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Influence of ultrasonication energy on the dispersion consistency of Al2O3-glycerol nanofluid based on viscosity data, and model development for the required ultrasonication energy density

机译:超声能量对基于粘度数据的Al2O3-甘油纳米流体分散稠度的影响,以及所需超声能量密度的模型开发

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Achieving homogenised and stable suspensions has been one of the important research topics in nanofluid investigations. Preparing nanofluids, especially from the two-step method, is often accompanied with varying degrees of agglomerations depending on some parameters. These parameters include the physical structure of the nanoparticle, the prevalent particle charge, the strength of van der Waals forces of attraction and repulsiveness strength. Amongst the methods of deagglomeration, the use of ultrasonic vibration is most popular for achieving uniform dispersion. However, there are very few works related to its effect on the thermo-physical properties of nanofluids, and above all, standardising the minimum required ultrasonication time/energy for nanofluids synthesis. In this work, the optimum energy required for uniform and initially stable nanofluid has been investigated through experimental study on the combined influence of ultrasonication time/energy, nanoparticle size, volume fraction and temperature on the viscosity of alumina-glycerol nanofluids. Three different sizes of alumina nanoparticles were synthesised with glycerol using ultrasonication-assisted two-step approach. The viscosities of the nanofluid samples were measured between temperatures of 20-70 degrees C for volume fractions up to 5%. Based on the present experimental results, the viscosity characteristics of the nanofluid samples were dependent on particle size, volume fraction and working temperature. Using viscometry, the optimum energy density required for preparing homogenous nanofluid was obtained for all particle sizes and volume fractions. Finally, an energy density model was derived using dimensionless analysis based on the consideration of nanoparticle binding/interaction energy in base fluid, particle size, volume fraction, temperature and other base fluid properties. The model's empirical constants were obtained using nonlinear regression based on the present experimental data.
机译:实现均质化和稳定的悬浮液一直是纳米流体调查中的重要研究主题之一。制备纳米流体,尤其是两步法,通常伴随着不同程度的聚集,这取决于一些参数。这些参数包括纳米颗粒的物理结构,普遍的粒子电荷,van der Wa的强度的吸引力和斥力强度。在切割的方法中,使用超声波振动最受实现均匀分散的流行。然而,与其对纳米流体的热物理性质的影响很少有关,并且最重要的是,标准化纳米流体合成的最小所需的超声波时间/能量。在这项工作中,通过实验研究研究了超声时间/能量,纳米颗粒尺寸,体积分数和温度对氧化铝 - 甘油纳米流体粘度的综合影响,研究了均匀和最初稳定的纳米流体所需的最佳能量。使用超声波辅助的两步方法用甘油合成三种不同尺寸的氧化铝纳米粒子。纳米流体样品的粘度在20-70℃的温度之间测量,体积馏分高达5%。基于本实验结果,纳米流体样品的粘度特性取决于粒度,体积分数和工作温度。使用粘度法,得到制备均匀纳米流体所需的最佳能量密度,用于所有颗粒尺寸和体积级分。最后,基于基于基础流体,粒度,体积分数,温度和其他基础流体特性的纳米粒子结合/相互作用能量,使用无量纲分析来得出能量密度模型。使用基于本实验数据的非线性回归获得模型的经验常数。

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