US2015316037A1PendingUtilityA1

Method and apparatus for electricity production by means of solar thermal transformation

Assignee: LOGOTHETIS GEORGIOSPriority: Apr 2, 2012Filed: Jul 15, 2015Published: Nov 5, 2015
Est. expiryApr 2, 2032(~5.7 yrs left)· nominal 20-yr term from priority
F24S 23/31F28D 2020/0047F24S 30/452Y02E10/47F24S 40/20F24S 20/20F24S 23/12F24S 2020/23F28D 20/0056F24S 2020/16F03G 6/068F24S 60/00Y02E10/46F24S 50/20F03G 6/121F03G 6/114F03G 6/071F24J 2/34F24J 2/085F24J 2/38Y02E10/40
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Claims

Abstract

We present an improved system for solar energy collection and electricity generation, comprising a solar collector apparatus, said apparatus comprising an array of square Fresnel lenses arranged in rows with modular energy absorption devices located below, wherein the array is mounted on arms at a low height above ground, the rows of said array are rotatable horizontally about their lengthwise axis, and the array is mounted on a rotatable base The system further comprises transportable insulated storage tanks containing a storage medium, Stirling engines and generators. The solar collection apparatus heats the storage medium, the storage medium supplies the Stirling engines with heat, and each engine is coupled to a generator. In a preferred embodiment, the system additionally comprises embedded controllers using real-time algorithms providing smart on-the-fly management of the system.

Claims

exact text as granted — not AI-modified
1 . A solar collector apparatus comprising;
 an array of Fresnel lenses arranged in rows, the Fresnel lenses having a focal length; and   one or more energy absorption devices located below each of the Fresnel lenses at a distance corresponding to their focal length; wherein   the rows of said array of Fresnel lenses are rotatable about a lengthwise horizontal axis of said rows; and wherein   the array of Fresnel lenses is rotatable about a vertical axis.   
     
     
         2 . The solar collector apparatus of  claim 1 ,
 wherein the Fresnel lenses are square shaped.   
     
     
         3 . The solar collector apparatus of  claim 1 ,
 wherein the array of Fresnel lenses is mounted on a base rotatable about a vertical axis; and   wherein the rotatable base forms an insulated lid of a storage tank for a heat conduction and storage fluid.   
     
     
         4 . The solar collector apparatus of  claim 1 ,
 wherein each energy absorption device comprises   a heat conductor;   a transparent plate mounted above the heat conductor; and   an insulated casing surrounding the heat conductor such that it is not covered by the transparent plate;   wherein both the heat conductor and the transparent plate have the shape of a segment of a circle having a center located above the transparent plate.   
     
     
         5 . The solar collector apparatus of  claim 4 ,
 wherein the heat conductor extends into a heat conduction and storage fluid through an opening in the insulated casing; and   wherein a part of the heat conductor submerged in the heat conduction and storage fluid is gill-shaped.   
     
     
         6 . The solar collector apparatus of  claim 1 ,
 wherein each energy absorption device comprises   a light guiding fiber having an end;   an adjusting component capable of adjusting the position of the end of the light guiding fiber; and   a casing surrounding the light guiding fiber and the adjusting component;   wherein the upper side of said casing is formed by a transparent plate having the shape of a segment of a circle having a center located above the transparent plate;   wherein the light guiding fiber extends to a heat conduction and storage medium through an opening in said casing.   
     
     
         7 . The solar collector apparatus of  claim 6 ,
 wherein each energy absorption device additionally comprises an automatic wipe-cleaning system for the transparent plate.   
     
     
         8 . The solar collector apparatus of  claim 6 ,
 comprising a rotation component capable of rotating the rows of Fresnel lenses about their lengthwise axis,   wherein said rotation component is linked to the adjusting component.   
     
     
         9 . A system for solar energy collection and electricity production, comprising
 the solar collector apparatus of  claim 1 ;   a thermal storage system having a thermal energy conduction and storage medium;   at least one transformation component capable of transforming thermal energy into electrical energy;   a first connection component capable of connecting the solar collector apparatus with the thermal storage system;   a second connection component capable of connecting the thermal storage system with the at least one transformation component; and   wherein the solar collector apparatus heats the thermal energy conduction and storage medium via the corresponding component; and   wherein the thermal energy conduction and storage medium supplies the at least one transformation component with thermal energy via the corresponding component.   
     
     
         10 . The system for solar energy collection and electricity production of  claim 9 ,
 wherein the transformation component comprises a heat engine employing a thermodynamic cycle,   wherein the heat engine is coupled to an energy generating component capable of generating electrical energy from mechanical energy.   
     
     
         11 . The system for solar energy collection and electricity production of  claim 10 ,
 wherein the heat engine is a Stirling engine.   
     
     
         12 . The system for solar energy collection and electricity production of  claim 9 ,
 wherein the thermal storage system has at least one insulated storage tank containing the heat conduction and storage medium, and   wherein this medium is a solid.   
     
     
         13 . The system for solar energy collection and electricity production of  claim 12 ,
 wherein the heat conduction and storage solid is graphite.   
     
     
         14 . The system for solar energy collection and electricity production of  claim 12 ,
 further comprising an exchanging component capable of exchanging the at least one insulated storage tank;   wherein the insulated storage tank is configured to be transportable.   
     
     
         15 . The system for energy collection and electricity production of  claim 9 ,
 wherein the thermal storage system has at least one insulated storage tank containing the heat conduction and storage medium, and   wherein this medium is a fluid.   
     
     
         16 . The system for solar energy collection and electricity production of  claim 15 ,
 wherein the heat conduction and storage fluid is molten salt.   
     
     
         17 . The system for solar energy collection and electricity production of  claim 15 ,
 comprising an exchanging component capable of exchanging the at least one insulated storage tank;   wherein the insulated storage tank is configured to be transportable.   
     
     
         18 . The system for solar energy collection and electricity production of  claim 9 ,
 wherein the thermal storage system has at least one insulated storage tank containing the heat conduction adn storage medium, and   wherein the first connection component is configured such that the at least one insulated storage tank is heated from below.   
     
     
         19 . The system for solar energy collection and electricity production of  claim 9 ,
 wherein the thermal storage system has at least one insulated storage tank containing the heat conduction and storage medium,   wherein the transformation component comprises a heat engine employing a thermodynamic cycle, and   wherein the second connection component is configured such that heat is transferred from the top of the at least one insulated storage tank to the at least one heat engine.   
     
     
         20 . The system for solar energy collection and electricity production of  claim 9 ,
 additionally comprising embedded controllers using real-time algorithms;   wherein said algorithms are able to consider weather forecast data.

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