US2005091979A1PendingUtilityA1

Concentrating solar energy receiver

Priority: Aug 13, 2002Filed: Oct 22, 2004Published: May 5, 2005
Est. expiryAug 13, 2022(expired)· nominal 20-yr term from priority
Y02E10/52F24S 30/452Y02E10/46F24S 20/20F24S 23/79H10F 77/488F24S 23/74Y02T10/7072Y02E10/40F24S 23/71
50
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Claims

Abstract

There is disclosed herein a concentrating solar energy receiver comprising a primary parabolic reflector having a center and a high reflectivity surface on a concave side of the reflector and having a focal axis extending from the concave side of the reflector and passing through a focal point of the primary parabolic reflector; and a conversion module having a reception surface wherein the reception surface is spaced from the focal point by a predetermined distance and disposed to receive a predetermined cross section of radiant solar energy reflected from the concave side of the primary parabolic reflector for conversion to electrical energy in the conversion module. In one aspect, the conversion module includes a reception surface comprising a planar array of at least one photovoltaic solar cell. In another aspect, the conversion module includes a reception surface coupled to a thermal cycle engine. The mechanical output of the thermal cycle engine drives an electric generator.

Claims

exact text as granted — not AI-modified
1 . A concentrating solar energy receiver, comprising: 
 a primary parabolic reflector having a principal axis and a center and a high reflectivity surface on a concave side of said reflector and having a focal axis extending from said center of said concave side of said reflector and passing through a focal point of said primary parabolic reflector; and    a conversion module having a reception surface wherein said reception surface is spaced from said focal point by a distance and disposed to receive a cross-section of radiant solar energy, the conversion module converting a first portion of the radiant solar energy to a first type of energy and converting a second portion of the radiant solar energy to a second purpose.    
     
     
         2 . The concentrating solar energy receiver of  claim 1 , wherein the second purpose further comprises a second type of energy.  
     
     
         3 . The concentrating solar energy receiver of  claim 1 , wherein the first type of energy and the second type of energy are of different and are each of at least one of the types of electrical energy, optical energy, mechanical energy, kinetic energy, chemical energy, thermal energy, molecular energy and quantum energy.  
     
     
         4 . The concentrating solar energy receiver of  claim 1 , wherein the second purpose further comprises heating a fluid or gas.  
     
     
         5 . The concentrating solar energy receiver of  claim 1 , wherein the first type of energy is electrical energy and the second purpose is heating a liquid.  
     
     
         6 . The concentrating solar energy receiver of  claim 1 , wherein the second purpose further comprises dissipating the radiant solar energy.  
     
     
         7 . A concentrating solar energy receiver, comprising: 
 a primary parabolic reflector having an offset center and a high reflectivity surface on a concave side of said reflector and having a focal axis extending from said offset center of said concave side of said reflector and passing through a focal point of said primary parabolic reflector; and    a conversion module having a reception surface wherein said reception surface is spaced from said focal point by a distance and disposed to receive a cross-section of radiant solar energy at the restricted reflectivity reflected from said concave side of said primary parabolic reflector.    
     
     
         8 . The receiver of  claim 7 , wherein said primary parabolic reflector comprises a reflective parabolic configuration of a material selected from the group consisting of a metal, a polymer, a fiberglass composite, a glass, a ceramic and any composite or combination of these.  
     
     
         9 . The receiver of  claim 8 , wherein said primary parabolic reflector comprises an outline, when viewed from said principle axis, selected from the group consisting of circular, oval, elliptical, rectangular and any regular polygon or other closed plane figure.  
     
     
         10 . The receiver of  claim 7 , wherein said primary parabolic reflector comprises means for dissipating radiant energy which is not reflected by said primary parabolic reflector, that which is substantially attenuated.  
     
     
         11 . The receiver of  claim 7 , further comprising a frame for supporting said primary parabolic reflector with respect to the earth and for supporting said primary parabolic reflector and said conversion module together in an assembly having a relationship.  
     
     
         12 . The receiver of  claim 11 , wherein said frame comprises: 
 a base mounted in a fixed relationship with the earth;    a first member for supporting said primary parabolic reflector and said conversion module in said relationship;    a second member attached to said assembly and operable for providing azimuthal orientation of said assembly;    a third member attached to said second member and to said assembly and operable for providing elevation orientation of said assembly.    
     
