US20070289622A1 - Integrated solar energy conversion system, method, and apparatus - Google Patents
Integrated solar energy conversion system, method, and apparatus Download PDFInfo
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- US20070289622A1 US20070289622A1 US11/455,596 US45559606A US2007289622A1 US 20070289622 A1 US20070289622 A1 US 20070289622A1 US 45559606 A US45559606 A US 45559606A US 2007289622 A1 US2007289622 A1 US 2007289622A1
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Classifications
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- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F24—HEATING; RANGES; VENTILATING
- F24S—SOLAR HEAT COLLECTORS; SOLAR HEAT SYSTEMS
- F24S23/00—Arrangements for concentrating solar-rays for solar heat collectors
-
- H—ELECTRICITY
- H02—GENERATION; CONVERSION OR DISTRIBUTION OF ELECTRIC POWER
- H02S—GENERATION OF ELECTRIC POWER BY CONVERSION OF INFRARED RADIATION, VISIBLE LIGHT OR ULTRAVIOLET LIGHT, e.g. USING PHOTOVOLTAIC [PV] MODULES
- H02S10/00—PV power plants; Combinations of PV energy systems with other systems for the generation of electric power
- H02S10/10—PV power plants; Combinations of PV energy systems with other systems for the generation of electric power including a supplementary source of electric power, e.g. hybrid diesel-PV energy systems
-
- H—ELECTRICITY
- H02—GENERATION; CONVERSION OR DISTRIBUTION OF ELECTRIC POWER
- H02S—GENERATION OF ELECTRIC POWER BY CONVERSION OF INFRARED RADIATION, VISIBLE LIGHT OR ULTRAVIOLET LIGHT, e.g. USING PHOTOVOLTAIC [PV] MODULES
- H02S40/00—Components or accessories in combination with PV modules, not provided for in groups H02S10/00 - H02S30/00
- H02S40/40—Thermal components
- H02S40/44—Means to utilise heat energy, e.g. hybrid systems producing warm water and electricity at the same time
-
- H—ELECTRICITY
- H10—SEMICONDUCTOR DEVICES; ELECTRIC SOLID-STATE DEVICES NOT OTHERWISE PROVIDED FOR
- H10F—INORGANIC SEMICONDUCTOR DEVICES SENSITIVE TO INFRARED RADIATION, LIGHT, ELECTROMAGNETIC RADIATION OF SHORTER WAVELENGTH OR CORPUSCULAR RADIATION
- H10F77/00—Constructional details of devices covered by this subclass
- H10F77/40—Optical elements or arrangements
- H10F77/42—Optical elements or arrangements directly associated or integrated with photovoltaic cells, e.g. light-reflecting means or light-concentrating means
- H10F77/45—Wavelength conversion means, e.g. by using luminescent material, fluorescent concentrators or up-conversion arrangements
-
- H—ELECTRICITY
- H10—SEMICONDUCTOR DEVICES; ELECTRIC SOLID-STATE DEVICES NOT OTHERWISE PROVIDED FOR
- H10F—INORGANIC SEMICONDUCTOR DEVICES SENSITIVE TO INFRARED RADIATION, LIGHT, ELECTROMAGNETIC RADIATION OF SHORTER WAVELENGTH OR CORPUSCULAR RADIATION
- H10F77/00—Constructional details of devices covered by this subclass
- H10F77/40—Optical elements or arrangements
- H10F77/42—Optical elements or arrangements directly associated or integrated with photovoltaic cells, e.g. light-reflecting means or light-concentrating means
- H10F77/484—Refractive light-concentrating means, e.g. lenses
-
- H—ELECTRICITY
- H10—SEMICONDUCTOR DEVICES; ELECTRIC SOLID-STATE DEVICES NOT OTHERWISE PROVIDED FOR
- H10N—ELECTRIC SOLID-STATE DEVICES NOT OTHERWISE PROVIDED FOR
- H10N10/00—Thermoelectric devices comprising a junction of dissimilar materials, i.e. devices exhibiting Seebeck or Peltier effects
- H10N10/10—Thermoelectric devices comprising a junction of dissimilar materials, i.e. devices exhibiting Seebeck or Peltier effects operating with only the Peltier or Seebeck effects
- H10N10/13—Thermoelectric devices comprising a junction of dissimilar materials, i.e. devices exhibiting Seebeck or Peltier effects operating with only the Peltier or Seebeck effects characterised by the heat-exchanging means at the junction
-
- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F24—HEATING; RANGES; VENTILATING
- F24S—SOLAR HEAT COLLECTORS; SOLAR HEAT SYSTEMS
- F24S23/00—Arrangements for concentrating solar-rays for solar heat collectors
- F24S23/10—Prisms
-
- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F24—HEATING; RANGES; VENTILATING
- F24S—SOLAR HEAT COLLECTORS; SOLAR HEAT SYSTEMS
- F24S23/00—Arrangements for concentrating solar-rays for solar heat collectors
- F24S23/30—Arrangements for concentrating solar-rays for solar heat collectors with lenses
-
- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F24—HEATING; RANGES; VENTILATING
- F24S—SOLAR HEAT COLLECTORS; SOLAR HEAT SYSTEMS
- F24S23/00—Arrangements for concentrating solar-rays for solar heat collectors
- F24S23/70—Arrangements for concentrating solar-rays for solar heat collectors with reflectors
-
- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F24—HEATING; RANGES; VENTILATING
- F24S—SOLAR HEAT COLLECTORS; SOLAR HEAT SYSTEMS
- F24S50/00—Arrangements for controlling solar heat collectors
- F24S50/20—Arrangements for controlling solar heat collectors for tracking
-
- Y—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
- Y02—TECHNOLOGIES OR APPLICATIONS FOR MITIGATION OR ADAPTATION AGAINST CLIMATE CHANGE
- Y02E—REDUCTION OF GREENHOUSE GAS [GHG] EMISSIONS, RELATED TO ENERGY GENERATION, TRANSMISSION OR DISTRIBUTION
- Y02E10/00—Energy generation through renewable energy sources
- Y02E10/40—Solar thermal energy, e.g. solar towers
- Y02E10/44—Heat exchange systems
-
- Y—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
- Y02—TECHNOLOGIES OR APPLICATIONS FOR MITIGATION OR ADAPTATION AGAINST CLIMATE CHANGE
- Y02E—REDUCTION OF GREENHOUSE GAS [GHG] EMISSIONS, RELATED TO ENERGY GENERATION, TRANSMISSION OR DISTRIBUTION
- Y02E10/00—Energy generation through renewable energy sources
- Y02E10/50—Photovoltaic [PV] energy
- Y02E10/52—PV systems with concentrators
-
- Y—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
- Y02—TECHNOLOGIES OR APPLICATIONS FOR MITIGATION OR ADAPTATION AGAINST CLIMATE CHANGE
- Y02E—REDUCTION OF GREENHOUSE GAS [GHG] EMISSIONS, RELATED TO ENERGY GENERATION, TRANSMISSION OR DISTRIBUTION
- Y02E10/00—Energy generation through renewable energy sources
- Y02E10/60—Thermal-PV hybrids
Definitions
- the present invention relates in general to harnessing solar energy and, in particular, to an improved system, method, and apparatus for integrating the conversion of solar energy into a variety of usable energy forms.
