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Kaynakli and Kilic (2006) conducted a theoretical study on the effects of operating conditions on the performance of H2O.LiBr AR systems. From their study, they found that variations in the operating temperatures and the effectiveness of heat exchangers affected the performance of the system. They concluded that the thermal load of the components and COP of the system increased with increasing generator and evaporator temperature and decreased with increasing condenser and absorber temperature. They also found that the SHE had more effect on the parameters of the system than the RHE. Castro et al. (2007) modelled the components of the AC system (generator, evaporator, condenser and absorber) and validated the model with experimental results. From their evaluation, they found that within the allowable experimental error, the model was able to predict the component behaviour of the AC system. They proposed that one useful way of reducing the final size of the heat and mass exchange components (especially the absorber, generator and evaporator) was to improve their wetted area. Izquierdo et al. (2003) investigated the limit caused by crystallization in the operation of an air-cooled solar-powered (using flat plate collectors) double- stage H2O.LiBr ACs system and compared the performance with a single- stage system. They found that the efficiency gain of the double-stage over the single-stage system increased as the condensation temperature increased. Their analysis also showed that the single-stage system could not operate at condensation temperatures higher than 40oC as a result of the 73

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