     
         13 . The receiver of  claim 12 , wherein said frame further comprises: 
 a motor drive assembly in each said second and third member for providing said orientation; and    a control system for controlling each said motor drive assembly.    
     
     
         14 . The receiver of  claim 7 , wherein said conversion module comprises: 
 means for converting solar energy to electric energy; and    a solar energy sensor coupled with said means for converting;    wherein said solar energy sensor includes said reception surface and said reception surface is configured as a plane surface for receiving incident solar energy thereupon.    
     
     
         15 . The receiver of  claim 7 , wherein said conversion module having a reception surface comprises a planar array of a plurality of photovoltaic solar cells wherein each cell is disposed such that its solar energy incident surface forms part of said reception surface.  
     
     
         16 . The receiver of  claim 15 , wherein each of said photovoltaic solar cells comprise a semiconductor device.  
     
     
         17 . The receiver of  claim 16 , wherein said semiconductor device comprises a triple junction solar cell formed of germanium, gallium-arsenide and gallium-indium-phosphorus semiconductor materials.  
     
     
         18 . The receiver of  claim 17 , wherein said photovoltaic solar cell provides a conversion bandpass substantially throughout the range of 350 nanometers to 1600 nanometers.  
     
     
         19 . The receiver of  claim 7 , wherein said conversion module having a reception surface comprises a thermal cycle engine having a thermal input coupled to said reception surface and a mechanical output coupled to an electric generator.  
     
     
         20 . The receiver of  claim 19 , wherein said thermal cycle engine is a Stirling engine.  
     
     
         21 . The receiver of  claim 7 , further configured to selectively admit said radiant solar energy to said conversion module such that an admittance bandpass of said receiver to said radiant solar energy substantially matches a conversion bandpass of said conversion module.  
     
     
         22 . The receiver of  claim 21 , wherein said admittance bandpass of said receiver is provided by said primary parabolic reflector further comprising a filter for allowing reflection of wavelengths within said conversion bandpass of said conversion module and impeding reflection of wavelengths outside said conversion bandpass.  
     
     
         23 . The receiver of  claim 22 , wherein said filter comprises a covering applied to said high reflectivity surface of said primary parabolic reflector for impeding said reflection of wavelengths outside said conversion bandpass.  
     
     
         24 . The receiver of  claim 23 , wherein said covering is provided by a process selected from the group consisting of laminating a filter material to said reflector, chemically doping a finish of said reflector, adding a filter element to said reflector and applying a coating material to said reflector.  
     
     
         25 . The receiver of  claim 24 , wherein said filter comprises a sheet of filtering material supported between said high reflectivity surface of said primary parabolic reflector and said reception surface of said conversion module.  
     
     
         26 . The receiver of  claim 23 , wherein said primary parabolic reflector is configured such that said high reflectivity surface allows reflection of wavelengths within said conversion bandpass and impedes reflection of wavelengths outside said conversion bandpass.  
     
     
         27 . The receiver of  claim 7 , wherein the offset focal point maintains the parabolic reflector at an angle to minimize a collection of a material in the parabolic reflector.  
     
     
         28 . The receiver of  claim 7 , wherein said high reflectivity surface of said primary parabolic reflector reflects said selected portion of said spectrum.  
     
     
         29 . The receiver of  claim 28  wherein said selected portion of said spectrum comprises at least substantially all wavelengths in the range of a visible light spectrum.  
     
     
         30 . The receiver of  claim 28 , wherein said selected portion of said spectrum comprises at least substantially all wavelengths in the range of a ultraviolet light spectrum.  
     
     
         31 . The receiver of  claim 28  wherein said selected portion of said spectrum comprises at least substantially all wavelengths in the range of a infrared light spectrum.  
     
     
         32 . A concentrating solar energy receiver, comprising: 
 a primary parabolic reflector having an offset center and a high reflectivity surface on a concave side of said reflector and having a first focal axis extending from said offset center of said concave side of said reflector and passing through a focal point of said primary parabolic reflector;    a secondary parabolic reflector having a second focal axis aligned along said first focal axis, and disposed with a convex side having a high reflectivity surface facing said concave side of said primary parabolic reflector and spaced from said focal point along said first focal axis by a distance, for reflecting radiant solar energy reflected from said primary parabolic reflector, in substantially parallel rays toward a central portion of said primary parabolic reflector; and    a conversion module having a reception surface wherein said reception surface is positioned along said first focal axis within said central portion of said primary parabolic reflector and disposed to receive said radiant solar energy reflected from said secondary parabolic reflector.    
     