- One embodiment of the present invention comprises a solar energy conversion package that incorporates two solar energy conversion methods of photovoltaics (PV) and thermal-steam powered energy generation or heating.
- PV photovoltaics
- a thermionic or thermoelectric conversion unit is also utilized.
- thermionic conversion is typically used with a nuclear power source for remote power generation (e.g., spacecraft) or technical instruments. Integrating all three types of these solar conversion techniques in a concentrated configuration produces a synergistic system that exceeds the performance of present solar conversion systems.
- solar radiation is initially concentrated by lenses or reflectors to reduce the cost of highly efficient conversion units (e.g., target concentration of 200:1; range 10:1 to 1000:1).
- the light is directed to a PV cell with a conversion efficiency rating of about 14% (e.g., SOTA commercial) to 28.5% (e.g., SOTA space) to electrical power, while absorbing much of the excess energy as heat.
- a water circulation system is used to pull off excess thermal energy.
- the hot water may be used for hot water applications, heating, radiant flooring in domestic applications, and/or low quality heating for commercial applications.
- thermoelectric (TE) cell which acts as the third conversion unit.
- the TE cell is coupled into the thermal path to generate power.
- Commercial TE units offer only about 2% to 7.5% efficiencies for converting electrical energy to heat.
- semiconductor based, thermal diode units can produce electrical energy at about 40% efficiency of the Carnot Cycle potential, which yields up to about 25% conversion efficiency for the incoming solar flux.
- the combination of these three conversion units are sandwiched in the path of the solar radiation.
- Each of the three units produce power from portions of the radiation spectrum that are poorly utilized by the other devices. Together, they synergistically yield about 50% or more conversion of the solar energy spectrum. Theoretical efficiencies are in excess of 60% are expected as these technologies further develop, with much of the energy conversion in the preferred form of electrical power.
- the integrated approach of the present invention uses components within their operating limits and produces more electrical energy than previously possible while remaining within engineering parameters to optimize output with respect to the local solar environment and the needs of the user.
- these very high efficiency units can be readily incorporated into inherently modular designs at a high economic return on investment.
- FIG. 1 is a sectional side view of one embodiment of an integrated solar energy conversion system constructed in accordance with the present invention
- FIG. 2 is a sectional side view of another embodiment of an integrated solar energy conversion system constructed in accordance with the present invention.
- FIG. 3 is a sectional side view of still another embodiment of an integrated solar energy conversion system constructed in accordance with the present invention.
- FIG. 4 is a sectional side view of yet another embodiment of an integrated solar energy conversion system constructed in accordance with the present invention.
- FIG. 5 is a sectional side view of another embodiment of an integrated solar energy conversion system constructed in accordance with the present invention.
- FIG. 6 is a high level flow diagram of one embodiment of a method in accordance with the present invention.
- the invention comprises a housing 11 that controls optical orientation and spacing.
- Housing 11 may be a conical or parabolic reflective surface, or still other shapes such as those known in the art (e.g., round, linear, square, hexagonal, etc. reflectors).
- Housing 11 has an upper opening 13 and a lower opening or aperture 15 located opposite the upper opening 13 .
- One or more cover lenses 17 e.g., a fresnel, convex, etc. lens
- cover lenses 17 is positioned adjacent the upper opening 13 of the housing 11 for concentrating solar energy toward the lower opening 15 of the housing 11 .
- a package 21 for converting solar energy is positioned adjacent the lower opening 15 of the housing 11 opposite the cover lens 17 .
- the package 21 comprises a photovoltaic (PV) cell 23 for converting solar energy into electrical power, a thermionic (TI) or thermoelectric (TE) cell 25 (hereinafter, either or both are referred to as “TE cell”) for converting waste heat into electrical power via thermionic or thermoelectric conversion, and a water circulation system 27 to remove excess thermal energy for various heating purposes.
- PV photovoltaic
- TI thermionic
- TE thermoelectric
- water circulation system 27 also may provide thermal-steam power energy generation.
- the PV cell 23 is located adjacent the aperture 15 and has an efficiency rating of about 6% to 34% for producing electrical power from solar energy.
- the water circulation system 27 maintains the PV cell 23 at an acceptable temperature for long life.
- the water circulation system 27 has an efficiency rating of about 25% to 50% for absorbing heat from solar energy.
- the TI or TE cell 25 has an efficiency rating of about 2% to 25% for producing electrical power from solar energy.
- the package 21 harnesses more than about 50% of the solar energy incident on the package 21 .
- the TE cell 25 is positioned adjacent the PV cell 23 opposite the housing 11
- the water circulation system 27 is positioned adjacent the TE cell 25 opposite the PV cell 23 .
- a TE cell 125 is positioned between a PV cell 123 and a cover lens 117 within a volume 114 of a housing 111 .
- the water circulation system 127 is positioned adjacent the PV cell 123 and continues to the non-irradiated surface of TE cell 125 .
- Improved efficiency is achieved by treating the irradiated surface of the PV cell 123 with one or more selective spectrum reflective coatings to allow high conversion PV wavelengths to pass through to the PV cell 123 , and to reflect less efficient wavelengths to the absorption surface of the TE cell 125 .
- the solar radiation heated TE cells may be coated with high emissivity “blackbody” coatings for maximum absorption of all incident radiation.
- large installations may substitute thermal-steam or closed circuit Sterling power generation systems for the TE cells at economically feasible costs.
- a reflector 211 is positioned between a PV cell 223 and a TE cell 225 for directing reflected solar energy toward the TE cell 225 .
- the water circulation system 227 is positioned adjacent the PV cell 223 , opposite the reflected solar spectrum and continues adjacent to the TE cell 225 , opposite the reflector 211 .
- An aperture 215 is formed in the reflector 211 for permitting solar energy reflected from the surface of the TE cell 225 to be directed toward the PV cell 223 .
- efficiency is increased by treating the irradiated surface of the TE cell 225 with selective spectrum reflecting/absorption coatings directing high PV conversion wavelengths to the PV cell 123 and absorbing less efficient wavelengths on the surface of the TE cell.
- an optional optical cover 230 may be provided for the PV cell 223 .
- Optical cover 230 may be treated with anti-reflective coatings and also may incorporate phosphors to shift the wavelength of incident radiation to wavelengths that are more efficiently converted by the PV cell 223 .
- the inclusion of phosphor is just in front of the PV cell, rather than elsewhere in the solar energy path where diffusion would reduce power flux to the target cells.
- linear (e.g., trough) reflectors 311 , 312 collimate and direct solar radiation through aperture 315 to a prism 301 that separates the light spectrum into various wavelengths.
- a highly thermally conductive slotted plate with an embedded TE cell 302 passes the high efficiency photovoltaic wavelengths onto the PV cell 304 and absorbs the remaining spectrum as thermal energy.
