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Assessment of alumina nanofluid as a coolant in double pipe gas cooler for trans-critical CO2 refrigeration cycle

机译:氧化铝纳米流体作为跨关键二氧化碳制冷循环双管气体冷却器中的冷却剂的评估

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In this study, the performance of an alumina nanofluid cooled double pipe gas cooler for trans-critical CO2 refrigeration cycle is theoretically compared to that of water cooled gas cooler.Equal pumping power comparison criterion is adopted besides conventional equal Reynolds number comparison base.Nanofluid is loaded with 0.5%, 1.5% and 2.5% of particle volume fraction under turbulent flow conditions.Drastic variation of thermal and transport properties of CO2 in the vicinity of pseudo critical temperature is taken care of by employing an appropriate discretization technique.Effect of gas cooler pressure, Reynolds number, pumping power and nanoparticle volume fraction on COP of refrigeration system, gas cooler overall conductance, effectiveness and its capacity has been studied.Results indicate that at equal Reynolds number comparison, performance for alumina nanofluid cooled system is better than that of water cooled system.On the other hand, at equal pumping power comparison basis, the performance of water cooled system is superior.Even at equal mass flow rate comparison criterion, the performance of nanofluid cooled system degrades with increase in particle volume fraction.This study is expected to help to assess the nanofluid as a coolant before expensive experimentation.
机译:在该研究中,与水冷气体冷却器的氧化铝纳米流体冷却双管气体冷却器的性能理论上是与水冷气体冷却器的影响。除了传统的同等雷诺数比较底座之外采用相当于泵送电力比较标准.NANOFLIID是在湍流条件下加载0.5%,1.5%和2.5%的颗粒体积分数。通过采用适当的离散化技术,处理伪临界温度附近的CO2附近的热量和运输性能的旋转变化。气体冷却器的影响研究了制冷系统COP的压力,雷诺数,泵送电力和纳米粒子体积分数,研究了气体冷却器的总电导,有效性及其容量。结果表明,在相等的雷诺数比较,氧化铝纳米流体冷却系统的性能优于水冷系统。另一方面,在等于泵送电源比较的基础上,水冷系统的性能优越。即使在等质量流量比较标准中,纳米流体冷却系统的性能随粒子体积分数的增加而劣化。预期研究有助于在昂贵的实验前评估纳米流体作为冷却剂。

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