RIGIDLY MOUNTED TRACKING SOLAR PANEL AND METHOD
20170104444 ยท 2017-04-13
Inventors
Cpc classification
H10F19/80
ELECTRICITY
F24S23/30
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
International classification
Abstract
A rigidly mountable solar panel includes lenses supported above a movable panel to focus sunlight onto photovoltaic material carried on the movable panel. Flexible supports space the movable panel at the focal points of the lenses, and a servo-mechanism enables movement of the movable panel to adjust position as the focal point moves with the sun. A light detector on the movable panel, sensing movement of the focal point signals the servo-mechanism to adjust the position of the movable panel automatically, thereby tracking the sun's movement. Concentrating sunlight on photovoltaic material selected to have higher conversion efficiency increases output. Segmenting the photovoltaic material so the output of the segments can be combined in a series-parallel relationship and using mirrors on the ends of the movable panel to reflect sunlight onto the segments allows electricity that is generated by the photovoltaic material to be more uniform during daylight.
Claims
1. A solar panel, comprising: a plurality of lenses, a lens of said plurality of lenses being curved to focus light; a movable panel; photovoltaic material carried on said movable panel, said photovoltaic material generating electric current when light is focused on said photovoltaic materials by said plurality of lenses; a plurality of supports connecting said plurality of lenses to said movable panel; and a servo-mechanism connected to said movable panel, said servo-mechanism moving said movable panel to maintain said light from said plurality of lenses on said photovoltaic material.
2. The solar panel of claim 1, wherein a support of said plurality of supports has flexible joints.
3. The solar panel of claim 2, wherein said support has an upper and a lower flexible joint.
4. The solar panel of claim 1, wherein said light is sunlight from the sun, and wherein said solar panel further comprises a detector on said movable panel, said detector being responsive to movement of a focal point with respect to said detector, said detector providing position information related to said movement of said focal point, and wherein said servo-mechanism is in communication with said detector, said servo-mechanism moving said movable panel to maintain said focal point on said detector.
5. The solar panel of claim 1, wherein said lens is a spherical lens.
6. The solar panel of claim 1, wherein said lens is a cylindrical lens.
7. The solar panel of claim 1, wherein said lens is a Fresnel lens.
8. The solar panel of claim 1, wherein said lens is made of optical plastic.
9. The solar panel of claim 1, wherein said movable panel has an end and wherein said solar panel further comprises a mirror located at said end of said movable panel to reflect said light onto said photovoltaic material.
10. The solar panel of claim 1, wherein a photovoltaic material is divided into a plurality of segments, a segment of said plurality of segments generating electricity when exposed to said light.
11. The solar panel of claim 10, wherein said plurality of segments is arranged in segment pairs and electricity generated by said segment pairs is combined in series.
12. A method for using a solar panel, said method comprising the steps of: placing a plurality of lenses on the earth oriented so that an axis of said plurality of lenses is oriented east and west; and tilting said plurality of lenses to match the tilt angle of the sun.
13. A solar panel, comprising: an array of lenses having an axis, said lenses being cylindrical lenses; a movable panel; photovoltaic material carried on said movable panel; flexible supports holding said movable panel in spaced relation with respect to said array of lenses so that sunlight shining on said array of lenses is focused on said photovoltaic material carried on said movable panel, said photovoltaic material generating an amount of electricity when said sunlight is focused thereon; and a servo-mechanism connected to said movable panel, said servo-mechanism moving said movable panel when said sunlight is not focused by said array of lenses on said photovoltaic material.
14. The solar panel of claim 13, wherein said array of lenses has a first end and a second end, and wherein said solar panel further comprises mirrors positioned at said first end and said second end to reflect sunlight onto said photovoltaic material.
15. The solar panel of claim 13, wherein said photovoltaic material is divided into segments, and wherein a segment of said segments produces electricity.
16. The solar panel of claim 15, wherein said segments are connected electrically in pairs.
17. The solar panel of claim 16, wherein said pairs of segments are connected electrically in series.
18. The solar panel of claim 13, further comprising a detector on said movable panel and in communication with said servo-mechanism, said detector receiving light from a lens of said plurality of lenses and responsive to movement of said light received by said detector and outputting a signal related to said movement, and wherein said servo-mechanism receives said signal from said detector and responds by moving said movable panel.
19. The solar panel of claim 13, further comprising: a fixed base; and rigid supports, and wherein said rigid supports hold said array of lenses with respect to said movable panel and said flexible supports hold said movable panel with respect to said fixed base and wherein said servo-mechanism moves said movable panel.
20. The solar panel of claim 13, further comprising: a fixed base; and rigid supports, and wherein said flexible supports support said movable panel with respect to said fixed base, and said rigid supports hold said array of lenses with respect to said fixed base, and wherein said servo-mechanism moves said movable base and said movable panel as said sunlight moves.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0016] Having thus described variations of the disclosure in general terms, reference will now be made to the accompanying drawings, which are not necessarily drawn to scale, and wherein:
[0017]
[0018]
[0019]
[0020]
[0021]
[0022]
[0023]
[0024]
[0025]
DETAILED DESCRIPTION
[0026] The solar panel as disclosed may be in the form of a solar panel 10 that may be rigidly mounted to a solid surface with the proper orientation and tilt, and commence to automatically track the sun's movement and to optimize the collection efficiency of the photovoltaic material being used. Solar panel 10 may be thin: 1.5 cm-2.5 cm thick, for example, and scalable. A solar panel 10 may be a square meter, for example, and light-weight. It may use less photovoltaic material so using higher efficiency concentrator photocell materials becomes cost-effective. Its lenses can be made of any optical glass or optical plastic and may be configured as Fresnel lenses.
[0027]
[0028] At the focal point of a cylindrical lens 14 on panel 18 is photovoltaic material 26. Because lens 14 is able, by virtue of its geometry and its distance from movable panel 18 to the sun, to focus the parallel rays of sunlight into a narrow beam, the area of photovoltaic material 26 may be smaller and therefore the quantity of photovoltaic material may be less. Accordingly, photovoltaic material of higher efficiency than silicon may be used despite higher cost per unit area.
[0029] Lens 14 may be spherical, and array 16 would then be made of spherical lenses, such as an array of rows and columns or a close-packed hexagonal array. A spherical lens 14 focuses light onto a small circle on photovoltaic material 26 on movable panel 18.
[0030] Flexible supports 22 are shown in
[0031] The ability of flexible supports 22 of solar panel 10 to enable movable panel 18 to be moved laterally allows the focal point of lens 14 to remain centered on photovoltaic material 26 despite movement of the sun. Servo-motor 30 moves movable panel 18 in tracking the sun. The amount of movement required is small. Lens 14 is placed so that its long dimension is parallel to the east-west path of the sun and tilted to match the sun's tilt axis with respect to the earth. Accordingly, most of the daily movement of the sun is accommodated by the initial positioning of solar panel 10. The position of the sun will change from being directly overhead at noon based on latitude. Accordingly, a residual amount of solar tracking is required.
[0032] This adjustment is illustrated by comparing
[0033]
[0034] Photovoltaic material 26 may be divided into segments 36 that may be equal in length. Segments 36 are paired as shown in
[0035]
[0036] In
[0037]
[0038]
[0039] In the three aspects of the invention shown in
[0040] When introducing elements of the present disclosure or exemplary aspects or embodiment(s) thereof, the articles a, an, the and said are intended to mean that there are one or more of the elements. The terms comprising, including and having are intended to be inclusive and mean that there may be additional elements to those listed. Although this disclosure has been described with respect to specific embodiments, the details of these embodiments are not to be construed as limitations.