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首页> 外文期刊>International Journal of Refrigeration >Working fluids comparison and thermodynamic analysis of a transcritical power and ejector refrigeration cycle (TPERC)
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Working fluids comparison and thermodynamic analysis of a transcritical power and ejector refrigeration cycle (TPERC)

机译:跨临界功率和喷射器制冷循环(TPERC)的工作流体比较和热力学分析

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The combined power and cooling cycles driven by waste heat and renewable energy can provide different kinds of energy forms and achieve a higher thermodynamic efficiency. However, only a few researchers have focused on the improvement of temperature matching between the heat source and working fluid. This paper proposes a transcritical power and ejector refrigeration cycle (TPERC) to improve temperature matching between the heat source and working fluid. Based on the modelling of the TPERC system, a comparison of working fluids and the effects of system parameters on the cooling capacity, work output, thermal efficiency and exergy efficiency are discussed. The results show that of the seven working fluids selected, R1234ze has the largest thermal efficiency and exergy efficiency, principally due to having the highest critical temperature. At the identical turbine back pressure, condensing temperature and evaporation temperature, the turbine inlet temperature and its corresponding generation pressure have little impact on thermal efficiency. (C) 2017 Elsevier Ltd and IIR. All rights reserved.
机译:废热和可再生能源驱动的组合电力和冷却循环可以提供不同种类的能量形式并实现更高的热力学效率。然而,只有一些研究人员专注于改善热源和工作流体之间的温度匹配。本文提出了一种跨临界功率和喷射器制冷循环(TPERC),以改善热源和工作流体之间的温度匹配。基于TPERC系统的建模,讨论了工作流体的比较和系统参数对冷却能力,工作输出,热效率和高效效率的比较。结果表明,选择的七个工作流体,R1234ZE具有最大的热效率和高效效率,主要是由于具有最高的临界温度。在相同的涡轮后压力下,冷凝温度和蒸发温度,涡轮机入口温度及其相应的一代压力几乎没有影响热效率。 (c)2017年Elsevier Ltd和IIR。版权所有。

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