聚集形态对Al2O3-CO2纳米流体导热性和粘度的影响:分子动力学方法

Z. Ahmed, A. Bhargav
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引用次数: 3

摘要

二氧化碳冷却系统是未来工业制冷的潮流。近年来,二氧化碳制冷系统越来越受到关注,它涉及二氧化碳和基液之间的热量传递。高粘度的CO2是油气行业在提高采收率和压裂井应用中非常感兴趣的。为了提高这些重要应用的效率,需要提高CO2的导热性和粘度。纳米颗粒的聚集是提高纳米流体导热性和粘度的重要机制之一。由于纳米粒子的聚集形态目前尚不清楚,我们通过确定不同构型体系的势能来评估纳米粒子聚集的稳定构型。本文采用Green-Kubo形式计算了不同聚集纳米流体的上述热物理性质。本研究中的纳米流体由氧化铝(Al2O3)纳米颗粒和CO2作为基液组成。结果表明,纳米流体的热导率和粘度的增强与体系的势能成反比。结果还表明,聚集的纳米颗粒的不同形态对纳米流体的热物理性质有不同的增强作用。本研究有助于研究者认识到纳米颗粒聚集形态及其稳定性对纳米流体导热性和粘度的重要性和影响。
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EFFECT OF AGGREGATION MORPHOLOGY ON THERMAL CONDUCTIVITY AND VISCOSITY OF Al2O3-CO2 NANOFLUID: A MOLECULAR DYNAMICS APPROACH
CO2 cooling systems are the wave of the future for industrial refrigeration. CO2 refrigeration systems are gaining traction in recent years which involves heat transfer between CO2 and the base fluid. The high viscosity of CO2 is of interest to the oil and gas industry in enhanced oil recovery and well-fracturing applications. A need arises to improve the thermal conductivity and viscosity of CO2 to increase the efficiency of these significant applications. Aggregation of nanoparticles is one of the crucial mechanisms to improve the thermal conductivity and viscosity of nanofluids. Since the aggregation morphology of nanoparticles is unclear so far, we have evaluated the stable configurations of the aggregation of nanoparticles by determining the potential energy of the different configurations system. In this paper, Green-Kubo formalism is used to calculate the mentioned thermo-physical properties of the different aggregated nanofluids. The nanofluid in this study consists of alumina (Al2O3) nanoparticles and CO2 as a base fluid. Results indicate that the enhancement in the thermal conductivity and viscosity of nanofluid is inversely proportional to the potential energy of the system. The results also mark that various morphologies of the aggregated nanoparticles have different enhancements of thermo-physical properties of the nanofluid. This study is conducive for the researchers to perceive the importance and influence of aggregation morphology of nanoparticles and their stability on the thermal conductivity and viscosity of nanofluid.
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