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Mittal et al. (2005) modelled a solar-powered H2O.LiBr absorption air conditioning system using the weather conditions at Bahal (Haryana), India. Their simulation results showed that variations in the inlet hot water temperature to the generator affected the surface area of the system components (generator, evaporator, absorber and condenser). They also found that an increase in the hot water temperature increased the coefficient of performance (COP) and decreased the surface area of the system components and vice versa. Rafferty (undated) found that the COP and capacity of an ACs system are mostly affected by the generator heat input conditions. He also confirmed that it could also be affected by other variables, such as the condenser and chilled water temperature and flow rates. He found that the performance of the basic H2O.LiBr ACs system could be improved by operating the chillers’ input stage at constant temperature rather than constant pressure, since the former tends to lower the thermodynamic irreversibility in the cycle. Younes et al. (2005) carried out an optimal design and economic study of a solar air conditioning ACs system. They concluded that the machine would be very economical for application in Lebanon. Their analysis showed that for a 2110 kW capacity, the payback period was about six years. Florides et al. (2002) designed and constructed a single stage H2O.LiBr absorption machine. From their analysis, they found that the greater the difference between the absorber LiBr inlet and outlet percentage ratios, the smaller the mass circulating in the absorber. They also found that an increase in the surface area of the solution heat exchanger produces an 65

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