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Energy saving performance assessment of the hybrid refrigeration cycle with working pairs of HFCs and organic absorbents

机译:杂交制冷循环的节能性能评估,具有HFC和有机吸收剂的工作对

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With the aim to developing the potential working pairs for the absorption-compression hybrid refrigeration cycle, the energy saving performance of nine different working pairs composed of fluorohydrocarbon refrigerants (HFCs) and organic absorbents have been evaluated. The investigated refrigerants in this work include 1,1,1,2-tetrafluoroethane (R134a), 1,1-difluoroethane (R152a), difluoromethane (R32) and various organic compounds such as N,N-dimethylfomamide (DMF), N/N-dimethylacetamide (DMAC) and dimethylether diethylene glycol (DMEDEG) constitute the absorbents. Especially, the thermodynamics properties of the systems R134a + DMAC, R152a + DMF, R152a + DMAC, R152a + DMEDEG, R32 + DMAC and R32+DMEDEG have been measured and evaluated in our previous works. Firstly, with the aid of Aspen Plus software, the overall coefficient performance (COP_(HC)) and circulation ratio (f) of the hybrid refrigeration cycle were calculated for the nine working pairs. Then the systems R32 + DMF, R32 + DMAC, R152a + DMAC and R134a + DMF were selected as the potential working pairs based on above cycle performance for further simulation study. In addition, on the basis of two new cycle evaluation criterions, the heat powered coefficient of performance (ω) and electricity saving rate (η), the effects of generator temperature, absorber temperature and compressor outlet pressure ratio (λ) on the energy saving performance were also discussed. The results show that the ω and η values increase with increasing generator temperatures, but decrease with increasing absorber temperatures. It is also found that the systems R152a + DMAC and R134a + DMF exhibit obvious advantage in electricity saving benefits than others when the generator temperature is higher than 80°C. What's more, under the specified working conditions, there is an optimum compressor outlet pressure ratio which corresponds to the maximum ω and η values of the hybrid refrigeration cycle. The maximum electricity saving rate value 66.33% is obtained by the system R152a + DMAC, followed by R134a + DMF, R32 + DMF and R32 + DMAC systems, the maximum electricity saving rate values of them are 62.65%, 50.01% and 46.03%, respectively. In terms of overall energy saving performances, the systems R152a + DMAC and R134a + DMF are better options to be investigated and developed as the working pairs for the hybrid refrigeration cycle.
机译:以目标开发用于吸收压缩混合式冷冻循环的潜在工作对,氟代烃的制冷剂(氢氟碳化合物)和有机吸收剂组成九个不同的工作对节能性能进行了评价。在这项工作中所研究的制冷剂包括1,1,1,2-四氟乙烷(R134a)单体,1,1-二氟乙烷(R152a),二氟甲烷(R32)以及诸如N,N-二甲基甲酰胺(DMF),N各种有机化合物/ N-二甲基乙酰胺(DMAC)和二甲醚的二甘醇(DMEDEG)构成吸收剂。特别是,该系统的R134a + DMAC,R152a的+ DMF,R152a的+ DMAC,R152a的+ DMEDEG,R32 + DMAC和R32 + DMEDEG的热力学性能进行了测量,并在我们以前的工作进行评估。首先,利用Aspen Plus软件的帮助下,该混合制冷循环的总体性能系数(COP_(HC))和循环比(F)分别计算的九个工作对。然后,系统R32 + DMF,R32 + DMAC,R152a的+ DMAC和R134a + DMF被选定为基于用于进一步模拟研究以上的循环性能的潜在工作对。此外,两个新的周期评价标准的基础上,在热动力性能(ω)和节电率(η)系数,发生器温度的影响,吸收体上的节能温度和压缩机出口压力比(λ)性能也进行了讨论。结果表明,ω,η值随温度发生增加,但随着气温吸收增加而降低。研究还发现,该系统的R152a的+ DMAC和R134a + DMF在节电比他人谋取利益当发电机温度高于80℃,表现出明显的优势。更重要的是,规定的工作条件下,存在一个最佳的压缩机出口压力比,其对应于最大ω和混合制冷循环的η值。最大节电率值66.33%是由系统R152a的+ DMAC得到,随后的R134a + DMF,R32 + DMF和R32 + DMAC系统时,它们的最大节电率值是62.65%,50.01%和46.03%,分别。在整体节能性能方面,该系统R152a的+ DMAC和R134a + DMF是更好的选择来进行调查,并作为混合制冷循环中的工作对开发。

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