- the water circulation system 305 is positioned adjacent the PV cell 304 and the TE cell 302 opposite incident radiation. This embodiment precisely partitions the spectrum for greater utilization of the solar energy by the most efficient device for each wavelength in the solar spectrum.
- a heat pipe 303 conducts thermal energy from the slotted wavelength separator 302 to the TE cell 302 .
- a stack of wavelength specific filters may be used to absorb non-optimum PV wavelengths, transfer them to a heat pipe, which conducts the thermal energy to the TE cell.
- a primary fresnel lens 314 is used to concentrate the spectral solar radiation to a secondary concave collimating lens 313 directing the beam to the prism 301 for separating the into wavelengths for optimum utilization in energy conversion.
- a heat absorption cell for a thermal-steam powered or sterling engine energy generation system may be used to replace the TE cell, which would efficiently utilize the highly concentrated heat source for efficient operation.
- the method starts as indicated at step 101 , and comprises concentrating solar energy with a housing having a cover lens onto a package (step 103 ); converting the concentrated solar energy with the package by (i) converting a portion of the solar energy into electrical power with a photovoltaic (PV) cell and with a thermoelectric (TE) cell (step 105 ), and (ii) capturing excess thermal energy with a water circulation system for heating purposes (step 107 ), before ending as indicated at step 109 .
- PV photovoltaic
- TE thermoelectric
- the method also may comprise providing the housing with a shape selected from the group consisting of parabolic, conical, round, linear, square, and hexagonal reflectors; and the cover lens is selected from the group consisting of a fresnel lens and a convex lens, and is positioned adjacent an incoming solar radiation end of the housing.
- the method may comprise providing the housing with an aperture located opposite the cover lens; and further comprising locating the PV cell adjacent the aperture, the PV cell having an efficiency rating of about 6% to 34% for producing electrical power from solar energy; and the TE cell having an efficiency rating of about 2% to 25% for producing electrical power from solar energy.
- the method may comprise reducing a temperature of the PV cell with the water circulation system to extend a useful life of the PV cell, the water circulation system having an efficiency rating of about 25% to 50% for absorbing heat from solar energy, and the package harnessing over 50% of the solar energy incident on the package; or positioning the TE cell adjacent the PV cell opposite the housing, and positioning the water circulation system adjacent the TE cell opposite the PV cell; or positioning the TE cell between the PV cell and the cover lens within a volume of the housing, and positioning the water circulation system adjacent the PV cell and adjacent the TE cell, opposite the incident solar energy; or positioning the housing between the PV cell and the TE cell for directing reflected solar energy toward the TE cell, positioning the water circulation system adjacent non-irradiated sides of the PV and TI cells, and forming an aperture in the housing for permitting solar energy not absorbed by the TE cell to be directed toward the PV cell.
- the method may further comprise covering the PV cell with an optical phosphor that shifts non-optimum wavelengths to optimum wavelengths for greater energy conversion, and collimating solar flux with a secondary reflector towards a prism to separate wavelengths and a slotted thermal plane passes PV efficient wavelengths to the PV cell and absorbs the remaining wavelengths for conduction to the TE cell; or conducting thermal energy with a heat pipe from a slotted wavelength separator to the TE cell, and absorbing non-optimum PV wavelengths with a stack of wavelength specific filters, and transferring them to a heat pipe that conducts thermal energy to the TE cell; or concentrating spectral solar radiation with a primary fresnel lens to a secondary concave collimating lens and directing a light beam to the prism for separation into wavelengths for enhanced solar energy conversion; and wherein the TE cell is a heat absorption cell for a system selected from the group consisting of a thermal-steam powered energy generation system and a Sterling engine system.
- each embodiment requires the use of a conventional sun tracking system, including azimuth, elevation, etc., such as those known in the art.
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Abstract
A solar energy conversion package includes a photovoltaic (PV) cell, a thermionic or thermoelectric conversion unit and a thermal heating system. Solar radiation is concentrated by a lens or reflector and directed to the PV cell for electrical power conversion. A water circulation system maintains the PV cell at working temperatures. The thermionic or thermoelectric conversion cell is coupled between these cells in the thermal path to generate additional power. Additional efficiencies may be gained by partitioning the solar radiation with prisms or wavelength specific filters or reflective coatings into discrete spectrum segments optimized for each conversion unit for maximizing efficiency of electrical energy conversion and equipment design. Integrating all three of these conversion techniques produces a synergistic system that exceeds the performance conventional solar conversion systems.
Description
- 1. Technical Field
- The present invention relates in general to harnessing solar energy and, in particular, to an improved system, method, and apparatus for integrating the conversion of solar energy into a variety of usable energy forms.
- 2. Description of the Related Art
- In the prior art, solar energy conversion systems attempt to use a single energy conversion mechanism to achieve an efficiency that would make them economically feasible. Reaching a sufficiently high rate of power conversion for broad-based economic viability is difficult if not impossible at present and has restrained the growth of the solar energy industry.
- For example, one national solar power program achieved about 34% electric conversion efficiency at 660 suns concentration. Despite the high conversion compared with the commercial state of the art, this system's single conversion process only utilized a portion of the spectrum efficiently. However, that solution also created very high thermal fluxes and engineering difficulties. In addition, the extremely high efficiency of that system was limited to a laboratory bench photovoltaic (PV) prototype.
- More practical models, such as lower complexity, flat panel solar energy systems are less costly per unit area, but achieve approximately half or less of the conversion rate of the concentrated systems. Furthermore, they require much more usable area to produce the required power. Overall, the lower efficiency of these expensive types of solar energy conversion modules makes them economically feasible only in remote locations requiring extensive infrastructure improvements for standard power installations. Thus, an improved solar energy conversion system would be desirable.
- One embodiment of the present invention comprises a solar energy conversion package that incorporates two solar energy conversion methods of photovoltaics (PV) and thermal-steam powered energy generation or heating. In addition, a thermionic or thermoelectric conversion unit is also utilized. Although not usually considered for solar applications, thermionic conversion is typically used with a nuclear power source for remote power generation (e.g., spacecraft) or technical instruments. Integrating all three types of these solar conversion techniques in a concentrated configuration produces a synergistic system that exceeds the performance of present solar conversion systems.
- In one embodiment, solar radiation is initially concentrated by lenses or reflectors to reduce the cost of highly efficient conversion units (e.g., target concentration of 200:1; range 10:1 to 1000:1). The light is directed to a PV cell with a conversion efficiency rating of about 14% (e.g., SOTA commercial) to 28.5% (e.g., SOTA space) to electrical power, while absorbing much of the excess energy as heat. To maintain the PV cell at an acceptable temperature for long life, a water circulation system is used to pull off excess thermal energy. The hot water may be used for hot water applications, heating, radiant flooring in domestic applications, and/or low quality heating for commercial applications.
