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Process development and exergy analysis of a novel hybrid fuel cell-absorption refrigeration system utilizing nanofluid as the absorbent liquid

机译:利用纳米流体作为吸收性液体新型混合燃料电池吸收制冷系统的过程开发和漏洞分析

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A hybrid system including high-temperature polymer fuel cell with capacity of 5 kW along with fuel processing unit for producing rich hydrogen from natural gas integrated by a 3 kW absorption chiller has been developed. The waste heat of flue gas from the burners is utilized in the ammonia-water absorption chiller for refrigerating purposes. The hybrid refrigeration system is simulated by Aspen HYSYS software in a steady state condition. After defining the properties of nanoparticles in HYSYS software, the water-based nanofluids are employed as absorbent liquid for increasing of COP in the refrigeration system, and their effects have been evaluated on overall system performance. The electrochemical model of the fuel cell as well as the main parameters of refrigeration system have been validated with experimental results and similar works. Electrical efficiency and overall efficiency of the hybrid system are equal to 36% and 77.3%, respectively. The overall efficiency in the presence of silver nanofluid can be increased up to 81%. Exergy analysis has been conducted for the hybrid system, and the obtained exergy efficiency of the system is equal to 29%. Sensitivity analysis has been employed for evaluating of significant parameters on the hybrid system performance. (C) 2018 Elsevier Ltd and IIR. All rights reserved.
机译:已经开发了一种混合系统,其包括具有5 kW的高温聚合物燃料电池以及用于生产来自3kW吸收冷却器集成的天然气的燃料加工单元的燃料加工单元。来自燃烧器的烟道气的废热用于制冷目的的氨吸收冷却器。混合制冷系统由Aspen Hysys软件在稳定状态条件下模拟。在定义Hysys软件中纳米颗粒的性质之后,水基纳米流体被用作吸收性液体,用于增加制冷系统中的警察,并对整体系统性能进行评估。用实验结果和类似作品验证了燃料电池的电化学模型以及制冷系统的主要参数。混合系统的电效率和整体效率分别等于36%和77.3%。银纳米流体存在的整体效率可以增加高达81%。对混合动力系统进行了漏洞分析,该系统的获得高度效率等于29%。敏感性分析已经用于评估混合系统性能的重要参数。 (c)2018年Elsevier Ltd和IIR。版权所有。

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