Adsorption refrigeration

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Adsorption refrigeration ( adsorption-refrigeration )

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ARTICLE IN PRESS 436 R.Z. Wang, R.G. Oliveira / Progress in Energy and Combustion Science 32 (2006) 424–458 As can be seen in Fig. 18, the chilled water inlet temperatures greatly affect both the average cooling power and the cycle COP of the chiller. Thus, whenever possible, the highest inlet water tempera- ture should be used to ensure high performance of the chiller. Two chillers, similar to the one described previously, but with a higher nominal capacity, are used in the air conditioning system of a ‘‘green’’ building located in the Shanghai Research Institute of Building Science. The chillers, shown in Fig. 19b, were installed in the equipment room located on the top floor of the building, and they operate from 9:30 AM to 4:30 PM. Experiments performed when the daily solar radiation was 19.2 MJ m􏰃2, showed that the chillers had an average cooling power of about 12kW, with corresponding cycle and solar COP of 0.28 and 0.09, respectively. The silica gel beds of these chillers are regenerated by hot water at 65 1C, produced in 170 m2 of U-type evacuated tube collectors. The average efficiency of the solar collectors is about 36%. If the hot water supplied to the chiller reaches approximately 85 1C, which could be expected on sunny summer days, the average daily cooling power could be close to 15 kW. Apart from the presented studies from the scientific literature, the European project Climasol [84] presented examples of buildings that already use solar-powered sorption air conditioners. The examples presented include applications of solid sorption chillers and solid desiccant systems. Some of the chillers were installed in a university hospital located in Freiburg, Germany, and in the cosmetic company Sarantis S.A., in Greece, while some of the solid desiccant systems were installed in the Fig. 16. Scheme of SDERC [82].

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