solar panel directing the gathered light under the platform (20, 120) or towards its underside (22), and then to the ground (31) under or near the solar panel assembly (10), wherein one or more of the optical elements (161, 162) are mounted on an inner side of a profile (160), wherein the profile (160) is connected via at least one web (164) to the solar panel platform (120), wherein at least one web (164) is connected with a drive within the platform (120), wherein the connection of at least one web (164) is adapted to extend the profile (160) from the platform (120) creating a passage (124) between the profile (160) and the platform (120).
17. The solar panel assembly (10) according to claim 16, wherein an outer surface (262) of the body of a platform substructure (122), on which the solar panel (121) is mounted, facing the inner surface of the profile (160) is complementary to this inner surface so that the inner surface of the profile (160) is mainly in direct two-dimensional contact with this outer surface (262) when the profile (160) is fully retracted.
18. The solar panel assembly (10) according to claim 16, wherein an upper section (162) of the profile (160) is curved, especially covering an angle of 60 to 90 degrees, and wherein a lower section of the profile (160) is a plane profile (161) having an angle between 30 and 60 degrees to the plane of the platform surface, optionally having a raised gutter edge (163) at its lower free edge.
19. The solar panel assembly (10) according to claim 16, characterized in that a plurality of light sources (70, 170) are provided at the underside (22) or at the substructure (122) of the solar panel platform (20, 120) directed towards the ground (31).
20. The solar panel assembly (10) according to claim 19, wherein the light sources (70, 170) are positioned along the surrounding edges (24) of the solar panel platform (20) or are positioned in a predetermined pattern on the underside (22) or substructure (122) of the solar panel platform (20, 120), especially in the centre of the underside (22) or of the substructure (122).
21. The solar panel assembly (10) according to claim 19, wherein the light sources are LEDs (70, 170), especially LED's tuneable to a predetermined grow light wavelength adjusted by a control unit or pretuned wavelengths.
22. The solar panel assembly (10) according to claim 16, wherein the solar panel platform (20, 120) has at least one exterior edge (24) comprising at least one rainwater gutter (60, 163) at the at least one edge of the solar panel platform (20, 120) and at least one distribution element (62, 64), wherein the distribution element (62, 64) comprises one end (63) being connected with the at least one rainwater gutter (60, 163) and the other end being adapted to deliver rainwater collected in the gutter (60, 163) to a receiver inside the stand (30) or to the ground (31) below.
23. The solar panel assembly (10) according to claim 22, wherein the rainwater gutter (60, 163) is connected to a conduit (61) passing the thickness of the solar panel platform (20) connected to a flexible conduit (62) as distribution element.
24. The solar panel assembly (10) according to claim 16, further comprising a battery which can be charged by the solar panel and driving the directional mechanisms (40; 404, 414).
25. Array of solar panel assemblies (10) comprising a plurality of solar panel assemblies (10) according to claim 16, positioned in rows, wherein opposing edges (24) of solar panel assemblies (10) of adjacent rows are provided at a minimum distance less than 80% of the width of the adjacent solar panel assemblies (10) creating agricultural pathways (85) between the rows of stands (30) under the solar panel platforms (20, 120).
26. Array of solar panel assemblies (10) according to claim 25, wherein the minimum distance between opposing edges (24) of solar panel assemblies (10) of adjacent rows is less than a percentage of the width of the adjacent solar panel assemblies (10) taken from the group 60%, 40%, 20%, 10% and 5%.
27. Array of solar panel assemblies (10) according to claim 25, wherein the minimum distance as predetermined between rows also applies to the distance between adjacent columns of the array.
28. Array of solar panel assemblies (10) according to claim 25, wherein electrical and/or communication lines (81) are interconnecting all solar panel assemblies (10) and/or electrical and/or communication lines (82) are connecting the array with an external system.
29. Array of solar panel assemblies (10) according to claim 25, wherein each solar panel assembly (10) comprises a wireless communication means, especially wherein each communication means is configured to be an access point of a distributed computer network.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0020] Preferred embodiments of the invention are described in the following with reference to the drawings, which are for the purpose of illustrating the present preferred embodiments and not for the purpose of limiting the same. In the drawings,
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DESCRIPTION OF PREFERRED EMBODIMENTS
[0041] The following describes in detail embodiments of the present disclosure. Examples of the embodiments are shown in the accompanying drawings, where reference signs that are the same or similar represent same or similar components or components that have same or similar functions.
[0042]
[0043] In a different embodiment (not shown in the drawings) the solar panel could comprise a passivated emitter rear contact solar cell, a so-called PERC cell, where the upper surface 21 would be the primary collector and the lower surface, i.e. underside 22 the secondary collector or any other collector whether dual faced or arranged back-to-back.
[0044] An arm 403 projects from the attachment point 23 and connects the platform 20 with a first mechanism 404 for adjusting the tilt of the platform 20, here illustrated as a first drive motor 406 actuatable to rotate the arm 403 and therefore the platform 20 around a horizontal axis 410. The platform 20 is further operably connected to a second mechanism 414 comprising a second drive motor 416 actuatable to rotate the first mechanism 404 and therefore the platform 20 about a vertical axis 420. The drive motor 416 of the embodiment of
[0045]
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[0047] The solar panel platform 20 comprises preferably an oleophilic layer 11 at its upper surface 21, whose function it is to provide molecular properties on the surface of the panel decreasing active particle engagement, i.e. dust, oil and water based particles glide off the surface without adhesion. A clear polymer substrate or glass panel 12 covers the solar panel 25 itself. Within this embodiment, the solar panel 25 provides as such the platform structure, but it could also be included in a frame connecting the optical elements 50 at the edges 24 together and/or an optical element 55 at the centre. The clear polymer or glass 12 comprises at the edges 24 a recess filled completely by the light gathering lenses 52 being long profiles with the cross-section as shown in
[0048] The first light diverting elements 50 are provided preferably essentially along the entire respective edge 24 of the platform 20 on the left and on the right side of the cross-section view of
[0049] Most of the gathered light leaving the light diverting element 50 through the surface 54 is directed onto the reflecting light diverting element 55 provided near the center of the underside 22 of the platform 20. The light reflected by its reflecting surface 56 is directed to the ground. In this context center of the underside 22 can either mean a central part with e.g. two times two LED's (as light generating elements, i.e. light sources) 70 and a torus-like reflecting element 55, or the light gathering elements 57 and 58 are only provided at opposite edges of the platform and redirect the light in parallel beams 102 (cf.
