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Experimental Convection Heat Transfer Analysis of a Nano-Enhanced Industrial Coolant

机译:纳米增强工业冷却剂的对流换热实验分析

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摘要

Convection heat transfer coefficients and pressure drops of four functionalized graphene nanoplatelet nanofluids based on the commercial coolant Havoline® XLC Pre-mixed 50/50 were experimentally determined to assess its thermal performance. The potential heat transfer enhancement produced by nanofluids could play an important role in increasing the efficiency of cooling systems. Particularly in wind power, the increasing size of the wind turbines, up to 10 MW nowadays, requires sophisticated liquid cooling systems to keep the nominal temperature conditions and protect the components from temperature degradation and hazardous environment in off-shore wind parks. The effect of nanoadditive loading, temperature and Reynolds number in convection heat transfer coefficients and pressure drops is discussed. A dimensionless analysis of the results is carried out and empirical correlations for the Nusselt number and Darcy friction factor are proposed. A maximum enhancement in the convection heat transfer coefficient of 7% was found for the nanofluid with nanoadditive loading of 0.25 wt %. Contrarily, no enhancement was found for the nanofluids of higher functionalized graphene nanoplatelet mass fraction.
机译:实验确定了基于商用冷却剂Havoline ® XLC预混合50/50的四种功能化石墨烯纳米片纳米流体的对流传热系数和压降,以评估其热性能。由纳米流体产生的潜在的传热增强可以在提高冷却系统的效率中起重要作用。尤其是在风力发电领域,风力涡轮机的尺寸不断增加,如今已高达10 MW,这需要复杂的液体冷却系统来保持标称温度条件,并保护组件免受海上风电场的温度下降和危险环境的影响。讨论了纳米添加剂负荷,温度和雷诺数对流传热系数和压降的影响。对结果进行了无量纲分析,并提出了Nusselt数和Darcy摩擦系数的经验相关性。对于具有0.25wt%的纳米添加剂的纳米流体,发现对流传热系数的最大增强为7%。相反,未发现更高官能化的石墨烯纳米血小板质量分数的纳米流体的增强。

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