- The first two conversion units set up the proper boundary conditions for a thermoelectric (TE) cell, which acts as the third conversion unit. The TE cell is coupled into the thermal path to generate power. Commercial TE units offer only about 2% to 7.5% efficiencies for converting electrical energy to heat. However, semiconductor based, thermal diode units can produce electrical energy at about 40% efficiency of the Carnot Cycle potential, which yields up to about 25% conversion efficiency for the incoming solar flux. The combination of these three conversion units are sandwiched in the path of the solar radiation. Each of the three units produce power from portions of the radiation spectrum that are poorly utilized by the other devices. Together, they synergistically yield about 50% or more conversion of the solar energy spectrum. Theoretical efficiencies are in excess of 60% are expected as these technologies further develop, with much of the energy conversion in the preferred form of electrical power.
- The integrated approach of the present invention uses components within their operating limits and produces more electrical energy than previously possible while remaining within engineering parameters to optimize output with respect to the local solar environment and the needs of the user. In addition, these very high efficiency units can be readily incorporated into inherently modular designs at a high economic return on investment.
- The foregoing and other objects and advantages of the present invention will be apparent to those skilled in the art, in view of the following detailed description of the present invention, taken in conjunction with the appended claims and the accompanying drawings.
- So that the manner in which the features and advantages of the present invention, which will become apparent, are attained and can be understood in more detail, more particular description of the invention briefly summarized above may be had by reference to the embodiments thereof that are illustrated in the appended drawings which form a part of this specification. It is to be noted, however, that the drawings illustrate only some embodiments of the invention and therefore are not to be considered limiting of its scope as the invention may admit to other equally effective embodiments.
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FIG. 1 is a sectional side view of one embodiment of an integrated solar energy conversion system constructed in accordance with the present invention; -
FIG. 2 is a sectional side view of another embodiment of an integrated solar energy conversion system constructed in accordance with the present invention; -
FIG. 3 is a sectional side view of still another embodiment of an integrated solar energy conversion system constructed in accordance with the present invention; -
FIG. 4 is a sectional side view of yet another embodiment of an integrated solar energy conversion system constructed in accordance with the present invention; -
FIG. 5 is a sectional side view of another embodiment of an integrated solar energy conversion system constructed in accordance with the present invention; and -
FIG. 6 is a high level flow diagram of one embodiment of a method in accordance with the present invention. - Referring to
FIG. 1 , one embodiment of a system and apparatus for solar energy conversion constructed in accordance with the present invention is shown. The invention comprises ahousing 11 that controls optical orientation and spacing.Housing 11 may be a conical or parabolic reflective surface, or still other shapes such as those known in the art (e.g., round, linear, square, hexagonal, etc. reflectors).Housing 11 has anupper opening 13 and a lower opening oraperture 15 located opposite theupper opening 13. One or more cover lenses 17 (e.g., a fresnel, convex, etc. lens) is positioned adjacent theupper opening 13 of thehousing 11 for concentrating solar energy toward thelower opening 15 of thehousing 11. - A
package 21 for converting solar energy is positioned adjacent thelower opening 15 of thehousing 11 opposite thecover lens 17. In one embodiment, thepackage 21 comprises a photovoltaic (PV) cell 23 for converting solar energy into electrical power, a thermionic (TI) or thermoelectric (TE) cell 25 (hereinafter, either or both are referred to as “TE cell”) for converting waste heat into electrical power via thermionic or thermoelectric conversion, and awater circulation system 27 to remove excess thermal energy for various heating purposes. With the development of high temperature, semiconductor-based PV units,water circulation system 27 also may provide thermal-steam power energy generation. - In one embodiment, the PV cell 23 is located adjacent the
aperture 15 and has an efficiency rating of about 6% to 34% for producing electrical power from solar energy. Thewater circulation system 27 maintains the PV cell 23 at an acceptable temperature for long life. In addition, thewater circulation system 27 has an efficiency rating of about 25% to 50% for absorbing heat from solar energy. The TI orTE cell 25 has an efficiency rating of about 2% to 25% for producing electrical power from solar energy. Thus, overall, thepackage 21 harnesses more than about 50% of the solar energy incident on thepackage 21. - In the embodiment of
FIG. 1 , theTE cell 25 is positioned adjacent the PV cell 23 opposite thehousing 11, and thewater circulation system 27 is positioned adjacent theTE cell 25 opposite the PV cell 23. - In one alternate embodiment (
FIG. 2 ), aTE cell 125 is positioned between aPV cell 123 and acover lens 117 within avolume 114 of ahousing 111. Thewater circulation system 127 is positioned adjacent thePV cell 123 and continues to the non-irradiated surface ofTE cell 125. Improved efficiency is achieved by treating the irradiated surface of thePV cell 123 with one or more selective spectrum reflective coatings to allow high conversion PV wavelengths to pass through to thePV cell 123, and to reflect less efficient wavelengths to the absorption surface of theTE cell 125. In one embodiment, the solar radiation heated TE cells may be coated with high emissivity “blackbody” coatings for maximum absorption of all incident radiation. Alternatively, large installations may substitute thermal-steam or closed circuit Sterling power generation systems for the TE cells at economically feasible costs. - In another alternate embodiment (
FIG. 3 ), areflector 211 is positioned between aPV cell 223 and aTE cell 225 for directing reflected solar energy toward theTE cell 225. Thewater circulation system 227 is positioned adjacent thePV cell 223, opposite the reflected solar spectrum and continues adjacent to theTE cell 225, opposite thereflector 211. Anaperture 215 is formed in thereflector 211 for permitting solar energy reflected from the surface of theTE cell 225 to be directed toward thePV cell 223. As discussed above, efficiency is increased by treating the irradiated surface of theTE cell 225 with selective spectrum reflecting/absorption coatings directing high PV conversion wavelengths to thePV cell 123 and absorbing less efficient wavelengths on the surface of the TE cell. - Alternatively, an optional
optical cover 230 may be provided for thePV cell 223.Optical cover 230 may be treated with anti-reflective coatings and also may incorporate phosphors to shift the wavelength of incident radiation to wavelengths that are more efficiently converted by thePV cell 223. The inclusion of phosphor is just in front of the PV cell, rather than elsewhere in the solar energy path where diffusion would reduce power flux to the target cells. - In another alternate embodiment (
FIG. 4 ), linear (e.g., trough) 311, 312 collimate and direct solar radiation through aperture 315 to areflectors prism 301 that separates the light spectrum into various wavelengths. A highly thermally conductive slotted plate with an embeddedTE cell 302 passes the high efficiency photovoltaic wavelengths onto thePV cell 304 and absorbs the remaining spectrum as thermal energy. Thewater circulation system 305 is positioned adjacent thePV cell 304 and theTE cell 302 opposite incident radiation. This embodiment precisely partitions the spectrum for greater utilization of the solar energy by the most efficient device for each wavelength in the solar spectrum. - In still other embodiments (
FIG. 5 ), a heat pipe 303 conducts thermal energy from the slottedwavelength separator 302 to theTE cell 302. Alternatively, a stack of wavelength specific filters may be used to absorb non-optimum PV wavelengths, transfer them to a heat pipe, which conducts the thermal energy to the TE cell. In yet another alternative, aprimary fresnel lens 314 is used to concentrate the spectral solar radiation to a secondaryconcave collimating lens 313 directing the beam to theprism 301 for separating the into wavelengths for optimum utilization in energy conversion. In addition, a heat absorption cell for a thermal-steam powered or sterling engine energy generation system may be used to replace the TE cell, which would efficiently utilize the highly concentrated heat source for efficient operation. - Referring now to
FIG. 6 , one embodiment of a method of converting solar energy into usable energy is illustrated. The method starts as indicated atstep 101, and comprises concentrating solar energy with a housing having a cover lens onto a package (step 103); converting the concentrated solar energy with the package by (i) converting a portion of the solar energy into electrical power with a photovoltaic (PV) cell and with a thermoelectric (TE) cell (step 105), and (ii) capturing excess thermal energy with a water circulation system for heating purposes (step 107), before ending as indicated atstep 109. - The method also may comprise providing the housing with a shape selected from the group consisting of parabolic, conical, round, linear, square, and hexagonal reflectors; and the cover lens is selected from the group consisting of a fresnel lens and a convex lens, and is positioned adjacent an incoming solar radiation end of the housing. Alternatively, the method may comprise providing the housing with an aperture located opposite the cover lens; and further comprising locating the PV cell adjacent the aperture, the PV cell having an efficiency rating of about 6% to 34% for producing electrical power from solar energy; and the TE cell having an efficiency rating of about 2% to 25% for producing electrical power from solar energy.
