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Concentrating Solar Power

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Concentrating Solar Power ( concentrating-solar-power )

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Fig. 3.3.5-2 Active solar water-heating system for cold climates. Warm-Climate SWH Reference System. The 2006 technology baseline is a traditional ICS system: 32 ft2 in area and 40 gallons in volume. The absorber/storage is composed of large-diameter, pressurized copper tubes in series, and the glazing is tempered glass. The auxiliary storage tank is a conventional 40-gallon electric water heater. Cold-Climate SWH Reference System. The 2006 technology baseline is an active SWH system that uses glycol as the heat-transfer fluid. The collector area is 40 ft2 and the solar storage tank volume is 60 gallons. The copper absorber in the glazed flat-plate collector has a selective, low-emissivity surface. The heat exchanger is a metal coil or shell-in-tube design with copper piping throughout the system. A differential controller activates the AC-powered circulating pump. The auxiliary storage tank is a conventional 40-gallon electric water heater. Combined Heating and Cooling Reference System. The 2006 technology baseline is an active solar space-heating and water-heating system (no cooling) that uses glycol as the heat-transfer fluid. The collector area is 200 ft2 and the solar storage tank volume is 800 gallons. The copper absorber in the glazed flat-plate collectors has a selective, low- emissivity surface. The heat exchanger is a metal coil or shell-in-tube design with copper piping throughout the system. A differential controller activates the AC-powered circulating pump. Hybrid Solar Lighting The HSL system uses a roof-mounted solar collector to concentrate visible sunlight into a bundle of plastic optical fibers. These fibers penetrate the roof and distribute the sunlight to multiple “hybrid” luminaires within the building. The “hybrid” luminaires blend the natural light with artificial light (of variable intensity), maintaining a constant room illuminance. When sunlight is abundant, the fiber optics in the luminaires provide all or most of the light needed in an area. During times of little or no sunlight, a sensor controls the intensity of the artificial lamps to maintain a desired illumination level. Unlike conventional electric lamps, the natural light produces little to no waste heat (with an efficacy of 200 lumens/watt) and is cool to the touch. Because the optical fibers lose light intensity with increasing length, a maximum length exists over which the light can be distributed. 85

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