     
         33 . The receiver of  claim 32 , wherein said primary parabolic reflector comprises a reflective parabolic configuration of a material selected from the group consisting of a metal, a polymer, a fiberglass composite, a glass, a ceramic and any composite or combination of these.  
     
     
         34 . The receiver of  claim 33 , wherein said primary parabolic reflector comprises an outline, when viewed from said principle axis, selected from the group consisting of circular, oval, elliptical, rectangular and any regular polygon or other closed plane figure.  
     
     
         35 . The receiver of  claim 34 , wherein said high reflectivity surface reflects substantially all wavelengths of solar energy radiation incident thereupon.  
     
     
         36 . The receiver of  claim 34 , wherein said high reflectivity surface of said primary parabolic reflector reflects said selected portion of said spectrum.  
     
     
         37 . The receiver of  claim 36  wherein said selected portion of said spectrum comprises at least substantially all wavelengths in the range of a visible light spectrum.  
     
     
         38 . The receiver of  claim 36 , wherein said selected portion of said spectrum comprises at least substantially all wavelengths in the range of a ultraviolet light spectrum.  
     
     
         39 . The receiver of  claim 36  wherein said selected portion of said spectrum comprises at least substantially all wavelengths in the range of a infrared light spectrum.  
     
     
         40 . The receiver of  claim 32 , wherein said primary parabolic reflector comprises means for dissipating radiant energy which is not reflected by said primary parabolic reflector and attenuated thereby.  
     
     
         41 . The receiver of  claim 32 , wherein said primary parabolic reflector further comprises a frame for supporting said primary parabolic reflector with respect to the earth and for supporting said primary parabolic reflector and said conversion module together in an assembly having a relationship.  
     
     
         42 . The receiver of  claim 41 , wherein said frame comprises: 
 a base mounted in a fixed relationship with the earth;    a first member for supporting said primary parabolic reflector and said conversion module in said relationship;    a second member attached to said assembly and operable for providing azimuthal orientation of said assembly;    a third member attached to said second member and to said assembly and operable for providing elevation orientation of said assembly.    
     
     
         43 . The receiver of  claim 42 , wherein said frame further comprises: 
 a motor drive assembly in each said second and third member for providing said orientation; and    a control system for controlling each said motor drive assembly.    
     
     
         44 . The receiver of  claim 32 , wherein said secondary parabolic reflector comprises a reflective parabolic configuration of a material selected from the group consisting of a metal, a polymer, a fiberglass composite, a glass, a ceramic and any composite or combination of these.  
     
     
         45 . The receiver of  claim 44 , wherein said secondary parabolic reflector comprises an outline, when viewed from said second focal axis, selected from the group consisting of circular, oval, elliptical, rectangular and any regular polygon or other closed plane figure.  
     
     
         46 . The receiver of  claim 32 , wherein said high reflectivity surface of said secondary parabolic reflector reflects substantially all wavelengths of solar energy radiation incident thereupon.  
     
     
         47 . The receiver of  claim 32 , wherein said high reflectivity surface of said secondary parabolic reflector reflects said selected portion of said spectrum.  
     
     
         48 . The receiver of  claim 47  wherein said selected portion of said spectrum comprises at least substantially all wavelengths in the range of a visible light spectrum.  
     
     
         49 . The receiver of  claim 47 , wherein said selected portion of said spectrum comprises at least substantially all wavelengths in the range of a ultraviolet light spectrum.  
     
     
         50 . The receiver of  claim 47  wherein said selected portion of said spectrum comprises at least substantially all wavelengths in the range of a infrared light spectrum.  
     
     
         51 . The receiver of  claim 32 , wherein said secondary parabolic reflector comprises means for dissipating radiant energy which is not reflected by or passed through said secondary parabolic reflector and attenuated thereby.  
     
     
         52 . The receiver of  claim 32 , wherein said secondary parabolic reflector further comprises a frame for supporting said secondary parabolic reflector with respect to said primary reflector.  
     