- In another embodiment, the method may comprise reducing a temperature of the PV cell with the water circulation system to extend a useful life of the PV cell, the water circulation system having an efficiency rating of about 25% to 50% for absorbing heat from solar energy, and the package harnessing over 50% of the solar energy incident on the package; or positioning the TE cell adjacent the PV cell opposite the housing, and positioning the water circulation system adjacent the TE cell opposite the PV cell; or positioning the TE cell between the PV cell and the cover lens within a volume of the housing, and positioning the water circulation system adjacent the PV cell and adjacent the TE cell, opposite the incident solar energy; or positioning the housing between the PV cell and the TE cell for directing reflected solar energy toward the TE cell, positioning the water circulation system adjacent non-irradiated sides of the PV and TI cells, and forming an aperture in the housing for permitting solar energy not absorbed by the TE cell to be directed toward the PV cell.
- The method may further comprise covering the PV cell with an optical phosphor that shifts non-optimum wavelengths to optimum wavelengths for greater energy conversion, and collimating solar flux with a secondary reflector towards a prism to separate wavelengths and a slotted thermal plane passes PV efficient wavelengths to the PV cell and absorbs the remaining wavelengths for conduction to the TE cell; or conducting thermal energy with a heat pipe from a slotted wavelength separator to the TE cell, and absorbing non-optimum PV wavelengths with a stack of wavelength specific filters, and transferring them to a heat pipe that conducts thermal energy to the TE cell; or concentrating spectral solar radiation with a primary fresnel lens to a secondary concave collimating lens and directing a light beam to the prism for separation into wavelengths for enhanced solar energy conversion; and wherein the TE cell is a heat absorption cell for a system selected from the group consisting of a thermal-steam powered energy generation system and a Sterling engine system.
- While the invention has been shown or described in only some of its forms, it should be apparent to those skilled in the art that it is not so limited, but is susceptible to various changes without departing from the scope of the invention. For example, each embodiment requires the use of a conventional sun tracking system, including azimuth, elevation, etc., such as those known in the art.
Claims (26)
1. A solar energy conversion system, comprising:
a housing;
a cover lens positioned adjacent the housing for concentrating solar energy;
a package for converting the concentrated solar energy, the package being positioned adjacent the housing opposite the cover lens, the package comprising:
a photovoltaic (PV) cell for converting solar energy into electrical power;
a thermoelectric (TE) cell for converting solar energy into electrical power; and
a water circulation system for capturing excess thermal energy for heating purposes.
2. A solar energy conversion system according to claim 1 , wherein the housing is selected from the group consisting of parabolic, conical, round, linear, square, and hexagonal reflectors.
3. A solar energy conversion system according to claim 1 , wherein the cover lens is selected from the group consisting of a fresnel lens and a convex lens, and is positioned adjacent an incoming solar radiation end of the housing.
4. A solar energy conversion system according to claim 1 , wherein the housing has an aperture located opposite the cover lens, and the PV cell is located adjacent the aperture and has an efficiency rating of about 6% to 34% for producing electrical power from solar energy.
5. A solar energy conversion system according to claim 1 , wherein the water circulation system reduces an operating temperature of the PV cell to extend a usable life of the PV cell, and the water circulation system has an efficiency rating of about 25% to 50% for absorbing heat from solar energy.
6. A solar energy conversion system according to claim 1 , wherein the TE cell has an efficiency rating of about 2% to 25% for producing electrical power from solar energy.
7. A solar energy conversion system according to claim 1 , wherein the package harnesses over 50% of the solar energy incident on the package.
8. A solar energy conversion system according to claim 1 , wherein the TE cell is positioned adjacent the PV cell opposite the housing, and the water circulation system is positioned adjacent the TE cell opposite the PV cell.
9. A solar energy conversion system according to claim 1 , wherein the TE cell is positioned between the PV cell and the cover lens within a volume of the housing, the water circulation system is positioned adjacent the PV cell and continues adjacent the TE cell, opposite the incident solar energy.
10. A solar energy conversion system according to claim 1 , wherein the housing is positioned between the PV cell and the TE cell for directing reflected solar energy toward the TE cell, the water circulation system is positioned adjacent non-irradiated sides of the PV and TE cells, and an aperture is formed in the housing for permitting solar energy not absorbed by the TE cell to be directed toward the PV cell.
11. A solar energy conversion system according to claim 10 , wherein the PV cell is covered with an optical phosphor that shifts non-optimum wavelengths to optimum wavelengths for greater energy conversion.
12. A solar energy conversion system according to claim 11 , wherein a secondary reflector collimates solar flux towards a prism to separate wavelengths and a slotted thermal plane passes PV efficient wavelengths to the PV cell and absorbs the remaining wavelengths for conduction to the TE cell.
13. A solar energy conversion system according to claim 12 , wherein a heat pipe conducts thermal energy from a slotted wavelength separator to the TE cell.
14. A solar energy conversion system according to claim 12 , wherein a stack of wavelength specific filters absorbs non-optimum PV wavelengths, transfers them to a heat pipe, which conducts thermal energy to the TE cell.
15. A solar energy conversion system according to claim 12 , wherein a primary fresnel lens concentrates spectral solar radiation to a secondary concave collimating lens and directs a light beam to the prism for separation into wavelengths for enhanced solar energy conversion.
16. A solar energy conversion system according to claim 12 , wherein the TE cell is a heat absorption cell for a system selected from the group consisting of a thermal-steam powered energy generation system and a Sterling engine system.
17. A method of converting solar energy into usable energy, comprising:
(a) concentrating solar energy with a housing having a cover lens onto a package;
(b) converting the concentrated solar energy with the package by:
(i) converting a portion of the solar energy into electrical power with a photovoltaic (PV) cell and with a thermoelectric (TE) cell; and
(ii) capturing excess thermal energy with a water circulation system for heating purposes.
