用于储存血浆的蒸汽压缩级联制冷系统的性能评估

O. Oginni
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摘要

级联制冷系统由两个循环组成,可在需要极低温的应用中获得最大的制冷效果。本文的重点是对用于快速冷冻和储存血液制品(尤其是血浆)的级联制冷系统进行实验研究。该系统能够管理和应用低至摄氏零下 35 度的血浆冷藏。R410A(低温循环)和 R404A(高温循环)分别是该系统的工作液,它们的选择是基于合理的沸点差和快速冷冻时间。这些工作液的臭氧消耗和全球变暖潜能值很小,对环境无毒。该系统性能评估确定了级联制冷系统的参数,包括蒸发器温度、冷凝器温度和级联冷凝器温差变化的影响。当蒸发器温度以 7 摄氏度的间隔从-35 摄氏度升高到-70 摄氏度时,吸气压力从 0.22 兆帕升高到 0.64 兆帕。在冷凝器温度恒定为 40 摄氏度的高温循环中,压缩机排气温度从 30 摄氏度降至 26 摄氏度,导致排气压力从 1.62 兆帕降至 1.49 兆帕。在热交换器温度变化时,除两个循环的排气温度和蒸发器热量外,所有参数都降低了。可比系统的性能系数大幅增加,分别为 3.04(LTC)和 7.7(HTC)。高温循环冷凝器的总排热量为 6228 千焦,可用于加热。
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Performance Evaluation of Vapour Compression Cascade Refrigeration System for Storing Blood Plasma
A cascade refrigeration system consists of two cycles to get the greatest possible refrigeration effect for applications requiring extremely low temperatures. The experimental examination of the cascade refrigeration system utilized for quickly freezing and storing blood products, notably plasma, was the main emphasis of this paper. This system is able to manage and apply cold storage for plasma at temperatures as low as -35oC. R410A (low temperature cycle) and R404A (high temperature cycle) are the working fluids in this system respectively, and their selection was based on their reasonable boiling point differences and rapid freezing times. These working fluids have very little ozone depletion and global warming potential, and they are non-toxic to the environment. This system performance evaluation determines the cascade refrigeration system's parameters ranging effects of variation in evaporator temperature, condenser temperature and temperature difference in cascade condenser. As the evaporator temperature increases from – 35oC to -70C at interval of 7oC, the suction pressure increased from 0.22 MPa to 0.64 MPa. The decrease in compressor discharge temperature of 30oC to 26oC resulted to decrease in discharge pressure ranging 1.62 to 1.49MPa in the high temperature cycle at constant condenser temperature of 40 0C. At varying heat exchanger temperature, all parameters reduced with exception of discharge temperature in both cycles and evaporator heat. A substantial increase in the coefficient of performance of comparable systems was found to be 3.04 (LTC) and 7.7 (HTC). At the high temperature cycle condenser, there was a total heat rejection of 6228 kJ, which could then be recycled for heating.
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