     
         53 . The receiver of  claim 32 , wherein said secondary reflector has an overall area substantially smaller than an area of said primary reflector.  
     
     
         54 . The receiver of  claim 53 , wherein said area of said secondary reflector is approximately equal to an area of said reception surface.  
     
     
         55 . The receiver of  claim 32 , wherein said conversion module comprises: 
 means for converting solar energy to electric energy; and    a solar energy sensor coupled with said means for converting;    wherein said solar energy sensor includes said reception surface and said reception surface is configured as a plane surface for receiving incident solar energy thereupon.    
     
     
         56 . The receiver of  claim 32 , wherein said conversion module having a reception surface comprises a planar array of a plurality of photovoltaic solar cells wherein each cell is disposed such that its solar energy incident surface forms part of said reception surface.  
     
     
         57 . The receiver of  claim 56 , wherein each of said photovoltaic solar cells comprise a semiconductor device.  
     
     
         58 . The receiver of  claim 57 , wherein said semiconductor device comprises a triple junction solar cell formed of germanium, gallium-arsenide and gallium-indium-phosphorus semiconductor materials.  
     
     
         59 . The receiver of  claim 56 , wherein said photovoltaic solar cell provides a conversion bandpass substantially throughout the range of 350 nanometers to 1600 nanometers.  
     
     
         60 . The receiver of  claim 32 , wherein said conversion module having a reception surface comprises a thermal cycle engine having a thermal input coupled to said reception surface and a mechanical output coupled to an electric generator.  
     
     
         61 . The receiver of  claim 60 , wherein said thermal cycle engine is a Stirling engine.  
     
     
         62 . The receiver of  claim 32 , further configured to selectively admit said radiant solar energy to said conversion module such that an admittance bandpass of said receiver to said radiant solar energy substantially matches a conversion bandpass of said conversion module.  
     
     
         63 . The receiver of  claim 62 , wherein said admittance bandpass of said receiver is provided by said primary parabolic reflector further comprising a filter for allowing reflection of wavelengths within said conversion bandpass of said conversion module and impeding reflection of wavelengths outside said conversion bandpass.  
     
     
         64 . The receiver of  claim 63 , wherein said filter comprises a covering applied to said high reflectivity surface of said primary parabolic reflector for impeding said reflection of wavelengths outside said conversion bandpass.  
     
     
         65 . The receiver of  claim 63 , wherein said filter is provided by a process selected from the group consisting of laminating a filter material to said reflector, chemically doping a finish of said reflector, adding a filter element to said reflector and applying a coating material to said reflector.  
     
     
         66 . The receiver of  claim 63 , wherein said filter comprises a sheet of filtering material supported between said high reflectivity surface of said primary parabolic reflector and said reception surface of said conversion module.  
     
     
         67 . The receiver of  claim 62 , wherein said primary parabolic reflector is configured such that said high reflectivity surface allows reflection of wavelengths within said conversion bandpass and impedes reflection of wavelengths outside said conversion bandpass.  
     
     
         68 . The receiver of  claim 62 , wherein said admittance bandpass of said receiver is provided by said secondary parabolic reflector further comprising a filter for allowing reflection of wavelengths within said conversion bandpass of said conversion module and impeding reflection of wavelengths outside said conversion bandpass.  
     
     
         69 . The receiver of  claim 68 , wherein said filter comprises a covering applied to said high reflectivity surface of said secondary parabolic reflector for impeding said reflection of wavelengths outside said conversion bandpass.  
     
     
         70 . The receiver of  claim 68 , wherein said filter is provided by a process selected from the group consisting of laminating a filter material to said reflector, chemically doping a finish of said reflector, adding a filter element to said reflector and applying a coating material to said reflector.  
     
     
         71 . The receiver of  claim 68 , wherein said filter comprises a sheet of filtering material supported between said high reflectivity surface of said secondary parabolic reflector and said reception surface of said conversion module.  
     
     
         72 . The receiver of  claim 62 , wherein said secondary parabolic reflector is configured such that said high reflectivity surface allows reflection of wavelengths within said conversion bandpass and impedes reflection of wavelengths outside said conversion bandpass.  
     
     
         73 . The receiver of  claim 32 , wherein the offset focal point maintains the parabolic reflector at an angle to minimize a collection of a material in the parabolic reflector.

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