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Performance analysis on modified cycle of double absorption heat transformer with solution and coolant heat regeneration

机译:具有溶液和冷却液再生的双吸收式热转换器的修正循环性能分析

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摘要

A modified cycle of double absorption heat transformer with heat regeneration of both solution and coolant is proposed by adding a heat exchanger at the inlet of coolant and outlet of dilute solution of the absorber-evaporator. The performances of three cycle schemes of double absorption heat transformers without regeneration, with solution heat regeneration and with both solution and coolant heat regeneration for absorber-evaporator are calculated and compared. The results show that the double absorption heat transformer with both solution and coolant heat regeneration has a wider operating range of absorption-evaporation temperature and higher coefficient of performance (COP) and exergy efficiency. When the temperatures of absorption, generation, condensation and absorption-evaporation are respectively 120-150 degrees C, 70 degrees C, 25 degrees C and 80-115 degrees C, the average values of COP or exergy efficiency of the new cycle is 8-9% and 2.5-3.5% respectively higher than the ones without heat regeneration and with solution heat regeneration only. The variation trends of COP and exergy efficiency of three cycles versus the temperatures of absorption-evaporation, condensation, generation and absorption are also presented. The impacts of absorption-evaporation temperature on COP and exergy efficiency under different temperature combinations of generation, absorption and condensation are presented for optimal design of the new double absorption heat transformers. (C) 2016 Elsevier Ltd. All rights reserved.
机译:通过在吸收剂-蒸发器的冷却剂入口和稀溶液出口处增加一个热交换器,提出了一种具有吸收溶液和冷却剂热量的双吸收换热器的改进循环。计算并比较了吸收器-蒸发器不带再生,带溶液热再生以及带溶液和冷却剂热再生的三吸收式双吸收式热转换器的三种循环方案的性能。结果表明,具有溶液和冷却剂热再生功能的双吸收式换热器具有更宽的吸收蒸发温度工作范围,以及更高的性能系数(COP)和火用效率。当吸收,产生,冷凝和吸收-蒸发的温度分别为120-150摄氏度,70摄氏度,25摄氏度和80-115摄氏度时,新循环的COP或火用效率的平均值为8-分别比没有热再生和仅固溶热再生的分别高9%和2.5-3.5%。还给出了COP的变化趋势和三个循环的火用效率相对于吸收蒸发,冷凝,生成和吸收的温度。针对新型双吸收式热转换器的优化设计,提出了在不同的发电,吸收和冷凝温度组合下,吸收蒸发温度对COP和火用效率的影响。 (C)2016 Elsevier Ltd.保留所有权利。

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