18. A method according to claim 17 , wherein step (a) comprises providing the housing with a shape selected from the group consisting of parabolic, conical, round, linear, square, and hexagonal reflectors; and the cover lens is selected from the group consisting of a fresnel lens and a convex lens, and is positioned adjacent an incoming solar radiation end of the housing.
19. A method according to claim 17 , wherein step (a) comprises providing the housing with an aperture located opposite the cover lens; and further comprising locating the PV cell adjacent the aperture, the PV cell having an efficiency rating of about 6% to 34% for producing electrical power from solar energy; and the TE cell having an efficiency rating of about 2% to 25% for producing electrical power from solar energy.
20. A method according to claim 17 , wherein step (b) comprises reducing a temperature of the PV cell with the water circulation system to extend a useful life of the PV cell, the water circulation system having an efficiency rating of about 25% to 50% for absorbing heat from solar energy, and the package harnessing over 50% of the solar energy incident on the package.
21. A method according to claim 17 , wherein step (b) comprises positioning the TE cell adjacent the PV cell opposite the housing, and positioning the water circulation system adjacent the TE cell opposite the PV cell.
22. A method according to claim 17 , wherein step (b) comprises positioning the TE cell between the PV cell and the cover lens within a volume of the housing, and positioning the water circulation system adjacent the PV cell and adjacent the TE cell, opposite the incident solar energy.
23. A method according to claim 17 , wherein step (b) comprises positioning the housing between the PV cell and the TE cell for directing reflected solar energy toward the TE cell, positioning the water circulation system adjacent non-irradiated sides of the PV and TE cells, and forming an aperture in the housing for permitting solar energy not absorbed by the TE cell to be directed toward the PV cell.
24. A method according to claim 23 , further comprising covering the PV cell with an optical phosphor that shifts non-optimum wavelengths to optimum wavelengths for greater energy conversion, and collimating solar flux with a secondary reflector towards a prism to separate wavelengths and a slotted thermal plane passes PV efficient wavelengths to the PV cell and absorbs the remaining wavelengths for conduction to the TE cell.
25. A method according to claim 24 , further comprising conducting thermal energy with a heat pipe from a slotted wavelength separator to the TE cell, and absorbing non-optimum PV wavelengths with a stack of wavelength specific filters, and transferring them to a heat pipe that conducts thermal energy to the TE cell.
26. A method according to claim 24 , further comprising concentrating spectral solar radiation with a primary fresnel lens to a secondary concave collimating lens and directing a light beam to the prism for separation into wavelengths for enhanced solar energy conversion; and wherein the TE cell is a heat absorption cell for a system selected from the group consisting of a thermal-steam powered energy generation system and a Sterling engine system.
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|---|---|---|---|---|
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| WO2011088781A1 (en) * | 2010-01-19 | 2011-07-28 | 华中科技大学 | Dispersion type solar cells adopting photonic crystals |
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| JP2012039756A (en) * | 2010-08-06 | 2012-02-23 | Sintokogio Ltd | Thermoelectric power generating unit |
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| US20120174908A1 (en) * | 2011-01-12 | 2012-07-12 | Robert Warren Geris | Solar collection system and solar collector therefor |
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| CN105577032A (en) * | 2015-12-15 | 2016-05-11 | 中国计量学院 | Unit type photoelectric-thermoelectric-hot water composite system by use of solar energy full spectrum |
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| US9437766B2 (en) | 2012-03-30 | 2016-09-06 | International Business Machines Corporation | Photovoltaic thermal hybrid systems and method of operation thereof |
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Families Citing this family (3)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| US20110011802A1 (en) * | 2009-07-17 | 2011-01-20 | Dan Maydan | Systems and methods for simultaneously generating energy and treating water |
| US8802966B2 (en) * | 2011-12-06 | 2014-08-12 | The Boeing Company | Methods and systems for light energy augmented power |
| US9423155B2 (en) | 2013-09-30 | 2016-08-23 | Do Sun Im | Solar energy collector and system for using same |
Citations (7)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| US4029519A (en) * | 1976-03-19 | 1977-06-14 | The United States Of America As Represented By The United States Energy Research And Development Administration | Solar collector having a solid transmission medium |
| US4106952A (en) * | 1977-09-09 | 1978-08-15 | Kravitz Jerome H | Solar panel unit |
| US4240692A (en) * | 1975-12-17 | 1980-12-23 | The University Of Chicago | Energy transmission |
| US5665174A (en) * | 1992-06-15 | 1997-09-09 | Laing; Johannes Nikolaus | Platform for recovering solar energy |
| US6434942B1 (en) * | 2001-09-20 | 2002-08-20 | Walter T. Charlton | Building, or other self-supporting structure, incorporating multi-stage system for energy generation |
| US6469241B1 (en) * | 2001-06-21 | 2002-10-22 | The Aerospace Corporation | High concentration spectrum splitting solar collector |
| US6672064B2 (en) * | 2002-03-14 | 2004-01-06 | The Sun Trust, L.L.C. | Rankine cycle generation of electricity |
Family Cites Families (3)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| DE4206931A1 (en) | 1992-03-05 | 1993-09-16 | Joachim Krech | Combination solar power system - produces electrical power and hot water, using water to cool solar cells. |
| US6313391B1 (en) * | 1999-04-02 | 2001-11-06 | Russell M. Abbott | Solar power system using thermal storage and cascaded thermal electric converters |
| WO2007087343A2 (en) * | 2006-01-25 | 2007-08-02 | Intematix Corporation | Solar modules with tracking and concentrating features |
-
2006
- 2006-06-19 US US11/455,596 patent/US20070289622A1/en not_active Abandoned
-
2010
- 2010-06-02 US US12/792,004 patent/US8188366B2/en active Active
Patent Citations (8)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| US4240692A (en) * | 1975-12-17 | 1980-12-23 | The University Of Chicago | Energy transmission |
