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RHEOLOGICAL STUDY OF Y_2O_3 NANOFLUIDS

机译:Y_2O_3纳米流体的流变学研究

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This paper investigates the effects of shear rate and temperature on rheological behavior of Yttria (Y2O3) based nanofluids experimentally. These nanofluids are potentially useful in high electric field and high temperature environment as well as for nuclear applications. The nanofluids are prepared by two step method. The particle size of nanofluids is characterized by electro-acoustic spectroscopy. Rheology measurements of these nanofluids show typical Newtonian behavior for several volume fractions of Yttria for shear rates above Is~(-1). Below Is~(-1) shear rate the nanofluids show shear thinning behavior that depends on particles concentration. Generally, the effective viscosity of Yttria nanofluids is found to increase linearly up to 44% with particle loading of 5 vol%. The viscosity of these nanofluids follows Arrhenius type relationship with temperature similar to the base fluid behavior. The relative viscosity of these nanofluids has a temperature dependence behavior which contradicts reported observations in literature and can be attributed to the contribution from particle-particle interaction at higher concentrations. This temperature dependence was more pronounced with an increase in concentrations, which indicates that the viscosity increment of nanofluids is not only governed by the base fluid temperature dependence.
机译:本文研究了剪切速率和温度对基于氧化钇(Y2O3)的纳米流体的流变行为的影响。这些纳米流体可能在高电场和高温环境以及核应用中有用。纳米流体通过两步法制备。纳米流体的粒度的特征在于电声光谱。这些纳米流体的流变学测量显示了典型的牛顿行为对于上述剪切速率的氧化钇的几个体积分数是〜(-1)。以下是〜(-1)剪切速率纳米流体显示剪切稀疏行为,其取决于颗粒浓度。通常,发现氧化钇纳米流体的有效粘度,颗粒载量为5体积%的颗粒负载线性增加了44%。这些纳米流体的粘度遵循与基础流体行为类似的温度的Arhenius型关系。这些纳米流体的相对粘度具有温度依赖性行为,其在文献中报道了观察结果,并且可以归因于粒子颗粒相互作用在较高浓度下的贡献。随着浓度的增加,这种温度依赖性更明显,这表明纳米流体的粘度增量不仅受到基础流体温度依赖性的控制。

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