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Estimation of thermal conductivity of ethylene glycol-based nanofluid with hybrid suspensions of SWCNT-Al2O3 nanoparticles by correlation and ANN methods using experimental data

机译:用实验数据估算SWCNT-Al2O3纳米粒子杂交悬浮液与SWCNT-Al2O3纳米粒子的热导率

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摘要

In the present paper, the effects of temperature and volume fraction on thermal conductivity of SWCNT-Al2O3/EG hybrid nanofluid are investigated. Single-walled carbon nanotube with outer diameter of 1-2 nm and aluminum oxide nanoparticles with mean diameter of 20 nm with the ratio of 30 and 70%, respectively, were dispersed in the base fluid. The measurements were conducted on samples with volume fractions of 0.04, 0.08, 0.15, 0.3, 0.5, 0.8, 1.5 and 2.5. In order to investigate the effects of temperature on thermal conductivity of the nanofluid, this characteristic was measured in five different temperatures of 30, 35, 40, 45 and 50 A degrees C. The results indicate that enhancement of nanoparticles' thickness in low volume fractions and at any temperature causes a considerable increment in thermal conductivity of the nanofluid. In this study, the highest enhancement of thermal conductivity was 41.2% which was achieved at the temperature of 50 A degrees C and volume fraction of 2.5%. Based on the experimental data, an experimental correlation and a neural network are presented and for thermal conductivity of the nanofluid in terms of volume fraction and temperature. Comparing outputs of the experimental correlation and the designed artificial neural network with experimental data, the maximum error values for the experimental correlation and the artificial neural network were, respectively, 2.6 and 1.94% which indicate the excellent accuracy of both methods in prediction of thermal conductivity.
机译:在本文中,研究了温度和体积分数对SWCNT-Al2O3 /例如杂化纳米流体的热导率的影响。具有1-2nm的外径的单壁碳纳米管和具有平均直径为20nm的氧化铝纳米颗粒,分别在基础流体中分散在30和70%的比例中。对体积级分的样品进行测量,0.04,0.08,0.1.3,0.5,0.8,1.5和2.5。为了研究温度对纳米流体的导热率的影响,在30,35,40,45和50℃的五种不同温度下测量该特性。结果表明,在低体积分数中提高纳米颗粒厚度在任何温度下导致纳米流体的导热率相当大的增量。在本研究中,热导率的最高增强为41.2%,在50℃的温度和2.5%的体积分数下实现。基于实验数据,在体积分数和温度方面提出了实验相关性和神经网络,用于纳米流体的热导率。比较实验相关性和实验性神经网络的实验数据的输出,实验相关性和人工神经网络的最大误差值分别为2.6和1.94%,表明两种方法的热导率预测的优异精度。

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