三效吸收式制冷机的热力学评价

R. Gomri
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引用次数: 18

摘要

水溴化锂蒸汽吸收式冷却系统,单效和双效,被广泛应用于空调。然而,关于三效吸收式冷却系统的研究相对较少,已发表的文献中对该系统的火用分析较少。本文对三效溴化锂-吸收式制冷系统进行了火用分析。对系统各组成部分进行了火用分析。计算了三效溴化锂/吸水体系中存在的所有火用损失。除计算系统的性能系数和用能效率外,还估算了系统各组成部分的用能数。分析了HPG温度对常用冷冻水温度(12°C/7°C)的影响。在LPG和MPG温度的最大值下,得到了最大性能系数(COP)和火用效率(?exergy)。对于给定的MPG温度,有一个三效吸收式冷却系统可以运行的LPG温度区间。超过这个温度区间,系统就不再工作了。对于常用的冷凝器和吸收器冷却水温度(25°C/30°C)和冷冻水温度(12°C/7°C),三效制冷系统的最大火用效率值约为35.1%。三效制冷机比双效制冷机效率更高。这些冷却器需要更高的工作温度,这可能会限制材料和制冷剂/吸收剂对的选择。本研究中所使用的第二定律分析有助于识别系统中具有高火用损失的部件。本文的火用分析结果可用于三效吸收式冷却系统的热经济优化。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Thermodynamic evaluation of triple effect absorption chiller
Water lithium bromide vapour absorption cooling systems, both single and double effect, are being used extensively for air conditioning. However, relatively few works are available on triple effect absorption cooling system and the published literatures are silent on the exergetic analysis of this system. This paper deals with the exergy analysis of the triple-effect LiBr-water absorption refrigerating system. The exergy analysis is carried out for each component of the system. All exergy losses that exist in triple effect lithium bromide/water absorption system are calculated. In addition to the coefficient of performance and the exergetic efficiency of the system, the number of exergy of each component of the system is also estimated. The effect of HPG temperature was analysed for a commonly used chilled water temperature (12° C/7°C). The maximum coefficient of performance (COP) and exergy efficiency (?exergy), are obtained for a maximum value of LPG and MPG temperatures. For a given MPG temperature there is an interval of LPG temperature for which the triple effect absorption cooling system can operate. Out from this interval of temperature the system does not function any more. For commonly used condenser and absorber cooling water temperature (25°C/30°C) and chilled water temperature (12°C/7°C) the maximum exergetic efficiency value of the triple effect refrigeration system is about 35.1 % Triple-effect chillers can achieve even higher efficiencies than the double-effect chillers. These chillers require still higher elevated operating temperatures that can limit choices in materials and refrigerant/absorbent pairs. The second law analysis used in this study facilitates the identification of the system components with high exergy loss. The results of the exergy analysis presented in this paper can be used in thermo-economic optimization of triple effect absorption cooling system.
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