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Performance comparison of single-stage mixed-refrigerant Joule-Thomson cycle and reverse Brayton cycle for cooling 80 to 120 K temperature-distributed heat loads

机译:单级混合制冷剂Joule-Thomsh循环和逆转布雷顿循环的性能比较,冷却80至120K温度分布热负荷

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Thermodynamic performance comparison of single-stage mixed-refrigerant Joule-Thomson cycle (MJTR) and pure refrigerant reverse Brayton cycle (RBC) for cooling 80 to 120 K temperature-distributed heat loads was conducted in this paper. Nitrogen under various liquefaction pressures was employed as the heat load. The research was conducted under nonideal conditions by exergy analysis methods. Exergy efficiency and volumetric cooling capacity are two main evaluation parameters. Exergy loss distribution in each process of refrigeration cycle was also investigated. The exergy efficiency and volumetric cooling capacity of MJTR were obviously superior to RBC in 90 to 120 K temperature zone, but still inferior to RBC at 80 K. The performance degradation of MJTR was caused by two main reasons: The high fraction of neon resulted in large entropy generation and exergy loss in throttling process. Larger duty and WLMTD lead to larger exergy losses in recuperator.
机译:在本文中,进行了用于冷却80至120k温度分布热负荷的单级混合制冷剂Joule-Thomson-Thomsh循环(MBTR)和纯制冷剂反向布雷顿循环(RBC)的热力学性能比较。各种液化压力下的氮是用作热负荷。该研究在非抗病条件下进行了漏洞分析方法。高级效率和体积冷却能力是两个主要评估参数。还研究了每个制冷循环过程中的高度损失分布。 MBTR的低级效率和体积冷却能力明显优于90至120K温度区的RBC,但仍然不如RBC,在80 k下。MBTR的性能降解是由两个主要原因引起的:霓虹灯的高度造成的大熵生成和排气过程中的丧失。更大的职责和WLMTD导致恢复器中更大的漏洞。

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