用于先进制冷剂热物理性质的氧化铜纳米颗粒:数学建模

S. Fadhilah, R. Marhamah, A. Izzat
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引用次数: 39

摘要

在现代,制冷系统是重要的工业和家庭应用。与其他电器相比,这些系统消耗更多的电力。制冷系统已经在许多方面进行了深入的研究,以减少能源消耗。因此,纳米制冷剂作为纳米流体的一种,作为一种提高制冷系统传热速率的性能优越的制冷剂而被引入。许多类型的材料都可以用作悬浮在传统制冷剂中的纳米颗粒。本研究采用数学模型研究了悬浮氧化铜(CuO)纳米颗粒对1,1,1,2-四氟乙烷R-134a的影响。研究了纳米制冷剂在蒸发器管内的导热系数、动态粘度和传热速率。结果表明,纳米制冷剂的热物理性能比常规制冷剂有所提高。这些先进的热物理特性提高了管内的传热速率。纳米制冷剂可以作为一种潜在的工质应用于制冷系统,提高制冷系统的传热性能,节约制冷系统的能耗。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Copper Oxide Nanoparticles for Advanced Refrigerant Thermophysical Properties: Mathematical Modeling
In modern days, refrigeration systems are important for industrial and domestic applications. The systems consume more electricity as compared to other appliances. The refrigeration systems have been investigated thoroughly in many ways to reduce the energy consumption. Hence, nanorefrigerant which is one kind of nanofluids has been introduced as a superior properties refrigerant that increased the heat transfer rate in the refrigeration system. Many types of materials could be used as the nanoparticles to be suspended into the conventional refrigerants. In this study, the effect of the suspended copper oxide (CuO) nanoparticles into the 1,1,1,2-tetrafluoroethane, R-134a is investigated by using mathematical modeling. The investigation includes the thermal conductivity, dynamic viscosity, and heat transfer rate of the nanorefrigerant in a tube of evaporator. The results show enhanced thermophysical properties of nanorefrigerant compared to the conventional refrigerant. These advanced thermophysical properties increased the heat transfer rate in the tube. The nanorefrigerant could be a potential working fluid to be used in the refrigeration system to increase the heat transfer characteristics and save the energy usage.
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