Patent classifications
F24S20/30
Solar grill and oven
A solar barbeque and solar oven combination that provides for solar cooking, grill-style or oven-style, outdoors. The grill portion sits on top and has a glass cooking surface. Beneath the cooking surface are a series of louvers that can be open and closed to control temperature. A volume of space below the louvers has mirrored surfaces for the collection of solar energy. A side table is foldable and attached to the grill portion for additional mirrored surfaces and grilling surface area. Below the grill is a solar oven being enclosed on three sides and having doors in the front made of glass that are openable with wooden handles. Inside of the solar oven are mirrored surfaces and a grill/ surface for cooking. On the bottom of the interior of the oven is a heat capturing and/or storing device such as a heating stone or metal heat battery. The entire apparatus includes support legs with wheels and a handle for easy transport.
Solar grill and oven
A solar barbeque and solar oven combination that provides for solar cooking, grill-style or oven-style, outdoors. The grill portion sits on top and has a glass cooking surface. Beneath the cooking surface are a series of louvers that can be open and closed to control temperature. A volume of space below the louvers has mirrored surfaces for the collection of solar energy. A side table is foldable and attached to the grill portion for additional mirrored surfaces and grilling surface area. Below the grill is a solar oven being enclosed on three sides and having doors in the front made of glass that are openable with wooden handles. Inside of the solar oven are mirrored surfaces and a grill/ surface for cooking. On the bottom of the interior of the oven is a heat capturing and/or storing device such as a heating stone or metal heat battery. The entire apparatus includes support legs with wheels and a handle for easy transport.
WATER COOLED PHOTOVOLTAIC PANEL SYSTEM
A cooling system for a photovoltaic panel including micro flat heat pipes (HP) integrated with thermoelectric generators (TEG) and a cooled water reservoir for cooling the working fluid in heat pipes. The cooled water in the reservoir is pumped from the condensate pan of an air conditioner. Experimental results show that cooling system reduced the average temperature of the panel by as much as 19° C. or 25%. Further, the output power of the photovoltaic panel increased by 44% when the photovoltaic panel was used in a very hot climate (30-40° C.). An additional two watts of power was generated by the TEGs.
WATER COOLED PHOTOVOLTAIC PANEL SYSTEM
A cooling system for a photovoltaic panel including micro flat heat pipes (HP) integrated with thermoelectric generators (TEG) and a cooled water reservoir for cooling the working fluid in heat pipes. The cooled water in the reservoir is pumped from the condensate pan of an air conditioner. Experimental results show that cooling system reduced the average temperature of the panel by as much as 19° C. or 25%. Further, the output power of the photovoltaic panel increased by 44% when the photovoltaic panel was used in a very hot climate (30-40° C.). An additional two watts of power was generated by the TEGs.
MULTI-SOURCE HEAT EXCHANGE SYSTEM EMPLOYING A GROUND-ENERGY STORAGE SYSTEM FOR CONTROLLED ENVIRONMENT ENCLOSURES
A multi-source ground-to-air heat transfer system is configured to store thermal energy during a cooling/dehumidifcation mode of operation for future use during a heating mode of operation. The multi-source ground-to-air heat transfer system utilizes a ground loop that is configured under an enclosure, such as a greenhouse, and is in thermal communication with a thermal reservoir medium to conduct and store heat. A thermal exchange fluid is pumped through the ground loop and ground heat exchanger and may receive heat from a condenser during a cooling/dehumidification mode of operation and may liberate heat to the evaporator during a heating mode. The enclosure air may receive heat from the heat pump during a heating mode and may liberate heat to the evaporator during a cooling/dehumidification mode. The heat exchange system may employ a heat pump having a reversing valve to change the mode of operation.
COOLING SYSTEM FOR PHOTOVOLTAIC PANEL
A cooling system for a photovoltaic panel including micro flat heat pipes (HP) integrated with thermoelectric generators (TEG) and a cooled water reservoir for cooling the working fluid in heat pipes. The cooled water in the reservoir is pumped from the condensate pan of an air conditioner. Experimental results show that cooling system reduced the average temperature of the panel by as much as 19° C. or 25%. Further, the output power of the photovoltaic panel increased by 44% when the photovoltaic panel was used in a very hot climate (30-40° C.). An additional two watts of power was generated by the TEGs.
COOLING SYSTEM FOR PHOTOVOLTAIC PANEL
A cooling system for a photovoltaic panel including micro flat heat pipes (HP) integrated with thermoelectric generators (TEG) and a cooled water reservoir for cooling the working fluid in heat pipes. The cooled water in the reservoir is pumped from the condensate pan of an air conditioner. Experimental results show that cooling system reduced the average temperature of the panel by as much as 19° C. or 25%. Further, the output power of the photovoltaic panel increased by 44% when the photovoltaic panel was used in a very hot climate (30-40° C.). An additional two watts of power was generated by the TEGs.
TUBULAR RECEIVER FOR HEATING PARTICLES WITH SOLAR ENERGY
A particle receiver includes an inlet, an outlet and multiple tubes rotatably coupled to the inlet and the outlet. The tubes receive particles via the inlet, the particles passing along a passageway of each of the tubes to the outlet. The tubes receive a solar flux as they rotate to heat the particles passing through the tubes. A heat transfer coefficient of the particles is increased by increased mixing via air flowing in the tubes, fins used to mix the particles or via channels via which the particles pass through that increase turnover and mixing of the particles.
TUBULAR RECEIVER FOR HEATING PARTICLES WITH SOLAR ENERGY
A particle receiver includes an inlet, an outlet and multiple tubes rotatably coupled to the inlet and the outlet. The tubes receive particles via the inlet, the particles passing along a passageway of each of the tubes to the outlet. The tubes receive a solar flux as they rotate to heat the particles passing through the tubes. A heat transfer coefficient of the particles is increased by increased mixing via air flowing in the tubes, fins used to mix the particles or via channels via which the particles pass through that increase turnover and mixing of the particles.
Solar-heated thermo-chemical decontamination systems for facemasks or other personal protection equipment (PPE)
A system includes a containment vessel configured to receive and hold one or more pieces of personal protection equipment to be heated and decontaminated during a decontamination process. The system also includes a solar collection device configured to heat the containment vessel based on received solar energy. The solar collection device includes a body having a first portion and a second portion. The first portion includes a solar aperture configured to receive the solar energy. The second portion is configured to receive the containment vessel within the body of the solar collection device. The solar collection device also includes louvered slats across the solar aperture. The louvered slats are configured to be rotated in order to control an amount of solar energy passing through the solar aperture into the body of the solar collection device.