| US4029519A (en) * | 1976-03-19 | 1977-06-14 | The United States Of America As Represented By The United States Energy Research And Development Administration | Solar collector having a solid transmission medium |
| US4106952A (en) * | 1977-09-09 | 1978-08-15 | Kravitz Jerome H | Solar panel unit |
| US5665174A (en) * | 1992-06-15 | 1997-09-09 | Laing; Johannes Nikolaus | Platform for recovering solar energy |
| US6469241B1 (en) * | 2001-06-21 | 2002-10-22 | The Aerospace Corporation | High concentration spectrum splitting solar collector |
| US6434942B1 (en) * | 2001-09-20 | 2002-08-20 | Walter T. Charlton | Building, or other self-supporting structure, incorporating multi-stage system for energy generation |
| US6672064B2 (en) * | 2002-03-14 | 2004-01-06 | The Sun Trust, L.L.C. | Rankine cycle generation of electricity |
| US20040055300A1 (en) * | 2002-03-14 | 2004-03-25 | Paul Lawheed | Rankine cycle generation of electricity |
Cited By (83)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| US20090260667A1 (en) * | 2006-11-13 | 2009-10-22 | Massachusetts Institute Of Technology | Solar Thermoelectric Conversion |
| US8168879B2 (en) | 2006-11-13 | 2012-05-01 | Massachusetts Institute Of Technology | Solar thermoelectric conversion |
| US20100186794A1 (en) * | 2007-05-21 | 2010-07-29 | Gmz Energy ,Inc. | Solar thermoelectric and thermal cogeneration |
| US20080314438A1 (en) * | 2007-06-20 | 2008-12-25 | Alan Anthuan Tran | Integrated concentrator photovoltaics and water heater |
| US20090260674A1 (en) * | 2007-10-30 | 2009-10-22 | Linke Edward J | Concentrated Solar Photovoltaic Module With Protective Light Shielding |
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| US7855336B2 (en) * | 2007-10-30 | 2010-12-21 | Opel, Inc. | Concentrated solar photovoltaic module with protective light shielding |
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| US10535904B2 (en) * | 2007-11-27 | 2020-01-14 | Gridkicker, Llc | Autonomous, modular power generation, storage and distribution apparatus, system and method thereof |
| US9882249B2 (en) * | 2007-11-27 | 2018-01-30 | Solaroad Technologies Group, Llc | Autonomous, modular power generation, storage and distribution apparatus, system and method thereof |
| US20090133733A1 (en) * | 2007-11-27 | 2009-05-28 | Retti Kahrl L | Autonomous, modular power generation, storage and distribution apparatus, system and method thereof |
| US9435571B2 (en) | 2008-03-05 | 2016-09-06 | Sheetak Inc. | Method and apparatus for switched thermoelectric cooling of fluids |
| US20110016886A1 (en) * | 2008-03-05 | 2011-01-27 | Uttam Ghoshal | Method and apparatus for switched thermoelectric cooling of fluids |
| EP2269235A4 (en) * | 2008-03-14 | 2016-06-29 | Wedge Technologies Llc | SYSTEM FOR PRODUCING SOLAR ENERGY |
| US20110000224A1 (en) * | 2008-03-19 | 2011-01-06 | Uttam Ghoshal | Metal-core thermoelectric cooling and power generation device |
| US20090250098A1 (en) * | 2008-04-07 | 2009-10-08 | Eric Ting-Shan Pan | Method for Solar-To-Electricity Conversion |
| US20090250097A1 (en) * | 2008-04-07 | 2009-10-08 | Eric Ting-Shan Pan | Solar-To-Electricity Conversion System |
| US20090250096A1 (en) * | 2008-04-07 | 2009-10-08 | Eric Ting-Shan Pan | Solar-To-Electricity Conversion Sub-Module |
| US20090250099A1 (en) * | 2008-04-07 | 2009-10-08 | Eric Ting-Shan Pan | Solar-To-Electricity Conversion System Using Cascaded Architecture of Photovoltaic and Thermoelectric Devices |
| WO2009126539A1 (en) * | 2008-04-07 | 2009-10-15 | Eric Ting-Shan Pan | Solar-to-electricity conversion modules, systems & methods |
| WO2009129599A1 (en) * | 2008-04-22 | 2009-10-29 | Mihai Grumazescu | Optical assembly for concentrating photovoltaics |
| US8307822B2 (en) * | 2008-10-06 | 2012-11-13 | Hewlett-Packard Development Company, L.P. | High efficiency solar energy devices and methods |
| US20100083953A1 (en) * | 2008-10-06 | 2010-04-08 | Scott Lerner | High efficiency solar energy devices and methods |
| US8664514B2 (en) * | 2008-10-13 | 2014-03-04 | George M. Watters | Multiplexing solar light chamber |
| US20100089436A1 (en) * | 2008-10-13 | 2010-04-15 | Watters George M | Multiplexing solar light chamber |
| ITMI20090224A1 (en) * | 2009-02-19 | 2010-08-20 | Integra Renewable En S R L | DEVICE FOR THE CONVERSION OF SOLAR ENERGY IN THERMAL AND ELECTRIC ENERGY. |
| ITMI20090298A1 (en) * | 2009-02-27 | 2010-08-28 | Itec Srl | SYSTEM FOR THE CONVERSION OF SOLAR ENERGY |
| WO2010118503A1 (en) * | 2009-04-15 | 2010-10-21 | Richard Norman | Systems for cost-effective concentration and utilization of solar energy |
| US9995507B2 (en) | 2009-04-15 | 2018-06-12 | Richard Norman | Systems for cost-effective concentration and utilization of solar energy |
| US20100263709A1 (en) * | 2009-04-15 | 2010-10-21 | Richard Norman | Systems for cost-effective concentration and utilization of solar energy |
| ES2375032A1 (en) * | 2009-04-17 | 2012-02-24 | Jesús Jiménez Astorga | Apparatus and procedure to obtain electrical energy by the demagnetization, partial and asymmetric, of a rotary ferromagnetic assembly submitted to a concentrated, focused and producing thermal radiation of very high temperatures. (Machine-translation by Google Translate, not legally binding) |
| WO2010128767A3 (en) * | 2009-05-08 | 2011-03-31 | Kim Ju Su | Solar collecting apparatus and method for manufacturing a photocatalyst filter used in same |
| KR100913556B1 (en) | 2009-05-08 | 2009-08-21 | 김주수 | Solar light collecting device and manufacturing method of photocatalyst filter used therein |
| US20120048322A1 (en) * | 2009-06-19 | 2012-03-01 | Uttam Ghoshal | Device for converting incident radiation into electrical energy |
| US8904808B2 (en) | 2009-07-17 | 2014-12-09 | Sheetak, Inc. | Heat pipes and thermoelectric cooling devices |
| FR2951251A1 (en) * | 2009-10-08 | 2011-04-15 | Soitec Silicon On Insulator | Hybrid energy producing system, has thermal solar energy system provided with circulation pipe, and photovoltaic system provided with photovoltaic cell that is arranged in convergence place, of complementary radiation |
| US20110100430A1 (en) * | 2009-11-05 | 2011-05-05 | AgilePower Systems, Inc | Hybrid photovoltaic and thermionic energy converter |
| US20110186108A1 (en) * | 2010-01-19 | 2011-08-04 | Huazhong University Of Science And Technology | Ring architecture for high efficiency solar cells |
| WO2011088781A1 (en) * | 2010-01-19 | 2011-07-28 | 华中科技大学 | Dispersion type solar cells adopting photonic crystals |
