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Novel use of MgO nanoparticle additive for enhancing the thermal conductivity of CuO/water nanofluid

机译:新型使用MgO纳米粒子添加剂,提高CuO /水纳米流体的导热系数

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The present work aims to address the low thermal conductivity of CuO/water nanofluid due to the spherical shape of CuO nanoparticles by adding small amount of magnesium oxide (MgO) nanoparticles to the nanofluid. Novel CuO–MgO/water hybrid nanofluid has been synthesised and studied at different volume concentrations (0.125–1.25%) of 80% CuO and 20% MgO nanoparticles suspended in water at different range of temperatures from 25 to 50°C on its thermal conductivity. The study demonstrated that increasing volume concentration of nanoparticles has enhanced the thermal conductivity, but drops slightly when the volume concentrations are above 1%. Furthermore, the results showed that the effect of temperature on thermal conductivity enhancement is similar to the effect of volume concentration, especially at higher temperatures. The highest enhancement of thermal conductivity of 16% was achieved at volume concentration of 1.25% and temperature of 50°C. Furthermore, sensitivity analysis showed that the optimum condition to prepare the CuO–MgO/water hybrid nanofluid could be used in industrial applications at volume concentration of 0.75% and temperature of 50°C. Finally, the study proposed an empirical correlation to measure the thermal conductivity of CuO–MgO/water hybrid nanofluid based on data experiments results.
机译:本工作旨在通过将CuO纳米颗粒的球形形状加入纳米流体中的少量氧化镁(MgO)纳米粒子来解决CuO /水纳米流体的低导热率。已经合成了新型CuO-MgO /水杂化纳米流体,并在不同体积浓度(0.125-1.25%)的80%CuO和20%MgO纳米颗粒上悬浮在水中的不同温度范围内的20%MgO纳米颗粒的研究。该研究证明,纳米颗粒的增加量浓度增强了导热率,但是当体积浓度高于1%时略有下降。此外,结果表明,温度对热导率增强的影响类似于体积浓度的影响,尤其是在较高温度下。在1.25%的体积浓度和50℃的温度下,最高增强16%的导热率为16%。此外,敏感性分析表明,制备CuO-MgO /水杂交纳米流体的最佳条件可用于工业应用,体积浓度为0.75%和50℃的温度。最后,该研究提出了基于数据实验结果测量Cuo-MgO /水杂化纳米流体的导热率的经验相关性。

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