[0050] On the left side of
[0051] It is also possible to change the reflecting angle of the reflecting surface 51 for a direct illumination of the ground 31 shadowed by the platform. When the platform 20 is tilted and turned, the beam path between the element 50 and 55 remains the same, but the plane of the platform in view of the ground changes and the light will be directed partly underneath of one of the eight nearby adjacent solar assemblies. It is possible that an array of platforms is acceded or staggered rather than being regularly arranged with one assembly simply behind the other.
[0052]
[0053] According to the embodiment of
[0054] The reflected beam 102 is reflected again at the reflecting surface 56 (cf.
[0055] The LED's 70 receive the necessary energy from the solar panel and/or a battery or a battery pack which is charged by the solar panel. The battery is preferably provided in the stand 30. The control unit predetermines via sensing elements that measure light frequency and intensity the grow light control in hours and intensity. Additionally, the present embodiment can provide an efficient energy use in choosing an LED illumination of the ground 31 emitting only in a bandwidth selection based on the needs of the plants, whereas the incoming light of the sun covers a broader bandwidth, thus increasing the light use efficiency. The embodiment of
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[0058] For an efficient use of such ground areas covered by a plurality of solar panel assemblies 10, it is possible to include a battery in every solar panel assembly creating a distributed system. On the other hand, it is possible to provide electrical lines 81 connecting the array of solar panel assemblies in between and with an external connection 82 with the external world. These lines 81 and 82 usually comprise an electric connection for battery management and for data exchange between different array elements. Since usually agricultural use is executed in lines as shown by the two parallel lines 85, the electric lines 81 and 82 can be positioned parallel to the agricultural plough lines 85. Water distribution lines extend from the stands 30 to distribute gathered water over the entire surface.
[0059] An array of isolated solar panel assemblies 10 can comprise wireless communication means. Then each solar panel assembly 10 can be an access point of a distributed computer network, not needing further infrastructure.
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[0065] In the specific example shown in the Figures, the profiles 160 are designed as gutter and reflective profiles 160 provided on two opposite sides of platform 120, especially sides which can be tilted towards the ground. Each gutter and reflective profile 160 comprises a lower plane profile section 161, which can be reflective on the inner side, and an upper curved section 162. The upper curved section 162 is complementary to the adjacent outer surface of substructure 122 in order to provide almost no cavity and slot between the upper curved section 162 and the substructure 122 in the retracted position of platform 120. A lower edge 163 of the lower plane profile section 161 is raised over the plane surface and can retain water from directly falling down to the ground and, thus, be used as gutter. It is noted that the profile 160 is attached to the substructure 122 by two rods 164 fixedly connected at both ends of the profile 160. Both surfaces 161 and 162 can be provided with the structure as shown in
[0066] The curved surface of the upper curved section 162 can cover an angle of 60 to 90 degrees, wherein the plane profile 161 can have an angle between 30 and 60 degrees to the plane of the upper platform surface.
[0067] The rods 164 are slidably integrated into the substructure 122. One or more drives (not shown) are connected to the rods, e.g. being a worm at an inner end, to push them out of the substructure 122 to extend the gutter and reflective profile 160 to provide a space between the upper curved section 162 and the substructure 122. The function will be described in connection with the further drawings. When strong winds are blowing, then the drives are activated to bring the gutter and reflective profile 160 close to the substructure 122, thus preventing the wind forces from attacking the solar panel platform in its extended position.
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[0071] The inner upper section (cf. its outer surface 262 shown in
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TABLE-US-00001 LIST OF REFERENCE SIGNS 10 solar panel assembly 11 oleophilic layer 12 clear polymer or glass 20 platform 21 upper surface 22 lower surface, underside 23 attachment point 24 edge of the platform 30 stand 31 ground 40 universal joint 50 integrated optical elements at the edge 51 reflecting surface 52 light gathering lens 53 arcuate upper entry surface 54 lower perpendicular outgoing surface 55 optical element at the centre 56 reflecting surface 57 triangular reflecting profile 58 trapezoid profile 60 gutter wall 61 conduit line/borehole 62 flexible line 63 funnel attachment 64 upper line 65 line junction 70 light source, LED 71 light diffracting lens 81 electric line 82 external connection 85 agricultural line 101 incoming light beam 102 reflected beam 103 light beam directed to the ground 104 main reflecting surface 105 adjacent acute angled surface 106 intermediate reflected beam 109 detail view of a grated reflecting surface 120 solar panel platform 121 solar panel 122 substructure 123 central functional ridge 124 passage 125 lower surface of substructure 126 edge of substructure 127 bottom surface 128 reinforcing web 130 opening 156 grated reflecting surface 160 extendable gutter and reflective profile 161 lower plane profile 162 upper curved section of the profile 163 lower edge of the profile 164 side rod, connection web 165 outlet 170 LED stripe 256 reflecting border surface 262 substructure curved section 403 arm 404 first mechanism 406 first motor 410 horizontal axis 414 second mechanism 416 second motor 420 vertical axis