| US20110290294A1 (en) * | 2010-05-25 | 2011-12-01 | Samsung Electro-Mechanics Co., Ltd; | Device for converting energy and method for manufacturing the device, and electronic apparatus with the device |
| US8614391B2 (en) * | 2010-05-25 | 2013-12-24 | Samsung Electro-Mechanics Co., Ltd. | Device for converting energy and method for manufacturing the device, and electronic apparatus with the device |
| JP2012039756A (en) * | 2010-08-06 | 2012-02-23 | Sintokogio Ltd | Thermoelectric power generating unit |
| CN101924505A (en) * | 2010-10-08 | 2010-12-22 | 杨向民 | Solar energy temperature difference generating set |
| US20120174908A1 (en) * | 2011-01-12 | 2012-07-12 | Robert Warren Geris | Solar collection system and solar collector therefor |
| US8893710B2 (en) * | 2011-01-12 | 2014-11-25 | Robert Warren Geris | Solar collection system and solar collector therefor |
| US9997654B2 (en) * | 2011-01-31 | 2018-06-12 | Azur Space Solar Power Gmbh | Solar cell receiver |
| US20140026959A1 (en) * | 2011-01-31 | 2014-01-30 | Azur Space Solar Power Gmbh | Solar cell receiver |
| CN102103258A (en) * | 2011-02-25 | 2011-06-22 | 浙江大学 | Dish condensation-based solar energy secondary condensation frequency division method and device |
| ITPN20110026A1 (en) * | 2011-04-21 | 2012-10-22 | Microtecnologie Srl | MODULAR SOLAR COLLECTOR WITH CONCENTRATION OF SOLAR RAYS THROUGH DOUBLE REFLECTION FOR THE CONVERSION OF SOLAR ENERGY IN THERMO-PHOTOVOLTAIC ENERGY. |
| CN102878699A (en) * | 2011-04-29 | 2013-01-16 | 通用电气公司 | Hybrid solar concentration device |
| EP2571064A1 (en) * | 2011-09-13 | 2013-03-20 | Multi.Bay SA | Hybrid solar concentrator comprising concentrating means, a photovoltaic device and a thermal device for producing electricity |
| ITMI20111643A1 (en) * | 2011-09-13 | 2013-03-14 | Franco Baldi | LENTICULAR ELECTRIC CURRENT GENERATOR WITH CONCENTRATION OF PHOTONS WITH HYBRID THERMAL REACTION AND COMPACT TO DIFFERENT FOCUSING OF VISIBLE AND INVISIBLE LIGHT |
| US20130215929A1 (en) * | 2012-02-16 | 2013-08-22 | Semprius, Inc. | Indirect temperature measurements of direct bandgap (multijunction) solar cells using wavelength shifts of sub-junction luminescence emission peaks |
| US10320328B2 (en) | 2012-03-30 | 2019-06-11 | International Business Machines Coporation | Photovoltaic thermal hybrid systems and method of operation thereof |
| US9153722B2 (en) | 2012-03-30 | 2015-10-06 | International Business Machines Corporation | Photovoltaic module cooling devices |
| US9219183B2 (en) | 2012-03-30 | 2015-12-22 | International Business Machines Corporation | Photovoltaic thermal hybrid solar receivers |
| US9437766B2 (en) | 2012-03-30 | 2016-09-06 | International Business Machines Corporation | Photovoltaic thermal hybrid systems and method of operation thereof |
| CN103684210A (en) * | 2012-08-30 | 2014-03-26 | 中国科学院上海高等研究院 | Spectral compensation type solar photovoltaic power generation system |
| CN103036479A (en) * | 2012-12-10 | 2013-04-10 | 中国京冶工程技术有限公司 | Concentrating photovoltaic system with position of optical axis fixed |
| CN103414380A (en) * | 2013-03-20 | 2013-11-27 | 西安明光太阳能有限责任公司 | Gallium arsenide solar energy secondary power generator capable of achieving waste heat utilization |
| CN103258893A (en) * | 2013-03-20 | 2013-08-21 | 西安明光太阳能有限责任公司 | Domestic gallium arsenide solar power generating and water heating device installed out of balcony |
| CN103199744A (en) * | 2013-03-20 | 2013-07-10 | 西安明光太阳能有限责任公司 | Gallium arsenide solar power generation system capable of achieving waste-heat utilization |
| CN103208552A (en) * | 2013-03-20 | 2013-07-17 | 西安明光太阳能有限责任公司 | Gallium arsenide solar power generation device adopting step slope reflective condensation |
| US9876133B2 (en) * | 2014-08-19 | 2018-01-23 | King Fahd University Of Petroleum And Minerals | Photovoltaic system for spectrally resolved solar light |
| US20160056756A1 (en) * | 2014-08-19 | 2016-02-25 | King Fahd University Of Petroleum And Minerals | Photovoltaic system for spectrally resolved solar light |
| KR101715667B1 (en) * | 2015-06-29 | 2017-03-14 | 한국광기술원 | Solar light and heat hybrid system dividing the wavelength of solar light |
| KR20170002733A (en) * | 2015-06-29 | 2017-01-09 | 한국광기술원 | Solar light and heat hybrid system dividing the wavelength of solar light |
| CN105245181A (en) * | 2015-09-23 | 2016-01-13 | 同济大学 | A solar concentrating frequency division utilization system embedded in a thermoelectric power generation module |
| CN105577032A (en) * | 2015-12-15 | 2016-05-11 | 中国计量学院 | Unit type photoelectric-thermoelectric-hot water composite system by use of solar energy full spectrum |
| US10050165B2 (en) * | 2016-04-12 | 2018-08-14 | International Business Machines Corporation | Photovoltaic system with non-uniformly cooled photovoltaic cells |
| US11094840B2 (en) | 2016-04-12 | 2021-08-17 | International Business Machines Corporation | Photovoltaic system with non-uniformly cooled photovoltaic cells |
| CN109150090A (en) * | 2018-08-21 | 2019-01-04 | 河海大学常州校区 | A kind of condensation photovoltaic cogeneration system based on light splitting principle |
| CN110108309A (en) * | 2019-03-26 | 2019-08-09 | 长江大学 | A kind of high sensitivity photoelectric sensor device |
| US12446467B2 (en) | 2020-04-14 | 2025-10-14 | Sheetak, Inc. | Thermoelectric energy harvesting apparatus system and method |
| CN112833568A (en) * | 2021-01-07 | 2021-05-25 | 南京师范大学 | A light-converging and heat-collecting device based on rotating prism tracking and its method |
| US12180919B2 (en) | 2021-12-03 | 2024-12-31 | Power8 Tech. Inc. | Power tunnel |
| US12234797B2 (en) | 2021-12-03 | 2025-02-25 | Powers8 TECH INC. | Smart controlling systems for energy storage |
| US12253285B2 (en) | 2021-12-03 | 2025-03-18 | Power8 Tech. Inc. | Geothermal energy storage and conversion systems and methods |
| US12355238B2 (en) | 2021-12-03 | 2025-07-08 | Power8 Tech. Inc. | Energy storage systems and methods using heterogeneous pressure media and interactive actuation module |
| US12352232B2 (en) | 2021-12-03 | 2025-07-08 | Power8 Tech. Inc. | Power tunnel |
| US12305622B2 (en) | 2022-09-13 | 2025-05-20 | Power8 Tech. Inc. | Concentrated solar power storage system and method |
| WO2024059093A1 (en) * | 2022-09-13 | 2024-03-21 | Power8 Tech Inc. | Concentrated solar power storage system and method |
| CN118694304A (en) * | 2024-06-07 | 2024-09-24 | 浙江泰能光电有限公司 | A new type of solar photovoltaic module |
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| US20100269880A1 (en) | 2010-10-28 |
| US8188366B2 (en) | 2012-05-29 |
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